...
首页> 外文期刊>Thin-Walled Structures >Transverse bending and in-plane shear behaviours of multicellular pultruded GFRP deck panels with snap-fit connections
【24h】

Transverse bending and in-plane shear behaviours of multicellular pultruded GFRP deck panels with snap-fit connections

机译:用卡扣配合连接的多细胞拉挤GFRP甲板面板的横向弯曲和面内剪切行为

获取原文
获取原文并翻译 | 示例
           

摘要

This paper presents experimental and numerical investigations about the transverse bending and in-plane shear behaviours of pultruded bridge deck panels made of E-glass fiber reinforced polymer (GFRP). The analysed panels have a wide multicellular thin-walled cross-section, with panel-to-panel vertical interlocks (snap-fit) at the lateral edges. The study aimed at understanding and quantifying the structural contribution of the deck panels, in terms of their transverse stiffness and strength properties, w. r.t the load transmission to the lower support girder system along its longitudinal axis (bridge's main axis). Particular focus was given to the influence of the panel-to panel joining system on the transverse performance of the deck when compared to a continuous panel (i.e. without snap-fit). The effects of complementing the snap-fit connection with two different structural adhesives was also investigated. For all deck configurations tested, the structural response in bending and shear exhibited high post-cracking strength and pseudo-ductility (above 100% and 200% respectively), as a consequence of the redundancy provided by the multi-cellular section. Compared to a continuous deck, the mechanical snap-fit exhibited very high deformability; however, when combined with adhesive bonding, it behaved fairly rigidly. In general, failure occurred in a progressive way (crack initiation and propagation) and the ultimate capacity was governed by the web-flange junctions. The numerical simulations, which were performed with continuum shell finite element (FE) models using Hashin-based damage analysis, provided useful insights about the failure mechanisms. Both bending and in-plane shear responses were simulated with good accuracy, with matrix tension failure governing the load capacity. The low value of the estimated in-plane shear modulus was consistent with the very low interaction degree (3-4%) that was assessed between the panels' flanges under bending, thus highlighting the high flexibility of this bridge deck's multicellular core when subjected to transverse loading.
机译:本文介绍了由E-玻璃纤维增​​强聚合物(GFRP)制成的拉挤桥甲板面板的横向弯曲和面内剪切行为的实验性和数值研究。分析的面板具有宽的多细胞薄壁横截面,在横向边缘处具有面向面板的垂直互锁(卡扣)。该研究旨在理解和量化甲板面板的结构贡献,就其横向刚度和强度性能而言,概述R.T沿其纵轴(桥的主轴)到下支撑梁系统的负载传输。与连续面板(即没有按扣合符合)相比,对面板到面板连接系统对甲板的横向性能的影响进行了特别的重点。还研究了补充与两种不同的结构粘合剂的卡扣配合连接的效果。对于测试的所有甲板配置,由于多细胞部分提供的冗余,弯曲和剪切的结构响应表现出高裂变强度和伪延展性(分别以上100%和200%)。与连续甲板相比,机械快料配合表现出非常高的可变形性;然而,当与粘合剂结合时,它表现得相当刚性。通常,失败以逐步的方式(破解启动和传播)发生,并且最终的容量受到网络法兰连接的管辖。使用基于Hashin的损伤分析进行连续壳有限元(FE)模型进行的数值模拟,为故障机制提供了有用的见解。弯曲和面内剪切响应都以良好的精度模拟,具有控制负载能力的矩阵张力故障。估计的面内剪切模量的低值与在弯曲下的面板凸缘之间评估的非常低的相互作用程度(3-4%)一致,从而突出了该桥甲板的多细胞核心的高度灵活性横向载荷。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号