Study on the residual performance of RC beams exposed to processed temperatures and fire

IF 0.9 Q4 CONSTRUCTION & BUILDING TECHNOLOGY
S. Vijaya Kumar, N. Suresh
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引用次数: 0

Abstract

PurposeThe Reinforced Concrete(RC) elements are known to perform well during exposure to elevated temperatures. Hence, RC elements are widely used to resist the extreme heat developing from accidental fires and other industrial processes. In both of the scenarios, the RC element is exposed to elevated temperatures. However, the primary differences between the fire and processed temperatures are the rate of temperature increase, mode of exposure and exposure durations. In order to determine the effect of two heating modalities, RC beams were exposed to processed temperatures with slow heating rates and fire with fast heating rates.Design/methodology/approachIn the present study, RC beam specimens were exposed to 200 °C, to 800 °C temperature at 200 °C intervals for 2 h' duration by adopting two heating modes; Fire and processed temperatures. An electrical furnace with low-temperature increment and a fire furnace with standard time-temperature increment is adapted to expose the RC elements to elevated temperatures.FindingsIt is observed from test results that, the reduction in load-carrying capacity, first crack load, and thermal crack widths of RC beams exposed to 200 °C, and 600 °C temperature at fire is significantly high from the RC beams exposed to the processed temperature having the same maximum temperature. As the exposure temperature increases to 800 °C, the performance of RC beams at all heating modes becomes approximately equal.Originality/valueIn this work, residual performance, and failure modes of RC beams exposed to elevated temperatures were achieved through two different heating modes are presented.
钢筋混凝土梁在处理温度和火灾下的残余性能研究
目的众所周知,钢筋混凝土(RC)构件在高温下运行良好。因此,RC元件被广泛用于抵抗意外火灾和其他工业过程产生的极端热量。在这两种情况下,RC元件都暴露在高温下。然而,火灾和处理温度之间的主要差异是温度上升率、暴露模式和暴露持续时间。为了确定两种加热模式的影响,将RC梁暴露于加热速率较慢的加工温度和加热速率较快的火中。设计/方法/方法在本研究中,RC梁试样通过采用两种加热模式,以200°C的间隔暴露于200°C和800°C的温度下2小时;火和加工温度。具有低温增量的电炉和具有标准时间-温度增量的电炉适于将RC元件暴露于升高的温度。结果从试验结果中可以观察到,暴露在200°C和600°C火灾温度下的RC梁的承载力、首次裂纹载荷和热裂纹宽度的降低幅度明显高于暴露在具有相同最高温度的加工温度下的钢筋混凝土梁。随着暴露温度增加到800°C,RC梁在所有加热模式下的性能变得大致相等。独创性/价值在这项工作中,通过两种不同的加热模式,获得了暴露在高温下的RC梁的残余性能和失效模式。
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来源期刊
Journal of Structural Fire Engineering
Journal of Structural Fire Engineering CONSTRUCTION & BUILDING TECHNOLOGY-
CiteScore
2.20
自引率
10.00%
发文量
28
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