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Modelling of non-uniform current diffusion coupled with thermohydraulic effects in superconducting cables

机译:超导电缆中非均匀电流扩散与热工效应的耦合建模

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Non-uniform current distributions in multistrand superconducting cables sooled by supercritical helium are often blamed for lower than expected performance relative to individual strands, both in steady-state and pulsed modes of operation. However, the lack of practical analysis tools has limited the quantification of such effects and the interpretation of experimental results. A resistive diffusion model for current redistribution between super and normal conducting strands has been coupled with a thermal model to allow simultaneous analysis of current distributions and stability in multistrand cables. The model is novel in that both resistive and superconducting strands can be analysed Joint regions current sharing lengths and normal conducting strands can be included simultaneously in the model so that a full current ramp up and development of non-uniformities from joint resistances can be simulated, as well as short time scale stability effects. The thermal model includes a stagnant boundary layer on the strand surfaces to simulate the heat transfer variation with fast heat inputs, as well as simple heat conduction in the transverse direction within the helium and a one-dimensional simplified fluid flow model along the cable. The calculation procedure is fast enough to be applied to 1000-strand cables although the calculation speed is improved using superstrands. It has been applied to a range of cables with different joint resistance distributions to investigate operating limits due to external heating and current ramps and the impact of transverse field gradients. A companion paper applies the procedure to the analysis and comparison with measured results in a large coil test with a 140 m long conductor.
机译:在稳态和脉冲工作模式下,经常会因超临界氦气所溶解的多股超导电缆中电流分布不均匀而相对于单股电缆的性能低于预期。但是,缺乏实用的分析工具限制了这种效应的量化和实验结果的解释。用于在超导电线和普通导电线之间重新分配电流的电阻扩散模型已与热模型结合使用,可以同时分析多股电缆中的电流分布和稳定性。该模型的新颖之处在于可以同时分析电阻性和超导性绞合线,并可以在模型中同时包含关节区域的电流共享长度和正常的导电绞合线,从而可以模拟出整个电流的上升和由接头电阻产生的不均匀性,以及短时标度的稳定效果。该热模型包括在绞线表面上的停滞边界层,以模拟快速热输入以及氦气内横向上的简单热传导以及沿电缆的一维简化流体流动模型,从而模拟传热变化。尽管使用超绞线可以提高计算速度,但计算过程足够快,可以应用于1000绞线电缆。它已被应用于具有不同接头电阻分布的一系列电缆,以研究由于外部加热和电流斜坡以及横向场梯度的影响而引起的工作极限。随附的论文将这一程序应用于分析和比较,测试结果是在使用140 m长导体的大型线圈测试中进行的。

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