Technical Papers
Mar 25, 2024

Investigating the Strength and Microstructure of Cemented Sand–Gravel Mixtures Subjected to Freeze–Thaw Cycles

Publication: Journal of Cold Regions Engineering
Volume 38, Issue 2

Abstract

For evaluating the resistance performance of cement-stabilized soils in cold regions, the variation of the strength of the cemented sand–gravel (CSG) mixture concerning the hydration process should be explored. This paper aims to study the effect of freeze–thaw (F–T) cycles on the strength and microstructure of a CSG mixture with 10% cement that is subjected to 12 cycles of freezing at a temperature of −23°C for 24 h and then melted at room temperature of 24°C for the next 24 h. The uniaxial compressive strength (UCS), California bearing ratio (CBR), and weight volume loss of the samples were measured after individual F–T cycles. Furthermore, the change in the microstructure of the CSG mixture in various F–T cycles was explored. The results showed a considerable reduction in the UCS up to Cycle 3, then a slight increase for Cycles 3–6, and finally a gradual decrease for further cycles. However, the CBR and weight loss slightly fluctuated up to Cycle 6, and then gradually decreased for subsequent cycles. The majority of compounds of hydrated cement were damaged in the first three cycles. In the following cycles, between Cycles 3 and 6, the portlandite compound was dissolved and recrystallized within the microvoids. Depending on the environmental conditions, carbonation may be generated from the hydrated cement fraction, which fills the microvoids and improves the strength and structure of the mixture. During further cycles after the sixth cycle, the mechanical action of the ice lenses coupled with the disintegration of the hydrate compounds imposed many new microvoids and cracks with considerable length and width, which intensified the strength reduction of the moisture and weakened the adhesion between grains.

Practical Applications

Since cement is widely used in pavement and dam engineering for stabilizing soils, the durability of cemented soils is of prime concern. This study may help improve the durability and resistance of cemented soils in cold climates. The F–T action not only influences the macrostructure of cement-stabilized soils by imposing a wide crack and ice lens but also induces a considerable change in the complexes existing in the hydrated cement paste of the mixture. Three patterns govern the change of the mixture microstructure in various F–T cycles that correspond to the observed trend in strength. The mentioned trend for the microstructure change and, consequently, the strength variation of the CSG mixture are associated with many factors such as pH, cement content, CO2 content, moisture content within the mixture, and relative humidity within the environment. Accordingly, the pattern of microstructural changes in the CSG mixture after the middle F–T cycles may vary depending on environmental conditions.

Get full access to this article

View all available purchase options and get full access to this article.

Data Availability Statement

All data, models, or codes that support the findings of this study are available from the corresponding author upon reasonable request.

References

Aghajani, H. F., S. Karimi, and M. Hatefi Diznab. 2023. “An experimental and machine-learning investigation into compaction of the cemented sand–gravel mixtures and influencing factors.” Transp. Infrastruct. Geotechnol. 10: 816–855. https://doi.org/10.1007/s40515-022-00244-4.
Aghajani, H. F., H. Soltani-Jigheh, M. Salimi, S. Karimi, V. Estekanchi, and R. Akbarzadeh Ahari. 2022. “Investigating the strength, hydraulic conductivity, and durability of the CSG (cemented sand–gravel) check dams: A case study in Iran.” SN Appl. Sci. 4 (6): 169. https://doi.org/10.1007/s42452-022-05062-4.
Aldaood, A., M. Bouasker, and M. Al-Mukhtar. 2014. “Impact of freeze–thaw cycles on mechanical behaviour of lime stabilized gypseous soils.” Cold Reg. Sci. Technol. 99: 38–45. https://doi.org/10.1016/j.coldregions.2013.12.003.
Aleem, S. A. E., M. Heikal, and W. M. Morsi. 2014. “Hydration characteristic, thermal expansion and microstructure of cement containing nano-silica.” Constr. Build. Mater. 59: 151–160. https://doi.org/10.1016/j.conbuildmat.2014.02.039.
Allahverdi, A., M. M. B. R. Abadi, K. M. A. Hossain, and M. Lachemi. 2014. “Resistance of chemically-activated high phosphorous slag content cement against freeze–thaw cycles.” Cold Reg. Sci. Technol. 103: 107–114. https://doi.org/10.1016/j.coldregions.2014.03.012.
Ashish, D. K. 2019. “Concrete made with waste marble powder and supplementary cementitious material for sustainable development.” J. Cleaner Prod. 211: 716–729. https://doi.org/10.1016/j.jclepro.2018.11.245.
Ashish, D. K., and S. K. Verma. 2021. “Robustness of self-compacting concrete containing waste foundry sand and metakaolin: A sustainable approach.” J. Hazard. Mater. 401: 123329. https://doi.org/10.1016/j.jhazmat.2020.123329.
Ashish, D. K., S. K. Verma, M. Ju, and H. Sharma. 2023. “High volume waste foundry sand self-compacting concrete—Transitioning industrial symbiosis.” Process Saf. Environ. Prot. 173: 666–692. https://doi.org/10.1016/j.psep.2023.03.028.
ASTM. 1992. Classification of soils for engineering purposes (unified soil classification system). ASTM D2487-92. West Conshohocken, PA: ASTM.
ASTM. 1996. Standard test methods for moisture-density relations of soil–cement mixtures. Vol. 5. ASTM D558-96. West Conshohocken, PA: ASTM.
ASTM. 2003a. Standard test methods for freezing and thawing compacted soil–cement mixtures. ASTM D560-03. West Conshohocken, PA: ASTM.
ASTM. 2003b. Standard test methods for compression strength of molded soil–cement cylinders. ASTM D1633-09. West Conshohocken, PA: ASTM.
ASTM. 2007a. Standard test methods for compressive strength of molded soil–cement cylinders. ASTM D1633-07. West Conshohocken, PA: ASTM.
ASTM. 2007b. Standard test method for CBR (California bearing ratio) of laboratory compacted soils. ASTM D1883-07. West Conshohocken, PA: ASTM.
Bache, H., G. Idorn, P. Nepper-Christensen, and J. Nielsen. 1966. “Morphology of calcium hydroxide in cement paste.” Spec. Rep. 90: 154–174.
Batmaz, S. 2003. “Cindere dam-107 m high roller compacted hardfill dam (RCHD) in Turkey.” In RCC dams – roller compacted concrete dams. 1st ed., 121–126. London, UK: Routledge.
Bhat, P. A., and N. C. Debnath. 2011. “Theoretical and experimental study of structures and properties of cement paste: The nanostructural aspects of C–S–H.” J. Phys. Chem. Solids 72 (8): 920–933. https://doi.org/10.1016/j.jpcs.2011.05.001.
Cai, X., Y. Wu, X. Guo, and Y. Ming. 2012. “Research review of the cement sand and gravel (CSG) dam.” Front. Struct. Civ. Eng. 6 (1): 19–24. https://doi.org/10.1007/s11709-012-0145-y.
Chen, J. T., F. Jin, and A. Al-Tabbaa. 2018. “Preliminary investigation on the development and performance of self-immune and self-healing soil–cement systems under freeze–thaw cycles.” In Proc., GeoShanghai 2018 Int. Conf.: Fundamentals of Soil Behaviours, edited by A. Zhou, J. Tao, X. Gu, and L. Hu, 84–91. Singapore: Springer.
Choobbasti, A. J., and S. S. Kutanaei. 2017. “Microstructure characteristics of cement-stabilized sandy soil using nanosilica.” J. Rock Mech. Geotech. Eng. 9 (5): 981–988. https://doi.org/10.1016/j.jrmge.2017.03.015.
Choudhary, R., R. Gupta, and R. Nagar. 2020. “Impact on fresh, mechanical, and microstructural properties of high strength self-compacting concrete by marble cutting slurry waste, fly ash, and silica fume.” Constr. Build. Mater. 239: 117888. https://doi.org/10.1016/j.conbuildmat.2019.117888.
Cizer, Ö, K. Van Balen, J. Elsen, and D. Van Gemert. 2012. “Real-time investigation of reaction rate and mineral phase modifications of lime carbonation.” Constr. Build. Mater. 35: 741–751. https://doi.org/10.1016/j.conbuildmat.2012.04.036.
Dadfarin, A., Y. Shams Maleki, and M. Esna-Ashari. 2023. “The effects of freeze–thaw cycles on the UCS of the CTS specimens reinforced with DTY fibers.” Constr. Build. Mater. 393: 132055. https://doi.org/10.1016/j.conbuildmat.2023.132055.
Delgado, A. H., R. M. Paroli, and J. J. Beaudoin. 1996. “Comparison of IR techniques for the characterization of construction cement minerals and hydrated products.” Appl. Spectrosc. 50 (8): 970–976. https://doi.org/10.1366/0003702963905312.
Ding, L.-q., S. K. Vanapalli, W.-l. Zou, Z. Han, and X.-q. Wang. 2021. “Freeze–thaw and wetting–drying effects on the hydromechanical behavior of a stabilized expansive soil.” Constr. Build. Mater. 275: 122162. https://doi.org/10.1016/j.conbuildmat.2020.122162.
Ding, M., F. Zhang, X. Ling, and B. Lin. 2018. “Effects of freeze–thaw cycles on mechanical properties of polypropylene Fiber and cement stabilized clay.” Cold Reg. Sci. Technol. 154: 155–165. https://doi.org/10.1016/j.coldregions.2018.07.004.
Franus, W., R. Panek, and M. Wdowin. 2015. “SEM investigation of microstructures in hydration products of Portland cement.” In Proc., 2nd Int. Multidisciplinary Microscopy and Microanalysis Congress, edited by E. K. Polychroniadis, A. Y. Oral, and M. Ozer, 105–112. Cham, Switzerland: Springer.
Galan, I., F. P. Glasser, D. Baza, and C. Andrade. 2015. “Assessment of the protective effect of carbonation on portlandite crystals.” Cem. Concr. Res. 74: 68–77. https://doi.org/10.1016/j.cemconres.2015.04.001.
Gao, C., G. Du, Q. Guo, and Z. Zhuang. 2020. “Static and dynamic behaviors of basalt fiber reinforced cement–soil after freeze–thaw cycle.” KSCE J. Civ. Eng. 24 (12): 3573–3583. https://doi.org/10.1007/s12205-020-2266-5.
García Lodeiro, I., D. E. Macphee, A. Palomo, and A. Fernández-Jiménez. 2009. “Effect of alkalis on fresh C–S–H gels. FTIR analysis.” Cem. Concr. Res. 39 (3): 147–153. https://doi.org/10.1016/j.cemconres.2009.01.003.
Guillemot, T., and M. Lino. 2012. “Design and construction advantages of hardfill symmetrical dams-case study: SafSaf Dam in Eastern Algeria.” Zaragoza 23: 25.
Guo, J., T. Guo, S. Zhang, and Y. Lu. 2020. “Experimental study on freezing and thawing cycles of shrinkage-compensating concrete with double expansive agents.” Materials 13 (8): 1850. https://doi.org/10.3390/ma13081850.
Hadi Sahlabadi, S., M. Bayat, M. Mousivand, and M. Saadat. 2021. “Freeze–thaw durability of cement-stabilized soil reinforced with polypropylene/basalt fibers.” J. Mater. Civ. Eng. 33 (9): 04021232. https://doi.org/10.1061/(ASCE)MT.1943-5533.0003905.
Horgnies, M., J. J. Chen, and C. Bouillon. 2013. “Overview about the use of Fourier transform infrared spectroscopy to study cementitious materials.” WIT Trans. Eng. Sci. 77: 251–262. https://doi.org/10.2495/MC130221.
Ishikawa, T., T. Lin, S. Kawabata, S. Kameyama, and T. Tokoro. 2019. “Effect evaluation of freeze–thaw on resilient modulus of unsaturated granular base course material in pavement.” Transp. Geotech. 21: 100284. https://doi.org/10.1016/j.trgeo.2019.100284.
Jamshidi, R. J., and C. B. Lake. 2015. “Hydraulic and strength properties of unexposed and freeze–thaw exposed cement-stabilized soils.” Can. Geotech. J. 52 (3): 283–294. https://doi.org/10.1139/cgj-2014-0100.
Jamshidi, R. J., C. B. Lake, and C. L. Barnes. 2015. “Examining freeze/thaw cycling and its impact on the hydraulic performance of cement-treated silty sand.” J. Cold Reg. Eng. 29 (3): 04014014. https://doi.org/10.1061/(ASCE)CR.1943-5495.0000081.
Jamshidi, R. J., C. B. Lake, P. Gunning, and C. D. Hills. 2016. “The effect of freeze/thaw cycles on the performance and microstructure of cement-treated soils.” J. Mater. Civ. Eng. 28 (12): 04016162. https://doi.org/10.1061/(ASCE)MT.1943-5533.0001677.
Jamshidvand, S., A. Ardakani, and A. Kordnaeij. 2022. “Effect of cement and zeolite on silty sand samples under freeze–thaw cycles.” Road Mater. Pavement Des. 23: 1836–1859. https://doi.org/10.1080/14680629.2021.1924238.
Jena, S., and R. Panigrahi. 2019. “Performance assessment of geopolymer concrete with partial replacement of ferrochrome slag as coarse aggregate.” Constr. Build. Mater. 220: 525–537. https://doi.org/10.1016/j.conbuildmat.2019.06.045.
Jia, J., M. Lino, F. Jin, and C. Zheng. 2016. “The cemented material dam: A new, environmentally friendly type of dam.” Engineering 2 (4): 490–497. https://doi.org/10.1016/J.ENG.2016.04.003.
Karimi, S., and H. F. Aghajani. 2023a. “A new solution for water-tightening of the cemented sand–gravel (CSG) hardfill dams.” Innovative Infrastruct. Solutions 8 (6): 173. https://doi.org/10.1007/s41062-023-01137-2.
Karimi, S., and H. F. Aghajani. 2023b. “The strength and microstructure of cemented sand–gravel (CSG) mixture containing fine-grained particles.” Int. J. Geo-Eng. 14 (1): 5. https://doi.org/10.1186/s40703-023-00182-1.
Kou, H.-l., J.-h. Liu, W. Guo, S.-d. Hua, and Y.-t. Pan. 2021. “Effect of freeze–thaw cycles on strength and ductility and microstructure of cement-treated silt with polypropylene fiber.” Acta Geotech. 16 (11): 3555–3572. https://doi.org/10.1007/s11440-021-01325-3.
Li, J., F. Wang, F. Yi, F. Wu, J. Liu, and Z. Lin. 2019. “Effect of freeze–thaw cycles on triaxial strength property damage to Cement Improved Aeolian Sand (CIAS).” Materials 12 (17): 2801. https://doi.org/10.3390/ma12172801.
Li, L., W. Shao, Y. Li, and B. Cetin. 2015. “Effects of climatic factors on mechanical properties of cement and fiber reinforced clays.” Geotech. Geol. Eng. 33 (3): 537–548. https://doi.org/10.1007/s10706-014-9838-4.
Lin, R.-S., X.-Y. Wang, H.-S. Lee, and H.-K. Cho. 2019. “Hydration and microstructure of cement pastes with calcined Hwangtoh clay.” Materials 12 (3): 458. https://doi.org/10.3390/ma12030458.
Liu, C., C. Berard, and L. Deng. 2023. “Engineering behavior of cement-treated stiff clay subjected to freezing/thawing cycles.” Cold Reg. Sci. Technol. 206: 103743. https://doi.org/10.1016/j.coldregions.2022.103743.
Liu, H., M. Hua, P. Zhu, C. Chen, X. Wang, Z. Qian, and Y. Dong. 2021. “Effect of freeze–thaw cycles on carbonation behavior of three generations of repeatedly recycled aggregate concrete.” Appl. Sci. 11 (6): 2643. https://doi.org/10.3390/app11062643.
Liu, H.-b., S. Sun, H.-b. Wei, and W.-j. Li. 2022. “Effect of freeze–thaw cycles on static properties of cement stabilised subgrade silty soil.” Int. J. Pavement Eng. 23: 3770–3782. https://doi.org/10.1080/10298436.2021.1919306.
Londe, P., and M. Lino. 1992. “The faced symmetrical hardfill dam: A new concept for RCC.” Int. Water Power Dam Constr. 44 (2): 19–24.
Lu, J., L. Tan, H. Yang, X. Wan, Y. Wang, and Z. Yan. 2023. “Experimental study on the hydro-thermal-deformation characteristics of cement-stabilized soil exposed to freeze–thaw cycles.” Front. Earth Sci. 10: 1041249. https://doi.org/10.3389/feart.2022.1041249.
Lu, Y., S. Liu, Y. Zhang, Z. Li, and L. Xu. 2020. “Freeze–thaw performance of a cement-treated expansive soil.” Cold Reg. Sci. Technol. 170: 102926. https://doi.org/10.1016/j.coldregions.2019.102926.
Makusa, G., J. Mácsik, G. Holm, and S. Knutsson. 2016. “Laboratory test study on the effect of freeze–thaw cycles on strength and hydraulic conductivity of high water content stabilized dredged sediments.” Can. Geotech. J. 53 (6): 1038–1045. https://doi.org/10.1139/cgj-2015-0295.
McConnell, D., R. C. Melenz, W. Y. Holland, and K. T. Greene. 1947. “Cement-aggregate reaction in concrete.” J. Proc. 10: 93–128.
Mehta, A., and D. K. Ashish. 2020. “Silica fume and waste glass in cement concrete production: A review.” J. Build. Eng. 29: 100888. https://doi.org/10.1016/j.jobe.2019.100888.
Moon, D. H., D. G. Grubb, and T. L. Reilly. 2009. “Stabilization/solidification of selenium-impacted soils using Portland cement and cement kiln dust.” J. Hazard. Mater. 168 (2–3): 944–951. https://doi.org/10.1016/j.jhazmat.2009.02.125.
Moorehead, D. R. 1986. “Cementation by the carbonation of hydrated lime.” Cem. Concr. Res. 16 (5): 700–708. https://doi.org/10.1016/0008-8846(86)90044-X.
Müller, A., C. Fuhr, and D. Knöfel. 1995. “Frost resistance of cement mortars with different lime contents.” Cem. Concr. Res. 25 (4): 809–818. https://doi.org/10.1016/0008-8846(95)00071-J.
Palacios, M., and F. Puertas. 2006. “Effect of carbonation on alkali-activated slag paste.” J. Am. Ceram. Soc. 89 (10): 3211–3221. https://doi.org/10.1111/j.1551-2916.2006.01214.x.
Pardini, G., G. V. Guidi, R. Pini, D. Regüés, and F. Gallart. 1996. “Structure and porosity of smectitic mudrocks as affected by experimental wetting–drying cycles and freezing–thawing cycles.” CATENA 27 (3–4): 149–165. https://doi.org/10.1016/0341-8162(96)00024-0.
Prasad, S. S. G., and P. V. V. Satyanarayana. 2023. “Development of self-healing soil–cement systems subjected to freeze–thaw cycles.” Mater. Today:. Proc. https://doi.org/10.1016/j.matpr.2023.04.657.
Preetham, H. K., and S. Nayak. 2019. “Geotechnical investigations on marine clay stabilized using granulated blast furnace slag and cement.” Int. J. Geosynth. Ground Eng. 5 (4): 28. https://doi.org/10.1007/s40891-019-0179-5.
Qiao, C., X. Chen, P. Suraneni, W. J. Weiss, and D. Rothstein. 2021. “Petrographic analysis of in-service cementitious mortar subject to freeze–thaw cycles and deicers.” Cem. Concr. Compos. 122: 104112. https://doi.org/10.1016/j.cemconcomp.2021.104112.
Rahman, M. T., and R. Tarefder. 2015. “Freeze–thaw durability of lime stabilized clayey subgrade soils.” In Proc., 14th Int. Conf. of International Association for Computer Methods and Recent Advances in Geomechanics, 2014, 1173–1178. Boca Raton, FL: Taylor & Francis Books Ltd.
Rhardane, A., S. Al Haj Sleiman, S. Y. Alam, and F. Grondin. 2021. “A quantitative assessment of the parameters involved in the freeze–thaw damage of cement-based materials through numerical modelling.” Constr. Build. Mater. 272: 121838. https://doi.org/10.1016/j.conbuildmat.2020.121838.
Rothhämel, M., and J. Laue. 2020. “Influence of cold curing temperature and freeze–thaw on the UCS of stabilised silty sand.” Proc. Inst. Civ. Eng. Ground Improv. 174 (4): 232–239. https://doi.org/10.1680/jgrim.18.00121.
Roustaei, M., A. Eslami, and M. Ghazavi. 2015. “Effects of freeze–thaw cycles on a fiber reinforced fine grained soil in relation to geotechnical parameters.” Cold Reg. Sci. Technol. 120: 127–137. https://doi.org/10.1016/j.coldregions.2015.09.011.
Sagidullina, N., S. Abdialim, J. Kim, A. Satyanaga, and S.-W. Moon. 2022. “Influence of freeze–thaw cycles on physical and mechanical properties of cement-treated silty sand.” Sustainability 14 (12): 7000. https://doi.org/10.3390/su14127000.
Salehi, M., M. Bayat, M. Saadat, and M. Nasri. 2021. “Experimental study on mechanical properties of cement-stabilized soil blended with crushed stone waste.” KSCE J. Civ. Eng. 25 (6): 1974–1984. https://doi.org/10.1007/s12205-021-0953-5.
Scrivener, K., R. Snellings, and B. Lothenbach. 2018. A practical guide to microstructural analysis of cementitious materials. Boca Raton, FL: CRC Press.
ShahriarKian, M., S. Kabiri, and M. Bayat. 2021. “Utilization of zeolite to improve the behavior of cement-stabilized soil.” Int. J. Geosynth. Ground Eng. 7 (2): 35. https://doi.org/10.1007/s40891-021-00284-9.
Shibi, T., and T. Kamei. 2014. “Effect of freeze–thaw cycles on the strength and physical properties of cement-stabilised soil containing recycled bassanite and coal ash.” Cold Reg. Sci. Technol. 106–107: 36–45. https://doi.org/10.1016/j.coldregions.2014.06.005.
Shihata, S. A., and Z. A. Baghdadi. 2001. “Simplified method to assess freeze–thaw durability of soil cement.” J. Mater. Civ. Eng. 13 (4): 243–247. https://doi.org/10.1061/(ASCE)0899-1561(2001)13:4(243).
Solanki, P., M. Zaman, and R. Khalife. 2013. “Effect of freeze–thaw cycles on performance of stabilized subgrade.” In Proc., Sound Geotechnical Research to Practice Honoring, Geotechnical Special Publication 230, edited by R. D. Holtz II, 566–580. Reston, VA: ASCE.
Stark, J. 1995. “The influence of the type of cement on the freeze–thaw/freeze-deicing salt resistance of concrete.” In Vol. 1 of Proc., Int. Conf. Under Severe Condition, 245–254. London: National Computer Security Center (NCSC).
Stark, J., and K. Bollmann. 2000. “Delayed ettringite formation in concrete.” Nordic Concr. Res. 23: 4–28.
Stark, J., A. Eckart, and H. Ludwig. 1997. “Influence of C3A content on frost and scaling resistance.” In Proc., Int. RILEM Workshop on Resistance of Concrete to Freezing and Thawing With or Without De-icing Chemicals, Frost Resistance of Concrete, edited by M. J. Setzer and R. Auberg, 107–118. Westphalia, Germany: University of Essen.
Stark, J., and B. Wicht. 2013. “Frost-und Frost-Tausalz-Widerstand von Beton.” In Dauerhaftigkeit von Beton, 399–471. Berlin, Germany: Springer.
Steiner, S., B. Lothenbach, T. Proske, A. Borgschulte, and F. Winnefeld. 2020. “Effect of relative humidity on the carbonation rate of portlandite, calcium silicate hydrates and ettringite.” Cem. Concr. Res. 135: 106116. https://doi.org/10.1016/j.cemconres.2020.106116.
Tamut, Y., A. Kalita, and S. K. Singh. 2022. “A study on strength behaviour of seasonal frozen soils stabilized with cement and wood ash.” In Sustainable construction materials, edited by K. S. Satyanarayanan, H.-J. Seo, and N. Gopalakrishnan, 93–105. Singapore: Springer.
Tao, Z., Y. Zhang, X. Chen, and X. Gu. 2022. “Effects of freeze–thaw cycles on the mechanical properties of cement-fiber composite treated silty clay.” Constr. Build. Mater. 316: 125867. https://doi.org/10.1016/j.conbuildmat.2021.125867.
Tebaldi, G., M. Orazi, and U. S. Orazi. 2016. “Effect of freeze–thaw cycles on mechanical behavior of lime-stabilized soil.” J. Mater. Civ. Eng. 28 (6): 06016002. https://doi.org/10.1061/(ASCE)MT.1943-5533.0001509.
Theivakularatnam, M., and C. T. Gnanendran. 2015. “Durability of lightly stabilised granular material subjected to freeze–thaw and wet–dry cycles.” In Proc., Int. Foundations Congress and Equipment Expo, 1410–1419. Reston, VA: ASCE.
Thompson, M. R., and B. J. Dempsey. 1970. Quantitative characterization of cyclic freezing and thawing in stabilized pavement materials. Highway Research Record 304. Highway Research Board, 38–44. Urbana, IL: University of Illinois.
Trofimov, B. Y., L. Y. Kramar, and K. V. Schuldyakov. 2017. “On deterioration mechanism of concrete exposed to freeze–thaw cycles.” IOP Conf. Ser.: Mater. Sci. Eng. 262: 012019. https://doi.org/10.1088/1757-899X/262/1/012019.
Witkowski, H., and M. Koniorczyk. 2018. “New sampling method to improve the reliability of FTIR analysis for self-compacting concrete.” Constr. Build. Mater. 172: 196–203. https://doi.org/10.1016/j.conbuildmat.2018.03.216.
Wu, Y., X. Qiao, X. Yu, J. Yu, and Y. Deng. 2021. “Study on properties of expansive soil improved by steel slag powder and cement under freeze–thaw cycles.” KSCE J. Civ. Eng. 25 (2): 417–428. https://doi.org/10.1007/s12205-020-0341-6.
Ylmén, R., U. Jäglid, B.-M. Steenari, and I. Panas. 2009. “Early hydration and setting of Portland cement monitored by IR, SEM and Vicat techniques.” Cem. Concr. Res. 39 (5): 433–439. https://doi.org/10.1016/j.cemconres.2009.01.017.
Yokotsuka, T. 2000. “Application of CSG method to construction of gravity dam.” In Vol. 4 of Proc., 20th Int. Commission on Large Dams. Paris, France: International Commission on Large Dams (ICOLD).
Zhang, Y.-R., X.-M. Kong, Z.-B. Lu, Z.-C. Lu, and S.-S. Hou. 2015. “Effects of the charge characteristics of polycarboxylate superplasticizers on the adsorption and the retardation in cement pastes.” Cem. Concr. Res. 67: 184–196. https://doi.org/10.1016/j.cemconres.2014.10.004.

Information & Authors

Information

Published In

Go to Journal of Cold Regions Engineering
Journal of Cold Regions Engineering
Volume 38Issue 2June 2024

History

Received: Feb 17, 2023
Accepted: Oct 20, 2023
Published online: Mar 25, 2024
Published in print: Jun 1, 2024
Discussion open until: Aug 25, 2024

Permissions

Request permissions for this article.

Authors

Affiliations

Vahid Estekanchi
M.Sc. Student, Dept. of Civil Engineering, Faculty of Engineering, Azarbaijan Shahid Madani Univ., Tabriz 5375171379, Iran.
Assistant Professor, Dept. of Civil Engineering, Faculty of Engineering, Azarbaijan Shahid Madani Univ., Kilometer 35 of Tabriz/Azarshahr Rd., P.O. Box 53714-161, Tabriz 5375171379, Iran (corresponding author). ORCID: https://orcid.org/0000-0003-2559-7520. Email: [email protected]

Metrics & Citations

Metrics

Citations

Download citation

If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download.

View Options

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Media

Figures

Other

Tables

Share

Share

Copy the content Link

Share with email

Email a colleague

Share