• Title/Summary/Keyword: high temperature compressive strength

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An Experimental Study on the Characteristics of Strength in Mortar under High Temperature conditions in an Early Age (모르터 압축강도 특성에 영향을 미치는 고온이력에 관한 실험적 연구)

  • Kim Young Joo;Gong Min Ho;Song In Myung;Yang Dong Il;Paik Min Su;Jung Sang Jin
    • Proceedings of the Korea Concrete Institute Conference
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    • 2004.11a
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    • pp.703-706
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    • 2004
  • This study is basic experiment for estimating influence of strength by curing temperature of concrete's heat of hydration and estimate relationship of compressive strength development by initial curing temperature factor, and then asume temperature factor which influence compressive strength development and for showing basic document of quality control. According to the result of cement mortar by the curing temperature factor high-curing temperature shows high strength on 3 day compare with low curing-temperature, shows higher strength than the piece of high curing temperature.

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Thermal Strain Properties of Ultra High Strength Concrete according to the Compressive Strength (압축강도에 따른 초고강도 콘크리트의 열변형 특성)

  • Yoon, Min-Ho;Kim, Gyu-Yong;Choe, Gyeong-Cheol;Hwang, Eui-Chul;Lee, Bo-Kyeong;Seo, Won-Woo
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2016.10a
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    • pp.24-25
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    • 2016
  • In this study, the thermal strain of high strength concrete with the compressive strength of 80, 130, 180MPa were measured under 25% of compressive strength loading condition. As results, it is considered that decline of the elastic modulus and shrinkage strain of high strength concrete become grater at the elevated temperatures.

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Evaluation on Mechanical Properties of PP Fiber Ultra High Strength Concrete at Elevated Temperatures (PP섬유 혼입에 따른 초고강도 콘크리트의 고온역학적특성 평가)

  • Bang, Deog-Yun;Kim, Gyu-Yong;Choe, Gyeong-Cheol;Yoon, Min-Ho;Lee, Bo-Kyeong;Hwang, Eui-Chul
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2016.05a
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    • pp.53-54
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    • 2016
  • In this study, the effect of high temperature on the compressive strength and elastic modulus of ultra high strength concrete with PP fiber were experimentally investigated. As the result, the compressive strength and elastic modulus of ultra high strength concrete were irrespectively evaluated mixed ratio of PP fiber at high temperature.

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Temperature and Compressive Strength of the Concrete According to the Types of Rapid Hardening Cements (조강성 시멘트 종류에 따른 콘크리트의 온도이력 및 압축강도 특성)

  • Kim, Sang-Min;Choi, Yoon-Ho;Hyun, Seung Yong;Kim, Jong;Han, Min-Cheol;Han, Cheon-Goo
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2020.11a
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    • pp.100-101
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    • 2020
  • In this study, the temperature history and compressive strength of the concretes according to the type of cement were measured and analyzed in comparison as part of the experiment on the material mixing side to reduce the hydration heat crack of the mat foundation constructed with mass concrete. As a result, the peak temperature and maximum temperature reach time of concrete using high rapid cement were shown to be similar to that of semi rapid cement. In particular, in compressive strength after three days, semi rapid cement was measured higher than that of concrete using high rapid cement. Therefore, if semi rapid cement is used in accordance with the site conditions, it is deemed possible to shorten the air due to reduction of temperature cracks and improvement of initial strength.

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Modeling of Compressive Strength Development of High-Early-Strength-Concrete at Different Curing Temperatures

  • Lee, Chadon;Lee, Songhee;Nguyen, Ngocchien
    • International Journal of Concrete Structures and Materials
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    • v.10 no.2
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    • pp.205-219
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    • 2016
  • High-early-strength-concrete (HESC) made of Type III cement reaches approximately 50-70 % of its design compressive strength in a day in ambient conditions. Experimental investigations were made in this study to observe the effects of temperature, curing time and concrete strength on the accelerated development of compressive strength in HESC. A total of 210 HESC cylinders of $100{\times}200mm$ were tested for different compressive strengths (30, 40 and 50 MPa) and different curing regimes (with maximum temperatures of 20, 30, 40, 50 and $60^{\circ}C$) at different equivalent ages (9, 12, 18, 24, 36, 100 and 168 h) From a series of regression analyses, a generalized rate-constant model was presented for the prediction of the compressive strength of HESC at an early age for its future application in precast prestressed units with savings in steam supply. The average and standard deviation of the ratios of the predictions to the test results were 0.97 and 0.22, respectively.

Evaluation on Fatigue Crack Propagation Behavior of The Shot-peened and un-peened Spring Steel (쇼트피이닝재와 언피닝재의 피로균열진전거동 평가)

  • Park, Keyong-Dong;Ryu, Chan-Uk
    • Proceedings of the KSME Conference
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    • 2003.04a
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    • pp.247-254
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    • 2003
  • The lightness of components required in automobile and machinery industry is requiring high strength of components. In particular manufacturing process and new materials development for solving the fatigue fracture problem attendant upon high strength of suspension of automobile are actively advanced. In this paper, the effect of compressive residual stress of spring steel(JISG SUP-9) by shot-peening on fatigue crack growth characteristics in high temperatures($100^{\circ}$, $150^{\circ}$, $180^{\circ}$) was investigated with considering fracture mechanics. So, we can obtain followings. (1)Compressive residual stress decreases in high temperature, that is, with increasing temperature. (2)The effect of compressive residual stress on fatigue crack growth behavior in high temperature increases below ${\Delta}K=17{\sim}19MPa$ (3)It was investigated by SEM that the constraint of compress residual stress for plastic zone of fatigue crack tip was decreased in high temperature as compared with room temperature.

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An Experimental Study on the Mechanical Behavior of High-Strength Concretes Subjected to High Temperature (고온을 받은 고강도 콘크리트의 역학적 특성에 관한 실험적 연구)

  • Yang, Keun-Hyeok;Hong, Seong-Woo
    • Proceedings of the Korea Concrete Institute Conference
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    • 2005.05b
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    • pp.25-28
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    • 2005
  • The experimental results on the mechanical behavior of high-strength concretes subjected to high temperature were presented. Main variables were heating temperature, heating continuance time, and cooling condition. The compressive strength properties of high strength concrete(HSC) varied differently with temperature than those of normal strength concrete(NSC). HSC had higher rates of strength loss than NSC in the temperature range of between $20^{circ}C$ and $400^{circ}C$. Especially, HSC exploded in $400^{circ}C$ of high temperature.

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Evaluation for Mechanical Properties of High Strength Concrete at High Temperature by Stressed Test and Unstressed Test (설계하중 사전재하 및 비재하방식에 의한 고강도콘크리트의 고온특성 평가)

  • Kim, Gyu-Yong;Kim, Young-Sun;Lee, Tae-Gyu;Park, Chan-Kyu;Lee, Seung-Hoon
    • Journal of the Korea Concrete Institute
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    • v.20 no.5
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    • pp.583-592
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    • 2008
  • Recently, the effects of high temperature on compressive strength, elastic modulus and strain at peak stress of high strength concrete were experimentally investigated. The present study is aimed to study the effect of elevated temperatures ranging from 20 to 700 on the material mechanical properties of high strength concrete of 40, 60, 80 MPa grade. In this study, the types of test were the stressed test and stressed residual test that the specimens are subjected to a 25% of ultimate compressive strength at room temperature and sustained during heating and when target temperature is reached, the specimens are loaded to failure. And another specimens are loaded to failure after 24 hour cooling time. Tests were conducted at various temperatures ($20{\sim}700^{\circ}C$) for concretes made with W/B ratios 46%, 32% and 25%. Test results showed that the relative values of compressive strength and elastic modulus decreased with increasing compressive strength grade of specimen and the axial strain at peak stress were influenced by the load before heating. Thermal strain of concrete at high temperature was affected by the preload level as well as the compressive strength. Finally, model equation for compressive strength and elastic modulus of heated high strength concrete proposed by result of this study.

A Study on the High Temperature Properties (Compressive Strength, Expansion) of Synthetic Sand using Domestic Silica Sand (Mooryang Silica Sand) (국내규사(國內硅砂)를 사용(使用)한 합성사(合成砂)의 고온성질(高溫性質) (압축강도(壓縮强度), 팽장(膨張)) 에 관(關)한 연구(硏究))

  • Yun, Byung-Guk;Lee, Kye-Wan
    • Journal of Korea Foundry Society
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    • v.2 no.4
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    • pp.2-8
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    • 1982
  • The behavior of sand and mold at high temperatures was generally agreed to importantly affect the quality of castings made. By changing water content through 2,4,6 and 8%, and bentonite content through 5,7,9 and 11%, specimens have been made according to the respective composition. Specimens have been subjected to hot compressive strength and thermal expansion at 400, 600, 800 and $1000^{\circ}C$ respectively. The results obtained were as follows ; 1. At each temperature, thermal expansion decreased and hot compressive strength increased with the increase in water content. 2. After thermal expansion was peaked at approximately $1000^{\circ}C$ the contraction and maximum hot compressive strength appeared. 3. At each temperature, maximum hot compressive strength appeared 2%, 4,6% and 8% water content for 7%, 9% and 11% bentonite content respectively. 4. When 2% $H_2O$ was added, though bentonite content was increased, hot compressive strength did not rarely change. 5. Until the thermal expansion was completed the required time was 15-18 minutes at $400^{\circ}C$ and $600^{\circ}C$, and 10-13 minutes at $800^{\circ}C$. At $1000^{\circ}C$, the required time was 7-9 minutes in order to gain the maximum expansion, after that, contraction proceeded during 3-4 minutes before expansion was completed.

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Transient Strain of Concrete at High Temperature (고온에서의 콘크리트 비정상상태 변형률)

  • Park, Chan-Kyu;Kim, Gyu-Yong;Lee, Seung-Hoon;Park, Ju-Heon;Kim, Young-Sun
    • Proceedings of the Korea Concrete Institute Conference
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    • 2006.11a
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    • pp.865-868
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    • 2006
  • An experimental investigation was carried out to evaluate the transient strain of concrete at high temperature. Two level of W/B ratio were selected as 46% and 32%. Four level of preload were adopted as 0, 15, 30, 45% of compressive strength. The entire temperature range was between room temperature and $700^{\circ}C$. Based on the test results, transient strain of concrete at high temperature was affected by the compressive strength as well as the preload level.

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