EFFECT OF MgO/MgSO₄ MOLAR RATIO ON THE HYDRATION AND MECHANICAL PROPERTIES OF BMS CONTAINING STEEL SLAG

The work aims to investigate the effect of MgO/MgSO₄ molar ratios (MSMRs) on the hydration and mechanical properties of basic magnesium sulfate (BMS) cement and basic magnesium sulfate-containing steel slag (BMS-SS). The exothermic rate and cumulative heat release were monitored, and the hydration p...

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Main Authors: Xuan He, Huang Lei, Jiang Tao, Wu Chengyou
Format: Article
Language:English
Published: University of Chemistry and Technology, Prague 2022-09-01
Series:Ceramics-Silikáty
Subjects:
Online Access: http://www.ceramics-silikaty.cz/index.php?page=cs_detail_doi&id=1592
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author Xuan He
Huang Lei
Jiang Tao
Wu Chengyou
author_facet Xuan He
Huang Lei
Jiang Tao
Wu Chengyou
author_sort Xuan He
collection DOAJ
description The work aims to investigate the effect of MgO/MgSO₄ molar ratios (MSMRs) on the hydration and mechanical properties of basic magnesium sulfate (BMS) cement and basic magnesium sulfate-containing steel slag (BMS-SS). The exothermic rate and cumulative heat release were monitored, and the hydration products and pore structures were analysed. In addition, the compressive strength was measured. The results show that the hydration process of BMS and BMS-SS are both affected by the MSMRs; samples with an MSMR of 7 have the highest cumulative heat both for the BMS and BMS-SS. A higher MSMR has a negative effect on the formation of 5-1-7 and leads to the formation of Mg(OH)₂. The incorporation of SS leads to the formation of gypsum, especially for the samples with a low MSMR. Both the porosity and its distribution are affected by the MSMR, samples with an MSMR of 5 are significantly higher than those with an MSMR of 7 and 9, and the average pore diameter of the samples with an MSMR of 7 is the lowest whether or not SS is incorporated. The compressive strength of the samples with an MSMR of 7 and 9 are nearly equal and prominently higher than the samples with an MSMR of 5. The SS incorporation leads to a decrease in the compressive strength for all the samples.
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spelling doaj.art-e5821121bdd54c659394e4e07c1b40872023-09-25T08:10:41ZengUniversity of Chemistry and Technology, PragueCeramics-Silikáty0862-54681804-58472022-09-0166446247010.13168/cs.2022.004210.13168/cs.2022.0042.20230925075358EFFECT OF MgO/MgSO₄ MOLAR RATIO ON THE HYDRATION AND MECHANICAL PROPERTIES OF BMS CONTAINING STEEL SLAGXuan He0Huang Lei1Jiang TaoWu Chengyou2 Department of Civil Engineering, Qinghai University, Xining 810016, China. Department of Civil Engineering, Qinghai University, Xining 810016, China. Department of Civil Engineering, Qinghai University, Xining 810016, China. The work aims to investigate the effect of MgO/MgSO₄ molar ratios (MSMRs) on the hydration and mechanical properties of basic magnesium sulfate (BMS) cement and basic magnesium sulfate-containing steel slag (BMS-SS). The exothermic rate and cumulative heat release were monitored, and the hydration products and pore structures were analysed. In addition, the compressive strength was measured. The results show that the hydration process of BMS and BMS-SS are both affected by the MSMRs; samples with an MSMR of 7 have the highest cumulative heat both for the BMS and BMS-SS. A higher MSMR has a negative effect on the formation of 5-1-7 and leads to the formation of Mg(OH)₂. The incorporation of SS leads to the formation of gypsum, especially for the samples with a low MSMR. Both the porosity and its distribution are affected by the MSMR, samples with an MSMR of 5 are significantly higher than those with an MSMR of 7 and 9, and the average pore diameter of the samples with an MSMR of 7 is the lowest whether or not SS is incorporated. The compressive strength of the samples with an MSMR of 7 and 9 are nearly equal and prominently higher than the samples with an MSMR of 5. The SS incorporation leads to a decrease in the compressive strength for all the samples. http://www.ceramics-silikaty.cz/index.php?page=cs_detail_doi&id=1592 basic magnesium sulfate cement steel slag hydration process compressive strength pore structures
spellingShingle Xuan He
Huang Lei
Jiang Tao
Wu Chengyou
EFFECT OF MgO/MgSO₄ MOLAR RATIO ON THE HYDRATION AND MECHANICAL PROPERTIES OF BMS CONTAINING STEEL SLAG
Ceramics-Silikáty
basic magnesium sulfate cement
steel slag
hydration process
compressive strength
pore structures
title EFFECT OF MgO/MgSO₄ MOLAR RATIO ON THE HYDRATION AND MECHANICAL PROPERTIES OF BMS CONTAINING STEEL SLAG
title_full EFFECT OF MgO/MgSO₄ MOLAR RATIO ON THE HYDRATION AND MECHANICAL PROPERTIES OF BMS CONTAINING STEEL SLAG
title_fullStr EFFECT OF MgO/MgSO₄ MOLAR RATIO ON THE HYDRATION AND MECHANICAL PROPERTIES OF BMS CONTAINING STEEL SLAG
title_full_unstemmed EFFECT OF MgO/MgSO₄ MOLAR RATIO ON THE HYDRATION AND MECHANICAL PROPERTIES OF BMS CONTAINING STEEL SLAG
title_short EFFECT OF MgO/MgSO₄ MOLAR RATIO ON THE HYDRATION AND MECHANICAL PROPERTIES OF BMS CONTAINING STEEL SLAG
title_sort effect of mgo mgso₄ molar ratio on the hydration and mechanical properties of bms containing steel slag
topic basic magnesium sulfate cement
steel slag
hydration process
compressive strength
pore structures
url http://www.ceramics-silikaty.cz/index.php?page=cs_detail_doi&id=1592
work_keys_str_mv AT xuanhe effectofmgomgso4molarratioonthehydrationandmechanicalpropertiesofbmscontainingsteelslag
AT huanglei effectofmgomgso4molarratioonthehydrationandmechanicalpropertiesofbmscontainingsteelslag
AT jiangtao effectofmgomgso4molarratioonthehydrationandmechanicalpropertiesofbmscontainingsteelslag
AT wuchengyou effectofmgomgso4molarratioonthehydrationandmechanicalpropertiesofbmscontainingsteelslag