4.6 Article

Method for analyzing articulated torques of heavy-duty six-legged robot

Journal

CHINESE JOURNAL OF MECHANICAL ENGINEERING
Volume 26, Issue 4, Pages 801-812

Publisher

SPRINGEROPEN
DOI: 10.3901/CJME.2013.04.801

Keywords

heavy-duty six-legged robot; articulated torque; MATLAB; static simulation analysis; ADAMS

Funding

  1. National Basic Research Program of China (973 Program) [2013CB035502]
  2. International Science and Technology Cooperation Project with Russia [2010DFR70270]
  3. National Natural Science Foundation of China [51275106]
  4. 111 Project [B07018]
  5. Key Laboratory Opening Funding of Aerospace Mechanism and Control, China [HIT. KLOF. 2010057]

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The accuracy of an articulated torque analysis influences the comprehensive performances of heavy-duty multi-legged robots. Currently, the extremal estimation method and some complex methods are employed to calculate the articulated torques, which results in a large safety margin or a large number of calculations. To quickly obtain accurate articulated torques, an analysis method for the articulated torque is presented for an electrically driven heavy-duty six-legged robot. First, the rearmost leg that experiences the maximum normal contact force is confirmed when the robot transits a slope. Based on the ant-type and crab-type tripod gaits, the formulas of classical mechanics and MATLAB software are employed to theoretically analyze the relevant static torques of the joints. With the changes in the joint angles for the abductor joint, hip joint, and knee joint, variable tendency charts and extreme curves are obtained for the static articulated torques. Meanwhile, the maximum static articulated torques and the corresponding poses of the robot are also obtained. According to the poses of the robot under the maximum static articulated torques, ADAMS software is used to carry out a static simulation analysis. Based on the relevant simulation curves of the articulated torques, the maximum static articulated torques are acquired. A comparative analysis of the maximum static articulated torques shows that the theoretical calculation values are higher than the static simulation values, and the maximum error value is approximately 10%. The proposed method lays a foundation for quickly determining accurate articulated torques to develop heavy-duty six-legged robots.

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