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Probability-based robust optimal PI control for shell gasifier in IGCC power plants

机译:IGCC电厂壳式气化炉基于概率的鲁棒最优PI控制

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In order to achieve a robust control performance of the gasifier which has dynamic characteristics of multi-variable coupling, large inertia and multi-disturbance, an optimization method for decentralized PID/PI controller parameters based on probabilistic robustness is developed. First, the control structure and target of the Shell gasifier is analyzed and a crude model is introduced. Model uncertainties and other detailed industrial requirements could be considered at the same time in the method. The probability of satisfaction with the dynamic performance is computed statistically, and then it is presented as the objective function to optimize the controller parameters based on genetic algorithm. The Monte Carlo experiment was applied to test the robustness of the control system. In comparison with the tuning methods based on internal model control (IMC) and the optimization algorithm under the nominal model, simulation results show the method could exploit the potentialities of PID/PI controllers in a maximal probability.
机译:为了实现具有多变量耦合,大惯量和多扰动动态特性的气化炉鲁棒控制性能,提出了一种基于概率鲁棒性的分散式PID / PI控制器参数优化方法。首先,对壳牌气化炉的控制结构和目标进行了分析,并提出了一个粗模型。该方法可以同时考虑模型不确定性和其他详细的工业要求。统计计算对动态性能的满意概率,然后将其作为基于遗传算法优化控制器参数的目标函数。蒙特卡罗实验用于测试控制系统的鲁棒性。与基于内部模型控制(IMC)的调整方法和名义模型下的优化算法相比,仿真结果表明该方法可以最大程度地利用PID / PI控制器的潜力。

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