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Confinement physics study in a small low aspect ratio helical device: CHS

机译:小型低纵横比螺旋装置:CHS中的局限物理研究

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Variation of the plasma position relative to the centre of the helical coil winding is a very effective means of controlling the MHD stability and the trapped particle confinement in heliotron/torsatron systems, but improving one of these two characteristics with this parameter simul- taneously has a detrimental effect on the other. The inward shifted configuration is favourable for drift orbit optimization but is predicted to be unstable according to the Mercier criterion. Various physics problems, such as electric field structure, plasma rotation and MHD phenomena, have been studied in the Compact Helical System (CHS) with a compromise intermediate position. With this standard configuration, CHS has yielded experimental results that contribute to the understanding of general toroidal confinement physics and low aspect ratio helical systems. In the recent experiments, it was found that a wide range of inward shifted configurations give stable plasma discharges without any restriction to the special pressure profile. Such an enhanced range of operation made it possible to study experimentally the drift orbit optimized configuration in heliotron/torsatron systems. The effect of configuration improvement was studied with plasmas in a low collisionality regime.
机译:相对于螺旋线圈绕组中心的等离子体位置变化是控制MHD稳定性和日光加速器/陀螺仪系统中被俘获粒子限制的非常有效的方法,但是使用此参数同时改善这两个特性之一具有对其他有害。向内偏移的构型有利于优化漂移轨道,但根据Mercier准则,预计向内不稳定。在紧凑螺旋系统(CHS)中,在中间位置处于折衷状态的情况下,已研究了各种物理问题,例如电场结构,等离子体旋转和MHD现象。通过这种标准配置,CHS产生了实验结果,有助于理解一般的环形约束物理和低纵横比的螺旋系统。在最近的实验中,发现大范围的向内移动构型可提供稳定的等离子体放电,而对特殊压力曲线没有任何限制。如此大的操作范围使得有可能通过实验研究日光加速器/陀螺仪系统中的漂移轨道优化配置。在低碰撞性条件下用等离子体研究了结构改善的效果。

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