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首页> 外文期刊>E3S Web of Conferences >Control of Gas Dehydration Unit Using Multivariable Model Predictive Control (MMPC) to Obtain More Optimal Control Performance
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Control of Gas Dehydration Unit Using Multivariable Model Predictive Control (MMPC) to Obtain More Optimal Control Performance

机译:使用多变量模型预测控制(MMPC)的气体脱水装置控制,以获得更好的控制性能

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A multivariable model predictive control (MMPC) is proposed to improve a control performance in Gas dehydration process. The FOPDT models are used to build an MMPC derived from the selected controlled variables (CV) and manipulated variables (MV). A set point (SP) tracking is used to test the control performance, with proportional-integral controller (PI) as a comparison. As an indicator of the control performance is the integral of square error (ISE). The result is a TITO (two-inputs two-outputs) MMPC, with sweet gas flow rate and heat duty of heater as MVs, and feed pressure and heater temperature as CVs, respectively. In the SP tracking test, MMPC showed better control performance than the PI controller with 11.29% performance improvement (pressure control) and 16.39% (temperature control).
机译:为了提高气体脱水过程的控制性能,提出了一种多变量模型预测控制(MMPC)。 FOPDT模型用于构建从选定的控制变量(CV)和操纵变量(MV)派生的MMPC。设定点(SP)跟踪用于测试控制性能,以比例积分控制器(PI)作为比较。平方误差(ISE)的积分是控制性能的指标。结果是一个TITO(两输入两输出)MMPC,其中甜味气体流量和加热器的热负荷分别为MV,进料压力和加热器温度为CV。在SP跟踪测试中,MMPC的控制性能优于PI控制器,性能提高了11.29%(压力控制)和16.39%(温度控制)。

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