您所在的位置: 首页 >> 期刊 >> 遥感科学

遥感科学

《遥感科学》是IVY出版社旗下的一本关注遥感科学与技术的综合性国际期刊,主要刊登有关遥感基础理论,遥感技术发展、遥感应用等研究领域内最新进展的学术性论文、评论性文章和研究综述性文章,旨在为该领域内的专家、学者、科研人员、管理人员提供一个良好的传播、分享和探讨遥感信息科学领域研究进展的交流平台,反映学术前沿水平,促进学术交流,把握遥感技术理论和实践前沿、研究水平和发展方向。本刊可接收中、英文稿件。其中,中文稿件要有详细的英文标题、作者、单位…… 【更多】 《遥感科学》是IVY出版社旗下的一本关注遥感科学与技术的综合性国际期刊,主要刊登有关遥感基础理论,遥感技术发展、遥感应用等研究领域内最新进展的学术性论文、评论性文章和研究综述性文章,旨在为该领域内的专家、学者、科研人员、管理人员提供一个良好的传播、分享和探讨遥感信息科学领域研究进展的交流平台,反映学术前沿水平,促进学术交流,把握遥感技术理论和实践前沿、研究水平和发展方向。

本刊可接收中、英文稿件。其中,中文稿件要有详细的英文标题、作者、单位、摘要和关键词。初次投稿请作者按照稿件模板排版后在线投稿。稿件会经过严格、公正的同行评审步骤,录用的稿件首先发表在本刊的电子刊物上,然后高质量印刷发行。期刊面向全球公开征稿、发行,要求来稿均不涉密,文责自负。

ISSN Print:2329-8138

ISSN Online:2329-8146

Email:rss@ivypub.org

Website: http://www.ivypub.org/rss/

  0
  0

Paper Infomation

Overview of Three-Dimensional Lidar Technology Application in the Operation and Maintenance of High Voltage Transmission Lines

Full Text(PDF, 851KB)

Author: Chuan Qin, Yong Du, Qi Wang, Xiaojun Shen

Abstract: With the continuous improvement of 3D laser radar technology, it has been gradually applied in the field of high voltage transmission line patrolling due to its advantages of high efficiency, high precision, non-contact and real-time performance. However, due to the related research is still in its infancy, there are many problems. For example, the standards are not uniform and the application methods are less. This paper briefly described the working principle of airborne and terrestrial 3D laser radar, and then pointed out that 3D laser radar technology has important engineering application value in power grid patrolling by introducing the main application functions of 3D laser radar in the inspection of overhead lines. Finally, pointed out that 3D Lidar technology should be improved from new functional development, standardization of application methods, the universality and simplicity of data processing and other aspects after analyzing the existence problems of 3D laser radar in the application of overhead lines.

Keywords: High Voltage Transmission Lines, Airborne Lidar, Terrestrial Lidar, Application of Operation and Maintenance, Current Situation and Prospect

References:

[1] G J Zhang. Research on 3D Laser Scanning Data Processing and Modeling. Anhui University of Science and Technology, 2017.

[2] L Zhang, H Lu. The Research on the Application of Laser Scanning Measurement Technology in Forestry[C]//Mechatronics and Automation, 2009. ICMA 2009. International Conference on. IEEE, 2009: 4490-4494.

[3] Pu S, Vosselman G. Automatic Extraction of Building Features from Terrestrial Laser Scanning[J]. International Archives of Photogrammetry, Remote Sensing and Spatial Information Sciences, 2006, 36(5): 25-27.

[4] D B Wang, W Huang, Y Song, et al. 3D Modeling of Unearthed Pottery House from Hepu Han Tomb based on LIDAR[J]. Journal of Hunan University of Science and Technology(Natural Science Edition), 2015, 01:92-96.

[5] Y Liu. The Application of Laser Radar in Automobile Industry Reverse Design[D]. Changchun University of Science and Technology, 2013.

[6] X L Kong, B Ou. The Application and Research of 3D Laser Scanning Technology in Finish Tunneling Survey[J]. Urban Geotechnical Investigation & Surveying, 2013, 02: 100-102.

[7] F Yang, Z J Xu. Application of the LiDAR Technology on Operation and Maintenance of Power Transmission Lines[J]. Southern Power System Technology, 2009, (02): 62-64.

[8] X G Lin, J X Zhang. 3D Power Line Reconstruction from Airborne LiDAR Point Cloud of Overhead Electric Power Transmission Corridors[J]. Acta Geodaetica et Cartographica Sinica, 2016, (03): 347-353.

[9] J Li, B Wang, X C Wang X C, et al. Full 3D Modeling of Transformer Station Based on Massie Point Cloud[J]. North China Electric Power, 2016, 07: 26-30.

[10] X G Lin, M Y Duan, J X Zhang, et al. A Method of Reconstruction 3D Powerlines from Airborne LiDAR Point Clouds [J]. Science of Surveying and Mapping, 2016, (01): 109-114+64.

[11] Y H Liu. A Study on DEM Construction Based on Airborne LiDAR Point Cloud[D]. Shandong Normal University, 2017.

[12] X J Shen, Y Du, R D Wang, et al. Inclination Measurement of Transmission Line Tower based on Terrestrial 3D Lidar[J]. Journal of Electronic Measurement and Instrument, 2017, 31(04): 516-521.

[13] R Q Zhou, R C Zhai, W S Jiang, et al. Automatic Extraction and Reconstruction of Bundle Conductors from Airborne LiDAR point clouds [J/OL]. Science of Surveying and Mapping, 2018(06): 1-13[2018-03-03]. http://kns.cnki.net/kcms/detail/11.4415.P.20180122.1732.046.html.

[14] P F Mao, Jin S J, Guan X, Liu Y, Ding L. 2017. Environment Monitoring System for Power Transmission Line Based on Laser and Radar[J]. INNER MONGOLIA ELECTRIC, 2017, 35(03): 69-72.

[15] C Chen, X Y Peng, S Song, et al. Safety Distance Diagnosis of Large Scale Transmission Line Corridor Inspection Based on LiDAR Point Cloud Collected With UAV[J]. Power System Technology, 2017, 41(08): 2723-2730.

[16] C S Zhang, Z H Xu, S W Yang, et al. Power Transmission Line Sag Analysis and Application Based on Airborne LiDAR[J]. Bulletin of Surveying and Mapping, 2017(07): 94-98+107.

[17] S Pu, X Q Wu, Z L Yan, et al. Automation Recognition of Defects on Transmission Lines from UAV-borne Laser Scanning Data[J]. Remote Sensing Information, 2017, 32(04): 52-57.

[18] R D Wang, Y Du, X J Shen, et al. TLS Based Measurement Method of Damaged Tower Slope[J]. Hubei Electric Power, 2014, 38(10): 49-51.

[19] D P Zhen, X M Chen, B X Xu. Application of Airborne LiDAR Data in Final Line Selection of Transmission Line[J]. China Electric Power(Technology Edition), 2014(09): 8-11.

[20] L Han, D J Yu, Y L He. The Application of LiDAR of Route Choice of Electric Power Program in a Certain Area of Sichuan[J]. Geomatics & Spatial Information Technology, 2014, 37(04): 86-88+93.

[21] X M Mai, C Chen, X Y Peng, et al. 3d Visualization Technique of Transmission Line Corridors System Design and Implementation[J]. Electric Power, 2015, 48(02): 98-103.

[22] Q/CSG 11104-2008, Technical Code for Lidar Surveying of Overhead Transmission Line[S].

[23] B Guo, Q Li, X Huang, et al. An Improved Method for Power-Line Reconstruction from Point Cloud Data[J]. Remote Sensing, 2016, 8(1): 36.

[24] MELZER T, BRIESE C. Extraction and Modeling of Power Lines from ALS Point Clouds[J]. Proceedings of Workshop, 2004.

[25] JWA Y, SOHN G, KIM H B. Automatic 3D Powerline Reconstruction using Airborne Lidar Data[J]. Int. Arch. Photogramm. Remote Sens, 2009, 38(Part 3): W8.

Privacy Policy | Copyright © 2011-2024 Ivy Publisher. All Rights Reserved.

Contact: customer@ivypub.org