IP Library Granted Patent US 10,242,778
Granted Patent B2
US 10,242,778 · App. 14/758,698 · Granted Mar 26, 2019

Manufacturing method of rare earth magnet based on heat treatment of fine powder

Inventors: Hiroshi Nagata (Fujian, CN); Chonghu Wu (Fujian, CN)
Assignee: XIAMEN TUNGSTEN CO., LTD.
H01F1/057B22F1/0003B22F1/0085B22F3/162B22F9/04C21D1/773C21D6/00C22C38/002C22C38/004C22C38/005C22C38/007C22C38/008C22C38/02C22C38/04C22C38/06C22C38/10C22C38/12C22C38/14C22C38/16C22C38/18C22C38/28C22C38/32C22C38/44C22C38/54H01F1/0536H01F1/0577H01F41/02H01F41/0266H01F41/0293B22F2009/044B22F2999/00C22C2202/02
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Quick Facts
Patent No.
US 10,242,778
App. No.
14/758,698
Granted
Mar 26, 2019
Kind
B2
Abstract

A manufacturing method of rare earth magnet based on heat treatment of fine powder includes the following: an alloy for the rare earth magnet is firstly coarsely crushed and then finely crushed by jet milling to obtain a fine powder; the fine powder is heated in vacuum or in inert gas atmosphere at a temperature of 100° C.˜1000° C. for 6 minutes to 24 hours; then the fine powder is compacted under a magnet field and is sintered in vacuum or in inert gas atmosphere at a temperature of 950° C.˜1140° C. to obtain a sintered magnet; and machining the sintered magnet to obtain a magnet; then the magnet performs a RH grain boundary diffusion at a temperature of 700° C.˜1020° C. An oxidation film forms on the surface of all of the powder.

Claims (30)

1. A manufacturing method of rare earth magnet based on heat treatment of fine powder, the rare earth magnet including R 2 T 14 B main phase, R being selected from at least one rare earth element, and T being at least one transition metal element including the element Fe, the method comprising the steps of:

strip casting a molten alloy fluid for the rare earth magnet and cooling the molten alloy fluid at a cooling rate between 10 2 ° C/s to 10 4 ° C/s, to thereby obtain an alloy for the rare earth magnet;

coarsely crushing the alloy for the rare earth magnet and subsequently finely crushing by jet milling to obtain the fine powder;

heating the fine powder in vacuum, of which a pressure is in a range of 10 −2 Pa-500 Pa with an oxygen content of 0.5 ppm-2000 ppm and a dew point of −60° C.-20° C., or in an inert gas atmosphere, of which a pressure is in a range of 10 −1 Pa-1000 Pa with an oxygen content of 0.5 ppm-2000 ppm and a dew point of −60° C.-20° C., at a temperature of 100° C.-700° C. for 1 hour to 24 hours, to thereby create an oxidation layer evenly on particle surfaces of the fine powder;

compacting the fine powder under a magnet field;

sintering in vacuum or in an inert gas atmosphere at a temperature of 950° C.-1140° C. to obtain a sintered magnet; and

machining the sintered magnet to obtain a magnet, and subsequently performing a RH grain boundary diffusion on the magnet at a temperature of 1000° C.-1020° C.

2. The manufacturing method according to claim 1 , wherein the temperature during the heating is 300° C.-700° C.

3. The manufacturing method according to claim 2 , wherein the fine powder is vibrated or shaken during the heating.

4. The manufacturing method according to claim 1 , wherein the coarse crushing comprises treating the alloy for the rare earth magnet by hydrogen decrepitation under a hydrogen pressure between 0.01 MPa to 1 MPa for 0.5-6 hours and subsequently dehydrogenated in vacuum.

5. The manufacturing method according to claim 2 , wherein the alloy for the rare earth magnet is expressed, in atomic percent, as:

R e T f A g J h G i D k ,

where R is Nd or comprises Nd and at least one of the elements La, Ce, Pr, Sm, Gd, Dy, Tb, Ho, Er, Eu, Tm, Lu or Y;

where T is Fe or comprises Fe and at least one of the elements Ru, Co or Ni;

where A is B or comprises B and at least one of the elements C or P;

where J is selected from at least one of the elements Cu, Mn, Si or Cr;

where G is selected from at least one of the elements Al, Ga, Ag, Bi or Sn;

where D is selected from at least one of the elements Zr, Hf, V, Mo, W, Ti or Nb; and

where subscripts e, f, g, h, i and k are configured as:

12≤e≤16,

5≤g≤9,

0.05≤h≤1,

0.2≤i≤2.0,

k is 0≤k≤4, and

f=100-e-g-h-i-k.

6. The manufacturing method according to claim 1 , wherein the oxidation layer is evenly formed on the surface of all of the fine powder after the heating.

7. The manufacturing method according to claim 3 , wherein the coarse crushing comprises treating the alloy for the rare earth magnet by hydrogen decrepitation under a hydrogen pressure between 0.01 MPa to 1 MPa for 0.5-6 hours and subsequently dehydrogenated in vacuum.

8. The manufacturing method according to claim 2 , wherein the coarse crushing comprises treating the alloy for the rare earth magnet by hydrogen decrepitation under a hydrogen pressure between 0.01 MPa to 1 MPa for 0.5-6 hours and subsequently dehydrogenated in vacuum.

9. The manufacturing method according to claim 3 , wherein the oxidation layer is evenly formed on the surface of all of the fine powder after the heating.

10. The manufacturing method according to claim 2 , wherein the oxidation layers is evenly formed on the surface of all of the fine powder after the heating.

Assignments (4)
CHANGE OF NAME Recorded Dec 20, 2023
From: FUJIAN CHANGTING GOLDEN DRAGON RARE-EARTH CO., LTD.
To: FUJIAN GOLDEN DRAGON RARE-EARTH CO., LTD.
Reel/Frame 066124/0473 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 20, 2022
From: XIAMEN TUNGSTEN CO., LTD; FUJIAN CHANGTING GOLDEN DRAGON RARE-EARTH CO., LTD
To: FUJIAN CHANGTING GOLDEN DRAGON RARE-EARTH CO., LTD.
Reel/Frame 059966/0166 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 21, 2019
From: XIAMEN TUNGSTEN CO., LTD.
To: FUJIAN CHANGTING GOLDEN DRAGON RARE-EARTH CO., LTD.
Reel/Frame 048396/0933 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2015
From: NAGATA, HIROSHI; WU, CHONGHU
To: XIAMEN TUNGSTEN CO., LTD.
Reel/Frame 035948/0773 →
Priority Claims (1)
CN 2012 1 0592341 · Dec 31, 2012 · national
Continuity (1)
Related Publication 20150364234A1 · Dec 17, 2015