Claims
- 1. A refined aluminum alloy casting comprising a hyper-eutectic alloy containing 7-16 percent by weight silicon, 0.3-2.0 percent by weight magnesium and 0.5-3.0 percent by weight manganese and wherein intermetallics formed from excess of alloying elements in the hyper-eutectic alloy during solidification of the casting are nucleated and refined by the presence of non-metallic refractory particles selected from the group consisting of a metal oxide, metal nitride, metal carbide and metal silicide dispersed in the alloy.
- 2. A refined alloy according to claim 1 wherein the aluminum alloy consisting of, in percentages by weight, 7-16% silicon, 0.3-2.0% magnesium, 0.5-3.0% manganese, 0-5.0% copper, 0-5.0% nickel, 0-1.0% iron and 0-0.2% titanium.
- 3. A refined alloy according to claim 2 wherein titanium is present in the alloy in an amount of 0.1-0.2%.
- 4. A refined alloy according to claim 2 wherein the refractory particles comprise silicon carbide.
- 5. A refined alloy according to claim 4 wherein the silicon carbide particles have sizes of less than 1 .mu.m.
- 6. A refined alloy according to claim 5 wherein the particles have an aspect ratio in any direction of no more than 5:1.
- 7. A refined alloy according to claim 6 wherein the particles are present in an amount of 5-40% by volume.
- 8. An aluminum alloy composite casting comprising a matrix of aluminum alloy reinforced by non-metallic refractory particles selected from the group consisting of a metal oxide, metal nitride, metal carbide and metal silicide,
- wherein the aluminum alloy is a hyper-eutectic alloy containing 7-16 percent by weight silicon, 0.3-2.0 percent by weight magnesium, and 0.5-3.0 percent by weight manganese and wherein the refractory reinforcing particles are engulfed by intermetallics formed from excess of alloying elements in the hyper-eutectic alloy during solidification of the casting and thereby uniformly dispersed in the matrix.
- 9. A composite casting according to claim 8 wherein the aluminum alloy consists of, in percentages by weight, 7-16% silicon, 0.3-2.0% magnesium, 0.5-3.0% manganese, 0-5.0% copper, 0-5.0% nickel, 0-1.0% iron and 0-0.2% titanium.
- 10. A composite casting according to claim 9 wherein titanium is present in the alloy in an amount of 0.1-0.2%.
- 11. A composite casting according to claim 9 wherein the refractory particles comprise silicon carbibe.
- 12. A composite casting according to claim 11 wherein the silicon carbide particles have size up to 20 .mu.m.
- 13. A composite casting according to claim 12 wherein the silicon carbide particles have sizes in the range 10-15 .mu.m.
- 14. A composite casting according to claim 13 wherein the particles have an aspect ratio in any direction of no more than 5:1.
- 15. A composite casting according to claim 14 wherein the particles are present in an amount of 5-40% by volume.
- 16. A method for preparing a refined eutectic or hyper-eutectic metal alloy, comprising:
- melting an eutectic or hyper-eutectic aluminum alloy containing 7-16 percent by weight silicon, 0.3-2.0 percent by weight magnesium and 0.5-3.0 percent by weight manganese;
- adding non-metallic refractory particles selected from the group consisting of a metal oxide, metal nitride, metal carbide and metal silicide to the molten aluminum matrix;
- mixing together the molten aluminum alloy and the refractory particles; and
- casting the resulting mixture under conditions causing at least one intermetallic phase to solidify first from the molten aluminum alloy matrix during solidification thereof such that the intermetallics formed during solidification wet and engulf said refractory particles.
- 17. A method for preparing a composite of a metallic alloy matrix reinforced with non-metallic refractory particles selected from the group consisting of a metal oxide, metal nitride, metal carbide and metal silicide, comprising:
- melting an eutectic or hyper-eutectic aluminum alloy containing 7-16 percent by weight silicon, 0.3-2.0 percent by weight magnesium and 0.5-3.0 percent by weight manganese;
- adding the refractory particles selected from the group consisting of a metal oxide, metal nitride, metal carbide and metal silicide to the molten alloy;
- mixing together the molten alloy and the refractory particles; and
- casting the resulting mixture under conditions causing at least one intermetallic phase to solidify first from the molten alloy during solidification thereof such that the refractory particles are wetted and engulfed by the intermetallic phase as it grows during solidification.
- 18. A method for preparing a refined hyper-eutectic metal alloy, comprising:
- melting a hyper-eutectic aluminum alloy containing 7-16 percent by weight silicon, 0.3-2.0 percent by weight magnesium and 0.5-3.0 percent by weight manganese;
- adding non-metallic refractory particles selected from the group consisting of a metal oxide, metal nitride, metal carbide and metal silicide to the molten metal matrix;
- mixing together the molten metal alloy and the refractory particles, and;
- casting the resulting mixture whereby at least one intermetallic phase forms from excess of alloying elements in the hyper-eutectic alloy and solidifies from the molten metal matrix during solidification thereof such that the intermetallics formed during solidification wet and engulf said refractory particles.
- 19. A method according to claim 18 wherein the refractory particles comprise silicon carbide.
- 20. A method according to claim 18 wherein the intermetallics are selected from the group consisting of Si, FeSiAl.sub.5, Fe.sub.2 SiAl.sub.8, Mn.sub.3 Si.sub.2 Al.sub.15, NiAl.sub.3 and Mg.sub.2 Si.
- 21. A method according to claim 18 wherein refractory particles have sizes up to 20 microns.
- 22. A method according to claim 18 wherein the refractory particles have sizes of less than one micron.
- 23. A method according to claim 22 wherein the refractory particles nucleate and refine the intermetallics.
- 24. A method for preparing a composite of a metallic alloy matrix reinforced with non-metallic refractory particles, comprising:
- melting a hyper-eutectic aluminum alloy containing 7-16 percent by weight silicon, 0.3-2.0 percent by weight magnesium and 0.5-3.0 percent by weight manganese;
- adding the refractory particles selected from the group consisting of a metal oxide, metal nitride, metal carbide and metal silicide to the molten alloy;
- mixing together the molten metal alloy and the refractory particles, and;
- casting the resulting mixture whereby at least one intermetallic phase forms from excess of alloying elements in the hyper-eutectic alloy and solidifies from the molten alloy during solidification thereof such that the refractory particles are wetted and engulfed by the intermetallic phase as it grows during solidification.
- 25. A method according to claim 24 wherein the refractory particles comprise silicon carbide.
- 26. A method according to claim 24 wherein the intermetallics are selected from the group consisting of Si, Fe.sub.2 SiAl.sub.8, FeSiAl.sub.5, Mn.sub.3 Si.sub.2 Al.sub.15, NiAl.sub.3 and Mg.sub.2 Si.
- 27. The method according to claim 24 wherein the refractory particles have sizes in the range of 10-15 microns.
- 28. A method according to claim 18, wherein said aluminum alloy contains 0-1.0 percent by weight iron.
- 29. A method according to claim 24, wherein said aluminum alloy contains 0-1.0 percent by weight iron.
- 30. A casting according to claim 8, wherein said aluminum alloy contains 0-1.0 percent by weight iron.
- 31. A casting according to claim 1, wherein said aluminum alloy contains 0-1.0 percent by weight iron.
- 32. A method according to claim 16, wherein said aluminum alloy contains 0-1.0 percent by weight iron.
- 33. A method according to claim 17, wherein said aluminum alloy contains 0-1.0 percent by weight iron.
Priority Claims (1)
Number |
Date |
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Kind |
2030928 |
Nov 1990 |
CAX |
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Parent Case Info
This application is a continuation of Ser. No. 800,071, filed Nov. 27, 1991, now abandoned, which is a continuation of Ser. No. 770,124, filed Oct. 2, 1991 (now abandoned).
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Continuations (2)
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Number |
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Parent |
800071 |
Nov 1991 |
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Parent |
770124 |
Oct 1991 |
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