[1] 蔡自兴,谢斌.机器人学[M].北京:清华大学出版社, 2015. CAI Zixing, XIE Bin. Robotics[M]. Beijing:Tsinghua University Press, 2015. [2] 张永贵,刘晨荣,刘鹏. 6R工业机器人刚度分析[J].机械设计与制造, 2015(2):257-260. ZHANG Yonggui, LIU Chenrong, LIU Peng. 6R industrial robot stiffness analysis[J]. Machinery Design&Manufacture, 2015(2):257-260. [3] SICILIANO B, KHATIB O. Springer handbook of robotics[M]. Berlin:Springer, 2008. [4] 王宪,杨国梁,张方生,等.基于牛顿-拉夫逊迭代法的6自由度机器人逆解算法[J].传感器与微系统, 2010, 29(10):116-118. WANG Xian, YANG Guoliang, ZHANG Fangsheng, et al. An inverse kinematics algorithm of the general 6-DOF robot based on Newton-Raphson iteration[J]. Transducer and Microsystem Technologies, 2010, 29(10):116-118. [5] XU Zhihao, LI Sheng, CHEN Qingwei, et al. MOPSO based multi-objective trajectory planning for robot manipulators[C]//IEEE 2nd International Conference on Information Science and Control Engineering. Shanghai:IEEE, 2015:826-830. [6] 董甲甲,王太勇,董靖川,等.改进B样条曲线应用于6R机器人轨迹优化[J].中国机械工程, 2018, 29(2):193-200. DONG Jiajia, WANG Taiyong, DONG Jingchuan, et al. Applications of improved B-spline curves to 6R robot trajectory optimization[J]. China Mechanical Engineering, 2018, 29(2):193-200. [7] 孔庆博,袁亮,蒋伟.一种改进的工业机器人轨迹规划方法研究[J].机械传动, 2019, 43(2):30-36. KONG Qingbo, YUAN Liang, JIANG Wei. Research of an improved trajectory planning method for industrial robot[J]. Journal of Mechanical Transmission, 2019, 43(2):30-36. [8] DUMAS C, CARO S, GARNIER S, et al. Joint stiffness identification of six-revolute industrial serial robots[J]. Robotics and Computer-Integrated Manufacturing, 2011, 27(4):881-888. [9] GUO Yingjie, DONG Huiyue, KE Yinglin. Stiffness-oriented posture optimization in robotic machining applications[J]. Robotics and Computer-Integrated Manufacturing, 2015, 35:69-76. [10] 汪博文.多机械臂协同加工系统静刚度建模与优化研究[D].上海:上海大学, 2018. WANG Bowen. The research on stiffness modeling and optimization of multiple coordinated robots system[D]. Shanghai:Shanghai University, 2018. [11] 熊有伦,李文龙,陈文斌,等.机器人学:建模、控制与视觉[M].武汉:华中科技大学出版社, 2018. XIONG Youlun, LI Wenlong, CHEN Wenbin, et al. Robotics:Modeling, control and vision[M]. Wuhan:Huazhong University of Science and Technology Press, 2018. [12] 林阳,赵欢,丁汉.基于多种群遗传算法的一般机器人逆运动学求解[J].机械工程学报, 2017, 53(3):1-8. LIN Yang, ZHAO Huan, DING Han. Solution of inverse kinematics for general robot manipulators based on multiple population genetic algorithm[J]. Journal of Mechanical Engineering, 2017, 53(3):1-8. [13] 习国泰.改进Levenberg-Marquardt算法的复杂度分析[D].上海:上海交通大学, 2012. XI Guotai. On the complexity of the modified Levenberg-Marquardt algorithm for nonlinear equations[D]. Shanghai:Shanghai Jiao Tong University, 2012. [14] VASIN V V, PERESTORONINA G Y. The LevenbergMarquardt method and its modified versions for solving nonlinear equations with application to the inverse gravimetry problem[J]. Proceedings of the Steklov Institute of Mathematics, 2013, 280(Supp1.):174-182. [15] ABELE E, WEIGOLD M, ROTHENBÜCHER S. Modeling and identification of an industrial robot for machining applications[J]. CIRP Annals, 2007, 56(1):387-390. [16] 侯鹏辉.机器人加工系统刚度性能优化研究[D].杭州:浙江大学, 2013. HOU Penghui. Study on stiffness performance optimization for robot machining system[D]. Hangzhou:Zhejiang University, 2013. [17] 陈玉山. 6R型工业机器人关节刚度辨识与实验研究[D].武汉:华中科技大学, 2011. CHEN Yushan. Joint stiffness identification of 6R industrial robot and experimental verification[D]. Wuhan:Huazhong University of Science and Technology, 2011. [18] YANG Kun, YANG Wenyu, CHENG Guangdong, et al. A new methodology for joint stiffness identification of heavy duty industrial robots with the counterbalancing system[J]. Robotics and Computer-Integrated Manufacturing, 2018, 53:58-71. [19] ALICI G, SHIRINZADEH B. Enhanced stiffness modeling, identification and characterization for robot manipulators[J]. IEEE Transactions on Robotics, 2005, 21(4):554-564. [20] LIN Yang, ZHAO Huan, DING Han. Spindle configuration analysis and optimization considering the deformation in robotic machining applications[J]. Robotics and Computer-Integrated Manufacturing, 2018, 54:83-95. [21] CHEN S, KAO I. Conservative congruence transformation for joint and Cartesian stiffness matrices of robotic hands and fingers[J]. The International Journal of Robotics Research, 2000, 19(9):835-847. [22] CHEN Chen, PENG Fangyu, YAN Rong, et al. Stiffness performance index based posture and feed orientation optimization in robotic milling process[J]. Robotics and Computer-Integrated Manufacturing, 2019, 55:29-40. |