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Theory-based model for the pedestal, edge stability and ELMs in tokamaks

机译:基于理论的托卡马克基座,边缘稳定性和ELM模型

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An improved model for triggering edge localized mode (ELM) crashes is developed for use within integrated modelling simulations of the pedestal and ELM cycles at the edge of H-mode tokamak plasmas. The new model is developed by using the BALOO, DCON and ELITE ideal MHD stability codes to derive parametric expressions for the ELM triggering threshold. The whole toroidal mode number spectrum is studied with these codes. The DCON code applies to low mode numbers, while the BALOO code applies to only high mode numbers and the ELITE code applies to intermediate and high mode numbers. The variables used in the parametric stability expressions are the normalized pressure gradient and the parallel current density, which drive ballooning and peeling modes. Two equilibria motivated by DIII-D geometry with different plasma triangularities are studied. It is found that the stable region in the high triangularity discharge covers a much larger region of parameter space than the corresponding stability region in the low triangularity discharge. The new ELM trigger model is used together with a previously developed model for pedestal formation and ELM crashes in the ASTRA integrated modelling code to follow the time evolution of the temperature profiles during ELM cycles. The ELM frequencies obtained in the simulations of low and high triangularity discharges are observed to increase with increasing heating power. There is a transition from second stability to first ballooning mode stability as the heating power is increased in the high triangularity simulations. The results from the ideal MHD stability codes are compared with results from the resistive MHD stability code NIMROD.
机译:开发了一种用于触发边缘局部模式(ELM)崩溃的改进模型,用于在H型托卡马克等离子体边缘的基座和ELM循环的集成建模仿真中使用。通过使用BALOO,DCON和ELITE理想的MHD稳定性代码来开发新模型,以得出ELM触发阈值的参数表达式。用这些代码研究整个环形模式数频谱。 DCON代码适用于低模式编号,而BALOO代码仅适用于高模式编号,而ELITE代码适用于中间和较高模式编号。参数稳定性表达式中使用的变量是归一化的压力梯度和并联电流密度,它们会驱动膨胀和剥离模式。研究了DIII-D几何激发的具有不同等离子三角形的两个平衡。发现高三角形放电中的稳定区域比低三角形放电中的相应稳定区域覆盖更大的参数空间区域。新的ELM触发模型与先前开发的用于底座形成和ASM集成建模代码中的ELM碰撞的模型一起使用,以跟踪ELM循环期间温度曲线的时间演变。观察到在低和高三角形放电模拟中获得的ELM频率随着加热功率的增加而增加。随着高三角形性仿真中加热功率的增加,从第二稳定性向第一膨胀模式稳定性过渡。将理想MHD稳定性代码的结果与电阻MHD稳定性代码NIMROD的结果进行比较。

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