• 제목/요약/키워드: Thermal expansivity

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청하지역 유천 견운모의 산상 및 물성 (A Study on the Geological Occurrence, the Mineralogical and Physico-Chemical Properties of the Yucheon Sericite Ore in Chungha Area, Kyungsangbuk-do)

  • 이동진
    • 한국광물학회지
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    • 제10권2호
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    • pp.114-125
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    • 1997
  • The purpose of this study is to clarify the geological occurrence, mineralogical, physico-chemical and thermal properties of the sericite ore which located in Chungha area, Kyungsangbuk-do. The geology of this area are composed mainly of hornfels and some felsite porphyry. The sericitic ore is classified into sericite, sericite-quartz and quartz-sericite ore according to mineral assemblages. Mineral components in sericite ore are mainly sericite with minor quartz, apatite, sphene, zircon, ilmenite, bismuthinite, iron oxide and etc. Sericite-quartz ore are mainly composed of sericite and quartz. Accessary minerals are muscovite, epidote, zircon, sphene, iron oxide and etc. The chemical compositions of K2O, Al2O3, & Ignition loss in sericite and sericite-quartz ore increase than that of the host rock, while the composition of SiO2, Na2O & Fe2O3 decrease. Sericite and sericite-quartz ore are characterized by the specific gravity of 2.35 and 2.44, the pH of 4.36 cP and 2.36 cP respectively. The result of size analyses of sericite ore is 11.3% in grain volume concentration between 12.9 $\mu\textrm{m}$ and 11.1$\mu\textrm{m}$, and 32.3% between 9.6$\mu\textrm{m}$ and 12.9$\mu\textrm{m}$. The thermal expansivity of sericite and sericite-quartz ore show the similar pattern. The sericite ore shows the thermal expansivity of 0.31% at 50$0^{\circ}C$, 0.39~0.75% at 600~1,00$0^{\circ}C$ and 0.74% at 1,10$0^{\circ}C$. The sericite-quartz ore show the thermal expansivity of 0.29% at 50$0^{\circ}C$, 0.36~0.72% at 600~1,000% and 0.71% at 1,10$0^{\circ}C$.

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경북 양북지역산 견운모광석의 물성 및 부존산상 (A Study o the Geological Occurrence, the Mineralogical and Physico-chemical Properties of the Sericite Ore from the Yangbuk Area, Kyungsangbuk-do)

  • 이동진;고상모
    • 한국광물학회지
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    • 제11권2호
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    • pp.85-96
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    • 1998
  • The sericite ore is formed by the hydrothermal alteration of rhyodacitic welded tuff. The alteration zone of the host rock can be classified into four types based on the mineral assemblages ; sericite, quartz-sericite, silicified and propylite zone. The sericite ore mainly occurs as vein types and fault clay along the fault plane in the quartz-sericite zone. Mineral components of the sericite ore are mainly sericite with minor diaspore, corundum and pyrite. The sericitic porcelaineous ore is mainly composed of quartz and sericite. Accessory minerals are muscovite, diaspore, sphene, corundum, pyrite, iron-oxides and etc. The chemical compositions of K2O, Al2O3, and ignition loss in the sericite ore increase largely than that of the host rock, while the compositions of SiO2, Na2O and Fe2O3 decrease. XRD patterns of the heat-treated sericite ores show the formation of mullite at $1,200^{\circ}C$. and the diaspore-bearing sericite ore forms mullite and corundum at $1,200^{\circ}C$. The differential thermal analysis of the sericite ores show small endothermic peak at 645~668$^{\circ}C$. and the diaspore-bearing sericite ore shows a strong endothermic peak at $517^{\circ}C$. It indicates that the decomposition of diaspore appear at lower temperature than that of sericite. The thermal expansivity of the sericite ores show the similar pattern. The sericite ores show the thermal expansivity of 3.3~4.7% at 900$^{\circ}C$ and 0.39~0.75% at 1,20$0^{\circ}C$, respectively. DTA-TG curves of the sericite ores show closely relations with the thermal expansivity.

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고온인가에 따른 에폭시 복합체의 열화 및 유전특성평가 (Estimation of Degradation and Dielectric Properties for Epoxy Composites doe to Applying High Temperature)

  • 왕종배;이준웅;김재환
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 1995년도 추계학술대회 논문집
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    • pp.175-178
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    • 1995
  • Distribution of relaxation time is presented in the Cole-Cole arc diagram with frequency parameter. In the case of estimation of activation energy for main chains, maximum loss frequencies of ${\alpha}$ peaks, f$\sub$m/(${\alpha}$) display curved change according to the WLF type with variations of temperature. Structural change by the filling of filler and degradation by the thermal aging can be estimated from the WLF factors, C$_1$and C$_2$in Log f$\sub$m/-1/T curves which reflect the variations of free volume and thermal expansivity of composites.

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Characterization and thermophysical properties of Zr0.8Nd0.2O1.9-MgO composite

  • Nandi, Chiranjit;Kaity, Santu;Jain, Dheeraj;Grover, V.;Prakash, Amrit;Behere, P.G.
    • Nuclear Engineering and Technology
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    • 제53권2호
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    • pp.603-610
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    • 2021
  • The major drawback of zirconia-based materials, in view of their applications as targets for minor actinide transmutation, is their poor thermal conductivity. The addition of MgO, which has high thermal conductivity, to zirconia-based materials is expected to improve their thermal conductivity. On these grounds, the present study aims at phase characterization and thermophysical property evaluation of neodymium-substituted zirconia (Zr0.8Nd0.2O1.9; using Nd2O3 as a surrogate for Am2O3) and its composites with MgO. The composite was prepared by a solid-state reaction of Zr0.8Nd0.2O1.9 (synthesized by gel combustion) and commercial MgO powders at 1773 K. Phase characterization was carried out by X-ray diffraction and the microstructural investigation was performed using a scanning electron microscope equipped with energy dispersive spectroscopy. The linear thermal expansion coefficient of Zr0.8Nd0.2O1.9 increases upon composite formation with MgO, which is attributed to a higher thermal expansivity of MgO. Similarly, specific heat also increases with the addition of MgO to Zr0.8Nd0.2O1.9. Thermal conductivity was calculated from measured thermal diffusivity, temperature-dependent density and specific heat values. Thermal conductivity of Zr0.8Nd0.2O1.9-MgO (50 wt%) composite is more than that of typical UO2 fuel, supporting the potential of Zr0.8Nd0.2O1.9-MgO composites as target materials for minor actinides transmutation.

플라즈마 아크 용해 공정으로 자발합성된 질화알루미늄 강화 알루미늄기지 복합재료의 개발 (Fabrication of Aluminum Nitride Reinforced Aluminum Matrix Composites via Plasma Arc Melting under Nitrogen Atmosphere)

  • 정수진;이제인;박은수
    • Composites Research
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    • 제36권2호
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    • pp.101-107
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    • 2023
  • 본 연구에서는 질화알루미늄을 강화재로 갖는 알루미늄기지 복합재료를 질소 분위기에서의 아크용해 공정을 통해 제조하였다. 알루미늄과 질소 원자의 화학반응을 1분간 유지시켰을 때, 중간층과 라멜라층으로 구분되는 질화알루미늄 강화상이 자발적으로 알루미늄 용탕 내부에 형성되어 기지 전반에 분포되었다. 복합재료는 약 10 vol.%의 AlN을 가지며, 이 강화재는 계면에서 낮은 열저항과 강한 결합을 보였다. 제조된 복합재료는 열전도도가 높고 열팽창계수는 낮은 열적 특성 조합을 보였다. 또한, 본 연구의 복합재료는 이종원소인 실리콘을 기지에 첨가함으로써 열팽창계수를 추가적으로 감소시키는 것이 가능했다. 이는 아크 용해법으로 제조된 알루미늄기지 복합재료가 낮은 열팽창계수를 요구하는 방열소재로 적용될 수 있는 가능성을 시사한다.

Fabrication Methods of Porous Ceramics and Their Applications in Advanced Engineering - Large Flat Precision Plate for Flat Display Industries

  • Matsumaru, Koji;Ishizaki, Kozo
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2009년도 춘계학술발표대회
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    • pp.3.1-3.1
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    • 2009
  • Normal sintering process of producing porous ceramics is not to sinter perfectly, i.e., stop sintering in middle-process. Our porous ceramic materials are a product of complete sintering. For example if one want to make a porous carborundum, raw carborundum powder is sintered at either lower temperatures than normal sintering temperature or shorter sintering periods than normal sintering time to obtain incompletely sintered materials, i.e., porous carborundum. This implies normally sintered porous ceramic materials can mot be used in high vacuum conditions due to dust coming out from uncompleted sintering. We could produce completely sintered porous ceramic materials. For example, we can produce porous carborundum material by using carborundum particles bonded by glassy material. The properties of this material are similar to carborundum. We could make quasi-zero thermal expansion porous material by using carborundum and particles of negative thermal expansion materials bonded by the glassy material. We apply to sinter them also by microwave to sinter quickly. We also use HIP process to introduce closed pores. We could sinter them in large size to produce $2.5m{\times}2.5m$ ceramic plate to use as a precision plate for flat display industries. This flat ceramic plate is the world largest artificial ceramic plate. Precision plates are basic importance to any advanced electronic industries. The produced precision plate has lower density, lower thermal expansivity, higher or similar damping properties added extra properties such as vacuum vise, air sliding capacity. These plates are highly recommended to use in flat display industries. We could produce also cylindrical porous ceramics materials, which can applied to precision roller for polymer film precision motion for also electronic industries.

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Micro Shell을 이용한 철기 문화재 복원용 충전제의 사용성 연구 (A Study of Usability of Micro Shell as a Filler for Restoration of Iron Objects)

  • 이현지;위광철
    • 박물관보존과학
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    • 제27권
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    • pp.91-102
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    • 2022
  • 철기 문화재 복원에 사용되고 있는 실리카 계열의 무기질 충전제는 열팽창률감소, 흐름성 개선 등의 기능성 부여를 목적으로 사용되고 있다. 그러나 충전제의 양이 많을 수록 복원재의 물성저하 및 황변 현상 촉진의 원인이되며, 결과적으로 재처리로 이어져 유물의 피로도를 상승시키는 결과를 초래한다. 따라서 복원제와 충전제의 혼합 정량화 및 황변성 연구 필요성이 강조될 수 밖에 없다. 이를 보완하기 위해 실리카계 경량 충전제인 Micro Shell을 비교군으로 물성연구를 진행하였다. 실험 결과 기존에 사용하던 충전제에 비해 Micro Shell이 황변도 발생 수치가 최대 34% 낮았으며, 충전제의 배합양에 따라서 공통적으로 접착력과 비중의 물성 수치값이 좋은 것을 확인하였다. 본 연구 결과 Micro Shell의 사용 가능성에 대해 확인하였다.

고리형 아민이 포함된 메탄 하이드레이트의 튜닝과 가스 저장 연구 (Tuning Behavior of (Cyclic Amines + Methane) Clathrate Hydrates and Their Application to Gas Storage)

  • 박기훈;김동현;차민준
    • Korean Chemical Engineering Research
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    • 제61권3호
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    • pp.394-400
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    • 2023
  • 이 연구에서는 메탄 가스(CH4)와 함께 사이클로프로필아민(cyclopropylamine, CPrA)과 사이클로펜틸아민(cyclopentylamine, CPeA)을 이용한 하이드레이트의 튜닝효과, 가스 저장량, 그리고 하이드레이트의 열팽창 거동에 대해 논의하였다. 메탄 가스의 저장량을 극대화시킬 수 있도록 하이드레이트 튜닝 효과를 하이드레이트에 투입된 객체 분자의 농도를 달리 함에 따라 알아보았다. (CPrA+CH4) 하이드레이트의 경우, 0.5 mol% 정도의 농도에서 최대 튜닝효과가 발생하였으며, (CPeA+CH4) 하이드레이트는 기존 연구와 유사한 1.0 mol% 정도의 농도에서 최대 튜닝 효과가 발생하였다. (CPrA + CH4), (CPeA + CH4) 하이드레이트 모두 구조 II 하이드레이트를 형성한다고 알려진(테트라하이드로퓨란 + CH4), (사이클로펜탄 + CH4) 하이드레이트보다 더 많은 가스량을 저장하는 것으로 밝혀졌다. 100, 150, 200, 250 K의 조건에서(CPrA + CH4), (CPeA + CH4) 하이드레이트의 분말 X-선 회절 분석을 통해 각 온도별 격자 크기를 알아내고 그 차이를 분석하여 열팽창 거동을 분석하였다. 이에 따라, 객체 분자의 크기 차이로 인해(CPeA + CH4) 하이드레이트의 격자 상수가 더 큰 것으로 확인되었다.