托卡马克中央电磁电源模型预测控制

C. Terlizzi, S. Bifaretti, A. Lampasi
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引用次数: 2

摘要

核聚变线圈的电源(PS)系统特别具有挑战性,因为非常高的电流幅度(数万安培),在工业应用中非常不寻常。此外,他们需要保证适当的等离子体起始和几十年的磁约束。为了应对如此苛刻的要求,目前正在研究电压源转换器,重点是转向器托卡马克测试(DTT)设施的中央螺线管PS。本文特别分析了并联h桥DC-DC变换器。所提出的控制策略包括球体解码算法(SDA)模型预测控制(MPC)。这种选择旨在利用MPC的快速瞬态响应和SDA的计算负担减少。为了实现SDA-MPC,首先介绍并验证了所提出的PS的数学模型。然后,给出了SDA-MPC的仿真结果,并将其性能与交错控制策略进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model Predictive Control for Tokamak Central Solenoid Power Supply
Power Supply (PS) systems for nuclear fusion coils are particularly challenging because of the very high current amplitude (tens of kiloamperes), quite unusual in industry applications. Moreover, they need to guarantee a proper plasma initiation and its magnetic confinement for tens of years. To face such demanding requirements, with focus on the Central Solenoid PS of the Divertor Tokamak Test (DTT) facility, Voltage Source Converters are currently under investigation. In particular, this paper analyzes a parallel-connected H-Bridges DC-DC converter. The proposed control strategy consists in a Sphere-Decoding Algorithm (SDA) Model Predictive Control (MPC). This choice aims at exploiting the very fast transient response of MPC and the computational burden reduction of SDA. In order to implement the SDA-MPC, the mathematical model of the presented PS is firstly introduced and validated. Afterwards, the SDA-MPC simulation results are shown and its performance is compared with an interleaved control strategy.
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