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具有反常电子粘性的剥离-气球模的非线性模拟及其在边缘局域模崩溃中的作用。

Nonlinear simulations of peeling-ballooning modes with anomalous electron viscosity and their role in edge localized mode crashes.

机构信息

Lawrence Livermore National Laboratory, California 94550, USA.

出版信息

Phys Rev Lett. 2010 Oct 22;105(17):175005. doi: 10.1103/PhysRevLett.105.175005.

Abstract

A minimum set of equations based on the peeling-ballooning (P-B) model with nonideal physics effects (diamagnetic drift, E×B drift, resistivity, and anomalous electron viscosity) is found to simulate pedestal collapse when using the new BOUT++ simulation code, developed in part from the original fluid edge code BOUT. Nonlinear simulations of P-B modes demonstrate that the P-B modes trigger magnetic reconnection, which leads to the pedestal collapse. With the addition of a model of the anomalous electron viscosity under the assumption that the electron viscosity is comparable to the anomalous electron thermal diffusivity, it is found from simulations using a realistic high-Lundquist number that the pedestal collapse is limited to the edge region and the edge localized mode (ELM) size is about 5%-10% of the pedestal stored energy. This is consistent with many observations of large ELMs.

摘要

一套基于带有非理想物理效应(抗磁性漂移、E×B 漂移、电阻率和反常电子粘性)的剥气球(P-B)模型的最小方程组,被用于模拟使用新的 BOUT++ 模拟代码时的 pedestal 坍塌,该代码部分是从原始的流体边缘代码 BOUT 发展而来的。P-B 模式的非线性模拟表明,P-B 模式触发了磁重联,从而导致 pedestal 坍塌。在假设电子粘性与反常电子热扩散率相当的情况下,添加了一个反常电子粘性模型,使用现实的高 Lundquist 数的模拟发现,pedestal 坍塌仅限于边缘区域,而边缘局域模(ELM)的大小约为 pedestal 存储能量的 5%-10%。这与许多大型 ELM 的观测结果一致。

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