磁控反应器的热-电磁耦合有限元模拟

Caifei Hu, L. Tong, Xiaohui Li, Liqun He, Xueliang Fan
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引用次数: 0

摘要

磁控电抗器(MCR)由于其特殊的工作原理和结构,在运行过程中,其铁芯内某些部位的温度可能会极高,甚至导致设备损坏。为了避免这种情况,应该改善堆芯的散热。为了合理优化结构,需要根据实际场景对MCR进行多个触发角度的仿真分析。本文采用有限元法建立了单相MCR的热电磁仿真模型。采用均匀化方法,减少了建模和计算的时间。给出了有限元(FE)模型和小斜率模型的仿真结果并进行了比较,包括电性能和饱和电平$\boldsymbol{(\beta)}$的特性。对比结果表明,本文建立的有限元模型更符合实际情况。提出了磁阀因子(MVF),分析了多触发角度下MCR的磁感应强度、铁损和温度的变化规律。可见,电磁阀的磁感应强度、铁损和温度始终较高。因此,电磁阀的结构设计应受到重视。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Coupled Thermal-Electromagnetic Simulation of Magnetic Controlled Reactor Using Finite Element Method
Owing to the special working principle and construction of a magnetic controlled reactor (MCR), the temperature of some spots in its iron core during operation can be extremely high and even lead to equipment damage. To avoid this, the heat-dissipation in the core should be improved. To optimize the structure reasonably, simulation analysis of MCR should be performed in multiple trigger angles according to actual scenario. In this study, the finite element method (FEM) is used to establish a thermal-electromagnetic simulation model of a single-phase MCR. Homogenization method is applied to reduce the time consumption of modeling and computation. Simulation results in finite element (FE) model and small-slope model are presented and compared, including electric performance and characteristic of saturation level $\boldsymbol{(\beta)}$. The comparison results show that the FE model established in this paper is more consistent with the actual situation. Magnetic valve factor (MVF) is presented to analyze the variation law for the magnetic induction intensity, iron loss and temperature of MCR in multiple trigger angles. It is clear that the magnetic induction intensity, iron loss and temperature are always high in the magnetic valve. Therefore, the design of magnetic valve structure should be paid more attention.
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