SYNTHESIS OF HIGH PURITY MANGANESE BISMUTH POWDER AND FABRICATION OF BULK PERMANENT MAGNET
20210304933 · 2021-09-30
Inventors
Cpc classification
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
B22F3/04
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
B22F1/142
PERFORMING OPERATIONS; TRANSPORTING
B22F1/142
PERFORMING OPERATIONS; TRANSPORTING
B22F2009/048
PERFORMING OPERATIONS; TRANSPORTING
B22F1/05
PERFORMING OPERATIONS; TRANSPORTING
B22F2009/048
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
B22F2304/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A synthesis process is disclosed for fabrication of mass quantities of high-purity α-MnBi magnetic powder and subsequent bulk permanent magnet. An illustrative process includes certain steps that include: multiple annealing, multiple comminuting such as multiple ball milling, forming a non-magnetic phase on and/or in the powder particles at particle grain boundaries before particle consolidation such as pressing, and magnetic annealing of a pressed compact. A reproducible and high productive synthesis process is created by combining these steps with other steps, which makes possible production of mass quantities of MnBi powder and bulk magnets with high performance.
Claims
1. A process for fabricating a quantity of α-MnBi feedstock powder, comprising: forming particles comprising Mn and Bi having at least about 90% by volume α-MnBi phase; comminuting the particles to a smaller size, and optionally annealing the comminuted particles at a temperature for a time to recover any decrease in a magnetic property resulting from comminution, wherein a further step is included among the steps recited above of providing at least one of (a) a non-magnetic material on surfaces of the particles by coating the particles with a non-magnetic material and (b) a non-magnetic material interiorly in the particles by forming a non-magnetic phase at grain boundaries of the particles.
2. A process for fabricating a quantity of a high-purity α-MnBi feedstock powder, comprising: melting a selected ratio of manganese (Mn) metal and bismuth (Bi) metal with varied compositions (Mn.sub.xBi.sub.100-x, x=48.5-53.5 at. %) to form an alloy and at least one of a) rapidly solidifying the melted alloy to form an ingot and b) melt-spinning the alloy at a wheel speed to form melt-spun ribbon flakes thereof; annealing the ingot or melt-spun ribbon flakes to obtain MnBi precursor alloy to promote the formation of LTP MnBi phase (α-MnBi) in the precursor alloy therein to at least a purity of 90 volume %; comminuting the ingot or the melt-spun ribbon to obtain fine powder with a particle size of 3 to 5 μm therein; and providing a non-magnetic second phase in and/or on the fine powder by at least one of (a) forming a Bi-enriched phase interiorly of the particles at grain boundaries thereof and (b) coating a non-magnetic material on the surfaces of the particles.
3. The process of claim 2, wherein the molten alloy is rapidly solidified to form a composition-uniform ingot.
4. The process of claim 2, wherein the annealing temperature for the ingot or ribbon flakes is at about 270-350° C.
5. The process of claim 2, wherein the fine powder is ball or jet milled and annealed at 270-350° C. for 2-5 days.
6. The process of claim 2 wherein the non-magnetic material includes at least one of Zn, Bi, Sn, Sb, and Bakelite material.
7. The process of claim 6 wherein at least one of Zn and the non-magnetic Bakelite material is coated on exterior surfaces of fine powder to obtain the feedstock powder.
8. The process of claim 2, wherein the yield of the high-purity α-MnBi alloy product includes a mass of greater than or equal to about 100 grams in a single processing batch, or a mass greater than or equal to about 1 kilogram in a single processing batch.
9. The process of claim 2 that achieves the feedstock powder with a purity of α-MnBi higher than 90 volume %.
10. The process of claim 2, wherein the feedstock powder contains a high-purity α-MnBi phase and a non-magnetic second phase.
11. The process of claim 2, wherein the feedstock powder is incorporated as a component of a permanent magnet.
12. A process for preparing a large size of bulk magnet, comprising: loading the feedstock powder of claim 1 into a non-magnetic die; aligning the feedstock powder in the die in a magnetic field, compacting the feedstock powder to obtain a densified green compact, and then magnetic annealing the green compact under a vacuum at 270-350° C. for a time under a magnetic field of 0.5 to 3 T.
13. The process of claim 12, wherein the size of the green compact is variable according to the different service applications.
14. The process of claim 12, wherein a cold isostatic pressing step of the green compact is conducted to increase the density thereof yet maintain magnetic alignment of the green compact.
15. The process of claim 12, wherein the magnetic annealing step of the bulk magnet further improves the grain alignment of magnet and enhance a magnetic property (BH).sub.max.
16. The process of claim 15, wherein the coercivity H.sub.cj of bulk magnets is retained or only slightly reduced after the CIP step and magnetic annealing step.
17. The process of claim 2, including mixing the feedstock with a binder.
18. The process of claim 12, that produces a bulk magnet for incorporation as a component of an electric motor or electric generator.
19. A MnBi feedstock powder particles having at least one of (a) a non-magnetic coating on the powder particles and (b) a non-magnetic phase at grain boundaries of the powder particles.
20. A bulk magnet comprising consolidated feedstock powder of claim 19.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE INVENTION
[0025] The following description provides illustrative process embodiments for fabrication of mass quantities of high-purity MnBi (preferably >90-92% or more by volume α phase MnBi feedstock powder (where the α phase is referred to as LTP below) and large size bulk MnBi permanent magnets. The following description includes an illustrative mode of the present invention which is offered for purposes of illustration and not limitation. While the invention can be practiced with various modifications and alternative constructions, there is no intention to limit the invention to the specific forms disclosed. The invention is intended to cover all modifications, alternative constructions, and equivalents falling within the spirit and scope of the invention as defined in the claims. Therefore the present description should be seen as illustrative and not limiting.
[0026] An illustrative process is disclosed for fabrication of mass quantities of high-purity LTP (>90% α phase) MnBi feedstock powder and large size bulk MnBi permanent magnets. The term “mass quantity” as used herein means a scalable quantity greater than 1000 grams feedstock powder with reproducible magnetic properties (M.sub.s>70 emu/g, H.sub.cj>10 KOe) where M.sub.s is saturation magnetization. The term “Large size” as used herein means the dimensions of bulk magnets up to 2 inches.
[0027] Illustrative embodiments of the present invention involve processing that may include three major steps as shown in
[0028] In step I illustrated in
[0029] In step II, the process flow chart of fabrication of feedstock powder is shown in
[0030] In the manufacture of bulk permanent magnets, it is well known that the microstructure of any useful permanent magnet mainly must consist of magnetically hard and soft phases. The magnetically hard phase may comprise matrix grains, while the magnetically soft phase is located at grain boundaries. Or, the soft phase is a matrix phase, while the hard phase is embedded into the matrix. Such a net structure of magnets can resist the domain movement in a magnetization reversal to obtain or retain coercivity. The 2.sup.nd annealed fine powder has higher than 90% LTP MnBi hard phase. In order to retain coercivity of bulk magnets, the present invention envisions introducing a non-magnetic phase as described below. Illustrative embodiments of the present invention provide two approaches or a combination of these approaches to this end, so-called interior and/or exterior methods that can be applied to introduce a new phase into grain boundary regions of bulk magnets. In the so-called interior approach, Bi-enriched phase is interiorly introduced by adjusting compositions of starting alloys. For purposes of illustration and not limitation, a typical composition can be Mn.sub.49.5Bi.sub.50.5. Since the LTP MnBi hard phase is formed at a ratio of Mn.sub.50Bi.sub.50, excess Bi of the composition will form a Bi-enriched soft phase that is distributed at the grain boundaries of bulk magnets and formed in the particles by the multiple annealing steps at 270 to 350° C. such as 290° C. described above and/or by magnetically annealing at 270-350 degrees C. to be described below with respect to
[0031] In step III, the process flow chart of fabrication of bulk magnets is shown in
[0032] The processing embodiments disclosed above enable fabrication of mass quantities of high-purity (>92%) LTP MnBi feedstock powder and large size bulk MnBi permanent magnets.
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TABLE-US-00002 TABLE 2 Magnetic properties of feedstock powder and bulk magnet obtained by two different approaches M.sub.s M.sub.r H.sub.cj (BH).sub.max Sample (emu/g) (emu/g) (kOe) M.sub.r/M.sub.9 (MGOe) Mn = 49.5 Powder 68.2 62.8 12.8 0.92 11.5 Mn = 50.8 Powder 72.2 66.0 11.0 0.88 12.0 Mn = 49.5 Bulk 67.3 58.8 6.0 0.87 8.0 Mn = 50.8 Bulk 68.6 59.4 8.9 0.86 8.0
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[0041] The present invention produces mass quantities of high-purity α-MnBi feedstock powder and large scale bulk magnets are suitable for use in energy applications including, but not limited to, e.g., radiation shielding for nuclear energy due to Bi element with a high Z; electric generators; electric motors; electrical devices and high-temperature (>150° C.) applications. The present invention ensures that mass quantities (at kilogram scale) of powder or bulk magnets with high performance and different sizes are able to reproducible produce. The invented process is also easy to covert to industrial scale and produce high-purity α-MnBi feedstock powder and bulk magnets.