• Title/Summary/Keyword: 수화열저감

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Evaluation on the Properties of Ternary blended Cement Concrete using Industrial Byproducts (산업부산물을 혼합하여 제작한 3성분계 시멘트 콘크리트의 성능 평가)

  • Kim, Chun Ho;Kim, Nam Wook
    • Resources Recycling
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    • v.23 no.3
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    • pp.13-20
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    • 2014
  • Nowadays, due to the development of industrial and civil engineering technology, enlargement and diversification of concrete structures are being tried. At the same time, the hydration heat generated during the construction of large structures lead to thermal crack, which is occurs causing a problem that durability degradation. In this paper, in order to study the durability and reducing hydration heat of concrete according to the types of cement, that is ordinary portland cement, fly ash cement mixed with a two-component, ternary blend cement mixed with fly ash and blast furnace slag and low heat cement concrete are produced, and compare and analyze the results using property, durability and hydration characteristics, ternary blend cement is appeared to be the most excellent in durability and reduction of hydration heat, and it was determined suitable for construction of mass concrete and requiring durability.

Hydration heat analysis for mass concrete of reaction structure (반력구조체의 매스콘크리트 수화열 해석)

  • Hong, Seok-Beom;Kim, Woo-Jae;Lee, Jae-Sam;Park, Hee-Gon
    • Proceedings of the Korea Concrete Institute Conference
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    • 2010.05a
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    • pp.261-262
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    • 2010
  • The Reaction structure in POSCO Global R&D center has to be investigated to minimize the crack especially by the hydration heat. In this study, several methods to control the hydration heat are suggested and the computational analysis of hydration heat is performed. The main variables are kinds of concrete, the interval of placement.

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Method of Decreasing Cracking Index by Different Mix Conditions for Separated Placement and its Field Application (콘크리트 배합요인별 상·하부 분리타설에 의한 수화열 균열지수 저감방안 및 현장적용)

  • Kim, Min-Ho;Han, Cheon-Goo
    • Journal of the Korean Recycled Construction Resources Institute
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    • v.4 no.3
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    • pp.292-298
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    • 2016
  • In this research, considering the practical situation of separated placing method for mass concrete structure, an efficient method of controlling the heat of hydration is suggested by comparing between the simulated values and actual measurements conducted with the optimum mix design obtained from the various mix conditions with different types and amount of supplementary cementitious materials(SCMs). As the result of the research, firstly, the optimum mix designs for top and bottom layers were determined by Midas gen as OPC to FA of 85 to 15, and OPC to FA to BS of 50 to 20 to 30, respectively. The concrete mixtures prepared with the mix designs determined from the simulation satisfied the target performance range in slump, air content and compressive strength. Additionally, from temperature measurement for the actual mass concrete placed during spring, the maximum temperature difference between surface and core was about $10^{\circ}C$ with 59 and $49^{\circ}C$ for top and bottom layers, respectively, and 1.4 of cracking index was obtained. Therefore, considering the practical conditions of mass concrete construction, it is considered that the different heat of hydration method using different mix designs with SCMs can be an efficient method for controlling thermal cracking and settling cracking of mass concrete.

The Characteristics of Strength of Development and Hydration Heat on High Volume Fly-Ash Concrete (플라이애쉬 치환율이 높은 콘크리트의 강도 발현 및 수화열 특성)

  • Park, Chan-Kyu;Lee, Seung-Hoon;Kim, Han-Jun;Kim, Sang-Jun;Lee, Tae-Wang
    • Proceedings of the Korea Concrete Institute Conference
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    • 2008.04a
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    • pp.417-420
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    • 2008
  • In this study, the characteristics of strength development and hydration heat on high volume fly ash concrete(HVFAC) was experimentally investigated. Two levels of W/B were selected. Seven levels of fly ash replacement ratios and two levels of silica fume replacement ratios were adopted. In the concrete mix, the water content of $125kg/m^3$ was used, which is less than that of usual water content. As a result, it appeared that the compressive strength gradually decreased with increasing fly ash replacement ratio at the early age, but the difference of strength up to replacement ratio of 50% was little at the age of 91 days because of the pozzolanic reaction of fly ash. The effect of hydration heat reduction on the concrete was affected by the fly ash replacement ratio. When the replacement ratio was over 30%, the reduction efficiency of hydration heat was large.

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A Study on Field Application of the Mass Concrete using Hydration Temperature-Reducing Binder - Focused on the Mock-up Test- (수화 온도 저감형 결합재를 이용한 매스콘크리트 현장적용에 관한 연구 -현장 Mock-up Test를 중심으로-)

  • Seo, Il;Kwon, Hae-Won;Park, Hee-Gon;Kim, Yoo-Jin;Kim, Woo-Jae;Lee, Jae-Sam
    • Proceedings of the Korea Concrete Institute Conference
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    • 2010.05a
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    • pp.371-372
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    • 2010
  • This study was a result of mock-up test for the field application which was compared between low heat cement and temperature-reducing binder with the way of temperature crack reduction. The result of mock-up test was shown that the heat of hydration from the low heat cement and the temperature-reducing binder indicated 44 and $54^{\circ}C$ respectively.

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The Experimental Study on Hydration Properties of Quaternary Component Blended High Fluidity Concrete with CO2 Reduction (탄소저감형 4성분계 고유동 콘크리트의 수화 특성에 관한 연구)

  • Choi, Yun-Wang;Oh, Sung-Rok;Jo, Jun-Hee;Kang, Hyun-Jin
    • Journal of the Korean Recycled Construction Resources Institute
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    • v.5 no.4
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    • pp.403-413
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    • 2017
  • In this paper, to increase the use of industrial byproducts for $CO_2$ reduction and to improve construction performance, it was manufactured that $CO_2$ reduction type quaternary component high fluidity concrete (QC-HFC) with Reduced cement usage by more than 80% and its quality and hydration characteristics were evaluated. QC-HFC was found to satisfy the target performance, and the flow and mechanical properties were similar to those of conventional concrete. The drying shrinkage of QC-HFC decreased about twice compared with the conventional blend, and the hydration heat decreased about 36%. As a result, it can be concluded that the amount of cracks can be reduced by reducing temperature stress due to hydration heat reduction effect and reducing deformation due to relatively small temperature difference between inside and outside. Also, As a result of the simulation of the mass structure, the temperature cracking index of QC-HFC is 1.1 or more, and the cracking probability is reduced by about 35%, so that the crack due to temperature can be reduced.

Thermal heat reduction of concrete using LHT (수화열 저감제를 이용한 콘크리트 수화열 저감법 개발)

  • Lee, Sang-Ho;Kim, Yong-Ro;Jung, Yang-Hee;Kim, Do-Su
    • Proceedings of the Korea Concrete Institute Conference
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    • 2006.11a
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    • pp.701-704
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    • 2006
  • Recently, the attention is paid to the problem of thermal crack by hydration heat according to the increase of high strength and mass concrete structures. At this point, various research has been carried out for the control of hydration heat in high strength and mass concrete. As a part of the research, the application of Low Heat Technology (LHT) for the control of thermal crack by hydration heat was investigated in this study. To investigate the application, it was selected LHT which can reduce hydration heat of concrete with effect in series I and II. Also, it was investigated the characteristics of hydration heat generation of low heat concrete using LHT with binder types in seriesIII.

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Control of Thermal Crack in Mass Concrete Using Automated Curing System (양생자동화 시스템을 이용한 매스 콘크리트 온도균열 제어)

  • Ha, Ju-Hyung;Cho, Yun-Gu;Hyun, Tae-Yang;Lim, Chang-Keun;Seo, Tae-Seok
    • Journal of the Korea Concrete Institute
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    • v.25 no.2
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    • pp.195-200
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    • 2013
  • New thermal crack control system for mass concrete was developed to increase quality and to save construction period and cost. The principle of this system is that the curing water having proper temperature is supplied automatically to the surface of mass concrete member to keep the temperature difference between center and surface of concrete less than generally recommended temperature difference ($20^{\circ}C$). Mock-up test was conducted to investigate the validity of newly developed curing system. As a result, no crack was founded in the specimen using automated curing system developed in this study, while many cracks occurred in another specimen without automated curing system. It was also confirmed that the strength and the durability of the concrete cured by automated curing system were improved.

Reducing Hydration Heat of Mass Concrete by Applying Combination of Powdered Materials and CGS as Fine Aggregate (분체계 재료조합 및 석탄 가스화 용융 슬래그를 잔골재로 활용한 매스 콘크리트 수화열 저감)

  • Park, Sang-Won;Han, Jun-Hiu;Han, Min-Cheol
    • Journal of the Korea Institute of Building Construction
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    • v.24 no.2
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    • pp.169-180
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    • 2024
  • In this study, to suggest an efficient method of using coal gasification slag(CGS), a byproduct from integrated gasification combined cycle(IGCC), as a combined fine aggregate for concrete mixture, the diverse performances of concrete mixtures with combined fine aggregates of CGS, river sand, and crushed sand were evaluated. Additionally, using CGS, the reduction of the hydration heat and the strength developing performance were analyzed to provide a method for reducing the heat of hydration of mass concrete by using combined fine aggregate with CGS and replacing fly ash with cement. The results of the study can be summarized as follows: as a method of recycling CGS from IGCC as concrete fine aggregate, a combination of CGS with crushed sand offers advantages for the concrete mixture. Additionally, when the CGS combined aggregate is used with low-heat-mix designed concrete with fly ash, it has the synergistic effect of reducing the hydration heat of mass concrete compared to the low-heat-designed concrete mixture currently in wide use.