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AC Losses in HTS Tapes and Devices With Transport Current Solved Through the Resistivity-Adaption Algorithm

机译:通过电阻率自适应算法解决传输电流的HTS磁带和设备中的交流损耗

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Alternating current (ac) losses in high-temperature superconductor tapes and devices with transport current are solved by using the resistivity-adaption algorithm (RAA). The most advanced feature of the RAA is that it enables the simulation of any model derived from the flux motion theory on finite-element analysis (FEA) packages that have an eddy current solver. The principle of the RAA, as well as its realization on the ANSYS FEA package, is introduced. The simulation begins with the calculation of the ac loss of an ellipse and of strips with aspect ratios ranging from 50 to 2000. The accuracy and efficiency of the calculation are verified through comparisons with the Norris theoretical curves. The possible errors and the method to overcome such errors are discussed. The most significant improvement in the proposed RAA from that discussed in a previous study is that the RAA was proven to be valid for calculating the field-dependent critical state model by using the descendant process from +Im to -Im. We then extend this method to calculate the transport ac loss of a stack of ellipses with Jc(B) characteristic from a typical Bi2223/Ag tape and the transport ac loss of a stack of strips with Jc(B) characteristic from a typical YBCO-coated conductor.
机译:通过使用电阻率自适应算法(RAA)解决了高温超导带和带有传输电流的设备中的交流(ac)损耗。 RAA的最先进的功能是,它可以在具有涡流求解器的有限元分析(FEA)软件包上模拟从磁通运动理论派生的任何模型。介绍了RAA的原理及其在ANSYS FEA软件包中的实现。模拟从计算椭圆率和长宽比为50到2000的条带的ac损耗开始。通过与Norris理论曲线进行比较,验证了计算的准确性和效率。讨论了可能的错误以及克服此类错误的方法。与先前研究中讨论的建议相比,建议的RAA的最大改进在于,通过使用从+ I m 到K的后代过程,证明了RAA对于计算与场有关的临界状态模型是有效的。 -I m 。然后,我们扩展此方法,以从典型的Bi2223 / Ag胶带计算具有J c (B)特征的椭圆堆的运输ac损失,以及计算J 典型的YBCO涂层导体的sub> c (B)特性。

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