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T. Otani

8 accepted papers

2020

Flow Compensation for Hydraulic Direct-Drive System with a Single-rod Cylinder Applied to Biped Humanoid Robot

ICRA 2020poster

Biped robots require massive power on each leg while walking, hopping, and running. We have developed a flow-based control system-called hydraulic direct drive system- that can achieve high output while avoiding spatial limitations. To implement the proposed system with simple equipment configuratio…

Cited by 0SourceScholar
2020

Jumping Motion Generation for Humanoid Robot Using Arm Swing Effectively and Changing in Foot Contact Status

IROS 2020poster

Human jumping involves not only lower limbs but also whole-body coordination. During jumping, the effect of sinking the center of mass for recoil and arm swing are significant, and they can cause changes in the jump height. However, upper body movements during jumping movements of humanoid robots ha…

Cited by 8SourceScholar
2019

Experimental Validation of High-Efficiency Hydraulic Direct-Drive System for a Biped Humanoid Robot—Comparison with Valve-Based Control System

ICRA 2019poster

Biped robots require substantial amounts of power alternately on each leg while walking, hopping, and running. However, it is difficult to mount high-power large electrical motors in conventional mechanical transmission systems owing to spatial limitations. A hydraulic direct-drive system is propose…

Cited by 4SourceScholar
2019

Experimental Validation of Hydraulic Interlocking Drive System for Biped Humanoid Robot

IROS 2019poster

Biped robots require substantial amounts of power on each leg alternately while walking, hopping, and running. However, it is difficult to adopt large high-power electrical motors in conventional mechanical transmission systems owing to spatial limitations. To address this problem, a hydraulic inter…

Cited by 2SourceScholar
2018

Jumping Motion Generation of a Humanoid Robot Utilizing Human-Like Joint Elasticity

IROS 2018poster

To improve the movement ability of humanoid robots, instead of traditional methods dependent on only power of actuators, there is possibility that utilizing elasticity inspired from collaboration of muscle and tendon of human is effective to achieve high-power movement. In this study, we aimed to re…

Cited by 7SourceScholar
2017

Angular momentum compensation in yaw direction using upper body based on human running

ICRA 2017poster

Humans utilize their torsos and arms while running to compensate for the angular momentum generated by the lower-body movement during the flight phase. To enable this capability in a humanoid robot, the robot should have human-like mass, a center of mass position, and inertial moment of each link. T…

Cited by 8SourceScholar
2015

Knee joint mechanism that mimics elastic characteristics and bending in human running

IROS 2015poster

Analysis of human running has revealed that the motion of the human leg can be modeled by a compression spring because the leg's joints behave like a torsion spring in the stance phase. Moreover, the knee bends rapidly to avoid contact of the foot with the ground in the swing phase. In this paper, w…

Cited by 12SourceScholar
2015

Running with lower-body robot that mimics joint stiffness of humans

IROS 2015poster

Human running motion can be modeled using a spring-loaded inverted pendulum (SLIP), where the linear-spring-like motion of the standing leg is produced by the joint stiffness of the knee and ankle. To use running speed control in the SLIP model, we should only decide the landing placement of the leg…

Cited by 10SourceScholar