高速涡流制动器的多物理场分析

IF 1.8 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Journal on Multiscale and Multiphysics Computational Techniques Pub Date : 2023-11-16 DOI:10.1109/JMMCT.2023.3333386
Sandeep Mohan Nayak;Mangal Kothari;Abhishek Sarkar;Soumya Ranjan Sahoo
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引用次数: 0

摘要

本文建立了高速单极轴向涡流制动器多物理场仿真的解析与数值相结合的数学模型。介绍了ECB的工作原理和必要的多物理场仿真。在初步设计技术中,提出了一种用于高速ECB运行的粗参数搜索的解析方法。该模型采用了高速运行时板上涡流的行为。采用径向乘法器满足电磁物理要求。磁盘的轴对称特性将磁盘几何形状降低到等效的二维域,其中定义了估计损耗。将解析模型的欧姆损耗转换为数值热模型来计算温度分布。对流换热系数是边界条件下的一个重要变量,利用努塞尔数和雷诺数之间的相关性来定义对流换热系数。在三种不同速度下,求解了稳态热扩散方程。结果表明,在高速运行时,磁盘上的欧姆损耗趋于饱和,磁盘温度降低。
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Multiphysics Analysis of a High-Speed Eddy Current Brake
This paper presents the analytical-cum-numerical-based mathematical model for the multiphysics simulation of a high-speed unipolar axial eddy current brake (ECB). The operating principle and the necessary multiphysics simulation for an ECB are introduced. An analytical method is developed for high-speed ECB operation to search coarse parameters in the preliminary design technique. The model uses the behavior of the eddy currents on the plate during high-speed operation. A radial multiplier is incorporated to satisfy electromagnetic physics. The axisymmetric property of the disk reduces the disk geometry to an equivalent 2D domain where the estimated loss is defined. The ohmic loss from the analytical model is transferred to the numerical thermal model to evaluate temperature distribution. The convective heat transfer coefficient, which is a crucial variable in boundary conditions, is defined using the correlations between the Nusselt and Reynolds numbers. The steady-state heat diffusion equation is solved in the domain for three different speeds. The results show that the ohmic loss on the disk saturates and the temperature of the disk reduces during high-speed operations.
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CiteScore
4.30
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0.00%
发文量
27
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