IF 1.2 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
Y. F. Teng, C. Zheng, Y. J. Li, T. J. Luo, X. H. Feng, C. Zhu, Y. S. Yang
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引用次数: 0

摘要

建立了三维有限元模型来描述低频低压随时间变化的脉冲磁场下电磁场和流体场的分布。模拟结果表明,脉冲磁场可诱导围绕熔体轴线的涡流。电流和磁场之间的相互作用在熔体中产生了周期性的正负洛伦兹力。脉冲磁场产生的效应包括振动、流体流动和焦耳热。熔体以多圈形式流动,流体速度由基本分量和脉冲分量组成。由于流体流动,熔体中的温度是均匀的。测量了铝合金 A356(铝硅合金)凝固过程中的熔体温度,并将其与模拟结果进行了比较,结果定性地证实了温度梯度的减小。此外,还研究了材料电阻率和脉冲磁场电磁参数的影响。电阻率较小的材料承受的电磁力较大。在较大的激磁电流密度和频率下,流体的流动速度更快。最后,分析了脉冲磁场下的晶粒细化机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Three-dimensional modeling of electromagnetic field and fluid flow during solidification of an aluminum alloy in a pulsed magnetic field
      Dreidimensionale Modellierung des elektromagnetischen Feldes und der Schmelzeströmung während der Erstarrung einer Aluminium-Legierung in einem gepulsten Magnetfeld

Three-dimensional modeling of electromagnetic field and fluid flow during solidification of an aluminum alloy in a pulsed magnetic field Dreidimensionale Modellierung des elektromagnetischen Feldes und der Schmelzeströmung während der Erstarrung einer Aluminium-Legierung in einem gepulsten Magnetfeld

Three-dimensional finite element models were built to describe the distribution of electromagnetic fields and fluid fields under a low frequency low voltage time-dependent pulsed magnetic field. The simulation results showed that eddy current circling around the axis of the melt can be induced by pulsed magnetic field. Periodic positive-negative Lorentz force in the melt was induced from the interaction between the current and magnetic field. The effects generated by the pulsed magnetic field included vibration, fluid flow and Joule heat. The melt flowed in the form of a multi-circle and the fluid velocity was composed of a base component and a pulse component. The temperature in the melt was homogeneous because of the fluid flow. Melt temperatures were measured and compared with the simulated results during solidification process of aluminum alloy A356 (Al−Si alloy), which qualitatively confirmed the decrease of temperature gradient. Moreover, the effects of material resistivity and electromagnetic parameters of the pulsed magnetic field were investigated. Materials with smaller resistivity took larger electromagnetic force. The fluid flowed much faster under larger excitation current density and frequency. Finally, the grain refinement mechanisms under the pulsed magnetic field were analyzed.

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来源期刊
Materialwissenschaft und Werkstofftechnik
Materialwissenschaft und Werkstofftechnik 工程技术-材料科学:综合
CiteScore
2.10
自引率
9.10%
发文量
154
审稿时长
4-8 weeks
期刊介绍: Materialwissenschaft und Werkstofftechnik provides fundamental and practical information for those concerned with materials development, manufacture, and testing. Both technical and economic aspects are taken into consideration in order to facilitate choice of the material that best suits the purpose at hand. Review articles summarize new developments and offer fresh insight into the various aspects of the discipline. Recent results regarding material selection, use and testing are described in original articles, which also deal with failure treatment and investigation. Abstracts of new publications from other journals as well as lectures presented at meetings and reports about forthcoming events round off the journal.
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