[3] Wang S, Jiang X, Sun C. Study status of conductor galloping on transmission line[J]. High Voltage Engineering, 2005, 31(10): 11-14.
[4] Xie K, Zhang C, Li Q, et al. Tracking galloping profile of transmission lines using wireless inertial measurement units[J]. J. of Computer and Communications, 2015, 3(5): 57179.
[5] Zhu K J, Liu B, Niu H J, et al. Statistical analysis and research on galloping characteristics and damage for iced conductors of transmission lines in China[C]// 2010 Inter. Conf. on Power System Technology, 2010: 1-5.
[6] Fu X, Li H N, Li G, et al. Failure analysis of a transmission line considering the joint probability distribution of wind speed and rain intensity[J]. Engineering Structures, 2021, 233: 111913.
[7] Wei F A, SZB D, WZ C, et al. An efficient dynamic formulation for the vibration analysis of a multi-span power transmission line excited by a moving deicing robot[J]. Appl. Mathematical Modelling, 2022, 103: 619-635.
[8] Tian L, Zhang X, Fu X. Fragility analysis of a long-span transmission tower-line system under wind loads[J]. Advances in Structural Engineering, 2020, 23(10): 2110-2120.
[10] Yan Q, Zhou C, Feng X, et al. Galloping vibration monitoring of overhead transmission lines by chirped FBG array[J]. Photonic Sensors, 2022, 12(3): 1-10.
[11] Lv A, Li Y, Li J. Research on strain and temperature measurement of OPGW based on BOTDR[C]//2013 Inter. Conf. on Optical Instruments and Technology: Optical Sensors and Applications, 2014, 9044: 90441H.
[14] Liu F L, Guo L R, Deng Y S, et al. Application of fiber Bragg grating device in icing monitoring system of transmission lines[J]. Appl. Mechanics & Materials, 2014, 543/547: 1030-1034.
[17] Ma G, Li C, Jiang J, et al. A novel optical load cell used in icing monitoring on overhead transmission lines[J]. Cold Regions Science and Technology, 2012, 71: 67-72.
[19] Lu L, Liang Y, Li B, et al. Maintenance of the OPGW using a distributed optical fiber sensor[C]// 2014 Inter. Conf. on Power System Technol., 2014: 1251-1256.