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      • SCOPUSKCI등재
      • SCOPUSKCI등재
      • KCI등재

        옥천대(沃川帶) 북동변(北東邊)에 분포(分布)하는 부산혼성편마암(婦山混成片麻岩)에 대(對)한 암석학적(岩石學的) 연구(硏究)

        나기창,Na, Ki-Chang 대한자원환경지질학회 1987 자원환경지질 Vol.20 No.4

        Busan migmatitic gneisses in the northeastern margin of the Ogcheon zone have been studied petrologically in order to clarify their origin. Petrochemical and mineralogical studies show that the gneisses are Precambrian basemental paragneisses and the rocks were migmatized more intensively than the Bagdalryeong gneisses which have been known to constitute the basemental gneisses of Ogcheon zone. K-Ar biotite isotopic ages are $150.79{\pm}3.37Ma$ in Busan migmatitic gneiss and $191{\pm}4.27Ma$ in Bagdalryeong gneisses. These ages seem to be isotopic homogenised ages. Progressive regional metamorphisms are predominent in the studied area showing greenschist facies, epidote amphibolite facies and amphibolite facies toward N-W direction.

      • KCI등재

        서산층군(瑞山層群)의 층서(層序) 및 변성작용(變成作用)

        나기창,김형식,이상헌,Na, Ki Chang,Kim, Hyung Shik,Lee, Sang Hun 대한자원환경지질학회 1982 자원환경지질 Vol.15 No.1

        The Seosan Group in the Taean peninsular can be divided into Seosan formation and Daesan formation according to its metamorphism and stratigraphy. The Seosan formation is composed of iron bearing quartzite and schist which are strongly metamorphosed and migmatized about 2572 m.y.ago. The Daesan formation is composed mainly of quartzite and crystalline limestone. They were intruded by granite gneiss 2370m.y ago and metamorphosed two or three times before Jurassic Period. The Group is overlain by Taean formation which shows low grade metamorphism. Total three times metamorphic events can be recognized in these areas. First and second metamorphisms are predominent in amphibolite facies, the last metamolphism is mostly greenschist facies.

      • KCI등재

        충주층군(忠州層群)과 서산층군(瑞山層群)의 비교연구(比較硏究)

        나기창,김형식,이동진,이상헌,Na, Ki Chang,Kim, Hyung Shik,Lee, Dong Jin,Lee, Sang Hun 대한자원환경지질학회 1982 자원환경지질 Vol.15 No.4

        The Chungju and Seosan Groups have been known usually as Precambrian formations in Korea. But their relative and absolute ages have been controvericial problem in relation with other geologic system such as so-called Ogcheon and Yeoncheon Systems in Korea. This study has mainly focused on the corelation of the Chungju Group with the Seosan Group in their stratigraphy, structure, metamorphism, and iron ore deposits. In the process of study, the auther surveyed and reclassified the Chungju and Seosan Groups and corelated with Gyeonggi and Ogch cheon metamorphic belts and got some new data. The Chungju iron-bearing formations showing transtitional relation with the Gyeonggi Gneiss Complex and the Jangamri Formation consisting mainly of pebble bearing calcarious phyllite, should be seperated from the Gyemyeongsan formation which is mainly composed of metavolcanic rocks. The Jangamri Formation and the coaly phyllite, which can be corelated respectively with the Hwaggangri Formation and Changri Formation in Ogcheon Group, are repeated in the Gyemyeonsan and Munjuri Formations with the overturned anticlinal folding(F1). So the Chungju Group which was defined as an indipendant geologic unit from the Ogcheon Group should be limited only on the Chungju iron Formation. The Seosan Group can be classified stratigraphically such as Seosan Formation consisting of iron-bearing quartzite and mica schist, Daesan Formation overlying unconformably on the Seosan Formation and Gyeonggi Gneiss Complex. Taean Formation overlying unconformably on the Daesan Formation should be seperated from Seosan Group. There are many similarity in the stratigrphy, structure, and metamorphic facies between Chungju and Seosan Groups exept the metavolcanic rocks in the Gyemyeongsan and Munjuri Formations and the pebble bearing calcareous phyllite in the Jangamri Formation. The two Groups were deformed with two kinds of differant stages, the first shows $N30^{\circ}-40^{\circ}E$ trend of fold axis, the second $N70^{\circ}-80^{\circ}W$ respectively. The Seosan Formation, which is the lowest formation in Seosan Group and bearing the iron formation, was metamorphosed at 2500 m. y. before. These age is similar with the metamorphic age of Gyeonggi metamorphic belt and with the age of Algoman and Kenoran Orogenies which devide the Precambrian into Archean and Proterozoic Era. So the Seosan Formation, which is included in some migmatitic rocks of Gyeonggi Gneiss Complex, is the oldest formation in Korea and can be corelated with the Anshan Group which bears the oldest iron formation in China. The metamorphic facies of the Precambrian metamorphism in Seosan area is simillar with that of Chungju area, showing high temperature-low pressure amphibolite facies which is corelated with the Gyeonggi metamorphic belt, the oldest metamorphic belt in Korea ($650^{\circ}-680^{\circ}C$, 3.2-4.4 Kb). The high temperature intermediate pressure amphibolite facies in Seosan area with the low temperature-intermediate presure greenschist facies of Taean formation is corelated with that of Ogcheon Group ($590^{\circ}-640^{\circ}$ C, 5.2-6.3 Kb). The Chungju and Seosan iron formations were deposited in Archean, showing geochemical composition of Precambrian iron formations. The Chungju iron formation was mainly formed by the chemical precipitation, on the other hand, the Seosan iron formation was formed by alternated action of chemical and detrital depositions.

      • KCI우수등재

        삼척지역 북동 영남 육괴에 분포하는 우백질 화강암의 기원 및 진화

        정원석(Won Seok Cheong),나기창(Ki Chang Na) 한국암석학회 2008 암석학회지 Vol.17 No.1

        삼척 원덕읍에 분포하는 영남육괴 변성퇴적암류에 대한 변성작용을 판단하고 이에 따른 우백질 화강암의 기원과 진화과정을 규명하였다. 변성퇴적암류는 광물 조합에 따라 크게 석류석대와 규선석대로 나눌 수 있다. 규산질 퇴적암의 특징을 나타내는 변성퇴적암류는 암석성인격자를 바탕으로 석류석대는 4.8-5.8 kbar, 740-800°C, 규선석대는 2.5-4.5 kbar, 640-760°C의 변성작용을 받았다. 이 지역에 분포하는 우백질 화강편마암류(임원 우백질화강암)는 A/CNK = 1.31-1.93이고 DF(discriminant factor)>0인 과알루미늄질 화강암이다. 따라서 이는 S-type의 화강암류에 속하며 이의 기원은 주변의 변성퇴적암류이다. 주원소 및 미량원소 성분들은 우백질 화강암이 충돌대 또는 화산호 화강암 같은 대륙의 충돌 환경과 관련성을 나타낸다. 우백질 화강암의 Rb/Sr의 비율(1.8-22.9)은 Sr/Ba 비율(0.21-0.79)에 비해 크기 때문에 백운모의 탈수 용융작용으로 우백질 마그마가 형성되었다. 우백질 화강암의 REE 함량은 전반적으로 변성퇴적암류보다 낮은 LREE 함량과 비슷한 HREE 함량을 갖는다. 이러한 형성 과정을 확인하기 위해 일부 변성퇴적암 및 우백질화강암 시료의 광물 함량비율과 기존 연구의 유문암 및 미그마타이트에 들어 있는 광물의 REE 함량을 이용하여 모델링을 수행했다. 이에 따르면 일부 우백질 화강암의 HREE를 저어콘이 조절했을 가능성도 보여주나, 대부분의 우백질 화강암의 LREE 조절자는 모나자이트이고 HREE 조절자는 석류석으로 판단된다. 변성퇴적암에서 부수광물들 모나자이트 및 저어콘 같은 부수광물들은 주로 흑운모의 포유물로 확인되기 때문에 변성퇴적암으로부터 형성된 우백질 마그마는 주로 백운모의 붕괴 작용으로 형성된 것이다. 콘드라이트로 표준화한 REE 패턴에서 우백질 화강암은 음의 Eu 이상치를 갖는 것(Type Ⅰ)과 양의 이상치를 갖는 것(Type Ⅱ)로 구분할 수 있다. 우백질 화강암은 변성퇴적암류에 비해 낮은 Eu 함량을 갖으며 REE 형태와 관계없이 비슷한 Eu 함량을 갖는다. 이는 REE 모델링에서 변성퇴적암과 우백질 화강암의 장석 성분과 관련이 깊은 것으로 나타난다. 또한 주원소 (K₂O and Na₂O) 및 미량원소(Eu, Rb, Sr, Ba) 역시 강한 알칼리 장석의 분화작용을 지시한다. 결론적으로 본 연구 지역에 분포하는 우백질 화강암은 대륙충돌 환경에서 변성퇴적암류가 고온변성작용 중에 발생한 백운모 탈수 용융작용으로 발생된 용융체가 이후 분화과정을 겪어 산출된 것으로 판단된다. We study metamorphism of metasedimetary rocks and origin and evolution of leucogranite form Samcheok area, northeastern Yeongnam massif, South Korea. Metamorphic rocks in this area are composed of metasedimentary migmatite, biotite granitic gneiss and leucogranite. Metasedimentary rocks, which refer to major element feature of siliclastic sediment, are divided into two metamorphic zones based on mineral assemblages, gamet and sillimanite zones. According to petrogenetic grid of mineral assemblages, metamorhpic P-T conditions are 740~800°C at 4.8~5.8 kbar in the garnet zone and 640-760 °C at 2.5-4.5 kbar in sillimanite zone. The leucogranite (Imwon leucogranite) is peraluminous granite which has high alumina index (A/CNK=1.31-1.93) and positive discriminant factor value (DF > 0). Thus, leucogranite is S-type granite generated from metasedimentary rocks. Major and trace element diagram (R₁-R₂ diagram and Rb vs. Y+Nb etc.) show collisional environment such as syn-collisional or volcanic arc granite. Because Rb/Sr ratio (1.8-22.9) of leucogranites is higher than Sr/Ba ratio (0.21-0.79), leucogranite would be derived from muscovite dehydrate melting in metasedimentary rocks. Leucogranites have lower concentration of LREE and Eu and similar that of HREE relative to metasedimentary rocks. To examine difference of REEs between leucogranites and metasedimentary rocks, we perform modeling using volume percentage of a leucogmite and a metasedimenatry rock from study area and REE data of minerals from rhyolite (Nash and Crecraft, 1985) and melanosome of migmatite (Bea et al., 1994). Resultants of modeling indicate that LREE and HREE are controlled by monazites and garnet, respectively, although zircon is estimated HREE dominant in some leucogranite without garnet. Because there are many inclusions of accessary phases such as monazite and zircon in biotites from metasedimentary rocks. leucogranitic magma was mainly derived from muscovite-breakdown in metasedimenary rocks. Leucogranites can be subdivided into two types in compliance with Eu anomaly of chondrite nomalized REE patterm; the one of negative Eu anomaly is type I and the other is type II. Leucogranites have lower Eu concentrations than that of metasedimenary rocks and similar that of both type. REE modeling suggest that this difference of Eu value is due to that of components of feldspars in both leucogranite and metasedimentary rock. The tendency of major (K₂O and Na₂O) and trace elements (Eul, Rb, Sr and Ba) of leucogranites also indicate that source magma of these two types was developed by anatexis experienced strong fractionation of alkali-feldspar. Conclusionally, leucogranites in this area are products of melts which was generated by muscovite-breakdown of metasedimentary rock in environment of continetal collision during high temperature/pressure metamorphism and then was fractionated and crystallized after extraction from source rock.

      • SCOPUSKCI등재
      • KCI우수등재
      • SCOPUSKCI등재
      • KCI우수등재

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