Finite Element Approximation and Input Parameterization for the Optimal Control of Current Profiles in Tokamak Plasmas

Zhigang Ren, Chao Xu, Qun Lin, R. Loxton, K. Teo, Jian Chu
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引用次数: 2

Abstract

Abstract In this paper, we consider a simplified dynamic model describing the evolution of the poloidal flux during the ramp-up phase of the tokamak discharge. We first use the Galerkin method to obtain a finite-dimensional model based on the original PDE system. Then, we apply the control parameterization method to obtain an approximate optimal parameter selection problem governed by a lumped parameter system. Computational optimization techniques are subsequently deployed to solve this approximate problem. To validate our approach, we perform numerical simulations using experimental data from the DIII-D tokamak in San Diego, California. The results show that our numerical optimization procedure can generate optimal controls that drive the current profile to within close proximity of the desired profile at the terminal time, thus demonstrating that the Galerkin and control parameterization methods are effective tools for current profile control in tokamak plasmas.
托卡马克等离子体电流分布最优控制的有限元逼近和输入参数化
摘要本文考虑了一个简化的动态模型来描述托卡马克放电上升阶段的极流通量演变。我们首先利用伽辽金方法在原PDE系统的基础上得到一个有限维的模型。然后,应用控制参数化方法,得到了一个集总参数系统的近似最优参数选择问题。计算优化技术随后被部署来解决这个近似问题。为了验证我们的方法,我们使用加利福尼亚州圣地亚哥的DIII-D托卡马克的实验数据进行了数值模拟。结果表明,我们的数值优化程序可以产生最优控制,使电流剖面在终端时刻接近所需剖面,从而表明伽辽金和控制参数化方法是托卡马克等离子体电流剖面控制的有效工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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