Claims
- 1. A laminated structure, comprising:
a. a first metal substrate; and b. a thickness of an electrospark deposited coating comprising at least one rare earth, said coating metallurgically bonded to said first metal substrate and formed by the process of electrospark depositing a first material onto said first metal substrate from a first electrode comprising said at least one rare earth.
- 2. The laminated structure as recited in claim 1, wherein said first metal substrate is selected from the group consisting of zirconium-based alloys, iron-based alloys, and nickel-based alloys.
- 3. The laminated structure as recited in claim 1, wherein said at least one rare earth contains erbium.
- 4. The laminated structure as recited in claim 1, wherein said first electrode consists essentially of a rare earth.
- 5. The laminated structure as recited in claim 4, wherein said rare earth is erbium.
- 6. The laminated structure as recited in claim 1, wherein said thickness is up to 150 μm.
- 7. The laminated structure as recited in claim 1, wherein said coating is obtained in a single pass and has said thickness of up to 75 μm.
- 8. The laminated structure as recited in claim 1, wherein the process of electrospark deposition comprises the step of rotating said first electrode while rastering said first electrode across said first metal substrate while depositing said first material onto said first metal substrate from said first electrode through a plasma arc.
- 9. The laminated structure as recited in claim 1, wherein said laminated structure is a component of a fissile material storage container.
- 10. A laminated structure, comprising:
a. a first metal substrate; b. a thickness of an electrospark deposited coating comprising at least one rare earth, said coating metallurgically bonded to said first metal substrate and formed by the process of electrospark depositing a first material onto said first metal substrate from a first electrode comprising said at least one rare earth; and c. a second metal substrate metallurgically bonded to said coating.
- 11. The laminated structure as recited in claim 10, wherein said first and second metal substrates are selected from the group consisting of zirconium-based alloys, iron-based alloys, and nickel-based alloys.
- 12. The laminated structure as recited in claim 11, wherein said first and second metal substrates are selected from the group consisting of Zr—Sn, Zr—Nb, and Zr—Sn—Nb alloys.
- 13. The laminated structure as recited in claim 12, wherein said first and second metal substrates are selected from the group consisting of UNS R60802, UNS R60804, and UNS R60901.
- 14. The laminated structure as recited in claim 10, wherein said at least one rare earth contains erbium.
- 15. The laminated structure as recited in claim 10, wherein said first electrode consists essentially of a rare earth.
- 16. The laminated structure as recited in claim 15, wherein said rare earth is erbium.
- 17. The laminated structure as recited in claim 10, wherein said second metal substrate is metallurgically bonded to said coating by the process selected from the group consisting of hot rolling, hot pressing, high deformation rate processing, and combinations thereof.
- 18. The laminated structure as recited in claim 10, wherein said laminated structure is a component of a nuclear fuel assembly.
- 19. The laminated structure as recited in claim 18, wherein said nuclear fuel assembly is used in a nuclear reactor selected from the group consisting of boiling water reactors and pressurized water reactors.
- 20. The laminated structure as recited in claim 19, wherein said component is a channel in a boiling water reactor fuel assembly.
- 21. The laminated structure as recited in claim 10, wherein said laminated structure is a component of a fissile material storage container.
- 22. A laminated structure, comprising:
a. a first metal substrate; b. a thickness of an electrospark deposited coating comprising at least one rare earth and a second material, said coating metallurgically bonded to said first metal substrate and formed by the process of electrospark depositing a first material onto said first metal substrate from a first electrode comprising said at least one rare earth and then electrospark depositing said second material onto said first material from a second electrode; and c. a second metal substrate metallurgically bonded to said coating.
- 23. The laminated structure as recited in claim 22, wherein said first and second metal substrates are selected from the group consisting of zirconium-based alloys, iron-based alloys, and nickel-based alloys.
- 24. The laminated structure as recited in claim 23, wherein said first and second metal substrates are selected from the group consisting of Zr—Sn, Zr—Nb, and Zr—Sn—Nb alloys.
- 25. The laminated structure as recited in claim 24, wherein said first and second metal substrates are selected from the group consisting of UNS R60802, UNS R60804, and UNS R60901.
- 26. The laminated structure as recited in claim 22, wherein said at least one rare earth contains erbium.
- 27. The laminated structure as recited in claim 22, wherein said first electrode consists essentially of a rare earth.
- 28. The laminated structure as recited in claim 27, wherein said rare earth is erbium.
- 29. The laminated structure as recited in claim 22, wherein said second electrode comprises an absorber.
- 30. The laminated structure as recited in claim 22, wherein said second electrode comprises a base element of said second metal substrate.
- 31. The laminated structure as recited in claim 22, wherein said second electrode comprises at least one rare earth.
- 32. The laminated structure as recited in claim 22, wherein said second metal substrate is bonded to said coating by the process selected from the group consisting of hot rolling, hot pressing, high deformation rate processing, and combinations thereof.
- 33. The laminated structure as recited in claim 22, wherein said laminated structure is a component of a nuclear fuel assembly.
- 34. The laminated structure as recited in claim 33, wherein said nuclear fuel assembly is used in a nuclear reactor selected from the group consisting of boiling water reactors and pressurized water reactors.
- 35. The laminated structure as recited in claim 34, wherein said component is a channel in a boiling water reactor fuel assembly.
- 36. The laminated structure as recited in claim 22, wherein said laminated structure is a component of a fissile material storage container.
- 37. A method of making a laminated structure, comprising the steps of:
(a) providing a first metal substrate; and (b) metallurgically bonding a thickness of a coating to said first metal substrate, said coating formed by the process of electrospark-depositing a first material onto said first metal substrate from a first electrode comprising at least one rare earth.
- 38. The method as recited in claim 37, wherein said first metal substrate is selected from the group consisting of zirconium-based alloys, iron-based alloys, and nickel-based alloys.
- 39. The method as recited in claim 37, wherein said at least one rare earth contains erbium.
- 40. The method as recited in claim 37, wherein said first electrode consists essentially of a rare earth.
- 41. The method as recited in claim 40, wherein said rare earth is erbium.
- 42. The method as recited in claim 37, wherein said thickness is up to 150 μm.
- 43. The method as recited in claim 37, wherein said coating is obtained in a single pass and has said thickness of up to 75 μm.
- 44. The method as recited in claim 37, wherein the process of electrospark depositing comprises the step of rotating said first electrode while rastering said first electrode across said first metal substrate while depositing said first material onto said first metal substrate from said first electrode through a plasma arc.
- 45. A method of making a laminated structure, comprising the steps of:
(a) providing a first metal substrate; (b) metallurgically bonding a thickness of a coating to said first metal substrate, said coating formed by the process of electrospark-depositing a first material onto said first metal substrate from a first electrode comprising a rare earth; and (c) metallurgically bonding a second metal substrate to said coating.
- 46. The method as recited in claim 45, wherein said first and second metal substrates are selected from the group consisting of zirconium-based alloys, iron-based alloys, and nickel-based alloys.
- 47. The method as recited in claim 46, wherein said first and second metal substrates are selected from the group consisting of Zr—Sn, Zr—Nb, and Zr—Sn—Nb alloys.
- 48. The method as recited in claim 47, wherein said first and second metal substrates are selected from the group consisting of UNS R60802, UNS R60804, and UNS R60901.
- 49. The method as recited in claim 45, wherein said at least one rare earth contains erbium.
- 50. The method as recited in claim 45, wherein said first electrode consists essentially of a rare earth.
- 51. The method as recited in claim 50, wherein said rare earth is erbium.
- 52. The method as recited in claim 45, further comprising the step of electrospark-depositing a second material onto said first material from a second electrode comprising an absorber.
- 53. The method as recited in claim 45, further comprising the step of electrospark-depositing a second material onto said first material from a second electrode comprising a base element of said second metal substrate.
- 54. The method as recited in claim 45, further comprising the step of electrospark-depositing a second material onto said first material from a second electrode comprising at least one rare earth.
- 55. The method as recited in claim 45, wherein said metallurgical bonding is performed by a process selected from the group consisting of hot rolling, hot pressing, high deformation rate processing, and combinations thereof.
- 56. The method as recited in claim 45, wherein said laminated structure is a component of a nuclear fuel assembly.
- 57. The method as recited in claim 56, wherein said nuclear fuel assembly is used in a nuclear reactor selected from the group consisting of boiling water reactors and pressurized water reactors.
- 58. The method as recited in claim 57, wherein said component is a channel in a boiling water reactor fuel assembly.
- 59. The method as recited in claim 45, wherein said laminated structure is a component of a fissile material storage container.
- 60. The method as recited in claim 45, wherein the process of electrospark depositing comprises the step of rotating said first electrode while rastering said first electrode across said first metal substrate while depositing said first material onto said first metal substrate from said first electrode through a plasma arc.
Government Interests
[0001] This invention was made with Government support under Contract DE-AC0676RLO1830 awarded by the U.S. Department of Energy. The Government has certain rights in the invention.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09620407 |
Jul 2000 |
US |
Child |
10177540 |
Jun 2002 |
US |