• Title/Summary/Keyword: Adiabatic temperature rise

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Study on the Adiabatic Temperature Rise of High Strength Concrete with Design Compressive Strength and Mixing Temperature (타설온도 및 혼화재 치환에 따른 고강도콘크리트의 단열온도상승에 관한 연구)

  • Lee, Byoung-Chun;Kim, Gyu-Yong;Koo, Kyung-Mo;Nam, Jeong-Soo;Ham, Eun-Young;Lee, Bo-Kyeong
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2012.11a
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    • pp.101-102
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    • 2012
  • In this study, it was evaluated about hydration heat reduction under hot weather condition. Placement temperature set 25℃ and 35℃, For hydration heat reduction was applied such as FA and BFS. As a results, mixture of BFS70% is the most effective hydration temperature reduction.

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Properties of Adiabatic Temperature Rising of Concrete Using Coal Gasification Slag as Fine Aggregate (석탄 가스화 용융 슬래그를 잔골재로 사용한 콘크리트 단열온도상승 특성)

  • Han, Jun-Hui;Lim, Gun-Su;Chi, Il-Kyeung;Kim, Jung;Han, Min-Cheol;Han, Cheon-Goo
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2021.05a
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    • pp.114-115
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    • 2021
  • The research team conducted a series of studies to use CGS as fine aggregate for concrete. In this paper, through the adiabatic temperature rising test, CGS' hydration heating performance and its usability as a mass concrete hydration heating agent were reviewed. According to the analysis, the maximum temperature of the mix of OPC 100 was 53.7℃, and the temperature of CGS 50% was 45.2℃, which was 8.5℃ lower than the OPC 100.

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A Study of the Phase Change Material for Reducing Hydration Heat of Mass Concrete (상변화 물질을 이용한 저발열 콘크리트 개발에 관한 연구)

  • Shon, Myung-Soo;Lee, Wan-Jo;Chung, Yun-Joong;Kim, Jin-Keun;Hwang, In-Dong
    • Proceedings of the Korea Concrete Institute Conference
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    • 2006.11a
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    • pp.697-700
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    • 2006
  • The unique technology was developed to control the hydration heat of mass concrete by adding the Phase Change Material(PCM) to concrete. The PCM was designed to liquefy at 60 degrees and its size was limited under $10{\sim}30$ micro meters to be put in pores and to have no effect on compressive strength. In the hydration heat test, center temperature of the PCM specimen was reduced by 10 degrees without any difference in the strength. Even in the adiabatic temperature rise test, the final adiabatic temperature rise amount was reduced as much as 25% in comparison with the standard value in Korean Concrete Standard Specification.

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An Experimental Study on Hydration Heat Characteristics for Thermal Crack Analysis Based on FEM of Urea Mixed Mass Concrete (Urea 혼입 매스콘크리트의 FEM 온도균열 해석을 위한 수화발열특성에 관한 실험적 연구)

  • Mun, Dong-Hwan;Jang, Hyun-O;Lee, Han-Seung
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2019.05a
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    • pp.36-37
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    • 2019
  • In domestic construction industry progress, construction and quality control of large structures are considered to be important as the superstructure and mass scale of structures. In the case of mass concrete, high hydration heat caused by cement hydration generates temperature stress by generating internal temperature difference with the concrete surface. These temperature stresses cause cracks to penetrate the concrete structure. A method of lowering the heat generation by incorporating Urea in order to reduce the concrete temperature crack has been proposed. In this study, the heat function coefficient for the FEM temperature crack analysis of the mass concrete containing the element was derived and the adiabatic temperature rise test was carried out according to the incorporation of the element. As a result of this experiment, the maximum temperature of 41 ± 1℃ was obtained irrespective of the amount of urea, and the maximum temperature decreased by 16.9℃ in concrete containing 40kg/㎥ of urea.

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Physical and Mechanical Properties of Low Carbon Green Concrete (저탄소 그린콘크리트의 물리·역학적 특성)

  • Cho, Il Ho;Sung, Chan Yong
    • Journal of The Korean Society of Agricultural Engineers
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    • v.55 no.3
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    • pp.123-128
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    • 2013
  • This study was performed to evaluate the slump flow, air content, setting time, compressive strength, adiabatic temperature rise and diffusion coefficient of chloride used ordinary portland cement, crushed coarse aggregate, crushed sand, river sand, fly ash, limestone powder, blast furnace slag powder and superplasticizer to find optimum mix design of low carbon green concrete for structures. The performances of low carbon green concrete used fly ash, limestone powder and blast furnace slag powder were remarkably improved. This fact is expected to have economical effects in the manufacture of low carbon green concrete for structures. Accordingly, the fly ash, limestone powder and blast furnace slag powder can be used for low carbon green concrete material.

Fundamental Properties of the Low Heat Concrete depending on the Coarse Particle Cement (조분 시멘트의 치환율 변화에 따른 저발열 콘크리트의 기초적 특성)

  • Noh, Sang-Kyun;Baek, Dae-Hyun;Cha, Wan-Ho;Jang, Duk-Bae;Han, Min-Cheol;Han, Cheon-Goo
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2007.11a
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    • pp.45-48
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    • 2007
  • This study investigates mechanical properties of the concrete using coarse particle cement which is manufactured by the classifying process. The variable factors are 3 types of W/C such as 40, 50, and 60% and 5types of the replacement of the coarse particle cement such as 0, 25, 50, 75, and 100%. As the results, amount of SP agent to secure the target fluidity is gradually declined in accordance with increasing CC replacement. There is no special tendency for target air content, but setting time is delayed according to increasing CC content. The peak of the simple adiabatic temperature rise is gradually decreased in accordance with increasing CC content, and approach time to peak is slightly delayed. The compressive strength is comparatively delayed.

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Heat of hydration characteristics on high-performance concrete for large dimensional tunnel linings (대단면 터널 라이닝 적용 고성능 콘크리트의 수화열 특성)

  • Min, Kyung-Hwan;Jung, Hyung-Chul;Yang, Jun-Mo;Yoon, Young-Soo
    • Journal of Korean Tunnelling and Underground Space Association
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    • v.11 no.1
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    • pp.37-45
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    • 2009
  • In this study, experiments of development and application of 50 MPa high-performance concrete are performed for large dimensional tunnel linings. In order to produce 50MPa high-performance concrete, eight optimal mixtures replacing with fly ash and ground granulated blast furnace slag up to 50 percent of type I Portland cement were selected then tests for mechanical properties and simple adiabatic temperature rise tests were carried out. And in order to assess the quantitative characteristics of heat of hydrations of developed mixtures, three mixtures that the type I Portland cement (OPC) and each one mixture of binary and ternary mixtures (BS30, F15S35) were reselected, then the adiabatic temperature rise tests and mock-up tests were performed. Consequently, the comparisons between the results of mock-up tests and finite element analysis can be enhanced the reliability of analyzing routines of thermal behaviours of the developed high-performance concrete.

The Evaluation of Adiabatic Temperature rise in Concrete by Using Blended Cement Hydration Model (혼합시멘트 수화모델을 이용한 콘크리트의 단열온도상승 예측에 관한 연구)

  • Wang, Xiaoyong;Cho, Hyeong-Kyu;Lee, Han-Seung
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2011.11a
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    • pp.31-32
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    • 2011
  • Granulated slag from metal industries and fly ash from the combustion of coal are industrial by-products that have been widely used as mineral admixtures in normal and high strength concrete. Due to the reaction between calcium hydroxide and fly ash or slag, the hydration of concrete containing fly ash or slag is much more complex compared with that of Portland cement. In this paper, the production of calcium hydroxide in cement hydration and its consumption in the reaction of mineral admixtures is considered in order to develop a numerical model that simulates the hydration of concrete containing fly ash or slag. The heat evolution rates of fly ash- or slag-blended concrete is determined by the contribution of both cement hydration and the reaction of the mineral admixtures. Furthermore, the temperature distribution and temperature history in hardening blended concrete are evaluated based on the degree of hydration of the cement and the mineral admixtures. The proposed model is verified through experimental data on concrete with different water-to-cement ratios and mineral admixture substitution ratios.

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The Effect of Properties of The Compressive Strength of High-Strength Concrete under High Temperature conditions at an Early Age (초기고온이력이 고강도콘크리트의 압축강도특성에 미치는 영향)

  • Ham, Eun-Young;Kim, Gyu-Yong;Koo, Kyung-Mo;Yoon, Min-Ho;Yoo, Jea-Kang;Miyauchi, Hiroyuki
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2013.05a
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    • pp.115-116
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    • 2013
  • Property of the compressive strength of high strength concrete was investigated in adiabatic temperature history considering hot-weather conditions. As a result, compressive strength of specimens subjected to high temperature history showed more than 120% at 3days of age compare to standard cured specimens. But, at 91days of age showed the incidence of strength less than 100%.

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