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| 기사명 | 저자명 | 페이지 | 원문 | 목차 |
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| 인도네시아 파찌딴 광화대 함 금속 광체의 안정동위원소 특성 = Stable Isotopes of Ore Bodies in the Pacitan Mineralized District, Indonesia | 한진균, 최상훈 | pp.15-24 | ||
| 무주 승륭 아연광상의 광석광물과 생성환경 | 염태선, 신동복 | pp.1-13 | ||
| 사워가스 학술정보 동향 | 조진동 | pp.89-101 | ||
| 인제단층의 중생대 이후 재활동 연대 | Chuluunbaatar Khulganakhuu, 송윤구, 정동훈, 박창윤, 최성자, 강일모, 이기욱 | pp.41-49 | ||
| 동해 울릉분지 CO2 저장소 특성 분석을 위한 탄성파 자료처리 및 역산 | 이호용, 김민준, 박명호 | pp.25-39 | ||
| 해방이전 외국인에 의한 서구식 한반도 지질광상조사 성과고찰연구 | 김성용, 이재욱 | pp.77-88 | ||
| 지역화된 동북아시아지역의 지구자기장 영년변화 모델, 1997-2011 | 김형래 | pp.51-63 | ||
| 세계 석탄층메탄가스(CBM) 개발전망 | 김영인 | pp.65-75 |
| 번호 | 참고문헌 | 국회도서관 소장유무 |
|---|---|---|
| 1 | Hydrothermally precipitated mixed-layer illite-smectite in recent massive sulfide deposits from the sea floor ![]() |
미소장 |
| 2 | Review of Radiometric Ages for Phanerozoic Granitoids in Southern Korean Peninsula | 소장 |
| 3 | Optimization of Illite Polytype Quantification Method | 소장 |
| 4 | Reactivated Timings of Some Major Faults in the Chugaryeong Fault Zone since the Cretaceous Period | 소장 |
| 5 | Review on the Chugaryeong Fault | 소장 |
| 6 | Choi, P.-B., Kim, H., Lee, S.R., and Kwon, S. (2009) Geological report of the Inje sheet (scale 1:50,000). Korea Institute of Geoscience and Mineral Resources (KIGAM), 58p. | 미소장 |
| 7 | Duvall, A.R., Clark, M.K., van der Pluijm, B.A. and Li, C. (2011) Direct dating of Eocene reverse faulting in northeastern Tibet using Ar-dating of fault clays and low-temperature thermochronometry. Earth and Planetary Science Letters, v.304, p.520-526. | 미소장 |
| 8 | Illite Polytype Quantification Using Wildfire© Calculated X-Ray Diffraction Patterns ![]() |
미소장 |
| 9 | Origin of illite in the lower Paleozoic of the Illinois basin: Evidence for brine migrations ![]() |
미소장 |
| 10 | Clay quantification and Ar–Ar dating of synthetic and natural gouge: Application to the Miocene Sierra Mazatán detachment fault, Sonora, Mexico ![]() |
미소장 |
| 11 | Smectite-to-illite conversion in natural hydrothermal systems ![]() |
미소장 |
| 12 | Argon isotope analysis by a newly developed mass spectrometric system for K-Ar dating. ![]() |
미소장 |
| 13 | KIGAM (1995) Geological Map of Korea (1:1,000,000), KIGAM. | 미소장 |
| 14 | KIGAM (2012) Active Fault Map and Seismic Harzard Map, KIGAM report (NEMA-자연-2009-24), KIGAM, 899p. | 미소장 |
| 15 | Kim, J.C., Ko, H.J., Lee, S.R., Lee, C.B., Choi, S.-J., and Park, K.H. (2001) Explanatory Note of the Gangreung-Sokcho sheet (scale 1:250,000). Korea Institute of Geoscience and Mineral Resources (KIGAM), 76p. | 미소장 |
| 16 | Surface Microtopography of Lath-Shaped Hydrothermal Illite by Tapping-Mode™ and Contact-Mode AFM ![]() |
미소장 |
| 17 | Atomic Force Microscopy Study of Hydrothermal Illite in Izumiyama Pottery Stone from Arita, Saga Prefecture, Japan ![]() |
미소장 |
| 18 | Lee, D.-S. (1987) Geology of Korea. Geological Society of Korea, Kyohak-sa. 514p. | 미소장 |
| 19 | Petrogenesis of three Cretaceous granites in the Okcheon Metamorphic Belt, South Korea: Geochemical and Nd–Sr–Pb isotopic constraints ![]() |
미소장 |
| 20 | Ludwig, K.R. (2003) User's manual for Isoplot 3.00a Geochronological toolkit for Microsoft Excel. Berkeley Geochronology Center Special Publication, Berkeley. | 미소장 |
| 21 | Pevear, D.R. (1992) Illite age analysis, a new tool for basin thermal history analysis. In: Kharaka, Y.K. and Maest, A.S. (eds.) Water-Rock interaction. Balkema, Rotterdam, p.1251-1254. | 미소장 |
| 22 | Illite and Hydrocarbon Exploration ![]() |
미소장 |
| 23 | Rahl, J.M., Haines, S.H. and van der Pluijm, B.A. (2011)Links between orogenic wedge deformation and erosional exhumation: Evidence from illite age analysis of fault rock and detrital thermochronology of syn-tectonic conglomerates in the Spanish Pyrenees. Earth and Planetary Science Letters, v.307, p.180-190. | 미소장 |
| 24 | Reynolds, R.C.Jr. (1994) WILDFIRE: a computer program for the calculation of three dimensional X-ray diffraction patterns of mica polytypes and their disordered variation. 8 Brook Rd. | 미소장 |
| 25 | Episodic mineralization of hydrothermal illite in the Soultz-sous-Forêts granite (Upper Rhine Graben, France) ![]() |
미소장 |
| 26 | Nanocoatings of clay and creep of the San Andreas fault at Parkfield, California ![]() |
미소장 |
| 27 | Solum, J.G., van der Pluijm, B.A. and Peacor, D.R. (2005)Neocrystallization, fabrics and age of clay minerals from an exposure of the Moab Fault, Utah. Journal of Structural Geology, v.27, p.1563-1576. | 미소장 |
| 28 | K–Ar illite dating to constrain multiple events in shallow crustal rocks: Implications for the Late Phanerozoic evolution of NE Asia ![]() |
미소장 |
| 29 | Srodon, J. and Eberl, D.D. (1984) Illite. In Bailey, S.W. (ed.) Micas, Reviews in Mineralogy. Mineralogical Society of America, Washington DC. 13, p.495-544. | 미소장 |
| 30 | The dating of shallow faults in the Earth's crust. ![]() |
미소장 |
| 31 | Fault dating in the Canadian Rocky Mountains: Evidence for late Cretaceous and early Eocene orogenic pulses ![]() |
미소장 |
| 32 | Vrolijk, P. and van der Pluijm, B.A. (1999) Clay gouge. Journal of Structural Geology, v.21, p.1039-1048. | 미소장 |
| 33 | Williams, I.S. (1998) U-Th-Pb geochronology by ion microprobe. In: McKibben, M.A., Shanks, W.C.III., Ridley, W.L. (Eds.), Applications of microanalytical techniques to understanding mineralizing processes. Society of Economic Geologists, Socorro: Reviews in Economic Geology, v.7, p.1-35. | 미소장 |
| 34 | Isotopic evidence for the Precambrian provenance and Caledonian metamorphism of high grade paragneisses from the Seve Nappes, Scandinavian Caledonides ![]() |
미소장 |
| 35 | Geochronology, and geochemical and Nd–Sr isotopic characteristics, of Triassic plutonic rocks in the Gyeonggi Massif, South Korea: Constraints on Triassic post-collisional magmatism ![]() |
미소장 |
| 36 | Discussion of "Extracting K-Ar ages from shales: a theoretical test" ![]() |
미소장 |
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