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Numerical and experimental study of the traveling magnetic field effect on the horizontal solidification in a rectangular cavity part 2: Acting forces ratio and solidification parameters

机译:行进磁场对矩形腔水平凝固的影响的数值和实验研究2:作用力比和凝固参数

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In recent decades, many phase change processes in metals have been optimized using traveling magnetic fields due to a better understanding of their electromagnetic impact in such applications. In this paper, numerical and experimental study of the effect of traveling magnetic field on the solidification process was evaluated. A three-dimensional numerical model based on the multi-domain method was used to analyze the process of gallium horizontal solidification under the electromagnetic impact in a laboratory-size rectangular cavity. A linear inductor creating traveling magnetic field was designed and built for appropriate measurements and validation the calculations. The analysis was focused on the influence of the ratio between the applied electromagnetic forces and natural convective forces on the solidification front location and shape and on the velocity field. Since the overall electromagnetic force impact on the melt reduced during the solidification, when the melt area was converting into a solid, a new approach to control the solidification parameters was analyzed. In this approach, the value of electromagnetic force acting on the remaining melt during the process was maintained. The main result is the development and improvement of an effective tool for the analysis of direct solidification parameters.
机译:近几十年来,由于更好地了解了金属在此类应用中的电磁影响,因此已经使用行进磁场优化了金属中的许多相变过程。本文评估了行进磁场对凝固过程影响的数值和实验研究。基于多域方法的三维数值模型被用于分析在实验室大小的矩形腔中的电磁作用下镓水平凝固的过程。设计并制造了用于产生行进磁场的线性电感器,以进行适当的测量并验证计算结果。分析的重点是施加的电磁力与自然对流力之比对凝固前沿位置和形状以及速度场的影响。由于整个电磁力对凝固过程中熔体的影响减小,因此当熔体面积转变为固体时,分析了一种控制凝固参数的新方法。在这种方法中,保持了过程中作用在剩余熔体上的电磁力的值。主要结果是开发和改进了一种用于分析直接凝固参数的有效工具。

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