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      • KCI등재

        Skarn Formation in Metamorphic Rocks of the Chungju Mine Area

        김근수,박맹언,Kim, Gun-Soo,Park, Maeng-Eon The Korean Society of Economic and Environmental G 1995 자원환경지질 Vol.28 No.3

        충주 광산 지역은 계명산층과 이를 관입한 중생대 화강암질 암석으로 구성되며, 이들 화강암질 암석중 백악기초(134 Ma) 흑운모 화강암과 계명산층을 구성하는 석영-운모 편암의 접촉부에서 회중석을 수반하는 스카른 광상이 산출된다. 스카른은 구성광물의 공생 특성과 주 구성광물의 양적인 비에 의해 석류석 스카른대, 규회석 스카른대, 녹염석 스카른대 및 녹니삭 스카른대로 분류된다. 석류석의 화학조성은 초기 순수한 안드라다이트 (>Ad96)에서 후기 알루미늄 함량비가 증가하는 안드라다이트-그라슈라(Ad~50)로 점이적인 변화를 나타내며, 녹염석은 $Fe^{3+}$ 의 함량비가 높은 고용체 상(Ps=35)에서 암루미늄 함량비가 높은 고용체 상(Ps=25)으로 변화하는 양상을 띤다. 광물 공생 및 화학 조성상의 특징으로 볼 때 스카른화 작용은 Ca와 Fe의 활동도가 흑운모 화강암의 접촉부에서 높고 Al, Mg, K 및 Si 활동도는 석영-운모 편암내에 발달되는 스카른에서 증가하는 경향을 나타낸다. 녹염석 스카른대에서 산출되는 회중석의 유체포유물 균질화 온도는 $300{\sim}380^{\circ}C$ 이며 NaCl 상당 염농도는 3-8wt. %로, 석영 및 녹염석 유세포유물 균질화 온도는 $300{\sim}400^{\circ}C$이다. 후기 녹니석 스카른대내에서 수반되는 황화광물의 황 동위원소비는(${\delta}^{34}S$) 황철석 $9.13{\sim}9.51%_{\circ}$, 방연석 $5.85{\sim}5.96%_{\circ}$이며, 공존하는 황철석-방연석 광물쌍에 의한 동위 원소 지질온도는 $283{\pm}20^{\circ}C$이다. 이산화탄소 몰분율($X_{CO_2}$)은 $L-CO_2$가 관찰되지 않으며 $H_2O$ 풍부한 유체포유물로 구성되고 있는점과, 안드라다이트 및 규회석의 광물공생 특성과 대비하여 볼때 약 0.01로 추정된다. 광물공생 및 화학조성, 상 안정 관계, 유체포유물 연구, 동위원소 지질온도계등의 연구 결과에 의해 충주광산 지역 스카른화 작용은 $400{\sim}260^{\circ}C$ 온도 조건과 산소분압이 감소($fo_2=10^{-30}{\sim}10^{-25}$)하는 환경에서 진행되었으며, 텅스텐 광화작용은 이러한 스카른 형성 과정 중 온도의 감소($350^{\circ}C$)와 산소분압이 감소($fo_2=10^{-27}$) 하는 조건에서 수반되었다. Tungsten skarns in the Chungju mine which consists mainly of strata-bound type iron ore deposits are found in the vicinity of the contact between the age-unknown Kyemeongsan Formation and granitic rock intrusions of Mesozoic age($134{\pm}2Ma$). Tungsten skarns were formed extensively from alumina and silica-rich schistose rocks by the introduction of calcium and iron from hydrothermal solution. The skarns comprise a metasomatic column and are subdivided into four facies; garnet facies, wollastonite facies, epidote facies and chlorite facies. The skarn process in time-evolutional trend can be divided broadly into the four facies in terms of the paragenetic sequence of calc-silicates and their chemical composition. Skarn and ore minerals were formed in the following sequence; (1) garnet facies, adjacent to biotite granite, containing mainly garnet(>Ad96) and magnetite, (2) wollastonite facies containing mainly wollastonite and garnet(Ad95~60), (3) epidote facies, containing mainly epidote(Ps35~31), quartz, andradite-grossular(Ad63~50), and scheelite, (4) chlorite facies, adjacent to and replacing schist, containing mainly chrolite, muscovite, quartz, calcite, epidote(Ps31~25), hematite and sulfides. The mineral assemblage and mineral compositions. suggest that the chemical potentials of Ca and Fe increased toward the granitic rock, and the component Al, Mg, K, and Si decreased from the host rock to granitic rock. The homogenization temperature and salinity of fluid inclusion in scheelite, quartz and epidote of epidote facies skarn is $300-400^{\circ}C$ and 3-8wt.% eqiv. NaCl, respectively. ${\delta}^{34}S$ values of pyrite and galena associated with chlorite facies skarn is $9.13{\sim}9.51%_{\circ}$ and $5.85{\sim}5.96%_{\circ}$, respectively. The temperature obtained from isotopic com· position of coexisting pyrite-galena is $283{\pm}20^{\circ}C$. Mineral assemblages and fluid inclusion data indicate that skarn formed at low $X_{CO_2}$, approximately 0.01. Temperature of the skarn mineralization are estimated to be in the range of $400^{\circ}C$ to $260^{\circ}C$ and pressure to be 0.5 kbar. The oxygen fugacity($fo_2$) of the skarn mineralization decreased with time. The early skarn facies would have formed at log $fo_2$ values of about -25 to -27, and late skarn facies would have formed at log $fo_2$ values of -28 to -30. The estimated physicochemical condition during skarn formation suggests that the principal causes of scheelite mineralization are reduction of the ore·forming fluid and a decrease in temperature.

      • KCI등재

        Banded and Massive Iron Mineralization in Chungju Mine(I): Geology and Ore Petrography of Iron Ore Deposits

        김근수,박맹언,엔조지 마모루,Kim, Gun-Soo,Park, Maeng-Eon,Enjoji, Mamoru The Korean Society of Economic and Environmental G 1994 자원환경지질 Vol.27 No.6

        충주 광산은 한반도의 대표적인 층상 규제형 (strata-bound type) 철광상의 하나이다. 광산 부근의 지질은 규암 및 편암류로 구성되는 변성 퇴적암 (계명산층)과 후기의 관입 화성암으로 이루어져 있다. 철광층은 주로 변성암의 편리와 조화적 관계를 가지며 층상 또는 렌즈상으로 산출되고 부분적으로 불규칙한 괴상으로 발달되기도 한다. 광상은 산출상태, 구조 및 조직, 구성 광물의 공생특성 등에 의해 호상광석과 괴상광석으로 구분된다. 호상광석 (banded ore)은 적철석, 적철석+자철석, 자철석 및 석영이 우세한 분대 (meso- bands)의 반복에 의한 대상구조가 특정적이다. 괴상광석 (massive ore)은 화강암질 암석의 접촉부를 따라 불규칙한 형태로 산출되며, 대부분이 자철석으로 구성된다. 철산화광물 및 규산염 광물의 입자 크기는 호상광석에서 보다 괴상광석에서 더 조립질을 나타낸다. 호상 및 괴상광석을 구성하는 자철석의 조성은 거의 순수한 $Fe_3O_4$로 구성되지만, Mn의 함량에서 차이가 있음을 알 수 있다 (호상광석; 0.14~0.27 MnO wt.%, 괴상광석; 0.10~0.15 MnO wt.%). 적철석은 Ti 성분이 호상 (0.87~1.27 $TiO_2$ wt.%) 및 괴상 (3.51~6.96 $TiO_2$ wt.%) 광석에서 뚜렷한 차이를 보인다. 광석에 수반되는 흑운모의 화학조성은 호상광석이 괴상광석에서보다 FeO, $TiO_2$ 및 $Al_2O_3$ 값은 낮고, MgO와 $SiO_2$는 높다. 충주 철광상은 퇴적작용 내지 변성작용의 특성을 나타내는 대상 (층상)구조와 괴상조직 및 교대조직등의 다양한 변화과정을 반영하고 있으며, 산출상태, 광석광물의 조성 및 조직적 특성은 괴상광석 형성이 호상 광석보다 더 환원적인 환경 또는 고온의 온도 조건에서 야기되었음을 지시한다. 철광상은 초기 철의 퇴적(공급)작용과 후기의 변성작용에 의해 2차 부화작용에 의해 복합적으로 형성된 것으로 추정된다. 호상광석은 광역변성작용에 의해, 괴상광석은 화강암 관업에 의한 영향으로 사료된다. The strata-bound type iron ore bodies in the Chungju mine are interbedded with metamorphic rocks which are intruded by Mesozoic granitic rocks. The iron ore deposit occurs as layer or lens shape which are concordant with the metamorphic rocks. The iron ore is classified into banded and massive types based on the mode of texture and occurrence. Grain size and iron-oxides tend to become coarser toward massive ore than banded ore. Banded ores commonly contain internal layers defined by alternating magnetite- rich, hematite-rich, magnetite-hematite, and quartz-rich mesobands. The banded iron ore consists of hematite, magnetite, quartz, feldspar, and minor amounts of biotite, muscovite, chlorite, carbonates, epidote, allanite, and zircon. Massive ores which are characterized by high magnetite content occur in contact of granitic rocks. The massive iron ores consist mostly of magnetite and quartz, with minor amounts of hematite, pyrite, microcline, biotite, muscovite, chlorite, carbonates, epidote, allanite and zircon. Magnetite from banded and massive ores is almost pure $Fe_3O_4$ in composition, including 0.14 to 0.27 wt.% MnO and 0.10 to 0.15 wt.% MnO, respectively. Hematite of the ore contains 0.87 to 1.27 wt.% $TiO_2$ in banded ore and 3.44 to 6.96 wt.% $TiO_2$ in massive ore, respectively. Biotite shows a little compositional variation depending on ore types. Biotite of the banded ore has lower FeO, $TiO_2$ and $Al_2O_3$, and higher MgO and $SiO_2$ than the massive ore. The modes of occurrence and petrography of ore implies that massive ores might have been formed either under more reducing environments or higher temperature condition than banded ore. Banded ores might represent early episode of iron enrichment due to regional metamorphism. Massive ores might be related to the contact metamorphism resulting from late granitic intrusion.

      • KCI등재

        충주지역 희토류 광상의 성인: 산출상태와 지화학적 특성

        박맹언,김근수,Park, Maeng-Eon,Kim, Gun-Soo 대한자원환경지질학회 1995 자원환경지질 Vol.28 No.6

        Some REE ore deposits are located in the middle part the of Korean peninsula. Geotectonically, the REE ore deposits situated on the Kyemyeongsan Formation of northern margin of the Okcheon geosynclinal belt and in the transitional zone between Kyeonggi massif and the Okcheon belt, with a deep-seated fracture separating the two tectonic units. The Kyemyeongsan Formation are different in lithology and metamorphic grade from the Gyeonggi massif and the Okcheon super group. The sequence of Kyemyeongsan Formation is dominantly composed of acidic metavolcanic and volcaniclastic rocks associated with alkaline igneous rocks which are related to volcano-plutonism. The REE ore deposits contain mainly Ce-La, Ta-Nb, Y, Y-Nd and Nd-Th group minerals. More than 15 RE and REE minerals have been found in the deposits, such as allanite, fergusonite, thorite bestnaesite, euxenite, polyclase, monazite, columbite, (Nb)-rutile, okanoganite, sphene, zircon, illmenite and some other unknown minerals. According to the characteristics of the mineral association, the REE ore deposits may be divided into 4 ore types; Zircon-REE, allanite-REE, feldspar-REE and fluorite-REE type. The Sm-Nd isochron age of the REE ore is 330 Ma, and the Sm-Nd model age is 1.11 Ga with ${\varepsilon}_{Nd(t)}$ being - 2.9. This data suggest that the REE ore deposit was formed in the early Carboniferous, and the ore-forming material came from the mantle. The REE ores show distinct light REE enrichment with strong negative Eu anomaly. The REE patterns of schistose rocks from Kyemyeongsan Formation are similar to felsic volcanics from rifts or back arc basins in or near continental crust. The genesis of the REE ore deposit is quite complicated. Different geologic processes are displayed in the studied area; sedimentation, volcanic activity, metamorphism and hydrothermal replacement. Alkali granite has suffered extensive post-magmatic metasomatism of a high temperature to produce alkali metasomatites. Geochemical charateristics show that metasomatism of alkaline fluid was probably the dominant ore-forming process in Chungju district.

      • KCI등재

        충주지역 희유원소광상에서 산출되는 갈렴석의 지구화학적특성

        박맹언,김근수,최인식,Park, Maeng-Eon,Kim, Gun-Soo,Choi, In-Sik 대한자원환경지질학회 1996 자원환경지질 Vol.29 No.5

        Rare metal (Nb-Zr-REE) ore deposits are located in the Chungju area. Geotectonically, the rare metal ore deposits are situated in the transitional zone between Kyeonggi massif and Okcheon belt. The rare metal deposits are distributed in Kyemyeongsan Formation which consist of schist and alkaline igneous rocks. Alkali granite has suffered extensive post-magmatic metasomatism and hydrothermal processes. The ore contains mainly Ce-La, Ta-Nb, Y, Y-Nd, Nd-Th group minerals. More than 15 RE and REE minerals are found in the ore deposits. Allanite, one of the Ce-La rich REE minerals belonging to the epidote group, is the most common mineral in the studied area. The allanite- bearing rocks may be devided into seven types by features of occurrence and mineral associations; zircon type (ZT), allanite-vein type (AT), feldspar type (KT), fluorite type (FT), quartz-mica type (QT), iron-oxide type (MT), and amphibole type (HT). The allanite veins (AT) and zircon rich rocks (ZT) contain the highest total REE contents. Differences in REE abundance can be interpreted in terms of varying portions of magmatic hydrothermal fluid. Petrographical and chemical data are presented for allanites which were collected from different types. The allanites show wide variations in optical properties, due in part to differences in their chemical composition (depending on the types) and to the degree of crystallinity of the individual specimens. Allanite metamicts in biotite are generally surrounded by well developed pleochroic haloes. Usually, allanite is accompanied by zircon and other REE-bearing minerals. CaO and total REE contents $({\sum}RE_2O_3)$ range from 9.29 to 18.79% and 11.66 to 26.31%, respectively. Also, SiO, (28.87~32.61%), $Al_2O_3$ (8.30~16.88%), and $Fc_2O_3$ (16.74~24.38%) contents show varying contents from type to type. The ${\sum}RE_2O_3$ of allanite has positive relationships with $Fe_2O_3$ and negative relaton with CaO, $SiO_2$, and $Al_2O_3$ Backscattered electron microscope images (BEl) of allanite shows that the its mineral composition and texture is very complex. The allanite-bearing hosts show distinct light REE enrichment with strong negative Eu anomaly except for HI. The HT has an almost flat REE distribution pattern with a small negative Eu anomaly. The chemical variation of the allanites with occurrences and mineral association can be related to condition of temperature and oxidation states in precipitation environment.

      • KCI등재

        계명산층내 알칼리 화강암 기원의 Nb-Y 광화작용에 수반되는 퍼구소나이트의 지구화학 및 산출특성 연구

        박맹언,김근수,최인식,Park, Maeng-Eon,Kim, Gun-Soo,Choi, In-Sik 대한자원환경지질학회 1997 자원환경지질 Vol.30 No.5

        Some RE (Zr, Nb, REE) ore deposits are located in the middle part of the Korean peninsula. Geotectonically, the RE ore deposits situated on the Kyemyeongsan Formation of northern margin of the Okcheon geosynclinal belt and in the transitional zone between Kyeonggi massif and Okcheon belt. The rare metal deposits distributed in Kyemyeongsan Formation which consists of schist and alkaline granite. The alkali granite has suffered extensive post-magmatic metasomatism and hydrothermal processes. The ore contains mainly Ce-La, Ta-Nb, Y, Y-Nb, Ti-Nb-(U), Nd-Th group minerals. Fergusonite, one of Nb-Y rich REE minerals belonging to the A-B oxides, is most common mineral in the rare metal deposits. The fergusonite bearing rocks may be devided into four types by occurrence features and mineral association, that is, zircon type, allanite vein, feldspar type, and fluorite type. Fergusonites show wide variations in optical properties, due to part of differences in their chemical composition (depending on the types), but also the degree of crystalinity of the individual specimens. Fergusonite metamicts enclosed in biotite are generally surrounded by well developed pleochroic haloes. Usually, fergusonite is accompanied with zircon and other REE-bearing minerals. Petrographical and chemical data are presented for fergusonites which collected different types. $Nb_2O_3$ and $Y_2O_3$ contents range from 48.51 to 53.01 wt.% and 29.18 to 42.02 wt.% respectively. Also, $ThO_2$, (1.83~6.93), $UO_2$, (0.17~2.84), ${\sum}RE_2O_3$ (except to Y) (1.11~8.73), and $TiO_2$, (0.19~1.19 wt.%) contents show variational compositions according to fergusonite types. The ${\sum}RE_2O_3$ of fergusonites are positive relation with $Y_2O_3$ and negative relaton with $ThO_2$ and $({\sum}{RE_2O_3}-{Y_2O_3})$. The $Nb_2O_3$ is sightly negative relation with $Ta_2O_3$. Back-scattered electron microscope images (BEI) of fergusonite show the mineral composition and textural feature is very complicated. The variation of Nb, Th and REE content of fergusonite and the modes of occurrence of mineral, suggests that REE may have been mobilized during the circulation of hydrothermal fluids related to contact metamorphism (metasomatism). The chemical variation of the fergusonites with occurrences and mineral association can be related to metasomatism of alkaline fluid was probably the dominant ore-forming process in Chungju district.

      • KCI등재

        충주지역 계명산층 내에 산출하는 알카리 화강암의 지구화학적 연구

        김진섭,박맹언,김근수,Kim, Jin-Seop,Park, Meong-Eon,Kim, Gun-Soo 대한자원환경지질학회 1998 자원환경지질 Vol.31 No.4

        The alkali granite occurred as small stock and dyke is distributed in the Kyeomyeongsan Formation in the vicinity of the Chungju city. Geochemical characteristics in major and trace element of alkali granite in the Kyeomyeongsan Formation indicate that the alkali granites are peralkaline and have similar geochemical features to the A-type alkali granite. The rock enriched in HFSE such as Zr, Nb, Y, REE etc. According to the discrimination diagram the alkali granites mostly belong to the within-plate granite field, and to the $A_1$ group of A-type granite. This suggests that they might be emplaced in a extentional rift environment. The alkali granites are characterized by remarkably high total REE content, and enriched, relatively flat to somewhat HREE-depleted patterns with large negative Eu anomaly. The Sm-Nd age of the alkali granite is $338{\pm}30Ma$ with ${\varepsilon}_{Nd(t)}$ beings -7.3 to -8.5. On the basis of the geochemical studies the source magma was derived from a enriched mantle-like source and had a few or clearly interaction with sialic continental crust. In conclusion, the alkali granitic rock of the Kyeomyeongsan Formation might be formed from the high F peralkaline magma that was emplaced in continental rift environment, and generated at the early Carboniferous.

      • KCI우수등재

        계명산층 내의 충주 철광상 주변에 분포하는 산성 변성화산암의 성인

        박맹언(Maeng-Eon Park),김근수(Gun-Soo Kim),박계헌(Kye-Hun Park) 한국암석학회 2005 암석학회지 Vol.14 No.3

        계명산층 내의 충주 철광상 부근에서 산출되는 산성 변성화산암들은 매우 높은 희토류 원소 및 고장력 원소 농도를 갖는다. 비교적 높은 ε<SUB>Nd</SUB>(0) 값과 결여된 Nb(-) 이상치는 이들의 형성에 지각물질에 의한 혼염이 수반되지 않았음을 시사한다. 또한 지구조 판별도에서 판내부 환경에 도시된다. 이러한 지구화학적 특징들은 750 Ma의 연대를 보이는 문주리층의 산성변성화산암과 매우 비슷하다. 이들은 A1-형(Eby, 1992)에 분류되는 마그마의 지구화학적 특징을 나타내며, 대륙의 분열과 관련된 열곡환경에서 맨틀기원의 마그마가 분화되어 생성되었음을 지시한다. 약 330Ma의 연대를 보이는 충주 철광상 부근의 알칼리 화강암 및 희유금속 광상과는 달리 동일지역에서 산출되는 산성 변성화산암들의 Sm-Nd 동위원소 자료는 명확한 동시선을 형성 하지 않는다. 또한 낮은 ε<SUB>Nd</SUB>(0) 값을 갖는 알칼리 화강암과는 달리 산성 변성회산암과 희유금속광상은 비교적 높은 ε<SUB>Nd</SUB>(0) 값을 갖는다. 이러한 차이에 근거하여 다음과 같은 생성가설을 제시한다. 계명산층 내의 충주 철광상 부근에 분포하는 산성 변성화산암은 계명산층의 다른 지역과 문주리층 내의 산성 변성화산암들과 마찬가지로 신원생대인 750Ma에 생성되었다. 약 330Ma 경에 기존 A1-형 화성암과 일부 오래된 지각물질의 용융으로 알칼리 화강암이 생성되었다. 이와 동시에 열수작용으로 인한 산성 화산암 내의 물질 재배치로 희유 금속광상이 형성되었으며, 뒤이은 약 280Ma경의 광역변성작용시 산성 변성화산암의 Nd-Sm 동위원소계가 교란되었다. Acidic metavolcanic rocks distributed around the Chungju iron deposit show significantly high abundances of rare earth elements and high field strength elements. Relatively high ε<SUP>Nd</SUP>(0) values and lack of negative Nb anomaly suggest that assimilation of crustal material is not involved in their generation. They are plotted within the within-plate environment according the tectonic discrimination diagrams. Such geochemical characteristics are very similar to the acidic metavolcanic rocks of Munjuri Formation. They also show geochemical characteristics of A1-type magma of Eby (1992). All such diagnostic characters indicate differentiation of mantle-derived magma produced from the rift environment, related to the breakup of continent. In contrast to the alkali granites and the rare metal deposit both having age of c. 330 Ma, Sm-Nd isotopic data of the acidic metavolcanic rocks do not form well defined isochron. However, the alkali granites reveal low ε<SUP>Nd</SUP> (0) values, while the acidic metavolcanic rocks and the rare metal deposit both have significantly higher ε<SUP>Nd</SUP> (0) values. Considering such differences, we propose following generation hypothesis: The acidic metavolcanic rocks around Chungju iron deposit was erupted at 750 Ma as rest of the acidic metavolcanic rocks of Gyemyeongsan and Munjuri Formations. About 330 Ma ago, partial melting of existing A1-type igneous materials and some old crustal materials produced alkali granite. The rare metal deposit was also produced by redistribution of related materials within the acidic volcanics due to hydrothermal activities occurred at the same time. Srn-Nd isotopic systematics of the acidic metavolcanic rocks were disturbed during the regional metamorphic event at ca. 280 Ma.

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