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Development of Manufacturing Process for High Residual magnetic flux density of Magnet powders Pellets Used by Anisotropyic Plastic-Bonded Magnet

机译:磁粉颗粒的高残余磁通密度的制造工艺的研制,各向异性塑料粘合磁体

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The present study is related to magnet pellet made using the anisotropic metal mold and has improve the characteristic of the magnetic particle of hard ferrite or rare-earth magnet. This hard ferrite magnetic particles or rare earth magnetic particles is crystallized in a direction of crystal axis (C-axis) so that it may have the aspect ratio of the length of the crystal axis to the diameter of crystal lattice plate of 1.0 or more. These anisotropic magnetic particles have high magnetic energy. These anisotropic magnetic particles kneaded with a thermoplastic resin or a thermosetting resin, and then pelletized. Then, the pellets are injection-molded or compression-molded using a metal mold for the anisotropic plastic magnet. The anisotropic magnets have high magnetic energy with the effect of the high magnetic energy of the anisotropic magnetic particles and nonmagnetic energy of the resin matrix. The anisotropic magnets also can control a high residual magnetic flux density (Br) by selecting the compounding ratio of the matrix resin to the anisotropic magnetic particles.
机译:本研究与使用各向异性金属模具制成的磁体颗粒有关,并且具有改善硬铁氧体或稀土磁体的磁性颗粒的特性。该硬质铁氧体磁性颗粒或稀土磁性颗粒在晶体轴(C轴线)的方向上结晶,使得它可以具有晶体轴长的长度与晶格板的直径为1.0或更大的纵横比。这些各向异性磁性颗粒具有高磁性。这些各向异性磁性颗粒用热塑性树脂或热固性树脂捏合,然后造粒。然后,使用用于各向异性塑料磁体的金属模具,颗粒是注塑或压缩模制的。各向异性磁体具有高磁能,具有高磁能的各向异性磁性颗粒的效果和树脂基质的非磁性能量。各向异性磁体也可以通过选择基质树脂与各向异性磁性颗粒的复合比来控制高残留的磁通密度(BR)。

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