A method for preparing anisotropic ndfeb rare earth permanent magnets by doping dysprosium hydride nanopowder
An anisotropic, nano-powder technology, used in the manufacture of magnetic objects, magnetic materials, inductors/transformers/magnets, etc., to achieve the effect of reducing production costs, fine and uniform grains, and good mechanical properties
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Embodiment 1
[0023] (1) Prepare and collect DyH by hydrogen arc nanopowder preparation system 3 Nano powder, the particle size is 10-50nm;
[0024] (2) Under the protection of argon, 0.5wt.% DyH 3 The nanometer powder is added in the NdFeB magnetic powder (MQ powder), utilizes mixer to mix evenly;
[0025] (3) Hot pressing stage: put the mixed magnetic powder into a cemented carbide mold, and use discharge plasma technology to hot press under the conditions of vacuum, 300MPa, and 670°C to obtain an isotropic nanocrystalline magnet;
[0026] (4) Thermal deformation stage: Put an isotropic magnet into a graphite mold with a preset size, and use spark plasma sintering technology to thermally deform under the conditions of vacuum, 30MPa, and 770°C to obtain massive anisotropic nanocrystals magnet;
[0027] (5) Put the hot-pressed / hot-deformed anisotropic magnet at 1×10 -3 Annealed at 750°C for 5h under vacuum of Pa.
Embodiment 2
[0034] (1) Prepare and collect DyH by hydrogen arc nanopowder preparation system 3 Nano powder, the particle size is 10-50nm;
[0035] (2) Under the protection of argon, 1.0wt.% DyH 3 The nanometer powder is added in the NdFeB magnetic powder (MQ powder), utilizes mixer to mix evenly;
[0036] (3) Hot pressing stage: put the mixed magnetic powder into a cemented carbide mold, and use spark plasma sintering technology to hot press under the conditions of vacuum, 300MPa, and 660°C to obtain an isotropic magnet;
[0037] (4) Thermal deformation stage: Put the isotropic magnet into a graphite mold with a preset size, and use spark plasma sintering technology to thermally deform under the conditions of vacuum, 30MPa, and 760°C to obtain a block-shaped anisotropic magnet;
[0038] (5) Anisotropic magnets that are hot-pressed and deformed at 1×10 -3 Annealed at 750°C for 5h in a vacuum environment of Pa.
[0039]
Embodiment 3
[0041] (1) Prepare and collect DyH by hydrogen arc nanopowder preparation system 3 Nano powder, the particle size is 10-50nm;
[0042] (2) Under the protection of argon, 1.5wt.% DyH 3 The nanometer powder is added in the NdFeB magnetic powder (MQ powder), utilizes mixer to mix evenly;
[0043] (3) Hot pressing stage: put the mixed magnetic powder into a cemented carbide mold, and use discharge plasma technology to hot press under the conditions of vacuum, 300MPa, and 650°C to obtain an isotropic nanocrystalline magnet;
[0044] (4) Thermal deformation stage: Put an isotropic magnet into a graphite mold with a preset size, and use spark plasma sintering technology to thermally deform under the conditions of vacuum, 30MPa, and 750°C to obtain block-shaped anisotropic nano crystal magnet;
[0045] (5) Put the hot-pressed / hot-deformed anisotropic magnet at 1×10 -3 Annealed at 750°C for 5h under vacuum of Pa.
[0046]
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Abstract
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