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基于实时太阳辐射和空间温度监测的PC箱梁桥温度场边界条件及横向温度梯度效应

Temperature Field Boundary Conditions and Lateral Temperature Gradient Effect on a PC Box-Girder Bridge Based on Real-Time Solar Radiation and Spatial Temperature Monitoring.

作者信息

Lei Xiao, Fan Xutao, Jiang Hanwan, Zhu Kunning, Zhan Hanyu

机构信息

College of Civil and Transportation Engineering, Hohai University, 1 Xikang Road, Nanjing 210098, China.

Civil & Environmental Engineering Department, University of Wisconsin Platteville, Platteville, WI 53818, USA.

出版信息

Sensors (Basel). 2020 Sep 15;20(18):5261. doi: 10.3390/s20185261.

DOI:10.3390/s20185261
PMID:32942667
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7571125/
Abstract

Climate change could impose great influence on infrastructures. Previous studies have shown that solar radiation is one of the most important factors causing the change in temperature distribution in bridges. The current temperature distribution models developed in the past are mainly based on the meteorological data from the nearest weather station, empirical formulas, or the testing data from model tests. In this study, a five-span continuous Prestressed-concrete box-girder bridge was instrumented with pyranometers, anemometers, strain gauges, displacement gauges, and temperature sensors on the top and bottom slabs and webs to measure the solar radiation, wind speeds, strain, displacement, and surface temperatures, respectively. The continuously monitoring data between May 2019 and May 2020 was used to study the temperature distributions caused by solar radiation. A maximum positive lateral temperature gradient prediction model has been developed based on the solar radiation data analysis. Then, the solar radiation boundary condition obtained from the monitoring data and the lateral temperature gradient prediction model were utilized to compute the tensile stresses in the longitudinal and transverse directions. It was demonstrated in this study that the tensile stress caused by the lateral temperature gradient was so significant that it cannot be ignored in structural design.

摘要

气候变化可能会对基础设施产生重大影响。先前的研究表明,太阳辐射是导致桥梁温度分布变化的最重要因素之一。过去开发的当前温度分布模型主要基于最近气象站的气象数据、经验公式或模型试验的测试数据。在本研究中,一座五跨连续预应力混凝土箱梁桥在顶板、底板和腹板上安装了总日射表、风速仪、应变计、位移计和温度传感器,分别用于测量太阳辐射、风速、应变、位移和表面温度。利用2019年5月至2020年5月期间的连续监测数据研究太阳辐射引起的温度分布。基于太阳辐射数据分析建立了最大正横向温度梯度预测模型。然后,利用从监测数据获得的太阳辐射边界条件和横向温度梯度预测模型计算纵向和横向的拉应力。本研究表明,横向温度梯度引起的拉应力非常显著,在结构设计中不能忽略。

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