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Performance of highway bridges subjected to blast loads

机译:爆炸载荷作用下公路桥梁的性能

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摘要

Since the collapse of the WTC towers in September 2001, concern about the protection of buildings and infrastructures against blast loads has increased significantly. Comprehensive experimental and numerical studies of blast loading effects on buildings have been carried out in recent years, whereas for bridge engineers, blast-resistant design is still a new area which requires separate and systematic investigation. The objective of this paper is to simulate the performance of three modern types of reinforced concrete bridges under various blast loads, including a slab-on-girder bridge, a box-girder bridge and a long-span cable-stayed bridge. To solve the computational constraints in performing numerical analysis on a personal computer, a Multi-Euler domain method based on the fully-coupled Lagrange and Euler models is adopted and further developed for long-span bridge application. This study investigates various detonation scenarios in terms of the explosive weight and location, and their interactions with bridge structures. Both the localized damage mechanism and the global structural response of three bridges are examined. By studying the blast-resistance of each bridge under different explosion threats, the most critical scenarios are identified respectively. Studies of bridge protection against potential attacks by using Carbon Fibre Reinforced Polymer (CFRP) strengthening are also discussed. Numerical results in this study provide bridge owners and engineers with thorough and important information on the structural performance of highway bridges under blast loads, helping them in choosing effective protection strategies for possible potential explosion events. (C) 2017 Elsevier Ltd. All rights reserved.
机译:自2001年9月WTC塔楼倒塌以来,人们对建筑物和基础设施免受爆炸载荷的保护的关注大大增加。近年来,已经进行了爆炸载荷对建筑物的影响的综合实验和数值研究,而对于桥梁工程师而言,抗爆炸设计仍然是一个新领域,需要单独和系统地研究。本文的目的是模拟三种现代类型的钢筋混凝土桥梁在各种爆炸载荷下的性能,其中包括板梁桥,箱梁桥和大跨度斜拉桥。为了解决在个人计算机上进行数值分析时的计算约束,采用了基于全耦合拉格朗日模型和欧拉模型的多欧拉域方法,并进一步开发了该方法用于大跨度桥梁应用。这项研究从爆炸物的重量和位置以及它们与桥梁结构的相互作用方面研究了各种爆炸场景。研究了三座桥梁的局部损伤机制和整体结构响应。通过研究不同爆炸威胁下每座桥梁的抗爆炸能力,分别确定了最关键的情况。还讨论了通过使用碳纤维增强聚合物(CFRP)加固来防止潜在攻击的桥梁防护研究。这项研究的数值结果为桥梁所有者和工程师提供了爆炸荷载下公路桥梁结构性能的全面而重要的信息,有助于他们为可能的潜在爆炸事件选择有效的保护策略。 (C)2017 Elsevier Ltd.保留所有权利。

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