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A MODEL PREDICTIVE CONTROLLER BASED ON SUPPORT VECTOR REGRESSION AND GENETIC OPTIMIZATION FOR AN SP-100 SPACE NUCLEAR REACTOR

机译:一种模型预测控制器,基于SP-100空间核反应堆的支持向量回归和遗传优化

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In this work, a model predictive control (MPC) method combined with support vector regression (SVR), is applied to the design of the thermoelectric (TE) power control in the SP-100 space reactor. The future TE power is predicted by using SVR. The objectives of the proposed model predictive controller are to minimize both the difference between the predicted TE power and the desired power, and the variation of control drum angle that adjusts the control reactivity. Also, the objectives are subject to maximum and minimum control drum angle and maximum drum angle variation speed. The genetic algorithm (GA) is used to optimize the model predictive controller. A lumped parameter simulation model of the SP-100 nuclear space reactor is used to verify the proposed controller. The results of numerical simulations to check the performance of the proposed controller show that the TE generator power level controlled by the proposed controller could track the target power level effectively, satisfying all control constraints.
机译:在这项工作中,模型预测控制(MPC)方法与支持向量回归(SVR)相结合,应用于SP-100空间反应器中的热电(TE)功率控制的设计。使用SVR预测未来的TE电源。所提出的模型预测控制器的目的是最小化预测TE功率和所需功率之间的差异,以及调节控制反应性的控制鼓角的变化。而且,目标受到最大和最小控制鼓角度和最大鼓角变异速度。遗传算法(GA)用于优化模型预测控制器。 SP-100核空间反应堆的总体参数仿真模型用于验证所提出的控制器。用于检查所提出的控制器性能的数值模拟结果表明,由所提出的控制器控制的TE发电机功率电平有效地跟踪目标功率水平,满足所有控制约束。

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