Claims
- 1. A composite kinetic energy penetrator comprising:
- a plurality of dispersed bodies of refractory heavy metal; and
- a matrix of amorphous or nanocrystalline metal surrounding and wetting the dispersed bodies for forming an integral kinetic energy penetrator, the matrix metal being characterized by generation of localized shear band deformation upon it being strained at deformation rates characteristic of kinetic energy penetration.
- 2. A composite kinetic energy penetrator according to claim 1 wherein the heavy metal is selected from the group consisting of tungsten, tantalum, uranium, hafnium and alloys thereof.
- 3. A composite kinetic energy penetrator according to claim 1 wherein the matrix metal comprises an amorphous metal.
- 4. A composite kinetic energy penetrator according to claim 1 wherein the matrix metal is a nanocrystalline metal.
- 5. A composite kinetic energy penetrator according to claim 1 wherein the matrix metal has a grain size less than 50 nanometers.
- 6. A composite kinetic energy penetrator according to claim 1 wherein the matrix metal has a grain size of about 10 nanometers.
- 7. A composite kinetic energy penetrator according to claim 1 wherein the matrix metal has a yield strength greater than two gigaPascals.
- 8. A composite kinetic energy penetrator according to claim 1 wherein the heavy metal bodies comprise at least 80 percent of the volume of the penetrator.
- 9. A composite kinetic energy penetrator according to claim 1 wherein the matrix metal is capable of deforming without work hardening.
- 10. A composite kinetic energy penetrator according to claim 1 wherein the heavy metal bodies are in the form of parallel high aspect ratio bodies.
- 11. A composite kinetic energy penetrator according to claim 10 wherein the high aspect ratio bodies are oriented parallel to an axis of the penetrator.
- 12. A composite kinetic energy penetrator according to claim 1 wherein the heavy metal bodies are in the form of particles.
- 13. A composite kinetic energy penetrator according to claim 1 wherein the penetrator has a density of at least 14 gm/cm.sup.3.
- 14. A composite kinetic energy penetrator having either
- an average composition of more than 70 atomic percent metal selected from the group consisting of tungsten, tantalum and uranium as a separate phase, in an amorphous or nanocrystalline matrix providing an average composition of more than 8 atomic percent metal selected from a first group consisting of iron, copper, nickel, cobalt, silver, chromium and silicon, and more than 8 atomic percent metal selected from a second group consisting of zirconium, titanium and hafnium, with the matrix alloy being at least a quaternary alloy with at least two metals selected from the first group; or
- an average composition comprising more than 70 atomic percent metal selected from the group consisting of tungsten, tantalum and uranium as a separate phase, in an amorphous or nanocrystalline matrix providing an average composition of more than 5 atomic percent metal selected from the group consisting of iron, nickel, cobalt, chromium and silver, more than 2 atomic percent metal selected from the group consisting of copper, aluminum, zinc, silicon, beryllium and boron, and more than 5 atomic percent metal selected from the group consisting of zirconium, titanium and hafnium.
- 15. A composite kinetic energy penetrator according to claim 14 wherein the penetrator has a density of at least 14 gm/cm.sup.3.
- 16. A composite kinetic energy penetrator according to claim 14 comprising dispersed bodies of metal selected from the group consisting of tungsten, tantalum and alloys thereof and a matrix of other metals surrounding and wetting the dispersed bodies.
- 17. A composite kinetic energy penetrator according to claim 16 wherein the matrix metal is characterized by generation of localized shear band deformation upon it being strained at deformation rates characteristic of kinetic energy penetration.
- 18. A composite kinetic energy penetrator according to claim 16 comprising a major portion of dispersed bodies having a body centered cubic crystal structure and a minor matrix portion being either an amorphous metal or a nanocrystalline metal.
- 19. A composite generally cylindrical kinetic energy penetrator comprising:
- a plurality of refractory heavy metal wires oriented along the axis of the penetrator; and
- a matrix of metal surrounding and wetting the wires for bonding the wires together, the matrix metal being an amorphous metal or a nanocrystalline metal.
- 20. A composite kinetic energy penetrator according to claim 19 wherein the matrix metal has a grain size of about 10 nanometers.
- 21. A composite kinetic energy penetrator according to claim 19 wherein the heavy refractory metal is selected from the group consisting of tungsten and tungsten alloys.
- 22. A composite kinetic energy penetrator comprising:
- a plurality of dispersed bodies of heavy metal having an aspect ratio of at least ten; and
- a matrix comprising sufficient localized shear band amorphous or nanocrystalline metal surrounding the dispersed bodies for causing the penetrator to deform with localized shear bands upon it being strained at deformation rates characteristic of kinetic energy penetration.
- 23. A composite kinetic energy penetrator according to claim 22 wherein the heavy metal has a body centered cubic crystal structure and the matrix metal is either an amorphous metal or a nanocrystalline metal.
- 24. A composite kinetic energy penetrator according to claim 22 wherein the matrix metal has a yield strength greater than two gigaPascals.
- 25. A composite kinetic energy penetrator according to claim 22 wherein the metal bodies comprise at least 80 percent of the volume of the penetrator.
- 26. A composite kinetic energy penetrator according to claim 25 wherein the heavy metal bodies are oriented parallel to an axis of the penetrator.
- 27. A composite kinetic energy penetrator wherein the penetrator has a density of at least 14 gm/cm.sup.3.
- 28. A composite kinetic energy penetrator comprising:
- a plurality of dispersed bodies of heavy metal having an aspect ratio of at least ten and a plurality of dispersed bodies having an aspect ratio of less than two, wherein the volume fraction of high aspect ratio bodies is greater than eight times the volume fraction of low aspect ratio bodies; and
- a matrix comprising sufficient localized shear band metal surrounding the dispersed bodies for causing the penetrator to deform with localized shear bands upon it being strained at deformation rates characteristic of kinetic energy penetration.
Government Interests
The U.S. Government has certain rights in this invention pursuant to Grant No. DAAH04-95-1-0233 awarded by the Army Research Office, Department of Defense.
US Referenced Citations (8)