4.6 Article

All-Weather Thermal Simulation Methods for Concrete Maglev Bridge Based on Structural and Meteorological Monitoring Data

期刊

SENSORS
卷 21, 期 17, 页码 -

出版社

MDPI
DOI: 10.3390/s21175789

关键词

concrete bridge structure; temperature field; solar radiation; meteorological monitoring; thermal boundary; all-weather FE method; experimental verification

资金

  1. National Key Research and Development Program of China [2017YFC1500605]
  2. Transportation Science and Technology Program of Shandong Province [2021B51]
  3. National Natural Science Foundation of China [51978508]
  4. Science and Technology Commission of Shanghai Municipality [19DZ1203004]
  5. Technology Cooperation Project of Shanghai Qi-Zhi Institute [SYXF0120020109]
  6. program of China Scholarship Council [201906260157]

向作者/读者索取更多资源

Thermal energy exchange induces non-uniform temperature distribution on concrete bridge structures, affecting their static and dynamic properties. A systematic all-weather thermal simulation method was proposed to study the temperature distributions of concrete maglev bridges, accurately simulating solar shadow distribution. The simulation method showed higher accuracy under overcast or rainy weather, highlighting the importance of considering solar radiation effects in structural temperature prediction.
Thermal energy exchange induces non-uniform temperature distribution on the concrete bridge structures, leading to variation of static and dynamic properties of structural systems. The finite element method can facilitate thermal simulation and predict the structural temperature distribution based on heat flow theories. Previous studies mainly focused on the daytime with sunny weather, and the effects of solar shadow distribution were not fully considered or even ignored. In this paper, a systematic all-weather thermal simulation method was proposed to investigate the temperature distributions of concrete maglev bridges. The solar shadow distribution on the bridge surface could be accurately simulated to determine the solar radiation-imposed range. A meteorological station and some thermocouples were installed on a real concrete maglev bridge to obtain the real-time structural temperatures and environmental conditions. Its temperature distribution is also simulated using the proposed method within the 27 monitoring days in Summer. Results show that the simulated structural temperature matches well with the measured results under various weather conditions, except that of the east structural surface. Moreover, the simulation method acquired a higher accuracy under overcast or rainy weather due to weaker solar radiation effects. Both the numerical results and experimental records illustrated that direct solar radiation dominates the thermal energy exchange under sunny or cloudy conditions. The proposed methodology for temperature field simulation is oriented by all-weather prediction of structural temperature, which is reliable for concrete bridge structures with the help of accurate measurement of real-time solar radiation.

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