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Modified Bean Model and FEM Method Combined for Persistent Current Calculation in Superconducting Coils

机译:修正Bean模型和有限元方法相结合的超导线圈恒流计算

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摘要

Field variations in the LHC superconducting magnets, e. g. during the ramping of the magnets, induce magnetization currents in the superconducting material, the so-called persistent currents that do not decay but persist due to the lack of resistivity. This paper describes a semi-analytical hysteresis model for hard superconductors, which has been developed for the computation of the total field errors arising from persistent currents. Since the superconducting coil is surrounded by a ferromagnetic yoke structure, the persistent current model is combined with the finite element method (FEM), as the non-linear yoke can only be calculated numerically. The used finite element method is based on a reduced vector potential formulation that avoids the meshing of the coil while calculating the part of the field arising from the source currents by means of the Biot-Savart Law. The combination allows to determine persistent current induced field errors as function of the excitation and for arbitrarily shaped iron yokes. The model has been implemented into the ROXIE program and is tested using the LHC dipole magnet as an example.
机译:LHC超导磁体中的磁场变化,例如。 G。在磁体倾斜时,会在超导材料中感应出磁化电流,即所谓的持续电流,该电流不会衰减,而是由于缺乏电阻而持续存在。本文介绍了一种用于硬超导体的半解析磁滞模型,该模型已开发用于计算由持续电流引起的总场误差。由于超导线圈被铁磁轭结构包围,因此持久电流模型与有限元方法(FEM)结合使用,因为非线性轭只能通过数值计算。所使用的有限元方法基于简化的矢量电势公式,该公式避免了线圈的啮合,同时借助Biot-Savart定律计算了源电流引起的磁场部分。该组合允许根据激励和任意形状的铁轭确定持续电流感应的场误差。该模型已在ROXIE程序中实现,并以LHC偶极磁体为例进行了测试。

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