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http://dx.doi.org/10.12989/gae.2022.29.3.237

Effect of curing temperature on the properties of ground granulated blast furnace slag-cement bentonite slurry  

Kim, Taeyeon (Department of Civil Engineering, Korea National University of Transportation)
Lee, Bongjik (Department of Civil Engineering, Korea National University of Transportation)
Hong, Seongwon (Department of Safety Engineering, Korea National University of Transportation)
Publication Information
Geomechanics and Engineering / v.29, no.3, 2022 , pp. 237-247 More about this Journal
Abstract
To investigate the curing temperature effect on the engineering properties of ground granulated blast furnace slag-cement bentonite (GGBS-CB) slurry for cutoff walls, the laboratory experiments including the setting time, unconfined compressive strength, and permeability tests were carried out. The mixing procedure for GGBS-CB slurry was as follows: (1) montmorillonite-based bentonite slurry was first fabricated and hydrated for four hours, and (2) cement or GGBS with cement was added to the bentonite slurry. The dosage range of GGBS was from 0 to 90 % of cement by mass fraction. The GGBS-CB slurry specimens were cured and stored in environmental chamber at temperature of 14±1, 21±1, 28±1℃ and humidity of 95±2% until target days. The highest average temperature of three seasons in South Korea was selected and used for the tests. The experimental results indicated that in early age (less than 28 days) of curing the engineering properties of GGBS-CB slurry were primarily affected by the curing temperature, whereas the replacement ratio of GGBS became a main factor to determine the properties of the slurry as the curing time increased.
Keywords
curing temperature; cutoff walls; ground granulated blast furnace slag; permeability; slag-cement bentonite; strength;
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Times Cited By KSCI : 6  (Citation Analysis)
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1 Huang, X., Li, J., Guo, M., Xue, Q., Du, Y., Wan, Y., Liu, L. and Poon, C.S. (2021), "Using MgO activated slag and calcium bentonite slurry to produce a novel vertical barrier material: Performances and mechanisms", J. Constr. Build. Mater., 291(12), 1-15. https://doi.org/10.1016/j.conbuildmat.2021.123365.   DOI
2 Jefferis, S.A. (1997), "The origins of the slurry trench cut-off and a review of cement-bentonite cut-off walls in the UK", International containment technology conference and exhibition, 52~61. United States. https://www.osti.gov/servlets/purl/576479.
3 Reclamation Design Standards (2014), "Design Standards No. 13: Embankment Dams," Chapter 16 Cutoff walls, U.S. Department of Interior, Bureau of Reclamation, Technical Service Center, Denver, CO.
4 Kim, G.R., Kim, I.C., Yun, T.S. and Lee, J.H. (2021), "Effects of freezing and thawing on retaining wall with changes in groundwater level", Geomech. Eng., 24(6), 531-543. https://doi.org/10.12989/gae.2021.24.6.531.   DOI
5 Kolstad, D.C., Benson, C.H. and Edil, T.B. (2004), "Hydraulic conductivity and swell of nonprehydrated geosynthetic clay liners permeated with multispecies inorganic solutions", J. Geotech. Geoenviron. Eng., 130(12), 1236-1249. https://doi.org/10.1061/(ASCE)1090-0241(2004)130:12(1236).   DOI
6 KS F 2314(2018), Standard test methods for unconfined compression test of soils, Korean Agency for Technology and Standards; Maengdong-myeon, Korea.
7 Bennert, T.A., Maher, A. and Jafari, F. (2005), "Piezocone evaluation of a shallow soil-bentonite slurry wall", Proceedings of the Geo-Frontiers Congress 2005, Austin, Texas, United States, January. https://doi.org/10.1061/40789(168)43.   DOI
8 Caron, C. (1972), "Perennite des systemes argile-ciment ou bentonite-ciement dans leur divers types d'applications", Construct., 27(10). Paris, 291-296.
9 Guner, A. (1979), "Properties and behaviour of bentonite-cement slurries", Ph.D. Dissertation, University of London, London.
10 ICE (1999), "Specification for the construction of slurry trench cut-off walls: As barriers to pollution migration", CIRIA Report Institution of Civil Engineers, Thomas Telford, London.
11 Kim, Y.S. and Moon, J.S. (2020), "Change of groundwater inflow by cutoff grouting thickness and permeability coefficient", Geomech. Eng., 21(2), 165-170. https://doi.org/10.12989/gae.2020.21.2.165.   DOI
12 KS F 2103(2018), Standard test methods for pH of soils, Korean Agency for Technology and Standards; Maengdong-myeon, Korea.
13 Snoeck, D., Jensen, O.M. and De Belie, N. (2015), "The influence of superabsorbent polymers on the autogenous shrinkage properties of cement pastes with supplementary cementitious materials", Cement Concrete Res., 74, 59-67. https://doi.org/10.1016/j.cemconres.2015.03.020.   DOI
14 Sarvaiya, J., Agrawal K.Y. and Bakre L. (2017), "Montmorillonite nanoclay as a multifaceted drug-delivery carrier: A review", J. Drug Delivery Sci. Tech., 39, 200-209. https://doi.org/10.1016/j.jddst.2017.03.023.   DOI
15 Scalia, J., Benson, C.H., Bohnhoff, G.L., Edil, T.B. and Shackelford, C.D. (2014), "Long-term hydraulic conductivity of a bentonite-polymer composite permeated with aggressive inorganic solutions", J. Geotech. Geoenviron. Eng., 140(3). https://doi.org/10.1061/(ASCE)GT.1943-5606.0001040.   DOI
16 Sharma, H. (2004), Geoenvironmental Engineering: Site Remediation, Waste Containment and Emerging Waste Management Technologies, John willey & Sons, Inc., New Jersey, U.S.
17 Teltayev, B.B. and Suppes, E.A (2017), "Regularities for temperature variation in subgrade of highway", Geomech. Eng., 13(5), 793-807. https://doi.org/10.12989/gae.2017.13.5.793.   DOI
18 Xanthakos, P.P. (1979), Slurry walls, McGraw Hill Punlishers, New York, U.S.
19 Yun, S.Y., An, H.K., Oh, M.A. and Lee, J.Y. (2019), "A study on the evaluation of permeability and structure for calcium bentonite-sand mixtures", J. Korean Geosynthetics Soc., 18(2), 1-10. https://doi.org/10.12814/jkgss.2019.18.2.001.   DOI
20 Zhang, D., Cai, X. and Hu, L. (2018), "Effect of curing temperature on hydration of calcium aluminate cement-calcium sulfate-limestone system", J. Mater. Civil Eng., 30(9). https://doi.org/10.1061/(ASCE)MT.1943-5533.0002444.   DOI
21 Joshi, K., Kechavarzi, C., Sutherland, K., Ng, M.Y.A., Soga, K. and Tedd, P. (2010), "Laboratory and in situ tests for long-term hydraulic conductivity of a cement-bentonite cutoff wall", J. Geotech. Geoenviron. Eng., 136(4), 562-572. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000248.   DOI
22 Jo, H.Y., Katsumi, T., Benson, C.H. and Edil, T.B. (2001), "Hydraulic conductivity and swelling of nonprehydrated GCLs permeated with single-species salt solutions", J. Geotech. Geoenviron. Eng., 217(7), 557-567. https://doi.org/10.1061/(ASCE)1090-241(2001)127:7(557).   DOI
23 Zhu, Q.Y., Jin, Y.F., Shang, X.Y. and Chen, T. (2019), "A 1D model considering the combined effect of strain-rate and temperature for soft soil", Geomech. Eng., 18(2), 133-140. https://doi.org/10.12989/gae.2019.18.2.133.   DOI
24 Zhang, R.J., Lu, Y.T., Tan, T.S., Phoon, K.K. and Santoso, A.M. (2014), "Long-term effect of curing temperature on the strength behavior of cement-stabilized clay", J. Geotech. Geoenviron. Eng., 140(8). https://doi.org/10.1061/(ASCE)GT.1943-5606.0001144.   DOI
25 KS K 0767(2021), Test method for chemical resistance of geogrids to liquids, Korean Agency for Technology and Standards; Maengdong-myeon, Korea.
26 KS L 4007(2016), Methods for chemical analysis of clay, Korean Agency for Technology and Standards; Maengdong-myeon, Korea.
27 KS L ISO 9597(2019), Determination of setting time and soundness of cements, Korean Agency for Technology and Standards; Maengdong-myeon, Korea.
28 Millet, R.A. and Perez, J.Y. (1981), "Current USA Practices: Slurry Wall Specifications", J. Geotech. Eng., 107(8), 1041-1056. https://doi.org/10.1061/AJGEB6.0001174.   DOI
29 Qian Xuede, Z.W., Shengwei, W. et al. (2017), "Design and construction of protective barriers for waste containments and contamined sites", Beijing, China Science Press.
30 Yiduo, W. (2017), "Laboratory and in situ tests for hydraulic conductivity of sand/silt bentonite cutoff walls", Ph.D. Dissertation, Zhejiang University, Hangzhou, China.
31 Kim, D.H. and Park, K.H. (2019), "Study on characteristics of grout material using ground granulated blast furnace slag and carbon fiber", Geomech. Eng., 19(4), 361-368. https://doi.org/10.12989/gae.2019.19.4.361.   DOI
32 Canizo, L. (1975), "Las pantallas impermeabilizantes de bentonite cemento", Boletin de informacion dels Laboratorio Transporte y Mechanica del Suelo, No.110, Madrid, July.
33 Royal, A.C.D., Opukumo, A.W., Qadr, C.S., Perkins, L.M. and Walenna, M.A. (2018), "Deformation and compression behaviour of a cement-bentonite slurry for groundwater control applications", Geotech. Geol. Eng., 36, 835-853. https://doi.org/10.1007/s10706-017-0359-9.   DOI
34 KS F 2322(2020), Standard test methods for permeability of saturated soils, Korean Agency for Technology and Standards; Maengdong-myeon, Korea.
35 KS L 5201(2021), Portland cement, Korean Agency for Technology and Standards; Maengdong-myeon, Korea.
36 Opdyke, S.M. and Evans, J.C. (2005), "Slag-cement-bentonite slurry walls", J. Geotech. Geoenviron. Eng., 131(6), 637-681. https://doi.org/10.1061/(ASCE)1090-0241(2005)131:6(673).   DOI
37 Ryan, C.R. and Spaulding, C.A. (2008), "Strength and permeability of a deep soil bentonite slurry wall", Proceedings of the Geotechnical Engineering Congress 2008, New Orleans, Louisiana, U.S., March, 644-651. https://doi.org/10.1061/40970(309)81.   DOI
38 Du, Y.J. and Fan, R.D. (2011), "Compressibility and permeability behavior of two types of amended soil-bentonite vertical cutoff wall backfills", Rock and Soil Mechanics, 49-54.
39 Card, G.B. (1981), "The properties and performance of bentonite-cement slurries for use as hydraulic cut-offs", Ph.D. Dissertation, University of London, London.
40 Caron, C. (1973), "Un nouveau style de perforation: la boue autodurcissable", Annales de I'Institut Technique du Batiment et des Travaux Publics, 26(311), Paris, 1-40.
41 Fernandez, F. and Quigley, R.M. (2011), "Hydraulic conductivity of natural clays permeated with simple liquid hydrocarbons", Can. Geotech. J., 22(2), 205-214. https://doi.org/10.1139/t85-028.   DOI
42 Fukushima, Y. (1984), "X-ray diffraction study of aqueous montmorillonite emulsions", Clays Clay Min., 32(4), 320-326. https://doi.org/10.1346/CCMN.1984.0320410.   DOI
43 Garvin, S.L. and Hayles, C.S. (1999), "The chemical compatibility of cement-bentonite cut-off wall material", Constr. Build. Mater., 13(6), 329-341. https://doi.org/10.1016/S0950-0618(99)00024-0.   DOI
44 Huang, X., Li, J., Xue, Q. Chen, Z., Du, Y., Wan, Y., Liu, L. and Poon, C.S. (2021), "Use of self-hardening slurry for trench cutoff wall: A review", J. Constr. Build. Mater., 286(7), 1-15. https://doi.org/10.1016/j.conbuildmat.2021.122959.   DOI