• Title/Summary/Keyword: biotite

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Trace Elements and REE Characteristics of the Mesozoic Granites in the Wolchul Mt. Area (월출산 지역에 분포하는 중생대 화강암류에 대한 미량원소와 회토류원소의 특성)

  • Lee, Chang-Shin;Kim, Cheong-Bin
    • Economic and Environmental Geology
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    • v.29 no.3
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    • pp.293-304
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    • 1996
  • The Wolchul Mt. area is composed of a biotite granite and a pink feldspar granite. These granites are distinctly different in terms of their field occurrence, mineralogy, trace element and REE composition, as well as their isotope ages. The biotite granite has higher ferromagnesian elements and lower lithophile trace element abundances than the pink feldspar granite. The biotite granite has high Sr and Ba while the pink feldspar granite has high Rb. On the Rb-Sr-Ba diagram the biotite granite plots as a granodiorite while the pink feldspar granite belongs to a strongly differentiated granite. The ${\Sigma}$ LREE/ ${\Sigma}$ REE for the biotite granite is 0.95 and for the pink feldspar granite it is 0.88. The ratio shows a steep decrese in LREE while HREE is essentially constant. Based on the Eu/Sm, $[La/Lu]_{cN}$ and low Eu(-), the biotite granite has quartz diorite to granodiorite composition while the pink feldspar granite, with a relatively high Eu(-) anomaly, falls into the monzo- to syenogranite classification. The silica vs. trace element diagrams for the two granites indicate that the biotite granite could have formed near to a continental margin or volcanic island setting environment while the pink feldspar granite formed within a continental plate or as result of plate collision. The biotite granite has a U-Pb zircon age of 175 Ma, i.e. Middle Jurassic. The pink feldspar granite is younger, it has a K-Ar orthoclase age $93.6{\pm}1.5$ Ma which is Late Cretaceous age.

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Characterization of Weathering Process in Biotite Gneiss and Granite, Ganghwa Island (강화도 선두리 지역 흑운모 편마암과 화강암에 대한 풍화 특성)

  • Jang Yun-Deuk;Kim Jeong-Jin
    • Journal of the Mineralogical Society of Korea
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    • v.19 no.1 s.47
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    • pp.39-48
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    • 2006
  • X-ray diffaction and chemical analysis were used for mineralogical characteristics of weathering grade of granite and biotite gneiss. Granite is composed mainly of quartz, albite, and minor K-feldspar and biotite gneiss is biotite, quartz, albite. Illite and kaolinite increased in granite, and vermiculite and halloysite in biotite gneiss as increasing weathering process. The percentages of $Al{2}O_{3}$ increase but that of CaO, $Na_{2}O,\;K_{2}O$ decrease as the weathering process. $Fe_{2}O_{3}$ different from granite and biotite gneiss.

Effect of Protein Level and Dietary Germanium Biotite on Egg Production, Egg Quality and Fecal Volatile Fatty Acid in Laying Hens (단백질 수준과 게르마늄 흑운모의 첨가가 산란생산성, 계란품질 및 분내 휘발성 지방산에 미치는 영향)

  • Lee, Won-Baek;Kim, In-Ho;Hong, Jong-Uk;Kwon, O-Seok;Min, Byeong-Jun;Son, Gyeong-Seung;Jung, Yeon-Kwon
    • Korean Journal of Poultry Science
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    • v.30 no.4
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    • pp.275-280
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    • 2003
  • This study conducted to investigate the effect of dietary germanium biotite by protein level in laying hen diets. One hundred forty four, 51 weeks old ISA brown commercial layer, were used in experiment. Dietary treatments were 1) low protein diet(LPD), 2) high protein diet(HPD), 3) LPD-GB(LPD + 1.0% germanium biotite) and 4) HPD-GB(HPD + 1.0% germanium biotite). Henday egg production tended to be increased as the concentration of protein in diets increased with significant difference(P<0.01). Egg weight tended to decrease by increasing of supplementation germanium biotite in the diets(P<0.01). Egg shell breaking strength was not influenced by germanium biotite supplementation(P>0.05). Large band of egg decrease as increasing of supplementation germanium biotite in the diets(P<0.02). Sharp and middle band of egg were not influenced by germanium biotite supplementation. Egg yolk index tended to decrease as increasing of supplementation germanium biotite in the diets(p<0.01). Fecal propionic acid(P<0.01) and butyric acid(P<0.03) were decrease as the concentration of germanium biotite in the diet was increased. Also, butyric acid increased as the concentration of protein in diets increased with significant difference(P<0.02). Supplementation germanium biotite in the diet reduced the fecal acetic acid(P<0.01). Fecal $NH_3$-N of hens fed HPD-GB diet was decreased(P<0.05) compared to that LPD-GB diet. In conclusion, germanium biotite supplementation to layer diets can reduce fecal volatile fatty acid compabebts.

formation Mechanisms of 1:1 Clay Minerals by Biotite Weathering In a Granitic Gneiss (흑운모의 풍화작용에 의한 1:1 점토광물의 형성 메커니즘)

  • 이석훈;김수진
    • Journal of the Mineralogical Society of Korea
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    • v.15 no.3
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    • pp.221-230
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    • 2002
  • Weathering of biotite shows a biotite-vermiculite-kaolinite sequence at the early stage, but presents biotite-kaolinite sequence without a significant intermediate phase (vermiculite) at the late stage from the weathering profile of the granitic gneiss. Secondary 1:1 phyllosilicates are kaolinite and halloysite which show different weathering textures originated by a different formation mechanism. Kaolinitization began from the edges of biotite and propagated toward the interior of grain along a multilayered front. $10 \AA$ layers of biotite are interleaving with $7\AA$ layers of kaolinite and c-axis of two phases is consistent. Kaolinite pseudomorph of biotite is isovolumetric, compared to the biotite boundary and includes many band-like porosities parallel to the cleavage. Platy kaolinite formed by 1:1 layer fur layer replacement of biotite. Halloysitization proceeded outward from the grain edges which were foliated as fine flakes and bent at the right angle for cleavage Halloysites were extensively fanning out and greatly increased the volume of grain. This indicated that halloysite tubes were formed by epitaxial overgrowth on the surface of biotite with import of Si and Al from the external solution by dissolution of plagioclase. These halloysites have abnormally high Fe content ( ~11%).

Metamorphism of the Meta-Sedimentary Rocks in the Osu-Jinan Area, Cheonrapuk-Do, Korea (전라북도 오수-진안 지역에 분포하는 변성퇴적암류에 대한 변성작용)

  • Ahn, Kun Sang;Kim, Yong Jun;Shin, In Hyun
    • Economic and Environmental Geology
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    • v.30 no.2
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    • pp.163-174
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    • 1997
  • Precambrian metapelites and metapsammites of the Jinan-Osu area (so-called Seologri and Yongamsan Formation) consist of black slate, phyllite, mica schist, quartzite and rarely calc schist. They are intruded by Sunkagsan granite gneiss, Foliated granodiorite, Amphibolite, Sunchang foliated granite and Namwon granite. Mylonite texture, crenulation cleavage and minor shear zone are common. The meta-sedimentary rocks include various rock-fragments xenoliths in size (up to 3 cm) and rock-type. They have various porphyroblastic spots in size (up to 1 cm) and their mineral composition is different. The xenoliths are schists, granite and quartzite, which are rectangular or lens form and recrystallized muscovite, chlorite and quartz. Spots are andalusite and biotite aggregates extensively replaced by chlorite. The metamorphic terrain is divided into three zones of progressive metamorphism on the basis of mineral assemblage. They are chlorite zone, chloite-biotite zone and andalusite-biotite zone ascending order, from west to east approximately. Isograd reactions are phengitic muscovite + chlorite = less phengitic muscovite + biotite + quartz + $H_2O$ and muscovite + chlorite + quartz = andalusite + biotite + $H_2O$ between the chlorite zone and chlorite-biotite zone, and between the chloritebiotite zone and andalusite-biotite zone, respectively. Sample B6 (exposed near the Obong-ri) includes staurolites and greenish biotites, that is different in mineral assemblage and chemical composition from the meta-sedimentary rocks. Sample A12 (exposed near the Shinam-ri) has greenish white spots (up to 1 cm in diameter) mainly composed of Kfeldspar, quartz and sillimanite replaced by muscovite.

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Rb-Sr Isotopic Ages of Biotite in the Weathering Profile of Granodiorite, Yecheon (예천지역 화강섬록암 풍화대내 흑운모의 Rb-Sr 동위원소연대 변화)

  • Jeong Gi Young;Cheong Chang-Sik;Lee Bong Ho
    • Journal of the Mineralogical Society of Korea
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    • v.18 no.1
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    • pp.53-59
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    • 2005
  • Rb-Sr isotopic ages of oxidized biotite in the weathering profile of granodiorite, Yecheon area, were measured by thermal ionization mass spectrometry, and compared with their K-Ar ages. A decrease of Rb-Sr isotopic age is well correlated with iron oxidation, and consistent with K-Ar age. Octahedral and interlayer cations including Rb and Sr were partly released from the oxidizing biotite by excess positive charge from iron oxidation. Divalent /sup 87/Sr decayed from monovalent /sup 87/Rb was more easily released from biotite, resulting in the reduction of Rb-Sr isotopic age. Weathered biotite is not suitable for the age dating of parent rocks, but behaviour of radiogenic isotopes provides useful information on the geochemical and structural changes of biotite during weathering.

Petrochemistry of Mesozoic Granites in Wolchulsan Area (월출산지역에 분포하는 중생대 화강암류에 대한 암석화학적 연구)

  • Kim, Cheong-Bin;Yoon, Chung-Han;Kim, Jeong-Taek;Park, Jay-Bong;Kang, Sang-Won;Kim, Dong-Ju
    • Economic and Environmental Geology
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    • v.27 no.4
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    • pp.375-385
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    • 1994
  • The studied area is composed of Precambrian gneiss complex, middle Jurassic biotite granite, late Cretaceour sediments, volcanics and pink feldspar granite. Characteristic minerals of the biotite granite is plagioclase and hornblende whereas the pink feldspar granite is pink feldspar (perthite) and quartz. Plagioclase compositions of the biotite granite and the pink feldspar granite are oligoclase to calcic andesine ($An_{18-44}$) and sodic albite ($An_{0.5-5.0}$), respectively. In the variation diagrams of the Harker and normative Q-Or-Pl diagram, the biotite granite belongs to the category from granodiorite to granite, the pink feldspar granite from nomal to late granite. The values of D.I. L.I. and alkalinity of the pink feldspar granite are higher than those of the biotite granite. While CaO is enriched in the biotite granite, $K_2O$ is enriched in the pink feldspar granite. The ratio of $K_2O/Na_2O$ which indicates the relative ratio of alkali is 1.06 in the pink feldspar granite, and 0.86 in the biotite granite. In A-M-F and N-C-K diagrams both these granites are plotted in peraluminus granite ($Al_2O_3$>$Na_2O+K_2O+CaO$) region, assigned to calc alkaline series and alkaline series respectively. Put into the form of A-C-F diagram, the biotite granite falls under I-type, and the pink feldspar granite S-type. On the base of whole rock ratios of $Fe^{+3}/Fe^{+2}+Fe^{+3}$ and $^{87}Sr/^{86}Sr$ for the granites in studied area, the biotite granite indicates ilmenite series (0.26) and S-type and/or contaminated I-type ($0.72020{\pm}0.00050$), the pink feldspar granite magnetite series (0.44) and I-type ($0.70826{\pm}0.00020$).

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선캠브리아 홍제사 화강암의 진화과정(한국 북동부지역의 원생대의 화성활동과 변성작용)

  • 김정민;조문섭
    • The Journal of the Petrological Society of Korea
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    • v.3 no.1
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    • pp.76-93
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    • 1994
  • The Precambrian Hongjesa granite is lithologically zoned from biotite granite in central part to biotite-muscovite granite towards the margin. The X_{Fe}$ (=Fe/(Fe+Mg)) value and the aluminum saturation index of biotite systematically vary as a function of mineral assemblage, and are positively related with those of bulk rock. This relationship as well as the lithological zoning are attributed to the fractional crystallization of the Hongjesa granitic magma. The trace element data corroborate that biotite-muscovite granite is more fractionated than biotite granite. The evolution of the Hongjesa granite is elucidated by using the AFM liquidus topology, where A=$Al_2O_3-CaO-Na_2O-K_2O$; F=FeO+MnO; and M=MgO. At an early magmatic stage where biotite is the only ferromagnesian mineral to crystallize, the X_{Fe}$ value and the alumina content of granitic magma continuously increase.. Muscovite subsequently crystallizes with biotite along the biotitemuscovite cotectic curve where biotite-muscovite granite forms. Local enrichments in Mn and B further crystallize garnet and tourmaline, respectively. The unique zonal pattern characterized by the occurrence of the evolved biotite-muscovite granite at the margin may be accounted for by the passive stoping during the emplacement of the Hongjesa granite. This emplacement may have occurred in continental collision environment, according to the tectonic discrimination diagram using major element chemistry.

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Phyllosilicate Intergrowth/Interlayer in the Southwestern Part of the Okchon Metamorphic Belt: EPMA, BSE and TEM Study (옥천변성대 남서부 지역에서의 Phyllosilicate Intergrowth/Interlayer: EPMA, BSE, TEM 연구)

  • 이정후;이영부;오창환;김선태
    • Journal of the Mineralogical Society of Korea
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    • v.8 no.1
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    • pp.1-12
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    • 1995
  • 옥천 변성대 남서부 지역에서 산출되는 변성 니질암에서는 muscovite, biotite 및 chlorite를 주로하는 phyllosilicate가 서로 intergrowth 또는 interlayer를 이루는 것이 편광현미경 관찰, EPMA 분석, Back Scattered Electron (BSE) image 관찰 및 Transmission Electron Micro-scope(TEM) 관찰을 통하여 확인되었다. 이들 광물들은 편광현미경 관찰에서 흔히 각각의 입자를 식별할 수 없을 정도의 미세 규모로 서로 intergrow 되어 있으며BSE image에서는 0.1$\mu\textrm{m}$ 이하의 아주 작은 크기에서부터 10.0$\mu\textrm{m}$ 정도 크기까지 다양한 규모의 intergrow를 형성하고 있음이 관찰되었다. TEM scale에서는 개별 layer 크기(약 10$\AA$)에서부터 수십 개 layer 크기의 interlayering을 보여준다. 이와 같은 intergrowth 또는 interlayering의 결과로 EPMA 분석에서 종종 보기에는 규진(homogeneous)한 입자라 하더라도 두 개 이상의 광물 성분이 섞여 있는 분석값을 나타내며 이러한 nonstoichiometry는 BSE image에서 interlayer(또는 intergrow) 된 것으로 관찰되는 부분에서 더욱 두드러진다.Chlorite zone에서는 chlorite와 muscovite의 interlayering (C/M)이 주로 발견되며 biotite zone과 garnet zone에서는 chlorite와 biotite의 interlayer (C/B)가 주로 관찰된다. 이는 chlorite zone에서는 속성작용에서 보편적으로 나타나는 C/M으로부터 chlorite가 분리되는 광물반응이 일어나는데 반해서 biotite zone과 garnet zone에서는 chlorite로부터 C/B를 거쳐 biotite를 생성하는 광물반응이 일어나는 것을 의미한다. 이와 같은 현상은 변성작용에서 phollosilicate의 광물반응의 엄밀한 의미에서는 평형(equilibrium) 상태에서 균질한 광물을 생성하기보다는 비평형(disequilibrium) 반응으로 일어난다는 것을 의미한다.

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Characteristics of Stone-monuments and Geological Studies on the Rocks for Conservation(III) - Hanam city, Yangpyeong-gun and Yeoju-gun, Gyeonggi-do - (석조문화재의 특징과 암석에 대한 지질학적 연구 (III) -경기도 하남시, 양평군 및 여주군을 중심으로-)

  • Lee, Sang Hun;Park, Kyung Rip
    • Journal of Conservation Science
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    • v.4 no.1 s.4
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    • pp.11-42
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    • 1995
  • Stone-monuments, distributed in this area, have been investigated and studied on the characteristics and the rock phases in the geological and conservational points of view. Most of them may have been built from the end of the Shilla Kingdom to the Koryeo Kingdom, which are based on the typical characteristics of the form. The used rocks in these monuments are mainly biotite granite of the Jurassic age which is widely distributed around the area. Black slate and marbles are also used in some monuments, which may be obtained from other areas. The biotite granite of massive and coarse texture contains often inclusions of biotite aggregates or fragments of dioritic rock phase. However, the biotite granite in the area may be very weak to the chemical weathering so that irregular rock surface shows generally $2\~3mm$ relief. The irregular relief is mainly due to different relative degree on the chemical weathering according to the kind of minerals especially quartz, feldspar and biotite. The chemical weathering is also influenced by organisms. For conservation, they must be scientifically considered based on the characteristics, kind of the rock phase, factors on the weathering process, situation in situ or being transported, and protection.

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