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Frontiers of Structural and Civil Engineering

ISSN 2095-2430

ISSN 2095-2449(Online)

CN 10-1023/X

邮发代号 80-968

2019 Impact Factor: 1.68

Frontiers of Structural and Civil Engineering  2022, Vol. 16 Issue (1): 86-98   https://doi.org/10.1007/s11709-021-0793-x
  本期目录
Effects of natural zeolite and sulfate ions on the mechanical properties and microstructure of plastic concrete
Ali AKBARPOUR(), Mahdi MAHDIKHANI, Reza Ziaie MOAYED
Civil Engineering Department, Imam Khomeini International University, Qazvin 34149-16818, Iran
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Abstract

One of the strategic materials used in earth-fill embankment dams and in modifying and preventing groundwater flow is plastic concrete (PlC). PlC is comprised of aggregates, water, cement, and bentonite. Natural zeolite (NZ) is a relatively abundant mineral resource and in this research, the microstructure, unconfined strength, triaxial behavior, and permeability of PlC made with 0%, 10%, 15%, 20%, and 25% replacement of cement by NZ were studied. Specimens of PIC-NZ were subjected to confined conditions and three different confining pressures of 200, 350, and 500 kPa were used to investigate their mechanical behavior and permeability. To study the effect of sulfate ions on the properties of PlC-NZ specimens, the specimens were cured in one of two different environments: normal condition and in the presence of sulfate ions. Results showed that increasing the zeolite content decreases the unconfined strength, elastic modulus, and peak strength of PlC-NZ specimens at the early ages of curing. However, at the later ages, increasing the zeolite content increases unconfined strength as well as the peak strength and elastic modulus. Specimens cured in the presence of sulfate ions indicated lower permeability, higher unconfined strength, elastic modulus, and peak strength due to having lower porosity.

Key wordsplastic concrete    sulfate resistance    natural zeolite    triaxial compression test    SEM    permeability
收稿日期: 2021-08-21      出版日期: 2022-03-07
Corresponding Author(s): Ali AKBARPOUR   
 引用本文:   
. [J]. Frontiers of Structural and Civil Engineering, 2022, 16(1): 86-98.
Ali AKBARPOUR, Mahdi MAHDIKHANI, Reza Ziaie MOAYED. Effects of natural zeolite and sulfate ions on the mechanical properties and microstructure of plastic concrete. Front. Struct. Civ. Eng., 2022, 16(1): 86-98.
 链接本文:  
https://academic.hep.com.cn/fsce/CN/10.1007/s11709-021-0793-x
https://academic.hep.com.cn/fsce/CN/Y2022/V16/I1/86
compound/property cement natural zeolite
calcium oxide (CaO) 61.26% 4.2%
silica (SiO2) 20.53% 66.24%
alumina (Al2O3) 3.91% 12.79%
Iron oxide (Fe2O3) 3.72% 1.29%
Magnesium oxide (MgO) 3.65% 1.18%
Sodium oxide (Na2O) 0.41% 1.98%
Potassium oxide (K2O) 0.95% 1.39%
Sulfur trioxide (SO3) 2.97% 0.48%
Titanium Dioxide (TiO2) 0.27%
Loss on Ignition (L.O.I) 1.51% 10.31%
C2S 23.57%
C3S 51.33%
C3A 5.56%
C4AF 8.24%
specific gravity 3.12 2.18
specific surface 3060 cm2/g 10000 cm2/g
Tab.1  
Fig.1  
property value
specific gravity 2.79
pH (1∶10, soil-water ratio) 9.5
specific surface area, (m2/kg) × 10−3 413
Tab.2  
characteristics content
CEC (cmol/kg, soil) 68.2
organic content (%) 1.4
carbonate content (%) 8
exchangeable K+ (cmol/kg) 3.4
exchangeable Ca2+ (cmol/kg) 14.2
exchangeable Na+ (cmol/kg) 48.5
exchangeable Mg2+ (cmol/kg) 2.1
Tab.3  
Fig.2  
mix ID natural zeolite (% of cement) water (kg/m3) cement (kg/m3) Bentonite (kg/m3) gravel (kg/m3) sand (kg/m3)
4.75–9.5 (mm) 9.5–19 (mm)
PlC-NZ0 0 450 152.7 30.5 475.8 279.4 617.9
PlC-NZ10 10 450 137.43 30.5 475.8 279.4 617.9
PlC-NZ15 15 450 129.79 30.5 475.8 279.4 617.9
PlC-NZ20 20 450 122.16 30.5 475.8 279.4 617.9
PlC-NZ25 25 450 114.54 30.5 475.8 279.4 617.9
Tab.4  
Fig.3  
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