论文标题

T-A公式的3D均质化用于分析具有复杂几何形状的线圈

3D homogenization of the T-A formulation for the analysis of coils with complex geometries

论文作者

Vargas-Llanos, Carlos Roberto, Huber, Felix, Riva, Nicolo, Zhang, Min, Grilli, Francesco

论文摘要

超导线圈的建模和分析是基于高温超导体(HTS)的大多数设备设计阶段的重要任务。这些计算允许验证基本估计和假设,提出改进以及通过分析方法不容易计算的计算数量。例如,在设计阶段,HTS损失的估计是基本的,因为损失可以强烈影响冷却系统的要求和工作温度。通常,由于缺乏可以准确代表复杂工作条件的分析解决方案,例如AC传输电流和线圈中的AC外部应用磁场,因此使用2D有限元分析来计算HTS中的AC损耗。这些2D模型通常是无限长度排列的表示。因此,它们不能用于分析最终效果和复杂的3D配置。在本出版物中,我们使用3D中T-A公式的均质化来分析具有复杂几何形状的超导线圈,其中2D方法无法提供准确的分析和对假设的验证。与当前可用的3D H均质化相比,模型方法可以更轻松地在商业软件(COMSOL多物理学)中实现。首先,通过将结果与公认的H公式进行比较,首先用赛道线圈(基准情况)验证。然后,分析具有更复杂几何形状的线圈的电磁行为。

The modeling and analysis of superconducting coils is an essential task in the design stage of most devices based on high-temperature superconductors (HTS). These calculations allow verifying basic estimations and assumptions, proposing improvements, and computing quantities that are not easy to calculate with an analytical approach. For instance, the estimation of losses in HTS is fundamental during the design stage since losses can strongly influence the cooling system requirements and operating temperature. Typically, 2D finite element analysis is used to calculate AC losses in HTS, due to the lack of analytical solutions that can accurately represent complex operating conditions such as AC transport current and AC external applied magnetic field in coils. These 2D models are usually a representation of an infinitely long arrangement. Therefore, they cannot be used to analyze end effects and complex 3D configurations. In this publication, we use the homogenization of the T-A formulation in 3D for the analysis of superconducting coils with complex geometries where a 2D approach can not provide accurate analyses and verification of assumptions. The modeling methodology allows an easier implementation in commercial software (COMSOL Multiphysics) in comparison with the currently available 3D H homogenization, despite the complexity of the geometry. This methodology is first validated with a racetrack coil (benchmark case) by comparing the results with the well-established H formulation. Then, the electromagnetic behavior of coils with more complex geometries is analyzed.

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