首页> 外文期刊>Applied Superconductivity, IEEE Transactions on >Three-Dimensional Micrometer-Scale Modeling of Quenching in High-Aspect-Ratio $hbox{YBa}_{2}hbox{Cu}_{3}hbox{O}_{7-delta}$ Coated Conductor Tapes—Part II: Influence of Geometric and Material Properties and Implications for Conductor Engineering and Magnet Design
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Three-Dimensional Micrometer-Scale Modeling of Quenching in High-Aspect-Ratio $hbox{YBa}_{2}hbox{Cu}_{3}hbox{O}_{7-delta}$ Coated Conductor Tapes—Part II: Influence of Geometric and Material Properties and Implications for Conductor Engineering and Magnet Design

机译:高纵横比$ hbox {YBa} _ {2} hbox {Cu} _ {3} hbox {O} _ {7-delta} $涂层导体带的淬火的三维微米尺度建模—第二部分:几何和材料特性的影响及其对导体工程和磁体设计的影响

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$hbox{YBa}_{2}hbox{Cu}_{3}hbox{O}_{7-delta}$ (YBCO) coated conductors (CCs) show great promise for applications, but due to a very slow normal-zone propagation velocity (NZPV), quench detection and protection in YBCO magnets may be difficult. Present YBCO CCs have been developed with a primary focus on maximizing the critical current density for elevated-temperature low-field or low-temperature high-field applications. As the market for magnet applications progresses, it becomes important to consider design parameters such as the thicknesses and properties of all YBCO CC components, with the intent of considering quench-related behaviors as an integral part of the conductor and magnet design processes. Thus, it is important to know the impacts of conductor parameters on quench behavior. Considering that the YBCO layer itself is on the order of a micrometer in thickness, quench behavior must also be considered at this scale length. Here, the highly accurate experimentally validated micrometer-scale 3-D tape model reported in Part I is used to study how variations in CC geometry and material properties affect quench behavior, including the NZPV, hot-spot temperature, and minimum quench energy. The parametric variations focus on quantities that can be most readily modified by CC manufacturers. Based on simulation results, the relative sensitivities of the quench quantities to the parametric variations are calculated to identify which CC design parameters are most impactful on quench behavior. The implications of these results for quench detection and protection are discussed.
机译:$ hbox {YBa} _ {2} hbox {Cu} _ {3} hbox {O} _ {7-delta} $(YBCO)涂层导体(CC)具有广阔的应用前景,但由于法线速度非常慢,区域传播速度(NZPV),YBCO磁体中的失超检测和保护可能很困难。当前的YBCO CC已被开发,其主要重点是在高温低场或低温高场应用中使临界电流密度最大化。随着磁体应用市场的发展,考虑设计参数(例如所有YBCO CC组件的厚度和性能)变得很重要,目的是将与淬火有关的行为视为导体和磁体设计过程的组成部分。因此,重要的是要了解导体参数对失超行为的影响。考虑到YBCO层本身的厚度约为微米,因此必须在此标尺长度下考虑淬火行为。在这里,第一部分中报道的经过高度精确的实验验证的微米级3-D胶带模型用于研究CC几何形状和材料特性的变化如何影响淬火行为,包括NZPV,热点温度和最小淬火能量。参数变化集中在CC制造商最容易修改的数量上。根据仿真结果,计算淬火量对参数变化的相对敏感性,以确定哪些CC设计参数对淬火行为的影响最大。讨论了这些结果对失超检测和保护的意义。

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