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이명종,김정호,박삼규,손정술,Yi Myeong-Jong,Kim Jung-Ho,Park Sam-Gyu,Son Jeong-Sul Korean Society of Earth and Exploration Geophysici 2005 지구물리와 물리탐사 Vol.8 No.1
To investigate the feasibility of a new concept of storing Liquefied Natural Gas (LNG) in a lined hard rock cavern, and to develop essential technologies for constructing underground LNG storage facilities, a small pilot plant storing liquid nitrogen (LN2) has been constructed at the Korea Institute of Geoscience and Mineral Resources (KIGAM). The LN2 stored in the cavern will subject the host rock around the cavern to very low temperatures, which is expected to cause the development of an ice ring and the change of ground condition around the storage cavern. To investigate and monitor changes in ground conditions at this pilot plant site, geophysical, hydrogeological, and rock mechanical investigations were carried out. In particular, geophysical methods including borehole radar and three-dimensional (3D) resistivity surveys were used to identify and monitor the development of an ice ring, and other possible changes in ground conditions resulting from the very low temperature of LN2 in the storage tank. We acquired 3D resistivity data before and after storing the LN2, and the results were compared. From the 3D images obtained during the three phases of the resistivity monitoring survey, we delineated zones of distinct resistivity changes that are closely related to the storage of LN2. In these results, we observed a decrease in resistivity at the eastern part of the storage cavern. Comparing the hydrogeological data and Joint patterns around the storage cavern, we interpret this change in resistivity to result from changes in the groundwater flow pattern. Freezing of the host rock by the very low temperature of LN2 causes a drastic change in the hydrogeological conditions and groundwater flow patterns in this pilot plant.
폐광지역에서의 3차원 이방성 전기비저항 토모그래피 영상화
이명종 ( Myeong Jong Yi ),김정호 ( Jung Ho Kim ),손정술 ( Jeong Sul Son ) 한국지구물리·물리탐사학회 2011 지구물리와 물리탐사 Vol.14 No.1
본 연구에서는 이방성을 포함하는 3차원 전기비저항 토모그래피 프로그램을 개발하였다. 이론 모델링에는 유한요소법을 이용하였고 역산에 ACB법을 채용하여 평활화 제한 최소자승 역산의 분해능 향상을 기하였다. 수치모형 실험을 통하여 지하구조가 강한 전기적 이방성을 보이는 경우 이방성을 고려한 역산이 필수적임과 이방성이 지하구조의 해석에서 추가적인 정보로 활용 가능함을 보였다. 또한 과거 채굴 터널 상부에 고층 아파트가 건설된 폐광현장에서 획득한 3차원 토모그래피 탐사자료에 개발된 알고리듬을 적용하여 과거 채광활동과 관련된 건축물의 안전성을 평가하고자 하였다. 탐사자료에서 강한 전기적 이방성이 관찰되었고 이는 조사지역의 지질적 특성에 기인하는 것으로 확인되었다. 조사지역의 이방성을 고려하기 위하여 3차원 이방성 전기비저항 토모그래피 영상화를 수행하였으며 이로부터 지질구조에 부합하는 지하 3차원 전기비저항 영상을 획득할 수 있었다. 획득한 전기비저항 영상은 암반공학에서의 지반안정성 분석을 위한 지질구조 모형을 도출하는데 사용되었으며, 이로부터 조사대상인 아파트가 안전성에 문제가 없음을 밝힐 수 있었다. We have developed an inversion code for three-dimensional (3D) resistivity tomography including the anisotropy effect. The algorithm is based on the finite element approximations for the forward modelling and Active Constraint Balancing method is adopted to enhance the resolving power of the smoothness constraint least-squares inversion. Using numerical experiments, we have shown that anisotropic inversion is viable to get an accurate image of the subsurface when the subsurface shows strong electrical anisotropy. Moreover, anisotropy can be used as additional information in the interpretation of subsurface. This algorithm was also applied to the field dataset acquired in the abandoned old mine area, where a high-rise apartment block has been built up over a mining tunnel. The main purpose of the investigation was to evaluate the safety analysis of the building due to old mining activities. Strong electrical anisotropy has been observed and it was proven to be caused by geological setting of the site. To handle the anisotropy problem, field data were inverted by a 3D anisotropic tomography algorithm and we could obtain 3D subsurface images, which matches well with geology mapping observations. The inversion results have been used to provide the subsurface model for the safety analysis in rock engineering and we could assure the residents that the apartment has no problem in its safety after the completion of investigation works.
오현덕 ( Hyun Dok Oh ),이명종 ( Myeong Jong Yi ),김정호 ( Jung Ho Kim ),신종우 ( Jong Woo Shin ) 한국지구물리·물리탐사학회 2011 지구물리와 물리탐사 Vol.14 No.4
대형 고분의 발굴 조사를 위한 전기비저항 탐사법의 적용 가능성을 시험하기 위하여, 나주 복암리 3호분에 대하여 3차원 전기비저항 탐사를 수행하였다. 높은 해상도의 지하구조 영상을 얻기 위해서는 고분의 정확한 지형 구조 및 전극 위치에 대한 정보 획득이 필수적이다. 이에 따라 문화재 발굴 조사에서 사용하는 방법인 실을 이용한 구획설정법을 응용하여 전극을 설치하였다. 탐사 자료는, 전극 간격은 2 m, 측선 간격은 1 m로 하여 얻었으며, 각 탐사 측선은 상대적으로 1 m 엇갈리게 배열함으로써 전체적으로 고분에 대하여 1 m × 1m 크기의 격자망으로 구성하였다. 탐사 자료에 대하여 3차원 전기비저항 영상화를 수행하고 이를 기존의 발굴 조사 결과와 대비하였으며, 이로부터 확인된 매장 유구 분포와 전기비저항 영상이 매우 잘 일치함을 확인하였다. 이 연구를 통하여 대형 고분에서 매장 유구를 조사할 때 3차원 전기비저항 영상화 기술이 매우 유용함을 밝혔다. To test the applicability of resistivity survey methods for the archaeological prospection of a large-scale tumulus, a three-dimensional resistivity survey was conducted at the 3rd tumulus at Bokam-ri, in Naju city, South Korea. Since accurate topographic relief of the tumulus and electrode locations are required to obtain a high resolution image of the subsurface, electrodes were installed after making grids by threads, which is commonly used in the archaeological investigation. In the data acquisition, data were measured using a 2 m electrode spacing with the line spacing of 1 m and each survey line was shifted 1 m to form an effective grid of 1 m × 1 m. Though the 3-D inversion of data, we could obtain the 3-D image of the tumulus, where we could identify the brilliant signature of buried tombs made of stones. The results were compared with the previous excavation results and we could convince that a 3-D resistivity imaging method is very useful to investigate a large-scale tumulus.