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Progress towards a predictive model for pedestal height in DIII-D

机译:在DIII-D中建立基座高度的预测模型的进展

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Recent DIII-D pedestal studies provide improved characterization of pedestal scaling for comparison with models. A new pedestal model accurately predicts the maximum achieved pedestal width and height in type I ELMing discharges over a large range of DIII-D operational space, including ITER demonstration discharges. The model is a combination of the peeling-ballooning theory for the MHD stability limits on the pedestal with a simple pedestal width scaling in which the width is proportional to the square root of the pedestal poloidal beta. Width scalings based on the ion toroidal or poloidal gyroradius are much poorer descriptions of DIII-D data. A mass scaling experiment in H and D provides support for a poloidal beta scaling and is not consistent with an ion poloidal gyroradius scaling. Studies of pedestal evolution during the inter-ELM cycle provide evidence that both the pedestal width and height increase during pedestal buildup. Model studies with a ID kinetic neutrals calculation show that the temporal increase in density width cannot be explained in terms of increased neutral penetration depth. These studies show a correlation of pedestal width with both the square root of the pedestal poloidal beta and the square root of the pedestal ion temperature during the pedestal buildup.
机译:最近的DIII-D基座研究为与模型比较提供了改进的基座缩放特性。一个新的基座模型可以准确预测I D型ELMing放电在DIII-D各种工作空间(包括ITER演示放电)的大范围内达到的最大宽度和高度。该模型是针对基座上的MHD稳定性极限的剥离-气球理论与简单的基座宽度缩放(其中宽度与基座多倍体β的平方根成比例)组合而成的。基于离子环形或多面体陀螺半径的宽度缩放比DIII-D数据描述差得多。在H和D中进行的质量缩放实验提供了倍体β缩放的支持,并且与离子倍数陀螺半径缩放不一致。 ELM间周期内的基座演化研究提供了证据,表明在基座建立过程中基座的宽度和高度都会增加。带有ID动力学中性计算的模型研究表明,密度宽度的瞬时增加无法用增加的中性穿透深度来解释。这些研究表明,在基座建立过程中,基座宽度与基座多倍体β的平方根和基座离子温度的平方根相关。

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