US20070112265A1 - Fluid Injection System Providing Visual Stimuli - Google Patents

Fluid Injection System Providing Visual Stimuli Download PDF

Info

Publication number
US20070112265A1
US20070112265A1 US11/623,490 US62349007A US2007112265A1 US 20070112265 A1 US20070112265 A1 US 20070112265A1 US 62349007 A US62349007 A US 62349007A US 2007112265 A1 US2007112265 A1 US 2007112265A1
Authority
US
United States
Prior art keywords
fluid
illumination device
phase
injection system
protocol
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US11/623,490
Inventor
Douglas Zatezalo
Jeffrey Thompson
Steven Rygg
Scott Griffith
John Gardner
Ronald Barbati
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Bayer Medical Care Inc
Original Assignee
Medrad Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Family has litigation
First worldwide family litigation filed litigation Critical https://patents.darts-ip.com/?family=23438206&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=US20070112265(A1) "Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Application filed by Medrad Inc filed Critical Medrad Inc
Priority to US11/623,490 priority Critical patent/US20070112265A1/en
Publication of US20070112265A1 publication Critical patent/US20070112265A1/en
Abandoned legal-status Critical Current

Links

Images

Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M5/00Devices for bringing media into the body in a subcutaneous, intra-vascular or intramuscular way; Accessories therefor, e.g. filling or cleaning devices, arm-rests
    • A61M5/14Infusion devices, e.g. infusing by gravity; Blood infusion; Accessories therefor
    • A61M5/142Pressure infusion, e.g. using pumps
    • A61M5/145Pressure infusion, e.g. using pumps using pressurised reservoirs, e.g. pressurised by means of pistons
    • A61M5/1452Pressure infusion, e.g. using pumps using pressurised reservoirs, e.g. pressurised by means of pistons pressurised by means of pistons
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M5/00Devices for bringing media into the body in a subcutaneous, intra-vascular or intramuscular way; Accessories therefor, e.g. filling or cleaning devices, arm-rests
    • A61M5/14Infusion devices, e.g. infusing by gravity; Blood infusion; Accessories therefor
    • A61M5/142Pressure infusion, e.g. using pumps
    • A61M5/145Pressure infusion, e.g. using pumps using pressurised reservoirs, e.g. pressurised by means of pistons
    • A61M5/1452Pressure infusion, e.g. using pumps using pressurised reservoirs, e.g. pressurised by means of pistons pressurised by means of pistons
    • A61M5/14546Front-loading type injectors
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M5/00Devices for bringing media into the body in a subcutaneous, intra-vascular or intramuscular way; Accessories therefor, e.g. filling or cleaning devices, arm-rests
    • A61M5/14Infusion devices, e.g. infusing by gravity; Blood infusion; Accessories therefor
    • A61M5/168Means for controlling media flow to the body or for metering media to the body, e.g. drip meters, counters ; Monitoring media flow to the body
    • A61M5/16804Flow controllers
    • A61M5/16827Flow controllers controlling delivery of multiple fluids, e.g. sequencing, mixing or via separate flow-paths
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M5/00Devices for bringing media into the body in a subcutaneous, intra-vascular or intramuscular way; Accessories therefor, e.g. filling or cleaning devices, arm-rests
    • A61M5/14Infusion devices, e.g. infusing by gravity; Blood infusion; Accessories therefor
    • A61M5/168Means for controlling media flow to the body or for metering media to the body, e.g. drip meters, counters ; Monitoring media flow to the body
    • A61M5/172Means for controlling media flow to the body or for metering media to the body, e.g. drip meters, counters ; Monitoring media flow to the body electrical or electronic
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M5/00Devices for bringing media into the body in a subcutaneous, intra-vascular or intramuscular way; Accessories therefor, e.g. filling or cleaning devices, arm-rests
    • A61M5/007Devices for bringing media into the body in a subcutaneous, intra-vascular or intramuscular way; Accessories therefor, e.g. filling or cleaning devices, arm-rests for contrast media

Definitions

  • the present invention generally relates to powered injectors and syringes for use therewith, and more particularly, to methods and apparatus for automatically controlling the same.
  • U.S. Pat. No. 4,006,736, discloses an injector and syringe for injecting fluid into the vascular system of a human being or an animal.
  • injectors comprise drive members such as pistons that connect to a syringe plunger.
  • drive members such as pistons that connect to a syringe plunger.
  • 4,677,980 discloses an angiographic injector and syringe wherein the drive member of the injector can be connected to, or disconnected from, the syringe plunger at any point along the travel path of the plunger via a releasable mechanism.
  • a front-loading syringe and injector system is also disclosed in U.S. Pat. No. 5,383,858.
  • U.S. Pat. No. 5,494,036 discloses a patient infusion system adapted for use in MRI.
  • the infusion system is designed to be substantially non-reactive with the magnetic field generated by the magnetic resonance imaging system for producing diagnostic images.
  • Medrad has also developed a control arrangement (“SPECTRIS”) for an MRI infusion system that uses two syringes, namely, one for the introduction of contrast medium into a patient and the other for a flushing medium.
  • SPECTRIS a control arrangement
  • the “SPECTRIS” control arrangement will thus not only account for the residual contrast medium left in the tubing, and aim to use it in an infusion procedure, but will utilize a much cheaper flushing medium, such as a saline solution, in order to serve the purpose of pushing the residual contrast medium through the tubing and even through the patent's body (so as to “push” and deliver contrast medium to a region of interest in the body).
  • flushing media such as maintaining a flow through the patient's veins for a predetermined period of time in order that the veins will be better prepared to subsequently receive a new infusion of contrast medium.
  • the “SPECTRIS” control arrangement is a pre-programmable arrangement for establishing a precise protocol for the infusion of contrast medium followed by flushing medium.
  • the “SPECTRIS” system needs in the industry were generally such that only some very simple protocols were desired.
  • the “SPECTRIS” system addressed such needs by permitting protocols in which one or two “phases” of contrast medium took place followed by zero, one or two “phases” of flushing medium infusion.
  • “Phase” refers to the application of a given quantity of a given medium at, for example, a fixed flowrate for a fixed period of time.
  • Nemoto and Co., Ltd., of Tokyo, Japan has also developed a control system for an MR injector.
  • this appears to be even less flexible than the “SPECTRIS” system in that only protocols consisting of no more than one contrast medium infusion and no more than one flushing medium infusion appear to be permitted.
  • Medrad has developed the “ENVISION” control system.
  • the “ENVISION” system As flushing media have generally not been hitherto employed in CT injector systems, the “ENVISION” system, much as any conventional CT injector control system, contemplates only the use of a single syringe for patient infusion, and solely for use with contrast medium.
  • the “ENVISION” system permits protocols that employ up to eight different phases of contrast medium infusion, wherein each phase may employ a different infusion flowrate, infusion quantity and/or infusion duration. Pre-programmed pauses between infusion phases are also conceivable within such a context.
  • At least one presently preferred embodiment of the present invention broadly contemplates a fluid injection arrangement, in the context of patient imaging systems, in which phases of contrast medium injection and flushing medium injection can be freely and selectably ordered so as to make available to the operator and patient a vast array of possible protocols that has hitherto been essentially unattainable.
  • the present invention also broadly contemplates the use of a “hold” phase, involving an indefinite pause between phases of a protocol, in connection with such imaging systems.
  • a “hold” phase permits some time for the operator to render supplementary judgnents, following the administration of the phase(s) before the “hold”, that could be of value when administering the phase(s) that occur(s) after the “hold”.
  • the “hold” phase could permit an operator to alter the parameters for the phases not yet undertaken.
  • the present invention broadly contemplates the use of “pattern recognition,” through recognizing a graphical or iconic pattern of words, numbers, geometric shapes, and possibly other visual stimuli that in sum correspond to a given protocol, to permit an operator to quickly and efficiently recognize the makeup of a given protocol.
  • the present invention provides an apparatus and method for operating an injector providing stimuli corresponding to an injection protocol.
  • the method includes perceiving the stimuli, recognizing a pattern provided by the stimuli, correlating the recognized pattern to the injection protocol, and interacting with the injector based on the recognized pattern.
  • the stimuli provided by the injector may, in a preferred embodiment of the present invention, comprise visual stimuli including, but not limited to, words, numbers, shapes and colors.
  • a “pause” phase in which a pause of fixed duration is pre-programmed into the protocols of MRI injector systems.
  • At least one presently preferred embodiment of the present invention broadly embraces fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to: selectively program a plurality of phases of an injection procedure, at least one phase comprising one of: a contrast medium phase, a flushing medium phase, a pause phase and a hold phase; and selectively modify at least one phase of the injection procedure.
  • At least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein at least one of the fluid containers includes an illumination element; and wherein the control device includes at least one element affiliated with the illumination element.
  • At least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to: selectively program a plurality of phases of an injection procedure, at least one phase comprising one of: a contrast medium phase, a flushing medium phase, a pause phase and a hold phase; produce, during programming, a graphical display indicating at least the phases; and selectively recreate a facsimile of the graphical display at a subsequent time.
  • At least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to selectively program a plurality of phases of an injection procedure, at least one phase comprising one of: a contrast medium phase and a flushing medium phase; wherein the control device is further operable to selectively establish and control a KVO state independently from the programming of any of the phases.
  • At least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to selectively program a plurality of phases of an injection procedure; at least one phase comprising one of: a contrast medium phase and a flushing medium phase; at least one phase comprising a hold phase.
  • At least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to selectively program a plurality of phases of an injection procedure, at least one phase comprising one of: a contrast medium phase, a flushing medium phase, a pause phase and a hold phase; the control device further being operable to selectively store a protocol comprising a plurality of the phases and selectively recall the protocol at a subsequent time for use in an injection procedure.
  • At least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to selectively program a plurality of phases of an injection procedure; at least one phase comprising one of a contrast medium phase and a flushing medium phase; at least one phase comprising a pause phase.
  • FIG. 1 is a schematic depiction of a conventional magnetic resonance imaging (MRI) injector system arrangement
  • FIG. 2 is a pictographic depiction of a conventional MRI injector system arrangement
  • FIGS. 3-6 are various depictions of a control screen arrangement for use with different protocols
  • FIG. 7 is a schematic depiction of syringes with illumination elements
  • FIGS. 8 and 9 are depictions of a control screen arrangement for use with another protocol
  • FIG. 10 is a depiction of a control screen arrangement for use with a further protocol.
  • FIGS. 11-20 are depictions of control screen arrangements for use with yet another protocol.
  • FIG. 21 is a depiction of a control screen arrangement permitting the recall of any of a number of different protocols.
  • FIGS. 1 and 2 generally illustrate a conventional MRI injector system arrangement, such as is disclosed in U.S. Pat. No. 5,494,036 to Uber et al, the contents of which are incorporated herein by reference.
  • a magnetic resonance injector system is shown generally at 10 .
  • the MRI system includes a system controller 12 , which incorporates a computer 14 and a battery-charging unit 16 .
  • the system controller 12 is located externally of the imaging room 17 , the imaging room being shielded from electromagnetic interference by a shield 18 .
  • Isolation can be achieved by completely enclosing the room with copper sheet material or some other suitable, conductive layer such as wire mesh.
  • Communication line 20 connects the system controller 12 with an external infrared/optical communications transceiver 22 .
  • the shielded imaging room 17 also incorporates a patient viewing window 24 in the shield 18 which allows an operator to view the imaging room.
  • the window 24 can be formed by sandwiching a wire mesh material (not shown) between sheets of glass or coating the window with a thin coating of conductive material such as gold (not shown) to maintain the continuity of the electromagnetic shield 18 .
  • An infrared/optical communications transceiver 26 is positioned internally of the imaging room 17 at the viewing window 24 opposite the external communications transceiver 22 such that the internal and external communications transceivers communicate with each other through the viewing window with no breach of the electromagnetic shield.
  • a communications link 28 located within the shielded area connects the internal infrared/optical transceiver with an injection control unit 30 .
  • the injection control unit 30 is powered advantageously by rechargeable battery 32 .
  • the injection control unit 30 also incorporates control circuitry that controls electric motors 35 , 36 that are also located within the injection control unit.
  • the injection control unit is contained within an electromagnetic shield 37 to prevent interference with the magnetic field used to generate the magnetic resonance image.
  • the injection head unit should preferably be located in close proximity to the patient in order to decrease the distance that the contrast media fluid must travel from the contrast media injectors.
  • the injection head unit 38 includes contrast media injection syringe and piston units 40 , 42 .
  • the syringes 40 , 42 are in operation communication with the electric motors in the injection control unit by flexible mechanical drive shafts 44 , 46 , respectively.
  • the drive shafts are preferably made from a nonferrous metal such as hard brass.
  • FIGS. 3-6 The disclosure now turns to an embodiment of the present invention, as illustrated in FIGS. 3-6 , that could conceivably be employed in connection with a MRI injector system such as that shown in FIGS. 1 and 2 or with any other of a wide range of MR, CT, angiographic or ultrasound injector systems.
  • MRI injector system such as that shown in FIGS. 1 and 2
  • ultrasound injector systems any other of a wide range of MR, CT, angiographic or ultrasound injector systems.
  • FIGS. 3-6 Shown schematically in FIGS. 3-6 are various incarnations of a touch screen arrangement 200 that could be employed in accordance with at least one presently preferred embodiment of the present invention.
  • a touch screen arrangement could be utilized in conjunction with a system controller 12 and computer 14 such as that described and illustrated hereinabove with respect to FIGS. 1 and 2 .
  • a touch screen arrangement is contemplated in connection with FIGS. 3-6 , it is to be understood that other types of data entry arrangements are conceivable that would achieve an equivalent purpose.
  • Display fields 210 , 220 could also be touch fields used for desired purpose. For example, soft or hard key entry could be used, as well as trackball arrangements, mouse arrangements, or a cursor control touch pad (remote from the screen).
  • touch screen arrangement 200 may permit for the display of a display field 210 corresponding to the available quantity of contrast medium, a variable column 212 of touch fields for facilitating the entry of control parameters relating to contrast medium, a variable column 214 of touch fields relating to flowrate, a variable column 216 of touch fields relating to volume, a variable column 218 of touch fields for facilitating the entry of control parameters relating to flushing medium and a display field 220 corresponding to the available quantity of flushing medium.
  • Display fields 210 , 220 could also be touch fields used for a desired purpose.
  • contrast medium refers to essentially any suitable type of medium, as used in the medical arts, that is injected into a patient and, in the context of an imaging process (such as MR, angiography, ultrasound or CT), facilitates in highlighting selected areas of the patient's body while he/she is being scanned.
  • imaging process such as MR, angiography, ultrasound or CT
  • contrast medium also refers to other diagnostic or therapeutic agents for injection into patients.
  • flush medium refers to essentially any suitable type of medium, such as a saline solution, that can be used to flush contrast medium from the tubing of an infusion system and that is well-suited for flowing through the patient's body so as to serve a useful supplementary purpose, such as keeping his/her veins open in preparation for another infusion of contrast medium.
  • the touch screen arrangement 200 is preferably configured for permitting the operator to freely and flexibly incorporate phases of contact medium infusion and phases of flushing medium infusion with respect to one another in a manner that has hitherto apparently not been contemplated nor realized. (A definition of “phases” may be found in the “Background” section of this disclosure). Further, the present invention also broadly contemplates, in accordance with at least one presently preferred embodiment, optional “hold” and “pause” phases as discussed herebelow.
  • FIG. 3 illustrates one conceivable protocol that may be entered in accordance with an embodiment of the present invention.
  • displays 210 and 220 show that 50 ml of contrast medium are available, as are 83 ml of flushing medium.
  • the operator has selected the provision of two phases of contrast medium followed by one phase of flushing medium.
  • the first phase of contrast medium infusion will have been set by activating the touch field 1 in column 212 , followed by activating the corresponding entry fields in columns 214 and 216 and entering in them, respectively, the desired flowrate and desired volume to be administered to the patient.
  • the entry of data can be accomplished by touching on a touch field ( 214 or 216 ), which could prompt the appearance of a keypad on the screen that would allow the entry of specific values in the fields 214 , 216 .
  • a second phase of contrast medium infusion has also been set in similar manner, but this time by activating touch field 2 in column 212 , followed by activating the corresponding entry fields in columns 214 and 216 and again entering in them, respectively, the desired flowrate and volume.
  • the operator has selected a flushing medium infusion phase, this time by activating touch field 3 in column 218 and then entering the desired flow rate and volume parameters in the corresponding fields in columns 214 and 216 .
  • the result is a three-phase protocol that will result in the administration of: (1) a first phase of contrast medium infusion (10 ml ) at 2.0 ml/s; (2) a second phase of contrast medium infusion (20 ml) at 1.0 ml/s; and (3) a phase of flushing medium infusion (25 ml) at 1.0 ml/s.
  • Such a protocol might be desirable, for example, when it is desired that a patient first receive a first, quick infusion of contrast medium of smaller volume (i.e., a bolus of contrast medium) so as to accentuate (for imaging purposes) a small, particularized part of the body where such an infusion may be desirable, followed by a second, slower infusion of contrast medium of larger volume (e.g., a trickle or drip of contrast medium) that would be of use in a part of the body where a faster flowrate might not be needed.
  • a part of the body may be (e.g., peripheral vascular regions of the legs).
  • the flushing phase then, could subsequently be utilized for purposes such as those described heretofore.
  • touch screen arrangement 200 may be so configured as to display only those data entry fields in columns 214 , 216 that have been specifically activated by the operator (via activation of corresponding touch fields in columns 212 , 218 ), so that there will be no data fields visible in columns 214 , 216 corresponding to phases that are not to be used for a given protocol
  • FIG. 3 shows that no data fields are visible in columns 214 , 216 in correspondence with a fourth phase, since only three phases are being employed.
  • there will only preferably be one touch field in columns 212 and 218 visible beyond the number of phases that has already been chosen by the operator Thus, as shown in FIG.
  • the incrementally emerging data fields in columns 214 and 216 may assume different shades, in correspondence with the type of phase being employed.
  • the data entry fields assume a darker shade in correspondence with a contrast medium infusion phase, while they assume a lighter shade in correspondence with a flushing medium infusion phase.
  • the numbered touch fields in columns 212 and 218 may each preferably assume a corresponding shade in accordance with their being individually activated.
  • fields 1 and 2 in column 212 are shaded in correspondence with their having been activated in the process of setting up two contrast medium infusion phases (following from their proximity to display field 210 , which corresponds to contrast medium), while field 3 in column 218 is shaded in correspondence with its having been activated in the process of setting up a flushing medium infusion phase.
  • neither of the fields 4 in columns 212 , 218 is shaded since neither has been activated to set up a phase of any sort.
  • duration display field 224 and a total volume display field 226 .
  • duration display field 24 also preferably shows the projected total duration before injection starts
  • volume display field 226 also preferably shows, at that time, the total projected volume to be expended.
  • FIGS. 4-6 serve to further illustrate the versatility and flexibility afforded in accordance with at least one presently preferred embodiment of the present invention. Reference numerals in those figures relate to similar components referenced by similar numerals in FIG. 3 .
  • the operator has chosen a first phase of contrast medium infusion, followed by a first phase of flushing medium infusion, followed by a second phase of contrast medium infusion, finally followed by a second phase of flushing medium infusion.
  • FIG. 5 illustrates a different protocol, but this time involving six phases. 10 Particularly, the six phases illustrated are two separate contrast medium phases, followed by a flushing medium phase, followed again by two distinct contrast medium phases, finally followed by a flushing medium phase.
  • FIG. 6 illustrates a protocol involving a distinct “hold” phase in accordance with an embodiment of the present invention.
  • the operator has selected a contrast medium phase followed by a flushing medium phase.
  • the operator has also now selected a “hold” phase, indicated at 244 , in which, for an indefinite period of time (possibly capped automatically for safety reasons), the regulated administration of fluids will cease, unless “KVO” (described below) is desired.
  • the “hold” phase may be activated on touch screen arrangement 200 pressing on icon 222 , which would then produce a “hold” display field 244 that spans both columns 214 , 216 .
  • the “hold” phase is then followed by a second contrast medium phase and a second flushing medium phase.
  • the value of including a “hold” phase is that it permits some time for the operator to render supplementary judgements, following the administration of the phase(s) before the “hold”, that could be of value when administering the phase(s) that occur(s) after the “hold”.
  • the operator may wish to first infuse a short bolus of contrast medium not for imaging purposes but for the purpose of determining the length of time (by any suitable means) that the bolus requires in order to reach a given target area in the patient's body. Once a flushing phase is completed, the “hold” may then take effect.
  • the imaging scanner (not shown here) could be programmed to delay its imaging action for a period of time that corresponds to the “delay” that the “short bolus” required in order to reach the target area of the body.
  • the scan delay i.e., the length of time that the scanner could “wait” before imaging the target area of the body
  • the operator may alter the parameters for the flowrate or volume for the phases not yet undertaken if observations undertaken during (or information derived from) the short bolus warrants changing such parameters.
  • the resulting bolus will be permitted to pass through the patient's system for a length of time corresponding to the “scan delay” before the scanner, conceivably prompted automatically via the scan delay clock in field 228 or perhaps manually by the operator (for example, upon hearing an audible signal), itself is activated as to image the target area of the patient.
  • the hold function permits the optimization of the parameters of subsequent injections, thereby allowing for the improvement of overall image quality.
  • a KVO (“keep vein open”) display field 230 may show the status of “KVO”, that is, whether there is a circulation of flushing medium (either continuously or in small intermittent bursts) in the patient's system for the purpose of maintaining a flow of some type in his/her veins and perhaps to show a countdown of the time remaining in such a state.
  • the duration of “KVO” could preferably be capped, in correspondence with the actual quantity of flushing medium available (minus the flushing medium required for any subsequent flushing medium phase), automatically by the control system.
  • the “arm injector” display field 232 and associated touch fields 232 a and 232 b serve the purpose of arming the injector and initiating the start of injection.
  • the “display screen” display field 234 and associated touch fields 234 a and 234 b serve the purpose of accessing any configuration (set-up) information such as language (e.g., English, German, French, Japanese, etc.) or KVO parameters or for reset (e.g. zeroing) of the screen.
  • language e.g., English, German, French, Japanese, etc.
  • KVO parameters e.g. zeroing
  • the “history” display field 236 may serve the purpose of recalling past injection information that has been stored, while the “help” field 238 may serve the purpose of providing assistance to the operator in a manner similar to the “help” arrangements found on a typical computer or computer software system.
  • the “protocol” display field 239 and associated touch fields 240 , 242 may serve the purposes of the identification, storage and recall of user-defined (saved) injection programs or (factory) pre-loaded programs.
  • a “pause” arrangement is also contemplated in accordance with at least one presently preferred embodiment of the present invention.
  • a “pause” phase would essentially be similar to a “hold” phase in that it would represent a user-selected and programmed period of time in which no programmed injection of contrast medium or flushing medium is taking place. However, it would differ from a “hold” phase in the respect that it could essentially be a preprogrammed “hold” of limited duration that ends with an automatic transition to the next infusion phase (if any) in the protocol, whereas a “hold” phase would be of indefinite duration, with the protocol only to be reactivated by a manual prompt from the operator.
  • “pause” phases have been known in conjunction with CT imaging arrangements, they are apparently not known in conjunction with MR imaging arrangements.
  • inventive arrangements described hereinabove afford a degree of flexibility and versatility in programming an injection protocol than apparently has been hitherto realized.
  • One distinct advantage inherent in such arrangements is their adaptability to foreseeable changes in the injection arts that may occur in the future, such as the development of new contrast media or increases in the efficiency of imaging scanners, For instance, it is conceivable that a different type of contrast medium might necessitate its injection into a patient via a much different protocol than might now normally be used with existing contrast media. Increases in imaging speed might also result in the need for vastly different types of protocols than are available on conventional equipment at present.
  • an entire protocol including short bolus, hold and remaining injection
  • the injector can reserve the flushing medium that is needed for an entire protocol and can alert the operator, before an injection commences, as to insufficient fluid volume.
  • the protocol can shut off flow in a “KVO” state automatically in order to preserve any necessary flushing medium for a subsequent pre-programmed flushing phase.
  • phase any type of phases, especially contrast medium and flushing medium phases, have essentially been described hereinabove as being linear in nature (i.e., having a fixed flowrate over the duration of the phase), it should be understood that the present invention also broadly contemplates the programming and execution of phases that are not linear in nature.
  • a contrast medium or flushing medium phase could represent a non-linear function, in which the flowrate could possibly be variable over the duration of the phase and could be programmed in by means of an equation, lookup table or other suitable arrangement.
  • KVO it is even conceivable that short “bursts” of flushing medium could be emitted at a variable rate instead of a fixed rate.
  • syringes have been specifically contemplated hereinabove for use in injection protocols, as a means for storing and administering contrasting medium or flushing medium, it is to be understood that other arrangements for this purpose are conceivable within the scope of the present invention, such as, for example, the use of peristaltic pumps.
  • FIG. 7 schematically illustrates a scheme of illumination in association with a pair of syringes 440 , 442 .
  • Syringes 440 , 442 may, for the purposes of illustration, substantially correspond to syringes or injectors for containing contrast medium and flushing medium, respectively, substantially as described heretofore.
  • Each syringe 440 , 442 may have a corresponding illumination element 440 a , 442 a , respectively.
  • the illumination elements 440 a , 442 a may be configured as to provide an indication of a status or condition associated with each syringe 440 , 442 , so as to allow for the visual assessment of such a status or condition from a distance
  • the illumination elements 440 a , 442 a could be configured for issuing light of different colors (e.g. green light for contrast medium and blue light for flushing medium) to permit one to easily distinguish between the two syringes.
  • Illumination elements 440 a / 442 a could assume different states depending on system status (e.g. “flashing” for “armed” status, “steady” [illumination] for “injection” status and “off” for “disarmed” status.)
  • FIGS. 8-20 relate to modified touch screens in accordance with at least one presently preferred embodiment of the present invention.
  • touch screen arrangement 500 may permit for the display of a display field 510 corresponding to the available quantity of contrast medium and a variable column 512 of touch fields for indicating the status of one or more phases that may be employed. Included also are a variable column 514 of touch fields relating to flowrate, a variable column 516 of touch fields relating to volume, and a display field 520 corresponding to the available quantity of flushing medium. Display fields 510 , 520 could also be touch fields. Iconography 520 a , adapted to appear and disappear within touch field 520 , could indicate whether a “KVO” state is in effect.
  • FIG. 8 illustrates an “initiation screen” prior to entering a protocol.
  • displays 510 and 520 show that 20 ml of contrast medium are available, as are 100 ml of flushing medium, while, in the protocol columns 514 , 516 , no flow rate has yet been established and a token volume of 1.0 ml of contrast medium is shown.
  • a first phase of contrast medium infusion can be set by activating the uppermost touch field in column 512 , and thence the corresponding entry fields in columns 514 and 516 , followed by entering in the latter two entry fields, respectively, the desired flowrate and desired volume to be administered to the patient.
  • the entry of data can be accomplished when, upon touching on a touch field ( 514 or 516 ), a keypad 560 appears on the screen that allows the entry of specific values in the fields 514 , 516 .
  • the touching of the uppermost field in column 512 may preferably prompt the appearance of a popup selection table 584 (see FIG. 9 ). There, one may select the type of phase desired, particularly, contrast, flush, hold or pause.
  • Field 562 may be configured to convey to the operator a range of parameters that may be used in a given field in column 514 or 516 . For this purpose, it is conceivable to draw attention to the field in question by highlighting it with a distinct color. As shown in FIG. 8 , for example, the topmost field in column 514 is highlighted in black.
  • FIG. 9 illustrates the entry of a protocol involving a contrast phase, a flushing phase and, in addition, a hold phase.
  • the three phases that result are: (1) a phase of contrast medium infusion (15 ml) at 2.0 ml/s; (2) a phase of flushing medium infusion (20 ml) at 2.0 ml/s; and (3) a hold phase similar to that described heretofore.
  • FIG. 9 also illustrates the optional popup selection table 584 that permits a choice, for a given phase, of any of: a contrast phase, a flush phase, a hold or a pause. (The concept of “pause” has also been discussed heretofore.) “Delete” and “cancel” touch fields permit, respectively, erasing the previous entry or removing table 584 altogether
  • duration display field 564 and a total volume display field 566 .
  • duration display field 564 also preferably shows the projected total duration before injection starts
  • volume display field 566 also preferably shows, at that time, the total projected volume to be expended.
  • Display field 566 may also preferably be configured to illustrate the total volume (of both contrast and flushing medium) already delivered.
  • FIGS. 8 and 9 illustrate that three icons (or “status buttons”) 568 , 570 , 572 may be employed.
  • Icon 568 in the shape of a battery, indicates battery level. The number of horizontal bars within icon 568 indicates the useful life of the battery that remains.
  • Icon 570 can serve the function of an indicator for the status of the “check for air” function (e.g., the operator may first check to see if any air exists in the syringes and then activate the “check for air” status button 570 .)
  • Icon 572 can confirm whether a digital interface with a scanner is established (e.g., for information exchange between the injector and scanner or for the transfer of programming and control functionality between the injector and scanner).
  • FIG. 10 illustrates another protocol. Entitled “renals”, the protocol set here involves an exemplary contrast phase and flush phase, as shown, for imaging the renals of a patient. Injection has not yet taken place.
  • an “injection delay” can be entered into a display field 528 by means of a touch field 528 a suited for that purpose.
  • the “injection delay” corresponds to a period of time that elapses between the start of imaging and the start of injection, or, between pushing “start” and the initial “surge” of fluid in an injection procedure.
  • a KVO display field 530 may show the status of “KVO”, particularly, a countdown of the time that remains in such a state.
  • the duration of “KVO” could preferably be capped. Again, the rate, volume and frequency of delivery in “KVO” are fixed ahead of time but it could also be variably programmed by the operator, by any suitable means.
  • the “arm injector” display field 574 and associated touch field 574 a could serve the purpose of arming the injector in a manner to be described further below.
  • the “history” display field 576 with associated touch field 576 a may serve the purpose of recalling past injection information that has been stored.
  • the “protocol” display field 539 and associated touch fields 540 , 542 may serve the purposes of the identification, storage and recall of user-defined (saved) injection programs or (factory) pre-loaded programs.
  • a “reset” touch field 578 could serve to return the touch screen 500 to an initial state, i.e., erase the parameters already entered and permit the operator to begin anew with entering a new protocol.
  • a “setup” touch field 580 enables the user to access the setup screen, thus allowing the user to configure various details of the injection, i.e., language, programmable KVO and other configuration-type setup features,
  • a “help” touch field 582 could function similarly to the “help” touch field 238 discussed previously.
  • FIGS. 11-20 illustrate different aspects of another protocol.
  • the protocol has been given a name (“Dr. Smith's Study”), as shown in field 539 .
  • Dr. Smith's Study a protocol that has been given a name (“Dr. Smith's Study”), as shown in field 539 . It should thus be appreciated that specific protocols may be selectively stored and recalled, in order to ensure that an operator does not need to constantly reenter parameters for the same protocol if a protocol is to be repeated on several different occasions.
  • the touch screen arrangement will preferably be configured to produce, on certain occasions and in certain forms, a facsimile of the “screenshot” of the touch screen arrangement 500 , or at least a portion of such a screenshot, corresponding to the full set of phases for a given protocol, to thus allow a user to quickly and easily identify with one protocol or another by recognizing its general outward appearance, or “pattern”.
  • a five-phase protocol has been called up, involving a contrast phase (1.0 ml at 1.0 ml/s), a flush phase (15.0 ml at 1.0 ml/s), a hold phase, a second contrast phase (10.0 ml at 3.0 ml/s) and a second flush phase (20.0 ml at 3.0 ml/s).
  • “arming” the injection apparatus can be accomplished with the “arm injector” fields 574 / 1574 a discussed previously.
  • touch field 574 a may initially state “Arm” (see FIG. 10 )
  • touching that touch field will preferably prompt the appearance of display field 586 and touch fields 588 , 590 , as shown.
  • Touch fields 588 , 590 respectively, permit the operator to indicate whether a single injection or multiple injections, which is a repeat injection of the same protocol, are to be used.
  • Display field 586 will preferably indicate which of the two aforementioned options (i.e., “single” or “multi”) is in effect. Whereas FIG. 11 shows that “single”has been chosen, FIG. 12 (otherwise essentially the same view as FIG. 11 ) shows that “multi” has been chosen.
  • FIG. 13 illustrates the appearance of a “query” button in column 512 , thus permitting the operator to subsequently enter a new phase.
  • FIG. 14 is essentially the same view as FIG. 13 , but shows that a “pause” phase 592 has replaced the “hold” phase.
  • a “pause” phase could represent a discrete, finite period of interruption that is predetermined.
  • FIG. 15 is essentially the same view as FIG. 13 , but shows a mode similar to that illustrated by FIG. 8 , that is, an “entry” mode in which a given “protocol” field (in this case, the uppermost “flow rate” field in column 514 ) is highlighted as being “ready” for the entry of a new value.
  • a display field 562 here indicating parameter limits.
  • FIG. 16 is essentially the same view as FIG. 13 but conveys a state in which KVO is paused and an injection delay is taking place, prior to the start of the five protocol phases.
  • the “protocol” fields in columns 514 and 516 may be highlighted, perhaps with muted colors, and a display field 594 may appear to indicate that an injection delay is indeed taking place. Because the entire injection apparatus is now in an “active” mode, field 574 a may now display a suitably highlighted “stop button” (perhaps in red with white lettering) that would permit the operator to abort the procedure before the first contrast phase begins.
  • the operator may be apprised of the actual stage of the procedure being undertaking by suitably highlighting the “injection delay” field 528 as shown and indicating the time left in the injection delay.
  • the “protocol” fields in columns 514 and 516 , as well as hold field 544 may be in somewhat muted colors
  • the “injection delay” field 528 may now be somewhat more bold in appearance, perhaps with a dark border as shown and with dark lettering on a bright background in the field itself.
  • FIGS. 17, 18 and 19 illustrate the possible status of touch screen 500 at various stages of the injection protocol being employed.
  • a similar highlighting principle is utilized for such stages as for the “injection delay” stage as just described, that is, a field or fields relating to the actual stage or phase being undertaken is/are preferably highlighted in a manner that clearly indicates to the operator what is taking place.
  • FIG. 17 illustrates the possible status of touch screen 500 during the hold phase.
  • the “hold” field 544 is highlighted with a dark border and dark lettering on a bright background.
  • the phases already undertaken, on the other hand, are depicted in muted tones, while those that have not yet been undertaken preferably bear the “base” tones such as those depicted in FIG. 13 .
  • Display field 594 preferably indicates that the hold phase is in effect.
  • the syringe-shaped display fields 510 , 520 preferably indicate visually the depletion of their respective reservoirs, both numerically and (via changing the relative shading within each field) graphically.
  • FIG. 18 illustrates that the second phase (in this case, a flushing phase) is in effect, via highlighting the appropriate fields in columns 512 , 514 and 516 , as well as the syringe-shaped display field 520 . Also indicated, via field 594 , is the fact that a temporary hold has been imposed within the actual phase itself. An operator may choose to do this, for instance, if a patient is experiencing discomfort and, e.g., needs to reposition the tubes, etc., that are delivering the flushing medium.
  • FIG. 19 illustrates that the third phase (in this case, a contrast phase) is about to be in effect and that a scan delay (defined previously) is in effect.
  • field 528 indicates a scan delay via the type of highlighting described previously.
  • FIG. 20 illustrates what may occur once the entire protocol is completed.
  • a summary pop-up screen 596 may appear that provides various types of information on the phases of the protocol and of various parameters relating to it.
  • a further touch field may be provided within the pop-up screen to permit the operator to complete the entire process by stopping “KVO”.
  • FIG. 21 illustrates a “recall” feature in accordance with an embodiment of the present invention.
  • touch screen arrangement 500 may be adapted to display a series of touch fields 950 that variously correspond to different stored protocols.
  • additional space may be provided, such as in a column 960 , to accommodate additional touch fields similar to the touch fields 950 .
  • display field 1000 (or “recall field”) 1000 contains a representation of the two phases used in the “renals” protocol discussed and illustrated heretofore, though in this case the representation of the phases does not include manipulable touch fields as would otherwise be the case in a “live” screen corresponding to the “renals” protocol (such as shown in FIG. 10 ).
  • the capability is provided of being able to visually verify whether a protocol selected by one of the buttons 950 is indeed the protocol desired. At that point, if the operator wishes to execute the protocol, or at least enter a “live” screen corresponding to it for the purpose of editing it, he or she may then press the “OK”touch field (or the like) in order to switch to a “live” touch screen. Alternatively, the “recall field” capability could be exploited if the operator simply wishes to briefly review the makeup of various protocols.
  • infusion and “injection”, and their grammatical derivations, are to be construed as being interchangeable and are meant to refer to essentially any of a wide range of arrangements for introducing fluid into a patient.

Abstract

A fluid injection system includes an injector comprising a drive mechanism and an illumination device, a fluid container operably associated with the drive mechanism, and a control device operably associated with the drive mechanism. The control device comprises a computer screen having at least one element affiliated with the illumination device. The illumination device and the at least one element emit light of the same color. Further, a method of operating an injector system providing visual stimuli corresponding to a programmed injection protocol includes perceiving visual stimuli provided by an injector or a control device of the injector system, recognizing a pattern provided by the visual stimuli, correlating the recognized pattern to the programmed injection protocol, determining whether the programmed injection protocol is a desired injection protocol, and initiating the programmed injection protocol, if it is determined that the programmed injection protocol is the desired injection protocol.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application is a continuation of application Ser. No. 09/715,330, filed on Nov. 17, 2000, now U.S. Pat. No. 6,643,537, which is continuation-in-part of application Ser. No. 09/365,278, filed on Jul. 30, 1999, now U.S. Pat. No. 6,339,718, the contents of which are hereby incorporated by reference.
  • OTHER RELATED PENDING APPLICATIONS
  • This application is related to pending application Ser. No. 09/941,224, filed on Aug. 28, 2001, and to pending application Ser. No. 10/309,413, filed on Dec. 3, 2002.
  • BACKGROUND OF THE INVENTION
  • The present invention generally relates to powered injectors and syringes for use therewith, and more particularly, to methods and apparatus for automatically controlling the same.
  • A number of injector-actuated syringes and powered injectors for use in medical procedures such as angiography, computed tomography, ultrasound and NMR/MRI have been developed. U.S. Pat. No. 4,006,736, for example, discloses an injector and syringe for injecting fluid into the vascular system of a human being or an animal. Typically, such injectors comprise drive members such as pistons that connect to a syringe plunger. For example, U.S. Pat. No. 4,677,980, discloses an angiographic injector and syringe wherein the drive member of the injector can be connected to, or disconnected from, the syringe plunger at any point along the travel path of the plunger via a releasable mechanism. A front-loading syringe and injector system is also disclosed in U.S. Pat. No. 5,383,858.
  • U.S. Pat. No. 5,494,036 discloses a patient infusion system adapted for use in MRI. The infusion system is designed to be substantially non-reactive with the magnetic field generated by the magnetic resonance imaging system for producing diagnostic images.
  • Medrad has also developed a control arrangement (“SPECTRIS”) for an MRI infusion system that uses two syringes, namely, one for the introduction of contrast medium into a patient and the other for a flushing medium. As is known conventionally, it is often desirable to flush from the tubing of an infusion system a residual quantity of contrast medium that remains there after a given infusion procedure, as contrast medium tends to be expensive and its efficient use, without waste, is often seen as a top priority. The “SPECTRIS” control arrangement will thus not only account for the residual contrast medium left in the tubing, and aim to use it in an infusion procedure, but will utilize a much cheaper flushing medium, such as a saline solution, in order to serve the purpose of pushing the residual contrast medium through the tubing and even through the patent's body (so as to “push” and deliver contrast medium to a region of interest in the body). Other advantageous purposes have also been recognized in connection with such flushing media, such as maintaining a flow through the patient's veins for a predetermined period of time in order that the veins will be better prepared to subsequently receive a new infusion of contrast medium.
  • The “SPECTRIS” control arrangement is a pre-programmable arrangement for establishing a precise protocol for the infusion of contrast medium followed by flushing medium. At the time that the “SPECTRIS” system was established, needs in the industry were generally such that only some very simple protocols were desired. Thus, the “SPECTRIS” system addressed such needs by permitting protocols in which one or two “phases” of contrast medium took place followed by zero, one or two “phases” of flushing medium infusion. “Phase” refers to the application of a given quantity of a given medium at, for example, a fixed flowrate for a fixed period of time. Thus, up to two phases each of contrast medium and flushing medium, for example, were permitted by the “SPECTRIS” system, in order to provide a patient with different modes of infusion one after the other to serve particular purposes.
  • Of late, however, some disadvantages have been noted in connection with the “SPECTRIS” control system and other related systems. Not the least of these is the lack of flexibility in developing and administering infusion protocols to a patient, as the “SPECTRIS” system would allow no more than two distinct phases for each medium, and no single phase of flushing medium infusion could take place between two different phases of contrast medium infusion.
  • A further disadvantage has been recognized in that the aforementioned phases will typically be administered one after the other without the opportunity for an intermediate pause or hold between phases. This would appear to limit the convenience and utility of the system in question in many respects.
  • Nemoto and Co., Ltd., of Tokyo, Japan has also developed a control system for an MR injector. However, this appears to be even less flexible than the “SPECTRIS” system in that only protocols consisting of no more than one contrast medium infusion and no more than one flushing medium infusion appear to be permitted.
  • In the realm of CT (computed tomography) injection technology, Medrad has developed the “ENVISION” control system. As flushing media have generally not been hitherto employed in CT injector systems, the “ENVISION” system, much as any conventional CT injector control system, contemplates only the use of a single syringe for patient infusion, and solely for use with contrast medium. The “ENVISION” system permits protocols that employ up to eight different phases of contrast medium infusion, wherein each phase may employ a different infusion flowrate, infusion quantity and/or infusion duration. Pre-programmed pauses between infusion phases are also conceivable within such a context.
  • Evolving needs have thus been recognized in connection with providing an injection control system that is much more readily adaptable to a wider range of contexts.
  • SUMMARY OF THE INVENTION
  • Generally, at least one presently preferred embodiment of the present invention broadly contemplates a fluid injection arrangement, in the context of patient imaging systems, in which phases of contrast medium injection and flushing medium injection can be freely and selectably ordered so as to make available to the operator and patient a vast array of possible protocols that has hitherto been essentially unattainable.
  • The present invention also broadly contemplates the use of a “hold” phase, involving an indefinite pause between phases of a protocol, in connection with such imaging systems. One advantage of a “hold” phase is that it permits some time for the operator to render supplementary judgnents, following the administration of the phase(s) before the “hold”, that could be of value when administering the phase(s) that occur(s) after the “hold”. For example, the “hold” phase could permit an operator to alter the parameters for the phases not yet undertaken.
  • In addition, the present invention broadly contemplates the use of “pattern recognition,” through recognizing a graphical or iconic pattern of words, numbers, geometric shapes, and possibly other visual stimuli that in sum correspond to a given protocol, to permit an operator to quickly and efficiently recognize the makeup of a given protocol.
  • In one aspect, the present invention provides an apparatus and method for operating an injector providing stimuli corresponding to an injection protocol. The method includes perceiving the stimuli, recognizing a pattern provided by the stimuli, correlating the recognized pattern to the injection protocol, and interacting with the injector based on the recognized pattern.
  • The stimuli provided by the injector may, in a preferred embodiment of the present invention, comprise visual stimuli including, but not limited to, words, numbers, shapes and colors.
  • Also broadly contemplated herein is the use of a “pause” phase in which a pause of fixed duration is pre-programmed into the protocols of MRI injector systems.
  • In further summary, at least one presently preferred embodiment of the present invention broadly embraces fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to: selectively program a plurality of phases of an injection procedure, at least one phase comprising one of: a contrast medium phase, a flushing medium phase, a pause phase and a hold phase; and selectively modify at least one phase of the injection procedure.
  • In addition, at least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein at least one of the fluid containers includes an illumination element; and wherein the control device includes at least one element affiliated with the illumination element.
  • Additionally, at least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to: selectively program a plurality of phases of an injection procedure, at least one phase comprising one of: a contrast medium phase, a flushing medium phase, a pause phase and a hold phase; produce, during programming, a graphical display indicating at least the phases; and selectively recreate a facsimile of the graphical display at a subsequent time.
  • Furthermore, at least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to selectively program a plurality of phases of an injection procedure, at least one phase comprising one of: a contrast medium phase and a flushing medium phase; wherein the control device is further operable to selectively establish and control a KVO state independently from the programming of any of the phases.
  • Moreover, at least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to selectively program a plurality of phases of an injection procedure; at least one phase comprising one of: a contrast medium phase and a flushing medium phase; at least one phase comprising a hold phase.
  • Additionally, at least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to selectively program a plurality of phases of an injection procedure, at least one phase comprising one of: a contrast medium phase, a flushing medium phase, a pause phase and a hold phase; the control device further being operable to selectively store a protocol comprising a plurality of the phases and selectively recall the protocol at a subsequent time for use in an injection procedure.
  • Furthermore, at least one presently preferred embodiment of the present invention broadly embraces a fluid injection apparatus comprising: at least one drive mechanism; at least two fluid containers operably associated with the at least one drive mechanism, one fluid container containing a contrast medium and the other fluid container containing a flushing medium; and a control device operably associated with the at least one drive mechanism; wherein the control device is operable to selectively program a plurality of phases of an injection procedure; at least one phase comprising one of a contrast medium phase and a flushing medium phase; at least one phase comprising a pause phase.
  • Numerous other objects and advantages of the present invention will be apparent from the following drawings and detailed description of the invention and its preferred embodiments.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The present invention and its presently preferred embodiments will be better understood by way of reference to the detailed disclosure herebelow and to the accompanying drawings, wherein:
  • FIG. 1 is a schematic depiction of a conventional magnetic resonance imaging (MRI) injector system arrangement;
  • FIG. 2 is a pictographic depiction of a conventional MRI injector system arrangement;
  • FIGS. 3-6 are various depictions of a control screen arrangement for use with different protocols;
  • FIG. 7 is a schematic depiction of syringes with illumination elements;
  • FIGS. 8 and 9 are depictions of a control screen arrangement for use with another protocol;
  • FIG. 10 is a depiction of a control screen arrangement for use with a further protocol; and
  • FIGS. 11-20 are depictions of control screen arrangements for use with yet another protocol.
  • FIG. 21 is a depiction of a control screen arrangement permitting the recall of any of a number of different protocols.
  • DETAILED DESCRIPTION OF THE INVENTION
  • FIGS. 1 and 2 generally illustrate a conventional MRI injector system arrangement, such as is disclosed in U.S. Pat. No. 5,494,036 to Uber et al, the contents of which are incorporated herein by reference. A magnetic resonance injector system is shown generally at 10. The MRI system includes a system controller 12, which incorporates a computer 14 and a battery-charging unit 16. The system controller 12 is located externally of the imaging room 17, the imaging room being shielded from electromagnetic interference by a shield 18.
  • Isolation can be achieved by completely enclosing the room with copper sheet material or some other suitable, conductive layer such as wire mesh. Communication line 20, connects the system controller 12 with an external infrared/optical communications transceiver 22. The shielded imaging room 17 also incorporates a patient viewing window 24 in the shield 18 which allows an operator to view the imaging room. The window 24 can be formed by sandwiching a wire mesh material (not shown) between sheets of glass or coating the window with a thin coating of conductive material such as gold (not shown) to maintain the continuity of the electromagnetic shield 18.
  • An infrared/optical communications transceiver 26 is positioned internally of the imaging room 17 at the viewing window 24 opposite the external communications transceiver 22 such that the internal and external communications transceivers communicate with each other through the viewing window with no breach of the electromagnetic shield. A communications link 28 located within the shielded area connects the internal infrared/optical transceiver with an injection control unit 30. The injection control unit 30 is powered advantageously by rechargeable battery 32. The injection control unit 30 also incorporates control circuitry that controls electric motors 35, 36 that are also located within the injection control unit. The injection control unit is contained within an electromagnetic shield 37 to prevent interference with the magnetic field used to generate the magnetic resonance image.
  • The injection head unit should preferably be located in close proximity to the patient in order to decrease the distance that the contrast media fluid must travel from the contrast media injectors. The injection head unit 38 includes contrast media injection syringe and piston units 40, 42. The syringes 40, 42 are in operation communication with the electric motors in the injection control unit by flexible mechanical drive shafts 44, 46, respectively. The drive shafts are preferably made from a nonferrous metal such as hard brass.
  • The disclosure now turns to an embodiment of the present invention, as illustrated in FIGS. 3-6, that could conceivably be employed in connection with a MRI injector system such as that shown in FIGS. 1 and 2 or with any other of a wide range of MR, CT, angiographic or ultrasound injector systems. These possible uses of at least one embodiment of the present invention are elucidated in greater detail herebelow.
  • Shown schematically in FIGS. 3-6 are various incarnations of a touch screen arrangement 200 that could be employed in accordance with at least one presently preferred embodiment of the present invention. As a non-restrictive example, such a touch screen arrangement could be utilized in conjunction with a system controller 12 and computer 14 such as that described and illustrated hereinabove with respect to FIGS. 1 and 2. While a touch screen arrangement is contemplated in connection with FIGS. 3-6, it is to be understood that other types of data entry arrangements are conceivable that would achieve an equivalent purpose. Display fields 210, 220 could also be touch fields used for desired purpose. For example, soft or hard key entry could be used, as well as trackball arrangements, mouse arrangements, or a cursor control touch pad (remote from the screen).
  • As shown in FIG. 3, touch screen arrangement 200 may permit for the display of a display field 210 corresponding to the available quantity of contrast medium, a variable column 212 of touch fields for facilitating the entry of control parameters relating to contrast medium, a variable column 214 of touch fields relating to flowrate, a variable column 216 of touch fields relating to volume, a variable column 218 of touch fields for facilitating the entry of control parameters relating to flushing medium and a display field 220 corresponding to the available quantity of flushing medium. Display fields 210, 220 could also be touch fields used for a desired purpose.
  • The term “contrast medium”, as employed herein, refers to essentially any suitable type of medium, as used in the medical arts, that is injected into a patient and, in the context of an imaging process (such as MR, angiography, ultrasound or CT), facilitates in highlighting selected areas of the patient's body while he/she is being scanned. In addition, the term “contrast medium”, as employed herein, also refers to other diagnostic or therapeutic agents for injection into patients. The term “flushing medium”, as employed herein, refers to essentially any suitable type of medium, such as a saline solution, that can be used to flush contrast medium from the tubing of an infusion system and that is well-suited for flowing through the patient's body so as to serve a useful supplementary purpose, such as keeping his/her veins open in preparation for another infusion of contrast medium.
  • As will be appreciated throughout this disclosure, the touch screen arrangement 200 is preferably configured for permitting the operator to freely and flexibly incorporate phases of contact medium infusion and phases of flushing medium infusion with respect to one another in a manner that has hitherto apparently not been contemplated nor realized. (A definition of “phases” may be found in the “Background” section of this disclosure). Further, the present invention also broadly contemplates, in accordance with at least one presently preferred embodiment, optional “hold” and “pause” phases as discussed herebelow.
  • Accordingly, FIG. 3 illustrates one conceivable protocol that may be entered in accordance with an embodiment of the present invention. As shown, displays 210 and 220 show that 50 ml of contrast medium are available, as are 83 ml of flushing medium. Also, the operator has selected the provision of two phases of contrast medium followed by one phase of flushing medium.
  • Preferably, the first phase of contrast medium infusion will have been set by activating the touch field 1 in column 212, followed by activating the corresponding entry fields in columns 214 and 216 and entering in them, respectively, the desired flowrate and desired volume to be administered to the patient. The entry of data can be accomplished by touching on a touch field (214 or 216), which could prompt the appearance of a keypad on the screen that would allow the entry of specific values in the fields 214, 216.
  • As shown, a second phase of contrast medium infusion has also been set in similar manner, but this time by activating touch field 2 in column 212, followed by activating the corresponding entry fields in columns 214 and 216 and again entering in them, respectively, the desired flowrate and volume.
  • For the third phase, as shown in FIG. 3, the operator has selected a flushing medium infusion phase, this time by activating touch field 3 in column 218 and then entering the desired flow rate and volume parameters in the corresponding fields in columns 214 and 216.
  • The result is a three-phase protocol that will result in the administration of: (1) a first phase of contrast medium infusion (10 ml ) at 2.0 ml/s; (2) a second phase of contrast medium infusion (20 ml) at 1.0 ml/s; and (3) a phase of flushing medium infusion (25 ml) at 1.0 ml/s. Such a protocol might be desirable, for example, when it is desired that a patient first receive a first, quick infusion of contrast medium of smaller volume (i.e., a bolus of contrast medium) so as to accentuate (for imaging purposes) a small, particularized part of the body where such an infusion may be desirable, followed by a second, slower infusion of contrast medium of larger volume (e.g., a trickle or drip of contrast medium) that would be of use in a part of the body where a faster flowrate might not be needed. An example of such a part of the body may be (e.g., peripheral vascular regions of the legs). The flushing phase, then, could subsequently be utilized for purposes such as those described heretofore.
  • In a preferred embodiment of the present invention, touch screen arrangement 200 may be so configured as to display only those data entry fields in columns 214, 216 that have been specifically activated by the operator (via activation of corresponding touch fields in columns 212, 218), so that there will be no data fields visible in columns 214, 216 corresponding to phases that are not to be used for a given protocol Thus, FIG. 3 shows that no data fields are visible in columns 214, 216 in correspondence with a fourth phase, since only three phases are being employed. Further, there will only preferably be one touch field in columns 212 and 218 visible beyond the number of phases that has already been chosen by the operator Thus, as shown in FIG. 3, three phases have been entered and the touch fields 4 in columns 212 and 218 are visible in preparation for possible activation of a fourth phase by the operator. In the meantime, a suitable icon 222 (preferably having use in connection with a “hold” phase, as described later) may be provided in place of the absent data entry fields in columns 214 and 216. Accordingly, it will also preferably be the case that, prior to the activation of any phases at all, at an introductory stage of the process, no touch fields in columns 212-218 will be visible at all except for the touch fields 1 in the first row.
  • As shown, the incrementally emerging data fields in columns 214 and 216 may assume different shades, in correspondence with the type of phase being employed. Thus, in the embodiment illustrated in FIG. 3 (as well as FIGS. 4-6), the data entry fields assume a darker shade in correspondence with a contrast medium infusion phase, while they assume a lighter shade in correspondence with a flushing medium infusion phase. Further, the numbered touch fields in columns 212 and 218 may each preferably assume a corresponding shade in accordance with their being individually activated. Thus, fields 1 and 2 in column 212 are shaded in correspondence with their having been activated in the process of setting up two contrast medium infusion phases (following from their proximity to display field 210, which corresponds to contrast medium), while field 3 in column 218 is shaded in correspondence with its having been activated in the process of setting up a flushing medium infusion phase. In contrast, neither of the fields 4 in columns 212, 218 is shaded since neither has been activated to set up a phase of any sort.
  • The concept of incrementally emerging data fields in columns 214, 216, as discussed above, helps illustrate the flexibility and versatility afforded in accordance with at least one presently preferred embodiment of the present invention. Particularly, in the embodiment illustrated in FIG. 3, data fields emerge only to the extent that they are needed and can apply to either a contrast medium infusion phase or a flushing medium infusion phase at the behest of the operator. Such an arrangement would appear to stand in stark contrast to those conventional arrangements, such as the “SPECTRIS” arrangement described heretofore, in which the order of phases is comparatively fixed and inflexible. It should be appreciated that the presently contemplated arrangement also serves to reduce operator confusion and promotes the rapid visualization of important information.
  • Also illustrated in FIG. 3, inter alia, are a duration display field 224 and a total volume display field 226. These preferably will serve as, respectively, a clock of elapsed time that starts from zero and spans the duration of the totality of the phases that have been entered and an indicator of the total volume of fluid (destined for the patient) that has been expended over the totality of the phases. As shown in FIG. 3, duration display field 24 also preferably shows the projected total duration before injection starts, and volume display field 226 also preferably shows, at that time, the total projected volume to be expended.
  • FIGS. 4-6 serve to further illustrate the versatility and flexibility afforded in accordance with at least one presently preferred embodiment of the present invention. Reference numerals in those figures relate to similar components referenced by similar numerals in FIG. 3.
  • In the protocol shown in FIG. 4, the operator has chosen a first phase of contrast medium infusion, followed by a first phase of flushing medium infusion, followed by a second phase of contrast medium infusion, finally followed by a second phase of flushing medium infusion.
  • FIG. 5 illustrates a different protocol, but this time involving six phases. 10 Particularly, the six phases illustrated are two separate contrast medium phases, followed by a flushing medium phase, followed again by two distinct contrast medium phases, finally followed by a flushing medium phase.
  • Finally, FIG. 6 illustrates a protocol involving a distinct “hold” phase in accordance with an embodiment of the present invention. As shown here, the operator has selected a contrast medium phase followed by a flushing medium phase. However, the operator has also now selected a “hold” phase, indicated at 244, in which, for an indefinite period of time (possibly capped automatically for safety reasons), the regulated administration of fluids will cease, unless “KVO” (described below) is desired. The “hold” phase may be activated on touch screen arrangement 200 pressing on icon 222, which would then produce a “hold” display field 244 that spans both columns 214, 216. The “hold” phase is then followed by a second contrast medium phase and a second flushing medium phase.
  • The value of including a “hold” phase is that it permits some time for the operator to render supplementary judgements, following the administration of the phase(s) before the “hold”, that could be of value when administering the phase(s) that occur(s) after the “hold”. As an example, and as can be appreciated from the protocol shown in FIG. 6, the operator may wish to first infuse a short bolus of contrast medium not for imaging purposes but for the purpose of determining the length of time (by any suitable means) that the bolus requires in order to reach a given target area in the patient's body. Once a flushing phase is completed, the “hold” may then take effect. During the “hold”, the imaging scanner (not shown here) could be programmed to delay its imaging action for a period of time that corresponds to the “delay” that the “short bolus” required in order to reach the target area of the body. In turn, the scan delay (i.e., the length of time that the scanner could “wait” before imaging the target area of the body) can be entered into a display field 228 by means of a touch field 228 a suited for that purpose. Additionally, the operator may alter the parameters for the flowrate or volume for the phases not yet undertaken if observations undertaken during (or information derived from) the short bolus warrants changing such parameters.
  • When the time comes to administer the second contrast medium phase, the resulting bolus will be permitted to pass through the patient's system for a length of time corresponding to the “scan delay” before the scanner, conceivably prompted automatically via the scan delay clock in field 228 or perhaps manually by the operator (for example, upon hearing an audible signal), itself is activated as to image the target area of the patient.
  • It should be appreciated that among the advantages of the “hold” function are the elimination of operator interaction, as well as time savings, through eliminating the initial programming of a second injection phase. Additionally, an entire “short bolus” phase and subsequent standard injection phase may be stored and recalled as a “composite” injection type (see additional discussion further below), thus providing for rapid programming and reducing the chances of operator error. Furthermore, the hold function permits the optimization of the parameters of subsequent injections, thereby allowing for the improvement of overall image quality.
  • Other touch fields and display fields may be provided within touch screen arrangement 200. As shown in FIGS. 3-6, a KVO (“keep vein open”) display field 230 may show the status of “KVO”, that is, whether there is a circulation of flushing medium (either continuously or in small intermittent bursts) in the patient's system for the purpose of maintaining a flow of some type in his/her veins and perhaps to show a countdown of the time remaining in such a state. The duration of “KVO” could preferably be capped, in correspondence with the actual quantity of flushing medium available (minus the flushing medium required for any subsequent flushing medium phase), automatically by the control system. Thus, automatic shutoff could take place when the reservoir of available flushing medium has decreased to a point at which, with further depletion, there would not be a sufficient amount of flushing medium for a subsequent flushing medium phase or phases. It will be appreciated that “KVO” is not so much a flushing phase per se but instead is a “maintenance” phase in which the patient's veins are maintained in a relatively open state in preparation for the subsequent administration of contrast medium, or possibly even for other reasons. “KVO” could thus well take place during a “hold” phase so that, for example, the patient's veins could remain relatively open and free while the aforementioned intermediate calculations, etc., are taking place. Normally, the rate, volume and frequency of delivery in “KVO” are fixed ahead of time but it could also be variably programmed by the operator, by any suitable means.
  • The “arm injector” display field 232 and associated touch fields 232a and 232 b serve the purpose of arming the injector and initiating the start of injection.
  • On the other hand, the “display screen” display field 234 and associated touch fields 234 a and 234 b serve the purpose of accessing any configuration (set-up) information such as language (e.g., English, German, French, Japanese, etc.) or KVO parameters or for reset (e.g. zeroing) of the screen.
  • The “history” display field 236 may serve the purpose of recalling past injection information that has been stored, while the “help” field 238 may serve the purpose of providing assistance to the operator in a manner similar to the “help” arrangements found on a typical computer or computer software system.
  • Finally, the “protocol” display field 239 and associated touch fields 240, 242 may serve the purposes of the identification, storage and recall of user-defined (saved) injection programs or (factory) pre-loaded programs.
  • Although the present invention, in accordance with at least one presently preferred embodiment, has been described hereinabove primarily in connection with an MR injector system, it is to be understood that other applications are possible without departing from the spirit and scope of the invention in general. For example, while it is known that CT, angiographic and ultrasound injectors to date have generally utilized only a single syringe, containing contrast medium, for administering solely contrast medium to a patient, the present invention broadly contemplates the use of two syringes in such environments —one for contrast medium and the other for flushing medium. Thus, it is contemplated that the present invention, in accordance with at least one presently preferred embodiment, could be utilized in such a context in that the operator could administer a protocol involving essentially any desired order of contrast medium and flushing medium phases.
  • A “pause” arrangement is also contemplated in accordance with at least one presently preferred embodiment of the present invention. A “pause” phase would essentially be similar to a “hold” phase in that it would represent a user-selected and programmed period of time in which no programmed injection of contrast medium or flushing medium is taking place. However, it would differ from a “hold” phase in the respect that it could essentially be a preprogrammed “hold” of limited duration that ends with an automatic transition to the next infusion phase (if any) in the protocol, whereas a “hold” phase would be of indefinite duration, with the protocol only to be reactivated by a manual prompt from the operator. Although “pause” phases have been known in conjunction with CT imaging arrangements, they are apparently not known in conjunction with MR imaging arrangements.
  • It should be appreciated that the inventive arrangements described hereinabove afford a degree of flexibility and versatility in programming an injection protocol than apparently has been hitherto realized. One distinct advantage inherent in such arrangements is their adaptability to foreseeable changes in the injection arts that may occur in the future, such as the development of new contrast media or increases in the efficiency of imaging scanners, For instance, it is conceivable that a different type of contrast medium might necessitate its injection into a patient via a much different protocol than might now normally be used with existing contrast media. Increases in imaging speed might also result in the need for vastly different types of protocols than are available on conventional equipment at present.
  • It will be appreciated that the flexibility and versatility achieved in accordance with at least one presently preferred embodiment of the present invention, with the use of an automatic arrangement, far outstrips any flexibility and versatility that might be gained through certain uses of existing injection arrangements. For example, although it is conceivable to employ two or more “SPECTRIS” systems for the purpose of executing a composite protocol, made up of separate protocols from the different systems, that might reflect a higher degree of versatility (e.g., by enabling the execution of a second contrast medium phase after a flushing medium phase), it will be appreciated that such an arrangement would be cumbersome, difficult to manage, and possibly inaccurate, in that one or more operators would need to ensure that one phase on one system starts immediately after another phase on another system. Manual injection is, of course, also possible, even to such an extent that different injections, representing distinctly different contrast medium and flushing medium phases, could be executed one after the other by one or more medical personnel. Again, though, such an arrangement would appear to prone to the potential of great inaccuracy, not only in terms of the timing of the successive injections but also in terms of the flow rates being used and the difficulty in keeping them constant over the duration of each phase (if indeed constant flow rates are desired).
  • Several other advantages would appear to be attainable in accordance with at least one presently preferred embodiment of the present invention. For example, an entire protocol, including short bolus, hold and remaining injection, can be stored and recalled for future use. The injector can reserve the flushing medium that is needed for an entire protocol and can alert the operator, before an injection commences, as to insufficient fluid volume. Moreover, in a multi-phased protocol that includes flushing and has an intermediate “hold” phase, the protocol can shut off flow in a “KVO” state automatically in order to preserve any necessary flushing medium for a subsequent pre-programmed flushing phase.
  • Although a maximum of six phases for one protocol has been described hereabove, it will be appreciated that the present invention broadly contemplates that no maximum on the number of phases in a protocol necessarily need be imposed.
  • Although all types of phases, especially contrast medium and flushing medium phases, have essentially been described hereinabove as being linear in nature (i.e., having a fixed flowrate over the duration of the phase), it should be understood that the present invention also broadly contemplates the programming and execution of phases that are not linear in nature. For example, it is conceivable that a contrast medium or flushing medium phase (and possibly even a “KVO” phase) could represent a non-linear function, in which the flowrate could possibly be variable over the duration of the phase and could be programmed in by means of an equation, lookup table or other suitable arrangement. In the case of “KVO”, it is even conceivable that short “bursts” of flushing medium could be emitted at a variable rate instead of a fixed rate.
  • Although syringes have been specifically contemplated hereinabove for use in injection protocols, as a means for storing and administering contrasting medium or flushing medium, it is to be understood that other arrangements for this purpose are conceivable within the scope of the present invention, such as, for example, the use of peristaltic pumps.
  • As discussed herebelow, some additional refinements are broadly contemplated in accordance with at least one presently preferred embodiment of the present invention.
  • FIG. 7 schematically illustrates a scheme of illumination in association with a pair of syringes 440, 442. Syringes 440, 442, may, for the purposes of illustration, substantially correspond to syringes or injectors for containing contrast medium and flushing medium, respectively, substantially as described heretofore.
  • Each syringe 440, 442 may have a corresponding illumination element 440 a, 442 a, respectively. The illumination elements 440 a, 442 a, may be configured as to provide an indication of a status or condition associated with each syringe 440, 442, so as to allow for the visual assessment of such a status or condition from a distance For instance, the illumination elements 440 a, 442 a, could be configured for issuing light of different colors (e.g. green light for contrast medium and blue light for flushing medium) to permit one to easily distinguish between the two syringes. Illumination elements 440 a/442 a, possibly in combination with corresponding symbols or icons on a computer screen, could assume different states depending on system status (e.g. “flashing” for “armed” status, “steady” [illumination] for “injection” status and “off” for “disarmed” status.)
  • FIGS. 8-20 relate to modified touch screens in accordance with at least one presently preferred embodiment of the present invention.
  • While several components associated with the touch screens illustrated in FIGS. 8-20 are similar to those illustrated in FIGS. 3-6, other new or modified components are also contemplated, as discussed herebelow.
  • As shown in FIG. 8, touch screen arrangement 500 may permit for the display of a display field 510 corresponding to the available quantity of contrast medium and a variable column 512 of touch fields for indicating the status of one or more phases that may be employed. Included also are a variable column 514 of touch fields relating to flowrate, a variable column 516 of touch fields relating to volume, and a display field 520 corresponding to the available quantity of flushing medium. Display fields 510, 520 could also be touch fields. Iconography 520 a, adapted to appear and disappear within touch field 520, could indicate whether a “KVO” state is in effect.
  • Essentially, FIG. 8 illustrates an “initiation screen” prior to entering a protocol. As shown, displays 510 and 520 show that 20 ml of contrast medium are available, as are 100 ml of flushing medium, while, in the protocol columns 514, 516, no flow rate has yet been established and a token volume of 1.0 ml of contrast medium is shown.
  • Preferably, a first phase of contrast medium infusion can be set by activating the uppermost touch field in column 512, and thence the corresponding entry fields in columns 514 and 516, followed by entering in the latter two entry fields, respectively, the desired flowrate and desired volume to be administered to the patient. The entry of data can be accomplished when, upon touching on a touch field (514 or 516), a keypad 560 appears on the screen that allows the entry of specific values in the fields 514, 516.
  • In order to establish the first phase as contrast, the touching of the uppermost field in column 512 may preferably prompt the appearance of a popup selection table 584 (see FIG. 9). There, one may select the type of phase desired, particularly, contrast, flush, hold or pause.
  • Field 562 may be configured to convey to the operator a range of parameters that may be used in a given field in column 514 or 516. For this purpose, it is conceivable to draw attention to the field in question by highlighting it with a distinct color. As shown in FIG. 8, for example, the topmost field in column 514 is highlighted in black.
  • FIG. 9 illustrates the entry of a protocol involving a contrast phase, a flushing phase and, in addition, a hold phase. Thus, the three phases that result are: (1) a phase of contrast medium infusion (15 ml) at 2.0 ml/s; (2) a phase of flushing medium infusion (20 ml) at 2.0 ml/s; and (3) a hold phase similar to that described heretofore.
  • As introduced above, FIG. 9 also illustrates the optional popup selection table 584 that permits a choice, for a given phase, of any of: a contrast phase, a flush phase, a hold or a pause. (The concept of “pause” has also been discussed heretofore.) “Delete” and “cancel” touch fields permit, respectively, erasing the previous entry or removing table 584 altogether
  • Also illustrated in FIGS. 8 and 9, inter alia, are a duration display field 564 and a total volume display field 566. These preferably will serve as, respectively, a clock of elapsed time that starts from zero and spans the duration of the totality of the phases that have been entered and an indicator of the total volume of fluid (destined for the patient) that has been expended over the totality of the phases. As shown in FIGS. 8 and 9, duration display field 564 also preferably shows the projected total duration before injection starts, and volume display field 566 also preferably shows, at that time, the total projected volume to be expended. Display field 566 may also preferably be configured to illustrate the total volume (of both contrast and flushing medium) already delivered.
  • FIGS. 8 and 9 illustrate that three icons (or “status buttons”) 568, 570, 572 may be employed. Icon 568, in the shape of a battery, indicates battery level. The number of horizontal bars within icon 568 indicates the useful life of the battery that remains. Icon 570, embodied as a check mark, can serve the function of an indicator for the status of the “check for air” function (e.g., the operator may first check to see if any air exists in the syringes and then activate the “check for air” status button 570.) Icon 572, on the other hand, embodied as opposing arrows, can confirm whether a digital interface with a scanner is established (e.g., for information exchange between the injector and scanner or for the transfer of programming and control functionality between the injector and scanner).
  • FIG. 10 illustrates another protocol. Entitled “renals”, the protocol set here involves an exemplary contrast phase and flush phase, as shown, for imaging the renals of a patient. Injection has not yet taken place.
  • As shown in FIG. 10, other touch fields and display fields may be provided within touch screen arrangement 500. For instance, an “injection delay” can be entered into a display field 528 by means of a touch field 528a suited for that purpose. The “injection delay” corresponds to a period of time that elapses between the start of imaging and the start of injection, or, between pushing “start” and the initial “surge” of fluid in an injection procedure.
  • A KVO display field 530 may show the status of “KVO”, particularly, a countdown of the time that remains in such a state. As discussed previously, the duration of “KVO” could preferably be capped. Again, the rate, volume and frequency of delivery in “KVO” are fixed ahead of time but it could also be variably programmed by the operator, by any suitable means.
  • The “arm injector” display field 574 and associated touch field 574 a could serve the purpose of arming the injector in a manner to be described further below.
  • The “history” display field 576 with associated touch field 576 a may serve the purpose of recalling past injection information that has been stored.
  • The “protocol” display field 539 and associated touch fields 540, 542 may serve the purposes of the identification, storage and recall of user-defined (saved) injection programs or (factory) pre-loaded programs.
  • A “reset” touch field 578 could serve to return the touch screen 500 to an initial state, i.e., erase the parameters already entered and permit the operator to begin anew with entering a new protocol.
  • A “setup” touch field 580 enables the user to access the setup screen, thus allowing the user to configure various details of the injection, i.e., language, programmable KVO and other configuration-type setup features,
  • A “help” touch field 582 could function similarly to the “help” touch field 238 discussed previously.
  • FIGS. 11-20 illustrate different aspects of another protocol. In this instance, the protocol has been given a name (“Dr. Smith's Study”), as shown in field 539. It should thus be appreciated that specific protocols may be selectively stored and recalled, in order to ensure that an operator does not need to constantly reenter parameters for the same protocol if a protocol is to be repeated on several different occasions. It will be appreciated herebelow that, in this connection, the touch screen arrangement will preferably be configured to produce, on certain occasions and in certain forms, a facsimile of the “screenshot” of the touch screen arrangement 500, or at least a portion of such a screenshot, corresponding to the full set of phases for a given protocol, to thus allow a user to quickly and easily identify with one protocol or another by recognizing its general outward appearance, or “pattern”.
  • As shown in FIG. 11, a five-phase protocol has been called up, involving a contrast phase (1.0 ml at 1.0 ml/s), a flush phase (15.0 ml at 1.0 ml/s), a hold phase, a second contrast phase (10.0 ml at 3.0 ml/s) and a second flush phase (20.0 ml at 3.0 ml/s).
  • Preferably, “arming” the injection apparatus can be accomplished with the “arm injector” fields 574/1574 a discussed previously. Whereas touch field 574 a may initially state “Arm” (see FIG. 10), touching that touch field will preferably prompt the appearance of display field 586 and touch fields 588, 590, as shown. Touch fields 588, 590, respectively, permit the operator to indicate whether a single injection or multiple injections, which is a repeat injection of the same protocol, are to be used.
  • Display field 586 will preferably indicate which of the two aforementioned options (i.e., “single” or “multi”) is in effect. Whereas FIG. 11 shows that “single”has been chosen, FIG. 12 (otherwise essentially the same view as FIG. 11) shows that “multi” has been chosen.
  • FIG. 13 illustrates the appearance of a “query” button in column 512, thus permitting the operator to subsequently enter a new phase.
  • FIG. 14 is essentially the same view as FIG. 13, but shows that a “pause” phase 592 has replaced the “hold” phase. As discussed previously, a “pause” phase could represent a discrete, finite period of interruption that is predetermined.
  • FIG. 15 is essentially the same view as FIG. 13, but shows a mode similar to that illustrated by FIG. 8, that is, an “entry” mode in which a given “protocol” field (in this case, the uppermost “flow rate” field in column 514) is highlighted as being “ready” for the entry of a new value. Thus, there is also a display field 562 here indicating parameter limits.
  • FIG. 16 is essentially the same view as FIG. 13 but conveys a state in which KVO is paused and an injection delay is taking place, prior to the start of the five protocol phases. To indicate this effect, the “protocol” fields in columns 514 and 516, including “hold” field 544, may be highlighted, perhaps with muted colors, and a display field 594 may appear to indicate that an injection delay is indeed taking place. Because the entire injection apparatus is now in an “active” mode, field 574 a may now display a suitably highlighted “stop button” (perhaps in red with white lettering) that would permit the operator to abort the procedure before the first contrast phase begins. On the other hand, the operator may be apprised of the actual stage of the procedure being undertaking by suitably highlighting the “injection delay” field 528 as shown and indicating the time left in the injection delay. Whereas the “protocol” fields in columns 514 and 516, as well as hold field 544, may be in somewhat muted colors, the “injection delay” field 528 may now be somewhat more bold in appearance, perhaps with a dark border as shown and with dark lettering on a bright background in the field itself.
  • FIGS. 17, 18 and 19 illustrate the possible status of touch screen 500 at various stages of the injection protocol being employed. Preferably, a similar highlighting principle is utilized for such stages as for the “injection delay” stage as just described, that is, a field or fields relating to the actual stage or phase being undertaken is/are preferably highlighted in a manner that clearly indicates to the operator what is taking place.
  • Thus, FIG. 17 illustrates the possible status of touch screen 500 during the hold phase. In this case, the “hold” field 544 is highlighted with a dark border and dark lettering on a bright background. The phases already undertaken, on the other hand, are depicted in muted tones, while those that have not yet been undertaken preferably bear the “base” tones such as those depicted in FIG. 13. Display field 594 preferably indicates that the hold phase is in effect. Also, as shown, the syringe-shaped display fields 510, 520 preferably indicate visually the depletion of their respective reservoirs, both numerically and (via changing the relative shading within each field) graphically.
  • FIG. 18 illustrates that the second phase (in this case, a flushing phase) is in effect, via highlighting the appropriate fields in columns 512, 514 and 516, as well as the syringe-shaped display field 520. Also indicated, via field 594, is the fact that a temporary hold has been imposed within the actual phase itself. An operator may choose to do this, for instance, if a patient is experiencing discomfort and, e.g., needs to reposition the tubes, etc., that are delivering the flushing medium.
  • FIG. 19 illustrates that the third phase (in this case, a contrast phase) is about to be in effect and that a scan delay (defined previously) is in effect. Thus, field 528 indicates a scan delay via the type of highlighting described previously.
  • FIG. 20 illustrates what may occur once the entire protocol is completed. Preferably, a summary pop-up screen 596 may appear that provides various types of information on the phases of the protocol and of various parameters relating to it. A further touch field may be provided within the pop-up screen to permit the operator to complete the entire process by stopping “KVO”.
  • FIG. 21 illustrates a “recall” feature in accordance with an embodiment of the present invention. As shown, touch screen arrangement 500 may be adapted to display a series of touch fields 950 that variously correspond to different stored protocols. As shown, additional space may be provided, such as in a column 960, to accommodate additional touch fields similar to the touch fields 950.
  • Preferably, by touching one of the touch fields 950, the appearance of a display field 1000 will be prompted, and this display field preferably provides, for the operator's quick and easy reference, a facsimile of the “screenshot” of touch screen arrangement 500 that would otherwise show the operator all phases of the corresponding protocol. Thus, as shown, display field 1000 (or “recall field”) 1000 contains a representation of the two phases used in the “renals” protocol discussed and illustrated heretofore, though in this case the representation of the phases does not include manipulable touch fields as would otherwise be the case in a “live” screen corresponding to the “renals” protocol (such as shown in FIG. 10).
  • However, it will be understood that the capability is provided of being able to visually verify whether a protocol selected by one of the buttons 950 is indeed the protocol desired. At that point, if the operator wishes to execute the protocol, or at least enter a “live” screen corresponding to it for the purpose of editing it, he or she may then press the “OK”touch field (or the like) in order to switch to a “live” touch screen. Alternatively, the “recall field” capability could be exploited if the operator simply wishes to briefly review the makeup of various protocols.
  • It will thus be appreciated that, in connection with the “recall field” capability contemplated in connection with FIG. 21, the capability is afforded of permitting an operator to quickly and efficiently recognize the makeup of a given protocol through “pattern recognition”, or through recognizing a graphical or iconic pattern of words, numbers, geometric shapes, and possibly other visual stimuli, that in sum correspond to a given protocol. (Of course, it is understood that two different stored protocols may in fact have the exact same makeup of phases and parameters.) A similar capability of “pattern recognition” was addressed heretofore, for example, in connection with the summary pop-up screen 596 shown in FIG. 20, in which the operator is able to be reminded of the makeup of a protocol immediately after it has been run.
  • In the context of the present disclosure, the terms “infusion” and “injection”, and their grammatical derivations, are to be construed as being interchangeable and are meant to refer to essentially any of a wide range of arrangements for introducing fluid into a patient.
  • If not otherwise stated herein, it may be assumed that all components and/or processes described heretofore may, if appropriate, be considered to be interchangeable with similar components and/or processes disclosed elsewhere in the specification, unless an express indication is made to the contrary.
  • If not otherwise stated herein, any and all patents, patent publications, articles and other printed publications discussed or mentioned herein are hereby incorporated by reference as if set forth in their entirety herein.
  • It should be appreciated that the apparatus and method of the present invention may be configured and conducted as appropriate for any context at hand. The embodiments described above are to be considered in all respects only as illustrative and not restrictive. The scope of the invention is defined by the following claims rather than the foregoing description. All changes that come within the meaning and range of equivalency of the claims are to be embraced within their scope.

Claims (26)

1. A fluid injection system comprising:
an injector comprising a drive mechanism and an illumination device;
a fluid container operably associated with the drive mechanism; and
a control device operably associated with the drive mechanism, the control device comprising a computer screen having at least one element affiliated with the illumination devices,
wherein the illumination device and the at least one element emit light of the same color.
2. The fluid injection system of claim 1 wherein the at last one element comprises a symbol or an icon.
3. The fluid injection system of claim 1 wherein the at least one element comprises a display field or a touch field.
4. The fluid injection system of claim 1 wherein the at least one element comprises a plurality of elements.
5. The fluid injection system of claim 1 wherein the fluid container comprises a syringe having a plunger and the drive mechanism comprises a piston adapted to engage the plunger of the syringe.
6. The fluid injection system of claim 1 wherein the light color corresponds to a fluid present in the fluid container.
7. The fluid injection system of claim 1 wherein the fluid container comprises a syringe.
8. The fluid injection system of claim 1 wherein the illumination device is adapted to assume different conditions depending on a state of the system.
9. The fluid injection system of claim 8 wherein the illumination device assumes a flashing condition when the system is in an armed state.
10. The fluid injection system of claim 8 wherein the illumination device assumes a steady condition when the system is in an injection state.
11. The fluid injection system of claim 8 wherein the illumination device assumes an off condition when the system is in a disarmed state.
12. The fluid injection system of claim 1 wherein the at least one element is shaped to resemble a syringe.
13. The fluid injection system of claim 1 wherein the illumination device and the at least one element cooperate to provide a visual indication of a status or a condition of the system.
14. The fluid injection system of claim 1 wherein the computer screen comprises a touch screen.
15. A fluid injection system comprising:
an injector comprising a first drive mechanism, a second drive mechanism, a first illumination device and a second illumination device;
a first fluid container operably associated with the first drive mechanism, the first fluid container containing a first fluid;
a second fluid container operably associated with the second drive mechanism, the second fluid container containing a second fluid; and
a control device operably associated with the drive mechanism, the control device comprising a computer screen having at least one first element affiliated with the first illumination device and at least one second element affiliated with the second illumination device,
wherein the first illumination device and the at least one first element emit a first light color corresponding to the first fluid and the second illumination device and the at least one second element emit a second light color corresponding to the second fluid.
16. The fluid injection system of claim 15 wherein the at last one first element and the at least one second element each comprises a symbol, an icon, a display field or a touch field.
17. The fluid injection system of claim 15 wherein the at least one first element and the at least one second element each comprises a plurality of elements.
18. The fluid injection system of claim 15 wherein the first fluid container comprises a syringe having a plunger and the first drive mechanism comprises a piston adapted to engage the plunger of the syringe.
19. The fluid injection system of claim 15 wherein the first or second illumination device is adapted to assume different conditions depending on a state of the system.
20. The fluid injection system of claim 19 wherein the first or second illumination device assumes a flashing condition when the system is in an armed state, a steady condition when the system is in an injection state or an off condition when the system is in a disarmed state.
21. The fluid injection system of claim 15 wherein the first illumination device, the second illumination device, the at least one first element and the at least one second element cooperate to provide a visual indication of a status or a condition of the system.
22. The fluid injection system of claim 15 wherein the computer screen comprises a touch screen.
23. A method of operating an injector system providing visual stimuli corresponding to a programmed injection protocol, the method comprising:
perceiving visual stimuli provided by an injector or a control device of the injector system;
recognizing a pattern provided by the visual stimuli;
correlating the recognized pattern to the programmed injection protocol;
determining whether the programmed injection protocol is a desired injection protocol; and
initiating the programmed injection protocol, if it is determined that the programmed injection protocol is the desired injection protocol.
24. The method of claim 23, further comprising:
interacting with the injector or the control device based on the recognized pattern.
25. The method of claim 23 wherein the visual stimuli comprises one or more of graphical, iconic, lexical, numerical, geometrical or color stimuli.
26. The method of claim 23, further comprising:
altering the programmed injection protocol to correspond to the desired injection protocol; and
initiating the altered injection protocol.
US11/623,490 1999-07-30 2007-01-16 Fluid Injection System Providing Visual Stimuli Abandoned US20070112265A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US11/623,490 US20070112265A1 (en) 1999-07-30 2007-01-16 Fluid Injection System Providing Visual Stimuli

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
US09/365,278 US6339718B1 (en) 1999-07-30 1999-07-30 Programmable injector control
US09/715,330 US6643537B1 (en) 1999-07-30 2000-11-17 Programmable injector control
US10/698,047 US20040143185A1 (en) 1999-07-30 2003-10-30 Fluid injection system providing visual stimuli
US11/623,490 US20070112265A1 (en) 1999-07-30 2007-01-16 Fluid Injection System Providing Visual Stimuli

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
US10/698,047 Continuation US20040143185A1 (en) 1999-07-30 2003-10-30 Fluid injection system providing visual stimuli

Publications (1)

Publication Number Publication Date
US20070112265A1 true US20070112265A1 (en) 2007-05-17

Family

ID=23438206

Family Applications (6)

Application Number Title Priority Date Filing Date
US09/365,278 Expired - Lifetime US6339718B1 (en) 1999-07-30 1999-07-30 Programmable injector control
US09/715,330 Expired - Lifetime US6643537B1 (en) 1999-07-30 2000-11-17 Programmable injector control
US09/941,224 Expired - Lifetime US7079886B2 (en) 1999-07-30 2001-08-28 Apparatus and method for programming a KVO phase and a first phase of an injection procedure as a flushing medium phase
US10/698,047 Abandoned US20040143185A1 (en) 1999-07-30 2003-10-30 Fluid injection system providing visual stimuli
US11/358,194 Abandoned US20060184008A1 (en) 1999-07-30 2006-02-21 Programmable injector control
US11/623,490 Abandoned US20070112265A1 (en) 1999-07-30 2007-01-16 Fluid Injection System Providing Visual Stimuli

Family Applications Before (5)

Application Number Title Priority Date Filing Date
US09/365,278 Expired - Lifetime US6339718B1 (en) 1999-07-30 1999-07-30 Programmable injector control
US09/715,330 Expired - Lifetime US6643537B1 (en) 1999-07-30 2000-11-17 Programmable injector control
US09/941,224 Expired - Lifetime US7079886B2 (en) 1999-07-30 2001-08-28 Apparatus and method for programming a KVO phase and a first phase of an injection procedure as a flushing medium phase
US10/698,047 Abandoned US20040143185A1 (en) 1999-07-30 2003-10-30 Fluid injection system providing visual stimuli
US11/358,194 Abandoned US20060184008A1 (en) 1999-07-30 2006-02-21 Programmable injector control

Country Status (5)

Country Link
US (6) US6339718B1 (en)
EP (1) EP1202760B1 (en)
JP (1) JP4299482B2 (en)
DE (1) DE60026036T2 (en)
WO (1) WO2001008730A1 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9649436B2 (en) 2011-09-21 2017-05-16 Bayer Healthcare Llc Assembly method for a fluid pump device for a continuous multi-fluid delivery system
US10507319B2 (en) 2015-01-09 2019-12-17 Bayer Healthcare Llc Multiple fluid delivery system with multi-use disposable set and features thereof

Families Citing this family (215)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8082018B2 (en) * 1995-04-20 2011-12-20 Acist Medical Systems, Inc. System and method for multiple injection procedures on heart vessels
US6656157B1 (en) * 1995-04-20 2003-12-02 Acist Medical Systems, Inc. Infinitely refillable syringe
US20030028145A1 (en) * 1995-04-20 2003-02-06 Duchon Douglas J. Angiographic injector system with multiple processor redundancy
US7267666B1 (en) 1995-04-20 2007-09-11 Acist Medical Systems, Inc. Angiographic injector system with multiple processor redundancy
US6099502A (en) * 1995-04-20 2000-08-08 Acist Medical Systems, Inc. Dual port syringe
ES2252871T3 (en) * 1997-11-07 2006-05-16 Acist Medical Systems, Inc. ANGIOGRAPHIC INJECTOR SYSTEM WITH MULTIPLE FLUID PROCESSOR.
DE19859811C2 (en) * 1998-12-23 2001-05-10 Hilekes Guido Contrast agent injection system
WO2000060522A2 (en) * 1999-04-01 2000-10-12 Acist Medical Systems, Inc. An integrated medical information management and medical device control system and method
US20030216643A1 (en) * 1999-07-30 2003-11-20 Zatezalo Douglas M. Programmable injector control
US6339718B1 (en) 1999-07-30 2002-01-15 Medrad, Inc. Programmable injector control
WO2001013785A2 (en) * 1999-08-20 2001-03-01 Acist Medical Systems, Inc. Apparatus and method of detecting fluid
US6669679B1 (en) 2000-01-07 2003-12-30 Acist Medical Systems, Inc. Anti-recoil catheter
US6626862B1 (en) * 2000-04-04 2003-09-30 Acist Medical Systems, Inc. Fluid management and component detection system
US6673048B1 (en) 2000-05-24 2004-01-06 Acist Medical Systems, Inc. Pressure sleeve assembly
US6558352B1 (en) * 2000-05-30 2003-05-06 Verilogik, Inc. System and method for variable dosage medicine delivery
DE10030620A1 (en) * 2000-06-28 2002-01-17 Karlsruhe Forschzent Device for injecting medical preparations under CT / MRI control
AUPQ867900A0 (en) * 2000-07-10 2000-08-03 Medrad, Inc. Medical injector system
WO2002007812A2 (en) * 2000-07-20 2002-01-31 Acist Medical Systems, Inc. Syringe plunger locking mechanism
US8565860B2 (en) * 2000-08-21 2013-10-22 Biosensors International Group, Ltd. Radioactive emission detector equipped with a position tracking system
US8909325B2 (en) * 2000-08-21 2014-12-09 Biosensors International Group, Ltd. Radioactive emission detector equipped with a position tracking system and utilization thereof with medical systems and in medical procedures
US8489176B1 (en) 2000-08-21 2013-07-16 Spectrum Dynamics Llc Radioactive emission detector equipped with a position tracking system and utilization thereof with medical systems and in medical procedures
US7094216B2 (en) 2000-10-18 2006-08-22 Medrad, Inc. Injection system having a pressure isolation mechanism and/or a handheld controller
WO2002064194A1 (en) * 2001-02-14 2002-08-22 Acist Medical Systems, Inc. Fluid injector system
AU2002240386A1 (en) * 2001-02-14 2002-08-28 Acist Medical Systems, Inc. Catheter fluid control system
US6969865B2 (en) * 2001-02-15 2005-11-29 Acist Medical Systems, Inc. Systems and methods for detection and measurement of elements in a medium
US6817986B2 (en) * 2001-04-13 2004-11-16 Avant Medical Corp. Jet injector with data logging system for use in compliance and dose monitoring programs
US7308300B2 (en) * 2001-05-30 2007-12-11 Acist Medical Systems, Inc. Medical injection system
JP4791692B2 (en) * 2001-12-07 2011-10-12 アシスト メディカル システムズ,インク. Low pressure measuring device in high pressure environment
US6880808B2 (en) 2002-05-03 2005-04-19 Acist Medical Systems, Inc. Gamma-stable high pressure stopcock
US7553294B2 (en) * 2002-05-30 2009-06-30 Medrad, Inc. Syringe plunger sensing mechanism for a medical injector
US7018361B2 (en) 2002-06-14 2006-03-28 Baxter International Inc. Infusion pump
US7267661B2 (en) * 2002-06-17 2007-09-11 Iradimed Corporation Non-magnetic medical infusion device
US7553295B2 (en) 2002-06-17 2009-06-30 Iradimed Corporation Liquid infusion apparatus
US7404809B2 (en) * 2004-10-12 2008-07-29 Iradimed Corporation Non-magnetic medical infusion device
AU2011205122B2 (en) * 2002-08-02 2013-10-31 Liebel-Flarsheim Company Injector
US6929619B2 (en) * 2002-08-02 2005-08-16 Liebel-Flarshiem Company Injector
US7224143B2 (en) * 2002-11-27 2007-05-29 Medrad, Inc. Continuous battery charger system
JP4731795B2 (en) 2003-02-18 2011-07-27 株式会社根本杏林堂 Chemical injection device
EP1613390A2 (en) * 2003-04-08 2006-01-11 Medrad, Inc. Fluid delivery systems, devices and methods for delivery of hazardous fluids
CN100536943C (en) * 2003-07-18 2009-09-09 株式会社根本杏林堂 Medicine infuser for displaying image of entered infusion condition
JP4473543B2 (en) * 2003-09-05 2010-06-02 株式会社東芝 Ultrasonic diagnostic equipment
US8065161B2 (en) 2003-11-13 2011-11-22 Hospira, Inc. System for maintaining drug information and communicating with medication delivery devices
US9123077B2 (en) 2003-10-07 2015-09-01 Hospira, Inc. Medication management system
US7666169B2 (en) * 2003-11-25 2010-02-23 Medrad, Inc. Syringe and syringe plungers for use with medical injectors
KR100878282B1 (en) * 2003-11-26 2009-01-12 어시스트 메디칼 시스템즈, 인크. Device and method for dispensing media as part of a medical procedure
US9040016B2 (en) * 2004-01-13 2015-05-26 Biosensors International Group, Ltd. Diagnostic kit and methods for radioimaging myocardial perfusion
US9470801B2 (en) * 2004-01-13 2016-10-18 Spectrum Dynamics Llc Gating with anatomically varying durations
US7968851B2 (en) 2004-01-13 2011-06-28 Spectrum Dynamics Llc Dynamic spect camera
US7176466B2 (en) * 2004-01-13 2007-02-13 Spectrum Dynamics Llc Multi-dimensional image reconstruction
US8586932B2 (en) 2004-11-09 2013-11-19 Spectrum Dynamics Llc System and method for radioactive emission measurement
US8571881B2 (en) * 2004-11-09 2013-10-29 Spectrum Dynamics, Llc Radiopharmaceutical dispensing, administration, and imaging
WO2007010534A2 (en) * 2005-07-19 2007-01-25 Spectrum Dynamics Llc Imaging protocols
ES2524448T3 (en) * 2004-02-11 2014-12-09 Acist Medical Systems, Inc. System for operating a medical injector and imaging device for diagnosis
US7491191B2 (en) * 2004-02-13 2009-02-17 Liebel-Flarsheim Company Keep vein open method and injector with keep vein open function
US9627097B2 (en) * 2004-03-02 2017-04-18 General Electric Company Systems, methods and apparatus for infusion of radiopharmaceuticals
WO2005104697A2 (en) * 2004-04-22 2005-11-10 E-Z-Em, Inc. Interface device and protocol
WO2005107419A2 (en) * 2004-05-04 2005-11-17 E-Z-Em, Inc. Method and system for implementing a graphical user interface for a multi-fluid injection device
EP1778957A4 (en) 2004-06-01 2015-12-23 Biosensors Int Group Ltd Radioactive-emission-measurement optimization to specific body structures
US7507221B2 (en) 2004-10-13 2009-03-24 Mallinckrodt Inc. Powerhead of a power injection system
US20060079842A1 (en) * 2004-10-13 2006-04-13 Liebel-Flarsheim Company Powerhead control in a power injection system
US8900187B2 (en) * 2004-10-13 2014-12-02 Mallinckrodt Llc Powerhead control in a power injection system
US20080004507A1 (en) * 2004-10-27 2008-01-03 E-Z-Em, Inc. Data collection device, system, method, and computer program product for collecting data related to the dispensing of contrast media
KR20070085497A (en) * 2004-10-27 2007-08-27 이-지-이엠, 인코포레이티드 Data collection device, system, method, and computer program product for collecting data related to the dispensing of contrast media
EP1827505A4 (en) 2004-11-09 2017-07-12 Biosensors International Group, Ltd. Radioimaging
US9316743B2 (en) 2004-11-09 2016-04-19 Biosensors International Group, Ltd. System and method for radioactive emission measurement
US8615405B2 (en) * 2004-11-09 2013-12-24 Biosensors International Group, Ltd. Imaging system customization using data from radiopharmaceutical-associated data carrier
US8000773B2 (en) 2004-11-09 2011-08-16 Spectrum Dynamics Llc Radioimaging
US9943274B2 (en) 2004-11-09 2018-04-17 Spectrum Dynamics Medical Limited Radioimaging using low dose isotope
WO2006055813A2 (en) 2004-11-16 2006-05-26 Medrad, Inc. Modeling of pharmaceutical propagation
WO2008059489A2 (en) 2006-11-13 2008-05-22 Spectrum Dynamics Llc Radioimaging applications of and novel formulations of teboroxime
EP2990073B1 (en) 2004-11-24 2018-05-02 Bayer Healthcare LLC Devices and systems for fluid delivery
US20060211989A1 (en) * 2005-03-04 2006-09-21 Rhinehart Edward J Fluid delivery systems, devices and methods for delivery of fluids
US7766883B2 (en) 2007-10-30 2010-08-03 Medrad, Inc. System and method for proportional mixing and continuous delivery of fluids
US9433730B2 (en) 2013-03-14 2016-09-06 Bayer Healthcare Llc Fluid mixing control device for a multi-fluid delivery system
US9011377B2 (en) 2008-11-05 2015-04-21 Bayer Medical Care Inc. Fluid mixing control device for a multi-fluid delivery system
JP4901243B2 (en) * 2005-03-30 2012-03-21 株式会社東芝 Contrast medium injection management apparatus, diagnostic imaging apparatus, and contrast medium injection apparatus
ATE481685T1 (en) * 2005-04-06 2010-10-15 Mallinckrodt Inc SYSTEMS AND METHODS FOR MANAGING INFORMATION REGARDING MEDICAL LIQUIDS AND CONTAINERS THEREOF
US8837793B2 (en) 2005-07-19 2014-09-16 Biosensors International Group, Ltd. Reconstruction stabilizer and active vision
CN101277648B (en) * 2005-10-05 2010-12-15 皇家飞利浦电子股份有限公司 Method and apparatus for predicting enhancement in angiography
EP2469437A1 (en) 2005-11-21 2012-06-27 ACIST Medical Systems, Inc. Medical fluid injection system with stored injection parameters
WO2007076463A2 (en) * 2005-12-27 2007-07-05 Acist Medical Systems, Inc. Balloon inflation device
US8926569B2 (en) 2006-03-15 2015-01-06 Bayer Medical Care Inc. Plunger covers and plungers for use in syringes and methods of fabricating plunger covers and plungers for use in syringes
US20090234226A1 (en) * 2006-04-04 2009-09-17 Nemoto Kyorindo Co., Ltd. Chemical liquid injector
JP2007275303A (en) * 2006-04-06 2007-10-25 Nemoto Kyorindo:Kk Medicine liquid injection system
US8894974B2 (en) * 2006-05-11 2014-11-25 Spectrum Dynamics Llc Radiopharmaceuticals for diagnosis and therapy
US7674244B2 (en) 2006-05-23 2010-03-09 Medrad, Inc. Devices, systems and methods for detecting increase fluid levels in tissue
WO2007143682A2 (en) * 2006-06-06 2007-12-13 Bayer Schering Pharma Ag Systems and methods of delivering fluids to a patient of varying concentration
US8139948B2 (en) * 2006-06-12 2012-03-20 Acist Medical Systems, Inc. Process and system for providing electrical energy to a shielded medical imaging suite
US7601966B2 (en) * 2006-06-28 2009-10-13 Spectrum Dynamics Llc Imaging techniques for reducing blind spots
EP2040622A2 (en) * 2006-07-17 2009-04-01 Medrad, Inc. Integrated medical imaging systems
US20080061474A1 (en) * 2006-09-11 2008-03-13 Graham Packaging Company, Lp Thermally stabilized adhesion promoting material for use in multilayer articles
EP2092470A2 (en) 2006-10-16 2009-08-26 Hospira, Inc. System and method for comparing and utilizing activity information and configuration information from mulitple device management systems
US9275451B2 (en) 2006-12-20 2016-03-01 Biosensors International Group, Ltd. Method, a system, and an apparatus for using and processing multidimensional data
WO2008085421A2 (en) 2006-12-29 2008-07-17 Medrad, Inc. Patient-based parameter generation systems for medical injection procedures
US20080167900A1 (en) * 2006-12-29 2008-07-10 Medrad, Inc. Biometric characterization of agents and patient safety in biological injection or administration
US9056164B2 (en) 2007-01-01 2015-06-16 Bayer Medical Care Inc. Radiopharmaceutical administration methods, fluid delivery systems and components thereof
EP3308812A3 (en) * 2007-02-26 2018-07-04 CareFusion 303, Inc. Automatic relay pump system
US8231578B2 (en) * 2007-02-28 2012-07-31 Hospira, Inc. System and method for sequencing channels in a multi-channel infusion pump
USD942005S1 (en) 2007-03-14 2022-01-25 Bayer Healthcare Llc Orange syringe plunger cover
USD1002840S1 (en) 2007-03-14 2023-10-24 Bayer Healthcare Llc Syringe plunger
USD847985S1 (en) 2007-03-14 2019-05-07 Bayer Healthcare Llc Syringe plunger cover
JP5550901B2 (en) * 2007-04-11 2014-07-16 株式会社根本杏林堂 Chemical injection device, fluoroscopic imaging system, computer program
DE102007025399A1 (en) * 2007-05-31 2008-12-11 Siemens Ag Medical technical diagnostic system
US8105282B2 (en) * 2007-07-13 2012-01-31 Iradimed Corporation System and method for communication with an infusion device
CN103976736B (en) 2007-07-17 2017-01-11 拜耳医药保健有限责任公司 Devices and systems for determination of parameters for a procedure, for estimation of cardiopulmonary function and for fluid delivery
JP4606449B2 (en) * 2007-10-09 2011-01-05 株式会社根本杏林堂 Automatic injection equipment
US8521253B2 (en) * 2007-10-29 2013-08-27 Spectrum Dynamics Llc Prostate imaging
JP5695907B2 (en) 2007-11-19 2015-04-08 マリンクロッド エルエルシー Power injector with patency check using pressure monitoring
CN101868264B (en) * 2007-11-19 2013-06-05 马林克罗特有限公司 Power injector with status messaging
US9026370B2 (en) 2007-12-18 2015-05-05 Hospira, Inc. User interface improvements for medical devices
US8317752B2 (en) * 2007-12-18 2012-11-27 Hospira, Inc. Touch screen system and navigation and programming methods for an infusion pump
WO2009107008A2 (en) * 2008-02-28 2009-09-03 Koninklijke Philips Electronics, N.V. Automated non-magnetic medical monitor using piezoelectric ceramic diaphragm devices
US8608484B2 (en) 2008-03-04 2013-12-17 Medrad, Inc. Dynamic anthropomorphic cardiovascular phantom
US8315449B2 (en) 2008-06-24 2012-11-20 Medrad, Inc. Identification of regions of interest and extraction of time value curves in imaging procedures
CN102159265B (en) * 2008-07-15 2015-09-16 Shl集团有限责任公司 Drug delivery device
CA2725252C (en) * 2008-08-26 2016-12-13 Mallinckrodt Inc. Power injector with keep vein open functionality
US7833829B2 (en) * 2008-10-28 2010-11-16 Honeywell International Inc. MEMS devices and methods of assembling micro electromechanical systems (MEMS)
US9421330B2 (en) 2008-11-03 2016-08-23 Bayer Healthcare Llc Mitigation of contrast-induced nephropathy
CA2722991A1 (en) * 2008-11-28 2010-06-03 Mallinckrodt Inc. Workflow driven user interface for medical fluid delivery systems
US8271106B2 (en) 2009-04-17 2012-09-18 Hospira, Inc. System and method for configuring a rule set for medical event management and responses
US8338788B2 (en) 2009-07-29 2012-12-25 Spectrum Dynamics Llc Method and system of optimized volumetric imaging
US9539081B2 (en) 2009-12-02 2017-01-10 Surefire Medical, Inc. Method of operating a microvalve protection device
US9031639B2 (en) * 2010-04-27 2015-05-12 Nemoto Kyorindo Co., Ltd. Chemical liquid injector and CT apparatus
CA2799775C (en) 2010-06-04 2020-03-24 Medrad, Inc. System and method for planning and monitoring multi-dose radiopharmaceutical usage on radiopharmaceutical injectors
CA2803169C (en) 2010-06-24 2020-09-22 Medrad, Inc. Modeling of pharmaceutical propagation and parameter generation for injection protocols
BR112013028677A8 (en) * 2011-05-09 2018-02-06 Liebel Flarsheim Co Llc CONTRAST MEDIA INJECTION SYSTEM AND MEDICAL SYSTEM INCLUDING THE CONTRAST MEDIA INJECTION SYSTEM
US9240002B2 (en) 2011-08-19 2016-01-19 Hospira, Inc. Systems and methods for a graphical interface including a graphical representation of medical data
ES2959510T3 (en) 2011-10-21 2024-02-26 Icu Medical Inc Medical device update system
US10022498B2 (en) 2011-12-16 2018-07-17 Icu Medical, Inc. System for monitoring and delivering medication to a patient and method of using the same to minimize the risks associated with automated therapy
ES2741725T3 (en) 2012-03-30 2020-02-12 Icu Medical Inc Air detection system and method to detect air in a pump of an infusion system
US10157263B2 (en) 2012-05-08 2018-12-18 Liebel-Flarsheim Company Llc Contrast media injection data management
HUE056182T2 (en) 2012-05-14 2022-01-28 Bayer Healthcare Llc Systems and methods for determination of pharmaceutical fluid injection protocols based on x-ray tube voltage
ES2743160T3 (en) 2012-07-31 2020-02-18 Icu Medical Inc Patient care system for critical medications
US9174003B2 (en) 2012-09-28 2015-11-03 Bayer Medical Care Inc. Quick release plunger
AU2014225658B2 (en) 2013-03-06 2018-05-31 Icu Medical, Inc. Medical device communication method
US9555379B2 (en) 2013-03-13 2017-01-31 Bayer Healthcare Llc Fluid path set with turbulent mixing chamber, backflow compensator
AU2014268355B2 (en) 2013-05-24 2018-06-14 Icu Medical, Inc. Multi-sensor infusion system for detecting air or an occlusion in the infusion system
AU2014274146B2 (en) 2013-05-29 2019-01-24 Icu Medical, Inc. Infusion system which utilizes one or more sensors and additional information to make an air determination regarding the infusion system
WO2014194065A1 (en) 2013-05-29 2014-12-04 Hospira, Inc. Infusion system and method of use which prevents over-saturation of an analog-to-digital converter
CN105492038B (en) 2013-06-14 2019-10-01 拜耳医药保健有限公司 Portable fluid delivery system
JP6327632B2 (en) * 2013-08-06 2018-05-23 株式会社根本杏林堂 Chemical injection device
JP6621748B2 (en) 2013-08-30 2019-12-18 アイシーユー・メディカル・インコーポレーテッド System and method for monitoring and managing a remote infusion regimen
US9662436B2 (en) 2013-09-20 2017-05-30 Icu Medical, Inc. Fail-safe drug infusion therapy system
US10311972B2 (en) 2013-11-11 2019-06-04 Icu Medical, Inc. Medical device system performance index
WO2015077320A1 (en) 2013-11-19 2015-05-28 Hospira, Inc. Infusion pump automation system and method
WO2015106107A1 (en) 2014-01-10 2015-07-16 Bayer Medical Care Inc. Single-use disposable set connector
JP6636442B2 (en) 2014-02-28 2020-01-29 アイシーユー・メディカル・インコーポレーテッド Infusion systems and methods utilizing dual wavelength optical in-pipe air detection
CN106102806B (en) 2014-03-19 2019-12-17 拜耳医药保健有限公司 System for coupling a syringe to an injector
US9968740B2 (en) 2014-03-25 2018-05-15 Surefire Medical, Inc. Closed tip dynamic microvalve protection device
JP6853669B2 (en) 2014-04-30 2021-03-31 アイシーユー・メディカル・インコーポレーテッド Patient treatment system with conditional alert forwarding
JP2017517302A (en) 2014-05-29 2017-06-29 ホスピーラ インコーポレイテッド Infusion system and pump with configurable closed loop delivery rate catchup
US9724470B2 (en) 2014-06-16 2017-08-08 Icu Medical, Inc. System for monitoring and delivering medication to a patient and method of using the same to minimize the risks associated with automated therapy
US9539383B2 (en) 2014-09-15 2017-01-10 Hospira, Inc. System and method that matches delayed infusion auto-programs with manually entered infusion programs and analyzes differences therein
US11344668B2 (en) 2014-12-19 2022-05-31 Icu Medical, Inc. Infusion system with concurrent TPN/insulin infusion
US10850024B2 (en) 2015-03-02 2020-12-01 Icu Medical, Inc. Infusion system, device, and method having advanced infusion features
US20160287839A1 (en) 2015-03-31 2016-10-06 Surefire Medical, Inc. Apparatus and Method for Infusing an Immunotherapy Agent to a Solid Tumor for Treatment
WO2016189417A1 (en) 2015-05-26 2016-12-01 Hospira, Inc. Infusion pump system and method with multiple drug library editor source capability
US9480797B1 (en) 2015-10-28 2016-11-01 Bayer Healthcare Llc System and method for syringe plunger engagement with an injector
WO2017152036A1 (en) 2016-03-03 2017-09-08 Bayer Healthcare Llc System and method for improved fluid delivery in multi-fluid injector systems
JP2017158790A (en) * 2016-03-09 2017-09-14 ニプロ株式会社 Infusion device, control method of the same, and program
US20170258982A1 (en) 2016-03-10 2017-09-14 Bayer Healthcare Llc System and methods for pre-injection pressure prediction in injection procedures
US9757071B1 (en) 2016-04-29 2017-09-12 Bayer Healthcare Llc System and method for suppressing noise from electrocardiographic (ECG) signals
EP4085944A1 (en) 2016-05-13 2022-11-09 ICU Medical, Inc. Infusion pump system with common line auto flush
US11324888B2 (en) 2016-06-10 2022-05-10 Icu Medical, Inc. Acoustic flow sensor for continuous medication flow measurements and feedback control of infusion
EP3471797B1 (en) 2016-06-15 2021-03-24 Bayer Healthcare LLC Multi-use disposable system and syringe therefor
DE102016211902A1 (en) * 2016-06-30 2018-01-04 Siemens Healthcare Gmbh Method and system for contrast-based medical imaging
EP3484541A4 (en) 2016-07-14 2020-03-25 ICU Medical, Inc. Multi-communication path selection and security system for a medical device
US11400263B1 (en) 2016-09-19 2022-08-02 Trisalus Life Sciences, Inc. System and method for selective pressure-controlled therapeutic delivery
US10780250B1 (en) 2016-09-19 2020-09-22 Surefire Medical, Inc. System and method for selective pressure-controlled therapeutic delivery
US20190365982A1 (en) 2016-11-22 2019-12-05 Bayer Healthcare Llc Synthetic magnetic resonance imaging and magnetic resonance fingerprinting with a contrast agent, and determination of a contrast agent injection protocol
WO2018098130A1 (en) 2016-11-22 2018-05-31 Bayer Healthcare Llc System and method for delivering a fluid with a consistent total volumetric flowrate
US10588636B2 (en) 2017-03-20 2020-03-17 Surefire Medical, Inc. Dynamic reconfigurable microvalve protection device
EP3639271A1 (en) 2017-06-16 2020-04-22 Bayer Healthcare LLC Systems and methods for split bolus protocol generation
WO2019010243A1 (en) 2017-07-07 2019-01-10 Bayer Healthcare Llc System, method, and computer program product for peer exchange of data between injection systems
JP7200145B2 (en) 2017-08-18 2023-01-06 バイエル・ヘルスケア・エルエルシー System, method and computer program for predictive maintenance
CN109395203A (en) * 2017-08-18 2019-03-01 南京感控通化工产品经营部 A kind of project management method of high pressure injector
US11141535B2 (en) 2017-08-31 2021-10-12 Bayer Healthcare Llc Fluid path impedance assessment for improving fluid delivery performance
AU2018326485B2 (en) 2017-08-31 2024-01-04 Bayer Healthcare Llc Injector pressure calibration system and method
US11779702B2 (en) 2017-08-31 2023-10-10 Bayer Healthcare Llc Method for dynamic pressure control in a fluid injector system
CN110809482B (en) * 2017-08-31 2023-03-07 拜耳医药保健有限公司 Fluid injector system volume compensation system and method
JP7372153B2 (en) * 2017-08-31 2023-10-31 バイエル・ヘルスケア・エルエルシー Systems and methods with transition steps in multi-step injection protocols
EP3675930B1 (en) 2017-08-31 2024-01-17 Bayer Healthcare LLC Method for drive member position and fluid injector system mechanical calibration
US11268506B2 (en) 2017-12-22 2022-03-08 Iradimed Corporation Fluid pumps for use in MRI environment
US10089055B1 (en) 2017-12-27 2018-10-02 Icu Medical, Inc. Synchronized display of screen content on networked devices
US20190298983A1 (en) * 2018-01-15 2019-10-03 Surefire Medical, Inc. Injection Port for Therapeutic Delivery
DK3758777T3 (en) 2018-02-27 2023-02-27 Bayer Healthcare Llc INJECTION PISTON ENGAGEMENT MECHANISM
JP2018108498A (en) * 2018-04-11 2018-07-12 株式会社根本杏林堂 Chemical injection device
NZ771914A (en) 2018-07-17 2023-04-28 Icu Medical Inc Updating infusion pump drug libraries and operational software in a networked environment
US10950339B2 (en) 2018-07-17 2021-03-16 Icu Medical, Inc. Converting pump messages in new pump protocol to standardized dataset messages
US11139058B2 (en) 2018-07-17 2021-10-05 Icu Medical, Inc. Reducing file transfer between cloud environment and infusion pumps
EP3824383B1 (en) 2018-07-17 2023-10-11 ICU Medical, Inc. Systems and methods for facilitating clinical messaging in a network environment
AU2019309766A1 (en) 2018-07-26 2021-03-18 Icu Medical, Inc. Drug library management system
US10692595B2 (en) 2018-07-26 2020-06-23 Icu Medical, Inc. Drug library dynamic version management
US11850398B2 (en) 2018-08-01 2023-12-26 Trisalus Life Sciences, Inc. Systems and methods for pressure-facilitated therapeutic agent delivery
EP3843810A1 (en) * 2018-08-28 2021-07-07 Bayer HealthCare LLC Fluid injector system with improved ratio performance
US11338117B2 (en) 2018-10-08 2022-05-24 Trisalus Life Sciences, Inc. Implantable dual pathway therapeutic agent delivery port
KR102638062B1 (en) * 2019-03-22 2024-02-21 제벡스, 아이엔씨. Method for delivering residual liquid within enteral or other infusion device
CN113329688B (en) 2019-09-18 2023-11-28 拜耳公司 Method, system and computer readable medium for determining characteristics of tissue voxels
ES2955349T3 (en) 2019-09-18 2023-11-30 Bayer Ag MRI image prediction using a prediction model trained by supervised learning
US11278671B2 (en) 2019-12-04 2022-03-22 Icu Medical, Inc. Infusion pump with safety sequence keypad
AU2021224642A1 (en) 2020-02-21 2022-09-15 Bayer Healthcare Llc Fluid path connectors for medical fluid delivery
US11896352B2 (en) 2020-04-30 2024-02-13 Bayer Healthcare Llc System, device and method for safeguarding the wellbeing of patients for fluid injection
JP2020124598A (en) * 2020-05-15 2020-08-20 株式会社根本杏林堂 Chemical injection device
CN115668866A (en) 2020-05-19 2023-01-31 拜耳医药保健有限责任公司 Systems, methods, and computer program products for providing Quick Response (QR) codes for injection systems
CA3185452A1 (en) 2020-06-02 2021-12-09 Bayer Healthcare Llc System, method, and computer program product for controlling a fluid injection system based on hydraulic resistance
BR112022023295A2 (en) 2020-06-18 2023-01-17 Bayer Healthcare Llc IN-LINE AIR BUBBLE SUSPENSION APPARATUS FOR INJECTOR FLUID PATHWAY ANGIOGRAPHY
CA3189356A1 (en) 2020-07-14 2022-01-20 Bayer Healthcare Llc System, method, and computer program product for providing a gateway to connect a fluid delivery system and external systems
CA3189781A1 (en) 2020-07-21 2022-01-27 Icu Medical, Inc. Fluid transfer devices and methods of use
US11135360B1 (en) 2020-12-07 2021-10-05 Icu Medical, Inc. Concurrent infusion with common line auto flush
CN116897397A (en) 2021-01-29 2023-10-17 拜耳医药保健有限责任公司 System, method and computer program product for protocol conversion
WO2023178072A1 (en) 2022-03-15 2023-09-21 Bayer Healthcare Llc System, method, and computer program product for managing automated healthcare data applications using artificial intelligence
WO2023212188A1 (en) 2022-04-29 2023-11-02 Bayer Healthcare Llc System, method, and computer program product for associating injector and imager protocols
WO2023212186A1 (en) 2022-04-29 2023-11-02 Bayer Healthcare Llc System, method, and computer program product for implementing a remote console for use in diagnostic imaging procedures
WO2023215387A1 (en) 2022-05-04 2023-11-09 Bayer Healthcare Llc System, method, and computer program product for guided workflow features for operating a fluid injector system
WO2024054586A1 (en) 2022-09-08 2024-03-14 Bayer Healthcare Llc Systems and methods for generating protocols embodying contrast and radiation dose management techniques

Citations (24)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3888239A (en) * 1974-06-21 1975-06-10 Morton K Rubinstein Fluid injection system
US3964139A (en) * 1975-06-16 1976-06-22 Harvard Apparatus Company, Inc. Syringe holder
US4006736A (en) * 1974-11-27 1977-02-08 Medrad, Inc. Angiographic injector
US4553958A (en) * 1983-02-04 1985-11-19 Quest Medical, Inc. IV Delivery controller
US4677980A (en) * 1984-06-06 1987-07-07 Medrad, Inc. Angiographic injector and angiographic syringe for use therewith
US4710166A (en) * 1985-11-08 1987-12-01 Quest Medical, Inc. Automated drug additive infusion system
US5304126A (en) * 1984-02-08 1994-04-19 Abbott Laboratories Infusion system having plural fluid flow lines
US5383858A (en) * 1992-08-17 1995-01-24 Medrad, Inc. Front-loading medical injector and syringe for use therewith
US5472403A (en) * 1993-05-11 1995-12-05 The Regents Of The University Of California Device for automatic injection of radionuclide
US5494036A (en) * 1993-11-26 1996-02-27 Medrad, Inc. Patient infusion system for use with MRI
US5520653A (en) * 1995-09-01 1996-05-28 Medrad, Inc. Syringe adapter for front-loading medical injector
US5553619A (en) * 1993-06-07 1996-09-10 Prince; Martin R. Method and apparatus for administration of contrast agents for use in magnetic resonance arteriography
US5569181A (en) * 1993-10-28 1996-10-29 Medrad, Inc. Sterility assurance for contrast delivery system
US5573515A (en) * 1995-04-20 1996-11-12 Invasatec, Inc. Self purging angiographic injector
US5662612A (en) * 1993-11-24 1997-09-02 Liebel Flarsheim Company Controlling plunger drives for fluid injections in animals
US5779649A (en) * 1996-12-17 1998-07-14 Pabban Development, Inc. Surgical suction wand with filter
US5782805A (en) * 1996-04-10 1998-07-21 Meinzer; Randolph Medical infusion pump
US5806519A (en) * 1993-10-28 1998-09-15 Medrad, Inc. Total system for contrast delivery
US5865805A (en) * 1997-07-16 1999-02-02 Liebel-Flarsheim Company Power injector and side loadable syringe support therefor for plunger pushrod type syringes
US5913844A (en) * 1997-06-17 1999-06-22 Liebel-Flarsheim Company Power injector and method providing removal of used disposable syringe
US5984368A (en) * 1996-11-08 1999-11-16 Quality Medical Communications, Inc. Patient condition and pain location and intensity communication apparatus and method
US6312410B1 (en) * 1995-10-30 2001-11-06 Sugan Co., Ltd. Auxiliary appliance for syringe fixation
US6368307B1 (en) * 1997-07-18 2002-04-09 Liebel-Flarsheim Company Front-loading power injector and method of loading flanged syringe therein
US6671563B1 (en) * 1995-05-15 2003-12-30 Alaris Medical Systems, Inc. System and method for collecting data and managing patient care

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
ATE50146T1 (en) * 1985-02-18 1990-02-15 Medrad Inc ANGIOGRAPHIC INJECTOR WITH A CONTROL UNIT.
US4925444A (en) * 1987-08-07 1990-05-15 Baxter Travenol Laboratories, Inc. Closed multi-fluid delivery system and method
US5153827A (en) * 1989-01-30 1992-10-06 Omni-Flow, Inc. An infusion management and pumping system having an alarm handling system
US5579767A (en) * 1993-06-07 1996-12-03 Prince; Martin R. Method for imaging abdominal aorta and aortic aneurysms
US5590654A (en) * 1993-06-07 1997-01-07 Prince; Martin R. Method and apparatus for magnetic resonance imaging of arteries using a magnetic resonance contrast agent
US5519931A (en) * 1994-03-16 1996-05-28 Syncor International Corporation Container and method for transporting a syringe containing radioactive material
US6353803B1 (en) * 1996-01-18 2002-03-05 Yeda Research And Development Co., Ltd. At The Welzmann Institute Of Science Apparatus for monitoring a system in which a fluid flows
US5865744A (en) * 1996-09-16 1999-02-02 Lemelson; Jerome H. Method and system for delivering therapeutic agents
US5868710A (en) * 1996-11-22 1999-02-09 Liebel Flarsheim Company Medical fluid injector
US6055985A (en) * 1999-04-09 2000-05-02 B.H.B., L.C. Methods for injecting a contrast medium to generate prolonged uniform vascular enhancement
US6339718B1 (en) 1999-07-30 2002-01-15 Medrad, Inc. Programmable injector control

Patent Citations (27)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3888239A (en) * 1974-06-21 1975-06-10 Morton K Rubinstein Fluid injection system
US4006736A (en) * 1974-11-27 1977-02-08 Medrad, Inc. Angiographic injector
US3964139A (en) * 1975-06-16 1976-06-22 Harvard Apparatus Company, Inc. Syringe holder
US4553958A (en) * 1983-02-04 1985-11-19 Quest Medical, Inc. IV Delivery controller
US5304126A (en) * 1984-02-08 1994-04-19 Abbott Laboratories Infusion system having plural fluid flow lines
US4677980A (en) * 1984-06-06 1987-07-07 Medrad, Inc. Angiographic injector and angiographic syringe for use therewith
US4710166A (en) * 1985-11-08 1987-12-01 Quest Medical, Inc. Automated drug additive infusion system
US5383858A (en) * 1992-08-17 1995-01-24 Medrad, Inc. Front-loading medical injector and syringe for use therewith
US5383858B1 (en) * 1992-08-17 1996-10-29 Medrad Inc Front-loading medical injector and syringe for use therewith
US5472403A (en) * 1993-05-11 1995-12-05 The Regents Of The University Of California Device for automatic injection of radionuclide
US5553619A (en) * 1993-06-07 1996-09-10 Prince; Martin R. Method and apparatus for administration of contrast agents for use in magnetic resonance arteriography
US5569181A (en) * 1993-10-28 1996-10-29 Medrad, Inc. Sterility assurance for contrast delivery system
US5806519A (en) * 1993-10-28 1998-09-15 Medrad, Inc. Total system for contrast delivery
US6442418B1 (en) * 1993-10-28 2002-08-27 Medrad, Inc. Total system for contrast delivery
US5662612A (en) * 1993-11-24 1997-09-02 Liebel Flarsheim Company Controlling plunger drives for fluid injections in animals
US5681286A (en) * 1993-11-24 1997-10-28 Liebel Flarsheim Company Controlling plunger drives for fluid injections in animals
US5494036A (en) * 1993-11-26 1996-02-27 Medrad, Inc. Patient infusion system for use with MRI
US5573515A (en) * 1995-04-20 1996-11-12 Invasatec, Inc. Self purging angiographic injector
US6671563B1 (en) * 1995-05-15 2003-12-30 Alaris Medical Systems, Inc. System and method for collecting data and managing patient care
US5520653A (en) * 1995-09-01 1996-05-28 Medrad, Inc. Syringe adapter for front-loading medical injector
US6312410B1 (en) * 1995-10-30 2001-11-06 Sugan Co., Ltd. Auxiliary appliance for syringe fixation
US5782805A (en) * 1996-04-10 1998-07-21 Meinzer; Randolph Medical infusion pump
US5984368A (en) * 1996-11-08 1999-11-16 Quality Medical Communications, Inc. Patient condition and pain location and intensity communication apparatus and method
US5779649A (en) * 1996-12-17 1998-07-14 Pabban Development, Inc. Surgical suction wand with filter
US5913844A (en) * 1997-06-17 1999-06-22 Liebel-Flarsheim Company Power injector and method providing removal of used disposable syringe
US5865805A (en) * 1997-07-16 1999-02-02 Liebel-Flarsheim Company Power injector and side loadable syringe support therefor for plunger pushrod type syringes
US6368307B1 (en) * 1997-07-18 2002-04-09 Liebel-Flarsheim Company Front-loading power injector and method of loading flanged syringe therein

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9649436B2 (en) 2011-09-21 2017-05-16 Bayer Healthcare Llc Assembly method for a fluid pump device for a continuous multi-fluid delivery system
US9700672B2 (en) 2011-09-21 2017-07-11 Bayer Healthcare Llc Continuous multi-fluid pump device, drive and actuating system and method
US10507319B2 (en) 2015-01-09 2019-12-17 Bayer Healthcare Llc Multiple fluid delivery system with multi-use disposable set and features thereof
US11491318B2 (en) 2015-01-09 2022-11-08 Bayer Healthcare Llc Multiple fluid delivery system with multi-use disposable set and features thereof

Also Published As

Publication number Publication date
US20020007116A1 (en) 2002-01-17
JP4299482B2 (en) 2009-07-22
US20060184008A1 (en) 2006-08-17
US20040143185A1 (en) 2004-07-22
EP1202760B1 (en) 2006-02-15
JP2003505211A (en) 2003-02-12
US6339718B1 (en) 2002-01-15
DE60026036T2 (en) 2006-10-12
EP1202760A1 (en) 2002-05-08
WO2001008730A1 (en) 2001-02-08
US6643537B1 (en) 2003-11-04
DE60026036D1 (en) 2006-04-20
US7079886B2 (en) 2006-07-18

Similar Documents

Publication Publication Date Title
US6643537B1 (en) Programmable injector control
US20030216643A1 (en) Programmable injector control
EP2301609B1 (en) Method of displaying stored injection parameters in a power injector
EP1940490B1 (en) Powerhead control in a power injection system
US20230277763A1 (en) Injector systems and syringe adapters for use therewith
US20110218434A1 (en) Workflow Driven User Interface for a Power Injection Systems

Legal Events

Date Code Title Description
STCB Information on status: application discontinuation

Free format text: EXPRESSLY ABANDONED -- DURING EXAMINATION