Claims
- 1. A process comprising:
providing a moving substrate; applying at least one coating layer onto the moving substrate with a slot die coater equipped with at least one position sensor mounted on at least one, and for example from one to about five end of the slot die coater; sensing the position of the slot die coater relative to the moving substrate with at least one position sensor; and when the position of the slot die coater relative to the moving substrate deviates from a set of predetermined coordinates, iteratively adjusting the position of the die coater relative to the surface of the substrate to return to the set of predetermined coordinates.
- 2. The process in accordance with claim 1, wherein the position sensor contains a laser diode light beam emitter which irradiates a surface region on the substrate and a position sensitive detector which detects the reflection of the irradiation from the surface of the substrate.
- 3. The process in accordance with claim 2, wherein the position sensor further contains a signal processor which translates the output current from the position sensitive detector into a voltage which is proportional to the distance between the slot die coater and the moving substrate.
- 4. The process in accordance with claim 1, further comprising applying from about 2 to about 20 coating layers on the substrate.
- 5. The process in accordance with claim 1, further comprising curing the resulting coated layer or layers.
- 6. The process in accordance with claim 1, wherein the moving substrate is accomplished by mounting a cylindrical substrate on a rotating spindle.
- 7. The process in accordance with claim 1, wherein the moving substrate is a continuous web passing optionally supported by a backing roller.
- 8. The process in accordance with claim 1, wherein the at least one coating is a photoconductive material, an electrically insulating material, a hole transport material, an anti-curl material, an adhesive material, or a protective overcoat material layer.
- 9. The process in accordance with claim 1, wherein the at least one coating is applied to the substrate in a thickness of from about 0.01 inches to about 10 inches and with a lateral width of from about 0.02 inches to about 40 inches.
- 10. The process in accordance with claim 1, wherein the moving substrate is a rotating cylinder with a rotational rate and the slot die coating application rate from the coater to provide a single coating coverage rate of from about 1 square inches per second to about 1,000 square inches per second.
- 11. The process in accordance with claim 1, wherein the coating application rate from the die coater is continuous and provides a continuous coating layer of uniform layer thickness.
- 12. The process in accordance with claim 1, wherein the coating dispense rate from the die coater is discontinuous and provides a discontinuous coating of uniform layer thickness.
- 13. The process in accordance with claim 1, wherein the at least one coating is a mixture of at least two co-reactive materials.
- 14. An apparatus comprising:
a movement device that moves an object to be coated; a slot die coater equipped with a position sensor mounted on at least one end of the slot die coater and which slot die coater controllably dispenses coating material onto the moving object; and at least one servor motor-controller system in electrical contact with the position sensor, wherein the position sensor senses the position of the slot die coater relative to the object and wherein the at least one servor motor-controller system adjusts the position of the slot die coater relative to the object if the position of the slot die coater relative to the moving substrate deviates from a set of predetermined coordinates.
- 15. The apparatus of claim 14, wherein a laser sensor is mounted on each end of the slot die coater.
- 16. The apparatus of claim 14, wherein the object is a web and the long dimension of the slot die coater traverses the width of the web.
- 17. The apparatus of claim 14, wherein the object is a cylinder and the long dimension of the slot die coater traverses the width of the cylinder.
- 18. The apparatus of claim 14, wherein the at least one servor motor-controller system adjusts the x-axis separation distance position between the slot die coater and the object.
- 19. The apparatus of claim 14, wherein the at least one servor motor-controller system adjusts the y-axis pitch position between the slot die coater and the object to maintain the slot die coater parallel to a rotational axis of a cylindrical object or parallel to a rotational axis of a cylindrical backing roller of a web object.
- 20. The apparatus of claim 14, wherein the at least one servor motor-controller system adjusts the z-axis yaw position between the slot die coater and the object.
- 21. The coating apparatus of claim 14, wherein the slot die coater is positioned from about 1.0 millimeter to about 5 millimeter from the object to be coated.
- 22. A xerographic apparatus comprising a charging component, an imaging member component, a fusing component, a transfer component, and a development component.
CROSS REFERENCE TO COPENDING APPLICATIONS AND RELATED PATENT
[0001] This is a Divisional of application Ser. No. 09/953,526, filed on Sep. 17, 2001.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09953526 |
Sep 2001 |
US |
Child |
10369810 |
Feb 2003 |
US |