Micromagnetics and multiscale hysteresis simulations of permanent magnets

IF 1 4区 工程技术 Q4 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Yangyiwei Yang, Patrick Kühn, Mozhdeh Fathidoost, Bai-Xiang Xu
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引用次数: 0

Abstract

Purpose Confronting the unveiled sophisticated structural and physical characteristics of permanent magnets, notably the samarium–cobalt (Sm-Co) alloy, This work aims to introduce a simulation scheme that can link physics-based micromagnetics on the nanostructures and magnetostatic homogenization on the mesoscale polycrystalline structures. Design/methodology/approach The simulation scheme is arranged in a multiscale fashion. The magnetization behaviors on the nanostructures examined with various orientations are surrogated as the micromagnetic-informed hysterons. The hysteresis behavior of the mesoscale polycrystalline structures with micromagnetic-informed hysterons is then evaluated by computational magnetostatic homogenization. Findings The micromagnetic-informed hysterons can emulate the magnetization reversal of the parameterized Sm-Co nanostructures as the local hysteresis behavior on the mesostructures. The simulation results of the mesoscale polycrystal demonstrate that the demagnetization process starts from the grain with the largest orientation angle (a) and then propagates to the surrounding grains. Research limitations/implications The presented scheme depicts the demand for integrating data-driven methods, as the parameters of the surrogate hysteron intrinsically depend on the nanostructure and its orientation. Further hysteron parameters that help the surrogate hysteron emulate the micromagnetic-simulated magnetization reversal should be examined. Originality/value This work provides a novel multiscale scheme for simulating the polycrystalline permanent magnets’ hysteresis while recapitulating the nanoscale mechanisms, such as the nucleation of domains, and domain wall migration and pinning. This scheme can be further extended to simulate the part-level hysteresis considering the mesoscale features.
永磁体的微磁学和多尺度磁滞模拟
针对永磁体,特别是钐钴合金复杂的结构和物理特性,本研究旨在提出一种将纳米结构的物理微磁性和中尺度多晶结构的静磁均匀化联系起来的模拟方案。设计/方法/方法模拟方案以多尺度方式安排。不同取向的纳米结构的磁化行为被描述为微磁通知磁滞子。采用计算静磁均匀化方法,对具有微磁通知磁滞子的中尺度多晶结构的磁滞特性进行了评价。发现微磁通知磁滞子可以模拟参数化钐钴纳米结构的磁化反转,作为介观结构上的局部磁滞行为。中尺度多晶的模拟结果表明,退磁过程从取向角最大的晶粒(a)开始,然后传播到周围的晶粒。该方案描述了对集成数据驱动方法的需求,因为替代磁滞子的参数本质上取决于纳米结构及其方向。进一步的滞子参数,帮助代理滞子模拟微磁-模拟磁化反转应检查。本工作提供了一种新的多尺度方案来模拟多晶永磁体的磁滞,同时再现了纳米尺度机制,如畴的成核,畴壁的迁移和钉住。该方案可以进一步扩展到考虑中尺度特征的局部滞回模拟。
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来源期刊
CiteScore
1.60
自引率
0.00%
发文量
124
审稿时长
4.2 months
期刊介绍: COMPEL exists for the discussion and dissemination of computational and analytical methods in electrical and electronic engineering. The main emphasis of papers should be on methods and new techniques, or the application of existing techniques in a novel way. Whilst papers with immediate application to particular engineering problems are welcome, so too are papers that form a basis for further development in the area of study. A double-blind review process ensures the content''s validity and relevance.
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