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首页> 外文期刊>Journal of Materials Science >A new challenge: grain boundary engineering for advanced materials by magnetic field application
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A new challenge: grain boundary engineering for advanced materials by magnetic field application

机译:一个新的挑战:通过磁场应用对先进材料进行晶界工程

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摘要

This paper gives an overview of "Grain boundary engineering (GBE) for advanced materials by magnetic field application'' based on recent experimental work performed on different kinds of structural and functional materials. It is shown that magnetic field application has a great potential and unique advantage as "non-contact processing'' for microstructure control, irreplaceable by any other existing processing methods. The control of grain growth and texture by magnetic fields has been found to be generally applicable to many metallic materials, irrespective of whether they are ferromagnetic or not. Grain growth which is controlled by grain boundary migration was found to be strongly affected by magnetic field application. Recent attempts at the grain boundary engineering by magnetic field application through phase transformation have revealed that magnetic phase transformation can provide us a new approach to grain boundary engineering for iron alloys and steels, as well as a new nanocrystalline material produced by magnetic crystallization from the amorphous state. The possibility of engineering applications of enhanced densification using magnetic sintering and magnetic rejuvenation has been discussed for iron powder compacts and deformation- damaged iron alloys, respectively.
机译:本文基于对不同类型的结构和功能材料进行的最新实验工作,概述了“通过磁场施加的先进材料的晶界工程(GBE)”,这表明磁场施加具有巨大的潜力和独特之处作为微结构控制的“非接触式加工”的优势,是任何其他现有加工方法所无法替代的。已经发现,通过磁场来控制晶粒的生长和织构通常适用于许多金属材料,而不管它们是否是铁磁性的。发现受晶界迁移控制的晶粒生长受到磁场施加的强烈影响。通过相变施加磁场进行晶界工程的最新尝试表明,磁性相变可以为我们提供铁合金和钢晶界工程的新方法,以及通过从非晶态磁性结晶而产生的新型纳米晶体材料。州。分别讨论了铁粉压坯和变形损坏的铁合金的利用磁烧结和磁振增强致密化的工程应用可能性。

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