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Experimental Identification of Electric Field Excitation Mechanisms in a Structural Transition of Tokamak Plasmas

机译:托卡马克等离子体结构转变中电场激发机制的实验鉴定

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摘要

Self-regulation between structure and turbulence, which is a fundamental process in the complex system, has been widely regarded as one of the central issues in modern physics. A typical example of that in magnetically confined plasmas is the Low confinement mode to High confinement mode (L-H) transition, which is intensely studied for more than thirty years since it provides a confinement improvement necessary for the realization of the fusion reactor. An essential issue in the L-H transition physics is the mechanism of the abrupt “radial” electric field generation in toroidal plasmas. To date, several models for the L-H transition have been proposed but the systematic experimental validation is still challenging. Here we report the systematic and quantitative model validations of the radial electric field excitation mechanism for the first time, using a data set of the turbulence and the radial electric field having a high spatiotemporal resolution. Examining time derivative of Poisson’s equation, the sum of the loss-cone loss current and the neoclassical bulk viscosity current is found to behave as the experimentally observed radial current that excites the radial electric field within a few factors of magnitude.
机译:结构和湍流之间的自我调节是复杂系统中的基本过程,已被广泛认为是现代物理学的核心问题之一。在磁约束等离子体中,典型的例子是从低约束模式到高约束模式(L-H)的转变,由于它为实现聚变反应堆提供了必要的约束条件改进,因此经过了三十多年的深入研究。 L-H跃迁物理学中的一个重要问题是在环形等离子体中突然产生“径向”电场的机制。迄今为止,已经提出了几种用于L-H跃迁的模型,但系统的实验验证仍具有挑战性。在这里,我们使用具有高时空分辨率的湍流和径向电场数据集,首次报告了径向电场激励机制的系统和定量模型验证。检查Poisson方程的时间导数,发现锥损耗电流和新古典体积粘滞电流之和,表现为实验观察到的径向电流,它在几个数量级内激发了径向电场。

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