基于改进型主动干扰抑制控制的机电执行器摩擦补偿方法研究

IF 2.2 3区 工程技术 Q2 ENGINEERING, MECHANICAL Actuators Pub Date : 2023-11-30 DOI:10.3390/act12120445
Pan Zhang, Zhaoyao Shi, Bo Yu
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引用次数: 0

摘要

谐波减速器的摩擦因数会影响机电执行器(EMA)的传动精度。在这项研究中,我们提出了一种基于改进型主动干扰抑制控制(IADRC)的摩擦前馈补偿方法。我们建立了 EMA 的数学模型。得出了摩擦扭矩和扭矩电流之间的关系。此外,还研究了二阶速度环和位置环的复合 ADRC 控制方法,并提出了一种 IADRC 控制方法。开发了真实的 EMA,分析了 EMA 驱动电路和电流采样的工作原理。通过速度阶跃实验和正弦跟踪实验验证了三种方法--PI、ADRC 和 IADRC。在阶跃速度模式下,三种控制模式的时间乘以绝对误差的积分值分别约为 47.7、32.1 和 15.5。不考虑减速器的惯性,并假设空载运行时的扭矩等于匀速运动时的摩擦扭矩,研究结果表明,在纯粹由惯性驱动的负载下,IADRC 控制方法提高了跟踪精度。
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Research on Friction Compensation Method of Electromechanical Actuator Based on Improved Active Disturbance Rejection Control
The friction factor of harmonic reducers affects the transmission accuracy in electromechanical actuators (EMAs). In this study, we proposed a friction feedforward compensation method based on improved active disturbance rejection control (IADRC). A mathematical model of EMA was developed. The relationship between friction torque and torque current was derived. Furthermore, the compound ADRC control method of second-order speed loop and position loop was studied, and an IADRC control method was proposed. A real EMA was developed, and the working principles of the EMA driving circuit and current sampling were analyzed. The three methods—PI, ADRC, and IADRC—were verified by conducting speed step experiments and sinusoidal tracking experiments. The integral values of time multiplied by the absolute error of the three control modes under the step speed mode were approximately 47.7, 32.1, and 15.5, respectively. Disregarding the inertia of the reducer and assuming that the torque during no-load operation equals the friction torque during constant motion, the findings indicate that, under a load purely driven by inertia, the IADRC control method enhances tracking accuracy.
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来源期刊
Actuators
Actuators Mathematics-Control and Optimization
CiteScore
3.90
自引率
15.40%
发文量
315
审稿时长
11 weeks
期刊介绍: Actuators (ISSN 2076-0825; CODEN: ACTUC3) is an international open access journal on the science and technology of actuators and control systems published quarterly online by MDPI.
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