Experimental and numerical investigation on penetration of clay masonry by small high-speed projectile

This study investigates a kind of masonry consisting of clay-fired brick (fc = 10 MPa; ρ=1.38g/cm3) and mortar (fc = 10 MPa; ρ=1.8g/cm3). Clay-fired brick masonry connotes a traditional construction material of old architecture and public buildings. We carried out penetration experiments in which fo...

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Main Authors: Cheng-zong Wang, Ai-jun Chen, Zi-qing Li, Chao-an Gong, Shu Wang, Wen-min Yan
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2021-08-01
Series:Defence Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214914720304530
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spelling doaj-968c86a7694745a3bed0e5d18733197c2021-07-11T04:27:50ZengKeAi Communications Co., Ltd.Defence Technology2214-91472021-08-0117415141530Experimental and numerical investigation on penetration of clay masonry by small high-speed projectileCheng-zong Wang0Ai-jun Chen1Zi-qing Li2Chao-an Gong3Shu Wang4Wen-min Yan5School of Science, Nanjing University of Science and Technology, Nanjing, 210094, China; Corresponding author.School of Science, Nanjing University of Science and Technology, Nanjing, 210094, China; Science and Technology on Transient Impact Laboratory, Beijing, 102202, China; Corresponding author. School of Science, Nanjing University of Science and Technology, Nanjing, 210094, China.School of Science, Nanjing University of Science and Technology, Nanjing, 210094, ChinaScience and Technology on Transient Impact Laboratory, Beijing, 102202, ChinaScience and Technology on Transient Impact Laboratory, Beijing, 102202, ChinaScience and Technology on Transient Impact Laboratory, Beijing, 102202, ChinaThis study investigates a kind of masonry consisting of clay-fired brick (fc = 10 MPa; ρ=1.38g/cm3) and mortar (fc = 10 MPa; ρ=1.8g/cm3). Clay-fired brick masonry connotes a traditional construction material of old architecture and public buildings. We carried out penetration experiments in which four clay-fired brick walls employing two different patterns were subjected to impact from small high-speed projectile, i.e. 12.7 mm armor-piercing explosive incendiary projectile and material tests in which the static and dynamic compressive strengths of clay-fired brick and mortar were determined by quasi-static and SHPB (Split Hopkinson Pressure Bar) tests. The experimental data include hit and exit velocities, damage configuration of clay brick masonry and mechanical properties of material at low and high strain rates, though which influence of thickness and bonding patterns of wall on kinetic loss of bullet, the damage patterns of masonry observed experimentally and dynamic increase of material strengths are analyzed. To keep minimum boundary inconsistency with reality, full 3D detailed finite element model consisting of two different material is established. Sharing common nodes and employing automatic tiebreak contact are combined to reduce computational time usage of large-scale model. For description of clay-fired brick and mortar Riedel–Hiermaier–Thoma (RHT) material model is employed. Material parameter set is derived based on experimental data, available literature and engineering assumptions. The numerical simulations study the mesh resolution dependency of material model, reproduce the crucial phenomena of masonry in experiment acceptably and offer more time-resolved insight into motion of bullet in the process of penetration. The feasibility of means of constructing finite element model and applying RHT model to the masonry herein and analogous constructions is explored through numerical investigation.http://www.sciencedirect.com/science/article/pii/S2214914720304530Clay-fired brickPenetration of masonryRHT modelImpactHigh strain rate
collection DOAJ
language English
format Article
sources DOAJ
author Cheng-zong Wang
Ai-jun Chen
Zi-qing Li
Chao-an Gong
Shu Wang
Wen-min Yan
spellingShingle Cheng-zong Wang
Ai-jun Chen
Zi-qing Li
Chao-an Gong
Shu Wang
Wen-min Yan
Experimental and numerical investigation on penetration of clay masonry by small high-speed projectile
Defence Technology
Clay-fired brick
Penetration of masonry
RHT model
Impact
High strain rate
author_facet Cheng-zong Wang
Ai-jun Chen
Zi-qing Li
Chao-an Gong
Shu Wang
Wen-min Yan
author_sort Cheng-zong Wang
title Experimental and numerical investigation on penetration of clay masonry by small high-speed projectile
title_short Experimental and numerical investigation on penetration of clay masonry by small high-speed projectile
title_full Experimental and numerical investigation on penetration of clay masonry by small high-speed projectile
title_fullStr Experimental and numerical investigation on penetration of clay masonry by small high-speed projectile
title_full_unstemmed Experimental and numerical investigation on penetration of clay masonry by small high-speed projectile
title_sort experimental and numerical investigation on penetration of clay masonry by small high-speed projectile
publisher KeAi Communications Co., Ltd.
series Defence Technology
issn 2214-9147
publishDate 2021-08-01
description This study investigates a kind of masonry consisting of clay-fired brick (fc = 10 MPa; ρ=1.38g/cm3) and mortar (fc = 10 MPa; ρ=1.8g/cm3). Clay-fired brick masonry connotes a traditional construction material of old architecture and public buildings. We carried out penetration experiments in which four clay-fired brick walls employing two different patterns were subjected to impact from small high-speed projectile, i.e. 12.7 mm armor-piercing explosive incendiary projectile and material tests in which the static and dynamic compressive strengths of clay-fired brick and mortar were determined by quasi-static and SHPB (Split Hopkinson Pressure Bar) tests. The experimental data include hit and exit velocities, damage configuration of clay brick masonry and mechanical properties of material at low and high strain rates, though which influence of thickness and bonding patterns of wall on kinetic loss of bullet, the damage patterns of masonry observed experimentally and dynamic increase of material strengths are analyzed. To keep minimum boundary inconsistency with reality, full 3D detailed finite element model consisting of two different material is established. Sharing common nodes and employing automatic tiebreak contact are combined to reduce computational time usage of large-scale model. For description of clay-fired brick and mortar Riedel–Hiermaier–Thoma (RHT) material model is employed. Material parameter set is derived based on experimental data, available literature and engineering assumptions. The numerical simulations study the mesh resolution dependency of material model, reproduce the crucial phenomena of masonry in experiment acceptably and offer more time-resolved insight into motion of bullet in the process of penetration. The feasibility of means of constructing finite element model and applying RHT model to the masonry herein and analogous constructions is explored through numerical investigation.
topic Clay-fired brick
Penetration of masonry
RHT model
Impact
High strain rate
url http://www.sciencedirect.com/science/article/pii/S2214914720304530
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