FreeMHD:验证和核查用于导电流的开源、多域、多相求解器

Brian Wynne, Francisco Saenz, Jabir Al-Salami, Yufan Xu, Zhen Sun, Changhong Hu, Kazuaki Hanada, Egemen Kolemen
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引用次数: 0

摘要

托卡马克岔流器区域的热通量极高,可能需要一种替代面向等离子体的固体部件的方法来提取热量并保护周围的墙壁。有人建议将流动液态金属作为替代品,但这会带来更多挑战,需要进行调查和数值模拟。面向等离子体的部件(PFC)最好采用自由表面设计,但必须确保稳定的流动剖面和表面稳定性,以限制与等离子体的不良相互作用。以往的研究主要使用稳态、二维或简化模型来处理内部流动,无法充分模拟自由表面液态金属(LM)实验。因此,最近开发了 FreeMHD,作为一种开源磁流体动力学(MHD)求解器,用于受强磁场作用的自由表面导电流。FreeMHD 求解器计算具有多区域耦合的可压缩自由表面流,用于研究涉及流体和固体域的 MHD 现象。该模型在低磁雷诺数近似条件下利用有限体积 OpenFOAM 框架。使用各种哈特曼数和壁传导比的闭合通道流速度剖面的分析解验证了 FreeMHD。接下来,通过一系列涉及溃坝、三维磁场和自由表面 LM 流的案例,使用实验测量来验证 FreeMHD。这些结果表明,FreeMHD 是在自由表面条件下设计反应器尺度 LM 系统的可靠工具。此外,它还非常灵活,计算成本低廉,可用于求解全三维瞬态 MHD 流。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
FreeMHD: validation and verification of the open-source, multi-domain, multi-phase solver for electrically conductive flows
The extreme heat fluxes in the divertor region of tokamaks may require an alternative to solid plasma-facing components, for the extraction of heat and the protection of the surrounding walls. Flowing liquid metals are proposed as an alternative, but raise additional challenges that require investigation and numerical simulations. Free surface designs are desirable for plasma-facing components (PFCs), but steady flow profiles and surface stability must be ensured to limit undesirable interactions with the plasma. Previous studies have mainly used steady-state, 2D, or simplified models for internal flows and have not been able to adequately model free-surface liquid metal (LM) experiments. Therefore, FreeMHD has been recently developed as an open-source magnetohydrodynamics (MHD) solver for free-surface electrically conductive flows subject to a strong external magnetic field. The FreeMHD solver computes incompressible free-surface flows with multi-region coupling for the investigation of MHD phenomena involving fluid and solid domains. The model utilizes the finite-volume OpenFOAM framework under the low magnetic Reynolds number approximation. FreeMHD is validated using analytical solutions for the velocity profiles of closed channel flows with various Hartmann numbers and wall conductance ratios. Next, experimental measurements are then used to verify FreeMHD, through a series of cases involving dam breaking, 3D magnetic fields, and free-surface LM flows. These results demonstrate that FreeMHD is a reliable tool for the design of LM systems under free surface conditions at the reactor scale. Furthermore, it is flexible, computationally inexpensive, and can be used to solve fully 3D transient MHD flows.
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