• 제목/요약/키워드: Gravity-Geologic Method

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Gravity-Geologic Method를 이용한 남극 드레이크 해협의 해저지형 연구 (Gravity-Geologic Prediction of Bathymetry in the Drake Passage, Antarctica)

  • 김정우;도성재;윤순옥;남상헌;진영근
    • 자원환경지질
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    • 제35권3호
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    • pp.273-284
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    • 2002
  • 인공위성 레이더고도 측정값으로부터 유도된 중력이상으로턱터 남극 드레이크해협의 해저지형을 계산하기 위해 Gravity-Geologic Method(GGM)를 적용하였다. 총 6548개의 음항측심자료 중 2/3는 control depth로, 나머지는 결과 검증을 위한 check point 자료로 이용하였다. 효과적인 계산을 위해 해수와 해저지형의 밀도차이는 check point를 이용, 9.0 gm/㎤로 가정하였다. Control depth로부터 광역중력이상을 계산하였고, 이를 Sandwell & Smith(1997)의 중력이상으로부터 제거하여 해저지형의 기복에 의한 중력 효과를 계산하였으며, 이로부터 해저지형을 복원하였다. Selective Merging 기법을 개발하여 복원된 해저지형과 고주파 측심자료를 효과적으로 합성하였다. 복원된 해저지형은 한국해양연구원의 측심자료, GEODAS 및 전지구 모델 ETOPO5 결과와 각각 0.91, 0.92, 0.85의 상관계수를 갖으며, Selective Merging을 이용한 최종 결과는 GEODAS 및 Smith Sandwell(1997)의 결과와 각각 0.948 및 0.954의 상관관계 및 449.8, 441.3 m의 RMS 오차를 갖는다. GGM을 이용하여 계산된 해저지형은 측심이 충분히 이루어지지 않은 지역의 경우 전지구모델(ETOPO5)이나 자료의 양이 불충분한 음항측심에 의한 결과보다 우수한 것으로 나타났다.

중력탐사에 의한 삼척-태백간의 지하지질 및 지질구조 연구 (Gravity Survey of the Subsurface Geology and Geologic Structure between Samcheog and Taebaek Area)

  • 민경덕;조광은
    • 자원환경지질
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    • 제28권1호
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    • pp.79-88
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    • 1995
  • The gravity measurment has been carried out at 48 gravity stations with intervals of 1.0~1.5 km along the survey line between Samcheog, Gosari and Taebaek to study subsurface geology and geologic structure in the northeastern part of the Ockchon zone. The Bouguer gravity anomaly values were obtained from the measured gravity values through the gravity corrections. The subsurface geology and geologic structure were interpreted quantitatively by means of the Fourier series method and Talwani method for 2.5 dimensional body. In the study area, the depth of Conrad discontinuity is about 10 km at Samcheog, northeastern end of the survey line, and it is increased rapidly to about 12.5 km at Miro, 15 km at Gosari and 15.5 km at Dongjeom, southwestern end of the survey line, respectively. The depth of the basement of the Ockchon zone exposed at Samcheog is increased smoothly to about 2 km at 5 km from Samcheog along the survey line, and is exposed again in the area between Singiry and Gosari. Beyond Gosari its depth is increased to about 1.7 km, and displaced 2.3 km downward by Osipcheon fault near Dogyeri and 0.5 km by Baeksan thrust near Cheolam, respectively. Many V-shaped low Bouguer gravity anomalies resulted from the fracture zone associated with faults imply the existence of Osipcheon fault and several inferred faults. The low Bouguer gravity anomaly zone between Tongdong and Dongjeom is caused by Jurassic gneissose granite. A local high Bouguer gravity anomaly at 35 km along the survey line from Samcheog is interpreted by the effect of iron deposit of high density existed at subsurface. The thickness of Great Limestone Group varies from 0.5 km to 1.4 km, that of Pyeongan Supergroup from 0.4 km to 0.9 km, and that of Yangdeog Group is about 0.3 km. The thickness of Jurassic gneissose granite varies from 1.5 to 3.0 km.

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Bathymetry Change Investigation of the 2011 Tohoku Earthquake

  • Kim, Kwang Bae;Lee, Chang Kyung
    • 한국측량학회지
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    • 제33권3호
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    • pp.181-192
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    • 2015
  • Bathymetry change due to the 2011 Tohoku (M9.0) earthquake was investigated through satellite altimetry-derived free-air gravity anomalies (SAFAGA) and shipborne measurements. The earthquake occurred at the plate boundaries near the northeastern coast of Japan, where the oceanic plate subducts beneath the continental plate along deep-sea trench. Data analyzed in this study include SAFAGA from Scripps Institution of Oceanography (SIO), shipborne bathymetry (SB) from the U.S. National Geophysical Data Center (NGDC) and the Japan Agency for Marine-Earth-Science And Technology (JAMSTEC). To estimate the bathymetry change, a reference bathymetry before the earthquake was predicted by gravity-geologic method (GGM) and Smith & Sandwell’s (SAS) method. In comparison with the bathymetry models before the earthquake, GGM bathymetry model generated by a tuning density contrast of 17.04 g/cm3 by downward continuation method was selected because it shows better bathymetry in the short wavelength below about 6 km. From the results, remarkable bathymetry change of about ±50 m was found on the west side of the Japan Trench caused by the earthquake.

고정밀 중력 탐사를 위한 3차원 중력 지형 역산 기법 (3-D Gravity Terrain Inversion for High Resolution Gravity Survey)

  • 박계순;이희순;권병두
    • 한국지구과학회지
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    • 제26권7호
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    • pp.691-697
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    • 2005
  • 최근에 수행되고 있는 중력 탐사는 고분해능의 중력계와 GPS(Global positioning system)를 통한 정밀한 측정과 측지가 이루어지고 있다. 중력탐사에서 모델링과 역산의 기술은 많은 발전이 있어왔지만, 중력자료처리는 거의 변화가 없었다. 통상적인 정밀한 중력 자료 보정을 통한 부우게이상은 측정점의 고도에서 기준면까지의 물질의 영향을 일정한 밀도를 이용해 제거해 버리기 때문에 측정점 바로 하부의 이상체에 의한 영향을 상당히 왜곡시키게 된다. 본 연구에서는 탐사 지역의 지형을 DEM(Digital Elevation Map) 자료와 Multiquadric equation을 이용하여 실제 지형과 유사한 Multiquadric surface를 자동적으로 구성하고, 이를 블록화 함으로써 보정의 대상이었던 기준면 상부에 대한 밀도를 탐사 지역의 지질 정보와 지형을 포함하는 역산을 통해 수치적으로 계산하였다. 이러한 지형을 포함한 역산 방법을 3차 원중력지형역산(3DGTI; 3-D Gravity Terrain Inversion)이라 한다. 이 연구의 효율성을 검증하기 위하여 주변암과 밀도차가 존재하는 관입지역에 대한 모델을 구성하고 적용한 결과 기존의 부게 보정 방법을 적용한 부게 이상도에 비해 자료의 왜곡이 감소하는 효과를 얻을 수 있었다. 이를 통하여 지형 역산을 통한 객관적인 부게 밀도의 결정과 부게 보정시 실제의 수평적인 밀도 변화를 반영함으로써 기존의 문제점을 보완하였다. 게다가, 3DGTI로부터 얻어진 밀도분포는 지형의 윤곽을 그대로 표현하고 있어서 보다 실질적인 지질을 보여준다고 하겠다. 이 방법을 화강암체가 관입하고 있는 마산$\cdot$창원 일대에서의 중력 탐사 자료에 적용해본 결과 기존 방법보다 관입 화강암체의 위치와 그 규모를 알아내는데 더 효과적이었다. 따라서, 수평적인 밀도 변화가 뚜렷하게 존재하는 지역의 경우, 새로운 중력 자료 처리 방법이 기존의 부게 보정에서 발생하였던 문제점을 해결함으로써 천부의 분해능을 높이고, 심부의 밀도 분포도 좀더 정확하게 계산할 수 있으리라 생각된다.

중력 탐사에 의한 포항-공주-만리포간의 지각구조 연구 (A Study on the Crustal Structure Between Pohang, Kongju and Manripo by Gravity Method)

  • 민경덕
    • 자원환경지질
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    • 제33권2호
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    • pp.101-109
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    • 2000
  • The gravity measurement has been carried out to study the deep geologic structure at 331 gravity stations with an interval of 1∼1.5 km along the national road which crosses the southern part of the Korean peninsula from Pohang to Manripo. The Bouguer gravity anomalies were obtained from the observed gravity values, and interpreted by means of upward continuation using FFT (Fast Fourier Transform), Fourier-series method and nonlinear 2-D inversion method to determine the depths of Conrad and Moho discontinuities. The linear regression relations between elevations and gravity anomalies were also obtained to test isostasy in the study area. The depth of Conrad discontinuty is 13km between Pohang and Daegu, 16.5 km between Kimchon and Okchon, 9.7 km between Okchon and Daejeon, and 16.3 km near Manripo. The depth of Moho discontinuty is 32km between Pohang and Daegu, 35 km between Kimchon and Okchon, 28.7 km between Okchon and Daejeon, 40.5 km between Daejeon and Kongju, and 34.5 km between Kongju and Manripo. The result of testing isotasy indicates that the crust of this area seems to be not in perfect isostatic equilibrium but in a little undercompensated sate.

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포항 및 장기분지에 대한 고지자기, 층서 및 구조 연구; 중력탐사에 의한 홍해 및 형산강지역의 지질구조 (Paleomagnetism, Stratigraphy and Geologic Structure of the Tertiary Pohang and Janggi Basins ; Geologic Structure in the Areas of Heunghae and Hyungsan River by Gravity Prospecting Method)

  • 민경덕;윤혜수;문희수;이현구;김인수
    • 자원환경지질
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    • 제25권3호
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    • pp.351-358
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    • 1992
  • The gravity measurement has been conducted at 327 station with an interval of 25 m along the survey lines of 1.6 km and 1.7 km traversing Hyungsan river and of 2.35 km and 2.42 km running N-S direction near Heunghae-eup in Pohang basin. Bouguer gravity anomalies were obtained, and geologic structure along four survey lines were interpreted by applying Fourier series and Talwani methods for two demensional body. A fault is in existence along the Hyungsan river, and northern block of it is displaced down by 150 m to 200 m relative to southern one. The thicknesses of Yeonil Group vary from 250 m to 550 m and from 150 m to 300 m in the northern and southern blocks of the fault, respectively. Another fault is in existence running E-W direction near Heunghae-eup, and its southern block is displaced down by about 250 m relative to its northern block. The thicknesses of Yeonil Group vary from 200 m to 400 m and from 500 m to 700 m in the southern and northern blocks of the fault, respectively. Above two faults are normal faults and make a graben structure, which results the age of rocks in the central region between the faults is younger than those of outside regions. This result coincides with that of paleontological study.

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포텐셜필드의 스텍트럼대비법을 이용한 의성소분지의 지구조 연구 (Geologic Structure of Euiseong Sub-basin from Spectrally Correlated Geopotential Field Anomalies)

  • 김원균
    • 자원환경지질
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    • 제33권3호
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    • pp.217-228
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    • 2000
  • We use spectral correlation method to analyze gravity and magnetic anomalies of Euiseong Sub-basin for distribution of rock facies and gelogic structures. The analysis reveals distinct polarity between gravity and magnetic anomaly correlation ; intermediate to mafic intrusives, extrusives, and the Tertiary basin shows positive gravity (+G) and positive magnetic (+M) correlation. Granitic gneiss and felsic volcanics negative gravity 9-G) and negative magnetic (-M) correlation. The Palgongsan granite, felsic to mafic extrusives and Mesozoic granites are characterized by -G and + M correlation. +G and -M correlations in the sedimentary formations are interpreted by uplift of pre-Cretaceous basement rocks . The + G and + M correlation characteristics in northeastern part of Euiseong Sub-basin including the Tertiary sedimentary basin result from the uplift of crustal materials. Major axes of spectrally correlated amomalies have mostly NW-SE or NE-SW directions. The former is due to the intrusives along strike-slip faults, and the latter which is observed in sedimentary formations is related to geological structures of basement associated new insight into the boundary between Euiseong and Milyang Sub-basin.

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활성단층의 3차원적인 규모를 결정하기 위한 중력장 데이터의 해석 및 지각구조 모델링: 양산단층에서의 예 (Gravity Field Interpretation and Underground Structure Modelling as a Method of Setting Horizontal and Vertical Zoning of a Active Fault Core)

  • 최승찬;김성욱;최은경;이영철;하상민
    • 자원환경지질
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    • 제54권1호
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    • pp.91-103
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    • 2021
  • 경상북도 포항시 냉수리 지역에 위치하는 양산단층의 수평 및 수직적 규모를 파악하기 위해서 단층을 동-서로 가로지르는 측선을 따라 중력장을 측정하였다. 그 결과, 단층 경계부에서 1.5 mGal의 뚜렷한 중력의 변화를 확인하였다. 이는 양산단층 서쪽과 동쪽의 지각 밀도가 서로 다르다는 것을 나타내며, 기존의 지질 및 지구물리 조사 결과와 비교해 보았을 때, 냉수리를 통과하는 양산단층은 서쪽의 불국사 화강암층과 동쪽의 경상계 퇴적암이 혼합된 파쇄대라는 것을 의미한다. 오일러 디콘볼루션(Euler deconvolution) 및 곡률 분석(Curvature analysis) 방식을 이용하여 파쇄대의 3차원적 규모를 확인한 결과, 깊이는 약 2,000 m이며, 남남서-북북동 방향으로 최소 약 3,000 m 정도 이어지는 것으로 파악되었다. IGMAS+ 소프트웨어를 이용한 지각구조 모델링 결과는 파쇄대 서쪽과 동쪽 지각의 밀도 차이가 약 0.1 g/㎤이라는 것을 보여주었다. 이상의 연구 결과는 중력장 데이터의 해석과 모델링이 지표면에 나타난 활성단층의 규모를 심부까지 파악 할 수 있는 매우 효과적인 방법이라는 것을 보여준다. 또한 지금까지 지표면을 중심으로 2차원적으로 수행했던 활성단층 지도 제작 사업의 영역을 3차원으로 확대할 수 있는 이상적인 수단이 된다.

반복적 비선형역산에 의한 2차원 지질구조의 중력자료 해석 연구 (A Study on Interpretation of Gravity Data on Two-Dimensional Geologic Structures by Iterative Nonlinear Inverse)

  • 고진석;양승진
    • 자원환경지질
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    • 제27권5호
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    • pp.479-489
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    • 1994
  • In this paper, the iterative least-squares inversion method is used to determine shapes and density contrasts of 2-D structures from the gravity data. The 2-D structures are represented by their cross-sections of N-sided polygons with density contrasts which are constant or varying with depth. Gravity data are calculated by theoretical formulas for the above structure models. The data are considered as observed ones and used for inversions. The inversions are performed by the following processes: I) polygon's vertices and density contrast are initially assumed, 2) gravity are calculated for the assumed model and error between the true (observed) and calculated gravity are determined, 3) new vertices and density contrast are determined from the error by using the damped least-squares inversion method, and 4) final model is determined when the error is very small. Results of this study show that the shape and density contrast of each model are accurately determined when the density contrast is constant or vertical density gradient is known. In case where the density gradient is unknown, the inversion gives incorrect results. But the shape and density gradient of the model are determined when the surface density contrast is known.

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토목.환경 응용을 위한 고정밀 중력탐사 (Microgravity for Engineering and Environmental Applications)

  • 박영수;임형래;임무택
    • 한국지구물리탐사학회:학술대회논문집
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    • 한국지구물리탐사학회 2007년도 특별 심포지엄 논문집
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    • pp.15-25
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    • 2007
  • Gravity method could be one of the most effective tool for evaluating the soundness of basement which is directly correlated with density and its variations. Moreover, Gravimeter is easy to handle and strong to electromagnetic noises. But, gravity anomaly due to the target structures in engineering and environmemtal applications are too small to detect, comparing to the external changes, such as, elevation, topography, and regional geological variations. Gravity method targeting these kinds of small anomaly sources with high precision usually called microgravity. Microgravimetry with precision and accuracy of few ${\mu}Gal$, can be achieved by the recent high-resolution gravimeter, careful field acquisition, and sophisticated processing, analysis, and interpretation routines. This paper describes the application of the microgravity, such as, density structure of a rock fill dam, detection of abandoned mine-shaft, detection and mapping of karstic cavities in limestone terrains, and time-lapse gravity for grout monitoring. The case studies show how the gravity anomalies detect the location of the targets and reveal the geologic structure by mapping density distributions and their variations.

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