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首页> 外文期刊>Nuclear Materials and Energy >Plasma edge simulations including realistic wall geometry with SOLPS-ITER
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Plasma edge simulations including realistic wall geometry with SOLPS-ITER

机译:等离子体边缘模拟,包括Solps-Iter的现实墙面几何

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In plasma edge simulations using the SOLPS-ITER code, the simulated Scrape-Off Layer plasma domain has historically been restricted to magnetic flux surfaces contacting divertor targets at both ends. We present here a newly developed numerical solver for the B2.5 plasma solver in SOLPS-ITER, allowing the numerical grid to be extended to the true vessel boundaries. The new, unstructured Finite Volume scheme can deal with arbitrary grids and magnetic topologies in the 2D poloidal plane. It includes a correct numerical treatment of possibly misaligned faces and cells w.r.t. the magnetic field to cope with, for example, strong divertor target shaping. The solver combines the benefits of an accurate numerical separation of fast parallel and slow radial transport, with a realistic description of the wall geometry, and the possibility of local grid refinement to capture sharp features in the Scrape-Off Layer flows. Generalized sheath boundary conditions are presented that can be imposed at all vessel boundaries, removing an important modeling uncertainty related to the specification ofad hocdecay length boundary conditions at the outer flux surfaces. The resulting model is applied to an AUG single-null case, a standard benchmark case for SOLPS-ITER. We analyze in particular the impact of the extended plasma model on upstream and divertor plasma conditions, and the improved predictions of heat and particle loads to the main chamber wall. The extended solver also allows for a much improved qualitative agreement between fluid and kinetic neutral simulations, because the fluid neutral solution, which is obtained on the plasma grid, now also extends to the true main chamber and divertor vessel boundaries.
机译:在使用SOLPS-ITER码的等离子体边缘模拟中,模拟的刮擦层等离子体域历来被限制在两端接触偏转器靶的磁通表面。我们在这里介绍了Solps-erter中B2.5等离子求解器的新开发的数值求解器,允许数控网格扩展到真正的船只边界。新的非结构化有限卷方案可以在2D面波形平面中处理任意网格和磁性拓扑。它包括可能未对准的面部和细胞的正确数值处理。磁场以应对,例如,强偏移器靶成形。求解器结合了精确的数字分离快速平行和慢速传输的优点,具有壁几何形状的实际描述,以及局部网格精制的可能性,以捕获刮削层流中的尖锐特征。呈现的广义鞘边界条件可以施加在所有血管边界,除去与外部通量表面的Hocdecay长度边界条件的规范相关的重要建模不确定性。生成的模型应用于APAL单无效,Solps-erter的标准基准情况。我们特别地分析了扩展等离子体模型对上游和偏移体血浆条件的影响,以及对主室壁的热和颗粒载荷的改进预测。扩展求解器还允许在流体和动态中性模拟之间进行大大改进的定性协议,因为在等离子体网格上获得的流体中性溶液现在也延伸到真正的主室和转移血管边界。

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