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A Study on Digitization and Figuration Analysis of the Underground Mine Cavity Using MIRECO EYE System

MIRECO EYE 시스템을 활용한 광산 지하공동의 수치화 및 형상화 분석 연구

  • Kim, Soo Lo (Institute of Mine Reclamation Technology, Mine Reclamation Corporation) ;
  • Park, Jay Hyun (Institute of Mine Reclamation Technology, Mine Reclamation Corporation) ;
  • Yang, In Jae (Institute of Mine Reclamation Technology, Mine Reclamation Corporation)
  • 김수로 (한국광해관리공단 광해기술원) ;
  • 박제현 (한국광해관리공단 광해기술원) ;
  • 양인재 (한국광해관리공단 광해기술원)
  • Received : 2018.08.23
  • Accepted : 2018.09.28
  • Published : 2018.10.31

Abstract

Mine reclamation project is closely related to human's past mining activities and the current human's living environment. It is a reason for the national management. In order to efficiently carry out mine reclamation projects, a precise investigation and analysis of the underground space of the abandoned mine is required. Korea MINE RECLAMATION Corp. is developing a practical technology that is effective in investigating and actually measuring underground cavities. MIRECO EYE system is an exploration equipment for 3D digitization and figuration of underground cavities. As combining a laser, sonar and image acquisition technology, it enables access to information about inaccessible underground cavities and effective management of subsidence risk of mined area. and currently it is also utilized for various purposes in related areas such as investigating urban sinkholes. This article is precise numerical and geometric information analysis obtained through MIRECO EYE system.

광해방지사업은 인간의 과거 광산 활동과 현재의 삶(환경)과 밀접하게 관련되어 있다. 이는 광산지역이 국가적 관리가 필요한 이유 중 하나이다. 광해방지사업의 효율적 시행을 위해서는 폐광산 지하공간에 대한 정밀한 조사 및 분석이 필요하다. 한국광해관리공단은 지하공동을 실측하고 조사하는 실용화 기술을 개발해오고 있다. MIRECO EYE 시스템은 지하공동의 3차원 수치화 및 형상화 조사장비이다. 레이저, 소나 및 영상측정 기술이 융복합되어 있으며, 접근이 불가능하였던 지하공동에 대한 정보를 획득하고, 광산 지역의 침하 위험관리에 사용되고 있으며, 최근에는 도심지 싱크홀 분야 등 다양한 목적으로도 활용되고 있다. 본 연구는 MIRECO EYE 시스템을 통해 획득된 정밀 수치정보 및 형상정보의 분석에 관한 연구이다.

Keywords

References

  1. 권현호, 남광수, 2007, 광해방지공학, 동화기술, 92-203.
  2. 한국광해관리공단, 2014, 광해관리백서, 30-77.
  3. 한국광해관리공단, 2016, 지반침하위험지역 조사기술개발, 21-29.
  4. Bieniawski, Z. T., 1984, Rock mechanics design in mining and tunneling, Balkema, Rotterdam.
  5. SungO Choi, Yangsoo Jeon, Eusup Park, Yongbok Jung and Daesung Chun, 2005, Analysis of Subsidence Mechanism and Development of Evaluation Program, Tunnel & Underground Space, Vol. 15, No.3, 195-212.
  6. Choon Sunwoo and Yongbok Jung, 2005, Stability Assessment of Underground Limestone Mine Openings by Stability Graph Method, Tunnel & Underground Space, Journal of Korean Society for Rock Mechanics, Vol. 15, No. 5, 369-377.
  7. Choon Sunwoo, Sokel Chung, Yunsu Lee, Sangsoo Kang and Jungseok Kang, 2012, Stability Assessment of Abandoned Gangway for Commercial Utilization of Services, Tunnel & Underground Space, Journal of Korean Society for Rock Mechanics, Vol. 22, No. 5, 2012, 297-309.
  8. Soolo Kim and Joohyun Park, 2015, Research and Development Trends for Mine Subsidence Prevention Technology in Korea, 14. Tunnel & Underground Space, Journal of Korean Society for Rock Mechanics, Vol. 25, No. 5, 408-416.
  9. Soolo Kim, Sungbin Park, Byunghee Choi, Jungmann Yun and Gyocheol Jeong, 2016, A Study on the Basic Geometry Analysis of Abandoned Underground Mine Tunnels in Korea and Advanced Measuring-Analysis Technology for Underground Mine Cavities, Journal of Korean Society for Rock Mechanics, Vol. 26, No. 6, 2016, 455-465.
  10. Hanuk Lim, Hwanjo Baek and Chihwan Kim, 2000, Feasibility Study on the Utilization of Abandoned underground Excavation Caverns, Tunnel & Underground Space, Journal of Korean Society for Rock Mechanics, Vol. 10, 249-256.
  11. Potvin, Y., M. Hudyma and H.D.S. Miller, 1988, Design guidelines for open stope supprot, CIM Bulletin, Vol. 82, No. 926, June, 53-62.