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Finite Element Method simulation study of heat propagation in a novel YBCO-based Coated Conductor for resistive fault current limiters

机译:新型基于YBCO的电阻故障限流器涂层导体中热传播的有限元模拟研究

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摘要

YBCO-based Coated Conductors (CCs) used for applications in Resistive Superconducting Fault Current Limiters (RSFCLs) are well known to have fairly low values of Normal Zone Propagation Velocity (NZPV) during quench avalanche phenomena. Slow propagating normal zones result in the Joule heating localization that may lead to permanent damages of the devices. A marked improvement can be made by enhancing the thermal conductivity of the underlying substrate of YBCO-based CC. We propose an electrically isolated multilayered substrate containing a micron scaled copper layer on the top of a massive fused silica substrate. In order to compute NZPV values, Finite Element Method (FEM) simulations have been performed in COMSOL Multiphysics on a 3D meander-like configuration of such a novel YBCO-based RSFCL. The simulation results have demonstrated an enhancement in NZPVs by promoting the novel RSFCL multistructure as a radical alternative to earlier studied cases. The relevance of copper thickness variation has also been examined. (C) 2016 Elsevier Masson SAS. All rights reserved.
机译:众所周知,用于电阻超导故障电流限制器(RSFCL)的基于YBCO的涂层导体(CC)在骤冷雪崩现象期间的法向区域传播速度(NZPV)值较低。缓慢传播的正常​​区域会导致焦耳加热局部化,这可能会导致设备永久损坏。通过增强基于YBCO的CC的下层基板的导热系数,可以显着改善性能。我们提出了一种电隔离的多层基底,其在块状熔融二氧化硅基底的顶部上包​​含微米级的铜层。为了计算NZPV值,已经在COMSOL Multiphysics中对这种新颖的基于YBCO的RSFCL的3D曲折状配置进行了有限元方法(FEM)仿真。仿真结果表明,通过推广新颖的RSFCL多重结构作为对先前研究案例的根本替代,可以提高NZPV。还检查了铜厚度变化的相关性。 (C)2016 Elsevier Masson SAS。版权所有。

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