Claims
- 1. A print engine for creating and transferring an image to a final image carrier, comprising:
- a photoconductor member having a latent image carrying surface having at least a portion thereof with an arcuate surface;
- an image system for creating a latent image on said photoconductor member and applying toner particles to said latent image to form a developed image;
- an arcuate transfer support member;
- said photoconductor member and said transfer support member disposed adjacent each other to create a transfer nip between the surface of said transfer support member and the arcuate portion of said photoconductor member surface;
- a flexible final image carrier having an initial planar conformation;
- a precurl feed device for feeding said final image carrier onto the surface of said transfer image support member at an attachment point prior to said transfer nip and applying a curvature bias thereto such that said final image carrier has an arcuate conformation in the direction of curvature of said transfer support member, that allows said final image carrier to follow an arcuate path in the direction of curvature of the surface of said transfer support member defined as a predetermined number of degrees of path curvature per path millimeter or travel that is greater than a predetermined minimum and a combined curl-droop angle greater than a predetermined minimum, said curl-droop angle defined as the sum of the angle of response of said final image carrier prior to deformation thereof over an unsupported fixed length and the angle of said final image carrier over a fixed length after deformation thereof, wherein said developed image is transferred to said final image carrier as it passes through said transfer nip;
- a decurl member for selectively extracting the final image carrier from said transfer support member on the opposite side of said transfer support member from said precurl feed device and applying a curvature bias thereto opposite to the curvature bias provided by said precurl feed device such that said final image carrier is substantially returned to said initial planar conformation; and
- control system for rotating said transfer support member and said photoconductor member to draw said final image carrier through said transfer nip and transfer said latent image thereto.
- 2. The print engine of claim 1, wherein said final image carrier comprises paper.
- 3. The print engine of claim 1, wherein said photoconductor member comprises a photoconductor drum which has a cylindrical shape.
- 4. The print engine of claim 1, wherein said arcuate transfer support member comprises a transfer support drum having a cylindrical shape.
- 5. The print engine of claim 1, wherein said precurl feed device comprises a first roller having a first durometer and a second roller having a second durometer that is different from said first durometer, said first and second rollers forming a feed nip therebetween, said first and second rollers applying pressure to said feed nip such that one of said first and second rollers has more deformation associated therewith relative to the other due to the difference in said first and second durometers to apply a curvature bias to the said image carrier when said image carrier is drawn through said feed nip.
- 6. The print engine of claim 1, wherein said precurl feed device applies said curvature bias to said image carrier prior to said image carrier contacting said transfer support member at said attachment point and said precurl feed device including an attachment device for attaching said image carrier after said curvature bias is applied thereto to the surface of said transfer support member.
- 7. The print engine of claim 6, wherein said attachment device comprises a device for electrostatically adhering said image carrier to said transfer support member.
- 8. The print engine of claim 6, wherein said attachment device comprises:
- an attachment roller for being disposed adjacent said transfer support member at said attachment point to form an attachment nip between said attachment roller and the surface of said transfer support member, said image carrier urged toward said attachment nip; and
- means for adhering said image carrier onto the surface of said image support member as said image carrier passes through said attachment nip.
- 9. The print engine of claim 8, wherein said attachment roller comprises a device for creating an electrostatic adhesion between the surface of said transfer support member and said final image carrier as said final image carrier passes through said attachment nip.
- 10. The print engine of claim 1, wherein said control system is operable to control said image system to create multiple latent images in successive transfer operations on said photoconductor member and develop the latent images as composite developed images and control said precurl feed device to feed said final image carrier onto said transfer support member during a first transfer operation such that said transfer support member is operable to carry said final image carrier through said transfer nip for each multiple copy of said latent image until all of the composite developed images are disposed on said final image carrier, wherein said decurl member is controlled to selectively extract said final image carrier from the transfer support member after the last of said multiple composite developed images are transferred to said final image carrier.
- 11. A print engine paper feed device for feeding paper onto a rotating image carrier with an arcuate surface and extracting the paper therefrom, comprising:
- a directing device for directing a sheet of paper with a substantially planar conformation along a defined path;
- a precurl device for deforming said sheet of paper to have an arcuate deformation in the direction of the rotating image carrier, that allows said sheet of paper to follow an arcuate path in the direction of curvature of the surface of the rotating image carrier defined as a predetermined number of degrees of path curvature per path millimeter of travel that is greater than a predetermined minimum and a combined curl-droop angle than a predetermined minimum, said curl-droop angle defined as the sum of the angle of repose of the said sheet of paper prior to deformation thereof over an unsupported fixed length and the angle of curl of said sheet of paper over a fixed length after deformation thereof;
- an attachment device for attaching the paper to the rotating image carrier after arcuate deformation thereof by said precurl device;
- an image transfer mechanism for transferring a developed latent image onto the sheet of paper attached to the rotating image carrier;
- a paper gripper for extracting the paper from the surface of the rotating image carrier after the developed latent image has been transferred thereto; and
- a decurl device for deforming the sheet of paper in the opposite direction that said precurl device deforms the sheet of paper such that said sheet of paper after processing by said decurl device has a substantially planar conformation.
- 12. The print engine paper feed device of claim 11, wherein said attachment device comprises:
- an attachment roller for being disposed adjacent the surface of the image carrier to form an attachment nip therebetween; and
- means for providing electrostatic adhesion between said sheet of paper after passing through said attachment nip and the surface of the image carrier.
- 13. A method for creating and transferring an image to an image carrier, comprising the steps of:
- providing a photoconductor member having a latent image carrying surface having at least a portion thereof with an arcuate surface;
- creating a latent image on the photoconductor member;
- providing an arcuate transfer support member;
- disposing the photoconductor member proximate to the transfer support member to create a transfer nip therebetween such that the transfer nip is formed between the surface of the transfer support member and the arcuate portion of the photoconductor member surface;
- providing a flexible image carrier having an initial planar conformation;
- feeding the image carrier onto the surface of the image support member at a point prior to the image transfer nip and applying a curvature bias thereto such that the image carrier has an arcuate conformation in the direction of curvature of the transfer support member;
- selectively extracting the image carrier from the transfer support member on the opposite side of the transfer support member from the attachment point and applying a curvature bias thereto opposite to the curvature bias provided in the step of feeding such that the image carrier is substantially returned to the initial planar conformation; and
- rotating the transfer support member and the photoconductor member to draw the image carrier through the transfer nip and transfer the latent image thereto.
- 14. The method of claim 13, wherein the image carrier comprises paper.
- 15. The method of claim 13, wherein the step of providing the photoconductor member comprises providing a photoconductor drum which has a cylindrical shape.
- 16. The method of claim 13, wherein the step of providing the arcuate transfer support member comprises providing a transfer support drum having a cylindrical shape.
- 17. The method of claim 13, wherein the step of feeding the paper comprises disposing a first roller having a first durometer adjacent a second roller having a second durometer to form a feed nip therebetween, urging the first and second rollers against each other with a predetermined pressure such that one of the first and second rollers has more deformation associated therewith relative to the other due to the differences between the first and second durometers, such that a curvature bias is applied to the image carrier when the image carrier has gone through the feed nip.
- 18. The method of claim 13, wherein the step of feeding is operable to apply the curvature bias to the final image carrier prior to the final image carrier contacting the transfer support member at the attachment point and the step of feeding including attaching the final image carrier to the image support member after the curvature bias is applied thereto.
- 19. The method of claim 18, wherein the step of attaching comprises electrostatically adhering the image carrier to the transfer support member.
- 20. The method of claim 18, wherein the step of attaching comprises:
- providing an attachment roller;
- disposing the attachment roller adjacent the transfer support member at the attachment point to form an attachment nip between the attachment roller and the surface of the transfer support member, the image carrier urged toward the attachment nip; and
- adhering the image carrier onto the surface of the image support member as it passes through the attachment nip.
- 21. The method of claim 20, wherein the step of attaching comprises creating an electrostatic adhesion between the surface of the transfer support member and the image carrier as the image carrier passes through the attachment nip.
- 22. The method of claim 13, wherein the step of creating the latent image comprises creating multiple latent images in successive transfer operations on the photoconductor member and the step of feeding the paper comprises feeding the paper during a first one of multiple transfer operations and the step of extracting the paper comprises extracting the paper after the multiple latent images have been transferred to the paper, wherein the step of transferring the latent image comprises transferring one of the latent images during each pass of the image carrier through the transfer nip wherein the image carrier is maintained on the transfer support member for multiple rotations thereof.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation in part of U.S. patent application Ser. No. 07/954,786, filed Sep. 30, 1992, now U.S. Pat. No. 5,276,490, and entitled "Buried Electrode Drum for an Electrophotographic Print Engine".
US Referenced Citations (11)
Continuation in Parts (1)
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Number |
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954786 |
Sep 1992 |
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