Claims
- 1. A method for evenly heating metal components using electron irradiation in a vacuum chamber, which comprises:providing a vacuum chamber having an electron irradiation device for irradiating the chamber; providing multilayer holding elements in the vacuum chamber, the multilayer holding elements having: an outer layer facing the electron radiation, the outer layer resistant to heat and exhibiting heat-absorption properties; and an inner layer facing respective metal components held within the holding elements, the inner layer exhibiting heat-radiating properties; and holding at least one metal component in the vacuum chamber with at least one holding element during electron irradiation heating.
- 2. A configuration for evenly heating metal components, comprising:a vacuum chamber having an electron irradiation device for irradiating the chamber; and multilayer holding elements for holding metal components in the vacuum chamber during electron irradiation heating, said holding elements having: an outer layer facing electron radiation from said irradiation device, said outer layer resistant to heat and having heat-absorption properties; and an inner layer facing respective metal components and having heat-radiating properties.
- 3. The configuration according to claim 2, wherein:said outer layer is a solid part made from at least one of tantalum and molybdenum; and said inner layer is a graphite layer disposed on said outer layer.
- 4. The configuration according to claim 2, wherein:said outer layer is a solid part made from a metal tending to form thermally, highly stable oxides; and said inner layer is an oxide layer disposed on said outer layer.
- 5. The configuration according to claim 4, wherein said metal is one of a group consisting of chromium, nickel, and aluminum, and alloys of chromium, nickel, and aluminum.
- 6. The configuration according to claim 4, wherein said metal is one of a group consisting of chromium, nickel, aluminum, chromium alloys, nickel alloys, and aluminum alloys.
- 7. The configuration according to claim 4, wherein said metal is at least one of chromium, nickel, and aluminum, and alloys of chromium, nickel, and aluminum.
- 8. The configuration according to claim 4, wherein said metal is at least one of chromium, nickel, aluminum, chromium alloys, nickel alloys, and aluminum alloys.
- 9. The configuration according to claim 3, wherein said solid part has an outside, and a ceramic layer is disposed on said outside of said solid part.
- 10. The configuration according to claim 4, wherein said solid part has an outside, and a ceramic layer is disposed on said outside of said solid part.
- 11. In a vacuum chamber having an electron irradiation device for irradiating the chamber, a configuration for evenly heating metal components, comprising:multilayer holding elements for holding metal components in the vacuum chamber during electron irradiation heating, said holding elements having: an outer layer facing electron radiation from said irradiation device, said outer layer resistant to heat and having heat-absorption properties; and an inner layer facing respective metal components and having heat-radiating properties.
Priority Claims (1)
Number |
Date |
Country |
Kind |
198 45 804 |
Sep 1998 |
DE |
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CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation of copending International Application No. PCT/DE99/03235, filed Sep. 30, 1999, which designated the United States.
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Number |
Name |
Date |
Kind |
3596045 |
Steigerwald |
Jul 1971 |
A |
3624390 |
Watanabe |
Nov 1971 |
A |
5814784 |
Kinsman et al. |
Sep 1998 |
A |
Foreign Referenced Citations (2)
Number |
Date |
Country |
2638094 |
Mar 1978 |
DE |
3508690 |
Nov 1985 |
DE |
Non-Patent Literature Citations (1)
Entry |
“Effect of Concentrated Solar Heating on Surface Condition of Stainless Steel”, Yu. N. Ivashchenko et al., Applied Solar Energy 26, 1990, No. 3, New York, pp. 77-79. |
Continuations (1)
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Number |
Date |
Country |
Parent |
PCT/DE99/03235 |
Sep 1999 |
US |
Child |
09/821943 |
|
US |