气动加载系统具有时滞、时变及强非线性等特点,为了提高气动加载系统的控制精度,克服传统PI控制算法的不足,提出一种气动压力加载系统的模糊自适应逆控制方案。利用模糊辨识理论对气动加载系统进行离线逆建模,得到初始逆模型,并将该初...气动加载系统具有时滞、时变及强非线性等特点,为了提高气动加载系统的控制精度,克服传统PI控制算法的不足,提出一种气动压力加载系统的模糊自适应逆控制方案。利用模糊辨识理论对气动加载系统进行离线逆建模,得到初始逆模型,并将该初始逆模型作为初始控制器,控制气动加载系统的输出压力,运行过程中采用最小方均根(Least mean square,LMS)滤波算法在线修正控制器的参数。基于VC++6.0软件开发平台设计系统实时控制程序,在一套电气比例压力阀控气动加载系统上进行试验研究。通过与PI控制算法、模糊比例积分微分(Proportion,integration,differentiation,PID)控制算法进行比较,结果表明设计的气动加载系统控制器控制精度高、响应速度快、抗扰能力强。展开更多
Pneumatic proportional control servo regulator is the core component of a pneumatic-loading experimental system,which is very important in solving the overcharging problem.However,previous research on control of pneum...Pneumatic proportional control servo regulator is the core component of a pneumatic-loading experimental system,which is very important in solving the overcharging problem.However,previous research on control of pneumatic proportional regulator in a pneumatic-loading experimental system led to failure in analysis of the influence of opening error of the switch regulator because it did not analyze the regulator basic working principle and process.The traditional control method cannot fully solve the overcharging problem nor ensure adequate control performance of the regulator.After seriously studying the working principle and key mechanical parameters of the valve,a fuzzy parameter-adaptive controller is designed by introducing a linear mixture of the pressure and opening errors of the switch regulator to reduce pressure overshoot and optimize its control performance.According to the fuzzy-control strategy based on the working characteristics and mechanical parameters of the valve,the overshoot phenomenon of the pneumatic-loading system is solved,and the pressure overshoot is eliminated.The error of the output air pressure of the regulator is 1.24%,which is small.The adjustable pressure range of the regulator is 0.2–0.6 MPa.The maximum deviation is 0.012 MPa.The linearity of the case is 1.34%F.S.展开更多
文摘气动加载系统具有时滞、时变及强非线性等特点,为了提高气动加载系统的控制精度,克服传统PI控制算法的不足,提出一种气动压力加载系统的模糊自适应逆控制方案。利用模糊辨识理论对气动加载系统进行离线逆建模,得到初始逆模型,并将该初始逆模型作为初始控制器,控制气动加载系统的输出压力,运行过程中采用最小方均根(Least mean square,LMS)滤波算法在线修正控制器的参数。基于VC++6.0软件开发平台设计系统实时控制程序,在一套电气比例压力阀控气动加载系统上进行试验研究。通过与PI控制算法、模糊比例积分微分(Proportion,integration,differentiation,PID)控制算法进行比较,结果表明设计的气动加载系统控制器控制精度高、响应速度快、抗扰能力强。
基金supported by the China Postdoctoral Science Foundation(Grant No. 2019M660392)the Open Research Project of the State Key Laboratory of Media Convergence and Communication, Communication University of China (Grant No. SKLMCC2020KF002)the National Key Research and Development Project (Grant Nos. 2019YFC0121700,2021YFC0122502)
文摘Pneumatic proportional control servo regulator is the core component of a pneumatic-loading experimental system,which is very important in solving the overcharging problem.However,previous research on control of pneumatic proportional regulator in a pneumatic-loading experimental system led to failure in analysis of the influence of opening error of the switch regulator because it did not analyze the regulator basic working principle and process.The traditional control method cannot fully solve the overcharging problem nor ensure adequate control performance of the regulator.After seriously studying the working principle and key mechanical parameters of the valve,a fuzzy parameter-adaptive controller is designed by introducing a linear mixture of the pressure and opening errors of the switch regulator to reduce pressure overshoot and optimize its control performance.According to the fuzzy-control strategy based on the working characteristics and mechanical parameters of the valve,the overshoot phenomenon of the pneumatic-loading system is solved,and the pressure overshoot is eliminated.The error of the output air pressure of the regulator is 1.24%,which is small.The adjustable pressure range of the regulator is 0.2–0.6 MPa.The maximum deviation is 0.012 MPa.The linearity of the case is 1.34%F.S.