TY - JOUR
T1 - Fractional robust finite time control of four-wheel-steering mobile robots subject to serious time-varying perturbations
AU - Jiang, Liquan
AU - Wang, Shuting
AU - Xie, Yuanlong
AU - Xie, Sheng Quan
AU - Zheng, Shiqi
AU - Meng, Jie
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2022/3
Y1 - 2022/3
N2 - The four-wheel-steering mobile robot (FMR) is widely applied in the manufacturing industry, where accurate and stable lateral motion control is a prerequisite for ensuring manufacturing quality and efficiency. However, serious time-varying perturbations such as system uncertainties and external disturbances usually lead to unsatisfactory control performance. By designing constrained prediction and sliding mode mechanisms, a novel adaptive fractional robust finite time controller is proposed to achieve a system with required control accuracy and stability under serious time-varying perturbations. Compared with existing FMR solutions, the proposed method has the following attractive properties: (1) Without requiring the derivatives of time-varying perturbations, the proposed method utilizes a modified fractional super-twisting sliding mode switching law to guarantee the system robustness of dynamical tracking and disturbance rejection; (2) The differences between the nominal predicted states and the feedback ones can be well accommodated despite unmodeled dynamics and external disturbance; (3) By designing continuous control inputs, the “chattering phenomenon” in conventional control laws is carefully handled. Moreover, sufficient conditions are derived for the variable control gains to ensure the input-to-state practical stability and finite time convergence. Under harsh working conditions, two comparative experiments implemented on a real-life FRM are performed for demonstrative purposes.
AB - The four-wheel-steering mobile robot (FMR) is widely applied in the manufacturing industry, where accurate and stable lateral motion control is a prerequisite for ensuring manufacturing quality and efficiency. However, serious time-varying perturbations such as system uncertainties and external disturbances usually lead to unsatisfactory control performance. By designing constrained prediction and sliding mode mechanisms, a novel adaptive fractional robust finite time controller is proposed to achieve a system with required control accuracy and stability under serious time-varying perturbations. Compared with existing FMR solutions, the proposed method has the following attractive properties: (1) Without requiring the derivatives of time-varying perturbations, the proposed method utilizes a modified fractional super-twisting sliding mode switching law to guarantee the system robustness of dynamical tracking and disturbance rejection; (2) The differences between the nominal predicted states and the feedback ones can be well accommodated despite unmodeled dynamics and external disturbance; (3) By designing continuous control inputs, the “chattering phenomenon” in conventional control laws is carefully handled. Moreover, sufficient conditions are derived for the variable control gains to ensure the input-to-state practical stability and finite time convergence. Under harsh working conditions, two comparative experiments implemented on a real-life FRM are performed for demonstrative purposes.
KW - Four-wheel-steering mobile robots
KW - Fractional robust finite time control
KW - Sliding mode mechanism
KW - Time-varying perturbations
UR - https://www.scopus.com/pages/publications/85120084241
U2 - 10.1016/j.mechmachtheory.2021.104634
DO - 10.1016/j.mechmachtheory.2021.104634
M3 - 文章
AN - SCOPUS:85120084241
SN - 0094-114X
VL - 169
JO - Mechanism and Machine Theory
JF - Mechanism and Machine Theory
M1 - 104634
ER -