Claims
- 1. A method of producing bond rare earth element.iron.boron magnets which comprises the steps of;
- mixing in a scheduled ratio an acicular iron powder coated with a coating material, a rare earth element powder coated with a coating material, and a boron powder coated with a coating material to prepare a powder mixture;
- compression-molding the powder mixture to prepare a molded powder mixture;
- sintering the molded mixture in the presence of a magnetic field to prepare a sintered magnet;
- preparing a magnet powder by hydrogen-disintegration of the sintered magnet wherein a hydrogen-occluded magnet resulting from heating the sintered magnet under hydrogen atmosphere is subjected to emission of the occluded hydrogen under substantial vacuum to cause disintegration of the hydrogen-occluded magnet;
- coating the magnet powder with a coating material to prepare a coated magnet powder;
- mixing the coated magnet powder with a binder to prepare a mixture of the coated magnet powder and the binder; and
- compression-molding the mixture under heating in the presence of a magnetic field.
- 2. A method of producing bond rare earth element.iron.boron magnets according to claim 1, in which the coating material for the acicular iron powder, rare earth element powder, boron powder and the magnet powder is aluminum phosphate.
- 3. A method of producing bond rare earth element.iron.boron magnets according to claim 1, in which the mixing ratio between the rare earth element powder, the boron powder and the acicular iron powder for preparing the powder mixture is 20-40 weight % for the rare earth element powder, 0.5-3 weight % for the boron powder and the balance acicular iron powder.
- 4. A method of producing bond rare earth element.iron.boron magnets according to claim 1, in which the acicular iron powder is one prepared by reducing acicular FeOOH (geothite) crystal under heating in hydrogen atmosphere, the rare earth element powder is one prepared by hydrogen-disintegration of rare earth element lumps wherein hydrogen-occluded rare earth element lumps resulting from heating rare earth element lumps under hydrogen atmosphere are subjected to emission of the occluded hydrogen under substantial vacuum to cause disintegration of the hydrogen-occluded rare earth element lumps, and the boron powder is one prepared by hydrogen-disintegration of boron lumps wherein hydrogen-occluded boron lumps resulting from heating boron lumps under hydrogen atmosphere are subjected to emission of the occluded hydrogen under substantial vacuum to cause disintegration of the hydrogen-occluded boron lumps.
- 5. A method of producing bond rare earth element.iron.boron magnets according to claim 4, in which the temperature for reducing the acicular iron powder under hydrogen atmosphere is 300.degree.-500.degree. C., the temperature for heating the raw material rare earth element lumps or boron lumps under hydrogen atmosphere to occlude hydrogen is 800.degree.-900.degree. C., and the temperature for emitting hydrogen under substantial vacuum from the hydrogen-occluded rare earth element lumps or boron lumps is not lower than 100.degree. C.
- 6. A method of producing bond rare earth element.iron.boron magnets according to claim 2, in which the acicular iron powder coated with aluminum phosphate has a length of not longer than 10 .mu.m, the rare earth element powder coated with aluminum phosphate has an average particle size of 1-10 .mu.m and the boron powder coated with aluminum phosphate has an average particle size of 1-10 .mu.m.
- 7. A method of producing bond rare earth element.iron.boron magnets according to claim 1, in which the binder is a vitrifiable agent or an epoxy resin.
- 8. A method of producing bond rare earth element.iron.boron magnets which comprises the steps of:
- mixing in a scheduled ratio an acicular iron powder coated with aluminum phosphate prepared by reducing acicular FeOOH (geothite) crystal coated with aluminum phosphate under heating in hydrogen atmosphere, a rare earth element powder coated with aluminum phosphate prepared by hydrogen-disintegration of rare earth element lumps coated with aluminum phosphate wherein hydrogen-occluded rare earth element lumps coated with aluminum phosphate resulting from heating rare earth element lumps coated with aluminum phosphate under hydrogen atmosphere are subjected to emission of the occluded hydrogen under substantial vacuum to cause disintegration of the hydrogen-occluded rare earth element lumps coated with aluminum phosphate, and a boron powder coated with aluminum phosphate prepared by hydrogen-disintegration of boron lumps coated with aluminum phosphate wherein hydrogen-occluded boron lumps coated with aluminum phosphate resulting from hearing boron lumps coated with aluminum phosphate under hydrogen atmosphere are subjected to emission of the occluded hydrogen under substantial vacuum to cause disintegration of the hydrogen-occluded boron lumps coated with aluminum phosphate;
- preparing a powder mixture from the powders;
- compression-molding the powder mixture to prepare a molded powder mixture;
- sintering the molded mixture in the presence of magnetic field to prepare a sintered magnet;
- coating the sintered magnet with aluminum phosphate to prepare an aluminum phosphate coated magnet;
- preparing a magnet powder by hydrogen-disintegration of the aluminum phosphate coated magnet wherein a hydrogen-occluded magnet resulting from heating the aluminum phosphate coated magnet under hydrogen atmosphere is subjected to emission of the occluded hydrogen under substantial vacuum to cause disintegration of the hydrogen-occluded magnet;
- mixing the magnet powder with a binder to prepare a mixture of the aluminum phosphate coated magnet powder and the binder; and
- compression-molding the mixture under heating and in the presence of a magnetic field.
- 9. A method of producing bond rare earth element.iron.boron magnets according to claim 8, in which the mixing ratio between the rare earth element powder, the boron powder and the acicular iron powder for preparing the powder mixture is 20-40 weight % for the rare earth element powder, 0.5-3 weight % for the boron powder and the balance acicular iron powder.
- 10. A method of producing bond rare earth element.iron.boron magnets according to claim 8, in which the temperature for reducing the acicular iron powder under hydrogen atmosphere is 300.degree.-500.degree. C., the temperature for heating the raw material rare earth element lumps or boron lumps under hydrogen atmosphere to occlude hydrogen is 800.degree.-900.degree. C., and the temperature for emitting hydrogen under substantial vacuum from the hydrogen-occluded rare earth element lumps or boron lumps is not lower than 100.degree. C.
- 11. A method of producing bond rare earth element.iron.boron magnets according to claim 8, in which the acicular iron powder coated with aluminum phosphate has a length of not longer than 10 .mu.m, the rare earth element powder coated with aluminum phosphate prepared by hydrogen-disintegration of aluminum phosphate coated rare earth element lumps has an average particle size of 1-10 .mu.m and the boron powder coated with aluminum phosphate prepared by hydrogen-disintegration of aluminum phosphate coated boron lumps has an average particle size of 1-10 .mu.m.
- 12. A method of producing bond rare earth element.iron.boron magnets according to claim 8, in which the binder is a vitrifiable agent or an epoxy resin.
Priority Claims (1)
Number |
Date |
Country |
Kind |
6-13080 |
Jan 1994 |
JPX |
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Parent Case Info
This is a division of Application No. 08/322,559, filed Oct. 13, 1994, U.S. Pat. No. 5,478,409.
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
4541877 |
Stadelmaier et al. |
Sep 1985 |
|
4597938 |
Matsuura et al. |
Jul 1986 |
|
4844751 |
Schultz |
Jul 1989 |
|
Divisions (1)
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Number |
Date |
Country |
Parent |
322559 |
Oct 1994 |
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