Investigation of the viscoelastic evolution of reactive magnesia cement pastes with accelerated hydration mechanisms

被引:13
|
作者
Peng, Yiming [1 ]
Unluer, Cise [2 ]
机构
[1] Univ Glasgow, Sch Engn, Glasgow City G12 8LT, Scotland
[2] Univ Manchester, Dept Mech Aerosp & Civil Engn, Manchester M13 9PL, England
关键词
Reactive magnesia cement; Hydration agents; Rheology; Viscoelasticity; Microstructure evolution; MGO CONCRETE; ENHANCED HYDRATION; REJECT BRINE; YIELD-STRESS; CARBONATION; SEQUESTRATION; PERFORMANCE; THIXOTROPY; STRENGTH; CO2;
D O I
10.1016/j.cemconcomp.2023.105191
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Viscoelasticity of reactive magnesia cement (RMC) pastes containing 3 different hydration agents (HCl, Mg (CH3COO)2 and MgCl2) were investigated. Amplitude sweep, frequency sweep and time sweep of RMC pastes were examined within 3 h of hydration. Time-dependent evolution of storage modulus, loss modulus, phase angle, and shear stress were recorded. Measurements of pH, isothermal calorimetry, XRD, TG-DTG and FTIR were used to analyze hydration reaction and products. Addition of hydration agents (HAs) accelerated the growth rate of storage modulus/loss modulus over time. MgCl2 demonstrated the greatest acceleration influence, also reflected in non-destructive structural build-up and buildability related to 3D printing applications. Addition of MgCl2 and HCl advanced the initial setting time of RMC pastes to 100-110 min, during which yield stress reached maximum, and decreased afterwards. Within 3 h of hydration, pastes containing MgCl2 revealed lowest pH, highest heat release and brucite concentration. HAs inclusion precipitated brucite away from MgO particles in the bulk solution, creating a bridge between MgO particles and enabling denser microscopic network structure.
引用
收藏
页数:11
相关论文
共 28 条
  • [1] Influence of nesquehonite seeds on hydration and carbonation of reactive magnesia cement
    Li, Zhen
    Zhang, Zhichao
    Qin, Jihui
    Yue, Yanfei
    Qian, Jueshi
    CONSTRUCTION AND BUILDING MATERIALS, 2023, 409
  • [2] Effect of water-to-cement ratio induced hydration on the accelerated carbonation of cement pastes
    Mehdizadeh, Hamideh
    Jia, Xiaoxiao
    Mo, Kim Hung
    Ling, Tung-Chai
    ENVIRONMENTAL POLLUTION, 2021, 280
  • [3] Hydration and hardening properties of reactive magnesia and Portland cement composite
    Li, Siqi
    Yang, Jinbo
    Zhang, Peng
    CONSTRUCTION AND BUILDING MATERIALS, 2022, 327
  • [4] Interpretable machine learning-based analysis of hydration and carbonation of carbonated reactive magnesia cement mixes
    Peng, Yiming
    Unluer, Cise
    JOURNAL OF CLEANER PRODUCTION, 2024, 434
  • [5] Investigation of chloride penetration in carbonated reactive magnesia cement mixes exposed to cyclic wetting-drying
    Kumar, Sanjeev
    Yang, En-Hua
    Unluer, Cise
    CONSTRUCTION AND BUILDING MATERIALS, 2021, 284
  • [6] An investigation into the hydration and microstructure of cement pastes modified with glass powders
    Karnali, Mahsa
    Ghahremaninezhad, Ali
    CONSTRUCTION AND BUILDING MATERIALS, 2016, 112 : 915 - 924
  • [7] Accelerated Early Age Hydration of Cement Pastes Blended with Sulphoaluminate Expansive Agent
    Zeng, Luping
    Zhao, Shuang
    Wang, Wei
    Qiao, Min
    Hong, Jinxiang
    Ran, Qianping
    Wang, Yujiang
    JOURNAL OF ADVANCED CONCRETE TECHNOLOGY, 2021, 19 (06) : 655 - 667
  • [8] Performance evaluation of mixing carbonated reactive magnesia slurry in Portland cement pastes
    Luo, Shuang
    Wang, Minlu
    Pham, Ba Tung
    De Belie, Nele
    Ling, Tung-Chai
    CEMENT & CONCRETE COMPOSITES, 2025, 160
  • [9] Effects of accelerated carbonation on the microstructure of Portland cement pastes containing reactive MgO
    Mo, Liwu
    Panesar, Daman K.
    CEMENT AND CONCRETE RESEARCH, 2012, 42 (06) : 769 - 777
  • [10] Comparison of magnesium oxysulfate (MOS) cement and reactive magnesia cement (RMC) under different curing conditions: Physical properties, mechanisms, and environmental impacts
    Liu, Yisong
    Zhang, Zhi-Yuan
    Zheng, Yang
    Zhang, Xiaozhu
    Wang, Xiaofei
    Yin, Xianghui
    CONSTRUCTION AND BUILDING MATERIALS, 2023, 405