Investigation of mechanical properties and hydration of low-carbon magnesium and calcium-rich waste powder geopolymer paste

被引:0
|
作者
Li, Changming [1 ,2 ]
Yang, Xudong [1 ]
Jia, Dongyang [1 ]
Zhao, Shunbo [2 ]
Liu, Guanfeng [1 ]
Wang, Yaozong [1 ]
Li, Wanjiao [3 ]
Song, Wenyu [4 ,5 ]
机构
[1] North China University of Water Resource and Electric Power, Zhengzhou,450045, China
[2] International Joint Research Lab for Eco-Building Materials and Engineering of Henan, North China University of Water Resources and Electric Power, Zhengzhou,450045, China
[3] Water Resources Research Institute of Inner Mongolia Autonomous Region, Hohhot,010020, China
[4] Guangdong GW Metal Industry Group Co., LTD, Guangzhou,510050, China
[5] Yunfu Hongyuan Green Building Materials Co., LTD., Yunfu,527300, China
基金
中国国家自然科学基金;
关键词
Alkali contents - Cementitious materials - Geopolymer - Geopolymer paste - Hydration products - Low carbon - Magnesium and calcium-rich waste powder - Mechanical - Pores structure - Property;
D O I
10.1016/j.jcou.2024.102984
中图分类号
学科分类号
摘要
Magnesium and calcium-rich waste powder (MWP) has the potential to be a low-carbon geopolymer cementitious material. This study investigates the mechanical properties and hydration products of low-carbon magnesium and calcium-rich waste powder geopolymer paste (LMWP). The influences of alkali content, calcination temperature, mix proportions of raw materials and curing temperature on the compressive strength and hydration of LMWP were examined. The mechanical properties of LMWP were systematically evaluated by assessing setting time, fluidity, and compressive strength, while the pore structure was analyzed using mercury intrusion porosimetry (MIP). The hydration products and microstructures of LMWP were investigated by XRD, TG-DTG, and SEM-EDS. The results indicated that incorporating 1 % NaOH significantly enhanced the compressive strength of LMWP, whereas thermally activated MWP (800 ℃, 900 ℃) negatively affected compressive strength development. The addition of slag facilitated the reaction of MWP and improved the compressive strength of LMWP. When the slag incorporation reached 40 %, the specimen demonstrated optimal performance with a compressive strength of 27.8 MPa. The pore diameter was predominantly distributed around 10 nm, indicating well-structured porosity. Microstructural analysis revealed that the hydration products are dense calcium magnesium silicate gels (C-M-S-H), which significantly enhanced the compressive strength and optimized pore structure of LMWP. The efficiency of carbon emission reduction achieved by LMWP was evaluated. The findings indicate that, compared to traditional cement-based materials, LMWP reduces cement consumption by over 60 %, significantly decreasing CO2 emissions. This study innovatively utilizes MWP to prepare green and low-carbon geopolymer paste materials, with the aim of replacing cement applications in the construction industry, thereby reducing carbon emissions. It explores new avenues for the low-carbon and green development of the civil engineering sector and contributes to efforts in addressing the global climate crisis. © 2024 The Authors
引用
收藏
相关论文
共 32 条
  • [1] Recycling and optimum utilization of GFRP waste into low-carbon geopolymer paste for sustainable development
    Dong, Jiazhen
    Chen, Minkun
    Wang, Jun
    JOURNAL OF BUILDING ENGINEERING, 2024, 97
  • [2] Recycling and optimum utilization of engineering sediment waste into low-carbon geopolymer paste for sustainable infrastructure
    Zhou, Ao
    Li, Kexuan
    Liu, Tiejun
    Zou, Dujian
    Peng, Xuan
    Lyu, Hanxiong
    Xiao, Jindong
    Luan, Chenchen
    JOURNAL OF CLEANER PRODUCTION, 2023, 383
  • [3] Mechanical properties of low-carbon ultrahigh-performance concrete with ceramic tile waste powder
    Xu, Kaicheng
    Huang, Wenyi
    Zhang, Liqing
    Fu, Shucheng
    Chen, Mengcheng
    Ding, Siqi
    Han, Baoguo
    CONSTRUCTION AND BUILDING MATERIALS, 2021, 287
  • [4] Recycling of phosphogypsum for low-carbon cement: Clinker production, mechanical properties and hydration mechanism
    Zhang, Jixin
    Jiang, Ting
    Cui, Kai
    Chang, Jun
    Journal of Building Engineering, 2024, 98
  • [5] Investigation of the effect of granite waste powder as a binder for different molarity of geopolymer concrete on fresh and mechanical properties
    Shilar, Fatheali A.
    Ganachari, Sharanabasava, V
    Patil, Veerabhadragouda B.
    MATERIALS LETTERS, 2022, 309
  • [6] INVESTIGATION OF THE MECHANICAL PROPERTIES OF CALCIUM TREATED LOW CARBON STEEL
    Karabayrak, Baris
    Baskut, Sinem
    Turan, Dilek
    ARCHIVES OF METALLURGY AND MATERIALS, 2023, 68 (01) : 89 - 96
  • [7] Effect of calcium-rich additions on the mechanical and microstructural properties of metakaolin-based geopolymer concrete cured in ambient sub-Saharan climate
    Laboratoire Eco-Matériaux et Habitats Durables , Institut International d'Ingénierie de l'Eau et de l'Environnement , 1 Rue de la Science, 01 BP 594, Ouagadougou, Burkina Faso
    不详
    不详
    UPS, INSA, 135, Avenue de Rangueil
    Cedex 04, Toulouse
    F-31 077, France
    Constr Build Mater, 2024,
  • [8] Study on the hydration characteristics, mechanical properties, and microstructure of thermally activated low-carbon recycled cement
    Xi, Xinyue
    Zheng, Yuanxun
    Du, Chaowei
    Zhang, Peng
    Sun, Meng
    Construction and Building Materials, 2024, 447
  • [9] Influence of temperature effect on properties of modified magnesium slag-based low-carbon paste backfill materials
    Xie, Geng
    Liu, Lang
    Suo, Yonglu
    Zhu, Mengbo
    Yang, Pan
    Qu, Huisheng
    CONSTRUCTION AND BUILDING MATERIALS, 2024, 411
  • [10] Study on the Properties and Hydration Mechanism of Calcium Carbide Residue-Based Low-Carbon Cementitious Materials
    Wang, Qing
    Wang, Ying
    Gu, Xiaowei
    Liu, Jianping
    Xu, Xiaochuan
    BUILDINGS, 2024, 14 (05)