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Thermal coupling effect on the vortex dynamics of superconducting thin films: time-dependent Ginzburg-Landau simulations

机译:关于超导薄膜涡流动力学的热耦合效应:时间依赖吉丁堡 - Landau模拟

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In this paper, vortex dynamics of superconducting thin films are numerically investigated by the generalized time-dependent Ginzburg-Landau (TDGL) theory. Interactions between vortex motion and the motion induced energy dissipation is considered by solving the coupled TDGL equation and the heat diffusion equation. It is found that thermal coupling has significant effects on the vortex dynamics of superconducting thin films. Branching in the vortex penetration path originates from the coupling between vortex motion and the motion induced energy dissipation. In addition, the environment temperature, the magnetic field ramp rate and the geometry of the superconducting film also greatly influence the vortex dynamic behaviors. Our results provide new insights into the dynamics of superconducting vortices, and give a mesoscopic understanding on the channeling and branching of vortex penetration paths during flux avalanches.
机译:在本文中,通过广义时间依赖的Ginzburg-Landau(TDGL)理论在数值上研究超导薄膜的涡旋动力学。 通过求解耦合的TDGL方程和热扩散方程,考虑涡旋运动与运动感应能量耗散之间的相互作用。 发现热耦合对超导薄膜的涡流动态具有显着影响。 涡流渗透路径中的分支源自涡流运动与运动引起的能量耗散之间的耦合。 另外,环境温度,磁场斜坡率和超导膜的几何形状也极大地影响了涡流动态行为。 我们的结果为超导涡流的动态提供了新的见解,并对助焊剂雪崩期间对涡流渗透路径的通道和分支进行了介于思考的理解。

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