Design and obstacle-crossing analysis of a four-link rocker-suspension planetary exploration robot
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Published:2024-03-05
Issue:1
Volume:15
Page:137-157
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ISSN:2191-916X
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Container-title:Mechanical Sciences
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language:en
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Short-container-title:Mech. Sci.
Author:
Song ZhenORCID, Luo Zirong, Xie Huixiang
Abstract
Abstract. At present, there are still many meteorite craters and boulders on the surface of Mars and the Moon that cannot be accessed by existing planetary exploration robots. To provide a solution to this issue, this paper proposes a four-link rocker-suspension planetary exploration robot that combines both the reliability and low complexity of wheeled rovers with competent terrain adaptability and obstacle-crossing performance. Relying on its special differential pitch device, the robot can adapt to fluctuations in terrain by using both active and passive modes. Moreover, the four-link rocker suspensions on both sides of the robot can increase the instantaneous rotation radius of the rockers when the robot climbs over obstacles. In this paper, using modelling and simulations, we demonstrate that the four-link rocker suspension can improve the robot's obstacle-crossing capability. The geometric and static conditions required for the robot to cross obstacles are derived and discussed, and numerical simulations are conducted to identify the maximum obstacle-crossing heights that satisfy different conditions. Finally, a physical prototype of the robot is developed.
Funder
National Natural Science Foundation of China
Publisher
Copernicus GmbH
Reference37 articles.
1. Aoki, T., Murayama, Y., and Hirose, S.: Development of a Transformable Three-wheeled Lunar Rover: Tri-Star IV, J. Field Robot., 31, 206–223, https://doi.org/10.1002/rob.21482, 2013. 2. Arm, P., Zenkl, R., Barton, P., Beglinger, L., Dietsche, A., Ferrazzini, L., Hampp, E., Hinder, J., Huber, C., Schaufelberger, D., Schmitt, F., Sun, B., Stolze, B., Kolvenbach, H., and Hutter, M.: SpaceBok: A Dynamic Legged Robot for Space Exploration, in: 2019 International Conference on Robotics and Automation (ICRA), Montreal, Canada, 20–24 May 2019, IEEE, 6288–6294, https://doi.org/10.1109/ICRA.2019.8794136, 2019. 3. Bartsch, S.: Development, Control, and Empirical Evaluation of the Six-Legged Robot SpaceClimber Designed for Extraterrestrial Crater Exploration, Künstliche Intelligenz, 28, 127–131, https://doi.org/10.1007/s13218-014-0299-y, 2014. 4. Bartsch, S., Birnschein, T., Cordes, F., Kühn, D., Kampmann, P., Hilljegerdes, J., Planthaber, S., Römmermann, M., and Kirchner, F.: SpaceClimber: Development of a Six-Legged Climbing Robot for Space Exploration, in: ISR 2010 (41st International Symposium on Robotics) and ROBOTIK 2010 (6th German Conference on Robotics), Munich, Germany, 7–9 June 2010, VDE, 1265–1272, 2010. 5. Bogue, R.: Robots for space exploration, Ind. Robot, 36, 323–328, https://doi.org/10.1108/01439911211227872, 2012.
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