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Particle pinch mitigated by radial currents in the electric tokamak

机译:电动托卡马克中的径向电流减轻了颗粒收缩

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A dominant particle pinch is observed in Ohmic plasmas of the electric tokamak (ET) associated with enhanced poloidal rotation. The density increases dramatically, with strong profile peaking. In pinch dominated particle transport, the pinch velocity profile is determined from the Thomson density profile data. The pinching rate is controlled with soft gas puffing. Hard puffing produces inverted density profiles that do not pinch due to the MHD instabilities. The build-up time of the density is typically 1 s. Due to density accumulation in the absence of significant core fuelling, the characteristic Troyon limit (beta(N) = beta aB/I similar to 3, %, m, T, MA) is reached even in Ohmic plasmas. Density ramps are terminated by internal disruptions due to beta collapse without any significant radiative energy loss. The loop voltage remains low (0.4 V) during the ramp. Prior to, and during the ramp, we observe no reduction in the electrostatic fluctuations in the present experiments. Electrode biasing, using the J x B force, shows that the density accumulation can be reduced and even stopped through slowing the poloidal rotation (reducing the magnitude of the background negative E,). This observation is consistent with the presence of a 'viscous' pinch driven by the dominance of the radial electric field through ion mobility. Other neoclassical pinch mechanisms (i.e. Ware and thermoelectric) contribute to the density accumulation and are shown to be secondary effects as revealed by the radial current modulation effects. The easily achieved thermal Mach numbers are +/- 0.15 for poloidal and +/- 0.2 for toroidal rotation using the present biaser. There is no significant spontaneous toroidal rotation. The spontaneous poloidal rotation seen in Ohmic plasmas has the thermal Mach number M-p similar to 0.15 across the measured profile where r/a > 0.5. This rotation is sufficient to account for the observed radial pinch velocity.
机译:在电动托卡马克(ET)的欧姆等离子体中观察到与增强的极向旋转相关的主要颗粒收缩。密度急剧增加,轮廓峰强烈。在收缩控制的粒子传输中,收缩速度曲线是根据Thomson密度曲线数据确定的。用软气吹胀来控制收缩速率。硬吹会产生倒置的密度分布,不会因MHD不稳定性而收缩。密度的建立时间通常为1 s。由于在没有明显堆芯燃料的情况下密度累积,即使在欧姆等离子体中也达到了特征Troyon极限(beta(N)= beta aB / I类似于3,%,m,T,MA)。密度梯度由于β塌陷而被内部破坏终止,而没有任何明显的辐射能损失。在斜坡期间,环路电压保持较低(0.4 V)。在斜升之前和期间,在本实验中我们没有观察到静电波动的减少。使用J x B力进行电极偏压显示,可以通过降低极向旋转速度(减小背景负值E1的大小)来减少甚至停止密度累积。该观察结果与通过离子迁移率的径向电场的主导驱动的“粘性”收缩的存在是一致的。其他新古典的收缩机制(即Ware和热电)有助于密度累积,并显示为次要效应,如径向电流调制效应所揭示。使用本发明的偏置器,极易实现的热马赫数(对于极数)为+/- 0.15,对于环形旋转为+/- 0.2。没有明显的自发环形旋转。在欧姆等离子体中观察到的自发性胶体旋转具有热马赫数M-p,在整个测量轮廓上,r / a> 0.5时,其热马赫数类似于0.15。该旋转足以说明观察到的径向收缩速度。

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