Kinetic study of a bipedal humanoid robot and mode of the spherical inverted pendulum
DOI:
https://doi.org/10.37591/tmd.v9i3.6873Keywords:
bipedal humanoid robot, control method, whole body cooperative dynamic biped walking, cooperative motion, time trajectory.Abstract
Studies on an anthropomorphic biped walking robot have led to the expectation that a bipedal humanoid robot will actively participate in human living environments. The authors created the human-size 35 active DOF bipedal humanoid robot "WABIAN" and the human-size 41 active DOF bipedal humanoid robot "WABIAN-R" as the initial step in creating a bipedal humanoid robot. The authors also put forth a fundamental method of controlling whole-body cooperative dynamic biped walking that makes use of trunk or trunk-waist cooperative motion to counteract the three-axis (pitch, roll, and yaw-axis) moment produced by both arbitrarily planned lower-limb motion and arbitrarily planned time trajectories for the hands. It is possible to perform dynamic dance, waving arms and hips, dynamic load carrying utilising its arms, and trunk-waist cooperative dynamic walking using these systems and the control mechanismReferences
Usherwood J, Gladman N. Why are the fastest runners of intermediate size? Contrasting scaling of mechanical demands and muscle supply of work and power. Biol Lett 2020;16(10):20200579.
Shin H, Ishikawa T, Kamioka T, Hosoda K, Yoshiike T. Mechanistic properties of five-bar parallel mechanism for leg structure based on spring loaded inverted pendulum. 2019 IEEE-RAS 19th International conference on humanoid robots (Humanoids). IEEE; 2019. p. 320–327.
Shigemi S, Goswami A, Vadakkepat P. 2018. ASIMO and humanoid robot research at Honda. Humanoid Robotics: A Reference. p. 55–90.
Kaneko K, Kanehiro F, Morisawa M, Akachi K, Miyamori G, Hayashi A, et al. 2011. Humanoid robot HRP-4-humanoid robotics platform with lightweight and slim body. In: IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS).
Kaneko K, Kaminaga H, Sakaguchi T, Kajita S, Morisawa M, Kumagai I, et al. Humanoid robot HRP-5P: An electrically actuated humanoid robot with high-power and wide-range joints. IEEE Robot Autom Lett 2019;4(2):1431–1438.
Stasse O, Flayols T, Budhiraja R, Giraud-Esclasse K, Carpentier J, Mirabel J. TALOS: A new humanoid research platform targeted for industrial applications. 2017 IEEE-RAS 17th International conference on humanoid robotics (Humanoids). IEEE; 2017. p. 689–695.
Tazaki Y. Parallel link-based light-weight leg design for bipedal robots. 2019 IEEE-RAS 19th International conference on humanoid robots (Humanoids). IEEE; 2019. p. 565– 571.
Lee B, Knabe C, Orekhov V, Hong D. Design of a human-like range of motion hip joint for humanoid robots. ASME 2014 International design engineering technical conferences and computers and information in engineering conference. American society of mechanical engineers digital collection; 2014.
Lahr D, Orekhov V, Lee B, Hong D. Early developments of a parallelly actuated humanoid, SAFFiR. ASME 2013 International design engineering technical conferences and computers and information in engineering conference. American society of mechanical engineers digital collection; 2013.
Kakiuchi Y, Kamon M, Shimomura N, Yukizaki S, Takasugi N, Nozawa S, et al. Development of life-sized humanoid robot platform with robustness for falling down, long time working and error occurrence. 2017 IEEE/RSJ International conference on intelligent robots and systems (IROS). IEEE; 2017. p. 689–696.
Negrello F, Garabini M, Catalano MG, Kryczka P, Choi W, Caldwell DG, et al. Walk-man humanoid lower body design optimization for enhanced physical performance. 2016. IEEE International conference on robotics and automation (ICRA). IEEE; 2016. p. 1817–1824.
Kamioka T, Kaneko H, Kuroda M, Tanaka C, Shirokura S, Takeda M, et al. Push recovery strategy of dynamic gait transition between walking, running and hopping. Int J Human Robot 2019;16 (03):1940001.
Lohmeier S, Buschmann T, Schwienbacher M, Ulbrich H, Pfeiffer F. Leg design for a humanoid walking robot. 2006 6th IEEE-RAS International conference on humanoid robots. IEEE; 2006. p. 536–541.
Englsberger J, Werner A, Ott C, Henze B, Roa MA, Garofalo G, et al. Overview of the torque-controlled humanoid robot TORO. 2014 IEEE-RAS International conference on humanoid robots. IEEE; 2014. p. 916–923.
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