WO2006132873A1 - Vectored air web handling apparatus - Google Patents

Vectored air web handling apparatus Download PDF

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Publication number
WO2006132873A1
WO2006132873A1 PCT/US2006/021043 US2006021043W WO2006132873A1 WO 2006132873 A1 WO2006132873 A1 WO 2006132873A1 US 2006021043 W US2006021043 W US 2006021043W WO 2006132873 A1 WO2006132873 A1 WO 2006132873A1
Authority
WO
WIPO (PCT)
Prior art keywords
web
holes
control device
web material
hole
Prior art date
Application number
PCT/US2006/021043
Other languages
French (fr)
Inventor
Bruce Jerome Solberg
Original Assignee
The Procter & Gamble Company
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 The Procter & Gamble Company filed Critical The Procter & Gamble Company
Priority to CA2610064A priority Critical patent/CA2610064C/en
Priority to EP06760579A priority patent/EP1899249A1/en
Priority to BRPI0611109-2A priority patent/BRPI0611109A2/en
Priority to MX2007015354A priority patent/MX2007015354A/en
Publication of WO2006132873A1 publication Critical patent/WO2006132873A1/en

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65HHANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
    • B65H23/00Registering, tensioning, smoothing or guiding webs
    • B65H23/04Registering, tensioning, smoothing or guiding webs longitudinally
    • B65H23/24Registering, tensioning, smoothing or guiding webs longitudinally by fluid action, e.g. to retard the running web
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65HHANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
    • B65H2406/00Means using fluid
    • B65H2406/10Means using fluid made only for exhausting gaseous medium
    • B65H2406/11Means using fluid made only for exhausting gaseous medium producing fluidised bed
    • B65H2406/111Means using fluid made only for exhausting gaseous medium producing fluidised bed for handling material along a curved path, e.g. fluidised turning bar
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65HHANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
    • B65H2406/00Means using fluid
    • B65H2406/10Means using fluid made only for exhausting gaseous medium
    • B65H2406/11Means using fluid made only for exhausting gaseous medium producing fluidised bed
    • B65H2406/113Details of the part distributing the air cushion
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65HHANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
    • B65H2406/00Means using fluid
    • B65H2406/10Means using fluid made only for exhausting gaseous medium
    • B65H2406/11Means using fluid made only for exhausting gaseous medium producing fluidised bed
    • B65H2406/113Details of the part distributing the air cushion
    • B65H2406/1132Multiple nozzles arrangement

Definitions

  • the present invention relates to devices for handling web materials that require support and control.
  • the present invention relates to a device that supports a web on a cushion of air.
  • the present invention relates to devices capable of removing dust generated by a moving web in a web-handling process.
  • web materials handled under such processes are generally planar with a thickness much smaller than the dimensions of the material.
  • Such webs are likely to include paper, cloth, plastic film, woven, non-woven, and metal films.
  • These web materials are known to present unique process challenges. For example, it is known that typical flexible web materials are easily damaged, and can result in final products that are unacceptable.
  • Such thin materials that are produced into wound webs are also known to have fluctuations in the wound web tension throughout the length and width of the web. Such fluctuations can be problematic as the web is unwound and transported by processing equipment during the conversion of large rolls of web material into finished products.
  • Such web tension fluctuations may result in wrinkled, broken webs, webs of varying widths, a loss of control of the web material during processing, and ultimately provide for a loss of quality and/or productivity.
  • the web material may be recently imprinted, and, thereby, carrying a wet image on at least one surface.
  • the web material may be delicate and have a relatively low basis weight.
  • the web material may be wet. Therefore, preventing contact of the web material with a control surface can be beneficial, for example, if the control surface is dirty or greasy.
  • mechanical flaws in the surface of conventional control systems may cut or severely scar the surface of the web material.
  • moving and/or tensioned web materials may have inherent properties that provide additional difficulty in handling.
  • a material may have a lateral contraction when the material is subjected to an applied elongation.
  • Such lateral contraction in a tensioned web material is known as the "Poisson lateral contraction effect.”
  • the stress and/or strain characteristics of the web material may vary laterally to a considerable extent. This may cause one portion of the web substrate to be tight and another portion of the web substrate to be loose.
  • low basis weight materials because of their ability to stretch, can easily become wrinkled as the unconstrained web material moves over traditional supports. This can lead to wrinkles in the finished product.
  • a device that provides contactless support of a moving web material that is capable of reducing the Poisson lateral contraction in a moving and/or tensioned web material is required.
  • Such a device would be capable of controlling or turning a web material without wrinkling or significant stretching. Further, it is also a benefit to be able to provide such a device with the ability to remove dust from the web material as the web material progress through a web handling or converting process.
  • the present invention relates to an apparatus for reducing the Poisson lateral contraction in a tensioned web substrate.
  • the apparatus comprises a surface having a machine direction, a cross-machine directional orthogonal to the machine direction, and a z-direction orthogonal to both the machine direction and the cross-machine direction.
  • the apparatus is provided with a plurality of holes disposed upon the surface, each of the holes being operatively connected to a source of positive pressure.
  • the holes provide fluid communication of the positive pressure through the surface to the web substrate passing proximate thereto.
  • Each of the holes has a longitudinal axis associated thereto.
  • the longitudinal axis of a first of the holes has a first inclination relative to the z-direction and the longitudinal axis of a second of the holes has a second inclination relative to the z-direction. Further, the first and second inclinations are different.
  • the present invention also relates to an apparatus for reducing the Poisson lateral contraction in a machine direction moving web substrate.
  • the apparatus comprises a surface having a machine direction, a cross-machine directional orthogonal to the machine direction, and a z-direction orthogonal to both the machine direction and the cross-machine direction.
  • a plurality of holes are disposed upon the surface and each hole is operatively connected to a source of positive pressure so that the holes provide a fluid communication of the positive pressure through the surface to the web substrate passing proximate thereto.
  • Each of the holes has a longitudinal axis associated thereto and the longitudinal axis of a first of the holes has a first inclination relative to the z-direction and the longitudinal axis of a second of the holes has a second inclination relative to the z- direction.
  • the longitudinal axis of a third of the holes has a third inclination relative to the z-direction. Further, the first and second inclinations are different. Additionally, the third hole is spaced from the first and second holes in the cross-machine direction and, the first and second inclinations are directed toward a first edge of the web substrate and the third inclination is directed toward a second edge of the web substrate.
  • the present invention further relates to an apparatus for reducing the Poisson lateral contraction in a machine direction moving web substrate.
  • the apparatus comprises a surface having a machine direction, a cross-machine directional orthogonal to the machine direction, and a z-direction orthogonal to both the machine direction and the cross-machine direction.
  • a plurality of holes are disposed upon the surface so that each of the holes is operatively connected to a source of positive pressure.
  • the holes provide a fluid communication of the positive pressure through the surface to the web substrate passing proximate thereto.
  • Each of the holes has a longitudinal axis associated thereto.
  • the longitudinal axis of a first of the holes has a first inclination relative to the z-direction and the longitudinal axis of a second of the holes has a second inclination relative to the z-direction and the longitudinal axis of a third of the holes has a third inclination relative to the z-direction.
  • the first and second inclinations are different.
  • the third hole is spaced from the first and second holes in the machine direction and, the first, second, and third inclinations are directed toward a first edge of the web substrate.
  • FIG. 1 is a perspective view with a partial breakaway of a web control device in accordance with the present invention
  • FIG. 2 is a perspective view of another embodiment of a web control device
  • FIG. 3 is a cross-sectional view of an exemplary web control device
  • FIG. 4 is a cross-sectional view of an exemplary web control device
  • FIG. 5 is a plan view of an exemplary web control device
  • FIG. 6 is a perspective view of an exemplary alternative embodiment of a web control device in use
  • FIG. 7 is a plan view of an exemplary alternative embodiment of a web control device in use.
  • a moving web material 12 having a machine direction (MD), a cross-machine direction (CD) generally orthogonal and coplanar thereto, and a z-direction orthogonal to both the MD and CD, approaches proximate to the surface of the web control device 10.
  • web control device 10 can be provided as a generally cylindrical hollow bar having a plurality of holes 14 disposed thereon. Each of the plurality of holes 14 is capable of providing fluid contact between the central portion 16 and the outer portion 18 of web control device 10.
  • Fig. 2 shows an exemplary web control device 10 in the form of a generally flat plate.
  • Each of a plurality of holes 14 disposed upon web control device 10 is capable of providing fluid contact between opposing surfaces of the web control device 10.
  • Such a generally flat plate web control device 10 could be attached to an air plenum, or be provided as a surface of an air plenum, in order for holes 14 to provide fluid contact of air from inside such a plenum to the outer surface of the web control device 10.
  • web control device 10 can manifest itself as, or be adapted to conform with, virtually any type of web handling device known to those of skill in the art including, but not limited to, folding boards, folding bars, folding rails, folding fingers, folding plows, and the like.
  • web material 12 is generally provided with movement in a first direction (generally, the MD) indicated by the arrow MD.
  • first direction generally, the MD
  • web device 10 can provide web material 12 with a change in direction.
  • web control device 10 can be utilized to stabilize, remove droop, and/or provide little, if any, change in direction to web material 12 passing proximate to web control device 10 as required.
  • Inner portion 16 of web control device 10 can function as a central plenum that is supplied with air under pressure. Such pressurized air can be blown through holes 14 that provide fluid contact between inner portion 16 and outer portion 18 of web control device 10.
  • Each of the plurality of holes 14 disposed in web control device 10 is provided with a longitudinal axis 20.
  • the longitudinal axis 20 of each hole 14 is provided with a vector component, or inclination, relative to the z-direction of web control device 10.
  • the longitudinal axis 20 of each of the holes 14 is arranged to provide fluid contact from the inner portion 16 of the web control device 10 to the surface of web material 12 at an angle relative to the Z-direction.
  • the longitudinal axis 20 of each of the holes 14 has vector components relative to both the CD and z-directions.
  • the longitudinal axis 20 of each of the holes 14 on the respective side of the center C of web control device 10 are provided with an angle having vector components relative to both the CD and z-directions from the center C of web control device 10 toward the respective edge of web control device 10 and/or web material 12.
  • the longitudinal axis 20 of the holes 14 present on web control device 10 that are to the right of center C of the web control device 10 are angled toward the right-hand edge of the web control device 10.
  • the longitudinal axis 20 of the holes 14 which are disposed upon the surface of web control device 10 which are to the left of center C of the web control device 10 are angled toward the left-hand edge of the web control device 10.
  • the longitudinal axis 20 of the holes 14 disposed upon a respective side of center C of web control device 10 are provided with vector components in both the CD and z-direction so that holes 14 disposed proximate to the center C of web control device 10 have a larger z-direction component than holes 14 disposed proximate to an edge of web control device 10. This means that the longitudinal axis 20 of holes 14 disposed proximate to an edge of web control device 10 have a larger CD component than holes 14 disposed proximate to the center C of web control device 10.
  • each longitudinal axis 20 of each hole 14 is provided with an increasing CD vector component. This provides a progressive angular appearance of the orientation of each longitudinal axis 20 of each hole 14 from the center C to the respective edge of web control device 10.
  • the number of holes 14, the apparent size of the holes 14, the air pressure provided to inner portion 16 of web control device 10, and the like can be varied according to the porosity, density, web wrap angle, nominal tension, and other physical characteristics present in the web material 12 and by the requirements of the relevant processing system. Without desiring to be bound by theory, it is believed that the web control device 10 is capable of providing support for web material 12 as well as providing control for web material 12 because web control device 10 operates as a circular air foil.
  • One of skill in the art will be able to utilize mathematical modeling systems to show the presence of a viscous drag upon the surface of the web control device 10 for a portion of the surface.
  • the web material Since the CD stress/strain characteristics of the web material can changes quite dramatically (+/- 30% normally) the web material will tend to steer from one side to another of a conventional air bar/air handling device and result in a loss of control and weave of the web material, and causing foldovers. Contrastingly, the vectored air handling approach as described herein can reduce the volume of fluid necessary to maintain support of a web material 12 traversing proximate web control device 10 while at the same time maintain better control of a traversing web material 12. By directing and limiting the amount of reflected air evoluted from holes 14 as described herein, the web control device 10 does not fully lift the web material 12 while providing small regions of drag disposed between each hole 14. Thus, the web material 12 tends to remain 'wetted' to the surface of web control device 10 thereby providing web control device 10 with heretofore unrealized control of a web material 12 passing proximate web control device 10.
  • a preferred embodiment of the web control device 10 is depicted showing the layout of holes 14 for optimum performance for removing any effects due to Poisson lateral contraction upon a web substrate 12 passing proximate to web control device 10.
  • a first line of circular holes 14 are preferably positioned 5-20 degrees radially from the turn entrance (and exit) of web control device 10, with the center of the first hole 14 being aligned with the centerline of web material 12.
  • the longitudinal axis 20 of the holes 14 are preferably oriented outward towards an edge of the web control device 10 and the web material 12 passing proximate thereto so that the angle of the longitudinal axis 20 with respect to the Z-direction increases and decreases relative to the CD.
  • the holes 14 range from about 0.050 inches (1.27 mm) to 0.125 inches (3.18 mm) diameter and from about 0.250 inches (6.35 mm) to 0.750 inches (19.1 mm) spacing on centers.
  • a second line or row of holes 14 can be provided to run parallel to the first row in the CD and spaced from about 0.250 inches (6.35 mm) to 0.750 inches (19.1 mm) (i.e., about 10 degrees radially) from the first CD row of holes 14.
  • the dimensions of the holes 14 from the second CD row are equivalent to the dimensions of the holes 14 of the first row.
  • the diameter of a respective hole 14, the CD and/or MD spacing of holes 14, the size (diameter) of the surface comprising holes 14, and/or the air pressure present within inner portion 16 applied to web material 12 through hole 14 can be effective to determine what diameter and spacing of holes 14 will provide optimal web handling, while reducing the effects of lateral contraction due to a tension T applied to web material 12.
  • a web control device 10 having a larger surface (larger diameter) will require a higher number density of holes 14 present upon web control device 10.
  • web control device 10 with first and second rows of holes 14 with vector components in any combination of the MD, CD, and z-directions, and by providing the surface of web control device 10 with a curvature suitable for handling a web substrate 12 can facilitate use of web control device 10 in consort with a dust capture apparatus (not shown) in order to capture debris released from web substrate 12 as discussed infra.
  • the longitudinal axis 20 of holes 14 can be provided in web control device 10 in order to provide a radial, or MD, component to a fluid exiting web control device 10 from inner portion 14 through hole 14.
  • holes 14 can be provided with a longitudinal axis 20 that can direct fluid radially away from the surface of the web control device 10 as well as transverse to the
  • each hole 14 can be provided with vector components in any combination of the MD 3 CD, and z-directions.
  • providing the longitudinal axis 20 of holes 14 with a vector component in the MD can provide a MD thrust component to a web material 12 traversing proximate the outer portion 18 of web control device 10. It is believed that an MD momentum is transferred from the fluid to web material 12 though viscous coupling of the web to the air by providing holes 14 having a longitudinal axis 20 with a vector component in the MD.
  • the thrust component is applied to web material 12 in the direction of web material 12 motion to overcome the effect of drag over the web handling device 10.
  • any force vectoring in the MD can overcome the viscous form drag and add a motive force to the web material 12.
  • the longitudinal axis 20 of holes 14 can be provided with a vector component in a direction opposing the MD of web material 12.
  • a preferred embodiment of web control device 10 provides each of the holes 14 in succeeding CD oriented rows with an advance of one hole 14 diameter D in the CD toward a respective edge 20 from centerline C of web control device 10.
  • each of the holes 14 in succeeding CD oriented rows are provided with a MD spacing S from an adjacent CD oriented row.
  • each hole 14 upon the surface of web control device 10 in any pattern utilizing any diameter D of holes 14 at any CD and MD spacing at any number density required to provide the necessary, appropriate, and/or sufficient reduction to the effects of lateral contraction due to a tension T applied to web material 12 passing proximate to web control device 10. It is believed that providing an MD spacing S between successive CD oriented rows of holes 14 that advance one hole 14 diameter D in the CD toward a respective edge 20 from centerline C of the web control device 10 can provide web material 12 with an increased contact with a fluid transmitted from holes 14 as web material 12 traverses proximate to web control device 10.
  • any lateral contraction due to an applied tension T to web material 12 is reduced and any resulting "corrugation" effects upon web material 12 due to the presence of high air jet forces acting on the same part of web material 12 by air handling devices already known in the art, are effectively eliminated.
  • the fluid exiting each hole 14 can be provided with a higher jet velocity. Providing the fluid exiting each hole 14 with a higher jet velocity can increase the amount of fluid available to penetrate the web material 12 and reduce the amount of fluid reflected from impinging web material 12. In this way, drag upon web material 12 with respect to web control device 10 is increased thereby facilitating an increased control of web material 12 by web control device 10.
  • a web material 12 can be produced from a papermaking machine or the like.
  • the web material 12 produced from a former, through-air dryer, or pressing section can be transported by a press felt or fabric to a press roll that transfers the web material 12 to a Yankee dryer roll.
  • the web material 12 can then be brought into intimate engagement with the surface of a Yankee dryer whereby the web is rapidly dried by heat transfer from the dryer and from an air cap generally positioned over the top of the dryer.
  • the resulting web material 12 can be scraped off the surface of the dryer by a doctor blade.
  • the web control device 10 described herein can then be used to direct the web material 12 through a calendar.
  • the web material 12 exiting such a calendar can then again be redirected by a second web control device 10 as described herein to a reel or winding device wherein the web material 12 is wound onto reels as would be known to those of skill in the art.
  • an exemplary schematic plan view of the web control device 10 can be used to change the direction of web material 12 in a processing line.
  • the web material 12 is moving in a first direction prior to fluid contact proximate to the web control device 10.
  • the web control device 10 can be provided with a longitudinal axis and positioned so that the longitudinal axis of the web control device 10 has an angular relationship to the directional movement of the web material 12.
  • the longitudinal axis of web control device 10 can be provided at an angle of 45° relative to the machine direction of the web material 12. In this manner, the web control device 10 can redirect the web material 12 in a second direction of motion to further processing steps.
  • the machine direction of web material 12 has been altered 90° from the machine direction of the web material 12 prior to contact with web control device 10 after proximate fluid contact with web control device 10.
  • web control device 10 can be provided to change the direction of web material 12 in a papermaking process.
  • the web material 12 can be provided with a first direction prior to proximate fluid contact with web control device 10.
  • Web control device 10 can be provided with a longitudinal axis that is generally parallel to the cross-machine direction of the web material 12.
  • a wrap angle can vary from about 0° to about 180° relative to the surface of web control device 10.
  • holes 14 with a generally cylindrical geometry, a pressurized fluid contained within inner portion 16 of web control device 10 and transported to the outer portion 18 of web control device 10 through holes 14 can provide a uniform cushion pressure.
  • the web material 12 can be supported more uniformly and can maintain a more stable float condition.
  • Such a cylindrical hole 14 design can allow for reduced pressure requirements and thus, reduced air supply fan horsepower, resulting in energy savings.
  • coated web materials 12 are not adversely affected with lane modeling of the wet coating or heat streaking due to the drying aspect of the high velocity of a cylindrical hole 14 discharge design.
  • Pressurized gas preferably air
  • a suitable supply such as a fan
  • the inner portion 16 of web control device 10 is preferably in fluid communication with a cavity or plenum disposed within inner portion 16 of web control device 10.
  • a cushion pressure tap can be used to measure web support pressure.
  • Fan supply pressure (the pressure from the fan that builds within the inner portion 16 of the web control device 10) can be measured as required.
  • the air pressure can be provided as required and can depend upon the characteristics of the web material 12 and the configuration and design of the web control device 10 or any other web material 12 processing equipment being used.
  • web control device 10 can be used with, or be incorporated into, a dust capture apparatus (not shown).
  • An exemplary, but non-limiting, embodiment of a dust capture device suitable for use with the web control device 10 of the present invention provides for the placement of a hood opposing the web control device 10 that can capture such debris released from web material 12 due to any impingement of fluid from web control device 10 upon web material 12.
  • individual web control devices 10 can be successively alternated above and below web substrate 12 in the MD in order to facilitate the removal of debris from both faces of web material 12.
  • the amount of fluid exiting web control device 10 should equal the amount of fluid impinging a dust capture apparatus fluidly associated with web control device 10. This can result in an overall mass balance of fluid thereby increasing the control of web material 12 by web control device 10 and provide for the effective removal of debris from web material 12.

Abstract

A web control device is provided as a generally cylindrical hollow bar having a plurality of holes disposed thereon. Each of the plurality of holes is capable of providing fluid contact between the central portion and the outer portion of web control device. The web control device provides contact-less support of a moving web material and can reduce the Poisson lateral contraction in a moving and/or tensioned web material without wrinkling or significantly stretching the moving web material.

Description

VECTORED AIR WEB HANDLING APPARATUS
FIELD OF THE INVENTION
The present invention relates to devices for handling web materials that require support and control. In particular, the present invention relates to a device that supports a web on a cushion of air. Further, the present invention relates to devices capable of removing dust generated by a moving web in a web-handling process.
BACKGROUND OF THE INVENTION Various devices for forming fluid cushions or fluid bearings have been used for the contactless support of a web as the latter changes directions during its course of travel. These running webs may be required to pass through a number of different processes or directed in different directions. By way of example, webs resulting from a papermaking process may be directed through contactless supporting devices to downstream converting operations to produce absorbent paper products such as diapers, facial tissues, and the like. Such contactless support devices are described as generally partially cylindrical surfaces through which pressurized air is introduced through various slots, holes, apertures, or the like.
However, it should be realized that web materials handled under such processes are generally planar with a thickness much smaller than the dimensions of the material. Such webs are likely to include paper, cloth, plastic film, woven, non-woven, and metal films. These web materials are known to present unique process challenges. For example, it is known that typical flexible web materials are easily damaged, and can result in final products that are unacceptable. Such thin materials that are produced into wound webs are also known to have fluctuations in the wound web tension throughout the length and width of the web. Such fluctuations can be problematic as the web is unwound and transported by processing equipment during the conversion of large rolls of web material into finished products. Such web tension fluctuations may result in wrinkled, broken webs, webs of varying widths, a loss of control of the web material during processing, and ultimately provide for a loss of quality and/or productivity. Thus, in most applications, it is desirable, if not imperative, to keep the web material from coming into direct contact with handling surfaces. The web material may be recently imprinted, and, thereby, carrying a wet image on at least one surface. Alternatively, the web material may be delicate and have a relatively low basis weight. Yet still, the web material may be wet. Therefore, preventing contact of the web material with a control surface can be beneficial, for example, if the control surface is dirty or greasy. Additionally, mechanical flaws in the surface of conventional control systems may cut or severely scar the surface of the web material. Further, it can be difficult to provide conventional web handling equipment to be surface speed matched to the speed of the web. This can be especially true if the process requires the web material speed to be variable, or if velocity fluctuations are caused by out of round or non-uniform supply rolls.
Additionally, moving and/or tensioned web materials may have inherent properties that provide additional difficulty in handling. For example, a material may have a lateral contraction when the material is subjected to an applied elongation. Such lateral contraction in a tensioned web material is known as the "Poisson lateral contraction effect." Also, it has been seen that the stress and/or strain characteristics of the web material may vary laterally to a considerable extent. This may cause one portion of the web substrate to be tight and another portion of the web substrate to be loose. Additionally, low basis weight materials, because of their ability to stretch, can easily become wrinkled as the unconstrained web material moves over traditional supports. This can lead to wrinkles in the finished product. Typically, wrinkles can lower the product functionality by reducing absorbency of cellulose-based web materials and detract from the appearance of the finished product if it is formed from tissue paper. Previous air-driven web handling equipment has been provided to frictionlessly, aerodynamically, and/or hydrodynamically support a moving web material on a cushion of fluid, such as air or gas, as the moving web passes over the control surface. Such devices are described in U.S. Patent Numbers 4,043,495; 4,197,972; 5,775,623; 6,004,432; and 6,505,792. However, such devices as described do not reduce the Poisson lateral contraction that inherently occurs in a moving and/or tensioned web material as it passes through a converting process. Additionally, it is possible for these described devices to utilize excessive air flows. Excessive air flow can cause loss of control of the web material due to excessive lift. Further, the described devices do not provide the ability to remove dust generated by the moving web material.
Therefore, a device that provides contactless support of a moving web material that is capable of reducing the Poisson lateral contraction in a moving and/or tensioned web material is required. Such a device would be capable of controlling or turning a web material without wrinkling or significant stretching. Further, it is also a benefit to be able to provide such a device with the ability to remove dust from the web material as the web material progress through a web handling or converting process.
SUMMARY OF THE INVENTION
The present invention relates to an apparatus for reducing the Poisson lateral contraction in a tensioned web substrate. The apparatus comprises a surface having a machine direction, a cross-machine directional orthogonal to the machine direction, and a z-direction orthogonal to both the machine direction and the cross-machine direction. The apparatus is provided with a plurality of holes disposed upon the surface, each of the holes being operatively connected to a source of positive pressure. The holes provide fluid communication of the positive pressure through the surface to the web substrate passing proximate thereto. Each of the holes has a longitudinal axis associated thereto. The longitudinal axis of a first of the holes has a first inclination relative to the z-direction and the longitudinal axis of a second of the holes has a second inclination relative to the z-direction. Further, the first and second inclinations are different.
The present invention also relates to an apparatus for reducing the Poisson lateral contraction in a machine direction moving web substrate. The apparatus comprises a surface having a machine direction, a cross-machine directional orthogonal to the machine direction, and a z-direction orthogonal to both the machine direction and the cross-machine direction. A plurality of holes are disposed upon the surface and each hole is operatively connected to a source of positive pressure so that the holes provide a fluid communication of the positive pressure through the surface to the web substrate passing proximate thereto. Each of the holes has a longitudinal axis associated thereto and the longitudinal axis of a first of the holes has a first inclination relative to the z-direction and the longitudinal axis of a second of the holes has a second inclination relative to the z- direction. The longitudinal axis of a third of the holes has a third inclination relative to the z-direction. Further, the first and second inclinations are different. Additionally, the third hole is spaced from the first and second holes in the cross-machine direction and, the first and second inclinations are directed toward a first edge of the web substrate and the third inclination is directed toward a second edge of the web substrate.
The present invention further relates to an apparatus for reducing the Poisson lateral contraction in a machine direction moving web substrate. The apparatus comprises a surface having a machine direction, a cross-machine directional orthogonal to the machine direction, and a z-direction orthogonal to both the machine direction and the cross-machine direction. A plurality of holes are disposed upon the surface so that each of the holes is operatively connected to a source of positive pressure. The holes provide a fluid communication of the positive pressure through the surface to the web substrate passing proximate thereto. Each of the holes has a longitudinal axis associated thereto.
The longitudinal axis of a first of the holes has a first inclination relative to the z-direction and the longitudinal axis of a second of the holes has a second inclination relative to the z-direction and the longitudinal axis of a third of the holes has a third inclination relative to the z-direction. The first and second inclinations are different. The third hole is spaced from the first and second holes in the machine direction and, the first, second, and third inclinations are directed toward a first edge of the web substrate.
BRIEF DESCRPTION OF THE DRAWINGS
FIG. 1 is a perspective view with a partial breakaway of a web control device in accordance with the present invention;
FIG. 2 is a perspective view of another embodiment of a web control device; FIG. 3 is a cross-sectional view of an exemplary web control device;
FIG. 4 is a cross-sectional view of an exemplary web control device; FIG. 5 is a plan view of an exemplary web control device; FIG. 6 is a perspective view of an exemplary alternative embodiment of a web control device in use; and, FIG. 7 is a plan view of an exemplary alternative embodiment of a web control device in use. DETAILED DESCRIPTION OF THE INVENTION
As shown in Fig. 1, a moving web material 12 having a machine direction (MD), a cross-machine direction (CD) generally orthogonal and coplanar thereto, and a z-direction orthogonal to both the MD and CD, approaches proximate to the surface of the web control device 10. By way of example, web control device 10 can be provided as a generally cylindrical hollow bar having a plurality of holes 14 disposed thereon. Each of the plurality of holes 14 is capable of providing fluid contact between the central portion 16 and the outer portion 18 of web control device 10.
It would be apparent to one of skill in the art that web control device 10 can be provided in geometries other than a cylindrical hollow bar. By way of non-limiting example, Fig. 2 shows an exemplary web control device 10 in the form of a generally flat plate. Each of a plurality of holes 14 disposed upon web control device 10 is capable of providing fluid contact between opposing surfaces of the web control device 10. Such a generally flat plate web control device 10 could be attached to an air plenum, or be provided as a surface of an air plenum, in order for holes 14 to provide fluid contact of air from inside such a plenum to the outer surface of the web control device 10. Additionally, web control device 10 can manifest itself as, or be adapted to conform with, virtually any type of web handling device known to those of skill in the art including, but not limited to, folding boards, folding bars, folding rails, folding fingers, folding plows, and the like.
Returning again to Fig. 1, web material 12 is generally provided with movement in a first direction (generally, the MD) indicated by the arrow MD. As the web material 12 approaches and traverses proximate to the surface of web control device 10, web device 10 can provide web material 12 with a change in direction. Or, if desired, web control device 10 can be utilized to stabilize, remove droop, and/or provide little, if any, change in direction to web material 12 passing proximate to web control device 10 as required.
Inner portion 16 of web control device 10 can function as a central plenum that is supplied with air under pressure. Such pressurized air can be blown through holes 14 that provide fluid contact between inner portion 16 and outer portion 18 of web control device 10. Each of the plurality of holes 14 disposed in web control device 10 is provided with a longitudinal axis 20. In a preferred embodiment, the longitudinal axis 20 of each hole 14 is provided with a vector component, or inclination, relative to the z-direction of web control device 10.
As shown in the cross-section view of Fig. 3, the longitudinal axis 20 of each of the holes 14 is arranged to provide fluid contact from the inner portion 16 of the web control device 10 to the surface of web material 12 at an angle relative to the Z-direction. Preferably, the longitudinal axis 20 of each of the holes 14 has vector components relative to both the CD and z-directions. Further, in a particularly preferred embodiment, the longitudinal axis 20 of each of the holes 14 on the respective side of the center C of web control device 10 are provided with an angle having vector components relative to both the CD and z-directions from the center C of web control device 10 toward the respective edge of web control device 10 and/or web material 12.
In other words, as shown in Fig. 3, the longitudinal axis 20 of the holes 14 present on web control device 10 that are to the right of center C of the web control device 10 are angled toward the right-hand edge of the web control device 10. Similarly, the longitudinal axis 20 of the holes 14 which are disposed upon the surface of web control device 10 which are to the left of center C of the web control device 10 are angled toward the left-hand edge of the web control device 10.
In yet still another preferred embodiment, the longitudinal axis 20 of the holes 14 disposed upon a respective side of center C of web control device 10 are provided with vector components in both the CD and z-direction so that holes 14 disposed proximate to the center C of web control device 10 have a larger z-direction component than holes 14 disposed proximate to an edge of web control device 10. This means that the longitudinal axis 20 of holes 14 disposed proximate to an edge of web control device 10 have a larger CD component than holes 14 disposed proximate to the center C of web control device 10.
Thus, as can be seen in the exemplary embodiment of web control device 10 of Fig. 3, as the holes 14 progress from the center C of web control device 10 to the respective edge of web control device 10, the vector component of each longitudinal axis 20 of each hole 14 is provided with an increasing CD vector component. This provides a progressive angular appearance of the orientation of each longitudinal axis 20 of each hole 14 from the center C to the respective edge of web control device 10. By providing such a progressive angular appearance of the orientation of each longitudinal axis 20 of each hole 14 from the center C to the respective edge of web control device 10, it is believed, without desiring to be bound by theory, that the air fluidly transmitted from the inner portion 16 through holes 14 to the surface of the web material 12 passing proximate to web control device 10, provides a spreading effect on the web material 12. This spreading effect is believed to reduce the effect of Poisson lateral contraction in the CD due to a MD tension upon web material 12 because the discharge of fluid from such a progressively angled series of holes 14 can facilitate the application of a force component on the web material 12 that is directed towards the respective edge of the web material 12. In other words any effects upon web material 12 due to a Poisson lateral contraction are counteracted to some degree by a momentum transfer from the discharged fluid to the web material 12 through viscous coupling.
Without desiring to be bound by theory, it is also believed that providing progressively angled holes 14, as described supra, can minimize strain on the web material 12. In other words, by avoiding any sudden changes in CD strain of web material 12, CD tension variations within web material 12 can be minimized. By gradually increasing the vectored angle the longitudinal axis 20 of each hole 14 from the center C of web control device 10 to a respective edge of web control device 10, a smaller and more uniform viscous force is applied to the web material 12. Forces applied to a web material 12 that has CD stress and/or strain differences, CD elastic modulus changes (i.e., stress-strain variations), CD caliper differences in web material 12, lateral differential MD unit lengths, and the like, can cause localized wrinkling in the web material 12. Thus, it is believed that such a vectored angle approach as described herein can effectively remove wrinkles present upon web material 12 that are related to such lateral contraction effects.
Further, as would be known to one of skill in the art, the number of holes 14, the apparent size of the holes 14, the air pressure provided to inner portion 16 of web control device 10, and the like, can be varied according to the porosity, density, web wrap angle, nominal tension, and other physical characteristics present in the web material 12 and by the requirements of the relevant processing system. Without desiring to be bound by theory, it is believed that the web control device 10 is capable of providing support for web material 12 as well as providing control for web material 12 because web control device 10 operates as a circular air foil. One of skill in the art will be able to utilize mathematical modeling systems to show the presence of a viscous drag upon the surface of the web control device 10 for a portion of the surface. In conventional air bar/handling devices for handling a web material, as the MD speed of web material 12 increases, the amount of air proximate to the web material 12 (i.e., the boundary air) increases, resulting in a loss of control of web material 12. Since one of skill in the art will appreciate that these conventional air bar/handling devices lose control of the web material because air reflected by the web material 12 follows the Knox-S weeny equation. In other words, a web substrate controlled by a conventional air bar/handling device will float over the device and track to the neutral axis of the CD stress/strain characteristics of the web material. Since the CD stress/strain characteristics of the web material can changes quite dramatically (+/- 30% normally) the web material will tend to steer from one side to another of a conventional air bar/air handling device and result in a loss of control and weave of the web material, and causing foldovers. Contrastingly, the vectored air handling approach as described herein can reduce the volume of fluid necessary to maintain support of a web material 12 traversing proximate web control device 10 while at the same time maintain better control of a traversing web material 12. By directing and limiting the amount of reflected air evoluted from holes 14 as described herein, the web control device 10 does not fully lift the web material 12 while providing small regions of drag disposed between each hole 14. Thus, the web material 12 tends to remain 'wetted' to the surface of web control device 10 thereby providing web control device 10 with heretofore unrealized control of a web material 12 passing proximate web control device 10.
Returning again to Figs. 1 and 3, a preferred embodiment of the web control device 10 is depicted showing the layout of holes 14 for optimum performance for removing any effects due to Poisson lateral contraction upon a web substrate 12 passing proximate to web control device 10. A first line of circular holes 14 are preferably positioned 5-20 degrees radially from the turn entrance (and exit) of web control device 10, with the center of the first hole 14 being aligned with the centerline of web material 12. The longitudinal axis 20 of the holes 14 are preferably oriented outward towards an edge of the web control device 10 and the web material 12 passing proximate thereto so that the angle of the longitudinal axis 20 with respect to the Z-direction increases and decreases relative to the CD. In a preferred embodiment, the holes 14 range from about 0.050 inches (1.27 mm) to 0.125 inches (3.18 mm) diameter and from about 0.250 inches (6.35 mm) to 0.750 inches (19.1 mm) spacing on centers. In a preferred embodiment, a second line or row of holes 14 can be provided to run parallel to the first row in the CD and spaced from about 0.250 inches (6.35 mm) to 0.750 inches (19.1 mm) (i.e., about 10 degrees radially) from the first CD row of holes 14. Preferably, the dimensions of the holes 14 from the second CD row are equivalent to the dimensions of the holes 14 of the first row. Without desiring to be bound by theory, it is believed that the diameter of a respective hole 14, the CD and/or MD spacing of holes 14, the size (diameter) of the surface comprising holes 14, and/or the air pressure present within inner portion 16 applied to web material 12 through hole 14 can be effective to determine what diameter and spacing of holes 14 will provide optimal web handling, while reducing the effects of lateral contraction due to a tension T applied to web material 12. Likewise, it is believed that a web control device 10 having a larger surface (larger diameter) will require a higher number density of holes 14 present upon web control device 10. Further, one of skill in the art will appreciate that providing web control device 10 with first and second rows of holes 14 with vector components in any combination of the MD, CD, and z-directions, and by providing the surface of web control device 10 with a curvature suitable for handling a web substrate 12 can facilitate use of web control device 10 in consort with a dust capture apparatus (not shown) in order to capture debris released from web substrate 12 as discussed infra.
As shown in Fig. 4, in yet another preferred embodiment, the longitudinal axis 20 of holes 14 can be provided in web control device 10 in order to provide a radial, or MD, component to a fluid exiting web control device 10 from inner portion 14 through hole 14. Thus, holes 14 can be provided with a longitudinal axis 20 that can direct fluid radially away from the surface of the web control device 10 as well as transverse to the
MD of the web material 12. In other words, the longitudinal axis 20 of each hole 14 can be provided with vector components in any combination of the MD3 CD, and z-directions.
Without desiring to be bound by theory, it is believed that providing the longitudinal axis 20 of holes 14 with a vector component in the MD can provide a MD thrust component to a web material 12 traversing proximate the outer portion 18 of web control device 10. It is believed that an MD momentum is transferred from the fluid to web material 12 though viscous coupling of the web to the air by providing holes 14 having a longitudinal axis 20 with a vector component in the MD. In a preferred embodiment, the thrust component is applied to web material 12 in the direction of web material 12 motion to overcome the effect of drag over the web handling device 10. Thus, any force vectoring in the MD can overcome the viscous form drag and add a motive force to the web material 12. Likewise, if more drag upon web material 12 is desired and/or required by the process, one of skill in the art will appreciate that the longitudinal axis 20 of holes 14 can be provided with a vector component in a direction opposing the MD of web material 12. As shown in Fig. 5, a preferred embodiment of web control device 10 provides each of the holes 14 in succeeding CD oriented rows with an advance of one hole 14 diameter D in the CD toward a respective edge 20 from centerline C of web control device 10. Additionally, each of the holes 14 in succeeding CD oriented rows are provided with a MD spacing S from an adjacent CD oriented row. The preferred embodiment shown in Fig. 5 provides for the progression of holes 14 in the CD with an identifiable pattern that repeats after an equivalent number of CD oriented rows equal to the hole 14 MD spacing S divided by the hole 14 diameter D. By way of example, providing holes 14 with a diameter D of 0.062 inches (1.57 mm) and a MD spacing S of 0.375 inches (9.53 mm), would provide for a pattern that repeats in the MD for every six rows of CD oriented holes. Without desiring to be bound by theory, it is believed that providing such a CD- and MD-oriented offset for holes 14 can provide for sufficient impingement of air upon web material 12 from web control device 10 to provide the aforementioned benefits to web material 12. However, one of skill in the art would be able to place each hole 14 upon the surface of web control device 10 in any pattern utilizing any diameter D of holes 14 at any CD and MD spacing at any number density required to provide the necessary, appropriate, and/or sufficient reduction to the effects of lateral contraction due to a tension T applied to web material 12 passing proximate to web control device 10. It is believed that providing an MD spacing S between successive CD oriented rows of holes 14 that advance one hole 14 diameter D in the CD toward a respective edge 20 from centerline C of the web control device 10 can provide web material 12 with an increased contact with a fluid transmitted from holes 14 as web material 12 traverses proximate to web control device 10. Thus, any lateral contraction due to an applied tension T to web material 12 is reduced and any resulting "corrugation" effects upon web material 12 due to the presence of high air jet forces acting on the same part of web material 12 by air handling devices already known in the art, are effectively eliminated. Thus, the fluid exiting each hole 14 can be provided with a higher jet velocity. Providing the fluid exiting each hole 14 with a higher jet velocity can increase the amount of fluid available to penetrate the web material 12 and reduce the amount of fluid reflected from impinging web material 12. In this way, drag upon web material 12 with respect to web control device 10 is increased thereby facilitating an increased control of web material 12 by web control device 10. As would be known to one of skill in the art, a web material 12 can be produced from a papermaking machine or the like. The web material 12 produced from a former, through-air dryer, or pressing section, can be transported by a press felt or fabric to a press roll that transfers the web material 12 to a Yankee dryer roll. The web material 12 can then be brought into intimate engagement with the surface of a Yankee dryer whereby the web is rapidly dried by heat transfer from the dryer and from an air cap generally positioned over the top of the dryer. The resulting web material 12 can be scraped off the surface of the dryer by a doctor blade.
In a preferred embodiment, after the web material 12 is removed from the dryer surface by the doctor blade, the web control device 10 described herein can then be used to direct the web material 12 through a calendar. The web material 12 exiting such a calendar can then again be redirected by a second web control device 10 as described herein to a reel or winding device wherein the web material 12 is wound onto reels as would be known to those of skill in the art.
As shown in Fig. 6, an exemplary schematic plan view of the web control device 10 can be used to change the direction of web material 12 in a processing line. In this exemplary embodiment, the web material 12 is moving in a first direction prior to fluid contact proximate to the web control device 10. The web control device 10 can be provided with a longitudinal axis and positioned so that the longitudinal axis of the web control device 10 has an angular relationship to the directional movement of the web material 12. By way of non-limiting example, the longitudinal axis of web control device 10 can be provided at an angle of 45° relative to the machine direction of the web material 12. In this manner, the web control device 10 can redirect the web material 12 in a second direction of motion to further processing steps. In the above exemplary embodiment, the machine direction of web material 12 has been altered 90° from the machine direction of the web material 12 prior to contact with web control device 10 after proximate fluid contact with web control device 10. As shown in Fig. 7, web control device 10 can be provided to change the direction of web material 12 in a papermaking process. In this exemplary embodiment, the web material 12 can be provided with a first direction prior to proximate fluid contact with web control device 10. Web control device 10 can be provided with a longitudinal axis that is generally parallel to the cross-machine direction of the web material 12. Upon proximate fluid contact of the web material 12 with web control device 10, the direction of web material 12 can be altered to provide what is known to those of skill in the art as a "wrap angle." As would be known to those of skill in the art, a wrap angle can vary from about 0° to about 180° relative to the surface of web control device 10.
It is also believed that by providing holes 14 with a generally cylindrical geometry, a pressurized fluid contained within inner portion 16 of web control device 10 and transported to the outer portion 18 of web control device 10 through holes 14 can provide a uniform cushion pressure. Thus, the web material 12 can be supported more uniformly and can maintain a more stable float condition. Such a cylindrical hole 14 design can allow for reduced pressure requirements and thus, reduced air supply fan horsepower, resulting in energy savings. Further, by providing rows of holes 14 that are collinear in the CD but not in the MD of web material 12, coated web materials 12 are not adversely affected with lane modeling of the wet coating or heat streaking due to the drying aspect of the high velocity of a cylindrical hole 14 discharge design. It is known that high-pressure hole discharge velocities from conventional designs on many lightweight web substrates can cause corrugation or fluttering within the web material 12. Providing holes 14 in an alternating pattern, as described herein, can provide for a lightweight web to remain substantially flat with substantially no flutter.
Pressurized gas, preferably air, can be supplied to the inner portion 16 of the web control device 10 by a suitable supply such as a fan. The inner portion 16 of web control device 10 is preferably in fluid communication with a cavity or plenum disposed within inner portion 16 of web control device 10. As would be known to those of skill in the art, a cushion pressure tap can be used to measure web support pressure. Fan supply pressure (the pressure from the fan that builds within the inner portion 16 of the web control device 10) can be measured as required. However, the air pressure can be provided as required and can depend upon the characteristics of the web material 12 and the configuration and design of the web control device 10 or any other web material 12 processing equipment being used.
For porous web materials 12, the impact of the fluid passing through the web material 12 can release debris (i.e., loose fibers, dust, lint, and the like), or cause debris to be released, from the region proximate to web material 12 or from the web material 12 itself. In this manner, web control device 10 can be used with, or be incorporated into, a dust capture apparatus (not shown). An exemplary, but non-limiting, embodiment of a dust capture device suitable for use with the web control device 10 of the present invention provides for the placement of a hood opposing the web control device 10 that can capture such debris released from web material 12 due to any impingement of fluid from web control device 10 upon web material 12. Additionally, individual web control devices 10 can be successively alternated above and below web substrate 12 in the MD in order to facilitate the removal of debris from both faces of web material 12. In any case, it has been surprisingly found that the amount of fluid exiting web control device 10 should equal the amount of fluid impinging a dust capture apparatus fluidly associated with web control device 10. This can result in an overall mass balance of fluid thereby increasing the control of web material 12 by web control device 10 and provide for the effective removal of debris from web material 12.
It should also be understood that the present invention is not limited to the particular construction and arrangement of components herein illustrated and described, but embraces such modified forms thereof as come within the scope of the following claims. For example, where reference is made to holes, slots could be used in place of holes.
All documents cited in the Detailed Description of the Invention are, in relevant part, incorporated herein by reference; the citation of any document is not to be construed as an admission that it is prior art with respect to the present invention. To the extent that any meaning or definition of a term in this written document conflicts with any meaning or definition of the term in a document incorporated by reference, the meaning or definition assigned to the term in this written document shall govern. While particular embodiments of the present invention have been illustrated and described, it would be obvious to those skilled in the art that various other changes and modifications can be made without departing from the spirit and scope of the invention.
It is therefore intended to cover in the appended claims all such changes and modifications that are within the scope of this invention.

Claims

What is claimed is:
1. An apparatus for reducing the Poisson lateral contraction in a machine direction moving web substrate, the apparatus characterized by: a surface having a machine direction, a cross-machine directional orthogonal to said machine direction, and a z-direction orthogonal to both said machine direction and said cross-machine direction; and, a plurality of holes disposed upon said surface, each of said holes being operatively connected to a source of positive pressure, said holes providing a fluid communication of said positive pressure through said surface to said web substrate passing proximate thereto; the apparatus being further characterized in that each of said holes has a longitudinal axis associated thereto; said apparatus being further characterized in that said longitudinal axis of a first of said holes has a first inclination relative to said z-direction; said apparatus being further characterized in that said longitudinal axis of a second of said holes has a second inclination relative to said z-direction; and, said apparatus being further characterized in that said first and second inclinations are different.
2. The apparatus according to claim 1 further characterized in that said first and second holes are spaced in said cross-machine direction.
3. The apparatus according to any of the preceding claims further characterized in that said first inclination is less than said second inclination.
4. The apparatus according to any of the preceding claims further characterized in that at least a portion of said first and second inclinations are directed in said cross-machine direction.
5. The apparatus according to any of the preceding claims further characterized in that at least a portion of said first and second inclinations are directed in said machine direction.
6. The apparatus according to any of the preceding claims further characterized in that said first inclination and said second inclination are directed toward a first edge of said web substrate.
7. The apparatus according to claim 6 further characterized by a third hole and a fourth hole, said third and fourth holes being operatively connected to said source of positive pressure, said third and fourth holes providing a fluid communication of said positive pressure through said surface to said web substrate passing proximate thereto, said third and fourth holes having a third and fourth inclination relative to said z-direction.
8. The apparatus according to any of the preceding claims further characterized by at least a third hole having a third axis, said third axis having a third inclination, said third inclination being greater than said second inclination, said third hole being disposed distally from said first hole.
9. The apparatus according to any of the preceding claims further characterized in that said source of positive pressure is a plenum, said plenum being operatively connected to said surface.
10. The apparatus according to any of the preceding claims further characterized by a third hole, said third hole providing a fluid communication of said positive pressure through said surface to a web substrate passing proximate thereto, said third hole having a third axis having a third inclination relative to said z-direction, said third hole being spaced from said first and second holes in said machine direction.
PCT/US2006/021043 2005-06-06 2006-05-31 Vectored air web handling apparatus WO2006132873A1 (en)

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CA2610064A CA2610064C (en) 2005-06-06 2006-05-31 Vectored air web handling apparatus
EP06760579A EP1899249A1 (en) 2005-06-06 2006-05-31 Vectored air web handling apparatus
BRPI0611109-2A BRPI0611109A2 (en) 2005-06-06 2006-05-31 vectorized air-based blanket handling device
MX2007015354A MX2007015354A (en) 2005-06-06 2006-05-31 Vectored air web handling apparatus.

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US11/145,623 US7311234B2 (en) 2005-06-06 2005-06-06 Vectored air web handling apparatus

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106014484A (en) * 2016-07-06 2016-10-12 朱光波 Pneumatic rotation device
US9475672B2 (en) 2010-05-11 2016-10-25 Jes Bo Rennebod Tubular cylinder

Families Citing this family (29)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
ATE396047T1 (en) 2002-10-19 2008-06-15 Cerutti Spa Off Mec SQUEEGEE DEVICES OF A WEB PRODUCING OR PROCESSING MACHINE
DE10339262A1 (en) * 2003-08-26 2005-03-17 Voith Paper Patent Gmbh Web guiding means
DE102004038769A1 (en) * 2004-08-09 2006-02-23 Voith Fabrics Patent Gmbh Device for web stabilization
US7311234B2 (en) * 2005-06-06 2007-12-25 The Procter & Gamble Company Vectored air web handling apparatus
DE102006013659A1 (en) * 2006-03-24 2007-09-27 Man Roland Druckmaschinen Ag Turning bar for rotary printing machines
US20080203131A1 (en) * 2007-02-26 2008-08-28 Mirek Planeta Film guiding assembly
US8199430B2 (en) * 2007-07-13 2012-06-12 Hitachi Maxell, Ltd. Tape device having a tape cleaning structure
FI119441B (en) * 2007-08-20 2008-11-14 Runtech Systems Oy Method for compensating deformation of a paper web
DE102008002087A1 (en) * 2008-05-29 2009-12-03 Voith Patent Gmbh Plant for producing a fibrous web
TWI349644B (en) * 2008-09-18 2011-10-01 Ind Tech Res Inst Suction roller and transporting apparatus using the same
TWI367855B (en) * 2008-09-24 2012-07-11 Apparatus and method for guiding the web position
US20100196591A1 (en) * 2009-02-05 2010-08-05 Applied Materials, Inc. Modular pvd system for flex pv
KR101629776B1 (en) * 2009-07-15 2016-06-13 도요 고한 가부시키가이샤 Web floating and conveying device and method of manufacturing same
CA2772266C (en) 2009-08-26 2015-10-27 Lg Electronics Inc. Method and apparatus for multiple frame transmission for supporting mu-mimo
US8852496B2 (en) * 2010-03-31 2014-10-07 Fujifilm Corporation Decurling method and apparatus, and film production method
CN102452567A (en) * 2010-10-20 2012-05-16 富葵精密组件(深圳)有限公司 Flexible circuit board transmission device
JP5842925B2 (en) * 2011-11-04 2016-01-13 株式会社ニコン Substrate processing apparatus and substrate processing method
KR101297831B1 (en) * 2011-11-08 2013-08-19 주식회사 케이티앤지 Device of moving low ignition propensity cigarette paper and device of manufacturing low ignition propensity cigarette paper including the same
TWI586612B (en) * 2011-11-18 2017-06-11 康寧公司 Apparatus and method for trimming a moving glass ribbon
US8882258B2 (en) * 2012-05-03 2014-11-11 Delphax Technologies Inc. Web inkjet printing method and apparatus using an air bar
CN103224152A (en) * 2013-04-27 2013-07-31 朱光波 Transmission and transportation air floatation device
US9248989B2 (en) * 2013-09-03 2016-02-02 Eastman Kodak Company Positive pressure web wrinkle reduction system
US9352923B2 (en) * 2014-02-26 2016-05-31 Eastman Kodak Company Air shoe with roller providing lateral constraint
EP3116716B1 (en) 2014-03-14 2020-03-11 Hewlett-Packard Development Company, L.P. Drying media
DE112015001292T5 (en) * 2014-03-18 2016-12-29 Gdm S.P.A. Device for folding at least one web, which is fed along a system for producing absorbent hygiene articles
US9670616B2 (en) 2014-12-11 2017-06-06 Georgia-Pacific Consumer Products Lp Active web spreading and stabilization shower
CN113631524B (en) 2018-12-13 2023-04-11 康宁公司 Conveying apparatus and conveying belt
CN110292781B (en) * 2019-07-31 2023-03-14 深圳市如萌涂文化传播有限公司 DIY cloth doll automatic production line
JP2021052131A (en) * 2019-09-26 2021-04-01 リンテック株式会社 Sheet folding device and sheet folding method

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE4005707A1 (en) * 1990-02-23 1991-08-29 Rudolf August Kuerten Transport method for printing material - involves air current produced between material and table, moving on air cushion
US5102118A (en) * 1989-11-06 1992-04-07 Hilmar Vits Device for floatably guiding webs or sheets of material to be conveyed
DE19523072A1 (en) * 1995-06-24 1997-01-02 Heidelberger Druckmasch Ag Sheet blowing device for printing press
US5868386A (en) * 1994-03-03 1999-02-09 Koenig & Bauer Aktiengesellschaft Blower chamber for the floating conveyance of sheets or webs
US5927203A (en) * 1996-02-28 1999-07-27 Heidelberger Druckmaschinen Ag Device and method for guiding sheet material in a printing press, particularly in a sheet-fed rotary offset press
US6004432A (en) * 1998-01-28 1999-12-21 Beloit Technologies, Inc. Sheet turn with vectored air supply
DE20118991U1 (en) * 2001-11-21 2002-05-23 Schwerdter Hans Additional equipment for a sheet feed table
WO2002051732A2 (en) * 2000-12-22 2002-07-04 Man Roland Druckmaschinen Ag Device for the suspended transport of strip or sheet material in a processing machine

Family Cites Families (90)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3127080A (en) * 1964-03-31 Web turning device
US2753181A (en) * 1953-05-14 1956-07-03 Powers Chemico Inc Feed mechanism for web material
US3097971A (en) * 1960-11-09 1963-07-16 British Iron Steel Research Method of and apparatus for supporting or guiding strip material
US3231165A (en) * 1961-12-02 1966-01-25 Svenska Flaektfabriken Ab Method and apparatus for stabilizing an air-borne web
US3567093A (en) * 1969-06-03 1971-03-02 Michigan Oven Co Fluid cushion turning roll for moving web
BR7307485D0 (en) 1972-11-18 1974-10-22 Mueller F PROCESS FOR CALMING A MATERIAL MATERIAL MOVED LONGITUDINALLY WELL AS A DEVICE FOR EXECUTION OF THE SAME
US3950988A (en) 1974-04-19 1976-04-20 The Black Clawson Company Apparatus for measuring tension in a moving web
US3918706A (en) * 1974-06-24 1975-11-11 Ibm Pneumatic sheet transport and alignment mechanism
US3957187A (en) * 1975-02-11 1976-05-18 James Puigrodon Methods and apparatus for transporting and conditioning webs
US4043495A (en) 1975-03-03 1977-08-23 Frank Sander Air cushioned turn bar
US4055003A (en) 1975-08-28 1977-10-25 Johnson & Johnson Method and apparatus for altering the rigidity of webs by oscillation
DE2556442C2 (en) 1975-12-15 1984-09-06 Gerhardt, Hans-Joachim, Prof. M.Sc. Dipl.-Ing., 5100 Aachen Device for the floating guidance of material webs
US4109520A (en) 1976-03-30 1978-08-29 Svenska Traforskningsinstitutet Method and means for measuring web tension in paper or foils
US4308984A (en) 1978-05-11 1982-01-05 Vits Maschinenbau Gmbh Jet-conveyor box for floatingly guiding a conveyed strip or sheet material
US4197972A (en) 1978-08-28 1980-04-15 W. R. Grace & Co. Contactless turning guide having air slots longitudinally along running web edges
US4201323A (en) 1978-10-12 1980-05-06 W. R. Grace & Co. High velocity web floating air bar having a recessed Coanda plate
US4197973A (en) 1978-10-12 1980-04-15 W. R. Grace & Co. High velocity web floating air bar having air flow straightening means for air discharge slot means
US4288015A (en) * 1980-02-11 1981-09-08 W. R. Grace & Co. Contactless web turning guide
ATE12819T1 (en) 1980-10-03 1985-05-15 Spicer Hardy Ltd HOMOKINETIC UNIVERSAL JOINT.
US4403495A (en) 1981-05-15 1983-09-13 Rockwell International Corporation Apparatus for bending channel section members
US4400846A (en) 1981-10-02 1983-08-30 Graham Magnetics, Inc. Tape cleaning apparatus
US4425719A (en) 1982-03-15 1984-01-17 W. R. Grace & Co. Compact air bar assembly for contactless web support
JPS5936361A (en) * 1982-08-20 1984-02-28 Matsushita Electric Ind Co Ltd Rotary head assembly
DE3225922C2 (en) 1982-07-10 1984-05-10 M.A.N.- Roland Druckmaschinen AG, 6050 Offenbach Reversing bar surrounded by air
US5235733A (en) 1984-09-28 1993-08-17 Milliken Research Corporation Method and apparatus for patterning fabrics and products
US4718178A (en) 1985-11-29 1988-01-12 Whipple Rodger E Gas nozzle assembly
JPS62167162A (en) * 1986-01-21 1987-07-23 Fuji Photo Film Co Ltd Floating type web transportation device
US4919319A (en) 1986-06-06 1990-04-24 Ford John W Contactless web support guide
JPH07106823B2 (en) 1986-07-17 1995-11-15 富士写真フイルム株式会社 Non-contact web transfer method
GB8704721D0 (en) 1987-02-27 1987-04-01 Molins Plc Cigarette paper feed
US4785986A (en) 1987-06-11 1988-11-22 Advance Systems, Inc. Paper web handling apparatus having improved air bar with dimensional optimization
US4819928A (en) 1987-09-21 1989-04-11 Mobil Oil Corporation Plastic film air table conveyor
US4901449A (en) 1988-06-07 1990-02-20 W. R. Grace & Co.-Conn. Tri-flotation air bar
US5092059A (en) 1988-06-07 1992-03-03 W. R. Grace & Co.-Conn. Infrared air float bar
FI80522C (en) 1988-09-14 1990-06-11 Valmet Paper Machinery Inc Method and apparatus for measuring the voltage in a path
JP2782516B2 (en) 1988-09-19 1998-08-06 富士写真フイルム株式会社 Non-contact web transfer device
GB8823815D0 (en) 1988-10-11 1988-11-16 Molins Plc Pneumatic web feeding
US5070628A (en) 1990-01-16 1991-12-10 W. R. Grace & Co.-Conn. Rotatable slot nozzle air bar
US5020381A (en) 1990-02-20 1991-06-04 Bartlett Edward C Web tension monitor
US5022166A (en) 1990-06-07 1991-06-11 Union Camp Corporation Flutter suppression air foils
US5209387A (en) 1990-09-20 1993-05-11 Eastman Kodak Company Gas film conveyor for elongated strips of web material
US5241884A (en) 1991-10-11 1993-09-07 F. L. Smithe Machine Company, Inc. Apparatus for changing the length of envelope blanks cut from a continuous web
US5370289A (en) 1992-02-21 1994-12-06 Advance Systems, Inc. Airfoil floater apparatus for a running web
US5317817A (en) 1992-04-30 1994-06-07 W. R. Grace & Co.-Conn. Trailing sheet assembly for an air turn
US5316199A (en) * 1992-09-18 1994-05-31 Rockwell International Corporation Adjustable angle bar assembly for a printing press
FR2697238B1 (en) 1992-10-26 1995-02-03 Heidelberger Druckmasch Ag Bar for turning over a strip of paper, comprising a device for closing the air blowing holes.
DE4311438C2 (en) 1993-04-07 1997-06-19 Koenig & Bauer Albert Ag Turning bar for a material web
SE509886C2 (en) 1993-04-28 1999-03-15 Abs Pump Prod Ab Device for shaft seals
US5466298A (en) 1993-10-01 1995-11-14 James River Paper Company, Inc. Web cleaning method
DE4406847C2 (en) * 1994-03-03 1997-07-10 Koenig & Bauer Albert Ag Device for floating guiding of sheets or webs
IT1269115B (en) 1994-06-16 1997-03-21 Perini Fabio Spa DEVICE FOR THE AUTOMATIC CHANGE OF TAPES OF TAPE MATERIAL
DE69505196T2 (en) 1994-06-30 1999-04-29 Eastman Kodak Co Low inertia apparatus for storing and applying tension to webs
US5558263A (en) 1994-07-26 1996-09-24 Eastman Kodak Company Apparatus and method for non-contact active tensioning and steering of moving webs
EP0705785A3 (en) 1994-10-07 1996-11-13 Eastman Kodak Co Method and apparatus for preventing creases in thin webs
DE69516233T2 (en) 1994-11-07 2000-11-02 Eastman Kodak Co Device and method for the long cutting of strip material
SE505738C2 (en) 1994-11-29 1997-10-06 Asea Brown Boveri Apparatus and method for two-axis force measurement as well as method for determining the varying breaking angle and pulling force of a running material web with the aid of a device for two-axis force measurement
US5593545A (en) 1995-02-06 1997-01-14 Kimberly-Clark Corporation Method for making uncreped throughdried tissue products without an open draw
US5759352A (en) 1996-05-24 1998-06-02 Lau; Jark C. Apparatus for stabilizing a moving low-strength sheet
SE504708C2 (en) 1995-09-13 1997-04-07 Valmet Karlstad Ab Method and apparatus for transferring a fast-running ready-dried fiber web, in particular a tissue web, from a device and along a predetermined path to a subsequent device
US5833106A (en) 1995-12-05 1998-11-10 The Servants, Inc. Web tension equalizing roll and tracking apparatus
US5671895A (en) 1996-03-07 1997-09-30 Martin Automatic, Inc. System and method for controlling the speed and tension of an unwinding running web
US5650214A (en) 1996-05-31 1997-07-22 The Procter & Gamble Company Web materials exhibiting elastic-like behavior and soft, cloth-like texture
US5967457A (en) 1996-07-23 1999-10-19 Thermo Wisconsin, Inc. Airfoil web stabilization and turning apparatus and method
US5709352A (en) 1996-07-29 1998-01-20 R. J. Reynolds Tobacco Company Zero tension web unwinder apparatus and method
DE19710142B4 (en) * 1997-03-12 2005-07-28 Carl Prof. Dr.-Ing. Kramer Device for the heat treatment of suspended conveyors - levitation furnace
US6030496A (en) 1997-04-16 2000-02-29 Kimberly-Clark Worldwide, Inc. Making a web
US5906333A (en) 1997-04-16 1999-05-25 Paper Converting Machine Company Center drive unwind system
US5891309A (en) 1997-08-26 1999-04-06 Beloit Technologies, Inc. Web stabilizing device
US5970627A (en) 1997-12-11 1999-10-26 Thermo Wisconsin, Inc. Active web stabilization apparatus
US6125754A (en) 1998-10-30 2000-10-03 Harris; J. C. Web pressurizing channeled roller and method
US6374247B1 (en) 1998-11-09 2002-04-16 Unisys Corporation Cool ice service templates
US6328852B1 (en) 1999-08-24 2001-12-11 Kimberly-Clark Worldwide, Inc. Method and apparatus for improving stability of moving webs
US6325896B1 (en) 1999-09-23 2001-12-04 Valmet-Karlstad Ab Apparatus for transferring a fast running fibrous web from a first location to a second location
JP3956264B2 (en) * 1999-10-08 2007-08-08 富士フイルム株式会社 Web conveying method and apparatus
JP3058880B1 (en) * 1999-11-09 2000-07-04 株式会社東京機械製作所 Turner device
US6397495B1 (en) 1999-12-30 2002-06-04 Heidelberger Druckmaschinen Ag Web steering air flotation device for printing equipment
US6364247B1 (en) 2000-01-31 2002-04-02 David T. Polkinghorne Pneumatic flotation device for continuous web processing and method of making the pneumatic flotation device
DE10004369A1 (en) 2000-02-02 2001-08-09 Voith Paper Patent Gmbh Transfer of an entry strip of a paper web
AT409183B (en) * 2000-05-05 2002-06-25 Ebner Peter Dipl Ing DEVICE FOR GUIDING A METAL STRIP ON A GAS PILLOW
DE10057886A1 (en) * 2000-11-22 2002-05-23 Heidelberger Druckmasch Ag Turning bar arrangement for strip-processing rotation printing machine has closure elements movable within casing on rails and moved independently of each other by drives
US6505792B1 (en) 2000-11-28 2003-01-14 Megtec Systems, Inc. Non-contact floating device for turning a floating web
DE10112415A1 (en) * 2001-03-15 2002-10-02 Koenig & Bauer Ag turning bar
US6533217B2 (en) * 2001-03-20 2003-03-18 Faustel, Inc. Web-processing apparatus
FI20021349A0 (en) * 2002-07-09 2002-07-09 Metso Paper Inc An arrangement in a calender to control a fiber web and scrape a calender roll
ATE396047T1 (en) * 2002-10-19 2008-06-15 Cerutti Spa Off Mec SQUEEGEE DEVICES OF A WEB PRODUCING OR PROCESSING MACHINE
US6796524B2 (en) * 2002-11-14 2004-09-28 Heidelberger Druckmaschinen Ag Reversible angle bar for a web printing press
DE10307992B4 (en) * 2003-02-25 2005-08-25 Maschinenfabrik Wifag Device for deflecting a web and a method for setting up this device
DE20309429U1 (en) * 2003-06-17 2003-09-18 Reifenhaeuser Masch Extraction device of a tubular film extrusion system
US7311234B2 (en) * 2005-06-06 2007-12-25 The Procter & Gamble Company Vectored air web handling apparatus
JP2007133960A (en) * 2005-11-10 2007-05-31 Fujifilm Corp Method of manufacturing magnetic tape cartridge

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5102118A (en) * 1989-11-06 1992-04-07 Hilmar Vits Device for floatably guiding webs or sheets of material to be conveyed
DE4005707A1 (en) * 1990-02-23 1991-08-29 Rudolf August Kuerten Transport method for printing material - involves air current produced between material and table, moving on air cushion
US5868386A (en) * 1994-03-03 1999-02-09 Koenig & Bauer Aktiengesellschaft Blower chamber for the floating conveyance of sheets or webs
DE19523072A1 (en) * 1995-06-24 1997-01-02 Heidelberger Druckmasch Ag Sheet blowing device for printing press
US5927203A (en) * 1996-02-28 1999-07-27 Heidelberger Druckmaschinen Ag Device and method for guiding sheet material in a printing press, particularly in a sheet-fed rotary offset press
US6004432A (en) * 1998-01-28 1999-12-21 Beloit Technologies, Inc. Sheet turn with vectored air supply
WO2002051732A2 (en) * 2000-12-22 2002-07-04 Man Roland Druckmaschinen Ag Device for the suspended transport of strip or sheet material in a processing machine
DE20118991U1 (en) * 2001-11-21 2002-05-23 Schwerdter Hans Additional equipment for a sheet feed table

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9475672B2 (en) 2010-05-11 2016-10-25 Jes Bo Rennebod Tubular cylinder
CN106014484A (en) * 2016-07-06 2016-10-12 朱光波 Pneumatic rotation device

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BRPI0611109A2 (en) 2010-08-10
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EP1899249A1 (en) 2008-03-19
CA2610064A1 (en) 2006-12-14
US20060278360A1 (en) 2006-12-14
CA2610064C (en) 2011-04-05

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