• 제목/요약/키워드: minerals and rocks

검색결과 478건 처리시간 0.032초

Al-Fe Partitioning between Coexisting Garnet and Epidote from Metamorphic Rocks

  • Kim, Hyung-Shik;Kim, Young-Kyum;Jang, Young-Nam
    • 암석학회지
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    • 제2권2호
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    • pp.63-73
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    • 1993
  • The assemblage epidote and grandite garnet occurs in low-to medium-grade metabasites and calc schists of various geotectonic settings and in hydrothermally altered calcareous rocks in skarn deposits. The compositions of sixteen epidote-garnet paris have been analysed by means of electron microprobe. Al-Fe partitioning between coexisting grandite garnet and epidote is considered and measured at the grain boundaries on the supposition that the surface equilibrium was maintained in the following exchange reaction: 2$Ca_2Al_3Si_3O_12$(OH)+$Ca_3Fe_2Si_3O_12$=2$Ca_2A_l2FeSi_3O_12$(OH)+$Ca_3Al_2Si_3O_12$ Partition coefficients confirms the differences in thermal conditions between low-grade and medium-grade metamorphic rocks. $K_D$ values ($X_{$CO_2$}$=($Fe^{+3}$/Al)$^{Ep}$/($Fe^{+3}$/Al)$^{Gr}$, where Fe=$Fe^{+3}$) from greenschist facies rocks of the estimated metamorphic temperatures, 330~$390^{\circ}C$, range approximately between 0.02 and 0.17. Epidote-amphibolite facies rocks and calcareous skarns of the estimated temperatures, 400~$550^{\circ}C$, have $K_D$ values between 0.24 and 0.37. $K_D$ values from the rocks of the temperatures, 640~$700^{\circ}C$, range nearly between 0.58 and 0.75. The diagrams in Figs. 2 and 3 can serve as a mineralogic thermometer for relatively shallow rocks, assuming that the pressure dependence of partition coefficients for the iron-exchange reaction in the two minerals can be neglected.

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충주(忠州)-월악산(月岳山)-제천(提川) 화강암류(花崗岩類)의 암석화학적(岩石化學的) 연구(硏究) (Petrochemistry of the Granitic Rocks in the Chungju, Wolaksan and Jecheon Granite Batholiths)

  • 김규한;신윤수
    • 자원환경지질
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    • 제23권2호
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    • pp.245-259
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    • 1990
  • Petrochemical analyses of granitic rocks including trace element, REE and oxygen isotope were carried out to understand petrogenesis of plutonic rocks from the Chungju, Wolaksan and Jecheon granite batholiths, which might be related with tungsten-base metal-fluorite mineralization in the Hwanggangri metallogenic province. Different geochemical characteristics such as major and trace elements were found between Jurassic Daebo granitic rocks (Chungju, Jecheon, Wonju, and Boeun granitic rocks) and Cretaceous Bulgugsa granitic rocks (Wolaksan, Muamsa and Sokrisan granitic rocks). Cretaceous granitoids are characterized by high $SiO_2$and $K_2O$ contents and low $TiO_2$, $Al_2O_3$, MgO and CaO contents. They also have relatively high contents of trace elements(Zn, V, Co, Cr, Sr, and Ba) in comparison with the Jurassic granitoids. (Eu)/($Eu^*$) and $(La/Lu)_{CN}$ ratios of Jurassic plutons vary from 0.78 to 1.13 and from 26.02 to 30.5, respectively, while the ratios of Cretaceous ones range from 0.22 to 0.28 and from 4.42 to 14.2, respectively. The REE patterns of the Cretaceous and Jurassic granitic rocks have quite different Eu anomalies: large negative Eu anomaly in the former, and mild or absent Eu anomaly in the latter. The large Eu negative of Cretaceous granitic rocks are interpreted as a differentiated product of fractional crystallization of granitic magma deduced by Rayleigh fractionation model(Tsusue et al., 1987). Oxygen isotopic compositions of quartz for Daebo and Bulgugsa granitic rocks range from 9.98 to 10.51‰ and from 8.26 to 9.56‰, respectively. The Daebo granitic rocks enriched in $^{18}0$ suggest that the magma be undergone different partial melting processes from the Bulgugsa ones. Of the Bulgugsa granitoids, Wolaksan and Sokrisan mass have different contents of trace elements and ${\delta}\;^{18}0$ values of the silicate minerals, which indicate that they are not from the identical source of magma. Many mineral deposits are distributed in and/or near the Wolaksan and Muamsa granitic rocks, but a few mineral deposits are found in and near the Chungju and Jecheon granite batholiths. It might be depend on geochemisty of the related igneous rocks which have low contents of Ba, Sr, Co, V, Cr, Ni, Zn and high contents of Nb and Y, and on lithology of country rocks such as cabonate and noncarbonate rocks.

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광포만 집수유역내에 분포하는 점토광물의 성인에 관한 연구 (Genesis of Clay Minerals in the Vicinity of Gwangpo Bay, Southern Coast of Korea)

  • 박맹언;송용선;김희준;김대철;백인성;정상용;송시태
    • 한국수산과학회지
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    • 제21권4호
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    • pp.259-268
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    • 1988
  • 광포만 집수유역에 분포된 점토광상들은 회장암질 암체에 제한되어 산출된다. 광체의 최상부에서는 로몬타이트와 메타-할로이사이트가 가장 우세하게 발달되고 철산화물이 수반되며, 하부에서는 녹니석과 할로이사이트가 우세하게 산출된다. 주점토층 아래에 놓인 일부 회장암질 암류는 열수맥을 따라 석영, 견운모, 녹니석, 황철석 및 몬모릴로나이트 등으로 실하게 변질되어 있다. 연수와 강우를 각각 $100^{\circ}C$$25^{\circ}C$에서 회장암질암과 반응시킨 다성분 평형 반응계산에 의해 열수변질과 풍화변질 기원의 가설들을 시험해본 결과 강우와의 반응결과가 야외에서 산출되는 점토광물군과 보다 유사함을 보인다. 이는 본역 점토광상의 주성인이 풍화변질작용임을 나타낸다.

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부평광산(富平鑛山)의 금광석(金鑛石)과 선광산물(選鑛産物) (Silver Ore and Floatation Products from the Bupyeong Mine)

  • 박희인;박노영;서규식
    • 자원환경지질
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    • 제19권2호
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    • pp.85-96
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    • 1986
  • The Bupyeong Silver mine which is located approximately 35km west of Seoul is currently the leading silver producer in Korea. The deposits occur as stockwork deposits hosted in Jurassic pyroclastic rocks. Occurrences of ore deposits and mineral paragenesis suggest a division of mineralization into four stages: Stage I, deposition of iron oxide and base metal sulfides; Stage II, deposition of tin oxide and silverm inerals; stage III, deposition of native silver and other silver minerals; Stage IV, formation of pyrite bearing siderite veinlets, Silver minerals in ore are native silver, argentite, freibergite, pyrargyrite, canfieldite, polybasite, dyscrasite and Ag-Fe-S mineral. The most important silver mineral is native silver among them. Chemical composition of important silver minerals were determined by electron probe microanalyser. Assay, size and modal analyses for floatation products were carried out. In floatation products, relative proportion of native silver for total important silver minerals have following ranges: feed, 64.7 to 74.74 wt.%; A-cleaner concentrate, 80.58 to 98.79 wt.%; and final tailing, 28.12 to 72. 57 wt. %. Average degree of liberation for native silver in feed and A-cleaner concentrate are 60.49% and 77.57% respectively. Negative relationship can be recognized between native silver and argentite in their abundance and behavior in floatation precesses.

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카자흐스탄 제스카즈간 동광상의 성인 고찰 (Discussion on Genesis of the Zhezkazgan Copper Deposit in Kazhkstan)

  • 문건주
    • 자원환경지질
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    • 제30권4호
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    • pp.379-393
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    • 1997
  • Geology of the Zbezkazgan copper deposit in Kazhkstan is mainly composed of Permian and Carboniferous sedimenary rocks in which copper minerals are mainly contained in grey sandstone of Carboniferous age. There are 28 layers of copper ore bodies in Zbezkazgan suite. Thickness of the ore bodies ranges from one to 35 meters, grade of the crude ore ranges from 2 to 5 wt % Cu and the extension of the orebodies is 5 to 7 km. Microscopic study on specimens from the Zbezkazgan ore deposit has exposed clues to understand the origin of this deposit. Alternatively deposited grey sandstone and red sandstone are mainly composed of quartz and feldspar grains. A big difference between the grey sandstone and the red sandstone is in grain size, the former is larger than the latter. Chalcocites as main copper minerals have cemented through grain boundary. It is assumed that quartz, feldspar and copper were derived from granitoid in which copper mineralization had taken place before exposing to weathering. The chalcocites were precipitated by a sudden change of geochemical condition (Eh, pH, temperature, etc.) of fluid which had carried quartz, feldspars, copper ions and sulphate during formation of grey sandstones. The copper ions and sulphate were stable in fluid during sedimentation of oxidation environment, however, the copper ions were no more stable at the reduced environment and changed to stable forms to precipitate copper minerals by reaction of copper ions and hydrogen sulfides. This chemical precipitation of copper minerals in the sandstone attributes to the assumption of hydrothermal origin on this sedimentary origined deposit.

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잔류자화비를 이용한 운석의 자성광물 판별 (Magnetic Mineral Identification in Meteorites)

  • 김인호;유용재
    • 한국광물학회지
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    • 제24권1호
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    • pp.31-36
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    • 2011
  • 운석은 모암인 소행성(asteroid)이나 미세소행성(planetesimal)에서 충돌에 의해 분리된 후, 태양계 내의 공간을 배회하다가 지구의 중력에 이끌려 지표에 떨어진 후 수집된 돌덩이다. 따라서 생성 초기의 지구를 포함하는 태양계 내 지구형 행성의 생성 초기와 진화과정을 규명하려면 원시 태양계의 정보를 간직하고 있는 운석의 물리/화학적 분석이 반드시 필요하다. 특히 열잔류자화(thermoremanent magnetization, TRM) 대비 포화등온잔류자화(saturation isothermal remanent magnetization, SIRM)의 비율과 자화를 유도하는 자기장 강도의 상관관계를 이용하면 운석이 함유하는 자성광물을 판별할 수 있다. TRM/SIRM 비를 이용하여 2종류의 미분화운석(H5 Richardton, LL6 St. Severin)과 2종류의 화성기원 분화운석(ALH84001, DaG476)에 대해 자성광물 판별을 시도하였다. 실험 결과 H5 Richardton, LL6 St. Severin, ALH84001, DaG476의 주 자성광물이 각각 카마사이트, 테트라테나이트, 자철석, 크롬티탄함유철석임을 판별하였다.

예비 과학교사들의 암석에 대한 이해수준에 따른 육안분류 능력 (The Classification Ability with Naked Eyes According to the Understanding Level about Rocks of Pre-service Science Teachers)

  • 박경진;조규성
    • 한국지구과학회지
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    • 제35권6호
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    • pp.467-483
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    • 2014
  • 이 연구는 예비과학교사들의 암석에 대한 이해수준에 따른 육안분류 능력을 알아보기 위한 것이다. 이를 위하여 광물과 암석에 대한 비과학적 개념과 관련된 설문지를 개발한 후 예비 과학교사 132명에게 응답하게 하였고, 수집된 자료는 라쉬 모형을 이용하여 암석에 대한 이해수준에 따라 숙달 집단과 미숙달 집단으로 구분하였다. 이렇게 구분된 집단의 육안분류 능력을 알아보기 위해 17종(화성암 6종, 퇴적암 5종, 변성암 6종)을 제시한 후 각자의 기준에 따라 암석을 분류하도록 하였다. 분석 결과 예비 과학교사들은 주로 조직, 색깔, 입자 크기 등을 분류기준으로 사용하였다. 또한 화성암을 분류하는 것은 비교적 쉽게 해결하였지만 퇴적암과 변성암은 동일한 기준을 사용하여 분류하는데 혼동하고 있었다. 한편 암석에 대한 이해수준과 생성원인에 따른 분류능력은 유의미한 상관관계를 보였지만 암석명을 정확하게 분류하는 능력과는 유의미한 상관관계가 없었다. 하지만 생성원인에 따른 분류 능력과 암석명을 정확하게 분류하는 능력과는 높은 상관관계를 보였다.

장풍 동광산 폐광석 내 원소의 용출 특성 (Characteristics of Elements Extraction in Waste Rocks on the Abandoned Jangpoong Cn Mine)

  • 이인경;최상훈
    • 자원환경지질
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    • 제41권6호
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    • pp.695-708
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    • 2008
  • 함동 장풍광산에서 산성 환경에 노출된 폐광석 원소의 지화학적 거동을 파악하기 위한 용출실험과 총함량 분석을 실시하였다. 주변의 오염되지 않은 토양 내의 원소 함량과 폐광석 내의 원소함량을 비교하였을 때, 농집이 많은 순서는 As>>Cu>Pb>Cd>Co이다. 산성비 ($0.00001{\sim}0.001N\;HNO_3$)와 산성배수($0.001{\sim}0.1N\;HNO_3$)를 고려한 산도변화에 따른 용출 실험 결과, 산용액과 24시간 반응한 후의 최종 pH 변화 형태를 3가지 유형으로 구분하였다. 산도를 더 낮아지게 할 수 있는 광물의 용해 작용으로 반응 용액의 pH보다 더 낮은 최종 pH를 나타내는 유형 1과 pH를 완충할 수 있는 광물이 존재하여 반응용액의 pH보다 높은 pH를 유지하는 유형 2.3으로 구분되었다. 원소의 용출거동 특성은 비소-코발트-철과 구리-망간-카드뮴-아연 그리고 납으로 구분할 수 있었다. 비소-코발트-철의 용출특성은 약산성의 환경에서는 용출이 미약하나, 최종 pH 1.5 이하의 강산성환경에서는 용출량이 급격하게 증가하며, 구리-망간-카드뮴-아연형태에서는 최초로 용해되는 pH가 $7.0{\sim}3.0$으로 pH $2.5{\sim}1.5$에게서 최초 용출이 발생하는 비소-코발트-철보다 높았다. 납은 원소에 비해 상당히 적게 용출되었다. 최종 용출된 함량과 관계없이 초기 용출이 발생하는 pH값을 기준으로 한 각 원소의 상대적인 이동성은 망간 아연>카드뮴>구리>>철 코발트>비소>납 순서이며, 산성비는 아연, 망간 및 구리를 쉽게 용출시킬 것이고, 산성광산배수의 발생은 이동도가 낮은 원소(비소, 철, 코발트 그리고 납)의 분산을 야기할 수 있을 것이다.

충남 예산-공주-청양지역의 초염기성암의 사문암화 작용 (Serpentinization of the Ultramafic Rock in the Yesan-Gongju-Cheongyang Area, Korea)

  • 김건영;김수진
    • 한국광물학회지
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    • 제10권2호
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    • pp.126-138
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    • 1997
  • Serpentinite of the Yesan-Gongju-Cheongyang area has been formed by serpentinization of ultramafic rocks. The ultramafic rock might be composed mainly of oilvine with minor pyroxene and amphibole. Olivine has a considerably restricted chemical compositional ranging from Fo90 to Fo93. Fresh serpentinite containing large amount of oilvine is usually massive in occurrence and dark green to black in color. Serpentine minerals occur not only as major mineral of serpentinite, but also as remnants in the talc ore which was formed from serpentinite. XRD study indicates that antigorie is the most abundant serpentine mineral of the serpentinite. Serpentinite consisting of antigorite usually shows non-pseudomorphic texture, whereas that consisting of lizardite shows pseudomorphic texture. Antigorite is found along the margins or fractures of olivine grains resulting in the formation of network of magnetite which was formed at the time of serpentinization. Lizardite, subordinate constituent mineral of serpentinite, frequently shows pseudomorphic mesh-texture after olivine. The chemical differences between antigorite and lizardite/chrysotile are small, so both minerals are not easily discernible with the electron microprobe. Antigorite occuers as elongate blades, flakes, or plates forming interpenetrating texture to obliterate previous textures. SEM study also shows that most serpentine minerals occur in platy or tabular form rather than in asbestiform. Fractures formed after main serpentinization are observed within the pseudomorphic central olivine grain. Careful observation of the serpentine pseudomorphs gives a great deal of data on the pre-serpentinization nature of the serpentine pseudomorphs gives a great deal of data on the pre-serpentinization nature of the ultramafic rocks. It is inferred that the serpentinization took place after the emplacement of ultramafic body into the relatively wet environment ceased and the cooling intrusive body crossed into the stability field of serpentine. It is inferred that the final pervasive serpentinization took place over a long time, by hydrothermal water supplied through the fracture system produced during emplacement of ultramafic rock.

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덕음광산(德音鑛山) 은광물(銀鑛物)의 입도(粒度)와 조직(組織) (Grain Size and Texture of Silver Minerals from Duk-Eum Ore Deposits)

  • 양동윤;지정만
    • 자원환경지질
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    • 제19권spc호
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    • pp.227-237
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    • 1986
  • The Duk-Eum mine located in Kongsan-myeon, Naju-gun, Cheolanamdo is producing silver ore mainly, with rare gold association. The grade-up and recovery of the concentrates have been concerned to the main problem. And then, this study aimed at applying the basic data for ore processing. In the first half of the study, the attempts were made to identify the ore minerals, this followed by determination of the mineral texture, paragenesis, grain size, and size distribution by employing the microscopical method and the etching test. The results of the study are as follows: 1. The ore deposit is composed of the hydrothermal fissure linked veins, and filling cavities are mostly tensile fractures or joints, in rhyolitic rocks as a wall rock. 2. The principle ore minerals are native silver, acanthite, canfieldite, pyrargyrite, galena, tetrahedrite, sphalerite, pyrrhotite, chalcopyrite, chalcocite, covellite, zincite, and the gangue minerals are quartz and calcite. 3. The grain size of each ore minerals before grinding are; max. $2\frac{1}{2}$ mesh, medium 48-100 mesh(main size, contained over 80%), min. 3200mesh. And the grain size of each ore minerals after grinding is; max. 42mesh, medium 65-250mesh(main size, contained over 80%), min. 3200mesh. 4. The properties of the mineral texture effected on the ore dressing are follows; a) Inclusion texture; the fine grains of chalcopyrite is included in most acanthite, and rarely, that of galena included in acanthite. b) Exsolution texture; pyrargyrite is exsolved in acanthite. c) Replacement texture; native silver replaced pyrargyrite, and acanthite replaced galena. d) Interlocking paragenetic texture; the interlocking paragenetic minerals are pyrite, chalcopyrite, chalcocite, canfieldite. e) Fissure filling texture; chalcopyrite was filled along the cracks in acanthite. Among of the above texture, it is impossible to liberate the grains of a), and more difficult to liberate those of b) and c), while easy to liberate those of d) and e).

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