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Modeling of electromagnetic and thermal diffusion in a large purealuminum stabilized superconductor under quench

机译:大型纯铝稳定超导体在淬火下的电磁和热扩散建模

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Low temperature composite superconductors stabilized with extra large cross-section pure aluminum are currently in use for the Large Helical Device in Japan, modern big detectors such as ATLAS at CERN, and other large magnets. In these types of magnet systems, the rated average current density is not high and the peak field in a region of interest is about 2-4 T. Aluminum stabilized superconductors result in high stability margins and relatively long quench times. Appropriate quench analyses, both for longitudinal and transverse propagation, have to take into account a rather slow diffusion of current from the superconductor into the thick aluminum stabilizer. An exact approach to modeling of the current diffusion would be based on directly solving the Maxwell's equations in parallel with thermal diffusion and conduction relations. However, from a practical point of view, such an approach should be extremely time consuming due to obvious restrictions of computation capacity. At the same time, there exist certain ways that simplify mathematical models for the thermal and electromagnetic diffusion processes for the purpose of rapidly calculating the propagation velocity and effective simulating of quench behavior. These models explained here were tested and applied to quench simulation in the above-mentioned magnet systems
机译:目前,日本的大型螺旋装置,现代大型探测器(如欧洲核子研究组织的ATLAS)以及其他大型磁体正在使用由超大横截面纯铝稳定的低温复合超导体。在这些类型的磁体系统中,额定平均电流密度不高,并且感兴趣区域中的峰值磁场约为2-4T。铝稳定的超导体导致较高的稳定性裕度和相对较长的淬灭时间。对于纵向和横向传播,都必须进行适当的淬火分析,必须考虑到电流从超导体到较厚的铝稳定剂的缓慢扩散。电流扩散建模的精确方法是基于直接求解与热扩散和传导关系并行的麦克斯韦方程组。但是,从实践的角度来看,由于计算能力的明显限制,这种方法应该非常耗时。同时,为了快速计算传播速度并有效模拟淬火行为,存在某些简化热和电磁扩散过程数学模型的方法。测试了这里解释的这些模型,并将其应用于上述磁体系统中的淬火模拟

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