论文标题

在存在血浆旋转和实际频率的情况下,非线性误差场响应由于有利的曲率而引起

Nonlinear error field response in the presence of plasma rotation and real frequencies due to favorable curvature

论文作者

Akcay, Cihan, Finn, John M., Cole, Andrew C., Brennan, Dylan P.

论文摘要

当等离子体具有弱抑制线性撕裂模式(TM)时,我们介绍了旋转等离子体对误差场的响应的非线性电阻MHD模拟,该模拟通过压力梯度和有利的曲率稳定。良好的曲率导致玻璃效果:实际频率的发生和稳定稳定性,并具有正稳定性指数$δ'$。具有空心压力的气缸用于对环形曲率进行建模。与分析结果一致,带有旋转和错误场$ \tildeψ_w$的线性模拟显示,在TM相速度附近的旋转速率发生峰重新连接的通量。具有小$ \tildeψ_w$的非线性模拟表明,通过有利的平均曲率稳定的实际频率和稳定是通过对非常薄的岛屿发生的非线性效应来掩盖的:整个岛上的压力变平,主要是由于声波传播。这种变平会导致实际频率消失该模式的稳定,从而使其生长到大幅度,类似于$β= 0 $不稳定的TM。较大岛的电流变平使该模式非线性饱和。在饱和阶段,误差场与不稳定的自发性撕裂模式的相互作用,该模式与血浆旋转,导致麦克斯韦扭矩的振荡,因此在等离子体旋转中调制。这些岛屿还以调制的相速度旋转,由于这些调制,经历了小振幅振荡。我们还提出了一个具有不稳定自发的TM和误差场的准线性模型,表明这些场的叠加导致相似的振荡。

We present nonlinear resistive MHD simulations of the response of a rotating plasma to an error field when the plasma has weakly damped linear tearing modes (TM's), stabilized by pressure gradient and favorable curvature. Favorable curvature leads to the Glasser effect: the occurrence of real frequencies and stabilization with positive stability index $Δ'$. A cylinder with hollow pressure is used to model the toroidal favorable curvature. Linear simulations with rotation and an error field $\tildeψ_w$ show, in agreement with analytic results, that the peak reconnected flux occurs for a rotation rate near the TM phase velocity. Nonlinear simulations with small $\tildeψ_w$ show that the real frequency and stabilization by favorable average curvature are masked by a nonlinear effect that occurs for very thin islands: flattening of the pressure across the island, mainly due to sound wave propagation. This flattening causes the disappearance of real frequencies destabilization of the mode, allowing it to grow to large amplitude similar to a $β=0$ unstable TM. The flattening of the current for larger islands saturates the mode nonlinearly. In the post-saturation phase, the interaction of the error field with the destabilized spontaneous tearing mode, which rotates with the plasma, leads to oscillations in the Maxwell torque and therefore modulations in the plasma rotation. The islands also rotate with modulated phase velocity, undergoing small-amplitude oscillations due to these modulations. We also present a quasilinear model with an unstable spontaneous TM and error fields, showing that the superposition of these fields results in similar oscillations.

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