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Flow damping due to stochastization of the magnetic field

机译:磁场随机化导致的流量衰减

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摘要

The driving and damping mechanism of plasma flow is an important issue because flow shear has a significant impact on turbulence in a plasma, which determines the transport in the magnetized plasma. Here we report clear evidence of the flow damping due to stochastization of the magnetic field. Abrupt damping of the toroidal flow associated with a transition from a nested magnetic flux surface to a stochastic magnetic field is observed when the magnetic shear at the rational surface decreases to 0.5 in the large helical device. This flow damping and resulting profile flattening are much stronger than expected from the Rechester–Rosenbluth model. The toroidal flow shear shows a linear decay, while the ion temperature gradient shows an exponential decay. This observation suggests that the flow damping is due to the change in the non-diffusive term of momentum transport.
机译:等离子体流的驱动和阻尼机制是一个重要的问题,因为流动剪切对等离子体的湍流有重大影响,而湍流决定了磁化等离子体中的传输。在这里,我们报告了由于磁场的随机化而引起的流量衰减的明确证据。在大型螺旋装置中,当有理表面的磁剪切力减小到0.5时,会观察到与从嵌套磁通量表面过渡到随机磁场相关的环形流动的突然衰减。这种流动阻尼和由此产生的轮廓平坦度比Rechester-Rosenbluth模型的预期要强得多。环形流动切变显示出线性衰减,而离子温度梯度显示出指数衰减。该观察结果表明,流动阻尼是由于动量传递的非扩散项的变化引起的。

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