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Influence of Phosphorus Sources on the Compressive Strength and Microstructure of Ferronickel Slag-Based Magnesium Phosphate Cement

Electric furnace ferronickel slag (EFS) is a typical magnesium-rich industrial by-product discharged from the manufacture of nickel and iron-nickel alloys. The approach to use it as the raw material for the preparation of magnesium phosphate cement (MPC) has potential and proves effective. In this s...

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Autores principales: Yan, Cuirong, Ma, Hongyan, Luo, Zhongqiu, Zhou, Xintao, Wang, Luxing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911786/
https://www.ncbi.nlm.nih.gov/pubmed/35269196
http://dx.doi.org/10.3390/ma15051965
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author Yan, Cuirong
Ma, Hongyan
Luo, Zhongqiu
Zhou, Xintao
Wang, Luxing
author_facet Yan, Cuirong
Ma, Hongyan
Luo, Zhongqiu
Zhou, Xintao
Wang, Luxing
author_sort Yan, Cuirong
collection PubMed
description Electric furnace ferronickel slag (EFS) is a typical magnesium-rich industrial by-product discharged from the manufacture of nickel and iron-nickel alloys. The approach to use it as the raw material for the preparation of magnesium phosphate cement (MPC) has potential and proves effective. In this study, three different phosphorus sources (PS) including phosphoric acid (H(3)PO(4), PA), sodium dihydrogen phosphate (NaH(2)PO(4), SDP) and potassium dihydrogen phosphate (KH(2)PO(4), PDP) were used to react with EFS to prepare the EFS-based MPC (EMPC), and the effects of raw material mass ratio (EFS/PA, EFS/SDP, EFS/PDP) on the compressive strength, early hydration temperature and microstructure of EMPC pastes were investigated. Results showed that the compressive strength of EMPC paste is significantly impacted by the type of phosphorus source and the raw materials mass ratio. When the EFS/PDP ratio is 4.0, the compressive strength of the MPC paste reaches up to 18.8, 22.8 and 27.5 MPa at 3, 7 and 28 d, respectively. Cattiite (Mg(3)(PO(4))(2)·22H(2)O), K-struvite (KMgPO(4)·6H(2)O) and/or Na-struvite (NaMgPO(4)·6H(2)O) were identified as the main hydration products of EMPC. The development of EMPC mainly involves the dissolution of a phosphorus source, MgO and Mg(2)SiO(4), formation of hydration product as binder, and combination of the unreacted raw materials together by binders to build a compact form.
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spelling pubmed-89117862022-03-11 Influence of Phosphorus Sources on the Compressive Strength and Microstructure of Ferronickel Slag-Based Magnesium Phosphate Cement Yan, Cuirong Ma, Hongyan Luo, Zhongqiu Zhou, Xintao Wang, Luxing Materials (Basel) Article Electric furnace ferronickel slag (EFS) is a typical magnesium-rich industrial by-product discharged from the manufacture of nickel and iron-nickel alloys. The approach to use it as the raw material for the preparation of magnesium phosphate cement (MPC) has potential and proves effective. In this study, three different phosphorus sources (PS) including phosphoric acid (H(3)PO(4), PA), sodium dihydrogen phosphate (NaH(2)PO(4), SDP) and potassium dihydrogen phosphate (KH(2)PO(4), PDP) were used to react with EFS to prepare the EFS-based MPC (EMPC), and the effects of raw material mass ratio (EFS/PA, EFS/SDP, EFS/PDP) on the compressive strength, early hydration temperature and microstructure of EMPC pastes were investigated. Results showed that the compressive strength of EMPC paste is significantly impacted by the type of phosphorus source and the raw materials mass ratio. When the EFS/PDP ratio is 4.0, the compressive strength of the MPC paste reaches up to 18.8, 22.8 and 27.5 MPa at 3, 7 and 28 d, respectively. Cattiite (Mg(3)(PO(4))(2)·22H(2)O), K-struvite (KMgPO(4)·6H(2)O) and/or Na-struvite (NaMgPO(4)·6H(2)O) were identified as the main hydration products of EMPC. The development of EMPC mainly involves the dissolution of a phosphorus source, MgO and Mg(2)SiO(4), formation of hydration product as binder, and combination of the unreacted raw materials together by binders to build a compact form. MDPI 2022-03-07 /pmc/articles/PMC8911786/ /pubmed/35269196 http://dx.doi.org/10.3390/ma15051965 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yan, Cuirong
Ma, Hongyan
Luo, Zhongqiu
Zhou, Xintao
Wang, Luxing
Influence of Phosphorus Sources on the Compressive Strength and Microstructure of Ferronickel Slag-Based Magnesium Phosphate Cement
title Influence of Phosphorus Sources on the Compressive Strength and Microstructure of Ferronickel Slag-Based Magnesium Phosphate Cement
title_full Influence of Phosphorus Sources on the Compressive Strength and Microstructure of Ferronickel Slag-Based Magnesium Phosphate Cement
title_fullStr Influence of Phosphorus Sources on the Compressive Strength and Microstructure of Ferronickel Slag-Based Magnesium Phosphate Cement
title_full_unstemmed Influence of Phosphorus Sources on the Compressive Strength and Microstructure of Ferronickel Slag-Based Magnesium Phosphate Cement
title_short Influence of Phosphorus Sources on the Compressive Strength and Microstructure of Ferronickel Slag-Based Magnesium Phosphate Cement
title_sort influence of phosphorus sources on the compressive strength and microstructure of ferronickel slag-based magnesium phosphate cement
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911786/
https://www.ncbi.nlm.nih.gov/pubmed/35269196
http://dx.doi.org/10.3390/ma15051965
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