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      KCI등재 SCIE SCOPUS

      Effect of Lamellar Inorganic Fillers on the Properties of Epoxy Emulsion Cement Mortar

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      https://www.riss.kr/link?id=A106883893

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      다국어 초록 (Multilingual Abstract)

      Lamellar inorganic fillers have been used to improve the performance of polymer composites. In this paper, five kinds of lamellar inorganic fillers, including montmorillonite (MMT), mica, talc, glass flake (GF) and lamellar double hydroxide (LDH), wer...

      Lamellar inorganic fillers have been used to improve the performance of polymer composites. In this paper, five kinds of lamellar inorganic fillers, including montmorillonite (MMT), mica, talc, glass flake (GF) and lamellar double hydroxide (LDH), were selected to modify epoxy emulsion cement mortar (EECM). The research evaluated the effects of the structure characteristics of lamellar fillers on the mechanical properties, water absorption and chloride ion permeability resistance of EECM, with comparison to granular ground calcium carbonate (GCC). Results indicated that lamellar fillers had no obvious superiority than GCC in the mechanical strength of EECM, even MMT caused the decline of the mechanical strength. However, lamellar fillers had improved the chloride ion permeability resistance of EECM compared with GCC, and they had the similar effect on reducing of water absorption except MMT. Although the low aspect ratio (AR) of the lamellar fillers benefited the increase of the strength and water resistance of EECM, the lamellar fillers with higher AR could improve the chloride ion permeability resistance of EECM more efficiently.

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      목차 (Table of Contents)

      • Abstract
      • 1. Introduction
      • 2. Experimental
      • 3. Results and Discussion
      • 4. Conclusion
      • Abstract
      • 1. Introduction
      • 2. Experimental
      • 3. Results and Discussion
      • 4. Conclusion
      • 5. Highlights
      • References
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      참고문헌 (Reference)

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      6 Tugrul, A., "The effect of feldspar, mica and clay minerals on compressive strength of mortar" 5 : 93-96, 2015

      7 Chinese Standard, "Standard for test methods of long-term performance and durability of ordinary concrete: GB/T 50082-2009"

      8 Alhozaimy, A., "Significance of oxygen concentration on the quality of passive film formation for steel reinforced concrete structures during the initial curing of concrete" 65 : 171-176, 2016

      9 He, H., "Resin modification on interlaminar shear property of carbon fiber/epoxy/nano-CaCO3 hybrid composites" 38 (38): 2035-2042, 2015

      10 Alonge, O. R., "Properties of hybrid cementitious composite with metakaolin, nanosilica and epoxy" 155 : 740-750, 2017

      1 김주영, "비스페놀 A 및 F형 에폭시수지와 칼루마이트를 병용한 폴리머 시멘트 모르타르의 방청성 및 내구성" 한국콘크리트학회 26 (26): 517-524, 2014

      2 Zhang, P., "Water and chloride ions migration in porous cementitious materials : An experimental and molecular dynamics investigation" 102 : 161-174, 2017

      3 Leung, C. K. Y., "Use of polymer/organoclay nanocomposite surface treatment as water/ion barrier for concrete" 20 (20): 484-492, 2008

      4 Li, Y., "Toughness improvement of epoxy resin mortar by incorporation of ground calcium carbonate" 100 : 122-128, 2015

      5 Meng, F. D., "The influence of the chemically bonded interface between fillers and binder on the failure behaviour of an epoxy coating under marine alternating hydrostatic pressure" 101 : 139-154, 2015

      6 Tugrul, A., "The effect of feldspar, mica and clay minerals on compressive strength of mortar" 5 : 93-96, 2015

      7 Chinese Standard, "Standard for test methods of long-term performance and durability of ordinary concrete: GB/T 50082-2009"

      8 Alhozaimy, A., "Significance of oxygen concentration on the quality of passive film formation for steel reinforced concrete structures during the initial curing of concrete" 65 : 171-176, 2016

      9 He, H., "Resin modification on interlaminar shear property of carbon fiber/epoxy/nano-CaCO3 hybrid composites" 38 (38): 2035-2042, 2015

      10 Alonge, O. R., "Properties of hybrid cementitious composite with metakaolin, nanosilica and epoxy" 155 : 740-750, 2017

      11 Chen, S. J., "Pore shape analysis using centrifuge driven metal intrusion : Indication on porosimetry equations, hydration and packing" 154 : 95-104, 2017

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      13 Wang, Y., "Physical filling effect of aggregate micro fines in cement concrete" 41 : 812-814, 2013

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      15 Depolo, W. S., "Particulate reinforced PC/PBT composites. I. Effect of particle size (nanotalc versus fine talc particles) on dimensional stability and properties" 30 (30): 188-199, 2009

      16 Sheng, N., "Multiscale micromechanical modeling of polymer/clay nanocomposites and the effective clay particle" 45 (45): 487-506, 2004

      17 Švehlová, V., "Mechanical properties of talc-filled polypropylene. Influence of filler content, filler particle size and quality of dispersion" 214 (214): 91-99, 1994

      18 Mitsuishi, K., "Mechanical properties of poly(propylene)filled with calcium carbonate of various shape" 248 (248): 73-83, 1997

      19 Zuo, J., "Mechanical properties and resistance to chloride ion permeability of epoxy emulsion cement mortar reinforced by glass flake" 155 : 137-144, 2017

      20 Yang, Z., "Laboratory investigation of the influence of two types of modified hydrotalcites on chloride ingress into cement mortar" 58 : 105-113, 2015

      21 He, S., "Investigation of the conductive network formation of polypropylene/graphene nanoplatelets composites for different platelet sizes" 52 (52): 13103-13119, 2017

      22 Lee, J., "Inorganic particle toughening II : Toughening mechanisms of glass bead filled epoxies" 42 (42): 589-597, 2001

      23 Fan, Y., "Influence of kaolinite clay on the chloride diffusion property of cement-based materials" 45 : 117-124, 2014

      24 Zhang, Z. Q., "Hydration kinetics of the epoxy resin-modified cement at different temperatures" 150 : 287-294, 2017

      25 Katiyar, J. K., "Friction and wear durability study of epoxy-based polymer(SU-8)composite coatings with talc and graphite as fillers" 362 : 199-208, 2016

      26 Piqué, T. M., "Fluid transport mechanisms in portland cement mortar modified with pva and nano montmorillonite" 687 : 311-315, 2013

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      28 Veghte, D. P., "Facile method for determining the aspect ratios of mineral dust aerosol by electron microscopy" 48 (48): 715-724, 2014

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      33 Chi, M., "Effect of montmorillonite as additive on the properties of cement-based composites" 19 (19): 45-54, 2012

      34 Xia, Z., "Effect of high aspect ratio fillers on the performance of styrene-butadiene rubber" 56 (56): 800-809, 2017

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      37 Elfmarkova, V., "Determination of the chloride diffusion coefficient in blended cement mortars" 78 : 190-199, 2015

      38 Abdalkader, A., "Corrosion behaviour of steel rebar in mortars subjected to magnesium sulfate and sodium chloride mixtures at 5 and 20 °C" 153 : 358-363, 2017

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      40 Rahman, M. M., "Contribution of rice husk ash to the performance of polymer mortar and polymer concrete" 33 (33): 377-387, 2013

      41 Conciatori, D., "Comprehensive modeling of chloride ion and water ingress into concrete considering thermal and carbonation state for real climate" 40 (40): 109-118, 2010

      42 Tumolva, L., "Combination of transmission electron and atomic force microscopy techniques to determine volume equivalent diameter of submicrometer particles" 75 (75): 505-512, 2012

      43 Zhong, S. Y., "Chloride diffusion coefficient of latex blend modified mortars" 6 (6): 316-320, 2003

      44 Yang, R., "Characterization of surface interaction of inorganic fillers with silane coupling agents" 70 (70): 413-425, 2003

      45 Biernacki, J. J., "Cements in the 21st century : Challenges, perspectives, and opportunities" 100 (100): 2746-2773, 2017

      46 Luo, J., "Bonding and toughness properties of PVA fiber reinforced aqueous epoxy resin cement repair mortar" 49 (49): 766-771, 2013

      47 Yu, W. H., "Adsorption of proteins and nucleic acids on clay minerals and their interactions : A review" 80–81 : 443-452, 2013

      48 Si, Y., "A robust epoxy resins@ stearic acid-Mg(OH)2micronanosheet super-hydrophobic omnipotent protective coating for real-life applications" 8 (8): 16511-16520, 2016

      49 Afzal, A., "A review on polymer/cement composite with carbon nanofiller and inorganic filler" 55 (55): 1299-1323, 2016

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2012-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2011-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2009-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.81 0.92 1.47
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      1.25 1.17 0.488 0.24
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