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Full-scale calculation of the coupling losses in ITER size cable-in-conduit conductors

机译:全面计算ITER尺寸的导管中导体的耦合损耗

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With the numerical cable model JackPot it is possible to calculate the interstrand coupling losses, generated by a time-changing background and self-field, between all strands in a cable-in-conduit conductor (CICC). For this, the model uses a system of equations in which the mutual inductances between all strand segments are calculated in advance. The model works well for analysing sub-size CICC sections. However, the exponential relationship between the model size and the computation time make it unpractical to simulate full size ITER CICC sections. For this reason, the multi-level fast multipole method (MLFMM) is implemented to control the computation load. For additional efficiency, it is written in a code that runs on graphics processing units, thereby utilizing an efficient low-cost parallel computation technique. A good accuracy is obtained with a considerably fast computation of the mutually induced voltages between all strands. This allows parametric studies on the coupling loss of long lengths of ITER size CICCs with the purpose of optimizing the cable design and to accurately compute the coupling loss for any applied magnetic field scenario.
机译:使用数字电缆模型JackPot,可以计算由在导管内电缆(CICC)中所有绞合线之间随时间变化的本底和自磁场产生的链间耦合损耗。为此,该模型使用方程式系统,其中所有绞线段之间的互感都预先计算出来。该模型非常适合分析子大小的CICC截面。但是,模型大小与计算时间之间的指数关系使得模拟全尺寸的ITER CICC截面不切实际。因此,实现了多级快速多极方法(MLFMM)来控制计算负荷。为了提高效率,将其编写为在图形处理单元上运行的代码,从而利用高效的低成本并行计算技术。通过相当快地计算所有绞线之间的互感电压可获得良好的精度。这允许对长长度的ITER尺寸CICC的耦合损耗进行参数研究,以优化电缆设计并准确计算任何施加磁场情况下的耦合损耗。

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