Masonry structural damage and failure under blasting vibration

Research on structural dynamic response and damage characteristics under blasting vibration is critical in structural safety assessment and blasting design. An orthotropic dynamic damage constitutive model of structural material is proposed in this article to improve the overly simple dynamic damage...

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Main Authors: Shihai Chen, Zihua Zhang
Format: Article
Language:English
Published: SAGE Publishing 2016-02-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814016633412
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spelling doaj-ba05e1c46e8d4a8ab1acc33ff311be442020-11-25T03:40:42ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402016-02-01810.1177/168781401663341210.1177_1687814016633412Masonry structural damage and failure under blasting vibrationShihai Chen0Zihua Zhang1Fujian Research Center for Tunneling and Urban Underground Space Engineering, Xiamen, P.R. ChinaCollege of Civil Engineering, Huaqiao University, Xiamen, P.R. ChinaResearch on structural dynamic response and damage characteristics under blasting vibration is critical in structural safety assessment and blasting design. An orthotropic dynamic damage constitutive model of structural material is proposed in this article to improve the overly simple dynamic damage models of previous studies. A dynamic increase factor is used to assess the strain rate effect, and the dynamic damage stiffness matrix of the unit body is determined using the Sidoroff energy equivalence principle. The Mazars damage evolution model is used to calculate damage variables in the principal axis directions, and the Hoffman yield failure criterion for orthotropic materials is applied. The orthotropic dynamic damage constitutive model is input into dynamic finite element program LS-DYNA as the user subroutine to simulate the dynamic responses of typical masonry structures according to different blasting vibration excitations. The effects of varying particle peak velocity, principal frequency, and duration of blasting vibration on structural dynamic responses and damage are analyzed. The results show that maximal equivalent stress and strain increase positively with the particle peak velocity, structures have a danger frequency band, and structural damage increases with duration.https://doi.org/10.1177/1687814016633412
collection DOAJ
language English
format Article
sources DOAJ
author Shihai Chen
Zihua Zhang
spellingShingle Shihai Chen
Zihua Zhang
Masonry structural damage and failure under blasting vibration
Advances in Mechanical Engineering
author_facet Shihai Chen
Zihua Zhang
author_sort Shihai Chen
title Masonry structural damage and failure under blasting vibration
title_short Masonry structural damage and failure under blasting vibration
title_full Masonry structural damage and failure under blasting vibration
title_fullStr Masonry structural damage and failure under blasting vibration
title_full_unstemmed Masonry structural damage and failure under blasting vibration
title_sort masonry structural damage and failure under blasting vibration
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2016-02-01
description Research on structural dynamic response and damage characteristics under blasting vibration is critical in structural safety assessment and blasting design. An orthotropic dynamic damage constitutive model of structural material is proposed in this article to improve the overly simple dynamic damage models of previous studies. A dynamic increase factor is used to assess the strain rate effect, and the dynamic damage stiffness matrix of the unit body is determined using the Sidoroff energy equivalence principle. The Mazars damage evolution model is used to calculate damage variables in the principal axis directions, and the Hoffman yield failure criterion for orthotropic materials is applied. The orthotropic dynamic damage constitutive model is input into dynamic finite element program LS-DYNA as the user subroutine to simulate the dynamic responses of typical masonry structures according to different blasting vibration excitations. The effects of varying particle peak velocity, principal frequency, and duration of blasting vibration on structural dynamic responses and damage are analyzed. The results show that maximal equivalent stress and strain increase positively with the particle peak velocity, structures have a danger frequency band, and structural damage increases with duration.
url https://doi.org/10.1177/1687814016633412
work_keys_str_mv AT shihaichen masonrystructuraldamageandfailureunderblastingvibration
AT zihuazhang masonrystructuraldamageandfailureunderblastingvibration
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