Shaping the edge radial electric field to create shearless transport barriers in tokamaks

L.A. Osorio-Quiroga , M. Roberto , I.L. Caldas , R.L. Viana , Y. Elskens
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Abstract

In tokamak-confined plasmas, particle transport can be reduced by modifying the radial electric field. In this paper, we investigate the influence of both a well-like and a hill-like shaped radial electric field profile on the creation of shearless transport barriers (STBs) at the plasma edge, which are a type of barrier that can prevent chaotic transport and are related to the presence of extreme values in the rotation number profile. For that, we apply an E×B drift model to describe test particle orbits in large aspect-ratio tokamaks. We show how these barriers depend on the electrostatic fluctuation amplitudes and on the width and depth (height) of the radial electric field well-like (hill-like) profile. We find that, as the depth (height) increases, the STB at the plasma edge becomes more resistant to fluctuations, enabling access to an improved confinement regime that prevents chaotic transport. We also present parameter spaces with the radial electric field parameters, indicating the STB existence for several electric field configurations at the plasma edge, for which we obtain a fractal structure at the barrier/non-barrier frontier, typical of quasi-integrable Hamiltonian systems.

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整形边缘径向电场以在托卡马克中产生无剪切传输势垒
在托卡马克约束等离子体中,可以通过改变径向电场来减少粒子输运。在本文中,我们研究了井状和山状径向电场剖面对等离子体边缘无剪切传输势垒(STBs)产生的影响,STBs是一种可以防止混沌传输的势垒,与旋转数剖面中极值的存在有关。为此,我们应用E×B漂移模型来描述大长宽比托卡马克中的测试粒子轨道。我们展示了这些势垒如何取决于静电波动幅度以及径向电场阱状(山丘状)轮廓的宽度和深度(高度)。我们发现,随着深度(高度)的增加,等离子体边缘的STB变得更能抵抗波动,从而能够获得防止混乱传输的改进的限制机制。我们还提出了具有径向电场参数的参数空间,表明等离子体边缘的几种电场配置的STB存在,对于这些配置,我们在势垒/非势垒边界获得了分形结构,这是典型的拟可积哈密顿系统。
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