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Chloride Ion Diffusion Resistance of Bulk Hydrophobic Concrete: Comparison of w/c and Dosages


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Verbeck,G J & Helmuth R A : “Structures and physical properties of cement pastes”. Proceedings, 5th International Symposium on the Chemistry of Cement, Tokyo, 1968, pp. 1-32. Search in Google Scholar

Mehta P & Manmohan D: “Influence of Pozzolanic, Slag and Chemical Admixtures on Pore Size Distribution and Permeability of Hardened Cement Pastes”. Cement, Concrete and Aggregates, No. 3 (1), 1981, pp. 63-67. https://doi.org/10.1520/CCA10203J Search in Google Scholar

Nyame B K & Illston J M:”Relationships between permeability and pore structure of hardened cement paste”. Magazine of Concrete Research. No. 33 (116), 1981, pp. 139-146. Search in Google Scholar

Rehm G, Diem P, Zimbelmann R, & Otto-Graf-Institut, A. F.-u. M. f. d. B: “Technische Möglichkeiten zur Erhöhung der Zugfestigkeit von Beton”. Ernst, Berlin, 1977. (In German). http://slubdd.de/katalog?TN_libero_mab213716485 Search in Google Scholar

Fagerlund G: “Struktur och strukturutveckling. Betong som kompositmaterial”. (“Structure and Structure Development. Concrete as a Composite Material”). Betonghandboken-Material (editted by Ljungkrantz C, Möller, G & Petersons N), AB Svensk Byggtjänst, Stockholm, Sweden 1994, pp. 273-305. (In Swedish). Search in Google Scholar

Basheer L, Kropp J, & Cleland D J:”Assessment of the durability of concrete from its permeation properties: a review”. Construction and Building Materials, No. 15 (2), 2001, pp. 93-103. https://doi.org/https://doi.org/10.1016/S0950-0618(00)00058-1 Search in Google Scholar

Mehta P K & Monteiro P J M:”Microstructure of Concrete”. Chapter 2, Concrete: Microstructure, Properties, and Materials (4th ed). McGraw-Hill Education, New York, USA,2014. https://www.accessengineeringlibrary.com/content/book/9780071797870/chapter/chapter2 Search in Google Scholar

Boumaaza M, Huet B, Pham G, Turcry P, Aït-Mokhtar A, & Gehlen C: “A new test method to determine the gaseous oxygen diffusion coefficient of cement pastes as a function of hydration duration, microstructure, and relative humidity”. Materials and structures, No. 51 (2), 2018, pp. 1-17. https://doi.org/10.1617/s11527-018-1178-z Search in Google Scholar

Ohama Y, Demura K, Kobayashi K, Satoh Y, & Morikawa M: “Pore size distribution and oxygen diffusion resistance of polymer-modified mortars”. Cement and Concrete Research, No. 21 (2), 1991, pp. 309-315. https://doi.org/https://doi.org/10.1016/0008-8846(91)90012-7 Search in Google Scholar

Luping T, Nilsson L-O, & Basheer, P A M: “Resistance of Concrete to Chloride Ingress; Testing and Modelling”. CRC Press Spon Press, 2012. Search in Google Scholar

Glasser F P: “Role of Chemical Binding in Diffusion and mass transport”. “Materials Science of Concrete: Ion and Mass Transport in Cement-Based Materials” (editted by R D Hooten, M D A Thomas, J Marchand, J J Beaudoin). The American Ceramic Society, Westerville Ohio, USA, 2001, pp. 129-154. Search in Google Scholar

Fessenden R J, Fessenden J S & Marshall W L: “Organic chemistry” (6th ed.) Brooks/Cole Publishing, Pacific Grove, USA, 1998. Search in Google Scholar

Edwards Y: “Samhällsekonomisk nytta av impregnering av betongytor” (“Socioeconomic benefit of hydrophobic treatment of concrete surfaces”). TRV 2013/23092, Stockholm, Sweden, 2014. (In Swedish). Search in Google Scholar

Selander A:.”Hydrophobic Impregnation of Concrete Structures-Effects on Concrete”. Bulletin No. 104 (PhD Thesis), KTH Royal Institute of Technology, Dept. of Civil and Architechtural Enginnering Stockholm, Sweden, 2010, 45 pp. Search in Google Scholar

Justnes H, Østnor T A & Barnils Vila N: “Vegetable Oils as Water Repellents for Mortars”. Proceedings, 1st International Conference of Asian Concrete Federation Chiang Mai, Thailand, October 2004. Search in Google Scholar

Vikan H & Justnes H: “Influence of vegetable Oils on Durability and Pore Structure of Mortars”. Proceedings, 7th CANMET/ACI International Conferance on Durability of Concrete,, Montreal, Canada, May 2006, pp. 417-430. Search in Google Scholar

Rogers P, Silfwerbrand J, Selander A, Gram A.:”Bulk Hydrophobic Structural Concrete for use in Nordic conditions- Initial Study”. Proceedings, Hydrophobe VIII, Hong Kong Polytechnic University, Kowloon, Hong Kong, December 2017, pp. 282-289. Search in Google Scholar

SIS: “SS-EN 12390-2:2009. Testing hardened concrete - Part 2: Making & curing specimens for strength”. Stockholm Sweden, 2009, 20 pp. Search in Google Scholar

SIS: “SS-EN 12350-2:2009. Testing Fresh Concrete - Part 2: Slump test”. Stockholm Sweden, 2009, 20 pp. Search in Google Scholar

SIS: “SS-EN 12390-3:2009. Testing hardeded concrete - Part 3: compressive strength of test specimens”,, Stockholm, Sweden, 2009, 28 pp. Search in Google Scholar

Rogers P: “Hydrophobe Concrete (working title)”. Experimental Work (unpublished). RISE, Stockholm, 2022. Search in Google Scholar

SIS: “SS-EN 12390-11:2015. In Testing hardened concrete - Part 11: Determination of the chloride resistance of concrete unidirectional diffusion”, Stockholm, Sweden, 2015, 44 pp. Search in Google Scholar

Swedish Cement & Concrete Research Institute: “CBI Metod Nr 5:2018. Total klorid i hårdnad betong”. (CBI Method No. 5:2018. Total chloride content in hardened concrete”). Stockholm, Sweden, 2018. (In Swedish) Search in Google Scholar

Luping T :”Curve Fitting for Apparent Cs and Da. Excel® macro (Version 2003-11-16) Search in Google Scholar

SIS: “SS-EN 206:2013 + A2:2021. Concrete - Specifications, performance, production and conformity”. Stockholm, Sweden, 2021, 25 pp. Search in Google Scholar

Bockish M: “Chapter 2 - Composition, Structure, Physical Data, and Chemical Reactions of Fats and Oils, Their Derivatives, and Their Associates”. Fats and Oils Handbook. AOCS Press, Urbana Indinana USA, 1998, pp. 53-120. Search in Google Scholar

Cheng L-H, Cheng, Y-F, Yen S-Y, & Chen J: “Ultrafiltration of triglyceride from biodiesel using the phase diagram of oil–FAME–MeOH”. Journal of membrane science, No. 330 (1), 2009, pp. 156-165 https://doi.org/10.1016/j.memsci.2008.12.057 Search in Google Scholar

K S Markley (Ed.):”Fatty acids; their chemistry, properties, production, and uses (2nd ed., Vol. 1). Interscience Publishers Inc, New York, USA, 1960, 714 pp Search in Google Scholar

Schatzberg P: “Molecular diameter of water from solubility and diffusion measurements”. The Journal of Physical Chemistry, No. 71 (13), 1967, pp. 4569-4570. https://doi.org/10.1021/j100872a075 Search in Google Scholar

Fagerlund G: “Struktur och strukturutveckling. Cementgelens struktur”. (“Structure and Structure Development. The Structure of the Cement Gel”). Betonghandboken Material (editted by C Ljungkrantz, G Möller, & N Petersons). AB Svensk Byggtjänst, Stockholm, Sweden 1994, pp. 278-279. (In Swedish). Search in Google Scholar

Taylor H F W: Cement Chemistry. Academic Press Limited, 1990. Search in Google Scholar

Aparicio R & Harwood J: “Handbook of Olive Oil: Analysis and Properties”. New York, USA, 2013. Springer, 772 pp. https://doi.org/10.1007/978-1-4614-7777-8 Search in Google Scholar

Lascaray L :”Die teoreretischen Grundlagen der Seifen Herstellung”. Chemie und Technologie der Fette und Fettprodukte (editted by H. Schönfeld ),). Springer-Verlag Wien GmbH. Vol. III, 1939, pp. 674. (In German). https://doi.org/10.1007/978-3-7091-5418-2. Search in Google Scholar

Helsing E, Parg L, Müller U, & Ellison T: “Hydrofoberande medel i sprutbetong-Inverkan på egenskaper och beetendet vid sprutning”. (“Hydrophobic substances in sprayed concrete – Effects on performance and behaviour under spraying”). CBI Report 2017:5, Swedish Cement & Concrete Research Institute, Stockholm, Sweden. (In Swedish). Search in Google Scholar

Machner A, Bjørndal M, Šajna A, Mikanovic N, & De Weerdt K: “Impact of leaching on chloride ingress profiles in concrete”. Materials and Structures, No. 8 (55), 2021. https://doi.org/10.1617/s11527-021-01730-w Search in Google Scholar

De Weerdt K, Lothenbach B, & Geiker M R:”Comparing chloride ingress from seawater and NaCl solution in Portland cement mortar. Cement and Concrete Research, Volume 115, p 80-89, 2019 https://doi.org/10.1016/j.cemconres.2018.09.014 Search in Google Scholar

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