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Numerical Simulation of Thermal Properties of Bi2223 Conduction-Cooled Pulse Coil for SMES

机译:Bi2223导电冷却的SMES脉冲线圈热性能的数值模拟

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We studied the thermal and electromagnetic behavior of a conduction-cooled superconducting pulse coil. It was wound with a 4-strand parallel conductor composed of silver sheathed Bi2223 multifilamentary tapes and impregnated with an epoxy resin. We first investigated the temperature dependence of the thermal runaway current in dc operation. It was higher than the critical current by several tens amps at any temperature from 40 to 90 K. In order to study the mechanism of the thermal runaway, we carried out the numerical simulation of the coil behavior. We found out that the thermal runaway was caused when the heat generation at the winding end close to the cryocooler head where the flux-flow loss is the largest due to perpendicular magnetic field exceeded the cooling through thermal diffusion though the thermal runaway of the coil started at the other end of the winding. If the transport current is smaller than the thermal runaway current at the coil temperature just after applying current, the temperature distribution in the longitudinal direction of the coil varied into a monotonous gradient and the steady thermal flow was established. After that the coil temperature decreased to the balanced one.
机译:我们研究了传导冷却的超导脉冲线圈的热和电磁行为。它缠绕着由银包覆的Bi2223复丝带组成的4股平行导体,并浸渍有环氧树脂。我们首先研究了直流运行中热失控电流的温度依赖性。在40至90 K的任何温度下,它都比临界电流高出几十安培。为了研究热失控的机理,我们对线圈性能进行了数值模拟。我们发现,当线圈的热失控开始时,由于垂直磁场导致磁通量流失最大的绕组末端附近的冷端产生的热量超过了通过热扩散引起的冷却,这是造成热失控的原因。在绕组的另一端。如果在刚施加电流之后,传输电流小于线圈温度下的热失控电流,则线圈纵向上的温度分布将变为单调梯度,并建立稳定的热流。之后,线圈温度降至平衡温度。

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