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Assessment of Post-Fire Residual Strength of Reinforced Concrete Using Ultrasonic Pulse Velocity

机译:超声脉冲速度评估钢筋混凝土的火灾后残余强度

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High temperature may cause the degradation of concrete strength and subsequent loss of steel-concrete bond. Based on the results of a previous study on the correlation of pulse velocity and residual strength, this research aims to examine further the feasibility of nondestructive testing toward in-situ assessment of concrete structures after fire exposure or under constant exposure to high temperature. Ultrasonic pulse velocities of cylindrical concrete specimens are measured both before and after simulated fire exposure. Residual compressive strengths are obtained from compressive tests. The effects of exposure time, up to two hours, and maximum exposure temperature, up to 800 degree Celsius, are both analyzed. It is confirmed that residual compressive strength of standard 12 by 24 centimeter concrete specimens decreases as exposure time is increased. Regression analyses show strong linear relationship exists between pulse velocity and residual strength over the exposure time ranging from 30 to 120 minutes and the maximum exposure temperature ranging from 500 to 700 degree Celsius. The captured waveforms are also processed using continuous wavelet transform that provides simultaneously frequency and time information. Signal features can thus be identified. The findings can be used as a basis for assessing the post-fire residual concrete strength.
机译:高温可能会导致混凝土强度下降,并随后导致钢与混凝土的粘结性丧失。基于先前关于脉冲速度和残余强度相关性的研究结果,本研究旨在进一步探讨无损检测在火灾或持续高温下对混凝土结构进行现场评估的可行性。在模拟火灾暴露之前和之后,测量圆柱混凝土试样的超声波脉冲速度。残余抗压强度是从抗压试验中获得的。都分析了曝光时间(最长两个小时)和最高曝光温度(最高800摄氏度)的影响。可以确定,随着暴露时间的增加,标准12乘24厘米的混凝土样品的残余抗压强度会降低。回归分析显示,在30至120分钟的暴露时间和500至700摄氏度的最高暴露温度下,脉冲速度与残余强度之间存在很强的线性关系。捕获的波形也使用连续小波变换处理,该变换同时提供频率和时间信息。因此可以识别信号特征。这些发现可作为评估火灾后混凝土残余强度的基础。

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