IJFP-2018-0015 - Robust Control Design for an Inlet Metering Velocity Control System of a Linear Hydraulic Actuator

IF 0.7 Q4 ENGINEERING, MECHANICAL International Journal of Fluid Power Pub Date : 2020-06-24 DOI:10.13052/ijfp1439-9776.2113
H. Ali, R. Fales
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引用次数: 7

Abstract

In this paper, we consider a hydraulic system in which the velocity is controlled using an inlet-metered pump. The flow of the inlet-metered pump is controlled using an inlet metering valve that is placed upstream from a fixed displacement check valve pump. Placing the valve upstream from the pump reduces the energy losses across the valve. The multiplicative uncertainty associated with uncertain parameters in an inlet metering velocity control system is studied. Six parameters are considered in the uncertainty analysis. Four of the parameters are related to the valve dynamics which are the natural frequency, the damping ratio, the static gain, and the time delay. The other two parameters are the discharge coefficient and the fluid bulk modulus. Performance requirements for the system are described in the frequency domain. Frequency domain analysis is used to determine if the closed-loop velocity control system has robust performance. The time response of the nominal system with PID and H∞ controllers were found to be similar. The H∞ controller was found to have the advantages of robust performance when considering the parametric uncertainty while not requiring integral control as in the PID control system. The PID system did not achieve robust performance.
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IJFP-2018-0015-线性液压执行器入口计量速度控制系统的鲁棒控制设计
在本文中,我们考虑了一个使用入口计量泵控制速度的液压系统。入口计量泵的流量使用设置在固定排量止回阀泵上游的入口计量阀来控制。将阀门放置在泵的上游可以减少整个阀门的能量损失。研究了入口计量速度控制系统中与不确定参数相关的乘性不确定性。不确定性分析考虑了六个参数。其中四个参数与阀门动力学有关,即固有频率、阻尼比、静态增益和时间延迟。另外两个参数是流量系数和流体体积模量。在频域中描述了系统的性能要求。频域分析用于确定闭环速度控制系统是否具有鲁棒性能。采用PID和H∞控制器的标称系统的时间响应相似。在考虑参数不确定性的情况下,H∞控制器具有鲁棒性的优点,而不像PID控制系统那样需要积分控制。PID系统没有实现稳健的性能。
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来源期刊
International Journal of Fluid Power
International Journal of Fluid Power ENGINEERING, MECHANICAL-
CiteScore
1.60
自引率
0.00%
发文量
16
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