IP Library Granted Patent US 10,971,289
Granted Patent B2
US 10,971,289 · App. 15/763,508 · Granted Apr 6, 2021

Composite R-Fe-B series rare earth sintered magnet comprising Pr and W

Inventor: Hiroshi Nagata (Tokyo, JP)
Assignees: XIAMEN TUNGSTEN CO., LTD.; Fujian Changting Golden Dragon Rare-Earth Co., Ltd
H01F1/0577B22F1/0011C22C38/002C22C38/005C22C38/10C22C38/12C22C38/16H01F1/057H01F41/0253B22F9/04B22F2301/355B22F2304/10B22F2998/10B22F2999/00C22C2202/02
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Quick Facts
Patent No.
US 10,971,289
App. No.
15/763,508
Granted
Apr 6, 2021
Kind
B2
Abstract

Disclosed in the present invention is a composite R—Fe—B based rare-earth sintered magnet comprising Pr and W, wherein the rare-earth sintered magnet comprises an R 2 Fe 14 B type main phase, and R is a rare-earth element comprising at least Pr, wherein the raw material components therein comprise more than or equal to 2 wt % of Pr and 0.0005 wt %-0.03 wt % of W; and the rare-earth sintered magnet is made through a process comprising the following steps: preparing molten liquid of the raw material components into a rapidly quenched alloy; grinding the rapidly quenched alloy into fine powder; obtaining a shaped body from the fine powder by using a magnetic field; and sintering the shaped body. By adding a trace amount of W into the rare-earth sintered magnet, the heat resistance and thermal demagnetization performance of the Pr-containing magnet are improved.

Claims (39)

1. A composite R—Fe—B based rare-earth sintered magnet comprising Pr and W, wherein:

the composite R—Fe—B based rare-earth sintered magnet comprises an R 2 Fe 14 B main phase,

R is a rare-earth element comprising at least Pr,

raw material components of the composite R—Fe—B based rare-earth sintered magnet comprise more than or equal to 2 wt % of Pr, 0.008 wt % to less than 0.03 wt % of W, and 0.8 wt % to 1.3 wt % of B, and

the composite R—Fe—B based rare-earth sintered magnet is made through a process comprising:

preparing molten liquid of the raw material components into a quenched alloy;

grinding the quenched alloy into powder;

obtaining a shaped body from the powder by using a magnetic field; and

sintering the shaped body.

2. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 1 , wherein an amount of Pr is 2 wt %-10 wt % of the raw material components.

3. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 1 , wherein R is a rare-earth element comprising at least Nd and Pr.

4. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 1 , wherein an amount of oxygen in the composite R—Fe—B based rare-earth sintered magnet is less than or equal to 2000 ppm.

5. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 1 , wherein an amount of oxygen in the composite R—Fe—B based rare-earth sintered magnet is less than or equal to 1000 ppm.

6. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 1 , wherein the raw material components further comprise less than or equal to 2.0 wt % of at least one additive element selected from the group consisting of Zr, Co, V, Mo, Zn, Ga, Nb, Sn, Sb, Hf, Bi, Ni, Ti, Cr, Si, S, and P, less than or equal to 0.8 wt % of Cu, less than or equal to 0.8 wt % of Al, and the balance of Fe.

7. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 1 , wherein:

the quenched alloy is obtained by cooling the molten liquid of the raw material components at a cooling speed of more than or equal to 10 2 ° C./s and less than or equal to 10 4 ° C./s by using a strip casting method,

grinding the quenched alloy into powder comprises a first grinding and a second grinding,

the first grinding comprises performing hydrogen decrepitation on the quenched alloy to obtain first powder, and

the second grinding comprises performing jet milling on the first powder to obtain the powder.

8. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 6 , wherein an average crystalline particle diameter of the composite R—Fe—B based rare-earth sintered magnet is 2-8 microns.

9. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 6 , wherein an average crystalline particle diameter of the composite R—Fe—B based rare-earth sintered magnet is 4.6-5.8 microns.

10. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 6 , wherein the raw material components comprise 0.1 wt %-0.8 wt % of Cu.

11. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 6 , wherein the raw material components comprise 0.1 wt %-0.8 wt % of Al.

12. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 6 , wherein the raw material components comprise 0.3 wt %-2.0 wt % of at least one additive element selected from the group consisting of Zr, Co, V, Mo, Zn, Ga, Nb, Sn, Sb, Hf, Bi, Ni, Ti, Cr, Si, S, and P.

13. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 6 , wherein an amount of B is 0.8 wt %-0.92 wt %.

14. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 1 , wherein:

the composite R—Fe—B based rare-earth sintered magnet has a residual flux density (Br) of 14.0 kGs to 14.2 kGs, and

the composite R—Fe—B based rare-earth sintered magnet has a square degree (SQ) of 99.0% to 99.9%.

15. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 14 , wherein a coercive force (Hcj) of the composite R—Fe—B based rare-earth sintered magnet is 15.8 kOe to 17.4 kOe.

16. A composite R—Fe—B based rare-earth sintered magnet comprising Pr and W, wherein:

the composite R—Fe—B based rare-earth sintered magnet comprises an R 2 Fe 14 B main phase,

R is a rare-earth element comprising at least Pr,

components of the composite R—Fe—B based rare-earth sintered magnet comprise more than or equal to 1.9 wt % of Pr, 0.008 wt % to less than 0.03 wt % of W, and 0.8 wt % to 1.3 wt % of B, and

the composite R—Fe—B based rare-earth sintered magnet is made through a process comprising:

preparing molten liquid of raw material components into a quenched alloy, wherein the raw material components comprise the 0.008 wt % to less than 0.03 wt % of W;

grinding the quenched alloy into powder;

obtaining a shaped body from the powder by using a magnetic field; and

sintering the shaped body.

17. The composite R—Fe—B based rare-earth sintered magnet comprising Pr and W according to claim 16 , wherein the components further comprise less than or equal to 2.0 wt % of at least one additive element selected from the group consisting of Zr, Co, V, Mo, Zn, Ga, Nb, Sn, Sb, Hf, Bi, Ni, Ti, Cr, Si, S, and P, less than or equal to 0.8 wt % of Cu, less than or equal to 0.8 wt % of Al, and the balance of Fe.

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 Mar 28, 2018
From: NAGATA, HIROSHI
To: XIAMEN TUNGSTEN CO., LTD.
Reel/Frame 045374/0726 →
Priority Claims (2)
CN 201510625876.X · Sep 28, 2015 · national
CN 201610827760.9 · Sep 18, 2016 · national
Continuity (1)
Related Publication 20180294081A1 · Oct 11, 2018