• Title/Summary/Keyword: Eco-concrete

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A Study on the Optimum Mixture for Reducing Combined Deterioration of Eco-Friendly Concrete Using Waste Fibe (폐섬유를 활용한 친환경 바탕 콘크리트의 복합열화 저감 최적 배합에 관한 연구)

  • Kim, Dae-Geon
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2023.05a
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    • pp.37-38
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    • 2023
  • As one of the resource recovery projects, this study aims to select natural fibers and synthetic fibers that can be used for concrete mixing among waste fibers and reuse them for the base concrete mixture. Using waste fiber, we seek a solution to the problem of reduced fluidity and hardening time of fiber-reinforced concrete and find the optimal mix of the ground concrete mixed with waste fiber.

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Properties of ECO-permeable Polymer Concrete (환경 친화형 투수성 폴리머 콘크리트의 특성)

  • Park, Fill-Woo;Youn, Joon-No;Sung, Chan-Yong
    • Proceedings of the Korean Society of Agricultural Engineers Conference
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    • 2002.10a
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    • pp.149-152
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    • 2002
  • This study is performed to evaluate the properties of ECO-permeable polymer concrete with blast furnace slag powder and stone dust. The unit weight is in the range of $1,821kg/m^3{\sim}1,955kg/m^3$, the unit weights of those concrete are decreased $15%{\sim}20.8%$ than that of the normal cement concrete. The highest strength is achieved by ECO-permeable polymer concrete filled blast furnace slag powder 50% and stone dust 50%, it is increased 36% by compressive strength, 119% by tensile strength and 217% by bending strength than that of the normal cement concrete, respectively. The coefficient of permeability is in the range of $5.6{\times}10^{-2}cm/s{\sim}8.1{\times}10^{-2}cm/s$, and it is largely dependent upon the mix design.

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Material Development of Eco Water Tank with High Density Polyethylene and Low-temperature Concrete (친환경 저수조를 위한 고밀도 폴리에틸렌과 저열성 콘크리트 합성재료 개발)

  • Chang, Chun-Ho
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.14 no.4
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    • pp.133-140
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    • 2010
  • The purpose of this study is to evaluate the new eco water tank which is made of high density polyethylene and concrete with low temperature cement. The strength and failure mode of eco water tank was examined through tensile test with mixture of concrete and HDPE, temperature monitoring for various kind of concrete, admixture contains etc. The strength and failure mode were examined through tensile test with mixture of concrete and HDPE, temperature monitering for different kinds of concrete, strength test with different admixtures etc. It was found that shear connector between concrete and HDPE effects significantly contributed to the combined structures. ㄱ type shear connector results in tensile strength of up to 40% compared to that of V type shear connector. Based on test result, the new eco composite tank improved the stability and safety the old one and demonstrated the applicability and capability.

Drying Shrinkage and Cracking Resisting Performance of Eco-cement Concrete mixing Fly-ash (플라이 애쉬를 혼입한 에코시멘트 콘크리트의 건조수축 및 균열저항 특성)

  • Yoo, Kwan-Jong;Seo, Tae-Seok;Choi, Chang-Sik
    • Proceedings of the Korea Concrete Institute Conference
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    • 2009.05a
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    • pp.409-410
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    • 2009
  • The eco-cement concrete using fly-ash was produced for the improvement of the compressive strength of the eco-cement concrete under the long term age, and compressive strength test, drying shrinkage test, uniaxial restraint shrinkage cracking test, and bond test were carried out. In this study, the cracking resistance performance was investigated.

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Compressive strength estimation of eco-friendly geopolymer concrete: Application of hybrid machine learning techniques

  • Xiang, Yang;Jiang, Daibo;Hateo, Gou
    • Steel and Composite Structures
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    • v.45 no.6
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    • pp.877-894
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    • 2022
  • Geopolymer concrete (GPC) has emerged as a feasible choice for construction materials as a result of the environmental issues associated with the production of cement. The findings of this study contribute to the development of machine learning methods for estimating the properties of eco-friendly concrete to help reduce CO2 emissions in the construction industry. The compressive strength (fc) of GPC is predicted using artificial intelligence approaches in the present study when ground granulated blast-furnace slag (GGBS) is substituted with natural zeolite (NZ), silica fume (SF), and varying NaOH concentrations. For this purpose, two machine learning methods multi-layer perceptron (MLP) and radial basis function (RBF) were considered and hybridized with arithmetic optimization algorithm (AOA), and grey wolf optimization algorithm (GWO). According to the results, all methods performed very well in predicting the fc of GPC. The proposed AOA - MLP might be identified as the outperformed framework, although other methodologies (AOA - RBF, GWO - RBF, and GWO - MLP) were also reliable in the fc of GPC forecasting process.

An Experimental Study on the Drying Shrinkage and Creep of High Strength Eco Lightweight Aggregate Concrete (고강도 에코인공경량골재콘크리트의 건조수축 및 크리프에 관한 실험적 연구)

  • Lee, Jin-Woo;Park, Hee-Gon;Kim, Woo-Jae;Bae, Yeoun-Ki;Lee, Hyoung-Woo;Lee, Jae-Sam
    • Proceedings of the Korea Concrete Institute Conference
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    • 2008.04a
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    • pp.425-428
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    • 2008
  • To use lightweight aggregate concrete with the structural material, it was need to evaluate property of mechanic and drying shrinkage and creep of the lightweight aggregate concrete, but these weren't. So the purpose of this study which it sees follows the mechanical property of the eco lightweight aggregate concrete according to the water binder ration in the high strength concrete. Eco lightweight aggregate was made with clay and crushed rock in this study. To make experiment, water binder ratio was divided 35% and 39%. And the fresh concrete properties were that slump flow was 500${\pm}$50mm, air contents was 2.0${\pm}$1.0%. It evaluated the hold a drying shrinkage and the creep the effect, it analyzed quality and reliability of the eco lightweight aggregate concrete.

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An Experimental Evaluation of Chloride Content and Chloride Penetration Depth in Concrete by Deicing Agent Type (제설제 종류에 따른 콘크리트 염화물 침투깊이 및 염화물량의 실험적 평가)

  • Lee, Sang-Hyun;Jo, Hong-bum;Kim, Young-Sun;Kim, Kwang-Ki;Ryu, Hwang-Sung
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2017.05a
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    • pp.276-277
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    • 2017
  • Deicing agent affect concrete durability such as scaling, rebar corrosion strength of concrete. In this study, developed deicing agent satisfied with EL610 is evaluated to compare affects to concrete with no deicing agent and chloride-containing deicing agents. Deicing agents are applied to concrete surface during four months twice a week. Chloride content, chloride penetration depth and concrete strength are evaluated. After experiment, chloride content, chloride penetration depth of concrete are as follows. Chloride-containing deicing > Eco friendly deicer > No deicing agents. Concrete strength are also as follows. Chloride-containing deicing > Eco friendly deicer > No deicing agents. From experiment, developed deicing agent shows low chloride content in concrete and affect concrete strength little lower than chloride-containing deicing.

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A Study on Chemical Neutralization and Production of Planting Porous Concrete Using Low-Grade Iron Ore (저 품위 철광석을 사용한 식생용 투수 콘크리트의 중성화 및 제작에 관한 연구)

  • Eun, Hee-Chang;Lee, Min-Su;Bae, Choong-Yeol
    • Journal of Industrial Technology
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    • v.27 no.A
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    • pp.31-38
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    • 2007
  • Recently produced concrete has a tendency to overcome environmental defects. Porous and planting Eco-concrete requires the neutralization process and enough void in concrete to contain water, to pass air freely, and provides necessary nutrients to vegetation roots. The biological environment in concrete is not suitable for planting because the concrete possesses strong alkali constituent of pH 11-13. This study evaluated the strength and serviceability of concrete as well as the chemical characteristics of concrete mixed by low-grade iron ore left in the abandoned mine and treated by Ammonium monohydrogen phosphate, $(NH_4)_2HPO_4$. Test variables include two kinds of coarse aggregates such as crushed stones and low-grade iron ore, the duration time and the period for neutralization treatment by Ammonium monohydrogen phosphate, $(NH_4)_2HPO_4$, and the proportion ratio of cement, blast furnace slag and silica fume.

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