A Novel, Multifunctional, Floatable, Lightweight Cement Composite: Development and Properties

This paper presents the development of a novel, multifunctional, floatable, lightweight cement composite (FLCC) using three different types of glass microspheres for structural engineering applications. Eight different mixtures of FLCC were produced and their matrix-related parameters were examined...

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Main Authors: Zhenyu Huang, Fang Wang, Yingwu Zhou, Lili Sui, Padmaja Krishnan, Jat-Yuen. Richard Liew
Format: Article
Language:English
Published: MDPI AG 2018-10-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/11/10/2043
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spelling doaj-60a6b2b90fe74c9f93e17a93ac4b933f2020-11-25T00:39:39ZengMDPI AGMaterials1996-19442018-10-011110204310.3390/ma11102043ma11102043A Novel, Multifunctional, Floatable, Lightweight Cement Composite: Development and PropertiesZhenyu Huang0Fang Wang1Yingwu Zhou2Lili Sui3Padmaja Krishnan4Jat-Yuen. Richard Liew5Guangdong Provincial Key Laboratory of Durability of Marine Civil Engineering, Shenzhen University, Shenzhen 518060, ChinaGuangdong Provincial Key Laboratory of Durability of Marine Civil Engineering, Shenzhen University, Shenzhen 518060, ChinaGuangdong Provincial Key Laboratory of Durability of Marine Civil Engineering, Shenzhen University, Shenzhen 518060, ChinaGuangdong Provincial Key Laboratory of Durability of Marine Civil Engineering, Shenzhen University, Shenzhen 518060, ChinaDepartment of Civil and Environmental Engineering, National University of Singapore, Singapore 117576, SingaporeDepartment of Civil and Environmental Engineering, National University of Singapore, Singapore 117576, SingaporeThis paper presents the development of a novel, multifunctional, floatable, lightweight cement composite (FLCC) using three different types of glass microspheres for structural engineering applications. Eight different mixtures of FLCC were produced and their matrix-related parameters were examined experimentally by adopting different types of microsphere fillers, fiber content (polyethylene fibers (PE)), and water-to-binder ratios. Along with the mechanical properties such as compressive, flexural, tensile strengths, and modulus of elasticity, the water tightness of the material was evaluated by sorptivity measurements and the energy efficiency by thermal conductivity. The optimal FLCC has an oven-dry density of 750 kg/m3, compressive strength (fcm) up to 41 MPa after 28-day moist curing, low thermal conductivity of 0.152 W/mK, and very low sorptivity. It is found that an optimized amount of PE fiber is beneficial for improving the tensile resistance and ductility of FLCC while a relatively large amount of microspheres can increase the entrapped air voids in the FLCC matrix and reduce its density and thermal conductivity. Microstructural analysis by scanning electron microscopy (SEM) reveals that the microspheres are distributed uniformly in the cement matrix and are subjected to triaxial compression confinement, which leads to high strength of FLCC. Segregation due to density difference of FLCC ingredients is not observed with up to 60% (by weight) of glass microspheres added. Compared to the other lightweight aggregate concretes, the proposed FLCC could be used to build floating concrete structures, insulating elements, or even load-bearing structural elements such as floor and wall panels in which self-weight is a main concern.http://www.mdpi.com/1996-1944/11/10/2043compressive strengthcenospheresglass microspheresfiber-reinforcedfloating concretelightweight concrete
collection DOAJ
language English
format Article
sources DOAJ
author Zhenyu Huang
Fang Wang
Yingwu Zhou
Lili Sui
Padmaja Krishnan
Jat-Yuen. Richard Liew
spellingShingle Zhenyu Huang
Fang Wang
Yingwu Zhou
Lili Sui
Padmaja Krishnan
Jat-Yuen. Richard Liew
A Novel, Multifunctional, Floatable, Lightweight Cement Composite: Development and Properties
Materials
compressive strength
cenospheres
glass microspheres
fiber-reinforced
floating concrete
lightweight concrete
author_facet Zhenyu Huang
Fang Wang
Yingwu Zhou
Lili Sui
Padmaja Krishnan
Jat-Yuen. Richard Liew
author_sort Zhenyu Huang
title A Novel, Multifunctional, Floatable, Lightweight Cement Composite: Development and Properties
title_short A Novel, Multifunctional, Floatable, Lightweight Cement Composite: Development and Properties
title_full A Novel, Multifunctional, Floatable, Lightweight Cement Composite: Development and Properties
title_fullStr A Novel, Multifunctional, Floatable, Lightweight Cement Composite: Development and Properties
title_full_unstemmed A Novel, Multifunctional, Floatable, Lightweight Cement Composite: Development and Properties
title_sort novel, multifunctional, floatable, lightweight cement composite: development and properties
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2018-10-01
description This paper presents the development of a novel, multifunctional, floatable, lightweight cement composite (FLCC) using three different types of glass microspheres for structural engineering applications. Eight different mixtures of FLCC were produced and their matrix-related parameters were examined experimentally by adopting different types of microsphere fillers, fiber content (polyethylene fibers (PE)), and water-to-binder ratios. Along with the mechanical properties such as compressive, flexural, tensile strengths, and modulus of elasticity, the water tightness of the material was evaluated by sorptivity measurements and the energy efficiency by thermal conductivity. The optimal FLCC has an oven-dry density of 750 kg/m3, compressive strength (fcm) up to 41 MPa after 28-day moist curing, low thermal conductivity of 0.152 W/mK, and very low sorptivity. It is found that an optimized amount of PE fiber is beneficial for improving the tensile resistance and ductility of FLCC while a relatively large amount of microspheres can increase the entrapped air voids in the FLCC matrix and reduce its density and thermal conductivity. Microstructural analysis by scanning electron microscopy (SEM) reveals that the microspheres are distributed uniformly in the cement matrix and are subjected to triaxial compression confinement, which leads to high strength of FLCC. Segregation due to density difference of FLCC ingredients is not observed with up to 60% (by weight) of glass microspheres added. Compared to the other lightweight aggregate concretes, the proposed FLCC could be used to build floating concrete structures, insulating elements, or even load-bearing structural elements such as floor and wall panels in which self-weight is a main concern.
topic compressive strength
cenospheres
glass microspheres
fiber-reinforced
floating concrete
lightweight concrete
url http://www.mdpi.com/1996-1944/11/10/2043
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