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Dependence of current carrying capacity and AC loss on current distribution in coaxial multi-layer HTS conductor

机译:载流能力和交流损耗对同轴多层HTS导体中电流分布的依赖性

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摘要

We had developed a simulation method of current distribution in coaxial multi-layer HTS conductor and investigated influence of the nonlinear voltage-current characteristic of HTS tape on current distribution. It had been reported that homogeneous current distribution, especially the same layer current, is effective in terms of reducing AC loss. There are, however, many sets of cable parameters to achieve homogeneous current distribution in such the coaxial multi-layer cables. Therefore, using our developed evaluation method, we numerically investigated the relationship between AC loss and the cable parameters such as twisting pitch, radius, and direction in coaxial three- and four-layer conductors. We evaluated both hysteresis loss and flux flow loss as AC loss using the Norris's model and V-I characteristic of HTS tape, respectively. The critical current of whole cable and current density of each tape are key parameters in terms of reducing AC loss. The larger twisting pitch is better for increasing the critical current of cable due to the greater number of usable tapes and the shorter tape-length per unit length of cable in longitudinal direction. Alternate twisting pitch, however, is ineffective for increasing the critical current due to small twisting pitch and small number of tapes for realizing homogeneous current distribution. There is no effect of the degradation of the critical current caused by magnetic field generated by the other layers on AC loss in the cable with the current carrying capacity of the order of at least 1 kA.
机译:我们已经开发出一种同轴多层HTS导体中电流分布的仿真方法,并研究了HTS带的非线性电压-电流特性对电流分布的影响。据报道,均匀的电流分布,特别是相同的层电流,在减少交流损耗方面是有效的。但是,在这样的同轴多层电缆中,有许多电缆参数集可实现均匀的电流分布。因此,使用我们开发的评估方法,我们以数值方式研究了交流损耗与同轴三层和四层导体中电缆参数(例如绞距,半径和方向)之间的关系。我们分别使用Norris模型和HTS胶带的V-I特性将磁滞损耗和磁通流量损耗评估为AC损耗。就减少交流损耗而言,整条电缆的临界电流和每条胶带的电流密度是关键参数。由于可用胶带的数量更多,并且每单位长度的电缆在纵向方向上的胶带长度更短,因此较大的扭曲螺距更适合于增加电缆的临界电流。然而,由于较小的扭曲间距和较少的用于实现均匀电流分布的带,替代的扭曲间距对于增加临界电流是无效的。由其他层产生的磁场引起的临界电流的降低不会对电缆的交流损耗造成影响,电流承载能力至少为1 kA。

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