论文标题

基座密度梯度和碰撞对ELM动力学的影响

Impact of pedestal density gradient and collisionality on ELM dynamics

论文作者

Li, Nami, Xu, X. Q., Wang, Y. F., Lin, X., Yan, N., Xu, G. S.

论文摘要

进行了回合++湍流模拟,以捕获通过从垂直到水平移动板上控制三个东放电的罢工点来增加分离点密度来实现的小榆树特征的基本物理。回合++线性模拟表明,最不稳定的模式从高N理想的气球模式转变为中间N剥离式式式 - 最终变为基座上的稳定等离子体。非线性模拟表明,对于最低的分离质密度,波动在高水平上饱和。榆树尺寸随着分离质密度的增加而降低,直到在榆树崩溃期间损失的能量的比例小于基座存储的能量的1%,从而导致小榆树。模拟表明,可以通过在基座内部的峰值压力梯度位置附近的尖端剥离式不稳定性或在基座脚中具有较大的分离质密度梯度的局部不稳定性触发。对具有陡峭的基座密度梯度的I型E ELMS的基座碰撞扫描表明,随着碰撞的增加,线性生长速率和ELM尺寸都会降低。虽然基座碰撞和基座密度宽度较弱的基座密度梯度扫描表明,在低碰撞区域0.04〜0.1中,可以通过高N气球模式或低N剥离模式触发小榆树。模拟表明在边际稳定性附近的线性不稳定模式较弱,线性生长速率较小,非线性饱和波动强度较低,并且在非线性饱和阶段,从线性不稳定区域到稳定区域的湍流较小,导致小elms。

BOUT++ turbulence simulations are conducted to capture the underlying physics of the small ELM characteristics achieved by increasing separatrix density via controlling strike points from vertical to horizontal divertor plates for three EAST discharges. BOUT ++ linear simulations show that the most unstable modes change from high-n ideal ballooning modes to the intermediate-n peeling-ballooning modes and eventually to peeling-ballooning stable plasmas in the pedestal. Nonlinear simulations show that the fluctuation is saturated at a high level for the lowest separatrix density. The elm size decreases with increasing the separatrix density, until the fraction of this energy lost during the ELM crash becomes less than 1% of the pedestal stored energy, leading to small ELMs. Simulations indicate that small ELMs can be triggered either by the marginally peeling-ballooning instability near the peak pressure gradient position inside pedestal or by a local instability in the pedestal foot with a larger separatrix density gradient. The pedestal collisionality scan for type-I ELMs with steep pedestal density gradient shows that both linear growth rate and elm size decrease with collisionality increasing. While the pedestal collisionality and pedestal density width scan with a weak pedestal density gradient indicate small ELMs can either be triggered by high-n ballooning mode or by low-n peeling mode in low collisionality region 0.04~0.1. The simulations indicate the weaker the linear unstable modes near marginal stability with small linear growth rate, the lower nonlinearly saturated fluctuation intensity and the smaller turbulence spreading from the linear unstable zone to stable zone in the nonlinear saturation phase, leading to small ELMs.

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