Position Control of Hybrid Pneumatic-Electric Actuators

被引:0
作者
Bone, Gary M. [1 ]
Chen, Xing [2 ]
机构
[1] McMaster Univ, Dept Mech Engn, Hamilton, ON L8S 4L7, Canada
[2] Trojan Technol, London, ON N5V4T7, Canada
来源
2012 AMERICAN CONTROL CONFERENCE (ACC) | 2012年
关键词
PREDICTIVE CONTROL; DESIGN;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The design, modeling and control of a novel hybrid pneumatic-electric actuator for applications in robotics and automation is presented. The design incorporates a pneumatic cylinder and DC motor connected in parallel. By avoiding the need for a high ratio transmission, the design greatly reduces the joint friction torque that contributes to the danger associated with robot arms. A novel discrete-valued model-predictive control (DVMPC) algorithm is proposed for controlling the position of the pneumatic cylinder with on/off valves, rather than costly proportional or servo valves. A variant of inverse dynamics control is proposed for the DC motor. A prototype was built for validating the actuator design and control algorithms. It is used to rotate a single-link robot arm. Experimental results are presented for vertical cycloidal and sinusoidal position trajectories. Even with the poor quantization caused by the on/off valves, the pneumatic cylinder controlled by the proposed DVMPC algorithm achieved a 2.5% maximum absolute error (MAE) for the vertical cycloidal trajectory. The DVMPC algorithm also switches the valves less often than the PWM method, reducing valve wear. With the addition of the DC motor to form the hybrid actuator, the performance improvement was significant. For the vertical cycloidal trajectory, the MAE was reduced to 0.37%. With the vertical sinusoidal trajectory, the MAE was 1.1%. These results compare favorably to the 5% MAE achieved by previous researchers for a horizontal sinusoidal trajectory using a hybrid pneumatic-electric actuator controlled by servo valves.
引用
收藏
页码:1793 / 1799
页数:7
相关论文
共 50 条
[41]   Active Disturbance Rejection Position Control for a Magnetic Rodless Pneumatic Cylinder [J].
Zhao, Ling ;
Yang, Yafei ;
Xia, Yuanqing ;
Liu, Zhixin .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2015, 62 (09) :5838-5846
[42]   Additive Manufacture of Composite Soft Pneumatic Actuators [J].
Byrne, Oisin ;
Coulter, Fergal ;
Glynn, Mark ;
Jones, James F. X. ;
Annaidh, Aisling Ni ;
O'Cearbhaill, Eoin D. ;
Holland, Donal P. .
SOFT ROBOTICS, 2018, 5 (06) :726-736
[43]   Improving Endurance of Pneumatic Linear Peristaltic Actuators [J].
Carneiro, Joao Falcao ;
Bravo Pinto, Joao ;
de Almeida, Fernando Gomes ;
Fateri, Miranda .
ACTUATORS, 2020, 9 (03)
[44]   A Hybrid Control Approach for a Pneumatic-Actuated Soft Robot [J].
Tavio y Cabrera, Emilio ;
Della Santina, Cosimo ;
Borja, Pablo .
HUMAN-FRIENDLY ROBOTICS 2023, HFR 2023, 2024, 29 :19-35
[45]   Printed silicone pneumatic actuators for soft robotics [J].
Sparrman, Bjorn ;
du Pasquier, Cosima ;
Thomsen, Charles ;
Darbari, Shokofeh ;
Rustom, Rami ;
Laucks, Jared ;
Shea, Kristina ;
Tibbits, Skylar .
ADDITIVE MANUFACTURING, 2021, 40
[46]   Rolling Tensegrity Driven by Pneumatic Soft Actuators [J].
Koizumi, Yuusuke ;
Shibata, Mizuho ;
Hirai, Shinichi .
2012 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION (ICRA), 2012, :1988-1993
[47]   Analyzing the dynamic performance of hybrid reluctance actuators for feedback control [J].
Haider, Christian ;
Csencsics, Ernst ;
Schitter, Georg .
2024 IEEE INTERNATIONAL CONFERENCE ON ADVANCED INTELLIGENT MECHATRONICS, AIM 2024, 2024, :657-662
[48]   Attitude control of 3D soft pneumatic actuators based on BP neural network [J].
Zhang, Chengpei ;
Zhou, Wen ;
Zheng, Tengfei ;
Wang, Xudong ;
Wang, Chaohui .
JOURNAL OF APPLIED PHYSICS, 2023, 133 (23)
[49]   Application of the active disturbance rejection control structure to improve the controller performance of uncertain pneumatic actuators [J].
Rosas Almeida, David I. ;
Alvarez, Joaquin ;
Cantu Cardenas, Jesus Armando .
ASIAN JOURNAL OF CONTROL, 2019, 21 (01) :99-113
[50]   A Robust Hybrid Position/Force Control Considering Motor Torque Saturation [J].
Ohhira, Takashi ;
Yokota, Keinosuke ;
Tatsumi, Shuichi ;
Murakami, Toshiyuki .
IEEE ACCESS, 2021, 9 :34515-34528