Dynamic Characteristics of Lightweight Aggregate Self-Compacting Concrete by Impact Resonance Method
Understanding the dynamic behavior of Lightweight Aggregate Self-Compacting Concrete (LWASCC) is of importance to the safety of concrete structures serving in dynamic loading conditions. In this study, the fundamental dynamic properties of LWASCC with three types of LWA were investigated by the impa...
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Series: | Advances in Civil Engineering |
Online Access: | http://dx.doi.org/10.1155/2021/8811303 |
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doaj-963eb2839b0e4963b491a0b25f099d902021-04-05T00:00:21ZengHindawi LimitedAdvances in Civil Engineering1687-80942021-01-01202110.1155/2021/8811303Dynamic Characteristics of Lightweight Aggregate Self-Compacting Concrete by Impact Resonance MethodNing Li0Sisi Zhang1Guangcheng Long2Zuquan Jin3Yong Yu4Xiaoying Zhang5Chuansheng Xiong6He Li7Engineering Research Center of Concrete Technology in Marine EnvironmentInstitute of Concrete ConstructionSchool of Civil EngineeringEngineering Research Center of Concrete Technology in Marine EnvironmentEngineering Research Center of Concrete Technology in Marine EnvironmentEngineering Research Center of Concrete Technology in Marine EnvironmentEngineering Research Center of Concrete Technology in Marine EnvironmentCollege of Mechanical and Electronic EngineeringUnderstanding the dynamic behavior of Lightweight Aggregate Self-Compacting Concrete (LWASCC) is of importance to the safety of concrete structures serving in dynamic loading conditions. In this study, the fundamental dynamic properties of LWASCC with three types of LWA were investigated by the impact resonance method. Results show that the dynamic elastic and shear modulus generally decrease with the increase of LWA volume fraction, whereas three types of LWA exert limited influence on dynamic Poisson’s ratio. The dynamic elastic and shear modulus show good linear dependence upon compressive strength. The inclusion of three types of LWA significantly increases the damping ratio, indicating significantly enhanced damping capacity of LWASCC under dynamic loading conditions. The damping ratio of LWASCC is improved by 2.0%, 4.4%, and 2.9% when adding 1% (by volume) expanded clay, rubber, and expanded polystyrene, respectively. The compressive strength and dynamic performances of LWASCC are highly influenced by the intrinsic properties (elastic modulus, damping capacity, wettability, etc.) and geometrical characteristics (size, surface roughness, etc.) of LWA, as well as the LWA-matrix bonding capacity.http://dx.doi.org/10.1155/2021/8811303 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ning Li Sisi Zhang Guangcheng Long Zuquan Jin Yong Yu Xiaoying Zhang Chuansheng Xiong He Li |
spellingShingle |
Ning Li Sisi Zhang Guangcheng Long Zuquan Jin Yong Yu Xiaoying Zhang Chuansheng Xiong He Li Dynamic Characteristics of Lightweight Aggregate Self-Compacting Concrete by Impact Resonance Method Advances in Civil Engineering |
author_facet |
Ning Li Sisi Zhang Guangcheng Long Zuquan Jin Yong Yu Xiaoying Zhang Chuansheng Xiong He Li |
author_sort |
Ning Li |
title |
Dynamic Characteristics of Lightweight Aggregate Self-Compacting Concrete by Impact Resonance Method |
title_short |
Dynamic Characteristics of Lightweight Aggregate Self-Compacting Concrete by Impact Resonance Method |
title_full |
Dynamic Characteristics of Lightweight Aggregate Self-Compacting Concrete by Impact Resonance Method |
title_fullStr |
Dynamic Characteristics of Lightweight Aggregate Self-Compacting Concrete by Impact Resonance Method |
title_full_unstemmed |
Dynamic Characteristics of Lightweight Aggregate Self-Compacting Concrete by Impact Resonance Method |
title_sort |
dynamic characteristics of lightweight aggregate self-compacting concrete by impact resonance method |
publisher |
Hindawi Limited |
series |
Advances in Civil Engineering |
issn |
1687-8094 |
publishDate |
2021-01-01 |
description |
Understanding the dynamic behavior of Lightweight Aggregate Self-Compacting Concrete (LWASCC) is of importance to the safety of concrete structures serving in dynamic loading conditions. In this study, the fundamental dynamic properties of LWASCC with three types of LWA were investigated by the impact resonance method. Results show that the dynamic elastic and shear modulus generally decrease with the increase of LWA volume fraction, whereas three types of LWA exert limited influence on dynamic Poisson’s ratio. The dynamic elastic and shear modulus show good linear dependence upon compressive strength. The inclusion of three types of LWA significantly increases the damping ratio, indicating significantly enhanced damping capacity of LWASCC under dynamic loading conditions. The damping ratio of LWASCC is improved by 2.0%, 4.4%, and 2.9% when adding 1% (by volume) expanded clay, rubber, and expanded polystyrene, respectively. The compressive strength and dynamic performances of LWASCC are highly influenced by the intrinsic properties (elastic modulus, damping capacity, wettability, etc.) and geometrical characteristics (size, surface roughness, etc.) of LWA, as well as the LWA-matrix bonding capacity. |
url |
http://dx.doi.org/10.1155/2021/8811303 |
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