TY - JOUR
T1 - Investigation on the mapping for temperature-induced responses of a long-span steel truss arch bridge
AU - Zhu, Qingxin
AU - Wang, Hao
AU - Spencer, Billie F.
N1 - The authors would like to gratefully acknowledge the supports from the National Natural Science Foundation of China (Grant No. 51722804 and 51978155), the National Ten Thousand Talent Program for Young Top-notch Talents (Grant No. W03070080), the Postgraduate Research and Practice Innovation Program of Jiangsu Province (Grant No. KYCX19_0095), and the CSC Scholarship (Grant No. CSC201906090075).
PY - 2024
Y1 - 2024
N2 - Temperature-induced bridge responses are highly sensitive to changes in bridge properties. Thus, the relationship between temperature and associated responses can be used as a surrogate to assess the health of bridges. However, the relationship between temperature and temperature-induced displacement is influenced significantly by bridge bearing properties. The temperature variation cannot cause longitudinal displacements until the longitudinal restraint of bearings is overcome. Additionally, the temperature-induced strains highly depend on spatial temperature distributions in bridges. The developed mappings seldom consider the aforementioned issues, resulting in errors that can conceal the variation produced by the changes in bridge conditions. Focusing on long-span steel truss arch bridges with spherical bearings, this study seeks to accurately map the temperature-induced responses considering the bearing properties and spatial temperature distributions. The relationship between temperature variation and temperature-induced responses is explored initially using the elastic beam theory. Subsequently, the mapped relationship is validated using field monitoring data. Results show that the relationship produces unique flat planes in 3 D space; the plane parameters, including the orientation and boundary, are determined by the structural parameters, especially the bridge cross-section properties and bearing properties. Accordingly, the 3 D baseline can provide a feasible signature for bridge conditions.
AB - Temperature-induced bridge responses are highly sensitive to changes in bridge properties. Thus, the relationship between temperature and associated responses can be used as a surrogate to assess the health of bridges. However, the relationship between temperature and temperature-induced displacement is influenced significantly by bridge bearing properties. The temperature variation cannot cause longitudinal displacements until the longitudinal restraint of bearings is overcome. Additionally, the temperature-induced strains highly depend on spatial temperature distributions in bridges. The developed mappings seldom consider the aforementioned issues, resulting in errors that can conceal the variation produced by the changes in bridge conditions. Focusing on long-span steel truss arch bridges with spherical bearings, this study seeks to accurately map the temperature-induced responses considering the bearing properties and spatial temperature distributions. The relationship between temperature variation and temperature-induced responses is explored initially using the elastic beam theory. Subsequently, the mapped relationship is validated using field monitoring data. Results show that the relationship produces unique flat planes in 3 D space; the plane parameters, including the orientation and boundary, are determined by the structural parameters, especially the bridge cross-section properties and bearing properties. Accordingly, the 3 D baseline can provide a feasible signature for bridge conditions.
KW - Temperature
KW - displacements
KW - filed monitoring data
KW - long-span steel truss arch bridge
KW - spherical bearings
KW - strains
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U2 - 10.1080/15732479.2022.2082494
DO - 10.1080/15732479.2022.2082494
M3 - Article
AN - SCOPUS:85131563006
SN - 1573-2479
VL - 20
SP - 232
EP - 249
JO - Structure and Infrastructure Engineering
JF - Structure and Infrastructure Engineering
IS - 2
ER -