Claims
- 1. A heat-resistant, wear resistant, and high-strength aluminum alloy powder which is formed by pulverizing and solidifying a melt, and which consists essentially of from 15.0% by weight to 25% by weight silicon, from 5.9% by weight to 15.0% by weight iron, and at least one of from 0.5% by weight to 5.0% by weight of copper and from 0.2% by weight to 3.0% by weight of magnesium, and comprising silicon crystals and intermetallic compounds of iron, wherein the silicon crystals in said aluminum alloy powder are 15 .mu.m or less in size and said intermetallic compounds are finely dividable acicular crystals that are 20 .mu.m or less in size, in a plastic deforming process of said powder.
- 2. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder which is formed by pulverizing and solidifying a melt and which consists essentially of from 15.0% by weight to 25% by weight silicon, from 7.1% by weight to 15.0% by weight manganese, and at least one of 0.5% by weight to 5.0% by weight of copper and from 0.2% by weight to 3.0% by weight of magnesium, and comprising silicon crystals and intermetallic compounds of manganese, wherein the silicon crystals in said aluminum alloy powder are 15 .mu.m or less in size and said intermetallic compounds are finely dividable acicular crystals that are 20 .mu.m or less in size, in a plastic deforming process of said powder.
- 3. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder which is formed by pulverizing and solidifying a melt and which consists essentially of from 15.0% by weight to 25% by weight silicon, from 7.7% by weight to 15.0% by weight nickel, and at least one of from 0.5% by weight to 5.0% by weight of copper and from 0.2% by weight to 3.0% by weight of magnesium, and comprising silicon crystals and intermetallic compounds of nickel, wherein the silicon crystals in said aluminum alloy powder are 15 .mu.m or less in size and said intermetallic compounds are finely dividable acicular crystals that are 20 .mu.m or less in size, in a plastic deforming process of said powder.
- 4. A heat-resistant, wear-resistant, and high strength aluminum alloy powder which is formed by pulverizing and solidifying a melt, and which consists essentially of from 15.0% by weight to 25% by weight silicon, manganese and one of 4.1% or more of nickel or 4.5% or more of iron, wherein the total amount of the manganese and nickel or iron is less than 15.0% by weight, and at least one of from 0.5% by weight to 5.0% by weight of copper and from 0.2% by weight to 3.0% by weight of magnesium, and comprising silicon crystals and intermetallic compounds of manganese and nickel or iron, wherein the silicon crystals in said aluminum alloy powder are 15 .mu.m or less in size and said intermetallic compounds are finely dividable acicular crystals that are 20 .mu.m or less in size, in a plastic deforming process of said powder.
- 5. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder which is formed by pulverizing and solidifying a melt, and which consists essentially of from 15.0% by weight to 25% by weight silicon, iron and 5.1% by weight or more of nickel, wherein the total amount of nickel and iron is 15.0% by weight or less, and at least one of from 0.5% by weight of copper and from 0.2% by weight to 3.0% by weight of magnesium, and comprising silicon crystals and intermetallic compounds of iron and nickel, wherein the silicon crystals in said aluminum alloy powder are 15 .mu.m or less in size and said intermetallic compounds are finely dividable acicular crystals that are 20 .mu.m or less in size, in a plastic deforming process of said powder.
- 6. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder is formed by pulverizing and solidifying a melt and which consists essentially of from 15% by weight to 25% by weight silicon, and 6 to 15% total of all three of nickel, iron, and manganese, and at least one of from 0.5% by weight to 5.0% by weight of copper and from 0.2% by weight to 3.0% by weight of magnesium, and comprising silicon crystals and intermetallic compounds of nickel, iron, and manganese, wherein the silicon crystals in said aluminum alloy powder are 15 .mu.m or less in size and said intermetallic compounds are finely dividable acicular crystals that are 20 .mu.m or less in size, in a plastic deforming process of said powder.
- 7. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 1, wherein the particles are 0.5 mm or less in diameter.
- 8. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 2, wherein the particles are 0.5 mm or less in diameter.
- 9. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 3, wherein the particles are 0.5 mm or less in diameter.
- 10. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 4, wherein the particles are 0.5 mm or less in diameter.
- 11. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 5, wherein the particles are 0.5 mm or less in diameter.
- 12. A heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 6, wherein the particles are 0.5 mm or less in diameter.
- 13. A shaped body of the heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 1, wherein the iron forms intermetallic compounds that are 20 .mu.m or less in size and are finely distributed in said shaped body, and said shaped body has a scuff resistance higher than A 390 and a tensile strength of 24 kg/mm.sup.2 or more at 200.degree. C.
- 14. A shaped body of the heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 2, wherein the manganese forms intermetallic compounds that are 20 .mu.m or less in size and are finely distributed in said shaped body, and said shaped body has a scuff resistance higher than A 390 and a tensile strength of 24 kg/mm.sup.2 or more at 200.degree. C.
- 15. A shaped body of the heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 3, wherein the nickel forms intermetallic compounds that are 20 .mu.m or less in size and are finely distributed in said shaped body, and said shaped body has a scuff resistance higher than A 390 and a tensile strength of 24 kg/mm.sup.2 or more at 200.degree. C.
- 16. A shaped body of the heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 4, wherein the manganese and the nickel or iron form intermetallic compounds that are 20 .mu.m or less in size and are finely distributed in said shaped body, and said shaped body has a scuff resistance higher than A 390 and a tensile strength of 24 kg/mm.sup.2 or more at 200.degree. C.
- 17. A shaped body of the heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 5, wherein the iron and the nickel form intermetallic compounds that are 20 .mu.m or less in size and are finely distributed in said shaped body, and said shaped body has a scuff resistance higher than A 390 and a tensile strength of 24 kg/mm.sup.2 or more at 200.degree. C.
- 18. A shaped body of the heat-resistant, wear-resistant, and high-strength aluminum alloy powder according to claim 6, wherein the nickel, iron, and manganese form intermetallic compounds that are 20 .mu.m or less in size and are finely distributed in said shaped body, and said shaped body has a scuff resistance higher than A 390 and a tensile strength of 24 kg/mm.sup.2 or more at 200.degree. C.
- 19. A shaped body according to claim 13, which contains from 0.2% by weight to 5.0% by weight of at least one solid lubricant selected from the group consisting of graphite, molybdenum disulphide, and boron nitride.
- 20. A shaped body according to claim 14, which contains from 0.2% by weight to 5.0% by weight of at least one solid lubricant selected from the group consisting of graphite, molybdenum disulphide, and boron nitride.
- 21. A shaped body according to claim 15, which contains from 0.2% by weight to 5.0% by weight of at least one solid lubricant selected from the group consisting of graphite, molybdenum disulphide, and boron nitride.
- 22. A shaped body according to claim 16, which contains from 0.2% by weight to 5.0% by weight of at least one solid lubricant selected from the group consisting of graphite, molybdenum disulphide, and boron nitride.
- 23. A shaped body according to claim 17, which contains from 0.2% by weight to 5.0% by weight of at least one solid lubricant selected from the group consisting of graphite, molybdenum disulphide, and boron nitride.
- 24. A shaped body according to claim 18, which contains from 0.2% by weight to 5.0% by weight of at least one solid lubricant selected from the group consisting of graphite, molybdenum disulphide, and boron nitride.
- 25. A shaped body according to claim 13, wherein the majority of the intermetallic compound acicular crystals are 5 .mu.m or less in size and the remainder of the intermetallic compound acicular crystals are 20 .mu.m or less in size.
- 26. A shaped body according to claim 14, wherein the majority of the intermetallic compound acicular crystals are 5 .mu.m or less in size and the remainder of the intermetallic compound acicular crystals are 20 .mu.m or less in size.
- 27. A shaped body according to claim 15, wherein the majority of the intermetallic compound acicular crystals are 5 .mu.m or less in size and the remainder of the intermetallic compound acicular crystals are 20 .mu.m or less in size.
- 28. A shaped body according to claim 16, wherein the majority of the intermetallic compound acicular crystals are 5 .mu.m or less in size and the remainder of the intermetallic compound acicular crystals are 20 .mu.m or less in size.
- 29. A shaped body according to claim 17, wherein the majority of the intermetallic compound acicular crystals are 5 .mu.m or less in size and the remainder of the intermetallic compound acicular crystals are 20 .mu.m or less in size.
- 30. A shaped body according to claim 18, wherein the majority of the intermetallic compound acicular crystals are 5 .mu.m or less in size and the remainder of the intermetallic compound acicular crystals are 20 .mu.m or less in size.
Priority Claims (4)
| Number |
Date |
Country |
Kind |
| 57-119901 |
Jul 1982 |
JPX |
|
| 57-119902 |
Jul 1982 |
JPX |
|
| 57-167577 |
Jul 1982 |
JPX |
|
| 57-157578 |
Jul 1982 |
JPX |
|
Parent Case Info
This is a continuation of application Ser. No. 07/168,798 abandoned, which is a continuation of application Ser. No. 06/867,883 filed May 16, 1986 abandoned, which is a continuation of application Ser. No. 06/512,046 filed on July 8, 1983 abandoned.
US Referenced Citations (1)
| Number |
Name |
Date |
Kind |
|
3325279 |
Lawrence et al. |
Jun 1967 |
|
Continuations (3)
|
Number |
Date |
Country |
| Parent |
168795 |
Mar 1988 |
|
| Parent |
867883 |
May 1986 |
|
| Parent |
512046 |
Jul 1983 |
|