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Production of Anisotropic MIM NdFeB Magnets - a Feasibility Study

机译:各向异性MIM NDFEB磁铁的生产 - 可行性研究

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Since their finding in the early 1980s, the interest in NdFeB-based magnets has expanded continuously [1]. NdFeB magnets can be found in voice coil motors (VCM) for computer hard disc drives or automobiles; for example 2 kg of NdFeB are being used in the Toyota Prius for motors and generators [2]. Currently, sintered NdFeB-based magnets possess the highest energy product (BH_(max)). Responsible for the high coercivity, high remanence and the large energy product is the microstructure of the magnets, consisting of mainly two different phases: the magnetic phase Nd_2Fe_(14)B and a non-ferromagnetic Nd-rich phase. The ideal NdFeB magnet would contain small, regular shaped grains of Nd_2Fe_(14)B isolated by a thin layer of Nd-rich grain boundary phase [2]. Mostly, NdFeB-magnets are produced either via pressing / cold isostatic pressing (CIP). Here bonded isotropic magnets with limited properties but complicated designs or sintered anisotropic magnets with limited geometries but maximum magnetic properties are being produced. The Metal Injection Moulding (MIM) process would allow a combination of both: high magnetic properties and complicated designs. A production of large numbers at low cost is possible [3]. This study evaluates the possibility of producing isotropic and anisotropic NdFeB-based magnets via MIM process. Here the liquid phase sintering (LPS) plays the most important role in producing a useful microstructure and therefore good magnetic properties. Different sintering parameters were investigated to achieve the highest energy product. Here for anisotropic magnets a (BH)_(max) of about 300 kJ/m~3 along with a remanence of around 1.2 T and coercivities of H_(cB) > 900 kA/m and H_(cJ) > 2000 kA/m was accomplished; respectively for the isotropic magnets a (BH)_(max) of 55 kJ/m~3 and a iH_c of above 1400 kA/m. The influence of the oxygen and carbon content on the magnetic properties caused by MIM was analyzed. The MIM samples were compared to magnets produced via CIP, containing the same initial powder, sintering parameters etc.
机译:自20世纪80年代初的发现以来,基于NDFEB的磁体的兴趣连续扩大[1]。 NDFEB磁铁可以在语音线圈电机(VCM)中找到,用于计算机硬盘驱动器或汽车;例如,2千克NDFEB用于Toyota Prius的电机和发电机[2]。目前,烧结的基于NDFEB的磁体具有最高的能量产品(BH_(MAX))。负责高矫顽力,高剩磁和大能量产品是磁体的微观结构,主要由两种不同的阶段组成:磁相Nd_2Fe_(14)B和非铁磁性Nd的相。理想的NDFEB磁体将包含由富含Nd的晶界相的薄层分离的Nd_2Fe_(14)B的小,规则形状的晶粒[2]。大多数情况下,通过压制/冷等静压(CIP)生产的NDFEB-磁体。这里粘合的各向同性磁体具有有限的性质,但具有有限的几何形状的复杂设计或烧结各向异性磁体,但是产生最大磁性。金属注射成型(MIM)工艺将允许两者的组合:高磁性和复杂的设计。以低成本生产的大数是可能的[3]。该研究评估通过MIM工艺产生各向同性和各向异性NdFeB基磁体的可能性。这里,液相烧结(LPS)在产生有用的微观结构和因此良好的磁性中起着最重要的作用。研究了不同的烧结参数以实现最高能量产品。这里用于各向异性磁体A(BH)_(MAX)约为300kJ / m〜3的剩磁约为1.2吨和H_(CB)> 900ka / m和H_(CJ)> 2000k / m的铸造完成了;分别为各向同性磁体A(BH)_(MAX)为55 kJ / m〜3和1400ka / m以上的Ih_c。分析了氧气和碳含量对由MIM引起的磁性的影响。将MIM样品与通过CIP产生的磁体进行比较,含有相同的初始粉末,烧结参数等。

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