径向电场对离子温度梯度驱动模式稳定性的影响

None Chen Ning-Fei, None Wei Guang-Yu, None Qiu Zhi-Yong
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摘要

为了理解给定的径向电场对托卡马克等离子体中离子温度梯度驱动模式(ITG)稳定性的影响,利用非线性陀螺动力学理论推导了包含极向旋转和与径向电场相关的密度调制的ITG本征模方程。以能量粒子诱导测地线声模式(EGAM)为具体形式,求解了ITG在短波长极限下的本征频率、生长速率和平行模式结构。本文不仅对特征模态方程进行了解析求解,而且对解析解进行了数值求解,验证了解析解的正确性。研究发现,径向电场诱导的极向旋转对ITG有明显的稳定作用,而径向电场的密度扰动对ITG平行模结构有轻微的畸变,但对ITG稳定性影响不大。结果与一般的极向剪切流抑制湍流的情况一致。一般模型也适用于通过产生纬向结构来研究ITG和高能粒子驱动的alfv录影带不稳定性的间接相互作用,方法是引入由alfv录影带不稳定性自发激发的与纬向结构相关的极向旋转和密度调制。间接通道是对微湍流和高能粒子驱动的alfv不稳定性直接相互作用的补充。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of radial electric field on ion-temperature gradient driven mode stability
To understand the effects of given radial electric field on ion-temperature gradient driven mode (ITG) stability in tokamak plasmas, the eigenmode equation for ITG including the poloidal rotation and density modulation associated with radial electric field is derived using nonlinear gyrokinetic theory. The equation is solved for eigenfrequency, growth rate and parallel mode structure of ITG both in short- and long-wavelength limit with energetic-particle-induced geodesic acoustic mode (EGAM) as a specific form. The eigenmode equation is not only solved analytically, but also solved numerically to validate the analytic solutions. It is found that, radial electric field induced poloidal rotation can significantly stabilize ITG, while the density perturbation of the radial electric field may slightly distort the ITG parallel mode structure, but has little effect on ITG stability. The result is consistent with common picture of turbulence suppression by poloidal shear flow. The general model is also applicable to the investigation of the indirect interaction of ITG and energetic particle driven Alfvén instabilities via zonal structures generation, by means of introducing poloidal rotation and density modulation associated with zonal structures spontaneously excited by Alfvén instabilities. The indirect channel is supplement to the direct interaction of microturbulences and energetic particle driven Alfvén instabilities.
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