Claims
- 1. A process for producing a superplastic aluminum-based alloy which exhibits a large elongation at high strain rates of 10.sup.-1 s.sup.-1 or larger, the process comprising:
- forming an aluminum-based alloy consisting of an amorphous phase, a microcrystalline phase or a mixed phase thereof by rapidly quenching an alloy having a particular composition, said particular composition being represented by the general formula: Al.sub.a M.sub.1(b-d) M.sub.3d X.sub.e, wherein M.sub.1 is at least one element selected from the group consisting of Mn, Fe, Co, Ni and Mo; M.sub.3 is at least one element selected from the group consisting of Li, Ca, Mg, Si, Cu and Zn; X is at least one element selected from the group consisting of Nb, Hf, Ta, Y, Zr, Ti, rare earth elements and a mixture of rare earth elements; and a, b, d and e are, in atomic percentages, 75.ltoreq.a.ltoreq.97, 0.5.ltoreq.b.ltoreq.15, 0.5.ltoreq.d.ltoreq.5 and 0.5.ltoreq.e.ltoreq.10;
- optionally, heat treating the aluminum-based alloy; and
- subjecting the aluminum-based alloy to a single or combined thermo-mechanical treatment to provide an alloy having a microstructure suitable for superplastic working, in which said microstructure consists of a matrix formed of aluminum or a supersaturated aluminum solid solution, whose average crystal grain size is 0.005 to 1 .mu.m, and particles made of a stable or metastable phase of various intermetallic compounds formed of a main alloying element making up the matrix and other alloying elements and/or of various intermetallic compounds formed of the other alloying elements and distributed evenly in the matrix, said particles having a mean particle size of 0.001 to 0.1 .mu.m.
- 2. The process for producing the superplastic aluminum-based alloy of claim 1, wherein the superplastic aluminum-based alloy exhibits a large elongation at a strain rate of 10.sup.-1 s.sup.-1 at a temperature of at least 400.degree. C.
- 3. The process for producing the superplastic aluminum-based alloy of claim 1, wherein the superplastic aluminum-based alloy is suitable for high speed working.
- 4. A process for producing a superplastic aluminum-based alloy exhibiting a large elongation at high strain rates of 10.sup.-1 s.sup.-1 or larger, the process comprising:
- forming an aluminum-based alloy consisting of an amorphous phase or a mixed phase of an amorphous phase and a microcrystalline phase by rapidly quenching an alloy having a particular composition, said particular composition being represented by the general formula: Al.sub.a M.sub.1(b-d) M.sub.3d X.sub.e, wherein M.sub.1 is at least one element selected from the group consisting of Mn, Fe, Co, Ni and Mo; M.sub.3 is at least one element selected from the group consisting of Li, Ca, Mg, Si, Cu and Zn; X is at least one element selected from the group consisting of Nb, Hf, Ta, Y, Zr, Ti, rare earth elements and a mixture of rare earth elements; and a, b, d and e are, in atomic percentages, 75.ltoreq.a.ltoreq.97, 0.5.ltoreq.b.ltoreq.15, 0.5.ltoreq.d.ltoreq.5 and 0.5.ltoreq.e.ltoreq.10;
- heat treating the aluminum-based alloy at the crystallization temperature, Tx, +100.degree..+-.50.degree. C. for 0.5 to 5 hours; and
- subjecting the aluminum-based alloy to a single or combined thermo-mechanical treatment at the crystallization temperature, Tx, .+-.150.degree. C. for 0.1 to 1 hour to provide an alloy having a microstructure suitable for superplastic molding, in which said microstructure consists of a matrix formed of aluminum or a supersaturated aluminum solid solution, whose average crystal grain size is 0.005 to 1 .mu.m, and particles made of a stable or metastable phase of various intermetallic compounds formed of a main alloying element making up the matrix and other alloying elements and/or of various intermetallic compounds formed of a main alloying element making up the matrix and other alloying elements and/or of various intermetallic compounds formed of the other alloying elements and distributed evenly in the matrix, said particles having a mean particle size of 0.001 to 0.1 .mu.m.
- 5. The process for producing the superplastic aluminum-based alloy of claim 4, wherein the superplastic aluminum-based alloy exhibits a large elongation at a strain rate of 10.sup.-1 s.sup.-1 at a temperature of at least 400.degree. C.
- 6. The process for producing the superplastic aluminum-based alloy of claim 4, wherein the superplastic aluminum-based alloy is suitable for high speed working.
- 7. A process for producing a superplastic aluminum-based alloy which exhibits a large elongation at high strain rates of 10.sup.-1 s.sup.-1 or larger, the process comprising:
- forming an aluminum-based alloy consisting of an amorphous phase, a microcrystalline phase or a mixed phase thereof by rapidly quenching an alloy having a particular composition, said particular composition being represented by the general formula: Al.sub.a M.sub.1(b-c-d) M.sub.2c M.sub.3d X.sub.e, wherein M.sub.1 is at least one element selected from the group consisting of Mn, Fe, Co, Ni and Mo; M.sub.2 is at least one element selected from the group consisting of V, Cr and W; M.sub.3 is at least one element selected from the group consisting of Li, Ca, Mg, Si, Cu and Zn; X is at least one element selected from the group consisting of Nb, Hf, Ta, Y, Zr, Ti, rare earth elements and a mixture of rare earth elements; and a, b, c, d and e are, in atomic percentages, 75.ltoreq.a.ltoreq.97, 0.523 b.ltoreq.15, 0.1.ltoreq.c.ltoreq.5, 0.5.ltoreq.d.ltoreq.5 and 0.5.ltoreq.e.ltoreq.10;
- optionally, heat treating the aluminum-based alloy; and
- subjecting the aluminum-based alloy to a single or combined thermo-mechanical treatment to provide an alloy having a microstructure suitable for superplastic working, in which said microstructure consists of a matrix formed of aluminum or a supersaturated aluminum solid solution, whose average crystal grain size is 0.005 to 1 .mu.m, and particles made of a stable or metastable phase of various intermetallic compounds formed of a main alloying element making up the matrix and other alloying elements and/or of various intermetallic compounds formed of the other alloying elements and distributed evenly in the matrix, said particles having a mean particle size of 0.001 to 0.1 .mu.m.
- 8. The process for producing the superplastic aluminum-based alloy of claim 7, wherein the superplastic aluminum-based alloy exhibits a large elongation at a strain rate of 10.sup.-1 s.sup.-1 at a temperature of at least 400.degree. C.
- 9. The process for producing the superplastic aluminum-based alloy of claim 7, wherein the superplastic aluminum-based alloy is suitable for high speed working.
- 10. A process for producing a superplastic aluminum-based alloy exhibiting a large elongation at high strain rates of 10.sup.-1 s.sup.-1 or larger, the process comprising:
- forming an aluminum-based alloy consisting of an amorphous phase or a mixed phase of an amorphous phase and a microcrystalline phase by rapidly quenching an alloy having a particular composition, said particular composition being represented by the general formula: Al.sub.a M.sub.1(b-c-d) M.sub.2c M.sub.3d X.sub.e, wherein M.sub.1 is at least one element selected from the group consisting of Mn, Fe, Co, Ni and Mo; M.sub.2 is at least one element selected from the group consisting of V, Cr and W; M.sub.3 is at least one element selected from the group consisting of Li, Ca, Mg, Si, Cu and Zn; X is at least one element selected from the group consisting of Nb, Hf, Ta, Y, Zr, Ti, rare earth elements and a mixture of rare earth elements; and a, b, c, d and e are, in atomic percentages, 75.ltoreq.a.ltoreq.97, 0.5.ltoreq.b.ltoreq.15, 0.1.ltoreq.c.ltoreq.5, 0.5.ltoreq.d.ltoreq.5 and 0.5.ltoreq.e.ltoreq.10;
- heat treating the aluminum-based alloy at the crystallization temperature, Tx, +100.degree..+-.50.degree. C. for 0.5 to 5 hours; and
- subjecting the aluminum-based alloy to a single or combined thermo-mechanical treatment at the crystallization temperature, Tx, .+-.150.degree. C. for 0.1 to 1 hour to provide an alloy having a microstructure suitable for superplastic molding, in which said microstructure consists of a matrix formed of aluminum or a supersaturated aluminum solid solution, whose average crystal grain size is 0.005 to 1 .mu.m, and particles made of a stable or metastable phase of various intermetallic compounds formed of a main alloying element making up the matrix and other alloying elements and/or of various intermetallic compounds formed of a main alloying element making up the matrix and other alloying elements and/or of various intermetallic compounds formed of the other alloying elements and distributed evenly in the matrix, said particles having a mean particle size of 0.001 to 0.1 .mu.m.
- 11. The process for producing the superplastic aluminum-based alloy of claim 10, wherein the superplastic aluminum-based alloy exhibits a large elongation at a strain rate of 10.sup.-1 s.sup.-1 at a temperature of at least 400.degree. C.
- 12. The process for producing the superplastic aluminum-based alloy of claim 10, wherein the superplastic aluminum-based alloy is suitable for high speed working.
- 13. A superplastic aluminum-based alloy consisting of a matrix formed of aluminum or a supersaturated aluminum solid solution, whose average crystal grain size is 0.005 to 1 .mu.m, and particles made of a stable or metastable phase of various intermetallic compounds formed of a main alloying element making up the matrix and other alloying elements and/or of various intermetallic compounds formed of the other alloying elements and distributed evenly in the matrix, said particles having a mean particle size of 0.001 to 0.1 .mu.m and said superplastic aluminum-based alloy exhibiting a large elongation at high strain rates of 10.sup.-1 s.sup.-1 or larger and consisting of a composition represented by the general formula: Al.sub.a M.sub.1(b-d) M.sub.3d X.sub.e, wherein M.sub.1 is at least one element selected from the group consisting of Mn, Fe, Co, Ni and Mo; M.sub.3 is at least one element selected from the group consisting of Li, Ca, Mg, Si, Cu and Zn; X is at least one element selected from the group consisting of Nb, Hf, Ta, Y, Zr, Ti, rare earth elements and a mixture of rare earth elements; and a, b, d and e are, in atomic percentages, 75.ltoreq.a.ltoreq.97, 0.5.ltoreq.b.ltoreq.15, 0.5.ltoreq.d.ltoreq.5 and 0.5.ltoreq.e.ltoreq.10.
- 14. The superplastic aluminum-based alloy of claim 13, wherein the superplastic aluminum-based alloy exhibits a large elongation at a strain rate of 10.sup.-1 s.sup.-1 at a temperature of at least 400.degree. C.
- 15. The superplastic aluminum-based alloy of claim 13, wherein the superplastic aluminum-based alloy is suitable for high speed working.
- 16. A superplastic aluminum-based alloy consisting of a matrix formed of aluminum or a supersaturated aluminum solid solution, whose average crystal grain size is 0.005 to 1 .mu.m, and particles made of a stable or metastable phase of various intermetallic compounds formed of a main alloying element making up the matrix and other alloying elements and/or of various intermetallic compounds formed of the other alloying elements and distributed evenly in the matrix, said particles having a mean particle size of 0.001 to 0.1 .mu.m and said superplastic aluminum-based alloy exhibiting a large elongation at high strain rates of 10.sup.-1 s.sup.-1 or larger and consisting of a composition represented by the general formula: Al.sub.a M.sub.1(b-c-d) M.sub.2c M.sub.3d X.sub.e, wherein M.sub.1 is at least one element selected from the group consisting of Mn, Fe, Co, Ni and Mo; M.sub.2 is at least one element selected from the group consisting of V, Cr and W; M.sub.3 is at least one element selected from the group consisting of Li, Ca, Mg, Si, Cu and Zn; X is at least one element selected from the group consisting of Nb, Hf, Ta, Y, Zr, Ti, rare earth elements and a mixture of rare earth elements; and a, b, c, d and e are, in atomic percentages, 75.ltoreq.a.ltoreq.97, 0.5.ltoreq.b.ltoreq.15, 0.1.ltoreq.c.ltoreq.5, 0.5.ltoreq.d.ltoreq.5 and 0.5.ltoreq.e.ltoreq.10.
- 17. The superplastic aluminum-based alloy of claim 16, wherein the superplastic aluminum-based alloy exhibits a large elongation at a strain rate of 10.sup.-1 s.sup.-1 at a temperature of at least 400.degree. C.
- 18. The superplastic aluminum-based alloy of claim 16, wherein the superplastic aluminum-based alloy is suitable for high speed working.
Priority Claims (2)
Number |
Date |
Country |
Kind |
3-247523 |
Sep 1991 |
JPX |
|
3-323178 |
Dec 1991 |
JPX |
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Parent Case Info
This is a continuation division of Ser. No. 07/951,197, filed Sep. 25, 1992, now U.S. Pat. No. 5,332,456.
US Referenced Citations (3)
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Name |
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5053085 |
Masumoto et al. |
Oct 1991 |
|
5171374 |
Kim et al. |
Dec 1992 |
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5332456 |
Masumoto et al. |
Jul 1994 |
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Continuations (1)
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Number |
Date |
Country |
Parent |
951197 |
Sep 1992 |
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