主要讨论和研究了高纯度热耦合精馏塔的优化控制问题。针对一个非线性的对象模型—苯-甲苯物系模型提出了基于非线性过程模型控制(NPM C,N on linear P rocess M odel Contro l)的控制方案,并与常规的P ID控制方案作了比较。结果表明:...主要讨论和研究了高纯度热耦合精馏塔的优化控制问题。针对一个非线性的对象模型—苯-甲苯物系模型提出了基于非线性过程模型控制(NPM C,N on linear P rocess M odel Contro l)的控制方案,并与常规的P ID控制方案作了比较。结果表明:非线性过程模型控制无论是在控制精度还是在响应时间上都优于传统的控制方案。展开更多
A modified Strong Tracking Filter (STF) is used to develop a new approach to sensor fault tolerant control. Generic Model Control (GMC) is used to control the nonlinear process while the process runs normally becaus...A modified Strong Tracking Filter (STF) is used to develop a new approach to sensor fault tolerant control. Generic Model Control (GMC) is used to control the nonlinear process while the process runs normally because of its robust control performance. If a fault occurs in the sensor, a sensor bias vector is then introduced to the output equation of the process model. The sensor bias vector is estimated on line during every control period using the STF. The estimated sensor bias vector is used to develop a fault detection mechanism to supervise the sensors. When a sensor fault occurs, the conventional GMC is switched to a fault tolerant control scheme, which is, in essence, a state estimation and output prediction based GMC. The laboratory experimental results on a three tank system demonstrate the effectiveness of the proposed Sensor Fault Tolerant Generic Model Control (SFTGMC) approach.展开更多
文摘主要讨论和研究了高纯度热耦合精馏塔的优化控制问题。针对一个非线性的对象模型—苯-甲苯物系模型提出了基于非线性过程模型控制(NPM C,N on linear P rocess M odel Contro l)的控制方案,并与常规的P ID控制方案作了比较。结果表明:非线性过程模型控制无论是在控制精度还是在响应时间上都优于传统的控制方案。
基金the National Natural Science Foundationof China!( No. 697740 2 2 ) the State High-TechDevelopments Plan! ( 863 -5 11-84
文摘A modified Strong Tracking Filter (STF) is used to develop a new approach to sensor fault tolerant control. Generic Model Control (GMC) is used to control the nonlinear process while the process runs normally because of its robust control performance. If a fault occurs in the sensor, a sensor bias vector is then introduced to the output equation of the process model. The sensor bias vector is estimated on line during every control period using the STF. The estimated sensor bias vector is used to develop a fault detection mechanism to supervise the sensors. When a sensor fault occurs, the conventional GMC is switched to a fault tolerant control scheme, which is, in essence, a state estimation and output prediction based GMC. The laboratory experimental results on a three tank system demonstrate the effectiveness of the proposed Sensor Fault Tolerant Generic Model Control (SFTGMC) approach.