Performance index is the standard of performance evaluation, and is the foundation of both performance analysis and optimal design for the parallel manipulator. Seeking the suitable kinematic indices is always an important and challenging issue for the parallel manipulator. So far, there are extensive studies in this field, but few existing indices can meet all the requirements, such as simple, intuitive, and universal. To solve this problem, the matrix orthogonal degree is adopted, and generalized transmission indices that can evaluate motion/force transmissibility of fully parallel manipulators are proposed. Transmission performance analysis of typical branches, end effectors, and parallel manipulators is given to illustrate proposed indices and analysis methodology. Simulation and analysis results reveal that proposed transmission indices possess significant advantages, such as normalized finite (ranging from 0 to 1), dimensionally homogeneous, frame-free, intuitive and easy to calculate. Besides, proposed indices well indicate the good transmission region and relativity to the singularity with better resolution than the traditional local conditioning index, and provide a novel tool for kinematic analysis and optimal design of fully parallel manipulators.
Performance index is the standard of performance evaluation, and is the foundation of both performance analysis and optimal design for the parallel manipulator. Seeking the suitable kinematic indices is always an important and challenging issue for the parallel manipulator. So far, there are extensive studies in this field, but few existing indices can meet all the requirements, such as simple, intuitive, and universal. To solve this problem, the matrix orthogonal degree is adopted, and generalized transmission indices that can evaluate motion/force transmissibility of fully parallel manipulators are proposed. Transmission performance analysis of typical branches, end effectors, and parallel manipulators is given to illustrate proposed indices and analysis methodology. Simulation and analysis results reveal that proposed transmission indices possess significant advantages, such as normalized finite (ranging from 0 to 1), dimensionally homogeneous, frame-free, intuitive and easy to calculate. Besides, proposed indices well indicate the good transmission region and relativity to the singularity with better resolution than the traditional local conditioning index, and provide a novel tool for kinematic analysis and optimal design of fully parallel manipulators.
1. Z F Shao, X Q Tang, L P Wang. Dynamic verification experiment of the Stewart parallel manipulator. International Journal of Advanced Robotic Systems, 2015, 12(10):144-153.
2. Z F Shao, X Q Tang, X Chen, et al. Inertia match research of reconfigurable planar 3-RRR parallel manipulator. Chinese Journal of Mechanical Engineering, 2009, 22(6):791-799.
3. Y B Ni, B Zhang, Y P Sun, et al. Accuracy analysis and design of A3 parallel spindle head. Chinese Journal of Mechanical Engineering, 2016, 29(2):239-249.
4. K J Murthy, V Waldron. Position kinematics of the generalized lobster arm and its series-parallel dual. Journal of Mechanical Design, 1992, 114(3):406-413.
5. X Q Tang, J S Wang, M Gao. Kinematic calibration of gantry hybrid machine tool based on estimation error and local measurement information. International Journal of Advanced Manufacturing Technology, 2005, 26(4):382-90.
6. Z F Shao, X Q Tang, L P Wang, et al. A fuzzy PID approach or the vibration control of the FSPM. International Journal of Advanced Robotic Systems, 2013, 10(59):1-8.
7. D S Wu, H B Gu. Adaptive sliding control of six-DOF flight simulator motion platform. Chinese Journal of Aeronautics, 2007, 20(5):425-433.
8. J Mo, Z F Shao, L W Guan, et al. Dynamic performance analysis of the X4 high-speed pick-and-place parallel robot. Robotics and Computer-Integrated Manufacturing, 2017, 46:48-57.
9. F Pierot, C Reynaud, A Fournier. DELTA:a simple and efficient parallel robot. Robotica, 1990, 8(2):105-109.
10. J P Merlet. Parallel robots. Netherlands:Springer Science & Business Media, 2012.
11. T Huang, M X Wang, S F Yang, et al. Force/motion transmissibility analysis of six degree of freedom parallel mechanisms. Journal of Mechanisms and Robotics, 2014, 6(3):010.1-0101.5
12. J Angeles. Fundamentals of robotic mechanical systems. New York:Springer-Verlag, 2002.
13. Z F Shao, X Q Tang, L P Wang, et al. Atlas based kinematic optimum design of the Stewart parallel manipulator. Chinese Journal of Mechanical Engineering, 2015, 28(1):20-28.
14. Z F Shao, X Q Tang, L P Wang. Optimum design of 3-3 Stewart platform considering inertia property. Advance in Mechanical Engineering, 2013, 249121:1-10.
15. C Gosseline, J Angeles. A global performance index for the kinematic optimization of robotic manipulators. Journal of Mechanical Design, 1991, 113(3):220-226.
16. J K Salisbury, J J Craig. Articulated hands force control and kinematic issues. The International journal of Robotics Research, 1982, 1(1):4-17.
17. J P Merlet. Jacobian, manipulability, condition number, and accuracy of parallel robots. Journal of Mechanical Design, 2006, 128(1):199-206.
18. J Angeles. Is there a characteristic length of a rigid-body displacement. Mechanism and Machine Theory, 2006, 41(8):884-896.
19. W A Khan, J Angeles. The kinematic optimization of robotic manipulators:the inverse and direct problems. ASME Journal of Mechanical Design, 2006, 128(1):168-178.
20. H T Liu, T Huang, D G. Chetwynd. A method to formulate a dimensionally homogeneous Jacobian of parallel manipulator. IEEE Transaction on Robotic, 2011, 27(1):150-156.
21. O Ma, J Angeles. Optimum architecture design of platform manipulators. International Conference on Advanced Robotics, Pisa, Italy, July 29-31, 1991:1130-1135.
22. X J Liu, C Wu, J Wang. A new approach for singularity analysis and closeness measurement to singularities of parallel manipulators. Journal of Mechanisms and Robotics, 2012, 4(4):041001.1-041001.10.
23. P Voglewede, U I Ebert. Measuring "closeness" to singularities for parallel manipulators. IEEE International Conference on Robotics and Automation, Barcelona, Spain, April 18-22, 2005:4539-4544.
24. J Wang, C Wu, X J Liu. Performance evaluation of parallel manipulators:Motion/force transmissibility and its index. Mechanism and Machine Theory, 2010, 45(10):1462-1476.
25. L Zheng, J Angeles. The properties of constant branch for-bar linkages and their applications. ASME transaction on Mechanical Design, 1992, 114:574-579.
26. S S Balli, S Chand. Transmission angle in mechanism (Triangle in mesh). Mechanism and Machine Theory, 2002, 37(2):175-195.
27. T Huang, Z Li, M Li, et al. Conceptual design and dimensional synthesis of a novel 2-DOF translational parallel robot for pickand-place operations. Journal of Mechanical Design, 2004, 126(3):449-455.
28. X J Liu, C Wu, J S Wang. A new index for the performance evaluation of parallel manipulators:a study on planar parallel manipulators. World Congress on Intelligent Control and Automation, Chongqing, China, June 25-27, 2008:353-357.
29. R E Philipp, F Freudenstein. Synthesis of two-degree-of-freedom linkages-a feasibility study of numerical methods of synthesis of bivariate function generators. Journal of Mechanisms, 1966, 1(1):9-21.
30. L M Zhang, J P Mei, X M Zhao, et al. Dimensional synthesis of the Delta robot using transmission angle constrains. Robotica, 2012, 30:343-349.
31. M Zoppi, D Zlatanov, R Molfino. On the velocity analysis of interconnected chains mechanisms. Mechanism and Machine Theory, 2006, 41(11):1346-1358.
32. J Wu, T M Li, X J Liu, et al. Optimal kinematic design of a 2-DOF planar parallel manipulator. Tsinghua Science & Technology, 2007, 12(3):269-275.
33. R S Ball. A Treatise on the Theory of Screws. Cambridge MA:Cambridge University Press, 1998.
34. F Freudenstein, L S Woo. Kinematic analysis of spatial mechanisms by means of screw coordinates. Part 2-Analysis of spatial mechanisms. Journal of Manufacturing Science and Engineering, 1971, 93(1):67-73.
35. G Sutherland, B Roth. A transmission index for spatial mechanisms. Journal of Manufacturing Science and Engineering, 1973, 95(2):589-597.
36. M J Tsai, H W Lee. Generalized evaluation for the transmission performance of mechanisms. Mechanism and Machine Theory, 1994, 29(4):607-618.
37. C Chen, J Angeles. Generalized transmission index and transmission quality for spatial linkages. Mechanism and Machine Theory, 2007, 42(9):1225-1237.
38. X Chen, X J Liu, F G Xie, et al. A comparison study on motion/force transmissibility of two typical 3-DOF parallel manipulators:Sprint Z3 and A3 tool heads. International Journal of Advanced Robotic System, 2014, 11(5):1-10.
39. A Ben-Israel. An application of the matrix volume in probability. Linear Algebra and Its Applications, 2000, 321(1):9-25.