Abstract:Research purposes:Some catenary system vibrated largely after the train since Chinese high-speed railway running, which came from an oral report of one rail worker on duty. Its accurate displacement must be measured in order to solve the problem. The measurement technique based on image has the advantages of non-contact and dynamic which is suitable for unique structure such as catenary system. The computer gets displacement value through analyzing image which may ensure train's safety when on-line test is carrying out. The research not only can be used to analyze the cause of abnormal existing catenary shaking and swaying amplitude, but also can provide the technical support for catenary of electrified railway online real-time test.Research conclusions:(1) The measured amplitude of cantilever, shoulder brace of positive feeder and carrier cable was small relatively and consistent with other normal sections of the whole line. (2)The interaction between catenary and pantograph was the main reason for its vibration,without the coupling effect between up-bound and down-bound. (3) The accurate value of test result indicated that the amplitude of catenary is under the range allowably, which verified the uncertainty of human sense and further clarified the safety hazard. (4) The non-contact measurement technique based on image can get the dynamic real time test data and have simple and convenient operation, which supplies subtle and suitable way for high-speed railway catenary systems real-time on-line test.
[1] 于万聚. 高速电气化铁路接触网[M]. 成都: 西南交通大学出版社, 2009. Yu Wanju. Catenary Systems of High-speed Electrified Railway[M]. Chengdu: Southwest Jiaotong University Press,2009. [2] 于正平,张弘,吴鸿标. 高速电气化铁路接触网—受电弓系统的研究[J]. 中国铁道科学,1999(1):59-72. Yu Zhengping, Zhang Hong, Wu Hongbiao. A Study on High-speed Catenary-Pantograph System[J]. China Railway Science,1999 (1):59-72. [3] 段汝娇,赵伟,黄松岭.基于计算机视觉的接触网定位器倾斜度自动测量方法[J]. 中国铁道科学, 2011(4):82-87. Duan Rujiao, Zhao Wei, Huang Songling. Automatic Measurement Method for the Catenary Localizer Slope Based on Computer Vision[J]. China Railway Science, 2011 (4):82-87. [4] 刘寅秋.基于图像处理的接触网动态几何参数测量研究[D].北京:中国铁道科学研究院,2012. Liu Yinqiu. Study on OCS Dynamic Geometric Parameters Detection Based on Image Processing[D].Beijing: China Academy of Railway Sciences,2012. [5] 韩博怀. 接触网检测技术[J]. 中国铁道科学,1994 (3):27-40. Han Bohuai. Inspection Technology for Overhead Contact System[J]. China Railway Science,1994(3):27-40. [6] 赵印军. 京沪高速接触网悬挂类型的选择分析[J]. 铁道工程学报,2003(28):100-103. Zhao Yinjun. Analysis of Selection of Suspension Type of Catenary Line of Beijing-Shanghai High Speed Railway Line [J]. Journal of Railway Engineering Society,2003(28):100-103. [7] 王翔,王波,钟继卫.基于图像识别处理的桥梁测量系统设计与实现[J]. 现代计算机,2012(402):60-63. Wang Xiang,Wang Bo,Zhong Jiwei. Design and Implementation of Bridge Measurement System Based on Image Distinguish Processing [J]. Modern Computer, 2012(402):60-63. [8] 韩亚荣,黄朝兵,钟继位.一种光斑图像的阈值分割和光斑中心坐标的计算方法[J].现代计算机,2011(375):13-16. Han Yarong, Huang Chaobing, Zhong Jiwei. A Method of Thresholding Segmentation and Spot Center Coordinates Calculation for Light Spot-Image [J]. Modern Computer, 2011(375):13-16. [9] 周勇,朱砾,骆先南.工程数学[M]. 长沙:湖南科学技术出版社,2004. Zhou Yong, Zhu Li, Luo Xiannan. Engineering Mathematics[M]. Changsha: Hunan Science & Technology Press,2004.