US3882729A - Liquid transfer pipetting device with a factory adjustable and sealable calibration stop - Google Patents

Liquid transfer pipetting device with a factory adjustable and sealable calibration stop Download PDF

Info

Publication number
US3882729A
US3882729A US365227A US36522773A US3882729A US 3882729 A US3882729 A US 3882729A US 365227 A US365227 A US 365227A US 36522773 A US36522773 A US 36522773A US 3882729 A US3882729 A US 3882729A
Authority
US
United States
Prior art keywords
plunger
piston
barrel
stop
piston chamber
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.)
Expired - Lifetime
Application number
US365227A
Inventor
William J Roach
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.)
Oxford Laboratories Inc
Sherwood Medical Co
Original Assignee
Oxford Laboratories 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
Application filed by Oxford Laboratories Inc filed Critical Oxford Laboratories Inc
Priority to FR7413105A priority Critical patent/FR2225211B1/fr
Priority to JP4210174A priority patent/JPS5010192A/ja
Priority to GB1664774A priority patent/GB1471592A/en
Priority to CA197,631A priority patent/CA1011300A/en
Priority to CH519374A priority patent/CH562637A5/xx
Application granted granted Critical
Publication of US3882729A publication Critical patent/US3882729A/en
Assigned to SHERWOOD MEDICAL COMPANY reassignment SHERWOOD MEDICAL COMPANY MERGER (SEE DOCUMENT FOR DETAILS). Assignors: SHERWOOD MEDICAL INDUSTRIES INC. (INTO)
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L3/00Containers or dishes for laboratory use, e.g. laboratory glassware; Droppers
    • B01L3/02Burettes; Pipettes
    • B01L3/021Pipettes, i.e. with only one conduit for withdrawing and redistributing liquids
    • B01L3/0217Pipettes, i.e. with only one conduit for withdrawing and redistributing liquids of the plunger pump type

Definitions

  • a single piston return spring is utilized within the pipetting device while two spaced apart stops are provided on the plunger for engaging the barrel end, the first stop to be used upon depressing the plunger prior to drawing liquid into a tip attached thereto, and the second stop used upon discharge of the liquid from the tip with a piston overshoot distance.
  • the two stops are selected by lateral movement of the plunger with respect to the pipetting barrel handle as the plunger is depressed.
  • a cylindrical sleeve over a tube that is attached to a pipetter barrel-like housing at one end and provided with means for engaging a hollow detachable plastic tip at its other end.
  • the cylindrical sleeve is resiliently held away from the tip holding end of the tube so as not to normally interfere with the engagement of a tip thereon.
  • the sleeve is manually actuated along the length of the tube to push a used plastic tip off the end of the tube.
  • Plastic tips are normally frictionally engaged with the end of the tube but more positive means of latching may also be provided, the cylindrical sleeve having a capability of removing that type of tip as well.
  • a pair of cooperating cam lobes are provided, one attached to the pipetter barrel adjacent its tip holding rod and the other attached to the sleeve.
  • the spring normally holds the two lobes adjacent one another in a manner to provide space at the end of the tube for holding a detachable tip.
  • the piston of the pipetter terminates outside of the piston chamber in a disc which extends across the width of the internal portion of the pipetter barrel handle.
  • a plunger extending through one end of the barrel handle contacts the piston member end disc but is not integrally formed therewith, thereby permitting lateral movement of the plunger for selecting a piston displacement volume without causing any such movement of the piston.
  • a calibration stop is threadedly attached to the plunger inside the barrel handle.
  • a spring normally urges the piston disc against the plunger and the position of the callibration stops thereon thus determines how far the piston and the plunger will be forced by the spring toward said one end of the barrel handle.
  • the calibration stop thereby determines the amount of fluid displaced in the piston during one operation of the pipetter.
  • the calibration stop is preferably a cylindrical sleeve which is positioned to surround the plunger, the cylindrical sleeve having its end toward the piston disc closed and threadedly attached to the plunger while the opposite open end of the cylindrical sleeve contacts an inside surface of the barrel handles said one end for limiting travel thereof.
  • FIG. 1 illustrates in a sectional view a pipetter including the improvements of the various aspects of the present invention
  • FIG. 2 shows a perspective view of the outside of a portion of the pipetter of FIG. 1;
  • FIGS. 3 and 4 show in an enlarged view two parts of the pipetter of FIGS. 1 and 2.
  • an upper portion 11 of a generally cylindrical elongated barrel handle member has a lower portion 13 threadedly attached thereto.
  • a finger hold 15 is provided integrally with the upper barrel member 11.
  • An elongated tube 17 having a small bore 19 is rigidly attached to an extreme end of the lower barrel handle portion 13.
  • a tip member 21 is provided at the extreme end of the tube 17 and rigidly attached thereto.
  • the outside surface of the tip member 21 is conically shaped, in a very specific form, for frictionally engaging an internal surface of a conically shaped detachable tip 23.
  • a bore 25 is provided through the tip member 21 in order to provide fluid communication between the interior of the detachable tip 23 and the bore 19.
  • a plunger 27 having a threaded steel member 29 encapsulated in a plastic member 31.
  • the extreme plunger member 31 has a first stop surface 33 extending outward therefrom for limiting travel of the plunger assembly 27 into the barrel handle by engaging an extreme outside surface 35 of an end of the barrel handle member 11.
  • a second stop surface 37 is provided for engaging the barrel handle end surface 35 for depressing the plunger assembly 27 a second further distance into the barrel handle 11.
  • a knob, not shown, is attached to the extreme end of the plunger member 31 for receiving an operators thumb when exerting force on the plunger assembly 27 to push it into the barrel handle member 11. When so used, the fingers of the operators hand are normally wrapped around the barrel member 11 under the finger hold 15.
  • a piston chamber 39 is formed by a steel cylindrical sleeve 41 that is rigidly attached at one end thereof to the lower barrel handle member 13.
  • a cylindrically shaped solid piston member 43 has one end thereof positioned within the piston chamber 39 through an end cap 45 attached to the steel sleeve 41.
  • a resilient O- ring 47 surrounds the piston 43 for fluid sealing of that end of the piston chamber 39.
  • the opposite end of the piston chamber 39 is provided in fluid communication with the bore 19 to result in fluid communication be tween the interior ofa detachable tip 23 and the piston chamber 39.
  • the opposite end of the piston 43 is provided with a circular disc 49 rigidly attached thereto and extending substantially entirely across the width of the interior portion of the barrel handle member 11.
  • a spring 51 is normally under compression to force the disc 49 and a movable member 53 away from each other.
  • the movable member 53 is slidable within an aperture of a barrel member dividing piece 55 that is rigidly attached to the barrel member 11 at its internal threads.
  • the spring 51 thus serves to hold the piston 43 at an extreme position with respect to the piston chamber 39 and also to exert force through the slidable member 53 against the resilient O-ring 47.
  • a slot of the piston chamber end piece 45 in which the O-ring 47 is held is made to be smaller than the cross-sectional dimensions of the O- ring 47 so that the slidable member 53 will push down upon the O-ring 47 rather than abutting directly against the piston chamber end member 45. This force causes the O-ring 47 to expand against the piston 43 for improving the fluid seal therebetween.
  • an adjustable calibration stop 57 is threadedly attached to the plunger member 29.
  • the adjustable stop 57 in a preferred form, is a cylindrical sleeve closed at the end thereof that threadedly engages the plunger member 29.
  • An opposite end 59 of the cylindrical stop member 57 abuts against an inside surface of an end of the barrel handle member 11.
  • the tip 23 has its free end immersed in a liquid to be transferred to another container.
  • the plunger member 31 has been depressed until its stop surface 33 abuts the barrel end surface 35.
  • the plunger 31 is permitted to return to its rest position shown in FIG. 1 under the influence of the spring 51, liquid is drawn into the tip 23 as a result of the piston 43 withdrawing a distance from within the piston chamber 39.
  • the pipetter is then moved so that the tip 23 is positioned over a container into which the liquid is to be transferred.
  • the plunger 31 is then depressed to force the liquid out of the tip 23.
  • it is generally preferable to use the overshoot feature of the device by moving the plunger member 31 laterally with respect to the handle member 11 so that the stop surface 37 strikes the barrel end surface 35 rather than being limited in travel by the first stops surface 33.
  • the amount of liquid that is so transferred depends upon the distance the piston 43 travels while liquid is drawn into the tip 23.
  • This liquid volume may be easily calibrated during the manufacture of each pipetting device by placing a calibrating block between the first stop surface 33 and the barrel end surface 35. The plunger member 31 is then depressed to place this block under compression while the calibrating stop 57 is turned with respect to the plunger member 29 until its end 59 tightly engages the inside surface of the barrel end.
  • Some appropriate thread sealant such as an epoxy resin, is applied to hold the calibration stop 57 and the plunger member 29 firmly together to prevent relative rotation therebetween.
  • these members are preferably made of a metal such as stainless steel to prevent any change in the volume capability of the device through use and also for precision in the initial calibration.
  • a mechanical tip ejector is provided as part of the pipetter structure in order to reduce the possibility that contaminated liquid may be transferred through the hands of the operator from a used pipetter tip to some other liquid or test apparatus.
  • the tip ejector includes a hollow cylindrically shaped sleeve 61 positioned about the tube 17 with a spring 63 therebetween.
  • An actuating member 65 is fixedly held to one end of the ejecting sleeve 61.
  • the spring 63 normally holds the actuator 65 and the sleeve 61 as far against the lower barrel member 13 as it can.
  • the sleeve 61 covers only a portion of the tip member 21, thereby leaving sufficient surface for positioning a detachable pipetter tip 23 thereon.
  • the spring 63 pushes against a surface of the tip member 21 at one end and pushes against a surv face of the actuator 65 at its other end.
  • the tip ejecting mechanism of the present invention may be operated by moving the actuator 65 along the length of the tube 17 to push the detachable pipette tip off of the pipetter end.
  • the cylindrical sleeve 61 and actuator 65 are also made to be rotable with respect to the tube 17.
  • the basic pipetter and its ejecting mechanism are cooperatively designed so that such rotary motion is converted 7) into longitudinal motion for pushing a tip 23 off the end of the pipetter. This is accomplished by providing co operating cam lobes 67 and 69.
  • the cam lobe 67 is provided as an integral part of the actuator 65 on an internal surface thereof.
  • a third cam lobe 71 is provided on the actuator 65 and displaced 180 from its other cam lobe 69. Only one cam lobe 67 is provided in this specific example, as part of the lower barrel handle member 13.
  • the lobes 69 and 71 of the tip actuator are positioned adjacent the lobe 67 of the barrel handle member 13.
  • one of the cam lobes 69 or 71 of the actuator rides up onto the cam lobe 67, as shown in FIG. 2, thereby compressing the spring 63 and forcing the tip ejector sleeve 61 against the tip 23.
  • the cam lobes are preferably shaped at their tips so that the position shown in FIG.
  • lobes 67 and 69 are shaped so that the force of the spring 63 will cause the lobes 67 and 69 to slip with respect to one another from the position shown in FIG. 2 back to the rest position illustrated in FIG. 1.
  • Additional cams could be used in order to reduce the amount of rotation that is required to eject a tip but an increase in the number of cam lobes either reduces the longitudinal travel possible of the tip ejector sleeve 61 or makes the side slopes of the cam lobes so steep that the rotatable force required to operate them is excessive.
  • a low slope angle on the sides of the lobes 67, 69 and 71 is preferred.
  • a liquid transfer pipetting device that includes a hollow barrel shaped handle member, a piston chamber within said barrel, a piston element within said piston chamber and extending outward through one end of said piston chamber, means extending through one end of said barrel member for imparting reciprocal motion to said piston, resilient means within said barrel for normally urging said piston toward said one end of said piston chamber, and means extending from an opposite end of said barrel for engaging a hollow detachable tip and for providing fluid communication between another end of said piston chamber and an internal portion of said tip, the improvement comprising:
  • said piston motion imparting means includes a plunger extending out of said one end of the barrel member through an aperture therein and engaging at its other end within the barrel member said piston terminating disc without an attachment thereto that prevents movement of the plunger in a direction downward across saidhollow barrel width, the cross-sectional shapes of said plunger and said barrel member aperture cooperating toprevent relative rotation therebetween,
  • a calibration stop threadedly attached to said plunger within the barrel member for limiting travel of the piston and plunger toward said one end of the barrel member by engaging an internal surface of said one barrel member end, whereby the piston stroke can be calibrated by turning said calibration stop with respect to said plunger, and
  • said calibration stop comprises a hollow cylindrical member surrounding said plunger, said cylindrical member being closed at one end and threadedly attached to said plunger at said closed end, an opposite end of said cylindrical member engaging an inside surface of said one end of said barrel member upon the urging of said internal spring, whereby the spring return position of the piston is calibrated by adjusting the cylindrical calibration stop with respect to the plunger.
  • a liquid transfer pipetting device that includes a hollow barrel shaped handle member, a piston chamber within said barrel, a piston element within said piston chamber and extending outward through one end of said piston chamber, an elongated plunger extending through one end of said barrel member for imparting reciprocal motion to said piston, resilient means within said barrel for normally urging said piston toward said one end of said piston chamber, and means extending from an opposite end of said barrel for engaging a ho]- low detachable tip and for providing fluid communication between another end of said piston chamber and an internal portion of said tip, the improvement comprising:
  • a calibration stop threadedly attached to said elongated plunger within the barrel member for limiting travel of the piston and plunger toward said one end of the barrel member by engaging an internal barrel member surface at its said one end, whereby the piston stroke can be calibrated by turning said calibration stop with respect to said plunger, and
  • said calibration stop comprises a hollow cylindrical member surrounding said plunger, said cylindrical member being closed at one end and threadedly attached to said plunger at said closed end, an opposite end of said cylindrical member engaging the inside surface of said one end of said barrel member upon the urging of said internal spring, whereby the spring return position of the piston is calibrated by adjusting the cylindrical calibration stop with respect to the plunger.
  • a method of accurately calibrating a liquid transfer device that includes a hollow barrel shaped handle member, a piston chamber within said barrel, a piston having one end sealably inserted into said piston chamber with its other end cooperating with an elongated plunger that extends through an opening in one end of said handle member, a spring within said handle member that normally urges said piston and plunger toward said one handle end, said plunger being shaped outside said handle member to have two ledges that may be selected to engage an outside surface of said one handle end by lateral displacement of said plunger, thereby to select the volume of fluid displaced by the piston during one inward stroke of the plunger, said calibrating method comprising the steps of:

Abstract

A hand-held pipetter for extracting a predetermined volume of liquid from a body of liquid, including a movable piston within a piston chamber that is in fluid communication with a liquid receiving tip. An improved calibrating structure is disclosed wherein a calibrating stop is provided internally of the pipetter and threadedly attached to a piston operating plunger for limiting the return of the piston in response to an internal spring.

Description

[4 1 May 13,1975
7/1966 Sherell.............,....1............. 222/309 ABSTRACT 5 Claims, 4 Drawing Figures United States Patent 1 Roach LIQUID TRANSFER PIPETTING DEVICE WITH A FACTORY ADJUSTABLE AND SEALABLE CALIBRATION STOP [75] Inventor: William J. Roach, Foster City, Calif.
Oxford Laboratories, Foster City, Calif.
[73] Assignee:
[22] Filed: May 30, 1973 Appl. No.: 365,227
[30] Foreign Application Priority Data Apr. 16, 1973 Germany............................ 2319175 52 U.S. 73/425.6; 222/309 B0113/02 73/425, 4 P, 425.6;
[58] Field of Search References Cited UNITED STATES PATENTS 3,013,435 R0driques.......................... 73/4256 1 LIQUID TRANSFER PIPETTING DEVICE WITH A FACTORY ADJUSTABLE AND SEALABLE CALIBRATION STOP BACKGROUND OF THE INVENTION This invention is related generally to hand-held liquid transfer devices, and, more specifically to such devices of a precision calibrated pipetting type. This application is related to an application by Richard D. Reed entitled, Transfer Pipetting Device with a Tip Ejector.
Presently available hand-held liquid pipetting instruments are of a type illustrated in U.S. Pat. No. 3,494,201 Roach (1970). Such devices include a tubelike barrel outer structure having a plunger extending outward of one end thereof and a piston attached to the other end of the plunger and positioned within a piston chamber. The piston chamber is maintained in fluid communication with an aperture at an end of the barrel handle which is shaped for frictionally engaging a detachable tip. The piston is held in a normal rest position by one or more springs within the barrel handle. When used to transfer liquid, the pipetter plunger is depressed, the attached tip is placed in a liquid and the plunger released to draw a precise amount of liquid into the tip. The pipetter is then removed to a container for discharge of the liquid. The liquid is discharged from the tip by again depressing the plunger.
In order to make sure that all of the liquid is removed from the tip, many available hand-held pipetting devices provide for moving the plunger (and thus the piston) an overshoot distance from the position to which they were moved prior to drawing liquid into the tip. Such an overshoot feature prevents an error occurring in the volume of liquid transfer, especially with liquids of high viscosity such as serum. The pipetter of the aforementioned U.S. Pat. No. 3,494,201 accomplished such overshoot by the use of two springs of significantly differing strengths.
Another approach for providing the overshoot feature is described in co-pending patent application Ser. No. 282,321, filed Aug. 21, l972. In this co-pending application, a single piston return spring is utilized within the pipetting device while two spaced apart stops are provided on the plunger for engaging the barrel end, the first stop to be used upon depressing the plunger prior to drawing liquid into a tip attached thereto, and the second stop used upon discharge of the liquid from the tip with a piston overshoot distance. The two stops are selected by lateral movement of the plunger with respect to the pipetting barrel handle as the plunger is depressed.
It is a primary object of the present invention to provide as part of a hand-held pipetter a mechanism for removing detachable tips therefrom after use and thereby to allow for such removal without an operator having to touch a used tip.
It is another object of the present invention to provide an improved internal construction of a pipetter to permit a lateral movement of a plunger between positive stops thereof.
SUMMARY OF THE INVENTION These and additional objects are accomplished by the various aspects of the present invention, one of which is the provision of a cylindrical sleeve over a tube that is attached to a pipetter barrel-like housing at one end and provided with means for engaging a hollow detachable plastic tip at its other end. The cylindrical sleeve is resiliently held away from the tip holding end of the tube so as not to normally interfere with the engagement of a tip thereon. When a tip is desired to be removed, however, the sleeve is manually actuated along the length of the tube to push a used plastic tip off the end of the tube. Plastic tips are normally frictionally engaged with the end of the tube but more positive means of latching may also be provided, the cylindrical sleeve having a capability of removing that type of tip as well.
For the convenience of an operator, a pair of cooperating cam lobes are provided, one attached to the pipetter barrel adjacent its tip holding rod and the other attached to the sleeve. The spring normally holds the two lobes adjacent one another in a manner to provide space at the end of the tube for holding a detachable tip. When the lobe on the sleeve is rotated with respect to the barrel handle, however, that lobe rides up on the cam lobe of the barrel handle to convert the rotary motion to longitudinal movement of the sleeve along the tube to dislodge the tip from the end of the tube.
The piston of the pipetter, according to another aspect of the present invention, terminates outside of the piston chamber in a disc which extends across the width of the internal portion of the pipetter barrel handle. A plunger extending through one end of the barrel handle contacts the piston member end disc but is not integrally formed therewith, thereby permitting lateral movement of the plunger for selecting a piston displacement volume without causing any such movement of the piston. A calibration stop is threadedly attached to the plunger inside the barrel handle. A spring normally urges the piston disc against the plunger and the position of the callibration stops thereon thus determines how far the piston and the plunger will be forced by the spring toward said one end of the barrel handle. The calibration stop thereby determines the amount of fluid displaced in the piston during one operation of the pipetter. The calibration stop is preferably a cylindrical sleeve which is positioned to surround the plunger, the cylindrical sleeve having its end toward the piston disc closed and threadedly attached to the plunger while the opposite open end of the cylindrical sleeve contacts an inside surface of the barrel handles said one end for limiting travel thereof.
Additional objects, advantages and structural features of the various aspects of the present invention will become apparent from the following detailed description of a preferred embodiment thereof which should be taken in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 illustrates in a sectional view a pipetter including the improvements of the various aspects of the present invention;
FIG. 2 shows a perspective view of the outside of a portion of the pipetter of FIG. 1; and
FIGS. 3 and 4 show in an enlarged view two parts of the pipetter of FIGS. 1 and 2.
DESCRIPTION OF THE PREFERRED EMBODIMENTS Referring primarily to FIG. 1, an upper portion 11 of a generally cylindrical elongated barrel handle member has a lower portion 13 threadedly attached thereto. A finger hold 15 is provided integrally with the upper barrel member 11. An elongated tube 17 having a small bore 19 is rigidly attached to an extreme end of the lower barrel handle portion 13. A tip member 21 is provided at the extreme end of the tube 17 and rigidly attached thereto. The outside surface of the tip member 21 is conically shaped, in a very specific form, for frictionally engaging an internal surface of a conically shaped detachable tip 23. A bore 25 is provided through the tip member 21 in order to provide fluid communication between the interior of the detachable tip 23 and the bore 19.
At the opposite end of the barrel handle member is a plunger 27 having a threaded steel member 29 encapsulated in a plastic member 31. The extreme plunger member 31 has a first stop surface 33 extending outward therefrom for limiting travel of the plunger assembly 27 into the barrel handle by engaging an extreme outside surface 35 of an end of the barrel handle member 11. A second stop surface 37 is provided for engaging the barrel handle end surface 35 for depressing the plunger assembly 27 a second further distance into the barrel handle 11. A knob, not shown, is attached to the extreme end of the plunger member 31 for receiving an operators thumb when exerting force on the plunger assembly 27 to push it into the barrel handle member 11. When so used, the fingers of the operators hand are normally wrapped around the barrel member 11 under the finger hold 15.
A piston chamber 39 is formed by a steel cylindrical sleeve 41 that is rigidly attached at one end thereof to the lower barrel handle member 13. A cylindrically shaped solid piston member 43 has one end thereof positioned within the piston chamber 39 through an end cap 45 attached to the steel sleeve 41. A resilient O- ring 47 surrounds the piston 43 for fluid sealing of that end of the piston chamber 39. The opposite end of the piston chamber 39 is provided in fluid communication with the bore 19 to result in fluid communication be tween the interior ofa detachable tip 23 and the piston chamber 39.
The opposite end of the piston 43 is provided with a circular disc 49 rigidly attached thereto and extending substantially entirely across the width of the interior portion of the barrel handle member 11. A spring 51 is normally under compression to force the disc 49 and a movable member 53 away from each other. The movable member 53 is slidable within an aperture of a barrel member dividing piece 55 that is rigidly attached to the barrel member 11 at its internal threads. The spring 51 thus serves to hold the piston 43 at an extreme position with respect to the piston chamber 39 and also to exert force through the slidable member 53 against the resilient O-ring 47. A slot of the piston chamber end piece 45 in which the O-ring 47 is held is made to be smaller than the cross-sectional dimensions of the O- ring 47 so that the slidable member 53 will push down upon the O-ring 47 rather than abutting directly against the piston chamber end member 45. This force causes the O-ring 47 to expand against the piston 43 for improving the fluid seal therebetween.
In order to provide a positive limited distance of travel of the piston 43 out of the piston chamber 39, an adjustable calibration stop 57 is threadedly attached to the plunger member 29. The adjustable stop 57, in a preferred form, is a cylindrical sleeve closed at the end thereof that threadedly engages the plunger member 29. An opposite end 59 of the cylindrical stop member 57 abuts against an inside surface of an end of the barrel handle member 11.
In use of the pipetting device shown in FIG. 1, the tip 23 has its free end immersed in a liquid to be transferred to another container. The plunger member 31 has been depressed until its stop surface 33 abuts the barrel end surface 35. When the plunger 31 is permitted to return to its rest position shown in FIG. 1 under the influence of the spring 51, liquid is drawn into the tip 23 as a result of the piston 43 withdrawing a distance from within the piston chamber 39. The pipetter is then moved so that the tip 23 is positioned over a container into which the liquid is to be transferred. The plunger 31 is then depressed to force the liquid out of the tip 23. For liquid discharge, it is generally preferable to use the overshoot feature of the device by moving the plunger member 31 laterally with respect to the handle member 11 so that the stop surface 37 strikes the barrel end surface 35 rather than being limited in travel by the first stops surface 33.
The amount of liquid that is so transferred depends upon the distance the piston 43 travels while liquid is drawn into the tip 23. This liquid volume may be easily calibrated during the manufacture of each pipetting device by placing a calibrating block between the first stop surface 33 and the barrel end surface 35. The plunger member 31 is then depressed to place this block under compression while the calibrating stop 57 is turned with respect to the plunger member 29 until its end 59 tightly engages the inside surface of the barrel end. Some appropriate thread sealant, such as an epoxy resin, is applied to hold the calibration stop 57 and the plunger member 29 firmly together to prevent relative rotation therebetween. Since force is exerted during use of the device on the engaging threads between the plunger member 29 and the calibrating stop 57, these members are preferably made of a metal such as stainless steel to prevent any change in the volume capability of the device through use and also for precision in the initial calibration.
It may also be noted that the force exerted on the O- ring 47 is increased as the plunger assembly 27 is driven down into the barrel assembly 11 since such plunger action compresses the spring 51. Therefore, the drag on the piston 43 produced by frictional engagement with the O-ring 47 is reduced as the piston 43 and plunger assembly 27 are returned by the spring 51 to the rest position shown in FIG. 1. This assures a complete and smooth return of the piston 43 to its extreme rest position and also reduces the wear on the O-ring 47 by reducing the frictional drag thereon through at least a portion of the operating cycle.
After a liquid sample has been transferred by the use of the pipetting device illustrated in FIG. 1, it is desirable to remove the detachable tip 23 without the operator having to touch it. Therefore, a mechanical tip ejector is provided as part of the pipetter structure in order to reduce the possibility that contaminated liquid may be transferred through the hands of the operator from a used pipetter tip to some other liquid or test apparatus. The tip ejector includes a hollow cylindrically shaped sleeve 61 positioned about the tube 17 with a spring 63 therebetween. An actuating member 65 is fixedly held to one end of the ejecting sleeve 61. The spring 63 normally holds the actuator 65 and the sleeve 61 as far against the lower barrel member 13 as it can. in such a normal rest position, the sleeve 61 covers only a portion of the tip member 21, thereby leaving sufficient surface for positioning a detachable pipetter tip 23 thereon. The spring 63 pushes against a surface of the tip member 21 at one end and pushes against a surv face of the actuator 65 at its other end.
The tip ejecting mechanism of the present invention may be operated by moving the actuator 65 along the length of the tube 17 to push the detachable pipette tip off of the pipetter end. For operator convenience, however, the cylindrical sleeve 61 and actuator 65 are also made to be rotable with respect to the tube 17. The basic pipetter and its ejecting mechanism are cooperatively designed so that such rotary motion is converted 7) into longitudinal motion for pushing a tip 23 off the end of the pipetter. This is accomplished by providing co operating cam lobes 67 and 69. The cam lobe 67 is provided as an integral part of the actuator 65 on an internal surface thereof. A third cam lobe 71 is provided on the actuator 65 and displaced 180 from its other cam lobe 69. Only one cam lobe 67 is provided in this specific example, as part of the lower barrel handle member 13.
In the normal rest position of the tip ejector shown in FIG. 1, the lobes 69 and 71 of the tip actuator are positioned adjacent the lobe 67 of the barrel handle member 13. When the actuator 65 is turned with respect to the barrel handle member 13, however, one of the cam lobes 69 or 71 of the actuator rides up onto the cam lobe 67, as shown in FIG. 2, thereby compressing the spring 63 and forcing the tip ejector sleeve 61 against the tip 23. The cam lobes are preferably shaped at their tips so that the position shown in FIG. 2 is an unstable one; that is, the lobes 67 and 69 are shaped so that the force of the spring 63 will cause the lobes 67 and 69 to slip with respect to one another from the position shown in FIG. 2 back to the rest position illustrated in FIG. 1. Additional cams could be used in order to reduce the amount of rotation that is required to eject a tip but an increase in the number of cam lobes either reduces the longitudinal travel possible of the tip ejector sleeve 61 or makes the side slopes of the cam lobes so steep that the rotatable force required to operate them is excessive. For smooth continuous action of the tip ejector, a low slope angle on the sides of the lobes 67, 69 and 71 is preferred.
Although the various aspects of the present invention have been described with respect to a preferred embodiment, it will be understood that the invention is entitled to protection within the full scope of the appended claims.
I claim:
1. In a liquid transfer pipetting device that includes a hollow barrel shaped handle member, a piston chamber within said barrel, a piston element within said piston chamber and extending outward through one end of said piston chamber, means extending through one end of said barrel member for imparting reciprocal motion to said piston, resilient means within said barrel for normally urging said piston toward said one end of said piston chamber, and means extending from an opposite end of said barrel for engaging a hollow detachable tip and for providing fluid communication between another end of said piston chamber and an internal portion of said tip, the improvement comprising:
a disc termination of the piston at its end removed from the piston chamber, said disc extending across the interior space of said barrel member,
said piston motion imparting means includes a plunger extending out of said one end of the barrel member through an aperture therein and engaging at its other end within the barrel member said piston terminating disc without an attachment thereto that prevents movement of the plunger in a direction downward across saidhollow barrel width, the cross-sectional shapes of said plunger and said barrel member aperture cooperating toprevent relative rotation therebetween,
a calibration stop threadedly attached to said plunger within the barrel member for limiting travel of the piston and plunger toward said one end of the barrel member by engaging an internal surface of said one barrel member end, whereby the piston stroke can be calibrated by turning said calibration stop with respect to said plunger, and
means fixing said calibration stop to said plunger for preventing rotation therebetween, whereby the piston stroke is permanently calibrated once the calibration stop has been adjusted and fixed.
2. The improved pipetter according to claim 1 wherein said calibration stop comprises a hollow cylindrical member surrounding said plunger, said cylindrical member being closed at one end and threadedly attached to said plunger at said closed end, an opposite end of said cylindrical member engaging an inside surface of said one end of said barrel member upon the urging of said internal spring, whereby the spring return position of the piston is calibrated by adjusting the cylindrical calibration stop with respect to the plunger.
3. In a liquid transfer pipetting device that includes a hollow barrel shaped handle member, a piston chamber within said barrel, a piston element within said piston chamber and extending outward through one end of said piston chamber, an elongated plunger extending through one end of said barrel member for imparting reciprocal motion to said piston, resilient means within said barrel for normally urging said piston toward said one end of said piston chamber, and means extending from an opposite end of said barrel for engaging a ho]- low detachable tip and for providing fluid communication between another end of said piston chamber and an internal portion of said tip, the improvement comprising:
a calibration stop threadedly attached to said elongated plunger within the barrel member for limiting travel of the piston and plunger toward said one end of the barrel member by engaging an internal barrel member surface at its said one end, whereby the piston stroke can be calibrated by turning said calibration stop with respect to said plunger, and
means fixing said calibration stop to said plunger for preventing rotation therebetween, whereby the calibrated piston stroke is maintained.
4. The improved pipetter according to claim 3 wherein said calibration stop comprises a hollow cylindrical member surrounding said plunger, said cylindrical member being closed at one end and threadedly attached to said plunger at said closed end, an opposite end of said cylindrical member engaging the inside surface of said one end of said barrel member upon the urging of said internal spring, whereby the spring return position of the piston is calibrated by adjusting the cylindrical calibration stop with respect to the plunger.
5. A method of accurately calibrating a liquid transfer device that includes a hollow barrel shaped handle member, a piston chamber within said barrel, a piston having one end sealably inserted into said piston chamber with its other end cooperating with an elongated plunger that extends through an opening in one end of said handle member, a spring within said handle member that normally urges said piston and plunger toward said one handle end, said plunger being shaped outside said handle member to have two ledges that may be selected to engage an outside surface of said one handle end by lateral displacement of said plunger, thereby to select the volume of fluid displaced by the piston during one inward stroke of the plunger, said calibrating method comprising the steps of:
threadingly attaching a piston stop member to said plunger within said handle member in a manner that the spring normally urges said piston and plunger to an extreme rest position wherein the said plunger has been accurately calibrated.

Claims (5)

1. In a liquid transfer pipetting device that includes a hollow barrel shaped handle member, a piston chamber within said barrel, a piston element within said piston chamber and extending outward through one end of said piston chamber, means extending through one end of said barrel member for imparting reciprocal motion to said piston, resilient means within said barrel for normally urging said piston toward said one end of said piston chamber, and means extending from an opposite end of said barrel for engaging a hollow detachable tip and for providing fluid communication between another end of said piston chamber and an internal portion of said tip, the improvement comprising: a disc termination of the piston at its end removed from the piston chamber, said disc extending across the interior space of said barrel member, said piston motion imparting means includes a plunger extending out of said one end of the barrel member through an aperture therein and engaging at its other end within the barrel member said piston terminating disc without an attachment thereto that prevents movement of the plunger in a direction downward across said hollow barrel width, the cross-sectional shapes of said plunger and said barrel member aperture cooperating to prevent relative rotation therebetween, a calibration stop threadedly attached to said plunger within the barrel member for limiting travel of the piston and plunger toward said one end of the barrel member by engaging an internal surface of said one barrel member end, whereby the piston stroke can be calibrated by turning said calibration stop with respect to said plunger, and means fixing said calibration stop to said plunger for preventing rotation therebetween, whereby the piston stroke is permanently calibrated once the calibration stop has been adjusted and fixed.
2. The improved pipetter according to claim 1 wherein said calibration stop comprises a hollow cylindrical member surrounding said plunger, said cylindrical member being closed at one end and threadedly attached to said plunger at said closed end, an opposite end of said cylindrical member engaging an inside surface of said one end of said barrel member upon the urging of said internal spring, whereby the spring return position of the piston is calibrated by adjusting the cylindrical calibration stop with respect to the plunger.
3. In a liquid transfer pipetting device that includes a hollow barrel shaped handle member, a piston chamber within said barrel, a piston element within said piston chamber and extending outward through one end of said piston chamber, an elongated plunger extending through one end of said barrel member for imparTing reciprocal motion to said piston, resilient means within said barrel for normally urging said piston toward said one end of said piston chamber, and means extending from an opposite end of said barrel for engaging a hollow detachable tip and for providing fluid communication between another end of said piston chamber and an internal portion of said tip, the improvement comprising: a calibration stop threadedly attached to said elongated plunger within the barrel member for limiting travel of the piston and plunger toward said one end of the barrel member by engaging an internal barrel member surface at its said one end, whereby the piston stroke can be calibrated by turning said calibration stop with respect to said plunger, and means fixing said calibration stop to said plunger for preventing rotation therebetween, whereby the calibrated piston stroke is maintained.
4. The improved pipetter according to claim 3 wherein said calibration stop comprises a hollow cylindrical member surrounding said plunger, said cylindrical member being closed at one end and threadedly attached to said plunger at said closed end, an opposite end of said cylindrical member engaging the inside surface of said one end of said barrel member upon the urging of said internal spring, whereby the spring return position of the piston is calibrated by adjusting the cylindrical calibration stop with respect to the plunger.
5. A method of accurately calibrating a liquid transfer device that includes a hollow barrel shaped handle member, a piston chamber within said barrel, a piston having one end sealably inserted into said piston chamber with its other end cooperating with an elongated plunger that extends through an opening in one end of said handle member, a spring within said handle member that normally urges said piston and plunger toward said one handle end, said plunger being shaped outside said handle member to have two ledges that may be selected to engage an outside surface of said one handle end by lateral displacement of said plunger, thereby to select the volume of fluid displaced by the piston during one inward stroke of the plunger, said calibrating method comprising the steps of: threadingly attaching a piston stop member to said plunger within said handle member in a manner that the spring normally urges said piston and plunger to an extreme rest position wherein the stop member engages an inside surface of said one handle member end, holding said plunger against the force of said spring with a predetermined distance between the outside surface of said one handle member end and one of said plunger ledges, turning said stop member relative to said plunger until the stop member has advanced therealong to firmly engage the inside surface of said one handle member end, fixing said stop member to said plunger to prevent further rotation therebetween, and releasing said plunger, whereby the amount of fluid displaced in the piston chamber by one stroke of said plunger has been accurately calibrated.
US365227A 1973-04-16 1973-05-30 Liquid transfer pipetting device with a factory adjustable and sealable calibration stop Expired - Lifetime US3882729A (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
FR7413105A FR2225211B1 (en) 1973-04-16 1974-04-12
JP4210174A JPS5010192A (en) 1973-04-16 1974-04-15
GB1664774A GB1471592A (en) 1973-04-16 1974-04-16 Piston pipette for transferring small quantities of liquid
CA197,631A CA1011300A (en) 1973-04-16 1974-04-16 Liquid transfer pipetting device with a factory adjustable and sealable calibration stop
CH519374A CH562637A5 (en) 1973-04-16 1974-04-16

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
DE2319175A DE2319175A1 (en) 1973-04-16 1973-04-16 DETAIL PISTON PIPETTE

Publications (1)

Publication Number Publication Date
US3882729A true US3882729A (en) 1975-05-13

Family

ID=5878263

Family Applications (2)

Application Number Title Priority Date Filing Date
US365227A Expired - Lifetime US3882729A (en) 1973-04-16 1973-05-30 Liquid transfer pipetting device with a factory adjustable and sealable calibration stop
US365209A Expired - Lifetime US3918308A (en) 1973-04-16 1973-05-30 Liquid transfer pipetting device with a tip ejector

Family Applications After (1)

Application Number Title Priority Date Filing Date
US365209A Expired - Lifetime US3918308A (en) 1973-04-16 1973-05-30 Liquid transfer pipetting device with a tip ejector

Country Status (3)

Country Link
US (2) US3882729A (en)
DE (1) DE2319175A1 (en)
SE (1) SE386080B (en)

Cited By (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2658592A1 (en) * 1976-01-07 1977-11-10 George Goda PIPETTE
US4442722A (en) * 1982-02-23 1984-04-17 Beckman Instruments Inc. Plunger operated pipet
US4466298A (en) * 1981-06-17 1984-08-21 Labsystems Oy Thermal expansion resistant pipette
US4487081A (en) * 1982-08-27 1984-12-11 Donald H. De Vaughn Pipetting techniques using replaceable tips
US4537058A (en) * 1982-07-06 1985-08-27 Sensormedics Corporation Volume calibration syringe
USRE32210E (en) * 1974-10-15 1986-07-22 Device for ejecting the removable tip of a pipette
US4779467A (en) * 1987-01-28 1988-10-25 Rainin Instrument Co., Inc. Liquid-end assembly for multichannel air-displacement pipette
US4790176A (en) * 1986-11-27 1988-12-13 Marteau D Autry Eric Process and device for calibrating a sampling and metering pipette
US5012682A (en) * 1988-10-21 1991-05-07 Firma Eppendorf-Netheler-Hinz Gmbh Pipetting device
US5104624A (en) * 1989-10-20 1992-04-14 Costar Corporation Pipetter
US5580016A (en) * 1993-07-07 1996-12-03 Helena Laboratories Corporation Support system for an equipment housing
US5583279A (en) * 1993-06-21 1996-12-10 Helena Laboratories Corporation Method for calibrating a piston and cylinder type applicator
WO2001066253A1 (en) * 2000-03-09 2001-09-13 Rainin Instrument Llc. Ergonomic return springless manual air displacement pipette
US20030101831A1 (en) * 2000-04-07 2003-06-05 Francois Viot Pipette with simplified disassembly
US20030147781A1 (en) * 2000-04-07 2003-08-07 Francois Viot Liquid sample pipette with tip ejecting mechanism
US20040028564A1 (en) * 2000-04-07 2004-02-12 Francois Viot Pipette with tip ejector
US20050191215A1 (en) * 2000-04-07 2005-09-01 Gilson, Inc. Liquid sample pipette with detachable ejector
US20070014696A1 (en) * 2005-07-16 2007-01-18 Peter Molitor Plunger stroke pipette
US20070272037A1 (en) * 2003-11-19 2007-11-29 Juha Telimaa Pipette With a Tip Removing Mechanism
CN112517097A (en) * 2020-12-01 2021-03-19 夏季 Micro liquid transfer device

Families Citing this family (27)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2549477C3 (en) * 1975-11-05 1982-01-07 Eppendorf Gerätebau Netheler + Hinz GmbH, 2000 Hamburg Pipetting device
US4009611A (en) * 1976-05-13 1977-03-01 Oxford Laboratories Inc. Hand-held micropipettor with improved pipette tip ejector
US4369665A (en) * 1978-01-11 1983-01-25 Indicon Inc. Manually holdable automatic pipette
US4187724A (en) * 1978-01-11 1980-02-12 Indicon Inc. Replaceable tip for a pipette
WO1981001666A1 (en) * 1979-12-10 1981-06-25 Indicon Inc Replaceable tip for a pipette
US4567780A (en) * 1984-03-12 1986-02-04 American Hospital Supply Corporation Hand-held pipette with disposable capillary
US4679446A (en) * 1985-09-09 1987-07-14 Baxter Travenol Laboratories, Inc. Multi-volume displacement pipette
US4824641A (en) * 1986-06-20 1989-04-25 Cetus Corporation Carousel and tip
US4863695A (en) * 1987-04-28 1989-09-05 Hewlett-Packard Company Pipette assembly
JP2554666B2 (en) * 1987-09-18 1996-11-13 株式会社ニチリョー Variable pipette
US5104625A (en) * 1989-10-04 1992-04-14 Drummond Scientific Company Pipetter device
DE4014333A1 (en) * 1990-05-04 1991-11-28 Eppendorf Geraetebau Netheler PIPETTING DEVICE
FR2807343B1 (en) * 2000-04-07 2002-12-06 Gilson Sa COLLECTION PIPETTE PROVIDED WITH MEANS FOR ADJUSTING THE VOLUME TO BE COLLECTED
JP4148894B2 (en) 2001-10-16 2008-09-10 マトリックス・テクノロジイズ・コーポレーション Hand-held pipette
US20060027033A1 (en) * 2002-10-16 2006-02-09 Richard Cote Hand-held pipette employing voice recognition control
US7284454B2 (en) * 2004-05-27 2007-10-23 Matrix Technologies Corporation Hand held pipette
DE10355914B3 (en) * 2003-11-29 2005-08-18 Eppendorf Ag Pipette arrangement for metering liquids comprises attachment for placing on pipette tip, and disposable unit for detaching pipette tip from attachment with disposable unit assigned to attachment
DK2279405T3 (en) 2008-05-13 2014-01-13 Advanced Liquid Logic Inc Drip actuator devices, systems and methods
AU2011221243B2 (en) 2010-02-25 2016-06-02 Advanced Liquid Logic, Inc. Method of making nucleic acid libraries
EP2641097A4 (en) 2010-11-17 2016-09-07 Capacitance detection in a droplet actuator
AU2012250917B2 (en) 2011-05-02 2015-09-17 Advanced Liquid Logic, Inc. Molecular diagnostics platform
EP2711079B1 (en) 2011-05-09 2018-12-19 Advanced Liquid Logic, Inc. Microfluidic Feedback Using Impedance Detection
US9140635B2 (en) 2011-05-10 2015-09-22 Advanced Liquid Logic, Inc. Assay for measuring enzymatic modification of a substrate by a glycoprotein having enzymatic activity
DE102012002169B4 (en) * 2012-02-07 2017-02-09 Eppendorf Ag pipette
CA2920390A1 (en) 2013-08-30 2015-03-05 Illumina, Inc. Manipulation of droplets on hydrophilic or variegated-hydrophilic surfaces
AU2017246899B2 (en) 2016-04-07 2020-04-09 Illumina, Inc. Methods and systems for construction of normalized nucleic acid libraries
EP3680016B1 (en) * 2019-01-08 2021-08-11 Eppendorf AG Pipette for use with a pipette tip

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3013435A (en) * 1959-04-06 1961-12-19 Microchemical Specialties Co Buret
US3261509A (en) * 1965-02-05 1966-07-19 Clay Adams Inc Variable capacity dispensing device

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3853012A (en) * 1971-10-04 1974-12-10 Medical Laboratory Automation Pipettes

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3013435A (en) * 1959-04-06 1961-12-19 Microchemical Specialties Co Buret
US3261509A (en) * 1965-02-05 1966-07-19 Clay Adams Inc Variable capacity dispensing device

Cited By (28)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USRE32210E (en) * 1974-10-15 1986-07-22 Device for ejecting the removable tip of a pipette
DE2658592A1 (en) * 1976-01-07 1977-11-10 George Goda PIPETTE
US4466298A (en) * 1981-06-17 1984-08-21 Labsystems Oy Thermal expansion resistant pipette
US4442722A (en) * 1982-02-23 1984-04-17 Beckman Instruments Inc. Plunger operated pipet
US4537058A (en) * 1982-07-06 1985-08-27 Sensormedics Corporation Volume calibration syringe
US4487081A (en) * 1982-08-27 1984-12-11 Donald H. De Vaughn Pipetting techniques using replaceable tips
US4790176A (en) * 1986-11-27 1988-12-13 Marteau D Autry Eric Process and device for calibrating a sampling and metering pipette
US4779467A (en) * 1987-01-28 1988-10-25 Rainin Instrument Co., Inc. Liquid-end assembly for multichannel air-displacement pipette
US5012682A (en) * 1988-10-21 1991-05-07 Firma Eppendorf-Netheler-Hinz Gmbh Pipetting device
US5104624A (en) * 1989-10-20 1992-04-14 Costar Corporation Pipetter
US5583279A (en) * 1993-06-21 1996-12-10 Helena Laboratories Corporation Method for calibrating a piston and cylinder type applicator
US5846395A (en) * 1993-06-21 1998-12-08 Helena Laboratories Corporation Automatic electrophoresis method and apparatus
US5580016A (en) * 1993-07-07 1996-12-03 Helena Laboratories Corporation Support system for an equipment housing
US6352673B1 (en) * 2000-03-09 2002-03-05 Rainin Instrument Ergonomic return springless manual air displacement pipette
US6645433B2 (en) * 2000-03-09 2003-11-11 Rainin Instrument, Llc Ergonomic return springless manual air displacement pipette
WO2001066253A1 (en) * 2000-03-09 2001-09-13 Rainin Instrument Llc. Ergonomic return springless manual air displacement pipette
US6994828B2 (en) 2000-04-07 2006-02-07 Gilson S.A.S. Liquid sample pipette with tip ejecting mechanism
US20030147781A1 (en) * 2000-04-07 2003-08-07 Francois Viot Liquid sample pipette with tip ejecting mechanism
US20040028564A1 (en) * 2000-04-07 2004-02-12 Francois Viot Pipette with tip ejector
US20050191215A1 (en) * 2000-04-07 2005-09-01 Gilson, Inc. Liquid sample pipette with detachable ejector
US20030101831A1 (en) * 2000-04-07 2003-06-05 Francois Viot Pipette with simplified disassembly
US6997067B2 (en) 2000-04-07 2006-02-14 Gilson S.A.S. Liquid sample pipette with detachable ejector
US7264779B2 (en) * 2000-04-07 2007-09-04 Gilson S.A.S. Pipette with tip ejector
US20070272037A1 (en) * 2003-11-19 2007-11-29 Juha Telimaa Pipette With a Tip Removing Mechanism
US7690274B2 (en) * 2003-11-19 2010-04-06 Thermo Fisher Scientific Oy Pipette with a tip removing mechanism
US20070014696A1 (en) * 2005-07-16 2007-01-18 Peter Molitor Plunger stroke pipette
US8133453B2 (en) * 2005-07-16 2012-03-13 Eppendorf Ag Plunger stroke pipette
CN112517097A (en) * 2020-12-01 2021-03-19 夏季 Micro liquid transfer device

Also Published As

Publication number Publication date
US3918308A (en) 1975-11-11
DE2319175A1 (en) 1974-10-31
SE386080B (en) 1976-08-02
AU6759974A (en) 1975-10-09

Similar Documents

Publication Publication Date Title
US3882729A (en) Liquid transfer pipetting device with a factory adjustable and sealable calibration stop
US3855867A (en) Liquid transfer pipetting device
US4099548A (en) Hand-held pipette for repetitively dispensing precise volumes of liquid
US5104624A (en) Pipetter
US4589870A (en) Incremental actuator for syringe
US4567780A (en) Hand-held pipette with disposable capillary
US3302462A (en) Pipetting device with stop mechanism
US4054062A (en) Hand-held micropipettor with improved accuracy of liquid volumes transferred
US5364595A (en) Pipette device constructed to prevent contamination by aerosols or overpipetting
US4096750A (en) Hand-held micropipettor with fluid transfer volume adjustment mechanism
US3766785A (en) Automatic pipette
US3991617A (en) Device for ejecting the removable tip of a pipette
US3786683A (en) Hand-operated pipette
US4096751A (en) Hand-held micropipettor with fluid transfer volume adjustment mechanism
US3494201A (en) Pipetting system
US3646817A (en) Pipette
US3827305A (en) Adjustable pipette
US3290946A (en) Pipetting device
US4086062A (en) Digital titration device
EP0028478A1 (en) Improvements in or relating to pipette means
RU2252408C2 (en) Adjustable hypodermic
US3741732A (en) Fractional-fill pipette assembly
JPS6366577B2 (en)
EP0496784B1 (en) Pipetter
US3732735A (en) Pipettes

Legal Events

Date Code Title Description
AS Assignment

Owner name: SHERWOOD MEDICAL COMPANY

Free format text: MERGER;ASSIGNOR:SHERWOOD MEDICAL INDUSTRIES INC. (INTO);REEL/FRAME:004123/0634

Effective date: 19820412