Flexural Properties and Microstructure Mechanisms of Renewable Coir-Fiber-Reinforced Magnesium Phosphate Cement-Based Composite Considering Curing Ages

As a renewable natural plant fiber, Coir fiber (CF) can be used to as an alternative to improve poor toughness and crack resistance of magnesium phosphate cement (MPC), replacing such artificial fibers as steel fiber and glass fiber and thereby reducing huge energy consumptions and large costs in ar...

Full description

Bibliographic Details
Main Authors: Liwen Zhang, Zuqian Jiang, Wenhua Zhang, Sixue Peng, Pengfei Chen
Format: Article
Language:English
Published: MDPI AG 2020-10-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/12/11/2556
id doaj-b4bfd7dfc5ad4d21b2757f2157510fdf
record_format Article
spelling doaj-b4bfd7dfc5ad4d21b2757f2157510fdf2020-11-25T04:03:22ZengMDPI AGPolymers2073-43602020-10-01122556255610.3390/polym12112556Flexural Properties and Microstructure Mechanisms of Renewable Coir-Fiber-Reinforced Magnesium Phosphate Cement-Based Composite Considering Curing AgesLiwen Zhang0Zuqian Jiang1Wenhua Zhang2Sixue Peng3Pengfei Chen4Department of Civil Engineering, Guangzhou University, Guangzhou 510006, ChinaDepartment of Civil Engineering, Guangzhou University, Guangzhou 510006, ChinaDepartment of Civil Engineering, Nanjing Forestry University, Nanjing 210000, ChinaDepartment of Civil Engineering, Guangzhou University, Guangzhou 510006, ChinaDepartment of Civil Engineering, Guangzhou University, Guangzhou 510006, ChinaAs a renewable natural plant fiber, Coir fiber (CF) can be used to as an alternative to improve poor toughness and crack resistance of magnesium phosphate cement (MPC), replacing such artificial fibers as steel fiber and glass fiber and thereby reducing huge energy consumptions and large costs in artificial fibers’ production and waste treatment. Aiming at examining the effects of CF volume concentrations on MPC flexural properties, this study employed a typical three-point bending test, including thirty cuboid specimens, to investigate the flexural strength, load-deflection behavior, and flexural toughness of MPC with different CF volume concentrations from 0% to 4% at the curing age of seven days and 28 days. Results demonstrated that CF presented similar effects on MPC’s properties at two curing ages. At both curing ages, as CF grew, flexural strength increased first and then decreased; specimen stiffness, i.e., MPC elastic modulus, displayed a decreasing trend; and flexural toughness was improved continuously. Additionally, modern microtesting techniques, such as, scanning electron microscopy (SEM) and energy dispersive X-ray detection (EDX), were adopted to analyze the microstructure and compositions of CF and specimens for explaining the properties microscopically.https://www.mdpi.com/2073-4360/12/11/2556magnesium phosphate cementflexural strengthcoir fiberthree-point bending test
collection DOAJ
language English
format Article
sources DOAJ
author Liwen Zhang
Zuqian Jiang
Wenhua Zhang
Sixue Peng
Pengfei Chen
spellingShingle Liwen Zhang
Zuqian Jiang
Wenhua Zhang
Sixue Peng
Pengfei Chen
Flexural Properties and Microstructure Mechanisms of Renewable Coir-Fiber-Reinforced Magnesium Phosphate Cement-Based Composite Considering Curing Ages
Polymers
magnesium phosphate cement
flexural strength
coir fiber
three-point bending test
author_facet Liwen Zhang
Zuqian Jiang
Wenhua Zhang
Sixue Peng
Pengfei Chen
author_sort Liwen Zhang
title Flexural Properties and Microstructure Mechanisms of Renewable Coir-Fiber-Reinforced Magnesium Phosphate Cement-Based Composite Considering Curing Ages
title_short Flexural Properties and Microstructure Mechanisms of Renewable Coir-Fiber-Reinforced Magnesium Phosphate Cement-Based Composite Considering Curing Ages
title_full Flexural Properties and Microstructure Mechanisms of Renewable Coir-Fiber-Reinforced Magnesium Phosphate Cement-Based Composite Considering Curing Ages
title_fullStr Flexural Properties and Microstructure Mechanisms of Renewable Coir-Fiber-Reinforced Magnesium Phosphate Cement-Based Composite Considering Curing Ages
title_full_unstemmed Flexural Properties and Microstructure Mechanisms of Renewable Coir-Fiber-Reinforced Magnesium Phosphate Cement-Based Composite Considering Curing Ages
title_sort flexural properties and microstructure mechanisms of renewable coir-fiber-reinforced magnesium phosphate cement-based composite considering curing ages
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2020-10-01
description As a renewable natural plant fiber, Coir fiber (CF) can be used to as an alternative to improve poor toughness and crack resistance of magnesium phosphate cement (MPC), replacing such artificial fibers as steel fiber and glass fiber and thereby reducing huge energy consumptions and large costs in artificial fibers’ production and waste treatment. Aiming at examining the effects of CF volume concentrations on MPC flexural properties, this study employed a typical three-point bending test, including thirty cuboid specimens, to investigate the flexural strength, load-deflection behavior, and flexural toughness of MPC with different CF volume concentrations from 0% to 4% at the curing age of seven days and 28 days. Results demonstrated that CF presented similar effects on MPC’s properties at two curing ages. At both curing ages, as CF grew, flexural strength increased first and then decreased; specimen stiffness, i.e., MPC elastic modulus, displayed a decreasing trend; and flexural toughness was improved continuously. Additionally, modern microtesting techniques, such as, scanning electron microscopy (SEM) and energy dispersive X-ray detection (EDX), were adopted to analyze the microstructure and compositions of CF and specimens for explaining the properties microscopically.
topic magnesium phosphate cement
flexural strength
coir fiber
three-point bending test
url https://www.mdpi.com/2073-4360/12/11/2556
work_keys_str_mv AT liwenzhang flexuralpropertiesandmicrostructuremechanismsofrenewablecoirfiberreinforcedmagnesiumphosphatecementbasedcompositeconsideringcuringages
AT zuqianjiang flexuralpropertiesandmicrostructuremechanismsofrenewablecoirfiberreinforcedmagnesiumphosphatecementbasedcompositeconsideringcuringages
AT wenhuazhang flexuralpropertiesandmicrostructuremechanismsofrenewablecoirfiberreinforcedmagnesiumphosphatecementbasedcompositeconsideringcuringages
AT sixuepeng flexuralpropertiesandmicrostructuremechanismsofrenewablecoirfiberreinforcedmagnesiumphosphatecementbasedcompositeconsideringcuringages
AT pengfeichen flexuralpropertiesandmicrostructuremechanismsofrenewablecoirfiberreinforcedmagnesiumphosphatecementbasedcompositeconsideringcuringages
_version_ 1724440465027104768