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首页> 外文期刊>Engineering Structures >Numerical analysis of pultruded GFRP box girders supporting adhesively-bonded concrete deck in flexure
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Numerical analysis of pultruded GFRP box girders supporting adhesively-bonded concrete deck in flexure

机译:拉挤GFRP箱梁支撑粘结混凝土桥面受弯的数值分析。

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This paper presents the modeling of pultruded glass fiber reinforced polymer (GFRP) box girders consisting of built-up hat-shape sections and flat plates. The study addresses the effect of a thin concrete deck adhesively bonded to the top GFRP plate on flexural performance, as well as the behavior under positive and negative bending that simulates continuous girders. A three-dimensional finite element (FE) approach is proposed to predict the behavior of the GFRP system, including experimental validation. The efficacy of the girders is compared with other metallic box girders: carbon steel and corrosion-resistant metals, namely, stainless steel and aluminum. Failure is generally due to debonding of the concrete deck, and as such, the ultimate strength is not affected much by the girder material used. The study examines the single girder behavior as well as girder-group systems, to assess load distribution. It is shown that the AASHTO LRFD approach for load distribution can reasonably be used for the proposed girder systems. Design recommendations as to material selection are addressed to better use the girder system.
机译:本文介绍了拉挤玻璃纤维增​​强聚合物(GFRP)箱梁的建模,该箱梁由组合的帽形截面和平板组成。该研究解决了将薄混凝土甲板粘结到顶部GFRP板上对弯曲性能的影响,以及模拟连续大梁的正负弯曲性能。提出了一种三维有限元(FE)方法来预测GFRP系统的行为,包括实验验证。大梁的功效与其他金属箱形梁比较:碳钢和耐腐蚀金属,即不锈钢和铝。破坏通常是由于混凝土面板的脱粘引起的,因此,最终强度不会受到所用梁材料的很大影响。该研究检查了单个大梁的行为以及大梁组系统,以评估载荷分布。结果表明,用于负荷分配的AASHTO LRFD方法可以合理地用于所提出的大梁系统。提出了有关材料选择的设计建议,以更好地使用大梁系统。

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