Claims
- 1. A rare-earth alloy anisotropic powder consisting essentially of, in atomic percent, over 12 percent and not more than 20 percent of R (R is at least one of neodymium and praseodymium or at least one of them and one or more rare-earth elements), not less than 4 percent and not more than 10 percent of boron, not less than 0.05 percent and not more than 5 percent of copper and the rest that consists essentially of iron and unavoidable impurities,
- the alloy powder being made up of flat crystal grains having mean thickness h (the shortest measure), d not smaller than 0.01 .mu.m and not larger than 0.5 .mu.m and ratio d/h not smaller than 2, d being the mean measure of the grains taken at right angles to the widthwise direction thereof, and the alloy powder being magnetically anisotropic.
- 2. A rare-earth alloy anisotropic powder according to claim 1, in which up to 20 atomic percent of the iron contained is replaced with cobalt.
- 3. A rare-earth alloy anisotropic powder according to claims 1 or 2, in which the residual magnetic flux density in the direction of the axis of easy magnetization is not lower than 9 kG.
- 4. A rare-earth alloy anisotropic magnet consisting of a rare-earth alloy anisotropic powder according to claims 1 or 2 and not less than 10 percent and not more than 50 percent, both by volume, of resin.
- 5. A rare-earth alloy anisotropic magnet consisting of a hot-compressed product of a rare-earth alloy anisotropic powder according to claims 1 or 2.
- 6. A process for preparing a rare-earth alloy anisotropic powder comprising the steps of:
- melting an alloy consisting essentially of, in atomic percent, over 12 percent and not more than 20 percent of R (R is at least one of neodymium and praseodymium or at least one of them and one or more rare-earth elements), not less than 4 percent and not more than 10 percent of boron, not less than 0.05 percent and not more than 5 percent of copper and the rest that consists essentially of iron and unavoidable impurities;
- making thin ribbons made up of fine grains by quenching the melted alloy;
- putting the thin ribbons or a powder obtained by grinding the thin ribbons into a metal container and hermetically sealing the metal container after replacing the inner atmosphere thereof with a vacuum or an inert atmosphere; and
- rolling the thin ribbons or powder together with the metal container at a temperature not lower than 500.degree. C. and not higher than 900.degree. C.
- 7. A process for preparing a rare-earth alloy anisotropic powder according to claim 6 in which up to 20 atomic percent of the iron contained is replaced with cobalt.
- 8. A process for preparing a rare-earth alloy anisotropic powder according to claims 6 or 7 in which the thin ribbons or powder is preliminarily formed between said steps of making thin ribbons and sealing the metal container.
- 9. A process for preparing a rare-earth alloy anisotropic powder according to claims 6 or 7 in which the thin ribbons or powder is preliminarily worked, together with the metal container, at a temperature lower than 800.degree. C. between said steps of sealing the metal container and rolling.
- 10. A process for preparing a rare-earth alloy anisotropic powder according to claims 6 or 7 in which the product obtained by rolling the thin ribbons or powder together with the metal container is ground into a powder.
- 11. A process for preparing a rare-earth alloy anisotropic powder according to claims 6 or 7 in which the rolled product is heat treated at a temperature not lower than 400.degree. C. and not higher than 800.degree. C.
- 12. A process for preparing a rare-earth alloy anisotropic powder according to claims 6 or 7 in which the powder obtained by grinding the rolled product is heat treated at a temperature not lower than 400.degree. C. and not higher than 800.degree. C.
- 13. A process for making a rare-earth alloy anisotropic magnet comprising the steps of:
- melting an alloy consisting of, in atomic percent, over 12 percent and not more than 20 percent of R (R is at least one of neodymium and praseodymium or at least one of them and one or more rare-earth elements), not less than 4 percent and not more than 10 percent of boron, not less than 0.05 percent and not more than 5 percent of copper and the rest that consists of iron and unavoidable impurities;
- making thin ribbons made up of fine grains by quenching the melted alloy;
- putting the thin ribbons or a powder obtained by grinding the thin ribbons into a metal container and hermetically sealing the metal container after replacing the inner gas atmosphere thereof with a vacuum or an inert atmosphere;
- rolling the thin ribbons or powder together with the metal container at a temperature not lower than 500.degree. C. and not higher than 900.degree. C.; and
- mixing a powder prepared by grinding the rolled product with not less than 10 percent and not more than 50 percent by volume of resin into a desired shape.
- 14. A process for making a rare-earth alloy anisotropic magnet comprising the steps of:
- melting an alloy consisting of, in atomic percent, over 12 percent and not more than 20 percent of R (R is at least one of neodymium and praseodymium or at least one of them and one or more rare-earth elements), not less than 4 percent and not more than 10 percent of boron, not less than 0.05 percent and not more than 5 percent of copper and the rest that consists of iron and unavoidable impurities;
- making thin ribbons made up of fine grains by quenching the melted alloy;
- putting the thin ribbons or a powder obtained by grinding the thin ribbons into a metal container and hermetically sealing the metal container after replacing the inner gas atmosphere thereof with a vacuum or an inert atmosphere;
- rolling the thin ribbons or powder together with the metal container at a temperature not lower than 500.degree. C. and not higher than 900.degree. C.; and
- hot-compressing a powder prepared by grinding the rolled product into a desired shape.
- 15. A process for preparing a rare-earth alloy anisotropic magnet according to claims 13 or 14 in which the thin ribbons or powder is preliminarily formed between said steps of making thin ribbons and sealing the metal container.
- 16. A process for preparing a rare-earth alloy anisotropic magnet according to claims 13 or 14 in which the thin ribbons or powder is preliminarily worked, together with the metal container, at a temperature lower than 800.degree. C. between said steps of sealing the metal container and rolling.
- 17. A process for preparing a rare-earth alloy anisotropic magnet according to claims 13 or 14 in which the rolled product is heat treated at a temperature not lower than 400.degree. C. and not higher than 800.degree. C.
- 18. A process for preparing a rare-earth alloy anisotropic magnet according to claims 13 or 14 in which the powder obtained by grinding the rolled product is heat treated at a temperature not lower than 400.degree. C. and not higher than 800.degree. C.
Priority Claims (1)
Number |
Date |
Country |
Kind |
1-202675 |
Aug 1989 |
JPX |
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Parent Case Info
This application is a continuation of application Ser. No. 07/475,460 filed Feb. 6, 1990, now abandoned.
US Referenced Citations (12)
Foreign Referenced Citations (7)
Number |
Date |
Country |
59-46008 |
Mar 1984 |
JPX |
59-64739 |
Apr 1984 |
JPX |
60-100402 |
Jun 1985 |
JPX |
62-203302 |
Sep 1987 |
JPX |
64-704 |
Jan 1989 |
JPX |
64-7504 |
Jan 1989 |
JPX |
64-39702 |
Feb 1989 |
JPX |
Continuations (1)
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Number |
Date |
Country |
Parent |
475460 |
Feb 1990 |
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