[1] 罗雨, 张中亮, 焦向东, 等. 球罐全位置焊接机器人研究现状及其关键技术[J]. 电焊机, 2016, 46(10):25-30. LUO Y, ZHANG Z L, JIAO X D, et al. Research status and key technology of all-position welding robots on spherical tank[J]. Electric Welding Machine, 2016, 46(10):25-30. (in Chinese)
[2] 雷毅, 许晓锋, 姚荣荣. 球罐自动焊应用现状及其焊缝跟踪技术研究[J]. 石油化工设备, 2006, 35(5):49-52. LEI Y, XU X F, YAO R R. Applied situation of auto-welding technology for spherical tank and research development of its weld seam tracking technology[J]. Petro-chemical Equipment, 2006, 35(5):49-52. (in Chinese)
[3] 王军波, 孙振国, 陈强, 等. 基于CCD传感器的球罐焊接机器人焊缝跟踪[J]. 焊接学报, 2001, 22(2):31-34. WANG J B, SUN Z G, CHEN Q, et al. CCD sensor assisted weld seam tracing method for spherical tank welding robot[J]. Transactions of the China Welding Institution, 2001, 22(2):31-34. (in Chinese)
[4] 许燕玲. 基于视觉及电弧传感技术的机器人GTAW三维焊缝实时跟踪控制技术研究[D]. 上海:上海交通大学, 2013. XU Y L. Research on real-time tracking and control technology of three-dimension welding seam during welding robot GTAW process based on vision sensor and arc sensor[D]. Shanghai:Shanghai Jiao Tong University, 2013. (in Chinese)
[5] 洪宇翔, 都东, 潘际銮, 等. 基于轨迹动态规划的移动机器人焊道自动跟踪[J]. 焊接学报, 2015, 36(10):25-28. HONG Y X, DU D, PAN J L, et al. Seam tracking based on dynamic trajectory planning for a mobile welding robot[J]. Transactions of the China Welding Institution, 2015, 36(10):25-28. (in Chinese)
[6] 潘际銮, 闫炳义, 高力生, 等. 永磁履带自主全位置爬行式弧焊机器人的控制方法:CN03153663.8. 2004-04-21. PAN J L, YAN B Y, GAO L S, et al. Method for controlling fully positioning self creeping arc welding robot with permanent magnet caterpillar:CN03153663.8. 2004-04-21. (in Chinese)
[7] 张华, 潘际銮, 徐健宁, 等. 无轨导全位置爬行式弧焊机器人系统[J]. 机械工程学报, 2006, 42(7):85-91. ZHANG H, PAN J L, XU J N, et al. Trackless crawl type all-position arc welding robot system[J]. Chinese Journal of Mechanical Engineering, 2006, 42(7):85-91. (in Chinese)
[8] KERMORGANT O. A magnetic climbing robot to perform autonomous welding in the shipbuilding industry[J]. Robotics and Computer-Integrated Manufacturing, 2018, 53:178-186.
[9] SCHMIDT D, BERNS K. Climbing robots for maintenance and inspections of vertical structures:A survey of design aspects and technologies[J]. Robotics and Autonomous Systems, 2013, 61(12):1288-1305.
[10] 桂仲成, 陈强, 孙振国. 多体柔性永磁吸附爬壁机器人[J]. 机械工程学报, 2008, 44(6):177-182. GUI Z C, CHEN Q, SUN Z G. Wall climbing robot employing multi-body flexible permanent magnetic adhesion system[J]. Chinese Journal of Mechanical Engineering, 2008, 44(6):177-182. (in Chinese)
[11] 王军波, 陈强, 孙振国. 爬壁机器人变磁力吸附单元的优化设计[J]. 清华大学学报(自然科学版), 2003, 43(2):214-217, 226. WANG J B, CHEN Q, SUN Z G. Optimization of attracting devices with variable magnetic force for wall-climbing robots[J]. Journal of Tsinghua University (Science and Technology), 2003, 43(2):214-217, 226. (in Chinese)
[12] 宋伟, 姜红建, 王韬, 等. 爬壁机器人磁吸附组件优化设计与试验研究[J]. 浙江大学学报(工学版), 2018, 52(10):1837-1844. SONG W, JIANG H J, WANG T, et al. Optimization design and experimental research on magnetic components for wall-climbing robot[J]. Journal of Zhejiang University (Engineering Science), 2018, 52(10):1837-1844. (in Chinese)
[13] 黄忠, 刘泉, 王茂. 基于Ansoft的爬壁机器人吸附装置分析及设计[J]. 机械工程师, 2015(12):108-110. HUANG Z, LIU Q, WANG M. Analysis and design of adsorption device of wall climbing robot based on Ansoft[J]. Mechanical Engineer, 2015(12):108-110. (in Chinese)
[14] 孟宪宇, 董华伦. 爬壁机器人结构设计及曲面磁力吸附关键技术研究[J]. 制造业自动化, 2018, 40(6):19-22, 39. MENG X Y, DONG H L. Research on the structure design of climbing robot and the key technology of surface magnetic force absorption[J]. Manufacturing Automation, 2018, 40(6):19-22, 39. (in Chinese)
[15] CHINAKHOV D A, VOROBYEV A V, GOTOVSHCHIK Y M. Simulation of wind influence on the thermal processes in gas-shielded welding[J]. Applied Mechanics and Materials, 2014, 682:91-95.
[16] 姜克钊. 基于双层动态开窗V型焊缝快速识别方法[J]. 电焊机, 2013, 43(11):106-108, 164. JIANG K Z. Fast recognition algorithm of V type groove seam based on double dynamic window[J]. Electric Welding Machine, 2013, 43(11):106-108, 164. (in Chinese)
[17] 黎咸西, 熊震宇. 基于视觉传感的多层多道焊缝图像特征的识别[J]. 南昌航空大学学报(自然科学版), 2011, 25(1):53-57. LI X X, XIONG Z Y. Identification of image characters for multi-pass welding seam based on vision sensing[J]. Journal of Nanchang Hangkong University (Natural Sciences), 2011, 25(1):53-57. (in Chinese)
[18] 刘习文, 洪波, 戴铁峰. 激光视觉焊缝跟踪图像处理与坡口识别[J]. 激光与红外, 2011, 41(7):804-807. LIU X W, HONG B, DAI T F. Image processing and groove recognition in weld seam tracking based on laser vision[J]. Laser & Infrared, 2011, 41(7):804-807. (in Chinese)
[19] GU W P, XIONG Z Y, WAN W. Autonomous seam acquisition and tracking system for multi-pass welding based on vision sensor[J]. The International Journal of Advanced Manufacturing Technology, 2013, 69(1-4):451-460.
[20] 雷正龙, 吕涛, 陈彦宾, 等. 基于扫描激光视觉传感的焊缝图像特征信息识别[J]. 焊接学报, 2013, 34(5):54-58. LEI Z L, LV T, CHEN Y B, et al. Features extraction for weld image of scanning laser sensing[J]. Transactions of the China Welding Institution, 2013, 34(5):54-58. (in Chinese)