Claims
- 1. A method for delivery of a toner cake layer having a high solids content to a receiving surface on a receiving member, comprising the steps of:providing a supply of high solids content liquid developing material; receiving a quantity of such liquid developing material and providing therefrom a layer of liquid developing material on a coating member, the coating member having a donor surface for receiving thereon the layer of liquid developing material so as to form a primary toner cake layer; inducing in at least one of the high solids content liquid developing material and the primary toner cake layer a first induced charge at a first polarity, such that the primary toner cake layer exhibits a uniform charge at the first polarity; inducing, to a selectable depth, a second induced charge of a second, opposing polarity in the primary toner cake layer, whereby an inner layer of the primary toner cake layer is made subject to the first polarity charge and an outer layer of the primary toner cake layer is made subject to the second polarity charge; presenting at least a portion of the primary toner cake layer to the receiving surface and inducing a selectable bias differential between the donor surface and the receiving surface, whereby the selectable bias differential causes the inner and outer layers to be respectively attracted to the donor surface and receiving surface; and separating the donor surface and the receiving surface so as to cause the outer layer to be transferred to the receiving surface as a secondary toner cake layer, while the inner layer remains on the donor surface.
- 2. The method of claim 1, wherein the high solids content liquid developing material is characterized as having percentage level of solids content in the range of more than approximately 10 percent solids content.
- 3. The method of claim 1, wherein at least one of the inner and outer layers is characterized as having at least one of the following characteristics: a percentage level of solids content of approximately 10 percent solids content or greater; a uniform thickness in the range of 1 to 15 microns; and an accurately metered mass per unit area of approximately 0.1 mg per cm2.
- 4. The method of claim 1, further comprising the steps of:controlling at least one of said first induced charge, second induced charge, and bias differential; and in response to such controlling, inducing the second induced charge of the opposing polarity to the selectable depth in the primary toner cake layer.
- 5. The method of claim 1, further comprising the step of establishing a selectable bias differential having a combination of a DC voltage and AC signal, whereby the portion of the primary toner cake layer presented to the receiving surface is fluidized.
- 6. The method of claim 1, further comprising the steps of:determining the density of at least one of the inner and outer layers and, in response, altering the depth of the secondary toner cake layer.
- 7. A method for delivery of a toner cake layer having a high solids content to a receiving surface on a receiving member, comprising the steps of:providing a supply of high solids content liquid developing material; receiving a quantity of such liquid developing material and providing therefrom a layer of liquid developing material on the receiving surface so as to form a primary toner cake layer; inducing in at least one of the high solids content liquid developing material and the primary toner cake layer a first induced charge at a first polarity, such that the primary toner cake layer exhibits a uniform charge at the first polarity; inducing, to a selectable depth, a second induced charge of a second, opposing polarity in the primary toner cake layer, whereby an inner layer of the primary toner cake layer is made subject to the first polarity charge and an outer layer of the primary toner cake layer is made subject to the second polarity charge; presenting at least a portion of the primary toner cake layer to the donor surface of a coating member and inducing a selectable bias differential between the donor surface and the receiving surface so as to cause the inner and outer layers to be respectively attracted to the receiving surface and the donor surface; and separating the donor surface and the receiving surface so as to cause the outer layer to be transferred to the donor surface while the inner layer remains on the receiving surface as a secondary toner cake layer.
- 8. The method of claim 7, wherein the high solids content liquid developing material is characterized as having percentage level of solids content in the range of more than approximately 10 percent solids content.
- 9. The method of claim 7, wherein at least one of the inner and outer layers is characterized as having at least one of the following characteristics: a percentage level of solids content of approximately 10 percent solids content or greater; a uniform thickness in the range of 1 to 15 microns; and an accurately metered mass per unit area of approximately 0.1 mg per cm2.
- 10. The method of claim 7, further comprising the steps of:controlling at least one of said first induced charge, second induced charge, and bias differential; and in response to such controlling, inducing the second induced charge of the opposing polarity to the selectable depth in the primary toner cake layer.
- 11. The method of claim 7, further comprising the step of establishing a selectable bias differential having a combination of a DC voltage and AC signal, whereby the portion of the primary toner cake layer presented to the donor surface is fluidized.
- 12. The method of claim 7, further comprising the steps of:determining the density of at least one of the inner and outer layers and, in response, altering the depth of the secondary toner cake layer.
- 13. A toner cake layer delivery apparatus for delivery of a toner cake layer having a high solids content to a receiving surface on a receiving member, comprising:a movable coating member aligned with the receiving member; a supply of high solids content liquid developing material; a liquid developing material applicator connected to the supply of high solids content liquid developing material and operable for receiving a quantity of such liquid developing material and for providing therefrom a layer of liquid developing material on the receiving surface so as to form a primary toner cake layer; first charge inducing means for inducing in at least one of the high solids content liquid developing material and the primary toner cake layer a first induced charge at a first polarity, such that the primary toner cake layer exhibits a uniform charge at the first polarity; second charge inducing means for inducing, to a selectable depth, a second induced charge of a second, opposing polarity in the primary toner cake layer, whereby an inner layer of the primary toner cake layer is made subject to the first polarity charge and an outer layer of the primary toner cake layer is made subject to the second polarity charge; and means for inducing a selectable bias differential between the donor surface and the receiving surface; wherein the receiving member is operable for presenting at least a portion of the primary toner cake layer to the donor surface and wherein the selectable bias differential causes the inner and outer layers to be respectively attracted to the receiving surface and donor surface, such that subsequent separation of the donor surface and the receiving surface causes the outer layer to be transferred to the donor surface while the inner layer remains on the receiving surface as a secondary toner cake layer.
- 14. The apparatus of claim 13, wherein the high solids content liquid developing material is characterized as having percentage level of solids content in the range of more than approximately 10 percent solids content.
- 15. The apparatus of claim 13, wherein at least one of the inner and outer layers is characterized as having at least one of the following characteristics: a percentage level of solids content of approximately 10 percent solids content or greater; a uniform thickness in the range of 1 to 15 microns; and an accurately metered mass per unit area of approximately 0.1 mg per cm2.
- 16. The apparatus of claim 13, further comprising a control means for controlling at least one of said first induced charge, second induced charge, and bias differential.
- 17. The apparatus of claim 16, further comprising a sensor for determining the density of at least one of the inner and outer layers and for providing a respective output signal, and wherein the operation of the control means is responsive to the output signal.
- 18. The apparatus of claim 13, wherein the second charge inducing means provides an electrical field that penetrates the primary toner cake layer to a depth corresponding to the thickness of the outer layer, thereby establishing said second induced charge of an opposing polarity in the primary toner cake layer.
- 19. The apparatus of claim 13, further comprising means for establishing a selectable bias differential having a combination of a DC voltage and AC signal, whereby the portion of the primary toner cake layer presented to the receiving surface is fluidized.
- 20. An imaging system for effecting contact electrostatic printing of an output image, comprising:an imaging assembly having an imaging member, the imaging member having a receiving surface for receiving an electrostatic latent image thereon, the electrostatic latent image being representative of the desired output image; a toner cake layer delivery apparatus for delivery of a toner cake layer having a high solids content to the receiving surface on the imaging member, comprising: a supply of high solids content liquid developing material; a liquid developing material applicator connected to the supply of high solids content liquid developing material and operable for receiving a quantity of such liquid developing material and for providing therefrom a layer of liquid developing material on the receiving surface so as to form a primary toner cake layer; a coating member aligned with the liquid developing material applicator and the receiving member, the coating member having a donor surface, the movable coating member being operable for pressure contact at a process nip with the receiving surface; first charge inducing means for inducing in at least one of the high solids content liquid developing material and the primary toner cake layer a first induced charge at a first polarity, such that the primary toner cake layer receives a uniform charge at the first polarity; and second charge inducing means for inducing, to a selectable depth, a second induced charge of a second, opposing polarity in the primary toner cake layer, whereby an inner layer of the primary toner cake layer is made subject to the first polarity charge and an outer layer of the primary toner cake layer is made subject to the second polarity charge; and means for inducing a selectable bias differential between the donor surface and the receiving surface; wherein the receiving member is operable for presenting at least a portion of the primary toner cake layer to the donor surface and wherein the selectable bias differential causes the inner and outer layers to be respectively attracted to the receiving surface and donor surface, such that subsequent separation of the donor surface and the receiving surface causes the outer layer to be transferred to the donor surface while the inner layer remains on the receiving surface.
- 21. The imaging system of claim 20, wherein the receiving surface further comprises a photosensitive imaging substrate.
- 22. The imaging system of claim 20, wherein the high solids content liquid developing material is characterized as having percentage level of solids content in the range of more than approximately 10 percent solids content.
- 23. The imaging system of claim 20, wherein at least one of the inner and outer layers is characterized as having at least one of the following characteristics: a percentage level of solids content of approximately 10 percent solids content or greater; a uniform thickness in the range of 1 to 15 microns; and an accurately metered mass per unit area of approximately 0.1 mg per cm2.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of copending application Ser. No. 09/536,854, filed on Mar. 28, 2000, entitled “Method and Apparatus for Toner Cake Delivery”, the content of which is incorporated herein by reference. This application is also related to U.S. patent application Ser. No. 09/457,456, entitled “Method and Apparatus for Delivery of High Solids Content Toner Cake in a Contact Electrostatic Printing System”, filed Dec. 8, 1999, in the names of Chu-heng Liu, Weizhong Zhao, and Paul W. Morehouse, Jr., and U.S. patent application Ser. No. 09/525,344, entitled “Toner Cake Delivery System Having a Carrier Fluid Separation Surface”, filed Mar. 13, 2000, in the name of Chu-Heng Liu.
US Referenced Citations (5)
Number |
Name |
Date |
Kind |
4504138 |
Kuehnle et al. |
Mar 1985 |
A |
5436706 |
Landa et al. |
Jul 1995 |
A |
5596396 |
Landa et al. |
Jan 1997 |
A |
5610694 |
Lior et al. |
Mar 1997 |
A |
5619313 |
Domoto et al. |
Apr 1997 |
A |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09/536854 |
Mar 2000 |
US |
Child |
09/725775 |
|
US |