Claims
- 1. A method of coating a moving web with fluid material, that comprises, providing a rotatable, hollow, cylindrical, microporous-surface roll, providing internally of said roll and coextensive therewith a cylindrical reservoir volume bounded by said roll, said reservoir volume being an annulus extending between said cylindrical roll and an inner cylindrical member coaxial therewith, said inner cylindrical member having a diameter that is a major portion of the inner diameter of said roll, pumping fluid material with metered flow into said reservoir volume, the rate of said metered flow being controlled in accordance with the rate of movement of said web, whereby fluid pressure is maintained in said reservoir volume dependent upon the rate of movement of said web, exiting said fluid material from said reservoir volume only through said microporous surface of said roll, rotating said roll, and applying said fluid material from said microporous surface of said roll to said web.
- 2. A method as claimed in claim 1 and in which said fluid material is pumped along a predetermined path extending longitudinally within said roll and then transversely into said reservoir volume.
- 3. A method as claimed in claim 1 and in which said applying is effected by contacting the moving web with the porous surface roll while rotating the roll.
- 4. A method as claimed in claim 3 and in which said web is moved between oppositely rotating porous surface and laminating rolls.
- 5. A method as claimed in claim 3 and in which said porous surface roll is rotating at a speed substantially synchronous with the web speed or proportional thereto.
- 6. A method as claimed in claim 1 and in which said applying is effected by contacting said porous surface roll with an oppositely rotating applicating roll that contacts the web and transfers the fluid exiting said pores and carried by said applicating roll to the web.
- 7. A method as claimed in claim 6 and in which said porous surface and applicating rolls are rotated at substantially synchronous speed or proportional thereto.
- 8. A method as claimed in claim 6 and in which the porous surface roll and applicating roll are relatively rotated to run at one of substantially synchronous and fractional differential speeds, and said applicating roll is rotated to run at one of substantially synchronous and fractional differential speeds relative to the web speed.
- 9. A method as claimed in claim 6 adapted for multiple coatings and in which a second fluid ejecting porous surface roll is simultaneously rotated in contact with the applicating roll at a different point of contact than the first-named porous surface roll to coat the web with the second fluid.
- 10. A method as claimed in claim 9 and in which the second porous surface roll is rotated to run at one of substantially synchronous and fractional differential speeds relative to the applicating roll.
- 11. A method as claimed in claim 6 and in which a second fluid ejecting porous surface roll is employed substantially simultaneously to coat the web with the second fluid.
- 12. A method as claimed in claim 11 and in which the fluids are selected and the rotation speeds of said rolls are adjusted to produce at least one of simultaneous pattern coatings and stripes of different fluid coat weights; continuous, pattern and stripe simultaneous coatings of dissimilar fluid coating materials; and successive and superimposed fluid coatings.
- 13. A method as claimed in claim 11 and in which the porosity pattern on the porous roll surfaces is varied in at least one of surface extent and degree to produce different coating pattern portions along the web from the first and second fluids.
- 14. A method as claimed in claim 13 and in which at least one of said porous surfaces is patterned with porous sections to produce at least one of longitudinal and transverse spaced coating stripes.
- 15. A method as claimed in claim 1 and in which the porosity of said porous surface varies in at least one of surface extent and degree of porosity in accordance with a predetermined pattern to provide a patterned coating.
- 16. A method as claimed in claim 15 and in which said porosity is provided at spaced portions only of said porous surface to provide spaced stripe coatings.
- 17. A method as claimed in claim 1 and in which said porous surface is heated to enable the dispensing of hot melt fluids and the like from a source of the same feeding along said path.
- 18. A method as claimed in claim 17 and in which said porous surface is of electrically conducting material and the heating is effected by passing electrical current therealong.
- 19. A method as claimed in claim 18 and in which the porous surface temperature is monitored and the current is controlled in accordance therewith.
- 20. Fluid coating apparatus comprising a rotatable fluid dispensing roll having a microporous shell, a cylindrical annular reservoir volume extending co-extensively within said roll and bounded by said shell, said reservoir volume extending between said shell and an inner cylindrical member coaxial therewith and said inner cylindrical member having a diameter that is a major portion of the inner diameter of said shell, metering pump means for continuously or intermittently pumping fluid into said reservoir volume and through the pores of said shell under pressure, the pores of said shell constituting the only fluid exit from said reservoir volume, and means for rotating said roll and applying the fluid dispensed through the microporous shell to web means drawn transversely past the roll, said metering pump means having means for controlling the rate at which said fluid is pumped into said reservoir volume in accordance with the rate at which said web means is drawn transversely past the roll, whereby the pressure in said reservoir volume is dependent upon the rate at which said web means is drawn transversely past the roll.
- 21. Apparatus as claimed in claim 20 and in which said metering pump means pumps said fluid along a predetermined path extending longitudinally within said shell and transversely into said reservoir volume.
- 22. Apparatus as claimed in claim 20 and in which the applying means comprises means for directly contacting the porous shell of the roll with one surface of the web at a region where a cooperative roll engages the opposite surface, to fluid coat the said one surface of the web.
- 23. Apparatus as claimed in claim 20 and in which the applying means comprises applicator roll means contacting the porous shell roll and rotating oppositely to the rotation of the same, the applicator roll means contacting one surface of the web at a region where a cooperative roll engages the opposite surface, to transfer the fluid dispensed through the porous shell to coat said one surface of the web.
- 24. Apparatus as claimed in claim 23 and in which a further fluid-dispensing porous shell roll is provided contacting the applicator roll means at a different location from contact with the first-named porous shell roll and simultaneously therewith to provide a further fluid coating on the web.
- 25. Apparatus as claimed in claim 23 and in which the fluid and roll rotation rates are selected to produce on the web at least one of simultaneous pattern coatings and stripes of different fluid coat weights; continuous, pattern and stripe simultaneous coatings of dissimilar fluid coating materials; and successive and superimposed fluid coatings.
- 26. Apparatus as claimed in claim 20 and in which the porous shell is patterned to provide one of spaced porous sections and variations in dimensional extent and degree of porosity.
- 27. Apparatus as claimed in claim 20 and in which the porous shell is constructed of one of sintered metal and screening.
- 28. A method of coating a web with fluid material, that comprises, pumping such fluid material with one of continuous and intermittent metered flow along a predetermined longitudinal path, exiting the same at a region transverse thereto, receiving the transversely exited fluid in a reservoir volume extending along and enveloping said path, exiting the fluid from said reservoir volume through a porous surface co-extensive with and bounding said reservoir volume, relatively rotating the said porous surface and the said region of fluid exiting from said path, and applying the fluid longitudinally exited through the porous surface to said web while moving the web transversely past the same to coat the web with the fluid as metered through the pores of the porous surface, and in which the further steps are performed of providing a plurality of fluid paths for pumped fluid each transversely exiting its fluid at successively longitudinal regions, dividing the reservoir volume into a corresponding plurality of successive longitudinal sections each having its enveloping porous surface and each sealed from one another, each one corresponding to and receiving fluid from its corresponding fluid path.
- 29. Fluid coating apparatus having, in combination, means for continuously or intermittently pumping the coating fluid along a longitudinally extending conduit terminating in an opening adjusted for transversely exiting the fluid, a cylindrical annular reservoir volume enveloping the conduit and its opening for receiving the exited fluid, a cylindrical porous shell externally bounding the cylindrical reservoir to constitute a fluid dispensing roll, means for relatively rotating the conduit and its fluid exiting opening and the roll to cylindrically distribute the exited fluid along the reservoir volume, and means for rotating said roll and applying the fluid dispensed through the porous shell to web means drawn transversely past the roll, and in which a plurality of longitudinally extending coating fluid conduit means is provided each transversely exiting fluid at successive longitudinal regions into corresponding successive enveloping cylindrical annular reservoir sections having corresponding porous shells, and means being provided for sealing each section from the adjacent section.
Parent Case Info
This is a continuation application of Ser. No. 835,050 filed Feb. 28, 1986, which is now abandoned.
US Referenced Citations (15)
Continuations (1)
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Number |
Date |
Country |
Parent |
835050 |
Feb 1986 |
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