Browse > Article

Petrological Study of the Dioritic and Granitic Rocks from Geochang Area  

Han, Mi (Division of Earth Environmental System, The Graduate School, Pusan National University)
Kim, Sun-Woong (Division of Earth Environmental System, The Graduate School, Pusan National University)
Yang, Kyoung-Hee (Division of Earth Environmental System, The Graduate School, Pusan National University)
Kim, Jin-Seop (Division of Earth Environmental System, The Graduate School, Pusan National University)
Publication Information
The Journal of the Petrological Society of Korea / v.19, no.3, 2010 , pp. 167-180 More about this Journal
Abstract
The geochemical studies on the plutonic rocks of the Geochang, the central part of the Ryongnam massif, were carried out in order to constrain the petrogenesis and the paleotectonic environment. The objects of this study are dioritic rocks, biotite granite and hornblende granite. The modal compositions indicate that the dioritic rocks are quartz diorite, quartz monzodiorite, tonalite, biotite granites are granodiorite, granite and hornblende granites are granite, quartz monzonite, quartz syenite. These rocks belong to the calc-alkaline series. Especially, trace elements such as Sr, Nb, Sr, Ti are depleted, suggesting that these rocks are produced in the subduction zone related to calc-alkaline series. Also, the studied granitic rocks correspond to peraluminous and I-type. Chondrite-normalized REE patterns show that LREE are enriched much more than HREE, and have weak Eu(-) anomaly. It is similar to pattern of Jurassic granitoids in the South Korea. Total REE value of the biotite granite and hornblende granite ranges 76.21~137.05 ppm and 73.84~483.21 ppm, respectively, also $(La/Lu)_{CN}$ value ranges 9.61~36.47 and 7.17~21.85. It is suggest that studied rocks suppor their emplacement at active continental margin. Also, these rocks are derived from magma generated by partial melting of lower continental crust materials.
Keywords
Geochang; calc-alkali series; Jurassic granitoids; active continental margin;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
연도 인용수 순위
1 이상만, 나기창, 이상헌, 박배영, 이상원, 1981, 소백산육괴 (동남부)의 변성암복합체에 대한 변성작용에 관한 연구. 지질학회지, 17, 169-188.
2 김규한, 1992, 남한의 일부 중생대 화강암류의 지구화학적연구. 광산지질, 25, 435-446.
3 김남장, 김정환, 1970, 1 : 50000 거창지질도폭설명서. 국립지질조사소, 14p.
4 김동학, 황재하, 박기화, 송교영, 1998, 1 : 250,0000 부산지질도폭설명서, 한국지질자원연구원.
5 김용준, 조등룡, 박영석, 1989, 거창지역에 분포하는 중생 대 화성암류에 대한 연령과 주성분 광물의 화학조성. 광산지질, 22, 117-127.
6 Oh, C.W., 2006, A new concept on tectonic correlation between Korea, China and Japan Histories from the late proterozoic to Cretaceous, Gondwana Research, 9, 47-61   DOI   ScienceOn
7 Willson, M., 1989. Igneous Petrogenesis. Unwin Hyman, London. 17, 179-180.
8 Condie, K.C., 1989, Plate tectonics & crustal evolution (3ed). Pergamon press, Oxford, 476.
9 Cullers, R.L. and Graf, J.L., 1984, Rare earth elements in igneous rocks of the continental crust : intermediate and silicic rocks - ore petrogenesis : in Henderson, P., Rare earth elements geochemistry, Elsevier Science Publication.
10 Hong, Y.K., 1987, Geochemical Characteristics of Precambrian, Jurassic and Cretaceous Granites in Korea. Journal of Korean Institute of Mining Geology, 20, 35-60.
11 Irvine, T.N. and Baragar, W.R.A., 1971, A guide to the chemical classification of the common volcanic rocks. Canadian Journal of Earth Sciences, 8, 523-548.   DOI
12 Lefort, P., 1981, Manaslu leucogranite, a collision signature of the himalaya : A model for its genesis and emplacement. Journal of Geophysical Research, 86, 10545-10568.   DOI
13 Maruyama, S., Isozaki, Y., Kimura, G. and Terabayashi, M., 1997, Paleogeographic maps of the Japanese Island : Plate tectonic synthesis from 750 Ma to the present. The Island Arc, 6, 121-142.   DOI
14 이종래, 이윤종, Masao Hayashi, 1993, 함양-거창 지역, 화성암류의 저어콘 휫션트랙 연대. 광산지질, 26, 186-191
15 이철락, 이윤종, Masao Hayashi, 1992, 함양-거창 지역, 쥬라기 화강암류의 암석학적 연구. 광산지질, 25, 447-461.
16 좌용주, 최진범, 김건기, 김종선, 황길찬, 2007, 거창지역에서 산출되는 화강암석재의 품질 기준. 암석학회지, 16, 38-45.   과학기술학회마을
17 Arakawa, Y., Saito, Y. and Hiroshi Amakawa, 2000, Crustal development of the Hida belt, Japan : Evidence from Nd- Sr isotopic and chemical characteristics of igneous and metamorphic rocks. Tectonophisics, 328, 183-204.   DOI   ScienceOn
18 Chappell, B.W. and White, A.J.R., 1974, Two contrasting granite types. Pacific Geology, 8, 173-174.
19 Choi, S.G., Park, S.J., Kim, S.W., Kim, C.S. and Oh, C.W., 2006, Mesozoic Gold-Silver mineralization in South Korea : Metallogenic Provinces Reestimated to the geodynamic Setting. Economic and Environmental. Geol., 39, 567-581.
20 박계헌, 이호선, 송용선, 정창식, 2006, 영남육괴 함양, 거창 및 영주 화강암-화강섬록암의 스핀 U-Pb 연대. 암석학회지, 15, 39-48.   과학기술학회마을
21 박영석, 김용준, 권성택, 박재봉, 1993, 거창 - 고령지역산 화성암류에 대한 Rb-Sr 동위원소 연구. 한국지구과학학회지, 14, 32-43.
22 이병주, 황재하, 1997, 경상분지 북동부에서의 가음단층과 양산단층의관계. 지질학회지, 33, 1-8.
23 이상만, 1980, 지리산(하동-산청)지역의 변성이질암의 변성작용에 관한 연구. 지질학회지, 16, 1-15.