对 SPARC 托卡马克进行全时变 SOLPS-ITER 模拟:粒子和分流器条件控制的致动器设计

Jae-Sun Park, Jeremy D Lore, Matthew L Reinke, Adam Q. Kuang, Sebastian De Pascuale, Alexander J Creely
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摘要

本文介绍了在 SPARC 托卡马克中应用全时变 SOLPS-ITER 模拟进行致动器设计的情况。这项研究同时采用了中性求解器 EIRENE 模块和 B2.5 等离子体模块的时变模式。这与大多数 SOLPS 模拟不同,后者侧重于稳态求解,中性分布的演化没有任何时间限制,或者时间步长为 1-10-3 秒,比流体等离子体时间步长大几个数量级。与时间相关的 EIRENE 在固定的 B2.5 背景下进行了测试,并在简化的泵室几何中与基于电导的简单模型进行了比较。这一比较旨在验证由随时间变化的 EIRENE 得出的中性弛豫时间尺度的可靠性。随后,在现实的几何形状中进行了完全的时变模拟,蒙特卡洛中性时间步与等离子体流体时间步同步。考虑了代码的数值设置,包括相对时间步长和用于存储蒙特卡洛粒子信息的普查数据大小。然后,全时相关模拟被应用于 SPARC 百叶窗结构的设计,该结构通过调节从分流器到泵的中性传导来影响分流器等离子体参数。等离子体和中性点参数的响应是在一定的时间尺度上捕捉到的,这使得执行器的设计能够考虑随时间变化的控制能力。研究发现,改变百叶窗的不透明性,其效果等同于通过泵驱动来改变气体吞吐量。因此,可以从两个致动器获得等效的分流器等离子条件,而泵和分流器中的中性压力分布则因每个致动器而异。
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Full time-dependent SOLPS-ITER simulation of the SPARC tokamak: Actuator design for particle and divertor condition control
This paper presents the application of full time-dependent SOLPS-ITER simulations for actuator design in the SPARC tokamak. This study employs both the EIRENE module, a neutral solver, and the B2.5 plasma module in a time-dependent mode. This is in contrast to most SOLPS simulations, which focus on steady-state solutions, where the neutral distribution is evolved without any time limit or for a time step of 1·10-3 second, which is several orders of magnitude larger than the fluid plasma time step. The time-dependent EIRENE was tested with a fixed B2.5 background and compared with a simple conductance based model in a simplified pump chamber geometry. This comparison aimed to verify the reliability of the neutral relaxation timescale derived from the time-dependent EIRENE. Subsequently, a full time-dependent simulation was performed in a realistic geometry, with the Monte-Carlo neutral time step synchronized with the plasma fluid time step. The numerical setup of the code, including relative time steps and the size of the census data used to store Monte-Carlo particle information is considered. The full-time dependent simulations are then applied to inform the design of the SPARC louver structure, which affects divertor plasma parameters by regulating the neutral conductance from the divertor to the pump. The response of the plasma and neutral parameters was captured on a timescale that enables the design of the actuator to consider time-dependent control capability. It was found that changing the louver opacity has an equivalent effect as varying the gas throughput via puff actuation. Therefore, equivalent divertor plasma conditions can be obtained from both actuators, while the neutral pressure distribution in the pump and divertor differs for each actuator.
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