Effects of natural zeolite and sulfate ions on the mechanical properties and microstructure of plastic concrete

Ali AKBARPOUR, Mahdi MAHDIKHANI, Reza Ziaie MOAYED

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PDF(12803 KB)
Front. Struct. Civ. Eng. ›› 2022, Vol. 16 ›› Issue (1) : 86-98. DOI: 10.1007/s11709-021-0793-x
RESEARCH ARTICLE
RESEARCH ARTICLE

Effects of natural zeolite and sulfate ions on the mechanical properties and microstructure of plastic concrete

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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.

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Keywords

plastic concrete / sulfate resistance / natural zeolite / triaxial compression test / SEM / permeability

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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 https://doi.org/10.1007/s11709-021-0793-x

References

[1]
AlósShepherd D, KotanE, DehnF. Plastic concrete for cut-off walls: A review. Construction & Building Materials, 2020, 255 : 119248–
CrossRef Google scholar
[2]
SongS, YouP. Performance of plastic concrete under true tri-axial compressive stress. Construction & Building Materials, 2021, 266 : 121106–
CrossRef Google scholar
[3]
GhanizadehA R, AbbaslouH, AmlashiA T, AlidoustP. Modeling of bentonite/sepiolite plastic concrete compressive strength using artificial neural network and support vector machine. Frontiers of Structural and Civil Engineering, 2019, 13( 1): 215– 239
CrossRef Google scholar
[4]
AmlashiA T, AbdollahiS M, GoodarziS, GhanizadehA R. Soft computing based formulations for slump, compressive strength, and elastic modulus of bentonite plastic concrete. Journal of Cleaner Production, 2019, 230 : 1197– 1216
CrossRef Google scholar
[5]
JuengerM C G, SiddiqueR. Recent advances in understanding the role of supplementary cementitious materials in concrete. Cement and Concrete Research, 2015, 78 : 71– 80
CrossRef Google scholar
[6]
WenL, ChaiJ, XuZ, QinY, LiY. Comparative and numerical analyses of response of concrete cutoff walls of earthen dams on alluvium foundations. Journal of Geotechnical and Geoenvironmental Engineering, 2019, 145( 10): 04019069–
CrossRef Google scholar
[7]
ICOLD. Filling Materials for Watertight Cut off Walls. Paris: International Committee of Large Dams, 1985
[8]
FengN Q, LiG Z, ZangX W. High-strength and flowing concrete with a zeolitic mineral admixture. Cement, Concrete and Aggregates, 1990, 12( 2): 61– 69
CrossRef Google scholar
[9]
SoroushA, SoroushM. Parameters affecting the thickness of bentonite cake in cutoff wall construction: Case study and physical modeling. Canadian Geotechnical Journal, 2005, 42( 2): 646– 654
CrossRef Google scholar
[10]
BagheriA R, AlibabaieM, BabaieM. Reduction in the permeability of plastic concrete for cut-off walls through utilization of silica fume. Construction & Building Materials, 2008, 22( 6): 1247– 1252
CrossRef Google scholar
[11]
JalalM, FathiM, FarzadM. Effects of fly ash and TiO2 nanoparticles on rheological, mechanical, microstructural and thermal properties of high strength self compacting concrete. Mechanics of Materials, 2013, 61 : 11– 27
CrossRef Google scholar
[12]
DamtoftJ S, LukasikJ, HerfortD, SorrentinoD, GartnerE M. Sustainable development and climate change initiatives. Cement and Concrete Research, 2008, 38( 2): 115– 127
CrossRef Google scholar
[13]
MethaP K, MonteiroP J M. Concrete—Microstructure, Properties and Materials. McGraw-Hill Professional, 2001, 23913
[14]
CelikK. Development and characterization of sustainable self-consolidating concrete containing high volume of limestone powder and natural or calcined pozzolanic materials. Dissertation for the Doctoral Degree. Berkeley: University of California, Berkeley, 2015
[15]
OchoaL, HendricksonC, AsceM, MatthewsH S. Economic input-output life-cycle assessment of US residential buildings. Journal of infrastructure systems, 2002, 8( 4): 132– 138
[16]
Augustine C, Byrne A, Gimon E, Goerner T, Hoffman I, Kammen D M, Kantner J, Levin J, Lipman T, Mileva A, Muren R, Paul S, Sapatari S, Thorsteinsson H, Tominks C. Redefining what’s possible for clean energy by 2020. Gigaton Throwdown, San Francisco, 2009
[17]
USGSMCS. Cement Statistics and Information. Washington, DC: US Geological Survey, 2012
[18]
Van OssH. Minerals Yearbook: Slag-Iron and Steel. Washington, DC: US Geological Survey, 2011
[19]
MehtaP K. Sustainable cements and concrete for the climate change era––A review. In: 2nd International Conference on Sustainable Construction Materials and Technologies. Aneona: American Society of Civil Engineers, 2010
[20]
ÖrenA H, KayaA, KayalarA Ş. Hydraulic conductivity of zeolite-bentonite mixtures in comparison with sand-bentonite mixtures. Canadian Geotechnical Journal, 2011, 48( 9): 1343– 1353
CrossRef Google scholar
[21]
GiosuèC, MobiliA, YuQ L, BrouwersH J H, RuelloM L, TittarelliF. Properties of multifunctional lightweight mortars containing zeolite and natural fibers. Journal of Sustainable Cement-Based Materials, 2019, 8( 4): 214– 227
CrossRef Google scholar
[22]
JanotkaI, KrajčiL. Sulphate resistance and passivation ability of the mortar made from pozzolan cement with zeolite. Journal of Thermal Analysis and Calorimetry, 2008, 94( 1): 7– 14
CrossRef Google scholar
[23]
ŞahmaranM. The effect of replacement rate and fineness of natural zeolite on the rheological properties of cement-based grouts. Canadian Journal of Civil Engineering, 2008, 35( 8): 796– 806
CrossRef Google scholar
[24]
VieiraG L, SchiavonJ Z, BorgesP M, da SilvaS R, de Oliveira AndradeJ J. Influence of recycled aggregate replacement and fly ash content in performance of pervious concrete mixtures. Journal of Cleaner Production, 2020, 271 : 122665–
CrossRef Google scholar
[25]
ÖncüŞ, BilselH. Effect of zeolite utilization on volume change and strength properties of expansive soil as landfill barrier. Canadian Geotechnical Journal, 2017, 54( 9): 1320– 1330
CrossRef Google scholar
[26]
LiF, ZhouC, YangP, WangB, HuJ, WeiJ, YuQ. Direct synthesis of carbon nanotubes on fly ash particles to produce carbon nanotubes/fly ash composites. Frontiers of Structural and Civil Engineering, 2019, 13( 6): 1405– 1414
CrossRef Google scholar
[27]
SunD, ShiH, WuK, MiraminiS, LiB, ZhangL. Influence of aggregate surface treatment on corrosion resistance of cement composite under chloride attack. Construction & Building Materials, 2020, 248 : 118636–
CrossRef Google scholar
[28]
NevilleA. The confused world of sulfate attack on concrete. Cement and Concrete Research, 2004, 34( 8): 1275– 1296
CrossRef Google scholar
[29]
ACICommittee 201. Guide to Durable Concrete. American Concrete Institute, 2001
[30]
HaufeJ, VollprachtA. Tensile strength of concrete exposed to sulfate attack. Cement and Concrete Research, 2019, 116 : 81– 88
CrossRef Google scholar
[31]
ChenJ, BharataR, YinT, WangQ, WangH, ZhangT. Assessment of sulfate attack and freeze–thaw cycle damage of cement-based materials by a nonlinear acoustic technique. Materials and Structures, 2017, 50( 2): 105–
CrossRef Google scholar
[32]
RasheeduzzafarO S B, Al-AmoudiS N, AbduljauwadM. Magnesium-sodium sulfate attack in plain and blended cements. Journal of Materials in Civil Engineering, 1994, 6( 2): 201– 222
CrossRef Google scholar
[33]
BargerG S, BaylesJ, BlairB, BrownD, ChenH, ConwayT, HawkinsP. Ettringite formation and the performance of concrete. Portland Cement Association, 2001, 1– 16
[34]
ASTM. Standard Specification for Portland Cement, ASTM C150. West Conshohocken, PA: ASTM, 2012
[35]
ASTM. Standard Test Method for Measuring the Exchange Complex and Cation Exchange Capacity of Inorganic Fine-Grained Soils 1, ASTM D7503-18. West Conshohocken, PA: ASTM, 2020
[36]
ASTM. Standard Test Method for Unconsolidated-Undrained Triaxial Compression Test on Cohesive Soils, ASTM D2850-3a. West Conshohocken, PA: ASTM, 2013
[37]
ASTM. Standard Test Method for Unconfined Compressive Strength of Cohesive Soil, ASTM D2166. West Conshohocken, PA: ASTM, 2006
[38]
MahboubiA, AjorlooA. Experimental study of the mechanical behavior of plastic concrete in triaxial compression. Cement and Concrete Research, 2005, 35( 2): 412– 419
CrossRef Google scholar
[39]
XuS, ShanJ, ZhangL, ZhouL, GaoG, HuS, WangP. Dynamic compression behaviors of concrete under true triaxial confinement: An experimental technique. Mechanics of Materials, 2020, 140 : 103220–
CrossRef Google scholar
[40]
PiotrowskaE, MalecotY, KeY. Experimental investigation of the effect of coarse aggregate shape and composition on concrete triaxial behavior. Mechanics of Materials, 2014, 79 : 45– 57
CrossRef Google scholar
[41]
FuZ, SuH, WenZ. Multi-scale numerical analysis for linear elastic behavior of clay concrete. International Journal of Solids and Structures, 2020, 203 : 23– 45
CrossRef Google scholar
[42]
HinchbergerS, WeckJ, NewsonT. Mechanical and hydraulic characterization of plastic concrete for seepage cut-off walls. Canadian Geotechnical Journal, 2010, 47( 4): 461– 471
CrossRef Google scholar
[43]
SunD, WuK, ShiH, MiraminiS, ZhangL. Deformation behaviour of concrete materials under the sulfate attack. Construction & Building Materials, 2019, 210 : 232– 241
CrossRef Google scholar
[44]
SunD, WuK, ShiH, ZhangL, ZhangL. Effect of interfacial transition zone on the transport of sulfate ions in concrete. Construction & Building Materials, 2018, 192 : 28– 37
CrossRef Google scholar
[45]
MethaP K, MonteiroP J M. Concrete: Microstructure, Properties, and Materials. 2nd ed. Hoboken, NJ: Prentice Hall, 1993
[46]
BadogiannisE, KakaliG, DimopoulouG, ChaniotakisE, TsivilisS. Metakaolin as a main cement constituent. Exploitation of poor Greek kaolins. Cement and Concrete Composites, 2005, 27( 2): 197– 203
CrossRef Google scholar
[47]
PerrakiT, KontoriE, TsivilisS, KakaliG. The effect of zeolite on the properties and hydration of blended cements. Cement and Concrete Composites, 2010, 32( 2): 128– 133
CrossRef Google scholar
[48]
PerrakiT, KakaliG, KontoriE. Characterization and pozzolanic activity of thermally treated zeolite. Journal of Thermal Analysis and Calorimetry, 2005, 82( 1): 109– 113
CrossRef Google scholar
[49]
DemirF, Armagan KorkmazK. Prediction of lower and upper bounds of elastic modulus of high strength concrete. Construction & Building Materials, 2008, 22( 7): 1385– 1393
CrossRef Google scholar
[50]
LiuX, FengP, LiW, GengG, HuangJ, GaoY, MuS, HongJ. Effects of pH on the nano/micro structure of calcium silicate hydrate (C−S−H) under sulfate attack. Cement and Concrete Research, 2021, 140 : 106306–
CrossRef Google scholar
[51]
WangS, WenY, FeiK. Effects of pH and EC on the strength and permeability of plastic concrete cutoff walls. Environmental Science and Pollution Research International, 2021, 28( 31): 42798– 42806
CrossRef Google scholar

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