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Transport properties of a hollow pressure filament in a magnetized plasma

机译:空心压力灯丝在磁化等离子体中的传输特性

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A theoretical and numerical modeling study is made of a novel heating configuration recently implemented in the Large Plasma Device at the University of California, Los Angeles. The injection of an electron beam from a masked LaB6 cathode into a magnetized plasma results in a hollow, cylindrical filament of elevated temperature. The hot cylindrical ring has an axial extent that is about one-thousand times larger than its thickness, and the peak temperature can be ten times larger than that of the surrounding plasma. The simultaneous positive and negative radial pressure gradients provide an ideal platform for the investigation of transport phenomena of contemporary interest, including avalanches [Van Compernolle et al., Phys. Rev. E 91, 031102 (2015)] and nonlocal transport. The present study delineates both the parameter regimes achievable by classical transport and the linear stability of the self-consistent profiles, including temperature and density gradients. An avalanche model is developed based on the self-consistent evolution of drift-wave eigenfunctions in nonlinearly modified profiles of electron temperature and plasma density. Published by AIP Publishing.
机译:对最近在加利福尼亚大学洛杉矶分校的大型等离子设备中实施的新型加热配置进行了理论和数值建模研究。将电子束从被掩盖的LaB6阴极注入到磁化的等离子体中,会导致空心的圆柱形灯丝温度升高。热圆柱环的轴向范围约为其厚度的一千倍,并且峰值温度可以比周围等离子体的峰值温度大十倍。同时的正负径向压力梯度为研究包括雪崩在内的当代人们感兴趣的运输现象提供了一个理想的平台[Van Compernolle et al。,Phys。 E 91,031102(2015)版)和非本地运输。本研究描述了经典输运可达到的参数范围和自洽分布的线性稳定性,包括温度和密度梯度。基于电子温度和等离子体密度的非线性修改曲线中漂移波本征函数的自洽演变,建立了雪崩模型。由AIP Publishing发布。

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