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Optimal Design of the Modular Joint Drive Train for Enhancing Cobot Load Capacity and Dynamic Performance

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摘要 Automation advancements prompts the extensive integration of collaborative robot(cobot)across a range of industries.Compared to the commonly used design approach of increasing the payload-to-weight ratio of cobot to enhance load capacity,equal attention should be paid to the dynamic response characteristics of cobot during the design process to make the cobot more flexible.In this paper,a new method for designing the drive train parameters of cobot is proposed.Firstly,based on the analysis of factors influencing the load capacity and dynamic response characteristics,design criteria for both aspects are established for cobot with all optimization design criteria normalized within the design domain.Secondly,with the cobot in the horizontal pose,the motor design scheme is discretized and it takes the joint motor diameter and gearbox speed ratio as optimization design variables.Finally,all the discrete values of the optimization objectives are obtained through the enumeration method and the Pareto front is used to select the optimal solution through multi-objective optimization.Base on the cobot design method proposed in this paper,a six-axis cobot is designed and compared with the commercial cobot.The result shows that the load capacity of the designed cobot in this paper reaches 8.4 kg,surpassing the 5 kg load capacity commercial cobot which is used as a benchmark.The minimum resonance frequency of the joints is 42.70 Hz.
出处 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2024年第3期26-40,共15页 中国机械工程学报(英文版)
基金 Supported by National Key Research and Development Program of China (Grant Nos.2022YFB4703000,2019YFB1309900)。
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  • 1WANG Fei-yue. On the extremal fundamental frequencies of one-link flexible manipulators [J]. The International Journal of Robotics Research, 1994, 13(2): 162-170.
  • 2WANG Fei-yue, Russell J L. Optimum shape construction of flexible manipulators with total weight constraint [J]. IEEE Transactions on Systems, Man and Cybernetics, 1995,25(4): 605-614.
  • 3EVERETT L J, TANG J, COMPERE M. Designing flexible manipulators with the lowest natural frequency nearly independent of position [J]. IEEE Transactions on Robotics and Automation, 1999, 15(4): 605-611.
  • 4DIXIT U, KUMAR R, DWIVEDY S. Shape optimization of flexible robotic manipulators [J]. ASME Journal of Mechanical Design, 2006, 128(3): 559-565.
  • 5LOU Yong-jiang, GONG Wei, LI Ze-xiang, ZHANG Jian-jun, YANG Gui-lin. Natural frequency based optimal design of a two-link flexible manipulator [C]// IEEE International Conference on Robotics and Automation, New York: IEEE, 2009: 1768-1773.
  • 6SPONG M W. Modeling and control of elastic joint robots [J]. Journal of Dynamics Systems, Measures, Control, 1987, 109(4): 310-318.
  • 7AL-BEDOOR B, ALMUSALLAM A. Dynamics of flexible-link and flexible-joint manipulator carrying a payload with rotary inertia [J]. Mechanical Machine Theory. 2000, 35(6): 785-820.
  • 8PETTERSSON M, OLVANDER J. Drive train optimization for industrial robots [J]. IEEE Transactions on Robotics 2009, 25(6): 1419-1424.
  • 9ROOS F, JOHANSSON H, WlKANDER J. Optimal selection of motor and gearhead in mechatronic applications [J]. Mechatronics, 2006,16(1): 63-72.
  • 10GIBERT! H, CINQUEMANI S, LEGNANI G Effects of transmission mechanical characteristics on the choice of a motor-reducer [J]. Mechatronics, 2010, 20(5): 604-610.

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