Open Access

Interactions and Optimizations Analysis between Stiffness and Workspace of 3-UPU Robotic Mechanism

 and    | Apr 26, 2017

Cite

[1] Bohez, E. (2002). Five-axis milling machine tool kinematic chain design and analysis. International Journal of Machine Tools & Manufacture, 42, 505-520.10.1016/S0890-6955(01)00134-1Search in Google Scholar

[2] Tsai, L., Joshi, S. (2002). Kinematic analysis of 3- DOF position mechanisms for use in hybrid kinematic machines. Journal of Mechanical Design, 124 (2), 245-253.10.1115/1.1468860Search in Google Scholar

[3] Zhang, D., Bi, Z., Li, B. (2009). Design and kinetostatic analysis of a new parallel manipulator. Robotics and Computer-Integrated Manufacturing, 25 (4-5), 782-791.10.1016/j.rcim.2008.10.002Search in Google Scholar

[4] Castelli, G., Ottaviano, E. (2009). Modeling and simulation of a cable based parallel manipulator as an assisting device. In Computational Kinematics: Proceedings of the 5th International Workshop on Computational Kinematics. Springer, 17-24.10.1007/978-3-642-01947-0_3Search in Google Scholar

[5] Li, Y., Xu, Q. (2005). Kinematic design and dynamic analysis of a medical parallel manipulator for chest compression task. In IEEE International Conference on Robotics and Biomimetics (ROBIO), July 5-9, 2005. IEEE, 693-698.Search in Google Scholar

[6] Plitea, N., Pisla, D., Vaida, C. (2007). On kinematics of a parallel robot used for the minimally invasive surgery. PAMM - Proceedings in Applied Mathematics and Mechanics, 7 (1), 4010033-4010034.10.1002/pamm.200700850Search in Google Scholar

[7] Lessard, S., Bigras, P., Bonev, I. (2007). A new medical parallel robot and its static balancing optimization. Journal of Medical Devices, 1, 272-278.10.1115/1.2815329Search in Google Scholar

[8] Liang, Q., Wu, W., Zhang, D., Wei, B., Sun, W., Wang, Y., Ge, Y. (2015). Design and analysis of a micromechanical three-component force sensor for characterizing and quantifying surface roughness. Measurement Science Review, 15 (5), 248-255.10.1515/msr-2015-0034Search in Google Scholar

[9] Merlet, J.P. (2006). Parallel Robots. Springer.Search in Google Scholar

[10] Zhang, D. (2010). Parallel Robotic Machine Tools. Springer.10.1007/978-1-4419-1117-9Search in Google Scholar

[11] Bruckmann, T., Mikelsons, L., Brandt, T., Hiller, M., Schramm, D. (2008). Wire robots Part I.: Kinematics, analysis and design. In Parallel Manipulators: New Developments. I-Tech Education and Publishing, 109-132.Search in Google Scholar

[12] Gosselin, C. (1990). Stiffness mapping for parallel manipulators. IEEE Transactions on Robotics and Automation, 6 (3), 377-382.10.1109/70.56657Search in Google Scholar

[13] Carbone, G. (2011). Stiffness analysis and experimental validation of robotic systems. Frontiers of Mechanical Engineering, 6 (2), 182-196.10.1007/s11465-011-0221-3Search in Google Scholar

[14] Zhang, D., Gao, Z. (2012). Forward kinematics, performance analysis, and multi-objective optimization of a bio-inspired parallel manipulator. Robotics and Computer-Integrated Manufacturing, 28 (4), 484-492.10.1016/j.rcim.2012.01.003Search in Google Scholar

[15] Zhang, D., Xi, F., Mechefske, C., Lang, S. (2004). Analysis of parallel kinematic machine with kinetostatic modelling method. Robotics and Computer-Integrated Manufacturing, 20 (2), 151-165.10.1016/j.rcim.2003.08.005Search in Google Scholar

[16] Li, J. (2009). Design of 3-DOF parallel manipulators for micromotion applications. Master Thesis, University of Ontario Institute of Technology.Search in Google Scholar

[17] Li, B., Wang, Z., Hu, Y. (1999). The stiffness calculation model of the new typed parallel machine tool. Machine Design, 3, 14-16.Search in Google Scholar

[18] Gosselin, C., Angeles, J. (1991). A global performance index for the kinematic optimization of robotic manipulators. Journal of Mechanical Design, 113 (3), 220-226.10.1115/1.2912772Search in Google Scholar

[19] Stamper, R., Tsai, L., Walsh, G. (1997). Optimization of a three DOF translational platform for wellconditioned workspace. In IEEE International Conference on Robotics and Automation, April 25, 1997. IEEE, 3250-3255.Search in Google Scholar

[20] Gao, Z., Zhang, D. (2011). Workspace representation and optimization of a novel parallel mechanism with three-degrees-of-freedom. Sustainability, 3, 2217-2228.10.3390/su3112217Search in Google Scholar

[21] Masory, O., Wang, J. (1995). Workspace evaluation of Stewart platforms. Advanced Robotics, 9 (4), 443-461.Search in Google Scholar

[22] Zhang, D., Gao, Z. (2012). Multi-objective performance optimization of a parallel robotic machine tool. In IEEE/ASME International Conference on Mechatronics and Embedded Systems and Applications (MESA), July 8-10, 2012. IEEE, 154-159.10.1109/MESA.2012.6275554Search in Google Scholar

[23] Coppola, G., Zhang, D., Liu, K.F. (2014). A 6-DOF reconfigurable hybrid parallel manipulator. Robotics and Computer-Integrated Manufacturing, 30 (2), 99-106.10.1016/j.rcim.2013.09.011Search in Google Scholar

[24] Chi, Z., Zhang, D., Xia, L., Gao, Z. (2013). Multiobjective optimization of stiffness and workspace for a parallel kinematic machine. International Journal of Mechanics and Materials in Design, 9, 281-293.10.1007/s10999-013-9219-9Search in Google Scholar

[25] Vesterstrom, J., Thomsen, R. (2004). A comparative study of differential evolution, particle swarm optimization, and evolutionary algorithms on numerical benchmark problems. In Congress on Evolutionary Computation (CEC2004), June 19-23, 2004. IEEE, vol. 2, 1980-1987.Search in Google Scholar

[26] Zhang, D. (2000). Kinetostatic analysis and optimization of parallel and hybrid architectures for machine tools. Ph.D. thesis, Laval University, Quebec, Canada.Search in Google Scholar

[27] Talbi, E.G. (2009). Metaheuristics: From Design to Implementation. John Wiley & Sons.Search in Google Scholar

[28] Rahnamayan, S. (2007). Opposition-based differential evolution. Ph.D. thesis, University of Waterloo, Ontario, Canada.Search in Google Scholar

eISSN:
1335-8871
Language:
English
Publication timeframe:
6 times per year
Journal Subjects:
Engineering, Electrical Engineering, Control Engineering, Metrology and Testing