论文标题

Lagrangian粒子模型,用于对Tokamaks中颗粒和SPI片段的3D模拟

Lagrangian particle model for 3D simulation of pellets and SPI fragments in tokamaks

论文作者

Samulyak, R., Yuan, S., Naitlho, N., Parks, P. B.

论文摘要

基于拉格朗日粒子代码[R. R. Samulyak,X。Wang,H.-S。 Chen,Lagrangian粒子方法用于可压缩流体动力学,J。Comput。 Phys。,362(2018),1-19]。颗粒代码实现了低磁性雷诺数MHD方程,电子加热的动力学模型,颗粒表面消融模型,一个支持多个电离状态的状态方程,跨磁场的消融材料的Grad-B漂移模型。拉格朗日粒子算法具有高度适应性,能够模拟3D中的大量片段,同时消除了处理Tokamak背景等离子体的数值困难。该代码与球体对称消融流的理论达成了良好的一致性。使用边境代码的磁场中的霓虹灯和氘颗粒的轴对称模拟已与先前的模拟进行了比较,并且也获得了非常好的一致性。本文的主要物理贡献是对3D效应(尤其是Grad-B漂移)对颗粒消融率和消融云特性的影响的详细研究。与轴向对称模拟相比,磁场中消融率的降低较小,因为在存在Grad-B漂移的情况下,消融材料不仅限于狭窄的通道。在Grad-B漂移模型中的各种因素的贡献也已被量化。

A 3D numerical model for the ablation of pellets and shattered pellet injection (SPI) fragments in tokamaks in the plasma disruption mitigation and fueling parameter space has been developed based on the Lagrangian particle code [R. Samulyak, X. Wang, H.-S. Chen, Lagrangian Particle Method for Compressible Fluid Dynamics, J. Comput. Phys., 362 (2018), 1-19]. The pellet code implements the low magnetic Reynolds number MHD equations, kinetic models for the electronic heating, a pellet surface ablation model, an equation of state that supports multiple ionization states, radiation, and a model for grad-B drift of the ablated material across the magnetic field. The Lagrangian particle algorithm is highly adaptive, capable of simulating a large number of fragments in 3D while eliminating numerical difficulties of dealing with the tokamak background plasma. The code has achieved good agreement with theory for spherically symmetric ablation flows. Axisymmetric simulations of neon and deuterium pellets in magnetic fields ranging from 1 to 6 Tesla have been compared with previous simulations using the FronTier code, and very good agreement has also been obtained. The main physics contribution of the paper is a detailed study of the influence of 3D effects, in particular grad-B drift, on pellet ablation rates and properties of ablation clouds. Smaller reductions of ablation rates in magnetic fields compared to axially symmetric simulations have been demonstrated because the ablated material is not confined to narrowing channels in the presence of grad-B drift. Contribution of various factors in the grad-B drift model has also been quantified.

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