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Hysteresis as a probe of turbulent bifurcation in intrinsic rotation reversals on Alcator C-Mod

机译:迟滞是Alcator C-Mod固有旋转反转中湍流分叉的一个探针

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摘要

Analysis and modeling of a new set of rotation reversal hysteresis experiments unambiguously show that changes in turbulence are responsible for the intrinsic rotation reversal and the linear to saturated ohmic confinement (LOC/SOC) transition on Alcator C-Mod. Plasmas on either side of the reversal exhibit different toroidal rotation profiles and therefore different turbulence characteristics despite profiles of density and temperature that are indistinguishable within measurement uncertainty. The deactivation of subdominant (in linear growth rate and heat transport) ion-temperature gradient and trapped electron mode-like instabilities in a mixed-mode state is identified as the only possible change in turbulence within a quasilinear transport approximation across the reversal which is consistent with the measured profiles and the inferred heat and particle fluxes. This indicates an explanation for the LOC/SOC transition that provides a mechanism for hysteresis through the dynamics of subdominant modes and changes in their relative populations, and does not involve a change in most (linearly) unstable ion-scale drift-wave instability.
机译:对一组新的旋转反向滞后实验的分析和建模明确表明,湍流的变化是固有旋转反向和Alcator C-Mod上线性到饱和欧姆限制(LOC / SOC)过渡的原因。尽管密度和温度的分布在测量不确定度内是无法区分的,但反转两边的等离子体均显示出不同的环形旋转曲线,因此呈现出不同的湍流特性。在混合模式状态下,次要的(线性增长速率和热传输)离子温度梯度的失活和捕集的电子模式类不稳定性被确定为在整个反向的准线性传输近似中湍流唯一可能的变化,这是一致的以及测得的轮廓和推断的热量和粒子通量。这说明了LOC / SOC跃迁的解释,该跃迁提供了通过次要模式的动力学及其相对种群变化而产生迟滞的机制,并且不涉及大多数(线性)不稳定的离子尺度漂移波不稳定性的变化。

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