Claims
- 1. An improved process for reinforcing a metal matrix with fibers for fabrication of a composite comprising:
- a) preparing a metal matrix from a particulate metal substantially hydrided,
- b) interfacing the hydrided matrix metal with the fibers,
- c) bonding the matrix metal to the fibers under pressure and at an elevated temperature for a predetermined time duration, and
- d) removing hydrogen evolved from the hydrided matrix metal during dehydridation.
- 2. The process of fabricating a composite as in claim 1 wherein the predetermined concentration of hydrogen in the hydrided metal matrix is in the range of approximately less than four percent by weight.
- 3. The process of fabricating a composite as in claim 1 wherein the step of interfacing the hydrided metal matrix with the fiber tow is carried out in a relative dynamic vacuum.
- 4. The process of fabricating a composite as for claim 1 wherein the step of interfacing the hydrided metal matrix with the fiber tow is performed at the predetermined pressure of approximately 5000 psi.
- 5. The process of fabricating a composite as for claim 1 wherein the step of interfacing the hydrided metal matrix with the fiber tow is performed at the predetermined lower temperature of approximately 1400.degree. F. for allowing the matrix to be fully dense.
- 6. The process of fabricating a composite as in claim 1 whereby the step of interfacing the hydrided metal matrix with the fiber tow is performed at the predetermined duration within the range of one half hour to two hours.
- 7. The process of fabricating a composite as in claim 1 wherein the step of interfacing the hydrided metal matrix with the fiber tow is performed using an alloy as the metal matrix.
- 8. This process of fabricating a composite as in claim 7 wherein the step of interfacing the hydrided matrix metal with the fiber tow is performed using a metal matrix alloy having a concentration of 90% titanium, 6% aluminum, and 4% vanadium by weight.
- 9. The process of fabricating a composite as in claim 1 wherein the step of interfacing the hydrided matrix metal with the fiber tow is performed using an element as the metal matrix selected from the group consisting of titanium, zirconium, hafnium, tantalum, columbium, uranium, and rare earth elements.
- 10. The process of fabricating a composite as in claim 1 wherein the step of interfacing the hydrided matrix metal with the fiber tow wherein the metal matrix is titanium.
- 11. The process of fabricating a composite as in claim 1 wherein the step of interfacing the hydrided metal with the fiber tow wherein the metal matrix is titanium alloy.
- 12. The process of fabricating a composite as in claim 1 including the additional step of annealing in a dynamic vacuum the composite at a predetermined temperature to remove the residual hydrogen.
- 13. The process of fabricating a composite as in claim 12 wherein the annealing step is performed at the predetermined temperature of approximately 1300.degree. F.
- 14. The process of fabricating a composite in claim 12 including the additional step of cooling the composite at a predetermined rate in a dynamic vacuum to prevent oxidation.
STATEMENT OF GOVERNMENT INTEREST
The invention described herein may be manufactured and used by or for the Government of the United States for governmental purposes without the payment of a royalty therefor.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
3861839 |
Malik |
Jan 1975 |
|
3940262 |
Niebylski |
Feb 1976 |
|