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Heat conduction effect of steel bridge deck with conductive gussasphalt concrete pavement

机译:导电沥青混凝土路面钢桥面的导热效果。

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The snow- and ice-melting effect and energy usage of steel bridge deck pavement are affected by the heat-transfer rate and temperature change in the middle of the combination structure when using conductive gussasphalt concrete (CGA). To determine the heat conduction effect and the snow melting time of conductivegussasphalt concrete pavement, the heat conduction estimation method and a theoretical equation of the CGA combination structure are derived. A CGA combination structure with spreading carbon fiber in the middle of the CGA layer is prepared. The accuracy of the theoretical equation is checked and verified. Then, the heat conduction effect and the time required to reach and maintain the temperature above 0 degrees C of different CGA combination structures are evaluated. According to the estimation results and weather conditions, the power will be turned on or shut off ahead of time to improve the deicing efficiency and save energy. The results show that the theoretically obtained estimation values are close to the test values. The theoretical equation can estimate the heat conduction effect of the CGA combination structure. With a decrease in the environmental temperature, the time required for the surface temperature of different CGA combination structures to exceed 0 degrees C gradually increases, and the time required for the surface temperature to remain above 0 degrees C decreases. The surface temperatures of the CGA combination structure based on schemes 3 and 4 can be increased to above 0 degrees C in a short time and remain above 0 degrees C for a long time. (C) 2018 Elsevier Ltd. All rights reserved.
机译:当使用传导性非标沥青混凝土(CGA)时,钢桥面板铺面的冰雪融化效果和能量消耗受组合结构中部的传热速率和温度变化的影响。为了确定导热型沥青混凝土路面的导热效果和融雪时间,推导了CGA组合结构的导热估算方法和理论方程。制备具有在CGA层的中间散布碳纤维的CGA组合结构。检查并验证了理论方程的准确性。然后,评估了不同CGA组合结构的导热效果以及达到并维持温度在0摄氏度以上所需的时间。根据估算结果和天气状况,可以提前打开或关闭电源,以提高除冰效率并节省能源。结果表明,理论上获得的估计值接近于测试值。该理论方程可以估计CGA组合结构的热传导效果。随着环境温度的降低,不同的CGA组合结构的表面温度超过0℃所需的时间逐渐增加,并且表面温度保持在0℃以上所需的时间减少。基于方案3和方案4的CGA组合结构的表面温度可以在短时间内提高到0摄氏度以上,并在很长时间内保持在0摄氏度以上。 (C)2018 Elsevier Ltd.保留所有权利。

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