Accesso libero

Cryosuction Experiments on Concrete Containing Ground Granulated Blast-Furnace Slag: Influence of Temperature, Air Entrainment And Salt

INFORMAZIONI SU QUESTO ARTICOLO

Cita

Scrivener K: “Options for the future of cement”. The Indian Concrete Journal, 2014. Search in Google Scholar

Lothenbach B, Scrivener K & Hooton R D: “Supplementary cementitious materials”. Cement and Concrete Research, Vol. 41, No. 12, 2011, pp. 1244-1256. Search in Google Scholar

Suresh D & Nagaraju K: “Ground Granulated Blast Slag (GGBS) In Concrete - A Review”. Journal of Mechanical and Civil Engineering, Vol 12, 2015, pp. 76-82. Search in Google Scholar

Giergiczny Z, Glinicki M A, Sokolowski M & Zielinski M:” Air void system and frost-salt scaling of concrete containing slag-blended cement”. Construction and Building Materials, Vol. 23, No. 6, 2009, pp. 2451-2456. Search in Google Scholar

Strand M: “Experimental Study of De-icing Salt-frost Scaling in Concrete with Low-calcium Fly Ash or Slag: Influence of Drying and Carbonation, and Air Content”. PhD Thesis, TVBM-1038, Lund University, Division of Building Materials, Lund, Sweden, 2019. Search in Google Scholar

Liu Z & Hansen W: “A Hypothesis for Salt Frost Scaling in Cementitious Materials”. Journal of Advanced Concrete Technology, Vol. 13, No. 9, 2015, pp. 403-414. Search in Google Scholar

Gagné R, Houehanou E, Jolin M & Escaffit P: “Study of the relationship between scaling resistance and sorptivity of concrete”. Canadian Journal of Civil Engineering, Vol. 38, No. 11, 2011, pp. 1238-1248. Search in Google Scholar

Powers T C & Helmuth R A: “Theory of volume changes in hardened Portland cement paste during freezing”. Proceedings, Highway Research Board 32, PCA Bull 46, 1953. Search in Google Scholar

Lindmark S: “Mechanisms of salt frost scaling on portland cement-bound materials: studies and hypothesis”. PhD Thesis, TVBM-1017. Lund University, Division of Building Materials, Lund, Sweden, 1998. Search in Google Scholar

Utgenannt P: “The influence of ageing on the salt-frost resistance of concrete”. PhD Thesis, TVBM-1021, Lund University, Division of Building Materials, Lund, Sweden, 2004. Search in Google Scholar

Powers T C: “The Air requirement of frost-resistant concrete”. Proceedings, Twenty-Ninth Annual Meeting of the Highway Research Board, 1949. Search in Google Scholar

Fagerlund G: “Critical degrees of saturation at freezing of porous and brittle materials”. PhD Thesis, Lund University, Division of Building Materials, Lund, Sweden,1973. Search in Google Scholar

Fagerlund G: “The long time water absorption in the air-pore structure of concrete”. TVBM-3051, Lund University, Division of Building Materials, Lund, Sweden, 1993. Search in Google Scholar

Panesar D K & Chidiac S E: “Capillary suction model for characterizing salt scaling resistance of concrete containing GGBFS”. Cement and Concrete Composites, Vol. 31, No. 8, 2009, pp. 570-576. Search in Google Scholar

Marty N S & Ferraris C F: “Capillary Transport in Mortars and Concrete”. Cement and Concrete Research, Vol. 27, 1997, pp. 747-760. Search in Google Scholar

Washburn E W: “The Dynamics of Capillary Flow”. Physical Review, Vol. 17, No. 3, 1921, pp. 273-283. Search in Google Scholar

Setzer M: “Modeling and testing the freeze-thaw attack by micro ice lens model and CDF/CIF test”. Proceedings, International RILEM Symposium on Concrete Science and Engineering: A Tribute to Arnon Bentur, Editor(s): J. Weiss, K. Kovler, J. Marchand, and S. Mindess, 2004. Search in Google Scholar

Taber S: “The Mechanics of Frost Heaving”. The Journal of Geology, Vol. 38, No. 4, 1930, pp. 303-317. Search in Google Scholar

Rosenqvist M, Fridh K, & Hassanzadeh M: “Macroscopic ice lens growth in hardened concrete”. Cement and Concrete Research, Vol. 88, 2016, pp. 114-125. Search in Google Scholar

Liu Z & Hansen W: “Pumping effect to accelerate liquid uptake in concrete and its implications on salt frost durability”. Construction and Building Materials, Vol. 158, 2018, pp. 181-188. Search in Google Scholar

Eriksson D, Gasch T, Malm R & Ansell A: “Freezing of partially saturated air-entrained concrete: A multiphase description of the hygro-thermo-mechanical behaviour”. International Journal of Solids and Structures, Vol. 152-153, 2018, pp. 294-304. Search in Google Scholar

Coussy O: “Mechanics and physics of porous solids”. Wiley, 2010. Search in Google Scholar

Eriksson D. Wahlbom D, Malm R & Fridh K: “Hygro-thermo-mechanical modeling of partially saturated air-entrained concrete containing dissolved salt and exposed to freeze-thaw cycles”. Cement and Concrete Research, Vol 141, 2021. Search in Google Scholar

EN 12350-7: “Testing fresh concrete - Part 7: Air content - Pressure methods”. 2019. Search in Google Scholar

EN 12350-2: “Testing fresh concrete - Part 2. Slump test”. 2019. Search in Google Scholar

Gagné R: “Air entraining agents”. Science and Technology of Concrete Admixtures, Editors: Aïtcin P C & Flatt R J. Woodhead Publishing, 2016, pp. 379-391. Search in Google Scholar

Liu Z & Hansen W: “Sorptivity as a measure of salt frost scaling resistance of air- entrained concrete”. Vol. 629-630. Proceedings, 10th International Symposium on Innovation & Utilization of High Performance Concrete, 2014. Search in Google Scholar

Sandström T: “Durability of concrete hydropower structures when repaired with concrete overlays”. Licentiate thesis, Luleå University of Technology, Luleå, Sweden, 2010. Search in Google Scholar

Setzer, M.J., Micro-Ice-Lens Formation in Porous Solid. Journal of Colloid and Interface Science, 2001, Vol. 243, No. 1, pp. 193-201. Search in Google Scholar

ASTM C-672-92: Standard test method for scaling resistance of concrete surfaces exposed to de-icing chemicals. American Society for Testing and Materials. Search in Google Scholar

Panesar D & Chidiac S E: “Multi-variable statistical analysis for scaling resistance of concrete containing GGBFS”. Cement and Concrete Composites, Vol 29, 2007, pp. 39-48. Search in Google Scholar

Setzer M, Heine P, Kasparek S, Palecki S, Auberg R, Feldrappe V & Siebel E: “Test methods of frost resistance of concrete: CIF-Test: Capillary suction, internal damage and freeze thaw test—Reference method and alternative methods A and B”. Materials & Structures, Vol 37, 2004, pp. 743-753. Search in Google Scholar

Valenza, J & Scherer G: “Mechanism for Salt Scaling”. The American Ceramic Society, 2006, pp. 1161–1179 Search in Google Scholar

Liu Z & Hansen W:” Freezing characteristics of air-entrained concrete in the presence of deicing salt”. Cement and Concrete Research, Vol 74, 2015. pp. 10-18. Search in Google Scholar

Verbeck G & Klieger P: “Studies of salt scaling of concrete”. Highway Research Board Bulletin, 1957. Search in Google Scholar

Fagerlund G: “Studies of the scaling, the water uptake and the dilation of mortar specimens exposed to freezing and thawing in NaCl solutions”. Proceedings, Conference on Freeze-Thaw and De-Icing Resistance of Concrete, Lund University, Lund, Sweden. Editors: Fagerlund G and Setzer M J, 1992, pp. 36-66. Search in Google Scholar

Gong F & Jacobsen S: “Modeling of water transport in highly saturated concrete with wet surface during freeze/thaw”. Cement and concrete research, Vol 115, 2019, pp. 294-307. Search in Google Scholar

Liu Z: ‘Frost deterioration in concretedue to deicing salt exposure: Mechanism, mitigation and conceptual surface scaling model’. Thesis, University of Michigan, 2014. Search in Google Scholar

Shpak A: ‘Production and documentation of frost durable high-volume fly ash concrete: air entrainment, cracking and scaling in performance testing’. Thesis, Norwegian University of Science and Technology, 366, 2020. Search in Google Scholar

eISSN:
2545-2819
Lingua:
Inglese
Frequenza di pubblicazione:
2 volte all'anno
Argomenti della rivista:
Materials Sciences, Materials Processing