Claims
- 1. A method of manufacturing an x-ray tube component for use in an x-ray generating apparatus, the method comprising the steps of:
mixing two or more metallic powders to form a metallic powder mixture, at least one of the metallic powders comprising a material that is substantially non-transmissive to x-radiation; and forming the metallic powder mixture into a predetermined component shape.
- 2. A method of manufacturing as defined in claim 1, wherein the material that is substantially non-transmissive to x-radiation is selected from one of the following: tungsten, copper, molybdenum, tantalum, steel, bismuth, lead, and alloys of the foregoing.
- 3. A method of manufacturing as defined in claim 1, wherein at least one of the two or more metallic powders is selected from one of the following: nickel, iron, copper, cobalt, aluminum, and alloys of the foregoing.
- 4. A method of manufacturing as defined in claim 1, wherein the forming the metallic powder mixture into the predetermined component shape component step comprises the step of solidifying the metallic powder mixture.
- 5. A method of manufacturing as defined in claim 1, wherein the forming the metallic powder mixture into the predetermined component shape component step comprises the step of solidifying the metallic powder mixture using a hot isostatic pressing process.
- 6. A method of manufacturing as defined in claim 1, wherein the forming the metallic powder mixture into the predetermined component shape component step comprises the step of forming a flat sheet of from a solidified form of the metallic powder mixture into the predetermined component shape.
- 7. A method of manufacturing an x-ray tube component, the method comprising the steps of:
providing a first powder metal component that is comprised of a dense x-ray absorbing material; providing a second powder metal component; mixing the first and second metallic powders to form a metallic powder mixture; and forming the metallic powder mixture into a predetermined x-ray tube component shape, wherein the mixture of the first powder metal component and the second powder metal component together limit the amount of x-radiation that is able to pass through the x-ray tube component to a predetermined level.
- 8. A method of manufacturing as defined in claim 7, wherein the first powder metal component includes tungsten.
- 9. A method of manufacturing as defined in claim 8, wherein the tungsten is in an amount that is in a range from about 50% to about 99% by weight of the x-ray tube component.
- 10. A method of manufacturing as defined in claim 7, wherein the second powder metal component includes copper.
- 11. A method of manufacturing as defined in claim 10, wherein the copper is in an amount that is in a range from about 1% to about 50% by weight of the x-ray tube component.
- 12. A method of manufacturing as defined in claim 7, wherein the first powder metal component includes tungsten and the second powder metal component includes copper.
- 13. A method of manufacturing as defined in claim 12, wherein the x-ray tube component comprises approximately 80% by weight tungsten as the first powder metal component and approximately 20% by weight copper as the second powder metal component.
- 14. A method of manufacturing as defined in claim 12, wherein the x-ray tube component comprises approximately 90% by weight tungsten as the first powder metal component, approximately 2% by weight iron as the second powder metal component, and approximately 8% by weight nickel as a third powder metal component.
- 15. A method of manufacturing as defined in claim 7, wherein the second powder metal component includes at least one of the following: nickel, iron, cobalt, and aluminum.
- 16. A method of manufacturing as defined in claim 7, wherein the first powder metal component includes at least one of the following: tungsten, copper, molybdenum, tantalum, steel, bismuth, lead, and alloys of the foregoing.
- 17. A method of manufacturing as defined in claim 7, wherein the x-ray tube component shape is at least partially formed as an x-ray tube housing.
- 18. A method of manufacturing as defined in claim 7, further comprising the step of providing a bond layer on at least a portion of an exterior surface of the x-ray tube component, wherein the bond layer enhances a bond strength between the x-ray tube component and a connected structure.
- 19. A method of manufacturing as defined in claim 7, further comprising the step of affixing a heat dissipation structure to an exterior surface of the x-ray tube component.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of U.S. patent application Ser. No. 09/694,568, filed Oct. 23, 2000, and entitled X-RAY TUBE AND METHOD OF MANUFACTURE, which is incorporated herein by reference in its entirety.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09694568 |
Oct 2000 |
US |
Child |
10868403 |
Jun 2004 |
US |