Claims
- 1. A cooling article adapted for use with a thermal-processing apparatus for cooling a thermally-processable element after the element is heated by a heating member within the thermal-processing apparatus, wherein the cooling article comprises a cooling plate having a top surface, wherein the top surface is positioned relative to the heated member so that the element is transported from the heating member and slides on at least a portion of the top surface, and wherein the top surface is textured so that not more than 80 percent of the portion of the top surface on which the element slides contacts the element.
- 2. The cooling article of claim 1, wherein the top surface is textured so that between 20 and 80 percent of the portion of the top surface on which the element slides contacts the element.
- 3. The cooling article of claim 1, wherein the top surface is textured so that between 40 and 70 percent of the portion of the top surface on which the element slides contacts the element.
- 4. The cooling article of claim 1, wherein the top surface is textured so that between 50 and 65 percent of the portion of the top surface on which the element slides contacts the element.
- 5. The cooling article of claim 1, wherein the top surface is stationary.
- 6. The cooling article of claim 1, wherein the cooling plate has a bottom surface, and wherein the cooling article further comprising at least a first fin, wherein the first fin is thermally conductive and thermally coupled to the bottom surface of the cooling plate.
- 7. The cooling article of claim 6, wherein the cooling article further comprises an epoxy layer which couples the first fin to the bottom surface of the cooling plate.
- 8. The cooling article of claim 1, further comprising:
- side walls connected to and extending approximately orthogonally from the cooling plate; and
- a top cover connected to the side walls forming a chute with the side walls and the cooling plate.
- 9. The cooling article of claim 8, wherein the cooling plate has side ends, and wherein the side walls are formed by bending the side ends upwardly.
- 10. The cooling article of claim 8, wherein the top cover comprises a main portion and two leg portions connected to the main portion, wherein the two leg portions and the main portion define an open portion in the top cover.
- 11. The cooling article of claim 1, wherein the portion of the cooling plate on which the element slides has a length of not more than 18 centimeters, wherein the element is a sheet having a surface area of not less than 1500 square centimeters, wherein the cooling article has sufficient thermal mass and conductivity to cool the element not less than 30 degrees Centigrade at rate of one element every 30 seconds.
- 12. The cooling article of claim 11, wherein the cooling article has sufficient thermal mass and conductivity to cool the element not less than 60 degrees Centigrade at a rate of one element every 30 seconds.
- 13. An apparatus for thermally processing a thermally-processable imaging element, comprising:
- a housing;
- a heating member within the housing which receives and heats the thermally processable imaging element; and
- a cooling article positioned relative to the heating member to receive the thermally-processable imaging element from the heating member and cool the thermally-processable imaging element, wherein the cooling article includes a cooling plate having a cooling surface positioned relative to the heating member so that the thermally-processable imaging element is transported from the heating member and slides on at least a portion of the cooling surface, wherein the cooling surface is perforated.
- 14. The apparatus of claim 13, further comprising an exposure station for exposing a first image onto thermally processable element which can be processed into a visible image by the heating member.
- 15. An apparatus for creating a visible image on a photothermographic element, comprising:
- a housing having an input station, wherein the input station can accept a container containing the photothermographic element;
- transport means positioned within the housing and relative to the input station for transporting the photothermographic element within the housing;
- an exposure station positioned within the housing and relative to the transport means, wherein the exposure station can receive the photothermographic element from the transport means and expose the photothermographic element to an image-wise pattern of light to create a first image on the photothermographic element;
- a thermal processing station positioned within the housing and relative to the transport means and the exposure station, wherein the thermal processing station includes a heating member which can receive the photothermographic element transported by the transport means from the exposure station and can heat the photothermographic element to a sufficient temperature for a sufficient duration to process the first image to the visible image;
- directing means positioned relative to the heating member for directing the photothermographic element from the heating member; and
- a cooling article for cooling the photothermographic element, wherein the cooling article includes a cooling surface positioned relative to the directing means and the heating member so that the photothermographic element slides on at least a portion of the cooling surface, and wherein the cooling surface is perforated.
- 16. A method of minimizing curling of an exposed thermally-processable element while cooling the element after the element is heated by a heating member within the thermal-processing apparatus, comprising the step of directing the element across a cooling plate having a top surface positionable relative to the heated member so that the element is transported from the heating member and slides over at least a portion of the top surface, wherein the top surface is textured so that not more than 80 percent of the portion of top surface on which the element slides contacts the element.
- 17. The method of claim 16, wherein the top surface is textured so that between 20 and 80 percent of the portion of top surface on which the element slides contacts the element.
- 18. The method of claim 16, wherein the top surface is textured so that between 40 and 70 percent of the portion of top surface on which the element slides contacts the element.
- 19. The method of claim 16, wherein the top surface is textured so that between 50 and 65 percent of the portion of top surface on which the element slides contacts the element.
- 20. The method of claim 16, wherein the thermally-processable element has a polymeric film side and an emulsion coating side, wherein the directing step includes directing the emulsion coating side in contact with the top surface, and wherein the top surface is stationary.
- 21. A cooling article for cooling a thermally-processable imaging element after the element is heated by a heating member, wherein the cooling article comprises a cooling member having a cooling surface, wherein the cooling surface is positioned relative to the heated member so that the element is transported from the heating member and slides on at least a portion of the cooling surface, the cooling surface being perforated.
- 22. The cooling article of claim 21, the cooling surface being perforated such that between 50 and 75 percent of the cooling surface over which the element is transported is open.
- 23. The cooling article of claim 21, the cooling surface being perforated such that between 55 to 70 percent of the cooling surface over which the element is transported is open.
- 24. The cooling article of claim 21, the cooling surface being perforated such that 63 percent of the cooling surface over which the element is transported is open.
- 25. A method for cooling a thermally-processable imaging element after the element is heated by a heating member within a thermal-processing apparatus, comprising the step of directing the element across a cooling plate having a cooling surface positionable relative to the heated member so that the element is transported from the heating member and slides over at least a portion of the cooling surface, wherein the cooling surface is perforated.
REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of commonly assigned and U.S. Ser. No. 08/336,498 now abandoned filed Nov. 9, 1994, and entitled "Article and Method for Cooling a Sheet of Material While Minimizing Wrinkling and Curling Within the Sheet".
US Referenced Citations (9)
Foreign Referenced Citations (1)
Number |
Date |
Country |
58211152 |
Dec 1983 |
JPX |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
336498 |
Nov 1994 |
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