Traffic Capacity Assessment of the Urban Elevated Bridge after Near-Field Explosion Based on the Response Surface Method

The traffic capacity of the urban elevated bridge is assessed after it is attacked by a near-field explosion, using the residual bearing capacity of the damaged pier as the assessment index. First, the finite element model of a reinforced concrete slab under near-field explosion is established by AN...

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Main Authors: Jinghui Jiang, Chaoyi Xia, Kunpeng Wang, He Xia, Qikai Sun
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2020/6637260
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spelling doaj-38a24eb0d405451faa794f1e257b345e2021-01-11T02:21:38ZengHindawi LimitedShock and Vibration1875-92032020-01-01202010.1155/2020/6637260Traffic Capacity Assessment of the Urban Elevated Bridge after Near-Field Explosion Based on the Response Surface MethodJinghui Jiang0Chaoyi Xia1Kunpeng Wang2He Xia3Qikai Sun4Beijing Jiaotong University School of Civil EngineeringBeijing Jiaotong University School of Civil EngineeringCCCC Highway Bridges National Engineering Research Centre Co., Ltd.Beijing Jiaotong University School of Civil EngineeringBeijing Jiaotong University School of Civil EngineeringThe traffic capacity of the urban elevated bridge is assessed after it is attacked by a near-field explosion, using the residual bearing capacity of the damaged pier as the assessment index. First, the finite element model of a reinforced concrete slab under near-field explosion is established by ANSYS/LS-DYNA software and compared with the experimental results, which verifies the effectiveness of the ALE (arbitrary Lagrangian–Eulerian) algorithm and the accuracy of the mesh size and material properties. Then, an “explosive-air-pier” coupling analysis model is constructed using the finite element method, and the damage of the reinforced concrete pier under three types of car bombs is evaluated. Furthermore, a response surface model for the residual bearing capacity of the pier is utilized to calculate the failure probabilities of various damage levels of the pier under the three types of car bombs and to assess the traffic capacity of the bridge after near-field explosion. The established assessment method can be used to predict the probability of bridge structural damage at various levels under different types of car bombs and to provide a reference for exploring a probability-based safety assessment method of post-explosion bridges.http://dx.doi.org/10.1155/2020/6637260
collection DOAJ
language English
format Article
sources DOAJ
author Jinghui Jiang
Chaoyi Xia
Kunpeng Wang
He Xia
Qikai Sun
spellingShingle Jinghui Jiang
Chaoyi Xia
Kunpeng Wang
He Xia
Qikai Sun
Traffic Capacity Assessment of the Urban Elevated Bridge after Near-Field Explosion Based on the Response Surface Method
Shock and Vibration
author_facet Jinghui Jiang
Chaoyi Xia
Kunpeng Wang
He Xia
Qikai Sun
author_sort Jinghui Jiang
title Traffic Capacity Assessment of the Urban Elevated Bridge after Near-Field Explosion Based on the Response Surface Method
title_short Traffic Capacity Assessment of the Urban Elevated Bridge after Near-Field Explosion Based on the Response Surface Method
title_full Traffic Capacity Assessment of the Urban Elevated Bridge after Near-Field Explosion Based on the Response Surface Method
title_fullStr Traffic Capacity Assessment of the Urban Elevated Bridge after Near-Field Explosion Based on the Response Surface Method
title_full_unstemmed Traffic Capacity Assessment of the Urban Elevated Bridge after Near-Field Explosion Based on the Response Surface Method
title_sort traffic capacity assessment of the urban elevated bridge after near-field explosion based on the response surface method
publisher Hindawi Limited
series Shock and Vibration
issn 1875-9203
publishDate 2020-01-01
description The traffic capacity of the urban elevated bridge is assessed after it is attacked by a near-field explosion, using the residual bearing capacity of the damaged pier as the assessment index. First, the finite element model of a reinforced concrete slab under near-field explosion is established by ANSYS/LS-DYNA software and compared with the experimental results, which verifies the effectiveness of the ALE (arbitrary Lagrangian–Eulerian) algorithm and the accuracy of the mesh size and material properties. Then, an “explosive-air-pier” coupling analysis model is constructed using the finite element method, and the damage of the reinforced concrete pier under three types of car bombs is evaluated. Furthermore, a response surface model for the residual bearing capacity of the pier is utilized to calculate the failure probabilities of various damage levels of the pier under the three types of car bombs and to assess the traffic capacity of the bridge after near-field explosion. The established assessment method can be used to predict the probability of bridge structural damage at various levels under different types of car bombs and to provide a reference for exploring a probability-based safety assessment method of post-explosion bridges.
url http://dx.doi.org/10.1155/2020/6637260
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