TY - GEN
T1 - Design and Validation of Linkage-Switching-Based Wheel-Leg Composite Joint for Humanoid Robots
AU - Yang, Xuecong
AU - Tian, Baolin
AU - Shang, Fengyu
AU - Han, Liangliang
AU - Gao, Haibo
AU - Yu, Haitao
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - Lunar robots serve as the core equipment for surface exploration and operational tasks in lunar exploration projects, holding invaluable importance in deep space exploration and lunar scientific research. This study addresses the constraints of space and weight limitations for future lunar robots by proposing a humanoid robot composite joint based on a single joint-single drive, incorporating both wheeled and legged motion modes. To achieve independence between the two motion modes, this paper employs a planetary gear system combined with electromagnetic brakes to design a switchable transmission linkage. Furthermore, a dynamic model of the planetary gear system and a mathematical model of motor drive are established, leading to a motion control framework that includes torque feedforward. The results of co-simulation experiments indicate maximum tracking errors of 0.95% for the wheeled mode and 1.3% for the legged mode, validating the effectiveness of the control strategy. Prototype experimental results demonstrate that the proposed wheel-legged composite joint achieves stable switching between motion modes and independent motion output, confirming the feasibility of the design. In the future, the design of this composite joint can provide a reference for developing lunar robot movement systems.
AB - Lunar robots serve as the core equipment for surface exploration and operational tasks in lunar exploration projects, holding invaluable importance in deep space exploration and lunar scientific research. This study addresses the constraints of space and weight limitations for future lunar robots by proposing a humanoid robot composite joint based on a single joint-single drive, incorporating both wheeled and legged motion modes. To achieve independence between the two motion modes, this paper employs a planetary gear system combined with electromagnetic brakes to design a switchable transmission linkage. Furthermore, a dynamic model of the planetary gear system and a mathematical model of motor drive are established, leading to a motion control framework that includes torque feedforward. The results of co-simulation experiments indicate maximum tracking errors of 0.95% for the wheeled mode and 1.3% for the legged mode, validating the effectiveness of the control strategy. Prototype experimental results demonstrate that the proposed wheel-legged composite joint achieves stable switching between motion modes and independent motion output, confirming the feasibility of the design. In the future, the design of this composite joint can provide a reference for developing lunar robot movement systems.
UR - https://www.scopus.com/pages/publications/105030496552
U2 - 10.1109/CBS65871.2025.11267759
DO - 10.1109/CBS65871.2025.11267759
M3 - 会议稿件
AN - SCOPUS:105030496552
T3 - 2025 IEEE International Conference on Cyborg and Bionic Systems, CBS 2025
SP - 570
EP - 575
BT - 2025 IEEE International Conference on Cyborg and Bionic Systems, CBS 2025
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2025 IEEE International Conference on Cyborg and Bionic Systems, CBS 2025
Y2 - 17 October 2025 through 19 October 2025
ER -