• 제목/요약/키워드: ore mineralization

검색결과 261건 처리시간 0.023초

대화(大華) 및 돈산(敦山) 중석(重石)·모리브덴 광상(鑛床)의 유체포유물(流體包有物) (Fluid Inclusions of Daehwa and Donsan Tungsten-Molybdenum Deposits)

  • 박희인;최석원;김덕래
    • 자원환경지질
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    • 제18권3호
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    • pp.225-237
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    • 1985
  • Mineralization of Daehwa and Donsan W-Mo deposits can be devided into three distinct depositional stages on the basis of mineral paragenesis and flnid inclusion studies; stage I, deposition of oxides and silicates ; stage II, deposition of base-metal sulfides and sulfosalts with carbonates; stage III, deposition of barren calcite and fluorite. Tungsten, molybdenum and tin mineralization occurred in stage I. Fluid inclusion studies reveal that ore fluid of stage I were homogeneous $H_2O-CO_2$ fluids containing 3.5~14.6 mol % $CO_2$. Minimum temperature and pressure of stage I ore fluids were $240^{\circ}C$ and 500 bars respectively. Salinities of aqueous type I inclusions in minerals of stage I range from 3.7 to 7.6 wt. % equi. NaCl. whereas those of $CO_2$-containing type III inclusions range from 0.3 to 4.4 wt. %. Temperatures of stage II ore fluids range from 200 to $305^{\circ}C$ on the whole and salinities were in the range of 3.2~7.2 wt. %. Homogenization temperatures of fluid inclusions in calcite and fluorite of stage III range from 114 to $186^{\circ}C$ and salinities were in the range of 0.9~4.3 wt. %. Sulfur fugacities during stage II deduced from mineral assemblages and tamperature data from fluid inclusions declined from earlier to later in the range of $10^{-11}{\sim}10^{-18}atm$. Fluid inclusion evidences suggest that the dominance of $CO_2$ in ore fluid during W-Mo mineralization is the characteristic features of Cretaceous W-Mo deposits of central district of Korea compared to those of Kyeongsang basin district.

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탄산염암 층준교대형 백전광상의 천열수 금-은 광화작용과 생성환경 (Epithermal Gold-Silver Mineralization and Depositional Environment of Carbonate-hosted Replacement Type Baegjeon Deposits, Korea)

  • 이찬희;박희인
    • 자원환경지질
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    • 제29권2호
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    • pp.105-117
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    • 1996
  • The Baegjeon Au-Ag and Sb deposits, small of disseminated-type gold deposits are formed as a result of epithermal processes associated a shallow-seated Cretaceous Yeogdun granitoids intrusion. The orebodies are formed by the replacement of carbonate minerals in thin-bedded oolitic limestone beds favorable for mineralization within the upper-most Cambrian Pungchon Limestone Formation. The mineralization can be recognized one stage, ore minerals composed of base metal sulfides, electrum, AgSb-S, Ag-Cu-S, and Sb-S minerals. Gold-bearing minerals consist of electrum and submicroscopic invisible gold in pyrite and arsenopyrite. The composition of electrums ranges from 33.58 to 63.48 atomic % Ag. Fluid inclusion studies reveal that ore fluids were low saline $NaCl-CO_2-H_2O$ system. Temporary fluid mixing and boiling occured in later stage. Fluid inclusion data indicates the homogenization temperatures and salinities of NaCl eqivalent wt% were 176 to $246^{\circ}C$ and from 0.0 to 4.8 wt%, respectively. And $-logfs_2$, of mineralization obtained by thermodynamic considerations as 12.4 to 13.8 atm. The ${\delta}^{34}S_{H_2S}$, values of hydrothermal sulfides were calculated to be 6.8 to 10.2‰ which was of sedimentary origin. The ${\delta}^{18}O_{H_2O}$ and ${\delta}^{13}C_{CO_2}$, range from -3.9 to 9.6‰, from -1.1 to -2.2‰, and ${\delta}D$ range from -89 to -118‰, respectively. The Au deposition during mineralization seems to have occurred as a result of decrease of temperature, $fs_2$, $fo_2$, and pH probably due to oxidation by meteoric water mixing, which destabilized original $Au(HS)^-{_2}$. The mineralization of the Baegjeon deposits is similar to the Carlin-type deposits characterized by sediments-hosted epithermal bedding replacement disseminated gold deposits.

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부평은연광산(富平銀鉛鑛山)의 지질(地質)과 광상(鑛床) (Geology and Ore Deposits of Bupyong Lead-Silver Mine)

  • 신명식
    • 자원환경지질
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    • 제3권3호
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    • pp.177-186
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    • 1970
  • Bupyong lead-silver mine is located at outskirt of Inchon, a harbor city on the Yellow Sea about 40 km due west of Seoul. The geology of the area is composed of gneisses of pre-Cambrian age, rhyolite of Jurassic to Cretaceous age which extruded over the gneisses and late Cretaceous granite. Small diabasic dike is observed only in the underground. The contact plane between overlying rhyolite and underlain gneiss is sinuous and generally pitches about $30^{\circ}{\sim}40^{\circ}$ toward east. Conjugate joints and fissures are well developed in the rhyolite striking generally north-southward. Three ore bodies are being exploited and three more are under prospecting. These ore bodies range from few tons of hundred thousand to million tons in reserve. These ore bodies occur exclusively in the rhyolite along joints as network and/or desseminated type. The lower limit of ore bodies is always delineated at about 20~30m above the gneiss which might be indicative of ore genesis that has not been clearly explained so far. Two hypothesis on ore genesis could, however, be considered: firstly lithologic difference in the rhyolite might be a manifestation of different flows along which ore solution ascended and replaced along joints; secondly diabasic dike has acted as ore bringer since the dike contains considerable amount of silver, lead and zine. Ore minerals are galena and native silver accompanied by pyrite, argentite, pyragyrite and magnetite. It is believed that pyritization took place in advance to main mineralization, and ore deposit is classified as meso- to epi-thermal type.

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태백산광화대 북부 낙천, 은치, 중봉 금-은광상의 안정동위원소 연구 (Stable Isotope of the Nakcheon, Eunchi and Jungbong Gold-Silver Deposits in the Northern Taebagsan Mining District)

  • 황정;박희인
    • 자원환경지질
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    • 제29권2호
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    • pp.159-170
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    • 1996
  • The gold-silver deposits of the Nakcheon, Eunchi and Jungbong mine in the northern Taebagsan mining district are composed of fissure fil1ing veins emplaced in Precambrian meta-sediments and Jungbongsan granite. Based on the changes of ore texture and mineralogy, ore mineral chemistry, fluid inclusion and mineralizing condition, a regional zoning is recognized from the Nakcheon to the Eunchi and Jungbong ore deposits, and this trend of zoning is also recognized by stable isotope compositions. Stable isotope compositions show that the source of su1fur and carbon is mainly igneous origin, and the water of ore fluid in the Nakcheon ore deposits is mainly magmatic origin but much of meteoric water is involved in ore fluid of the Eunchi and Jungbong ore deposits. The ore deposits of study area is polymetallic meso to epithermal type genetically related to the acidic igneous pluton. Due to the differntial erosion level and mineralized depth, each ore deposits has a slightly different characteristic of mineralization; The Nakcheon ore deposits belong to meso-epithermal type, but the Eunchi and Jungbong ore deposits belong to epithermal type.

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만장광상 중앙광체와 본광체의 광화작용과 생성환경 (Mineralization and Genetic Environments of the Central and Main Orebodies in the Manjang Deposit, Goesan)

  • 유현민;신동복
    • 한국광물학회지
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    • 제31권2호
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    • pp.87-101
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    • 2018
  • 만장광상은 옥천변성대 화전리층 내에 발달되었으며 열극충전형 동광체인 중앙 및 본광체와 철 스카른형 서부광체로 대분된다. 본 연구에서는 중앙 및 본광체에 대한 광상학적 연구를 수행하여 기존 서부광체 광화작용 특성과 비교하고자 한다. 중앙광체는 맥상조직이 두드러지며 자류철석과 황동석이 주를 이루는 반면, 본광체는 맥상, 괴상, 각력상 조직과 더불어 황철석, 유비철석, 황동석이 주로 산출된다. 이 밖에 섬아연석, 방연석, 자철석, 티탄철석, 금홍석, 석석, 철망간중석, 황석석 등이 수반된다. 스카른이 부분적으로 발달하며 석류석은 그로슐라 계열, 휘석은 헤덴버자이트 계열이 우세한 것으로 보아 대체로 환원환경에서 정출된 것으로 보인다. 중앙광체의 섬아연석-황석석과 본광체의 황철석-유비철석 광물공생군을 이용한 생성온도는 각각 $204-263^{\circ}C$, $383-415^{\circ}C$로서 중앙광체가 상대적으로 낮고, 황분압도 본광체에서 $10^{-6}-10^{-7}atm$로서 비교적 높고 중앙광체로 가면서 점차 감소한 것으로 보인다. 황화광물의 황동위원소조성은 중앙광체 4.6-7.9‰, 본광체 4.3-7.0‰로 상호 유사하며 주로 화성기원이지만 모암의 영향으로 약간 높게 나타난다. 광석광물의 종류와 조직 그리고 광화작용의 물리화학적 조건을 고려할 때 동광화작용이 발달한 본광체와 중앙광체는 잠두화성암에 대하여 각각 근지성과 원지성 광화작용의 특성을 나타낸 것으로 보이며, 스카른 철광상이 발달한 서부광체와는 서로 다른 열수계의 영향을 받아 생성된 것으로 여겨진다.

컬러코어스캐너 기법에 의한 금광상 배태 현황 및 성인연구 (A Study of Gold Deposits and Genesis by Using Color-corescanner)

  • 현혜자;황덕환
    • 자원환경지질
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    • 제39권6호
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    • pp.663-674
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    • 2006
  • 금광상에서 암석의 구조, 구조선에 따른 열수의 이동, 천열수 맥 구조, 광화작용상태 및 구성광물등을 정밀하게 분석하는 것은 광상의 배태현황, 천열수에 따른 열수광상의 성인을 확인하는 데 매우 중요하다. 따라서, 본 연구의 목적은 컬러코어스캐너 기법에 의해 구조선에 따른 열수의 이동 및 천열수 맥 구조 등에 대한 정밀한 정보를 통해 금광 배태상황과 성인을 연구하는 데 있다. 컬러코어스캐너 기법은 전남 해남지역 순신 금광산에서 천공된 3개 시추공의 시추코어 전체를 디지털 영상자료(digital image data)화하였다. 디지털 시추코어자료에서는 금이 배태하는 여러 형태의 천열수 맥 구조가 정밀하게 분석되었다. 즉, 빗살구조형, 정동구조형, 엽편상구조형, 각력구조형, 누대구조형 및 혼합구조형 등이다. 또한, 금광상 배태는 대부분 맥상체 형태의 구조들에 많이 배태하나 고품위의 금광은 각력상 형태의 구조내에 많이 배태하고 있음이 특징적이다. 금광상의 성인은 전형적인 천열수 금광상이다. 컬러코어스캐너 기법에 의한 디지털 시추코어 영상자료는 육안관찰에서 빠뜨린 부분을 다시 볼 수 있고, 반복해서 관찰 할 수 있기 때문에 암석내에 발달하는 구조상태 및 광상의 배태 현황 및 광상의 성인을 규명하는데 매우 유익하다고 판단된다.

Tectonics, sedimentation, and magmatism of the Cretaceous Gyeongsang (Kyongsang) Basin, Korea: Integrated approach to defining basin history and event mineralization

  • Chang, Ryu-In;Park, Seon-Gyu;Meen, Wee-Soo;Lee, Sang-Yeol
    • 대한자원환경지질학회:학술대회논문집
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    • 대한자원환경지질학회 2003년도 춘계 학술발표회 논문집
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    • pp.27-31
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    • 2003
  • During the past decade, integrated stratigraphy has been effectively applied to many sedimentary basins to analyze stratigraphic response to tectonic evolution. This application has been beneficial to hydrocarbon exploration in the basins because it provides a better understanding of temporal and spatial relationships of hydrocarbon source and reservoir rocks as a function of basin evolution. Like the maturation, migration, and trapping of hydrocarbons, ore-forming processes in hydrothermal deposits may be causally linked to particular phases of basin evolution. Consequently, applying integrated stratigraphy to mineral exploration may be a logical and helpful approach to understanding ore-forming processes and predicting their occurrence, location, and origin. (omitted)

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상동 중석-몰리브덴 광상의 광화관련 상동화강암의 Nd-Sr 동위원소비 및 가스 성분 (Nd-Sr Isotope and Gas Composition for the Sangdong Granites Related to the Tungsten-Molybdenum Ore Mineralization)

  • 김규한;신유희
    • 자원환경지질
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    • 제28권2호
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    • pp.139-145
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    • 1995
  • Tungsten skarn mineralization of the Sangdong mine is localized in the interbedded limestone layers of the Myobong Slate Formation and in the limestone of the Pungchon Limestone Formation of Cambrian age. Fluid inclusion, gas composition and Nd-Sr isotope for granites and skarns have been investigated. Gas compositions show $CO_2$ rich in the Sangdong granite and CH, rich in the Nonggeori and Eopyeong granites. The initial $^{87}Sr/^{86}Sr$ and $^{143}Nd/^{144}Nd$ ratios of the Sangdong granites have 0.714~0.716(${\varepsilon}_{Sr}$=138~162) and 0.51173~0.51178(${\varepsilon}_{Nd}$=-14.4~15.5), respectively. And their two stage model ages range from 1687 to 1764 Ma. The granite characterized by high strontium initial ratios and negative eNd value could have originated from the old continental crust source. Low homogenization temperature of the Sangdong granite having $203{\sim}296^{\circ}C$ with 1.9~9.2 NaCl equiv. wt% indicates the post-magmatic hydrothermal alteration temperature. Skarn ore fluid responsible for tungsten mineralization has been evolved from CH, rich fluid of early pyroxene garnet skarn to $CO_2$ rich later quartz-mica skarn.

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동진광산의 지질과 금은광화작용 (Geology and Gold-Silver Mineralization of Dongjin Mine)

  • 정재일;김선영
    • 자원환경지질
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    • 제29권3호
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    • pp.395-405
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    • 1996
  • The Donjin deposits which is located in the Chinan Basin, are emplaced along $N10{\sim}40^{\circ}E$ trending fissure sets. So it is a sort of fissure-filling ore deposits. The results of paragenetic studies suggest two stages of hydrothermal mineralization; stage I: base-metal sulfides stage, stage II: late base-metal sulfides, electrum and silver-bearing sulfosalts stage. Au: Ag ratios of the electrums show that Ag atomic% are higher than that of Au. The temperature and salinity of the Donjin deposits estimated from fluid inclusion and sulfur isotope geothermometry are as follows; stage I: $240{\sim}315^{\circ}C$, 2.4~7.1 NaCl eq. wt.%, stage II: $190{\sim}268^{\circ}C$, 4.6~8.4 NaCl eq. wt.%. The estimated oxygen and sulfur fugacity during first stage mineralization, based on phase relation of associated minerals, range from $10^{-35}{\sim}10^{-39.7}$ atm. and$10^{-11}{\sim}10^{-13.4}$ atm., respectively. All these evidences suggest that the Dongjin deposits are polymetallic meso-epithermal ore deposits.

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대곡(大谷) W-Sn-Cu 광상(鑛床)의 열수변질작용(熱水變質作用) (Wall-rock Alteration Relating to Tungsten-Tin-Copper Mineralization at the Ohtani Mine, Japan)

  • 김문영
    • 자원환경지질
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    • 제21권3호
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    • pp.209-221
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    • 1988
  • The ore deposit of the Ohtani mine is one of repesentatives of plutonic tungsten-tin veins related genetically to acidic magmatism of Late Cretaceous in the Inner zone of Southwest Japan. Based on macrostructures of vein filling on the order of ore body, three major mineralization stages, called stage I, stage II, and stage ill from earliest to latest, are distinguished by major tectonic breaks. The alteration zories are characterized by specific mineral associations in pseudomorphs after biotite. The alteration zones can be divided into two parts, i. e. a chlorite zone and a muscovite zone, each repesenting mineralogical and chemical changes produced by the hydrothermal alteration. The chloritic alteration took place at the beginning of mineralization, and muscovite alteration in additions to chloritic alteration took place at stage II and ill. The alteration zones are considered to be formed by either of two alteration mechanism. 1) The zones are formed by reaction of the rock with successive flows of solution of different composition and different stage. 2) The zones are formed contemporaneously as the solution move outward. Reaction between the solution and the wall-rock results in a continuous change in solution chemistry. The migration of the successive replacement of the fresh zone$\rightarrow$the chlorite zone$\rightarrow$the muscovite zone may have transgressed slowly veinward, leaving metasomatic borders between the different zones.

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