Claims
- 1. An electrophotographic print engine having a drum transfer mechanism for transferring an image from a photoconductor member to a flexible image receiving member, the drum transfer mechanism comprising:
- a cylindrical support member for carrying the flexible image receiving member, the flexible image receiving member for carrying a complete image;
- rotating means for rotating said support member;
- an electrostatic surface disposed on the surface of said support member, said electrostatic surface comprising a gripping layer disposed on the surface of said support member and the flexible image receiving member disposed on the outer surface of said gripping layer, said gripping layer having a surface with a voltage dependent discharge time constant;
- a voltage source for applying a primary voltage to at least a portion of the outer surface of said support member;
- a transfer nip formed between the photoconductor member and the flexible image receiving member disposed on said electrostatic surface, the photoconductor member disposed at a reference voltage such that a differential voltage is developed across said electrostatic surface to allow transfer of toner across said transfer nip to the flexible image receiving member disposed on said electrostatic surface;
- the voltage across said electrostatic surface at a given point prior to entering said transfer nip less than the voltage across said electrostatic surface in said transfer nip; and
- the voltage across said electrostatic surface decaying as the given point on said electrostatic surface rotates away from said transfer nip, such that on a complete revolution of said given point, the voltage across said electrostatic surface is reduced when said given point enters said transfer nip on a subsequent revolution.
- 2. The print engine of claim 2, and further comprising means for attaching the flexible image receiving member to said gripping layer.
- 3. The print engine of claim 1, and further comprising:
- an attachment device for urging the flexible image receiving member against said gripping layer at a point on the surface of said gripping layer;
- an attachment voltage source for developing a voltage across the combination of the flexible image receiving member and said gripping layer; and
- said attachment voltage source having a voltage level that is substantially equal to the voltage level of said reference voltage.
- 4. The print engine of claim 3, wherein said attachment device comprises a conductive attachment roller disposed adjacent said support member and forming an attachment nip therebetween, such that the flexible image receiving member can be input to said attachment nip with said conductive attachment roller being connected to said reference voltage.
- 5. The print engine of claim 4, wherein said attachment roller is disposed at a different point on the surface of said support member relative to said transfer nip and further comprising means for removing said attachment roller away from the surface of said support member after said flexible image receiving member has been fully attached to said gripping layer.
- 6. The print engine of claim 1, wherein multiple images are sequentially disposed on the flexible image receiving member and further comprising:
- means for attaching said image support member to said gripping layer prior to disposing a complete image thereon; and
- means for stripping the flexible image receiving member from said gripping layer after all of said images have been transferred thereto by said photoconductor member as the flexible image receiving member passes through said transfer nip.
- 7. The print engine of claim 6, and further comprising a discharge device for discharging the flexible image receiving member prior to said point on the surface of said gripping layer at which said attachment device urges the flexible image receiving member against said gripping layer, said discharge device disposed at a discharge voltage that is substantially equal to said reference voltage.
- 8. The print engine of claim 1, wherein said gripping layer includes a resilient conducting layer and said support member is comprised of a conducting core, said conducting core attached to said primary voltage source.
- 9. The print engine of claim 1, wherein said gripping layer and said support member comprise:
- a support core having an outer cylindrical surface;
- an insulating resilient layer disposed on the outer surface of said support core;
- an electrostatic layer disposed on the outer surface of said insulating resilient layer;
- a controlled resistivity layer disposed on the outer surface of said electrostatic layer, said controlled resistivity layer attached to said primary voltage source; and
- a gripping layer disposed on the outer surface of said controlled resistivity layer, the outer surface of said gripping layer operable to receive the flexible image receiving member.
- 10. The print engine of claim 1, wherein said gripping layer and said support member comprise:
- a conductive supporting core having an outer cylindrical surface;
- a controlled resistivity resilient layer disposed on the outer surface of said conductive supporting core;
- an electrode layer disposed on the outer surface of said controlled resistivity resilient layer; and
- an outer controlled resistivity layer disposed on the outer surface of said electrode layer, the outer surface of said outer controlled resistivity layer operable to receive the flexible image receiving member.
- 11. The print engine of claim 1, wherein said gripping layer and support member comprise:
- a supporting core;
- an insulating resilient layer disposed on the outer surface of said supporting core; and
- an electrode layer disposed on the surface of said insulating resilient layer and attached to said voltage source.
- 12. A method for transferring an image from a photoconductor member to a flexible image receiving member, comprising:
- providing a cylindrical support member for carrying a complete image;
- rotating the support member;
- forming a gripping layer on the surface of the support member, the gripping having a surface with a voltage dependent discharge time constant;
- the flexible image receiving member disposed on the surface of the gripping layer;
- applying a primary voltage from a primary voltage source to at least a portion of the outer surface of the support member;
- forming a transfer nip between the photoconductor member and the surface of the flexible image receiving member disposed on the surface of the gripping layer and disposing the photoconductor member at a reference voltage such that a differential voltage is developed across the gripping layer to allow the transfer of toner across the transfer nip to the surface of the flexible image receiving member disposed on the surface of the gripping layer;
- the voltage across the electrostatic surface at a given point prior to entering the transfer nip being less than the voltage across the gripping layer at the transfer nip; and
- the voltage across the gripping layer decreasing as the given point on the electrostatic surface rotates away from the transfer nip, such that on a complete revolution of the given point, the voltage across the gripping layer is reduced when the given point enters the transfer nip on a subsequent revolution.
- 13. The method of claim 12, and further comprising attaching the flexible image receiving member to the gripping layer.
- 14. The method of claim 12, and further comprising:
- urging the flexible image receiving member against the gripping layer with an attachment device at a plane on the surface of the gripping layer;
- developing an attachment voltage across the combination of the flexible image receiving member and the gripping layer; and
- the attachment voltage being at a voltage that is substantially equal to the voltage level of the reference voltage.
- 15. The method of claim 14, wherein the step of urging the flexible image receiving member against the gripping layer comprises disposing a conductive attachment roller adjacent the gripping layer and forming an attachment nip therebetween and inputting the flexible image receiving member in the attachment nip, with the conductive attachment roller being disposed at the reference voltage level.
- 16. The method of claim 15, wherein the step of disposing the attachment roller adjacent the gripping layer comprises disposing the attachment roller adjacent the gripping layer at a different point on the surface of the gripping layer relative to the transfer nip and further comprising moving the attachment roller away from the surface of the gripping layer after the flexible image receiving member has been fully attached to the gripping layer.
- 17. The method of claim 12, wherein multiple images are sequentially disposed on the flexible image receiving member, and further comprising the steps of:
- attaching the flexible image receiving member to the gripping layer prior to disposing a complete image thereon; and
- stripping the flexible image receiving member from the gripping layer after all of the images have been transferred thereto by the photoconductor member as the flexible image receiving member passes through the transfer nip.
- 18. The method of claim 12, wherein the step of forming a gripping layer on the support member comprises disposing material that includes a resilient conducting layer on the surface of the support member, the support member comprising a conducting core, the conducting core attached to the primary voltage source.
- 19. The method of claim 12, wherein the steps of providing the support member and forming the gripping layer on the support member comprise the steps of:
- providing a support core having an outer cylindrical surface;
- disposing an insulating resilient layer on the outer surface of the support core;
- disposing an electrostatic layer on the outer surface of the insulating resilient layer;
- disposing a controlled resistivity layer on the outer surface of the electrostatic layer, the controlled resistivity layer attached to the primary voltage source; and
- disposing a gripping layer on the outer surface of the controlled resistivity layer, the outer surface of the gripping layer operable to receive the flexible image receiving member.
- 20. The method of claim 12, wherein the step of forming the gripping layer on the support member and the step of providing the support member comprise the steps of:
- providing a conductive supporting core having an outer cylindrical surface;
- disposing a controlled resistivity resilient layer on the outer surface of the conducting core;
- disposing an electrode layer on the outer surface of the controlled resistivity resilient layer; and
- disposing a controlled resistivity layer on the surface of the electrode layer, the outer surface of the controlled resistivity layer operable to receive the flexible image receiving member.
- 21. The method of claim 12, wherein the step of forming the gripping layer and the step of providing the support member comprise the steps of:
- providing a supporting core;
- providing an insulating resilient layer disposed on the outer surface of the supporting core; and
- disposing an electrode layer on the surface of the resilient layer and attached to the primary voltage source.
- 22. An electrophotographic print engine having a drum transfer mechanism for transferring an image from a photoconductor member to a flexible image receiving member, the drum transfer mechanism comprising:
- a cylindrical support member for carrying the flexible image receiving member, the flexible image receiving member for carrying a complete image;
- rotating means for rotating said support member;
- an electrostatic surface disposed on the surface of said support member, said electrostatic surface comprising a gripping layer disposed on the surface of said support member and the flexible image receiving member disposed on the outer surface of said gripping layer;
- a voltage source for applying a primary voltage to at least a portion of the outer surface of said support member;
- a transfer nip formed between the photoconductor member and the flexible image receiving member disposed on said electrostatic surface, the photoconductor member disposed at a reference voltage such that a differential voltage is developed across said electrostatic surface to allow transfer of toner across said transfer nip to the flexible image receiving member disposed on said electrostatic surface;
- the voltage across said electrostatic surface at a given point prior to entering said transfer nip less than the voltage across said electrostatic surface in said transfer nip;
- the voltage across said electrostatic surface decaying as the given point on said electrostatic surface rotates away from said transfer nip, such that on a complete revolution of said given point, the voltage across said electrostatic surface is reduced when said given point enters said transfer nip on a subsequent revolution;
- an attachment device for urging the flexible image receiving member against said gripping layer at a point on the surface of said gripping layer;
- an attachment voltage source for developing a voltage across the combination of the flexible image receiving member and said gripping layer; and
- said attachment voltage source having a voltage level that is substantially equal to the voltage level of said reference voltage.
- 23. The print engine of claim 22, and further comprising means for attaching the flexible image receiving member to said gripping layer.
- 24. The print engine of claim 22, wherein said attachment device comprises a conductive attachment roller disposed adjacent said support member and forming an attachment nip therebetween, such that the flexible image receiving member can be input to said attachment nip with said conductive attachment roller being connected to said reference voltage.
- 25. The print engine of claim 24, wherein said attachment roller is disposed at a different point on the surface of said support member relative to said transfer nip and further comprising means for removing said attachment roller away from the surface of said support member after said flexible image receiving member has been fully attached to said gripping layer.
- 26. The print engine of claim 22, wherein multiple images are sequentially disposed on the flexible image receiving member and further comprising:
- means for attaching said flexible image receiving member to said gripping layer prior to disposing a complete image thereon; and
- means for stripping the flexible image receiving member from said gripping layer after all of said images have been transferred thereto by said photoconductor member as the flexible image receiving member passes through said transfer nip.
- 27. The print engine of claim 26, and further comprising a discharge device for discharging the flexible image receiving member prior to said point on the surface of said gripping layer at which said attachment device urges the flexible image receiving member against said gripping layer, said discharge device disposed at a discharge voltage that is substantially equal to said reference voltage.
- 28. The print engine of claim 22, wherein said gripping layer is comprised of a surface with a voltage dependent discharge time constant.
- 29. The print engine of claim 22, wherein said gripping layer includes a resilient conducting layer and said support member is comprised of a conducting core, said conducting core attached to said primary voltage source.
- 30. The prim engine of claim 22, wherein said gripping layer and said support member comprise:
- a support core having an outer cylindrical surface;
- an insulating resilient layer disposed on the outer surface of said support core;
- an electrostatic layer disposed on the outer surface of said insulating resilient layer;
- a controlled resistivity layer disposed on the outer surface of said electrostatic layer, said controlled resistivity layer attached to said primary voltage source; and
- a gripping layer disposed on the outer surface of said controlled resistivity layer, the outer surface of said gripping layer operable to receive the flexible image receiving member.
- 31. The print engine of claim 22, wherein said gripping layer and said support member comprise:
- a conductive supporting core having an outer cylindrical surface;
- a controlled resistivity resilient layer disposed on the outer surface of said conductive supporting core;
- an electrode layer disposed on the outer surface of said controlled resistivity resilient layer; and
- an outer controlled resistivity layer disposed on the outer surface of said electrode layer, the outer surface of said outer controlled resistivity layer operable to receive the flexible image receiving member.
- 32. The print engine of claim 22, wherein said gripping layer and support member comprise:
- a supporting core;
- an insulating resilient layer disposed on the outer surface of said supporting core; and
- an electrode layer disposed on the surface of said insulating resilient layer and attached to said primary voltage source.
- 33. An electrophotographic print engine having a drum transfer mechanism for transferring an image from a photoconductor member to a flexible image receiving member, the drum transfer mechanism comprising:
- a cylindrical support member for carrying the flexible image receiving member, the flexible image receiving member for carrying a complete image, said support member having:
- a support core having an outer cylindrical surface, and
- an insulating resilient layer disposed on the outer surface of said support core;
- rotating means for rotating said support member;
- an electrostatic layer disposed on the surface of said insulating resilient layer;
- a controlled resistivity layer disposed on the outer surface of said electrostatic layer;
- a gripping layer disposed on the outer surface of said controlled resistivity layer, the outer surface of said gripping layer operable to receive the flexible image receiving member;
- a primary voltage source for applying a primary voltage to at least a portion of said controlled resistivity layer;
- a transfer nip formed between the photoconductor member and the flexible image receiving member disposed on said gripping layer, the photoconductor member disposed at a reference voltage such that a differential voltage is developed across said gripping layer to allow transfer of toner across said transfer nip to the flexible image receiving member disposed on said gripping layer;
- the voltage across said gripping layer at a given point prior to entering said transfer nip less than the voltage across said gripping layer in said transfer nip;
- the voltage across said gripping layer decaying as the given point on said gripping layer rotates away from said transfer nip, such that on a complete revolution of said given point, the voltage across said gripping layer is reduced when said given point enters said transfer nip on a subsequent revolution.
- 34. The print engine of claim 33, and further comprising means for attaching the flexible image receiving member to said gripping layer.
- 35. The print engine of claim 33, and further comprising:
- an attachment device for urging the flexible image receiving member against said gripping layer at a point on the surface of said gripping layer;
- an attachment voltage source for developing a voltage across the combination of the flexible image receiving member and said gripping layer; and
- said attachment voltage source having a voltage level that is substantially equal to the voltage level of said reference voltage.
- 36. The print engine of claim 35, wherein said attachment device comprises a conductive attachment roller disposed adjacent said gripping layer and forming an attachment nip therebetween, such that the flexible image receiving member can be input to said attachment nip with said conductive attachment roller being connected to said reference voltage.
- 37. The print engine of claim 37, wherein said attachment roller is disposed at a different point on the surface of said gripping layer relative to said transfer nip and further comprising means for removing said attachment roller away from the surface of said gripping layer after said flexible image receiving member has been fully attached to said gripping layer.
- 38. The print engine of claim 33, wherein multiple images are sequentially disposed on the flexible image receiving member and further comprising:
- means for attaching the flexible image receiving member to said gripping layer prior to disposing a complete image thereon; and
- means for stripping the flexible image receiving member from said gripping layer after all of said images have been transferred thereto by said photoconductor member as the flexible image receiving member passes through said transfer nip.
- 39. The print engine of claim 38, and further comprising a discharge device for discharging the flexible image receiving member prior to said point on the surface of said gripping layer at which said attaching means urges the flexible image receiving member against said gripping layer, said discharge device disposed at a discharge voltage that is substantially equal to said reference voltage.
- 40. The print engine of claim 33, wherein said gripping layer is comprised of a surface with a voltage dependent discharge time constant.
- 41. An electrophotographic print engine having a drum transfer mechanism for transferring an image from a photoconductor member to a flexible image receiving member, the drum transfer mechanism comprising:
- a cylindrical support member for carrying the flexible image receiving member, the flexible image receiving member for carrying a complete image, said support member having a conductive support core with an outer cylindrical surface;
- rotating means for rotating said support member;
- a controlled resistivity resilient layer disposed on the outer surface of said conductive support core;
- an electrode layer disposed on the outer surface of said controlled resistivity resilient layer;
- a gripping layer comprised of an outer controlled resistivity layer of disposed on the outer surface of said outer controlled resistivity layer, the outer surface of said gripping layer operable to receive the flexible image receiving member;
- a primary voltage source for applying a primary voltage to at least a portion of said outer controlled resistivity layer;
- a transfer nip formed between the photoconductor member and the flexible image receiving member disposed on said gripping layer, the photoconductor member disposed at a reference voltage such that a differential voltage is developed across said gripping layer to allow transfer of toner across said transfer nip to the flexible image receiving member disposed on said gripping layer;
- the voltage across said gripping layer at a given point prior to entering said transfer nip less than the voltage across said gripping layer in said transfer nip;
- the voltage across said gripping layer decaying as the given point on said gripping layer rotates away from said transfer nip, such that on a complete revolution of said given point, the voltage across said gripping layer is reduced when said given point enters said transfer nip on a subsequent revolution.
- 42. The print engine of claim 41, and further comprising means for attaching the flexible image receiving member to said gripping layer.
- 43. The print engine of claim 41, and further comprising:
- an attachment device for urging the flexible image receiving member against said gripping layer at a point on the surface of said gripping layer;
- an attachment voltage source for developing a voltage across the combination of the flexible image receiving member and said gripping layer; and
- said attachment voltage source having a voltage level that is substantially equal to the voltage level of said reference voltage.
- 44. The print engine of claim 43, wherein said attachment device comprises a conductive attachment roller disposed adjacent said gripping layer and forming an attachment nip therebetween, such that the flexible image receiving member can be input to said attachment nip with said conductive attachment roller being connected to said reference voltage.
- 45. The print engine of claim 44, wherein said attachment roller is disposed at a different point on the surface of said gripping layer relative to said transfer nip and further comprising means for removing said attachment roller away from the surface of said gripping layer after said flexible image receiving member has been fully attached to said gripping layer.
- 46. The print engine of claim 41, wherein multiple images are sequentially disposed on the flexible image receiving member and further comprising:
- means for attaching the flexible image receiving member to said gripping layer prior to disposing a complete image thereon; and
- means for stripping the flexible image receiving member from said gripping layer after all of said images have been transferred thereto by said photoconductor member as the flexible image receiving member passes through said transfer nip.
- 47. The prim engine of claim 46, and further comprising a discharge device for discharging the flexible image receiving member prior to said point on the surface of said gripping layer at which said attaching means urges the flexible image receiving member against said gripping layer, said discharge device disposed at a discharge voltage that is substantially equal to said reference voltage.
- 48. The print engine of claim 41, wherein said gripping layer is comprised of a surface with a voltage dependent discharge time constant.
- 49. A method for transferring an image from a photoconductor member to a flexible image receiving member, comprising:
- providing a cylindrical support member for carrying a complete image;
- rotating the support member;
- forming a gripping layer on the surface of the support member;
- urging the flexible image receiving member against the gripping layer with an attachment device at a plane on the surface of the gripping layer;
- developing an attachment voltage across the combination of the flexible image receiving member and the gripping layer;
- applying a primary voltage from a primary voltage source to at least a portion of the outer surface of the support member;
- forming a transfer nip between the photoconductor member and the surface of the flexible image receiving member disposed on the surface of the gripping layer and disposing the photoconductor member at a reference voltage such that a differential voltage is developed across the gripping layer to allow the transfer of toner across the transfer nip to the surface of the flexible image receiving member disposed on the surface of the gripping layer;
- the attachment voltage being at a voltage that is substantially equal to the voltage level of the reference voltage;
- the voltage across the gripping layer at a given point prior to entering the transfer nip being less than the voltage across the gripping layer at the transfer nip; and
- the voltage across the gripping layer surface decreasing as the given point on the gripping layer rotates away from the transfer nip, such that on a complete revolution of the given point, the voltage across the gripping layer is reduced when the given point enters the transfer nip on a subsequent revolution.
- 50. The method of claim 49, and further comprising attaching the flexible image receiving member to the gripping layer.
- 51. The method of claim 49, wherein the step of urging the flexible image receiving member against the gripping layer comprises disposing a conductive attachment roller adjacent the gripping layer and forming an attachment nip therebetween and inputting the flexible image receiving member in the attachment nip, with the conductive attachment roller being disposed at the reference voltage level.
- 52. The method of claim 51, wherein the step of disposing the attachment roller adjacent the gripping layer comprises disposing the attachment roller adjacent the gripping layer at a different point on the surface of the gripping layer relative to the transfer nip and further comprising moving the attachment roller away from the surface of the gripping layer after the flexible image support member has been fully attached to the gripping layer.
- 53. The method of claim 49, wherein multiple images are sequentially disposed on the flexible image receiving member, and further comprising the steps of:
- attaching the flexible image receiving member to the gripping layer prior to disposing a complete image thereon; and
- stripping the flexible image receiving member from the gripping layer after all of the images have been transferred thereto by the photoconductor member as the flexible image receiving member passes through the transfer nip.
- 54. The method of claim 49, wherein the step of disposing a gripping layer on the surface of the support member comprises disposing a layer having a surface with a voltage dependent discharge time constant on the surface of the support member.
- 55. The method of claim 49, wherein the step of forming a gripping layer on the support member comprises disposing material that includes a resilient conducting layer on the surface of the support member, the support member comprising a conducting core, the conducting core attached to the primary voltage source.
- 56. The method of claim 49, wherein the steps of providing the support member and forming the gripping layer on the support member comprise the steps of:
- providing a support core having an outer cylindrical surface;
- disposing an insulating resilient layer on the outer surface of the support core;
- disposing an electrostatic layer on the outer surface of the insulating resilient layer;
- disposing a controlled resistivity layer on the outer surface of the electrostatic layer, the controlled resistivity layer attached to the primary voltage source; and
- disposing a gripping layer on the outer surface of the controlled resistivity layer, the outer surface of the gripping layer operable to receive the flexible image receiving member.
- 57. The method of claim 49, wherein the step of forming the gripping layer on the support member and the step of providing the support member comprise the steps of:
- providing a conductive supporting core having an outer cylindrical surface;
- disposing a controlled resistivity resilient layer on the outer surface of the conducting core;
- disposing an electrode layer on the outer surface of the controlled resistivity resilient layer; and
- disposing a controlled resistivity layer on the surface of the electrode layer, the outer surface of the controlled resistivity layer operable to receive the flexible image receiving member.
- 58. The method of claim 49, wherein the step of forming the gripping layer and the step of providing the support member comprise the steps of:
- providing a supporting core;
- providing an insulating resilient layer disposed on the outer surface of the supporting core; and
- disposing an electrode layer on the surface of the resilient layer and attached to the primary voltage source.
- 59. A method for transferring an image from a photoconductor member to a flexible image receiving member, comprising:
- providing a cylindrical support core;
- rotating the support core;
- disposing an insulating resilient layer on the outer surface of the support core;
- disposing an electrostatic layer on the outer surface of the insulating resilient layer;
- disposing a controlled resistivity layer on the outer surface of the electrostatic layer;
- disposing a gripping layer on the outer surface of the controlled resistivity layer, the outer surface of the gripping layer operable to receive the flexible image receiving member;
- disposing the flexible image receiving member on the gripping layer;
- applying a primary voltage from a primary voltage source to at least a portion of the controlled resistivity layer;
- forming a transfer nip between the photoconductor member and the surface of the flexible image receiving member disposed on the surface of the gripping layer and disposing the photoconductor member at a reference voltage such that a differential voltage is developed across the gripping layer to allow the transfer of toner across the transfer nip to the surface of the flexible image receiving member disposed on the surface of the gripping layer;
- the voltage across the gripping layer at a given point prior to entering the transfer nip being less than the voltage across the gripping layer at the transfer nip; and
- the voltage across the gripping layer decreasing as the given point on the gripping layer rotates away from the transfer nip, such that on a complete revolution of the given point, the voltage across the gripping layer is reduced when the given point enters the transfer nip on a subsequent revolution.
- 60. The method of claim 59, and further comprising attaching the flexible image receiving member to the gripping layer.
- 61. The method of claim 59, wherein the step of disposing the flexible image receiving member on surface of the gripping layer comprises the steps of:
- urging the flexible image receiving member against the gripping layer with an attachment device at a plane on the surface of the gripping layer;
- developing an attachment voltage across the combination of the flexible image receiving member and the gripping layer; and
- the attachment voltage being at a voltage that is substantially equal to the voltage level of the reference voltage.
- 62. The method of claim 61, wherein the step of urging the flexible image receiving member against the gripping layer comprises disposing a conductive attachment roller adjacent the gripping layer and forming an attachment nip therebetween and inputting the flexible image receiving member in the attachment nip, with the conductive attachment roller being disposed at the reference voltage level.
- 63. The method of claim 62, wherein the step of disposing the attachment roller adjacent the gripping layer comprises disposing the attachment roller adjacent the gripping layer at a different point on the surface of the gripping layer relative to the transfer nip and further comprising moving the attachment roller away from the surface of the gripping layer after the flexible image receiving member has been fully attached to the gripping layer.
- 64. The method of claim 59, wherein multiple images are sequentially disposed on the flexible image receiving member, and further comprising the steps of:
- attaching the flexible image receiving member to the gripping layer prior to disposing a complete image thereon; and
- stripping the flexible image receiving member from the gripping layer after all of the images have been transferred thereto by the photoconductor member as the flexible image receiving member passes through the transfer nip.
- 65. The method of claim 59, wherein the step of disposing a gripping layer on the controlled resistivity layer comprises disposing a layer having a surface with a voltage dependent discharge time constant on the controlled resistivity layer.
- 66. A method for transferring an image from a photoconductor member to a flexible image receiving member, comprising:
- providing a conductive cylindrical support core;
- rotating the support core;
- disposing a controlled resistivity resilient layer on the outer surface of the support core;
- disposing an electrode layer on the outer surface of the controlled resistivity resilient layer;
- disposing a controlled resistivity layer on the surface of the electrode layer, the outer surface of the controlled resistivity layer operable to receive the flexible image receiving member;
- disposing the flexible image receiving member on the controlled resistivity layer;
- applying a primary voltage from a primary voltage source to at least a portion of the controlled resistivity layer;
- forming a transfer nip between the photoconductor member and the surface of the flexible image receiving member disposed on the surface of the controlled resistivity layer and disposing the photoconductor member at a reference voltage such that a differential voltage is developed across the controlled resistivity layer to allow the transfer of toner across the transfer nip to the surface of the flexible image receiving member disposed on the surface of the controlled resistivity layer;
- the voltage across the controlled resistivity layer at a given point prior to entering the transfer nip being less than the voltage across the controlled resistivity layer at the transfer nip; and
- the voltage across the controlled resistivity layer decreasing as the given point on the controlled resistivity layer rotates away from the transfer nip, such that on a complete revolution of the given point, the voltage across the controlled resistivity layer is reduced when the given point enters the transfer nip on a subsequent revolution.
- 67. The method of claim 66, and further comprising attaching the flexible image receiving member to the controlled resistivity layer.
- 68. The method of claim 66, wherein the step of disposing the flexible image receiving member on surface of the controlled resistivity layer comprises the steps of:
- urging the flexible image receiving member against the controlled resistivity layer with an attachment device at a plane on the surface of the controlled resistivity layer;
- developing an attachment voltage across the combination of the flexible image receiving member and the controlled resistivity layer; and
- the attachment voltage being at a voltage that is substantially equal to the voltage level of the reference voltage.
- 69. The method of claim 68, wherein the step of urging the flexible image receiving member against the controlled resistivity layer comprises disposing a conductive attachment roller adjacent the controlled resistivity layer and forming an attachment nip therebetween and inputting the flexible image receiving member in the attachment nip, with the conductive attachment roller being disposed at the reference voltage level.
- 70. The method of claim 69, wherein the step of disposing the attachment roller adjacent the controlled resistivity layer comprises disposing the attachment roller adjacent the controlled resistivity layer at a different point on the surface of the controlled resistivity layer relative to the transfer nip and further comprising moving the attachment roller away from the surface of the controlled resistivity layer after the flexible image receiving member has been fully attached to the controlled resistivity layer.
- 71. The method of claim 66, wherein multiple images are sequentially disposed on the flexible image receiving member, and further comprising the steps of:
- attaching the flexible image receiving member to the controlled resistivity layer prior to disposing a complete image thereon; and
- stripping the flexible image receiving member from the controlled resistivity layer after all of the images have been transferred thereto by the photoconductor member as the flexible image receiving member passes through the transfer nip.
- 72. The method of claim 66, wherein the step of disposing a controlled resistivity layer on the electrode layer comprises disposing a layer having a surface with a voltage dependent discharge time constant on the electrode layer.
CROSS-REFERENCE TO RELATED APPLICATION
This is a continuation-in-part of U.S. patent application Ser. No. 07/954,786, filed Sep. 30, 1992, and entitled "Buried Electrode Drum for an Electrophotographic Print Engine", now U.S. Pat. No. 5,276,490.
US Referenced Citations (10)
Continuation in Parts (1)
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Number |
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954786 |
Sep 1992 |
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