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高温作用下高强混凝土的徐变性能

Creep Behavior of High-Strength Concrete Subjected to Elevated Temperatures.

作者信息

Yoon Minho, Kim Gyuyong, Kim Youngsun, Lee Taegyu, Choe Gyeongcheol, Hwang Euichul, Nam Jeongsoo

机构信息

Department of Architectural Engineering, Chungnam National University, 99 Daehak-ro, Yuseong-gu, Daejeon 34134, Korea.

Research & Development Institute, Lotte Engineering & Construction, 3 Naruteo-ro 10-gil, Seocho-gu, Seoul 06527, Korea.

出版信息

Materials (Basel). 2017 Jul 11;10(7):781. doi: 10.3390/ma10070781.

Abstract

Strain is generated in concrete subjected to elevated temperatures owing to the influence of factors such as thermal expansion and design load. Such strains resulting from elevated temperatures and load can significantly influence the stability of a structure during and after a fire. In addition, the lower the water-to-binder (W-B) ratio and the smaller the quantity of aggregates in high-strength concrete, the more likely it is for unstable strain to occur. Hence, in this study, the compressive strength, elastic modulus, and creep behavior were evaluated at target temperatures of 100, 200, 300, 500, and 800 °C for high-strength concretes with W-B ratios of 30%, 26%, and 23%. The loading conditions were set as non-loading and 0.33f. It was found that as the compressive strength of the concrete increased, the mechanical characteristics deteriorated and transient creep increased. Furthermore, when the point at which creep strain occurred at elevated temperatures after the occurrence of transient creep was considered, greater shrinkage strain occurred as the compressive strength of the concrete increased. At a heating temperature of 800 °C, the 80 and 100 MPa test specimens showed creep failure within a shrinkage strain range similar to the strain at the maximum load.

摘要

由于热膨胀和设计荷载等因素的影响,混凝土在高温下会产生应变。这种由高温和荷载引起的应变会显著影响火灾期间及之后结构的稳定性。此外,高强度混凝土的水胶比越低、骨料用量越少,就越有可能产生不稳定应变。因此,在本研究中,对水胶比分别为30%、26%和23%的高强度混凝土在100、200、300、500和800℃的目标温度下的抗压强度、弹性模量和徐变性能进行了评估。加载条件设定为无荷载和0.33f。结果发现,随着混凝土抗压强度的提高,其力学性能恶化,瞬态徐变增加。此外,当考虑瞬态徐变发生后高温下徐变应变出现的点时,随着混凝土抗压强度的提高,收缩应变也会增大。在800℃的加热温度下,80MPa和100MPa的试验试件在与最大荷载时的应变相似的收缩应变范围内出现了徐变破坏。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67ec/5551824/015819be2dbf/materials-10-00781-g001.jpg

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