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Fiber optic sensors enabled monitoring of thermal curling of concrete pavement slab: Temperature, strain and inclination

机译:光纤传感器使监控混凝土路面的热卷曲:温度,应变和倾斜度

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An intellectual system is developed to monitor concrete pavement slab subjected to external temperature fluctuations. Truly distributed fiber-optic temperature and strain sensors and an innovative Fabry-Perot interferometer-based optical fiber inclinometer are installed in the concrete pavement slab so as to monitor and evaluate its thermal curling process. The system is demonstrated to be effective in detecting the thermal curling of slab. The results substantiate that the top surface of the slab has a fast reaction rate to the heating/cooling process. The bottom surface temperature has a time-lag comparing to the top surface, which results in a sharp increase then a slow reduction in the top-vs-bottom temperature difference. In the light of the inclinometer, it is proven that the tilt angle of the curvature of the slab has a high degree of synchronization with the top-vs-bottom temperature difference. The temperature/strain distribution maps are also presented and uneven distributions of temperature and strain are captured. Moreover, taking the advantage of the multiplexing capacity of the distributed fiber-optic sensors, the coefficient of thermal expansion (CTE) of the slab can be easily obtained and used to feed a finite element model. Finally, a three-dimensional finite element model is established to completely understand the curling process measured from the monitoring system. The model and the experimental data agree well with each other. While the sensors output realistic temperature and deformations at certain locations, the validated model is able to reveal more details of the nonlinearity inside the slab. (C) 2020 Elsevier Ltd. All rights reserved.
机译:开发了一种知识系统,以监测经过外部温度波动的混凝土路面板。真正分布的光纤温度和应变传感器和基于创新的Fabry-Perot干涉仪的光纤倾角仪安装在混凝土路面板中,以便监测和评估其热卷发过程。该系统被证明是有效地检测板坯的热卷曲。结果证实,板坯的顶表面具有快速反应速率与加热/冷却过程。底表面温度具有与顶表面相比的时间滞后,这导致急剧增加,然后对顶部Vs底部温度差的缓慢降低。在倾斜仪的光中,证明板坯曲率的倾斜角度具有高度的与顶部-VS-底部温度差异的同步。还呈现温度/应变分布图,捕获温度和应变的不均匀分布。此外,采用分布式光纤传感器的多路复用容量的优点,可以容易地获得板坯的热膨胀系数(CTE)并用于馈送有限元模型。最后,建立了三维有限元模型以完全理解从监控系统测量的卷曲过程。该模型和实验数据彼此一致。虽然传感器在某些位置输出现实的温度和变形,但是验证的模型能够透露板内的非线性的更多细节。 (c)2020 elestvier有限公司保留所有权利。

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