An Adaptive Robust Controller for Hydraulic Robotic Manipulators with a Flow-Mapping Compensator

IF 0.7 Q4 ENGINEERING, MECHANICAL International Journal of Fluid Power Pub Date : 2021-05-31 DOI:10.13052/IJFP1439-9776.2225
Fu Zhang, Jun-hui Zhang, Bing Xu, Huaizhi Zong
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引用次数: 0

Abstract

Proportional directional control valves have flexible control functions for the control of various hydraulic manipulators. It is foreseeable that the application of proportional directional control valves will be further expanded. However, due to its own structure, its important parameter, flow gain, is complex, and it has a complex functional relationship with valve opening and temperature. The variable flow gain reduces the performance of a strictly derived nonlinear controller. Therefore, it is necessary to consider the nonlinearity of flow gain in the controller design. In order to solve the above problems, this paper proposes an adaptive robust controller for a hydraulic manipulator with a flow-mapping compensator, which takes into account the nonlinear flow gain and improves the performance of the nonlinear controller. First, we established an adaptive robust controller of the hydraulic manipulator to obtain the load flow of the control input valve. Then, the function of flow gain, input voltage, and temperature are calibrated offline using cubic polynomial, and the flow-mapping compensator is obtained. Finally, we calculate the input voltage based on the flow-mapping compensator and load flow. The flow-mapping compensator further reduces the uncertainty of the model and improves the robustness of the system. By using the proposed controller, the control accuracy of the hydraulic manipulator is significantly improved.
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带流量映射补偿器的液压机器人自适应鲁棒控制器
比例换向阀具有灵活的控制功能,适用于各种液压机械臂的控制。可以预见,比例换向阀的应用将进一步扩大。然而,由于其自身结构的原因,其重要参数流量增益是复杂的,并且与阀门开度和温度有着复杂的函数关系。变流增益降低了严格推导的非线性控制器的性能。因此,在控制器设计中有必要考虑流量增益的非线性。为了解决上述问题,本文提出了一种考虑了非线性流量增益的带流量映射补偿器的液压机械臂自适应鲁棒控制器,提高了非线性控制器的性能。首先,建立了液压机械手的自适应鲁棒控制器,获得了控制输入阀的负载流量;然后,利用三次多项式对流量增益、输入电压和温度的函数进行离线标定,得到流量映射补偿器。最后,基于流映射补偿器和负载潮流计算输入电压。流映射补偿器进一步降低了模型的不确定性,提高了系统的鲁棒性。采用该控制器,可显著提高液压机械手的控制精度。
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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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