期刊文献+

新型无缆管道机器人关键技术的研究

Research on the New Novel Cableless In-pipe Robot
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摘要 油气管道健康监测中管道机器人的研发是特种机器人领域中的热点,提出了管道机器人工程实用化中几个关键技术壁垒及这几个关键问题的解决措施。机器人移动牵引机构采用电机驱动丝杠旋转,丝杠上滑架(丝杠螺母)前移,两组支撑腿臂蠕动前行方式;整个机器人系统能量供给方面采用流体推动桨叶发电,对承载的锂电池组充电以实现机器人自推进;机器人通信方面采用管道内光纤传输视频图像和数据,管道外以无线方式与上位机监控设备双向无缆通信;整个机器人系统方案的可行性在模拟环境中得到了验证。 In- pipe inspection robot is a hot topic in current domestic and international oil and gas in - pipe special robotics research fields. This paper presents several key technologies quenstiones in the pipeline robot engineering practical and gives the measures of several key problems. Move traction mechanism adopts motor - driven screw rotation, screw nut on the screw moves forward, two sets of support legs and arm creeping forward way,In the aspect of energy supply of entire robot system the fluid promotes paddle power to recharges lithium batteries to complete function of robot self-propelled; Robot communications system adopts that fiber - optic conveys video images and data in the pipeline and robot bidirectional cableless communication with the host computer moni- toring equipment is completed outside the pipeline ;The feasibility of the entire robot system program has been verified in a simulated environment.
出处 《机械与电子》 2012年第9期77-80,共4页 Machinery & Electronics
基金 国家自然科学基金资助项目(61071001) 西安科技局科技计划项目(CXY1014) 陕西省教育厅科学研究计划项目(12JK1111)
关键词 管道机器人 蠕动前行 自推进 无缆通信 in - pipe robot creeping forward robot self - propelled cableless communication
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  • 1邓宗全,陈军,姜生元,孙东昌.六独立轮驱动管内检测牵引机器人[J].机械工程学报,2005,41(9):67-72. 被引量:53
  • 2郭凤,许冯平,邓宗全,彭敏.管道机器人弯道处驱动力研究[J].哈尔滨工业大学学报,2006,38(8):1264-1266. 被引量:14
  • 3Wang Y, Liu S L, Xu D G. Development and application of wall- climbing robots[C]//IEEE International Conference on Robotics and Automation. Piscataway, NJ, USA: IEEE, 1999: 1207- 1212.
  • 4Miyake T, Ishihara H, Yoshimura M. Application of wet vacuum-based adhesion system for wall climbing mechanism [C]//Intemational Symposium on Micro-Nano Mechatronics and Human Science. Piscataway, NJ, USA: IEEE, 2007: 532- 537.
  • 5Xiao J Z, Sadegh A, Elliott M, et al. Design of mobile robots with wall climbing capability[C]//IEEE/ASME International Conference on Advanced Intelligent Mechatronics. Piscataway, NJ, USA: IEEE, 2005: 438-443.
  • 6Longo D, Muscato G. The Alicia^3 climbing robot[J]. IEEE Robotics and Automation Magazine, 2006, 13(1): 42-50.
  • 7Wu S Q, Li M T, Xiao S, et al. A wireless distributed wall climbing robotic system for reconnaissance purpose[C]//IEEE International Conference on Mechatronics and Automation. Piscataway, NJ, USA: IEEE, 2006: 1308-1312.
  • 8Liu S Y, Gao X S, Li K J, et al. A small-sized wall-climbing robot for anti-terror scout[C]//IEEE International Conference on Robotics and Biomimetics. Piscataway, NJ, USA: IEEE, 2007: 1866-1870.
  • 9Ma B, Liu R, Zhang R, et al. Design of wall climbing robots with transition capability[C]//IEEE International Conference on Robotics and Biomimetics. Piscataway, NJ, USA: IEEE, 2007: 1871-1875.
  • 10Yi J G, Zhang J J, Song D Z, et al. IMU-based localization and slip estimation for skid-steered mobile robots[C]//IEEE/RSJ International Conference on Intelligent Robots and Systems. Piscataway, NJ, USA: IEEE, 2007: 2845-2850.

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