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Minimum Energy-cost Walking Exploiting Natural Dynamics of Multiple Spring-Mass Model

Title
Minimum Energy-cost Walking Exploiting Natural Dynamics of Multiple Spring-Mass Model
Author(s)
Bae, SangjinLee, ChanOh, Sehoon
Issued Date
2021-07-20
Citation
20th IEEE-RAS International Conference on Humanoid Robots, Humanoids 2020, pp.216 - 221
Type
Conference Paper
ISBN
9781728193724
ISSN
2164-0572
Abstract
The energy-efficient locomotion for a legged robot has been an important research topic. In this paper, we propose a dynamic model and the conditions to realize minimal-cost walking exploiting natural dynamics by analytical solving the dynamics of walking. The proposed dynamic model for walking consists of two springs and three masses, and the dynamics and condition for this model to realize the continuous and minimal cost walking is derived theoretically. Because the legged model is a hybrid model depending on the landing of feet, the transition conditions are proposed to realize continuous motion and while avoiding the energy dissipation caused by the ground collision. The initial states of the model determine the entire motion with proposed transition conditions. The whole two-dimensional dynamics of the proposed biped model is solved, and the results reveal that the stiffness of legs and the initial positions of the feet can adjust the period and velocity of natural dynamics driven walking. The generated walking model and dynamics are verified using simulations which show the total energy of the proposed walking model is conserved while the repetitive motion is realized. ©2021 IEEE.
URI
http://hdl.handle.net/20.500.11750/46912
DOI
10.1109/HUMANOIDS47582.2021.9555791
Publisher
IEEE Computer Society
Related Researcher
  • 오세훈 Oh, Sehoon
  • Research Interests Research on Human-friendly motion control; Development of human assistance;rehabilitation system; Design of robotic system based on human musculoskeletal system; Analysis of human walking dynamics and its application to robotics; 친인간적인 운동제어 설계연구; 인간 보조;재활 시스템의 설계 및 개발연구; 인간 근골격계에 기초한 로봇기구 개발연구; 보행운동 분석과 모델 및 로봇기구에의 응용
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Department of Robotics and Mechatronics Engineering MCL(Motion Control Lab) 2. Conference Papers

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