• Title/Summary/Keyword: Temperature History of Concrete

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Effects of Thermal Conductivities on Temperature History of Massive Concrete Structures (국내 시방서와 ACI 규준 열전달율이 매스콘크리트 온도이력에 미치는 영향)

  • 장동일;손영현;조광현;김광일
    • Journal of the Korean Society of Safety
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    • v.14 no.2
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    • pp.122-126
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    • 1999
  • In this study, using the temperature history analysis, the influences of the conductive values of wooden form, which are specified by Korean Standard for Concrete and ACI Practice Manual for Concrete, on the temperature history were examined. And, the calculated temperature history is compared with the measured temperature history. In the examination for the influences of the conductive values of wooden form, the value recommended by the Korean Standard can more closely predict the themperature history at the points which the variation of the boundary condition should be considered.

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Temperature History of Concrete According to the Covering Method of Double Layer Bubble Sheet (이중버블시트의 포설방법에 따른 콘크리트의 온도이력특성)

  • Baek, Dae-Hyun;Son, Ho-Jung;Hong, Seak-Min;Han, Min-Cheol;Han, Cheon-Goo
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2010.05a
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    • pp.71-72
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    • 2010
  • The study is compared temperature history and strength of concrete followed by covering method of insulation curing of cold weather concrete with double bubble sheet. The results were as follows. First of all, in temperature history of concrete, the internal temperature of concrete fell down to $0^{\circ}C$ before/after 60 hours, having nothing to do with covering method. The study could see that, when sheet was isolated, it fell down to low temperature quickly in early curing. When the study measured compressive strength of core specimen, there were no large differences among placing methods. However, compressive strength fell down in all ages when sheet was isolated.

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Modeling of temperature history in the hardening of ultra-high-performance concrete

  • Wang, Xiao-Yong
    • Journal of the Korea Institute of Building Construction
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    • v.14 no.3
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    • pp.273-284
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    • 2014
  • Ultra-high-performance concrete (UHPC) consists of cement, silica fume (SF), sand, fibers, water and superplasticizer. Typical water/binder ratios are 0.15 to 0.20 with 20 to 30% silica fume. In the production of ultra-high performance concrete, a significant temperature rise at an early age can be observed because of the higher cement content per unit mass of concrete. In this paper, by considering the production of calcium hydroxide in cement hydration and its consumption in the pozzolanic reaction, a numerical model is proposed to simulate the hydration of ultra-high performance concrete. The heat evolution rate of UHPC is determined from the contributions of cement hydration and the pozzolanic reaction. Furthermore, by combining a blended-cement hydration model with the finite-element method, the temperature history in the hardening of UHPC is evaluated using the degree of hydration of the cement and the silica fume. The predicted temperature-history curves were compared with experimental data, and a good correlation was found.

An experimental Study on the Strength Control of High Fluidity Concrete by Maturity (적산온도방식에 의한 고유동콘크리트의 강도관리에 관한 실험적 연구)

  • 김무한;남재현;김규용;길배수;한장현
    • Journal of the Korea Concrete Institute
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    • v.12 no.2
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    • pp.79-87
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    • 2000
  • The strength development of concrete is influenced by temperature and cement type which greatly affect hydration degree of cement. There is not pertinent concrete strength management methods for estimating the in-place strength of concrete. One such method is the maturity concept. The maturity concept is based on the fact that concrete gains strength with time as a result of the cement hydration and, thus the rate of hydration, as in any chemical reaction, depends primarily on the concrete temperature during hydration. Thus, the strength of concrete is function of its time-temperature history. This goals of the present study are to investigate a relationship between strength of high-fluidity concrete and maturity that is expressed as a function of an integral of the curing period and temperature, predict strength of concrete.

TEMPERATURE CONTROL AND COMPRESSIVE STRENGTH ASSESSMENT OF IN-PLACE CONCRETE STRUCTURES USING THE WIRELESS TEMPERATURE MEASURING SYSTEM BASED ON THE UBIQUITOUS SENSOR NETWORK

  • Ho Kyoo JO;Hyung Rae KIM;Tae Koo KIM
    • International conference on construction engineering and project management
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    • 2009.05a
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    • pp.794-799
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    • 2009
  • The temperature control of in-place concrete is the most important factor for an early age of curing concrete. Heat stress of mass concrete caused by the heat of hydration can induce the crack of concrete, and a frost damage from cold weather casting concrete results defect on compressive strength and degradation of durability. Therefore, success and failure of concrete work is dependant on the measurement and control of concrete temperature. In addition, the compressive strength assessment of in-place concrete obtained from the maturity calculated from the history of temperature make a reduction of construction cycle time, possible. For that purpose, wireless temperature measuring system was developed to control temperature and assess strength of concrete. And, it was possible to monitor the temperature of concrete over 1km apart from site office and to take a proper measure; mesh-type network was developed for wireless sensor. Furthermore, curing control system that contains the program capable to calculate the maturity of concrete from the history of temperature and to assess the compressive strength of concrete was established. In this study, organization and practical method of developed curing control system are presented; base on in-place application case.

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An Experimental Study of Precast concrete Alters Cement Types of High-Strength Concrete (시멘트종류를 변화시킨 프리캐스트 고강도 콘크리트의 실험적 연구 - 수화열 온도특성을 중심으로 -)

  • Park, Heung-Lee;Kim, Sung-Jin;Paik, Min-Su;Lee, Seung-Hoon;Park, Byung-Keun;Jung, Sang-Jin
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2009.05b
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    • pp.119-122
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    • 2009
  • As architectures have recently become high-risers and mega-structured, stable high strength products have been ensured. Accordingly, use of precast concrete accouplement has been increased in order to facilitate air compression and rationalize construction. Since not only external heating but a1so internal temperature rise caused by the accumulation of cement hydration heat in manufacturing process, precast concrete members with large cross-section used for high-rise mega-structure's columns and beams may exhibit different temperature history compared to the precast concrete members for wall and sub-floor with relatively small cross-sections. Therefore, this study aims to elucidate the characteristics of temperature history of mass concrete members cast with high-strength concrete fur precast concrete application. In this study, large cross-sectional precast concrete mock-up, unit cement quantity, and temperature histories in manufacturing precast concrete member under different curing condition were inclusively investigated.

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An Experimetal Study on Strength Characteristics of Mass Concrete Cast with High-Strength Concrete for Precast Application. (프리캐스트 콘크리트 적용을 위한 고강도 매스 콘크리트 부재의 강도 특성에 관한 실험적 연구)

  • Park, Jo-Hyun;Kim, Sung-Jin;Paik, Min-Su;Lee, Seung-Hoon;Park, Byung-Keun;Jung, Sang-Jin
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2007.11a
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    • pp.49-52
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    • 2007
  • Recently, as architectural concrete structures become high-rise and megastructured, concrete become high-strengthened and, by ensuring products of more stability, air compression and rationalization of construction are required. In general, product management test of precast concrete member, specimen for management cured in the same condition with precast concrete member is substitutively used for strength test. However, large cross-sectional precast concrete members such as columns show large temperature increase in manufacturing process not only by external heating but also by concrete itself's hydration heating. Therefore, it is expected that specimen for management to predict strength and compression strength of precast concrete member shows different temperature history and strength characteristics. Concerning this, in order to suggest temperature history and strength characteristics of high strength mass concrete suitable for precast concrete application, this study comprises the inclusive investigations on the relations between management specimen with similar temperature history and core strength, and the strength characteristics per member cross-section dimensional value and per water-bonding material ratio value.

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Compressive Strength Properties of high strength concrete considering Adiabatic temperature rise of hot weather environment (서중환경의 단열온도상승 특성을 고려한 고강도 콘크리트의 압축강도 특성)

  • Lee, Eun Kyoung;Ham, Eun-Young;Koo, Kyung-Mo;Lee, Bo-Kyeong;Miyauchi, Hiroyuki;Kim, Gyu-Yong
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2013.11a
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    • pp.56-57
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    • 2013
  • In this study, in regard to concrete considering variety of admixture content rate, we evaluated property of adiabatic temperature rise. By setting up high temperature history, we evaluated effect to compression strength property of high strength concrete by early high temperature history. As a result, early high temperature history accelerated Hydration reaction of cement and contribute early strength development but it didn't accomplish performance objective in long-term aged.

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Analysis of Temperature Rise History Considering Construction Environments in Mass Concrete Structural Element (매스콘크리트 구조체의 주변환경을 고려한 온도이력 해석)

  • 이장화;변근주
    • Magazine of the Korea Concrete Institute
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    • v.8 no.4
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    • pp.191-199
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    • 1996
  • Cracks occur in mass concrete structures during construction if temperature of the concrete due to heat of hydration is suddenly changed. The temperature is also changed after placement of mass concrete by construction environments on structures. However, methods which can analyze the temperature history of mass concrete considering the construction environments have not been developed yet. In this research, an algorithm and finite element analysis program is developed for the analysis of temperature rise history of mass concrete considering quantitatively heat transfer coefficient and construction environmental conditions such as climate conditions, curing conditions, forms and form removal, and additive curing. By comparing analysis results of the program with experimental data, other research data, and analysis results by a finite element program ADINAT, validity and accuracy of the program is verified.

An Experimental Study on the Quantification of Hydration Heat Evolution in Mass Concrete (매스콘크리트 수화발열 특성의 정량화를 위한 실험적 연구)

  • 이장화;변근주
    • Proceedings of the Korea Concrete Institute Conference
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    • 1994.04a
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    • pp.238-242
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    • 1994
  • Recently, construction of mass concrete structures except Dam are increased very often. Generation heat due to the hydrating reaction of mass concrete is generally larger than the heat released to the air, foundations and the exist structures. Therefore, internal temperature of mass concrete is remarkably risen and temperature gap between center and surface is extended by various effect. It this gap get large, the crack may be occurred. This crack must be controlled as little as possible to ensure the soundness and durability of structure. Firstly, Temperature rising history of Mass concrete is expected correctly to constrain the crack of mass concrete. So, objectives of this research is to quantify the effects of hydration temperature for the purpose of evaluating accurately the temperature history of mass concrete.

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