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首页> 外文期刊>Applied Superconductivity, IEEE Transactions on >Coupled Transient Finite Element Simulation of Quench in Jefferson Lab's 11 GeV Super High Momentum Spectrometer Superconducting Magnets
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Coupled Transient Finite Element Simulation of Quench in Jefferson Lab's 11 GeV Super High Momentum Spectrometer Superconducting Magnets

机译:杰斐逊实验室的11 GeV超高动量能谱仪超导磁体中的猝灭耦合瞬态有限元模拟

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摘要

This paper presents coupled transient thermal and electromagnetic finite element analysis of quench in the Q2, Q3, and dipole superconducting magnets using Vector Fields Quench code. Detailed temperature distribution within coils and aluminum force collars were computed at each time step. Both normal (quench with dump resistor) and worst-case (quench without dump resistor) scenarios were simulated to investigate the maximum temperatures. Two simulation methods were utilized, and their algorithms, implementation, advantages, and disadvantages are discussed. The first method simulated the coil using nonlinear transient thermal analysis directly linked with the transient circuit analysis. It was faster because only the coil was meshed and no eddy current was modeled. The second method simulated the whole magnet including the coil, the force collar, and the iron yoke. It coupled thermal analysis with transient electromagnetic field analysis which modeled electromagnetic fields including eddy currents within the force collar. Since eddy currents and temperature in the force collars were calculated in various configurations, segmentation of the force collars was optimized under the condition of fast discharge.
机译:本文介绍了使用矢量场淬灭代码对Q2,Q3和偶极超导磁体中的失超进行瞬态热和电磁耦合有限元分析。在每个时间步骤中,都计算了线圈和铝制推力环内的详细温度分布。模拟了正常情况(带转储电阻的淬火)和最坏情况(不带转储电阻的淬火)情况,以研究最高温度。利用了两种仿真方法,并讨论了它们的算法,实现,优缺点。第一种方法是使用与瞬态电路分析直接相关的非线性瞬态热分析来模拟线圈。之所以更快,是因为只有线圈被啮合了,并且没有对涡流进行建模。第二种方法模拟了整个磁体,包括线圈,推力环和铁轭。它将热分析与瞬态电磁场分析相结合,后者对电磁场建模,其中包括力领内的涡流。由于以各种配置计算了力环中的涡流和温度,因此在快速放电条件下优化了力环的分段。

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