DocumentCode
2686482
Title
Terrain-adaptive control with small landing impact force for biped vehicle
Author
Hashimoto, Kenji ; Hayashi, Akihiro ; Sawato, Terumasa ; Yoshimura, Yuki ; Asano, Teppei ; Hattori, Kentaro ; Sugahara, Yusuke ; Lim, Hun-ok ; Takanishi, Atsuo
Author_Institution
Grad. Sch. of Sci. & Eng., Waseda Univ., Tokyo, Japan
fYear
2009
fDate
10-15 Oct. 2009
Firstpage
2922
Lastpage
2927
Abstract
Many researchers have studied on walking stability controls for biped robots. Most of them are highly accurate acceleration controls based on the mechanics model of the robot. However, the control algorithms are difficult to be applied to human-carrying biped robots due to modeling errors. In the previous report, we proposed the landing pattern modification method, but it had a problem that a foot landing impact increased when a walking speed became fast. So, we propose a new terrain-adaptive control that can reduce a landing- impact force. To increase a concave terrain adaptation, we set a target landing position beneath a reference level. To reduce the landing-impact force, we change the position gain control value to a small value at a swing phase. Moreover, we set landing-foot speed at zero after detecting a foot-landing by the force sensor mounted on a foot. To follow uneven terrain, a virtual spring is installed to the vertical direction after detecting a foot-landing on a ground, and a virtual compliance control is applied to the roll and pitch axes. In a stable walk while carrying a 65 kg human on uneven terrain, the new control method decreased the landing-impact force than the previous terrain-adaptive control.
Keywords
acceleration control; adaptive control; impact (mechanical); legged locomotion; position control; robot kinematics; stability; acceleration control; biped robot; biped vehicle; concave terrain adaptation; landing-impact force; mechanics model; position gain control; terrain-adaptive control; virtual compliance control; virtual spring; walking stability control; Acceleration; Error correction; Foot; Force control; Force sensors; Gain control; Legged locomotion; Robot control; Stability; Vehicles;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Robots and Systems, 2009. IROS 2009. IEEE/RSJ International Conference on
Conference_Location
St. Louis, MO
Print_ISBN
978-1-4244-3803-7
Electronic_ISBN
978-1-4244-3804-4
Type
conf
DOI
10.1109/IROS.2009.5354517
Filename
5354517
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