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Improving the Performance of A Continuous Stirred Tank Reactor using Moving Horizon State Estimation and Model Predictive Control

机译:使用移动地平线状态估计提高连续搅拌罐反应器的性能和模型预测控制

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摘要

Since chemical reactors are utilized to produce specific and valuable products, concentration of products should be regulated at a specified level. As a disturbance input, a change in the inlet concentrations can vary the product concentration. So, in order to regulate the product concentration, the inlet concentrations and the product concentration should be measured. However, measurement of concentration encounters some problems such as high cost and time delay. For compensation of these failures, estimation of concentration has been proposed. In this work, the inlet concentration and the product concentration of a continuous stirred-tank reactor (CSTR) are estimated based on the moving horizon state estimation (MHSE), and the product concentration is regulated based on the model predictive control (MPC). Simulation results indicate that the proposed strategy improves the performance of the CSTR compared with the method in which the inlet concentration is not estimated.
机译:由于使用化学反应器来产生特异性和有价值的产品,因此应在特定水平下调节产品的浓度。作为扰动输入,入口浓度的变化可以改变产物浓度。因此,为了调节产品浓度,应测量入口浓度和产物浓度。然而,浓缩的测量遇到了一些问题,例如高成本和时间延迟。为了补偿这些故障,已经提出了浓度的估计。在该工作中,基于移动地平线状态估计(MHSE)估计入口浓度和连续搅拌罐反应器(CSTR)的产物浓度,并且基于模型预测控制(MPC)调节产品浓度。模拟结果表明,与未估计入口浓度的方法相比,该策略提高了CSTR的性能。

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