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3D structure and dynamics of filaments in turbulence simulations of WEST diverte plasmas

机译:WEST偏向等离子体的湍流模拟中的灯丝3D结构和动力学

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We study the effect of a diverted magnetic geometry on edge plasma turbulence, focusing on the three-dimensional structure and dynamics of filaments, also called blobs, in simulations of the WEST tokamak, featuring a primary and secondary X-point. For this purpose, in addition to classical analysis techniques, we apply here a novel fully 3D blob recognition and tracking (BRAT) algorithm, allowing for the first time to resolve the three-dimensional structure and dynamics of the blobs in a turbulent 3D plasma featuring a realistic magnetic geometry. The results are tested against existing theoretical scalings of blob velocity (Myra et al 2006 Phys. Plasmas). The complementary analysis of the 3D structure of the filaments shows how they disconnect from the divertor plate in the vicinity of the X-points, leading to a transition from a sheath-connected regime to the ideal-interchange one. Furthermore, the numerical results show non-negligible effects of the turbulent background plasma: approximately half of the detected filaments are involved in mutual interactions, eventually resulting in negative radial velocities, and a fraction of the filaments is generated by turbulence directly below the X-point.
机译:在WEST托卡马克的模拟中,我们研究了偏向的磁几何形状对边缘等离子体湍流的影响,重点研究了灯丝的三维结构和动力学(也称为斑点),其主要和次要X点为特征。为此,除经典分析技术外,我们在此处应用一种新颖的全3D斑点识别和跟踪(BRAT)算法,首次允许在湍流3D等离子体中解析斑点的三维结构和动力学特性,现实的磁性几何。针对现有的斑点速度理论标度对结果进行了测试(Myra等人,2006年,Phys.Plasmas)。细丝的3D结构的互补分析表明,它们如何在X点附近与分流板断开连接,从而导致从护套连接状态过渡到理想互换状态。此外,数值结果显示了湍流背景等离子体的影响不可忽略:大约一半的检测到的细丝参与了相互作用,最终导致径向速度为负,并且一部分细丝是由X-正下方的湍流产生的点。

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