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首页> 外文期刊>Physics of plasmas >Investigation of the plasma shaping effects on the H-mode pedestal structure using coupled kinetic neoclassical/MHD stability simulations
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Investigation of the plasma shaping effects on the H-mode pedestal structure using coupled kinetic neoclassical/MHD stability simulations

机译:使用耦合动力学新古典/ MHD稳定性模拟研究对H模式基座结构的等离子体塑造效应

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摘要

The effects of plasma shaping on the H-mode pedestal structure are investigated. High fidelity kinetic simulations of the neoclassical pedestal dynamics are combined with the magnetohydrodynamic (MHD) stability conditions for triggering edge localized mode (ELM) instabilities that limit the pedestal width and height in H-mode plasmas. The neoclassical kinetic XGC0 code [Chang et al., Phys. Plasmas 11, 2649 (2004)] is used in carrying out a scan over plasma elongation and triangularity. As plasma profiles evolve, the MHD stability limits of these profiles are analyzed with the ideal MHD ELITE code [Snyder et al., Phys. Plasmas 9, 2037 (2002)]. Simulations with the XGC0 code, which includes coupled ion-electron dynamics, yield predictions for both ion and electron pedestal profiles. The differences in the predicted H-mode pedestal width and height for the DIII-D discharges with different elongation and triangularities are discussed. For the discharges with higher elongation, it is found that the gradients of the plasma profiles in the H-mode pedestal reach semi-steady states. In these simulations, the pedestal slowly continues to evolve to higher pedestal pressures and bootstrap currents until the peeling-ballooning stability conditions are satisfied. The discharges with lower elongation do not reach the semi-steady state, and ELM crashes are triggered at earlier times. The plasma elongation is found to have a stronger stabilizing effect than the plasma triangularity. For the discharges with lower elongation and lower triangularity, the ELM frequency is large, and the H-mode pedestal evolves rapidly. It is found that the temperature of neutrals in the scrape-off-layer (SOL) region can affect the dynamics of the H-mode pedestal buildup. However, the final pedestal profiles are nearly independent of the neutral temperature. The elongation and triangularity affect the pedestal widths of plasma density and electron temperature profiles differently. This provides a new mechanism of controlling the pedestal bootstrap current and the pedestal stability. Published by AIP Publishing.
机译:研究了等离子体成形对H模式基座结构的影响。新古典基座动力学的高保真动力学模拟与磁力流体(MHD)稳定条件相结合,用于触发边缘局部模式(ELM)稳定性,限制H模式等离子体中的基座宽度和高度。新古典动力学XGC0码[常等。,phy。等离子体11,2649(2004)用于执行扫描等离子体伸长率和三角形。随着等离子体轮廓的发展,通过理想的MHD Elite Code [Snyder等,Phys,这些轮廓的MHD稳定性限制。 Plasmas 9,2037(2002)]。利用XGC0码模拟,包括耦合离子电子动力学,对离子和电子基座轮廓的产生预测。讨论了具有不同伸长和三角形的DIII-D放电的预测的H模式基座宽度和高度的差异。对于具有更高伸长率的放电,发现H模式基座中的等离子体轮廓的梯度达到半稳态。在这些模拟中,基座慢慢地继续发展到更高的基座压力和自靴电流,直到满足剥离膨胀稳定性条件。具有较低伸长率的放电不会达到半稳态,并且ELM碰撞在早先触发。发现血浆伸长率比等离子体三角形具有更强的稳定效果。对于具有较低伸长率和较低三角形的放电,ELM频率大,H模式基座迅速发展。发现刮削离子(溶胶)区域中中性的温度可以影响H模式基座积累的动态。然而,最终的基座型材几乎与中性温度差。伸长和三角形影响等离子体密度和电子温度曲线的基座宽度不同。这提供了一种控制基座自举电流和基座稳定性的新机制。通过AIP发布发布。

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