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Assessment of disruption and disruption-related physics basis for ITER

机译:评估国际热核实验堆的破坏和与破坏有关的物理学基础

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The physics basis for the characterization of disruptions and disruption-related effects-including halo currents, runaway electrons and fast plasma shutdown by impurity injection-in reactor-scale tokamaks and ITER is assessed, and the resulting implications for ITER design and operation are presented. Most aspects of the physics basis are sufficiently well understood to define specifications for ITER design and to provide a basis for the assessment of the service lifetime of at-risk components. Runaway electrons are the exception: further physics R&D and understanding are needed for definitive prediction of certain aspects of runaway electron effects caused by disruptions and fast plasma shutdown.
机译:评估了表征扰动和与扰动相关的影响的物理基础,包括晕电流,失控电子和通过注入反应堆规模的托卡马克和ITER进行杂质的快速等离子体关闭,并介绍了其对ITER设计和运行的影响。充分理解物理学基础的大多数方面,可以为ITER设计定义规范,并为评估有风险组件的使用寿命提供基础。失控的电子是个例外:要确切预测由干扰和快速等离子体关闭引起的失控电子效应的某些方面,还需要进一步的物理学研究和开发。

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