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3D numerical simulations of energy transport in the stochastic boundary of TEXTOR-DED with a finite differencemethod

机译:具有有限差分法的TEXTOR-DED随机边界中能量传输的3D数值模拟

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The effect of magnetic field line ergodization that eliminates magnetic surfaces (either by a resonant magnetic perturbation like in TEXTOR-DED or by intrinsic plasma effects like in W7-X) imposes the need for plasma transport models being able to describe this properly. To handle the ergodicity the concept of local magnetic coordinates allowing a correct discretization of the transport equations with minimized numerical errors is used. For the simulation of plasma transport in perturbed volume, a numerical method based on the finite difference concept has been developed, using a custom-tailored unstructured grid in local magnetic coordinates. This grid is generated by field line tracing to guarantee complete separation of the large parallel transport along B and that perpendicular to B and the ergodicity of the magnetic field does not limit applicability of the method in contrast to the methods based on finite volume ansatz. Perpendicular and parallel fluxes can be effectively separated in our approach and treated independently in the numerical method which has been implemented in the FINDIF code. The finite difference code FINDIF is used to investigate the energy transport in the complex 3D TEXTOR-DED tokamak geometry, where the plasma structures and transport are closely related to the structure of the magnetic field lines. Numerical grids have been prepared in order to simulate 12/4 and 6/2 modes of the DED operation, respectively. In particular, the question, what is the role of long and short magnetic field lines in the heat transfer from the core plasma to divertor surface, is addressed. Simulation results are compared with experimentally determined temperature profiles and heat fluxes at the target.
机译:消除磁力表面的磁场线的变质作用(通过像TEXTOR-DED这样的共振磁扰动或像W7-X这样的固有等离子体效应)消除了对等离子体传输模型的需求,该模型必须能够正确地描述这一点。为了处理遍历性,使用局部磁坐标的概念,该坐标允许以最小的数值误差正确地离散化输运方程。为了模拟在扰动体积中的等离子体传输,已经开发了一种基于有限差分概念的数值方法,该方法在局部磁坐标中使用定制的非结构化网格。该网格是通过场线跟踪生成的,以确保沿B的大平行传输和与B垂直的大平行传输的完全分离,与基于有限体积ansatz的方法相比,磁场的遍历性不会限制该方法的适用性。垂直通量和平行通量可以用我们的方法有效地分离,并可以使用FINDIF代码中实现的数值方法独立处理。有限差分码FINDIF用于研究复杂3D TEXTOR-DED托卡马克几何形状中的能量传输,其中等离子结构和传输与磁场线的结构密切相关。已经准备好数字网格以便分别模拟DED操作的12/4和6/2模式。特别要解决的问题是,长短磁场线在从纤芯等离子体到偏滤器表面的热传递中起什么作用。将模拟结果与实验确定的目标温度曲线和热通量进行比较。

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