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Optimized feedback control system modeling of resistive wall modes for burning plasmas experiments.

机译:用于燃烧等离子体实验的电阻壁模式的优化反馈控制系统建模。

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摘要

A numerical study of active feedback control system performance and optimization for tokamak Resistive Wall Modes (RWM) is the subject of this thesis. The ability to accurately model and predict the performance of an active MHD control systems is critical to present and future advanced confinement scenarios and fusion reactor design studies. The computer code VALEN has been designed to calculate the performance of a MHD feedback control system in an arbitrary geometry. The simulation of realistic effects in feedback systems, such as noise, time delays and filters is of particular importance. In this work realistic measurement noise analysis was added to VALEN and used to design the RWM feedback control amplifier power level for the DIII-D experiment. Modern control theory based on a state-space formulation obtained from VALEN was applied to design an Optimal Controller and Observer based on a reduced VALEN model. A quantitative low order model of the VALEN state space was derived from the high dimensional intrinsic state space structure of the VALEN using methods of a balanced realization and matched DC gain truncation. These techniques for the design of an optimal controller and optimal observer were applied to models of the DIII-D and ITER experiments and showed an order of magnitude reduction of the required control coil current and voltage in the presence of white noise as compared to a traditional, classical PID controller. This optimal controller for the ITER burning plasma experiment was robust from the no-wall pressure limit to a pressure value well above those achieved with a classical PID controller and could approach the ideal wall limit.
机译:托卡马克电阻墙模式的主动反馈控制系统性能和优化的数值研究是本文的主题。准确建模和预测有源MHD控制系统性能的能力对于当前和未来的高级约束方案和聚变反应堆设计研究至关重要。计算机代码VALEN旨在计算MHD反馈控制系统在任意几何形状中的性能。在反馈系统中仿真现实效果(例如噪声,时间延迟和滤波器)尤为重要。在这项工作中,将真实的测量噪声分析添加到VALEN中,并用于设计DIII-D实验的RWM反馈控制放大器功率电平。运用基于VALEN的状态空间公式的现代控制理论,设计了基于简化VALEN模型的最优控制器和观测器。利用平衡实现和匹配直流增益截断的方法,从VALEN的高维固有状态空间结构中推导出VALEN状态空间的定量低阶模型。这些用于设计最佳控制器和最佳观察器的技术已应用于DIII-D和ITER实验的模型,与传统技术相比,显示了在存在白噪声的情况下所需控制线圈电流和电压的数量级降低。 ,经典的PID控制器。这种用于ITER燃烧等离子体实验的最佳控制器在从无壁压力限制到远高于经典PID控制器所能达到的压力值的范围内都非常可靠,并且可以接近理想的壁限制。

著录项

  • 作者单位

    Columbia University.;

  • 授予单位 Columbia University.;
  • 学科 Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 131 p.
  • 总页数 131
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 等离子体物理学;
  • 关键词

  • 入库时间 2022-08-17 11:40:29

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