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Magnetism and high magnetic-field-induced stability of alloy carbides in Fe-based materials

机译:铁基材料中合金碳化物的磁性和高磁场诱导的稳定性

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摘要

Understanding the nature of the magnetic-field-induced precipitation behaviors represents a major step forward towards unravelling the real nature of interesting phenomena in Fe-based alloys and especially towards solving the key materials problem for the development of fusion energy. Experimental results indicate that the applied high magnetic field effectively promotes the precipitation of M23C6 carbides. We build an integrated method, which breaks through the limitations of zero temperature and zero external field, to concentrate on the dependence of the stability induced by the magnetic effect, excluding the thermal effect. We investigate the intimate relationship between the external field and the origins of various magnetics structural characteristics, which are derived from the interactions among the various Wyckoff sites of iron atoms, antiparallel spin of chromium and Fe-C bond distances. The high-magnetic-field-induced exchange coupling increases with the strength of the external field, which then causes an increase in the parallel magnetic moment. The stability of the alloy carbide M23C6 is more dependent on external field effects than thermal effects, whereas that of M2C, M3C and M7C3 is mainly determined by thermal effects.
机译:理解磁场引起的析出行为的性质代表了迈出的一大步,旨在揭示铁基合金中有趣现象的真实性质,尤其是解决了解决聚变能发展的关键材料问题。实验结果表明,施加的强磁场有效地促进了M23C6碳化物的析出。我们建立了一种集成方法,该方法突破了零温度和零外部磁场的局限性,以集中于磁效应(不包括热效应)引起的稳定性的依赖性。我们研究了外部磁场与各种磁性结构特征的起源之间的密切关系,这些起源是由铁原子的多个Wyckoff位点,铬的反平行自旋和Fe-C键距之间的相互作用引起的。高磁场感应的交换耦合随着外部磁场的强度而增加,然后导致平行磁矩增加。碳化物M23C6的稳定性比热效应更依赖于外部场效应,而M2C,M3C和M7C3的稳定性主要由热效应决定。

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