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A Time-Harmonic Approach to Numerically Model Losses in the Metal Matrix in Twisted Superconductors in External Magnetic Field

机译:外部磁场中扭曲超导体中金属基体损失数值模型的时间谐波方法

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The first NbTi superconductor was developed in 1962 at Westinghouse. During 50 years, the manufacturing process of NbTi wires became highly optimized, and complex wire structures, which are needed in reducing ac losses, can be produced these days. Twisted multifilamentary structures generate many challenges from the modeler's point of view. Considering numerical modeling, NbTi wires are too complicated to model with filament-level details. This is due to the high number and very nonlinear resistivity of filaments. Consequently, simplified approaches are needed for wire modeling. In this paper, a time-harmonic approach to model losses in the metal matrix is introduced. It is based on the linear approximation of filaments. The method to determine the linear resistivity of filaments is based on the definition of the skin depth and the radius of filaments. This can be done in advance without solving a nonlinear problem in 3-D. The suitability of the time-harmonic approach is benchmarked against the H-formulated 3-D eddy current model (ECM) with power-law resistivity. According to simulations, the losses in the metal matrix predicted by the time-harmonic approach agreed well with the nonlinear ECM when the filaments were uncoupled. The results achieved with the proposed approach similarly followed the effects of geometrical changes in the wire structure on losses as the nonlinear ECM and predicted the circumstances where the filaments became partially coupled. The simulation times were considerably lower with the new approach. From the manufacturer's perspective, it is important to design conductors where the filaments stay uncoupled and have low ac losses in such a situation. Thus, the new approach can provide an effective design tool in developing new superconductors.
机译:1962年在西屋公司开发了第一款NbTi超导体。在过去的50年中,NbTi导线的制造工艺得到了高度优化,如今,可以生产出减少交流损耗所需的复杂导线结构。从建模者的角度来看,扭曲的多丝结构产生了许多挑战。考虑到数值建模,NbTi导线太复杂,无法使用细丝级的细节进行建模。这是由于细丝的数量众多且电阻率非常非线性。因此,电线建模需要简化的方法。本文介绍了一种时谐方法来模拟金属基体中的损耗。它基于细丝的线性近似。确定细丝的线性电阻率的方法是基于趋肤深度和细丝半径的定义。可以预先完成,而无需解决3-D非线性问题。时谐方法的适用性以具有幂律电阻率的H公式化3-D涡流模型(ECM)为基准。根据仿真,当细丝解耦时,通过时谐方法预测的金属基质中的损耗与非线性ECM吻合得很好。所提出的方法获得的结果类似地遵循了导线结构的几何变化对非线性ECM的影响,并预测了细丝部分耦合的情况。新方法的仿真时间大大缩短。从制造商的角度来看,重要的是设计一种导体,在这种情况下,细丝保持不耦合并且交流损耗低。因此,新方法可以为开发新的超导体提供有效的设计工具。

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