Development of Water-Cured Alkali-Activated Concrete with a High Volume of Silica-Rich Waste Limestone Powder and GGBS and Fly Ash Materials: Strength, Durability, and Life Cycle Assessment

被引:0
作者
Rahman, Muhammad K. [1 ]
Kailani, Hashem Y. [1 ]
Bahraq, Ashraf A. [1 ]
Al-Dulaijan, Salah U. [1 ]
Ahmed, Shamsad [1 ]
机构
[1] King Fahd Univ Petr & Minerals, Interdisciplinary Res Ctr Construct & Bldg Mat, Dhahran 31261, Saudi Arabia
关键词
Waste limestone powder; Alkali-activated concrete; Strength; Durability; Scanning electron microscope (SEM)-Fourier transform infrared (FTIR) analysis; Life cycle assessment; Sustainability; MECHANICAL-PROPERTIES; ENGINEERING PROPERTIES; HUSK ASH; GEOPOLYMER; SLAG; WORKABILITY; CEMENT; FRESH; RATIO; FTIR;
D O I
10.1061/JMCEE7.MTENG-17475
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Significant amounts of finely ground waste powder are produced during the heating process of silica-rich limestone aggregates in asphalt concrete plants. This resulting by-product poses challenges and opportunities in the scope of environmental sustainability, waste management, and resource utilization. Some attempts were made to utilize limestone powder in concrete production; however, its use was limited to a small quantity. Thus, this paper explores the feasibility of utilizing a high proportion of silica-rich waste limestone powder (LSP) in combination with ground granulated blast furnace slag (GGBS) and fly ash (FA) as precursor materials in producing alkali-activated mixtures. A series of experiments were conducted to evaluate the mechanical properties, durability characteristics, and microstructural analysis of the developed water-cured alkali-activated mortars and concrete. The results showed that the mixtures having a high volume of LSP (40%-50%) and GGBS/FA as precursor materials demonstrated adequate flowability (186-240 mm), satisfactory compressive strength (33-45 MPa), and good durability (water absorption was in the range of 2.6%-3.8%). In addition, the microstructural analysis in terms of scanning electron microscope (SEM), energy dispersive spectroscope (EDS), and Fourier transform infrared (FTIR) spectrometer revealed a dense microstructure with gel formation, which was correlated to mechanical strength. Finally, the environmental impact based on the life cycle assessment was evaluated, and the developed mixtures exhibited an average emission reduction of 63% compared with traditional concrete. The findings of this study suggest that waste LSP, typically disposed in landfills, can be effectively utilized up to 50% in the production of environmentally sustainable concrete.
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页数:18
相关论文
共 88 条
  • [1] Abdul Sani M. F. A., 2020, IOP Conference Series: Materials Science and Engineering, V712, DOI 10.1088/1757-899X/712/1/012002
  • [2] ACI (American Concrete Institute), 2016, Specifications for structural concrete, P1
  • [3] The Effect of Lime Addition on the Setting Time and Strength of Ambient Cured Fly Ash Based Geopolymer Binder
    Adam, Andi Arham
    Amiri, Nur Hayati
    Suarnita, I. Wayan
    Rupang, Nicodemus
    [J]. 3RD INTERNATIONAL CONFERENCE ON CIVIL AND ENVIRONMENTAL ENGINEERING FOR SUSTAINABILITY (ICONCEES 2015), 2016, 47
  • [4] Effects of key factors on the compressive strength of metakaolin and limestone powder-based alkali-activated concrete mixtures: An experimental and statistical study
    Ahmad, Shamsad
    Bahraq, Ashraf A.
    Shaqraa, Abbas Albu
    Khalid, Hammad R.
    Al-Gadhib, Ali H.
    Maslehuddin, Mohammed
    [J]. CASE STUDIES IN CONSTRUCTION MATERIALS, 2022, 16
  • [5] Durability evaluation of geopolymer and conventional concretes
    Albitar, M.
    Ali, M. S. Mohamed
    Visintin, P.
    Drechsler, M.
    [J]. CONSTRUCTION AND BUILDING MATERIALS, 2017, 136 : 374 - 385
  • [6] Advancements in low-carbon concrete as a construction material for the sustainable built environment
    Althoey, Fadi
    Ansari, Wajahat Sammer
    Sufian, Muhammad
    Deifalla, Ahmed Farouk
    [J]. DEVELOPMENTS IN THE BUILT ENVIRONMENT, 2023, 16
  • [8] [Anonymous], 2010, STANDARD SPECIFICATI
  • [9] [Anonymous], 2011, ASTM Standard C496, DOI [10, 10.1520/C0496_C0496M-11, DOI 10.1520/C0496C0496M-17]
  • [10] [Anonymous], 2022, Standard Specification for Steel Castings, Carbon and Alloy, with Tensole Requirements, Chemical Requirements Similar to Standard Wrought Grades