Effect of enhanced coating layer on the bandgap characteristics and response of metaconcrete

Metaconcrete is made by partially or fully replacing natural coarse aggregates (NA) in normal concrete (NC) with engineered aggregates (EA). Normal engineered aggregate (NEA) is made by wrapping elastic coating outside spherical heavy core. It was found that mixing NEA in concrete could effectively...

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Main Authors: Jin, H., Hao, Hong, Chen, Wensu, Xu, Cheng
Format: Journal Article
Language:English
Published: TAYLOR & FRANCIS INC 2021
Subjects:
Online Access:http://purl.org/au-research/grants/arc/FL180100196
http://hdl.handle.net/20.500.11937/91541
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author Jin, H.
Hao, Hong
Chen, Wensu
Xu, Cheng
author_facet Jin, H.
Hao, Hong
Chen, Wensu
Xu, Cheng
author_sort Jin, H.
building Curtin Institutional Repository
collection Online Access
description Metaconcrete is made by partially or fully replacing natural coarse aggregates (NA) in normal concrete (NC) with engineered aggregates (EA). Normal engineered aggregate (NEA) is made by wrapping elastic coating outside spherical heavy core. It was found that mixing NEA in concrete could effectively mitigate stress wave propagation in metaconcrete structure owing to the local resonance of the heavy core of NEA. However, it also reduced the concrete material stiffness and strength because of the low modulus of soft coating that led to relatively large deformation of mortar matrix under loading. To address the issue of low interface stiffness while maintain the local vibration ability of NEA, new enhanced engineered aggregate (EEA) is proposed by placing an additional enhanced coating layer outside the soft coating of NEA. In this study, three types of EEA aggregates composed of three enhanced coating layer materials (i.e., epoxy resin, steel, ultra-high performance concrete UHPC) are considered and their configurations are designed via the software COMSOL. The spall behaviors of enhanced metaconcrete (EMC) mixed with EEA aggregates are examined though numerical simulations. 3D mesoscale models of EMC composed of mortar, randomly distributed natural aggregates and EEA aggregates are built via the software LS-DYNA. The distinction between the bandgap characteristics of NEA and EEA is studied. The effects of enhanced coating layer material on the bandgap of EEA and the performance of EMC with respect to energy absorption capacity, wave attenuation characteristics, and spall strength are studied. The results show that the existence of enhanced coating layer slightly affects the bandgap characteristics of engineered aggregate. Applying an additional stiffer coating layer to make the EEA aggregates can improve the spall strength of metaconcrete mixed with EEA aggregates while its ability in mitigating stress wave propagation and energy absorption is only slightly affected.
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format Journal Article
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institution Curtin University Malaysia
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language English
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publishDate 2021
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spelling curtin-20.500.11937-915412023-05-17T05:04:41Z Effect of enhanced coating layer on the bandgap characteristics and response of metaconcrete Jin, H. Hao, Hong Chen, Wensu Xu, Cheng Science & Technology Technology Materials Science, Multidisciplinary Mechanics Materials Science, Characterization & Testing Materials Science, Composites Materials Science Enhanced coating layer enhanced engineered aggregate metaconcrete bandgap spall damage mesoscale model STEEL FIBER CONTENT MECHANICAL-PROPERTIES CONCRETE METAMATERIALS STRENGTH MODEL Metaconcrete is made by partially or fully replacing natural coarse aggregates (NA) in normal concrete (NC) with engineered aggregates (EA). Normal engineered aggregate (NEA) is made by wrapping elastic coating outside spherical heavy core. It was found that mixing NEA in concrete could effectively mitigate stress wave propagation in metaconcrete structure owing to the local resonance of the heavy core of NEA. However, it also reduced the concrete material stiffness and strength because of the low modulus of soft coating that led to relatively large deformation of mortar matrix under loading. To address the issue of low interface stiffness while maintain the local vibration ability of NEA, new enhanced engineered aggregate (EEA) is proposed by placing an additional enhanced coating layer outside the soft coating of NEA. In this study, three types of EEA aggregates composed of three enhanced coating layer materials (i.e., epoxy resin, steel, ultra-high performance concrete UHPC) are considered and their configurations are designed via the software COMSOL. The spall behaviors of enhanced metaconcrete (EMC) mixed with EEA aggregates are examined though numerical simulations. 3D mesoscale models of EMC composed of mortar, randomly distributed natural aggregates and EEA aggregates are built via the software LS-DYNA. The distinction between the bandgap characteristics of NEA and EEA is studied. The effects of enhanced coating layer material on the bandgap of EEA and the performance of EMC with respect to energy absorption capacity, wave attenuation characteristics, and spall strength are studied. The results show that the existence of enhanced coating layer slightly affects the bandgap characteristics of engineered aggregate. Applying an additional stiffer coating layer to make the EEA aggregates can improve the spall strength of metaconcrete mixed with EEA aggregates while its ability in mitigating stress wave propagation and energy absorption is only slightly affected. 2021 Journal Article http://hdl.handle.net/20.500.11937/91541 10.1080/15376494.2021.2011498 English http://purl.org/au-research/grants/arc/FL180100196 TAYLOR & FRANCIS INC fulltext
spellingShingle Science & Technology
Technology
Materials Science, Multidisciplinary
Mechanics
Materials Science, Characterization & Testing
Materials Science, Composites
Materials Science
Enhanced coating layer
enhanced engineered aggregate
metaconcrete
bandgap
spall damage
mesoscale model
STEEL FIBER CONTENT
MECHANICAL-PROPERTIES
CONCRETE
METAMATERIALS
STRENGTH
MODEL
Jin, H.
Hao, Hong
Chen, Wensu
Xu, Cheng
Effect of enhanced coating layer on the bandgap characteristics and response of metaconcrete
title Effect of enhanced coating layer on the bandgap characteristics and response of metaconcrete
title_full Effect of enhanced coating layer on the bandgap characteristics and response of metaconcrete
title_fullStr Effect of enhanced coating layer on the bandgap characteristics and response of metaconcrete
title_full_unstemmed Effect of enhanced coating layer on the bandgap characteristics and response of metaconcrete
title_short Effect of enhanced coating layer on the bandgap characteristics and response of metaconcrete
title_sort effect of enhanced coating layer on the bandgap characteristics and response of metaconcrete
topic Science & Technology
Technology
Materials Science, Multidisciplinary
Mechanics
Materials Science, Characterization & Testing
Materials Science, Composites
Materials Science
Enhanced coating layer
enhanced engineered aggregate
metaconcrete
bandgap
spall damage
mesoscale model
STEEL FIBER CONTENT
MECHANICAL-PROPERTIES
CONCRETE
METAMATERIALS
STRENGTH
MODEL
url http://purl.org/au-research/grants/arc/FL180100196
http://hdl.handle.net/20.500.11937/91541