Claims
- 1. A platen surface structure for a vacuum holddown of a hard copy means for printing with wet dye on print media, the hard copy means having a vacuum generating means for producing a predetermined vacuum force, the structure comprising:the vacuum holddown having a platen; the platen having a first surface for receiving print media thereon, the first surface having predetermined width dimension in a predetermined first axis of symmetry, and the first surface having a plurality of vacuum channels distributively arranged in parallel wherein each of the channels is substantially parallel to the first axis of symmetry, adjacent channels having substantially identical predetermined channel shape and channel dimensions; each of the channels has at least one vacuum port associated therewith, fluidically coupling each of the channels, respectively, to the vacuum generating means, each of the channels are separated from adjacent channels thereto by platen surface structure ribs, wherein each of the ribs is substantially parallel to the first axis of symmetry, such that the ribs form a print media receiving surface; and the ribs having predetermined rib shape and rib dimensions and the channels have the predetermined channel shape and channel dimensions such that the vacuum force is distributed through the channels and imparted to regions of print media received on the ribs and spanning the channels to hold the print media to the platen first surface, wherein the first surface provides leading and trailing edge holddown on the platen.
- 2. The platen surface structure as set forth in claim 1, comprising:the structure having surface geometries such that wet dye deposited on the print media by the hard copy means is not substantially redistributed within the print media by the vacuum force distributed by the channels and imparted to the print media between the ribs.
- 3. The platen surface structure as set forth in claim 1, comprising:the platen surface structure is arranged to have a plurality of channels wherein each of the channels has a major axis substantially parallel to the first axis of symmetry and a channel minor axis perpendicular to the major axis and parallel to a print media receiving axis.
- 4. The platen surface structure as set forth in claim 3, comprising:each of the channels has a plurality of vacuum ports wherein each of the ports provides a valved coupling between each of the channels, respectively, and the vacuum generating means and wherein the ports are distributed along the major axis within each of the channels at locations therein associated with predetermined print media widths and such that wet dye deposited on the print media by the hard copy means is not substantially redistributed within the print media by the vacuum force through the ports and as distributed by the channels and imparted to the print media.
- 5. The platen surface structure as set forth in claim 1, comprising:the platen surface structure has a second axis of symmetry as a print media receiving axis substantially perpendicular to the first axis of symmetry; and the platen surface structure is arranged in discrete channel sectors along the first axis such that the channels are distributively arranged in a plurality of groups within each of the sectors, and each of the channels in a group has a channel major axis substantially parallel to and shorter than the first axis of symmetry and a channel minor axis perpendicular to the major axis parallel to the print media receiving axis.
- 6. The platen surface structure as set forth in claim 5, comprising:each of the discrete channel sectors is distributively arranged across the platen surface structure in the first axis of symmetry, having a first axis of symmetry sector width dimension and locations on the platen associated with predetermined variations of print media width dimensions.
- 7. The platen surface structure as set forth in claim 5, comprising:the platen surface structure has a second axis of symmetry further comprising a print media receiving axis substantially perpendicular to the first axis of symmetry, each of the ribs having a first axis of symmetry rib dimension less than the sector first axis of symmetry sector width dimension such that the sectors form a repeated pattern of channel groups in the platen first surface and a print media receiving axis rib dimension, and each of the channels and each of the ribs has a first axis channel dimension and a second axis channel dimension wherein the vacuum force is distributed through the channels to hold the print media to the ribs such that wet dye on the media is not substantially redistributed within the media by the vacuum force in the channels.
- 8. The platen surface structure as set forth in claim 5, comprising:the platen surface structure has a second axis of symmetry further comprising a print media receiving axis substantially perpendicular to the first axis of symmetry; each of the ribs having a first axis rib dimension approximately equal to the first surface predetermined width dimension, and a second axis rib dimension such that the sectors form a repeated pattern of channel groups in the platen first surface segregated by an individual one of the ribs; and each of the channels has a first axis channel dimension and a second axis channel dimension wherein the vacuum force is distributed through the channels to hold the print media to the ribs such that wet dye on the media is not substantially redistributed within the media by the vacuum force within the channels.
- 9. The platen surface structure as set forth in claim 1, comprising:the holddown is a vacuum drum cylindrical construct wherein the first axis of symmetry is the cylindrical construct longitudinal axis and the axis of rotation of the drum, the first surface is an outer surface of the drum adapted for receiving print media thereon circumferentially about the longitudinal axis, and the construct having an inner chamber formed by an inner surface of the drum, the chamber having the predetermined vacuum force coupled thereto and to the channels via the ports.
- 10. The platen surface structure as set forth in claim 4, comprising:the channels are parallel to the first axis.
- 11. A vacuum platen device for an ink-jet apparatus having a means for producing a vacuum Fv, the device comprising:a platen having an outer platen surface and an inner platen surface wherein print media sheets are sequentially delivered to the outer platen surface from a predetermined media delivery direction, the platen having a first axis perpendicular to the predetermined media delivery direction and a second axis parallel to the predetermined media delivery direction; the outer platen surface having an outer platen surface structure having a repeated pattern of vacuum channels in the outer platen surface wherein each of the channels has a channel major axis substantially parallel to the first axis and a channel minor axis substantially parallel to the second axis; the outer platen surface structure having platen surface structure ribs, each of the ribs separating a pair of the vacuum channels, the ribs having a rib major axis substantially parallel to the first axis and a rib minor axis substantially parallel to the second axis; and each of the vacuum channels having a least one vacuum port from the outer platen surface to the inner platen surface, fluidically coupling each of the vacuum channels to the means for producing a vacuum, respectively, and wherein the ribs have a predetermined rib shape and rib dimensions and the channels have a predetermined channel shape and channel dimensions such that the vacuum force is distributed through the channels and imparted to regions of the print media received on the ribs and spanning the channels to hold the print media to the outer platen surface, and wherein the platen further provides print media leading edge and print media trailing edge holddown.
- 12. The device as set forth in claim 11, comprising:the platen has a surface geometry wherein wet dye deposited on the print media by the ink-jet apparatus is not substantially redistributed within the print media by the vacuum force distributed by the channels and imparted to the print media between the ribs.
- 13. The device as set forth in claim 11, comprising:the platen is substantially cylindrical, having the first axis as a longitudinal spin axis and the second axis as a media receiving axis such that print media sheets are received by the platen outer surface circumferentially about the spin axis.
- 14. The device as set forth in claim 11, comprising:the outer platen surface structure having predetermined groups of vacuum channels distributively arranged as a plurality of circumferential platen surface structure sectors, wherein each of the platen surface structure sectors are distributively arranged longitudinally across the platen parallel to the longitudinal spin axis such that combinations of the sectors are associated with predetermined print media cross-dimensions.
- 15. The device as set forth in claim 14, comprising:each of the ports is gated such that sectors are selectively activated only when a sector is covered by a media of the predetermined print media cross-dimension associated therewith.
- 16. The device as set forth in claim 15, comprising:the platen surface structure is arranged to have a plurality of channels circumferentially about the platen such that each of the channels has a major axis substantially parallel to the longitudinal axis and a channel minor axis perpendicular to the major axis.
- 17. The device as set forth in claim 16, comprising:the ribs are wider than the channels directionally in the print media receiving axis.
- 18. An ink-jet hard copy apparatus having a means for generating a predetermined vacuum force Fv, comprising:a housing; mounted to the housing, means for ink-jet printing; mounted to the housing, means for holding cut-sheet print media; mounted within the housing and associated with the means for holding cut-sheet print media, vacuum drum means for sequentially transporting individual sheets of print media from the means for holding to a printing station adjacent the means for ink-jet printing; and the vacuum drum means, having a predetermined longitudinal spin axis and a predetermined axial length and including an inner surface forming a vacuum chamber fluidically coupled to the means for generating a vacuum force, an outer surface positioned adjacently to the means for holding cut-sheet print media, forming a cylindrical platen for sequentially receiving individual sheets of media from the means for holding, the outer surface including a plurality of vacuum channels across the outer surface, each of the channels having at least one vacuum port extending from an interior of a respective channel to the inner surface such that the predetermined vacuum force is coupled to each of the channels and distributed thereby across the platen, each of the channels having a predetermined channel length parallel to the spin axis and a predetermined circumferential channel width wherein the channel length is approximately equal to or less than the predetermined axial length of the vacuum drum means and the circumferential channel width is less than a predetermined dimension wherein the vacuum force distributed by respective channels provides leading edge and trailing edge holddown of the print media.
- 19. The apparatus as set forth in claim 18, comprising:vacuum flow distributed by a respective channel is of a value greater than or equal to a value for securing a sheet spanning a respective channel and less than a value resulting in redistribution of wet dye deposited by the means for ink-jet printing on the sheet spanning a respective channel.
- 20. A method for using a known vacuum force for holding print media during a wet dye printing operation, comprising the steps of:providing a platen having print media platen surface structure having vacuum channels oriented, shaped, and dimensioned across the platen in accordance with a predetermined geometry for ensuring leading edge and trailing edge holddown of the print media; delivering the print media to the platen; and holding the print media to the platen with the vacuum force distributed through the channels during printing, wherein the predetermined geometry is a function of dye flow characteristics based upon known dye composition and known print medium composition such that print artifacts are not created by the known vacuum force pulling wet dye through capillaries of the medium.
RELATED APPLICATIONS
This application is related to co-filed U.S. patent application Ser. No. 09/292,125, by John D. Rhodes et al. for Vacuum Control for Vacuum Holddown (hereinafter “Rhodes”), and U.S. patent application Ser. No. 09/292,767, by Steve O. Rasmussen et al. for a Print Media Vacuum Holddown (hereinafter referred to as “Rasmussen”).
US Referenced Citations (30)