首页 /研究 /Fault tolerance properties and motion planning of a six-legged robot with multiple faults
LOCOMOTION

Fault tolerance properties and motion planning of a six-legged robot with multiple faults

Hui Du, Feng Gao

发表年份
2016
引用次数
26

摘要

SUMMARY The six-legged robot Octopus is designed for nuclear disaster relief missions. When the robot suffers from failures, its performance can be significantly affected. Thus, fault tolerance is essential for walking and operating in environments inaccessible to humans. The current fault-tolerant gaits for legged robots usually either initially lock the entire broken leg or just abandon the broken leg, but then fail to take full advantage of the normal actuators on the broken leg and add extra constraints. As the number of broken legs increases, the robot will no longer be able to walk using the existing fault-tolerant gaits. To solve this problem, screw theory is used for analyzing the remaining mobility after failure. Based on the analysis, a method of motion planning through fault-tolerant Jacobian matrices, which are linear, is presented. This method can enable the robot to accomplish desired movement using broken legs along with other certain concomitant motions as compensation. Finally, experiments and simulations of multiple faults demonstrate the real effects on the Octopus robot.

关键词

RobotFault toleranceControl theory (sociology)Legged robotActuatorComputer scienceFault (geology)Compensation (psychology)Jacobian matrix and determinantSimulation

相关论文

查看 LOCOMOTION 分类全部论文