Mechanical Properties and Water Stability of High Ductility Magnesium Phosphate Cement-Based Composites (HDMC)

In this study, the compressive test and four-point flexural test were carried out to explore the water stability as well as mechanical properties of high ductility magnesium phosphate cement-based composites (HDMC). The effects of ambient curing age (7 d and 28 d), water immersion age (7 d, 28 d, an...

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Main Authors: Hu Feng, Yang Wang, Aofei Guo, Xiangyu Zhao
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/12/3169
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spelling doaj-b6f60b3083d14d18855f4f7e49eb3ffc2021-06-30T23:41:44ZengMDPI AGMaterials1996-19442021-06-01143169316910.3390/ma14123169Mechanical Properties and Water Stability of High Ductility Magnesium Phosphate Cement-Based Composites (HDMC)Hu Feng0Yang Wang1Aofei Guo2Xiangyu Zhao3School of Civil Engineering, Zhengzhou University, Zhengzhou 450001, ChinaSchool of Civil Engineering, Zhengzhou University, Zhengzhou 450001, ChinaSchool of Civil Engineering, Zhengzhou University, Zhengzhou 450001, ChinaSchool of Civil Engineering, Zhengzhou University, Zhengzhou 450001, ChinaIn this study, the compressive test and four-point flexural test were carried out to explore the water stability as well as mechanical properties of high ductility magnesium phosphate cement-based composites (HDMC). The effects of ambient curing age (7 d and 28 d), water immersion age (7 d, 28 d, and 56 d), water/binder ratio (W/B), and magnesium oxide/potassium dihydrogen phosphate ratio (M/P) on the mechanical properties (compressive strength, first-crack strength, ultimate flexural strength, ductility index, and toughness index) and water stability of the HDMC were examined. The results showed that the 28-day ambient curing could lead to higher retention rates of strength, ductility, and toughness than 7-day ambient curing, indicating better water stability; however, it did not result in significant improvement in the mechanical properties of the HDMC. As the water immersion age increased, the mechanical properties of the HDMC with 7-day ambient curing showed an obvious downward trend; the mechanical properties of the HDMC with 28-day ambient curing did not show an obvious decrease and even could be increased in many cases, especially when the water immersion age was 56 days; and the change of water stability was consistent with that of the mechanical properties. If all indexes and their corresponding retention rates were considered comprehensively, the W/B ratio of 0.16 and the M/P ratio of 5 seemed to be the optimum values for the HDMC. The scanning electron microscopy analysis confirmed that the water immersion had a large adverse effect on the HDMC and thus reduced their mechanical properties.https://www.mdpi.com/1996-1944/14/12/3169magnesium phosphate cementambient curing agewater immersion agewater/binder ratiomagnesium oxide/potassium dihydrogen phosphate ratiomechanical property
collection DOAJ
language English
format Article
sources DOAJ
author Hu Feng
Yang Wang
Aofei Guo
Xiangyu Zhao
spellingShingle Hu Feng
Yang Wang
Aofei Guo
Xiangyu Zhao
Mechanical Properties and Water Stability of High Ductility Magnesium Phosphate Cement-Based Composites (HDMC)
Materials
magnesium phosphate cement
ambient curing age
water immersion age
water/binder ratio
magnesium oxide/potassium dihydrogen phosphate ratio
mechanical property
author_facet Hu Feng
Yang Wang
Aofei Guo
Xiangyu Zhao
author_sort Hu Feng
title Mechanical Properties and Water Stability of High Ductility Magnesium Phosphate Cement-Based Composites (HDMC)
title_short Mechanical Properties and Water Stability of High Ductility Magnesium Phosphate Cement-Based Composites (HDMC)
title_full Mechanical Properties and Water Stability of High Ductility Magnesium Phosphate Cement-Based Composites (HDMC)
title_fullStr Mechanical Properties and Water Stability of High Ductility Magnesium Phosphate Cement-Based Composites (HDMC)
title_full_unstemmed Mechanical Properties and Water Stability of High Ductility Magnesium Phosphate Cement-Based Composites (HDMC)
title_sort mechanical properties and water stability of high ductility magnesium phosphate cement-based composites (hdmc)
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-06-01
description In this study, the compressive test and four-point flexural test were carried out to explore the water stability as well as mechanical properties of high ductility magnesium phosphate cement-based composites (HDMC). The effects of ambient curing age (7 d and 28 d), water immersion age (7 d, 28 d, and 56 d), water/binder ratio (W/B), and magnesium oxide/potassium dihydrogen phosphate ratio (M/P) on the mechanical properties (compressive strength, first-crack strength, ultimate flexural strength, ductility index, and toughness index) and water stability of the HDMC were examined. The results showed that the 28-day ambient curing could lead to higher retention rates of strength, ductility, and toughness than 7-day ambient curing, indicating better water stability; however, it did not result in significant improvement in the mechanical properties of the HDMC. As the water immersion age increased, the mechanical properties of the HDMC with 7-day ambient curing showed an obvious downward trend; the mechanical properties of the HDMC with 28-day ambient curing did not show an obvious decrease and even could be increased in many cases, especially when the water immersion age was 56 days; and the change of water stability was consistent with that of the mechanical properties. If all indexes and their corresponding retention rates were considered comprehensively, the W/B ratio of 0.16 and the M/P ratio of 5 seemed to be the optimum values for the HDMC. The scanning electron microscopy analysis confirmed that the water immersion had a large adverse effect on the HDMC and thus reduced their mechanical properties.
topic magnesium phosphate cement
ambient curing age
water immersion age
water/binder ratio
magnesium oxide/potassium dihydrogen phosphate ratio
mechanical property
url https://www.mdpi.com/1996-1944/14/12/3169
work_keys_str_mv AT hufeng mechanicalpropertiesandwaterstabilityofhighductilitymagnesiumphosphatecementbasedcompositeshdmc
AT yangwang mechanicalpropertiesandwaterstabilityofhighductilitymagnesiumphosphatecementbasedcompositeshdmc
AT aofeiguo mechanicalpropertiesandwaterstabilityofhighductilitymagnesiumphosphatecementbasedcompositeshdmc
AT xiangyuzhao mechanicalpropertiesandwaterstabilityofhighductilitymagnesiumphosphatecementbasedcompositeshdmc
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