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Development of high performance permanent magnets based on Nd-Fe-B system

机译:基于ND-FE-B系统的高性能永磁体的开发

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Rare earth iron boron magnets based on Nd_2Fe_(14)B type is the most powerful permanent magnets, which have outstanding magnetic properties in the vicinity of room temperature. Production of NdFeB is carried out by two distinctly different processes. These include the conventional powder - sintering process and consolidation of rapidly solidified powders. The latter is used to produce both bonded and anisotropic bulk magnets. NdFeB sintered magnets essentially consist of three basic phases; Nd_2Fe_(14)B (#PHI#), Nd_1Fe_4B_4 phase (#eta#) and Nd-rich phase (n). Therefore, the magnetic properties of the magnets strongly depend on their microstructure. The current focus of NdFeB magnet research and development is on improvement of the magnetic properties such as the magnetic remanence (B_r) and intrinsic coercivity (H_(ci)), corrosion resistance and temperature characteristics of sintered magnets and rapidly solidified (melt spinning) magnets. Since the discovery of NdFeB magnets, their performance has been continuously enhanced and the current maximum energy product is achieved to be 444 kJ/m~3 (55.8 MGOe). Other processes also have been used for improving microstructure for developing high energy product NdFeB magnets. These processes include: i) mechanical alloying process of metals which uses an inter-diffusional reaction magnet, ii) HDDR process (hydrogenation, disprorportionation, desorption, recombination) of magnet powder, and iii) nanocrystalline composite magnet (exchange-coupled) which are composed of magnetically hard and soft grains. The negative side of the NdFeB magnet is their low corrosion resistance. They are sensitive to attack by both climatic and corrosive environments, resulting in deterioration of the hard magnetic properties of the magnet. In this paper the development of the high-energy product NdFeB based magnets in terms of improved microstructure and magnet processing methods is reviewed.
机译:基于ND_2FE_(14)B型的稀土铁硼磁体是最强大的永磁体,在室温附近具有出色的磁性。 NDFEB的生产由两个明显不同的过程进行。这些包括常规的粉末烧结过程和迅速凝固的粉末的固结。后者用于生产粘合和各向异性散装磁体。 NDFEB烧结磁铁基本上由三个基本阶段组成; nd_2fe_(14)b(#phi#),nd_1fe_4b_4阶段(#eta#)和富裕的阶段(n)。因此,磁体的磁性强烈取决于它们的微观结构。 NDFEB磁体研发的目前的焦点是改善磁性偏离(B_R)和固有矫顽力(H_(CI)),腐蚀磁体的耐腐蚀性和温度特性,并快速凝固(熔化纺纱)磁体。由于NDFEB磁体的发现,它们的性能连续增强,并且电流的最大能量产物实现为444 kJ / m〜3(55.8mge)。其他过程还被用于改善用于显影高能量产品NDFEB磁体的微观结构。这些方法包括:i)金属的机械合金化工艺,其使用扩散型反应磁体,II)磁体粉末的HDDR方法(氢化,失值,解吸,重组),和III)纳米晶体复合磁体(交换耦合)由磁性硬和柔软的晶粒组成。 NDFEB磁体的负侧是它们的低耐腐蚀性。它们对气候和腐蚀性环境的攻击敏感,导致磁体的硬磁性劣化。在本文中,综述了在改进的微观结构和磁体处理方法方面的高能产品NdFeb基磁体的发展。

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