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Schneider M: “The cement industry on the way to a low-carbon future”. Cement and Concrete Research, Vol., No. 124, 2019.Search in Google Scholar
Jiang T, Cui K, Chang J: “Development of low-carbon cement: Carbonation of compounded C2S by β-C2S and γ-C2S”. Cement and Concrete Composites, Vol., No. 139, 2023.Search in Google Scholar
Hussain F, Kaur I, Hussain A: “Reviewing the influence of GGBFS on concrete properties”. Materials Today: Proceedings, Vol., No. 32, part 4, 2020, pp. 997-1004.Search in Google Scholar
Ige OE, Von Kallon DV, Desai D: “Carbon emissions mitigation methods for cement industry using a systems dynamics model”. Clean Technologies and Environmental Policy, Vol., No. 26, 2024, pp. 579-597.Search in Google Scholar
Scrivener KL, John VM, Gartner EM: “Eco-efficient cements: Potential economically viable solutions for a low-CO2 cement-based materials industry”. Cement and Concrete Research, Vol., No. 114, 2018, pp. 2-26.Search in Google Scholar
Van Den Heede P, De Belie N: “Environmental impact and life cycle assessment (LCA) of traditional and ‘green’ concretes: Literature review and theoretical calculations”. Cement and Concrete Composites, Vol., No. 34, 2012, pp. 431-442.Search in Google Scholar
EN 206:2014 + A2:2021:en “Concrete - Specification, performance, production and conformity”. 2021.Search in Google Scholar
Correia V, Ferreira JG, Tang L, Lindvall A: “Effect of the addition of GGBS on the frost scaling and chloride migration resistance of concrete”. Applied Sciences, Vol., No. 10, 2020.Search in Google Scholar
Penttala V: “Surface and internal deterioration of concrete due to saline and non-saline freezethaw loads”. Cement and Concrete Research, Vol., No. 36, 2006, pp. 921-928.Search in Google Scholar
“Manufacturing of infra concretes. Guide to Finnish Transport Infrastructure Agency, 41/2020 (in Finnish). Finnish Transport infrastructure Agency (Väylävirasto). [Online]. Available: https://vayla.fi/palveluntuottajat/ohjeluettelo.”Search in Google Scholar
Şahin Y, Akkaya Y, Taşdemir MA: “Effects of freezing conditions on the frost resistance and microstructure of concrete”. Construction and Building Materials, Vol., No. 270, 2021.Search in Google Scholar
Bahafid S, Hendriks M, Jacobsen S, Geiker M: “Revisiting concrete frost salt scaling: On the role of the frozen salt solution micro-structure”. Cement and Concrete Research, Vol., No. 157, 2022.Search in Google Scholar
Helsing E Utgenannt P: “Salt-Frost Scaling of Concrete with Slag and Fly Ash - Influence of Carbonation and Prolonged Conditioning on Test Results”. Nordic Concrete Research, Vol., No. 63 – Issue 2, 2020, pp. 89-108.Search in Google Scholar
Ding Z, Quy NX, Noguchi T, Kim J, Hama Y: “A study on the change in frost resistance and pore structure of concrete containing blast furnace slag under the carbonation conditions”. Construction and Building Materials, Vol., No. 331 (2022).Search in Google Scholar
Matala S: “Effects of carbonation on the pore structure of granulated blast furnace slag concrete”. Dissertation for the degree of Doctor of Science in Technology, Aalto University, School of Engineering, Department of Civil and Structural Engineering, 1995.Search in Google Scholar
Iqbal A: “Durability Properties of Low-carbon Concrete”. Master’s thesis for the degree of Master of Science in Technology, Aalto University, School of Engineering, Department of Civil Engineering, 2022.Search in Google Scholar
Löfgren I, Esping O, Lindvall A: “The influence of carbonation and age on salt frost scaling of concrete with mineral additions”. International RILEM conference on materials, systems and structures in Civil Engineering, conference segment on frost action on concrete, 2016.Search in Google Scholar
Kuosa H, Ferreira RM, Holt E, Leivo M, Vesikari E: “Effect of coupled deterioration by freeze-thaw, carbonation and chlorides on concrete service life”. Cement and Concrete Composites, Vol., No. 47, 2014, pp. 32-40.Search in Google Scholar
“BY low-carbon classification system for concrete in Finland”, (Suomen Betoniyhdistys ry) (In Finnish). [Online]. Available: https://vahahiilinenbetoni.fi/.Search in Google Scholar
EN 12390-3:2009: “Testing Hardened concrete. Part 3: Compressive Strength of Test Specimens”, 2009.Search in Google Scholar
CEN/TS 12390-9:2016: “Testing hardened concrete. Part 9: Freeze-thaw resistance with deicing salts. Scaling”, 2016.Search in Google Scholar
CEN/TR 15177:2006: “Testing the freeze-thaw resistance of concrete. Internal structural damage”, 2006.Search in Google Scholar
EN 12390-12:2020: “Testing hardened concrete. Part 12: Determination of the carbonation resistance of concrete. Accelerated carbonation method”, 2020.Search in Google Scholar
EN 12390-10:2019: “Testing hardened concrete. Part 10: Determination of the carbonation resistance of concrete at atmospheric levels of carbon dioxide”, 2019.Search in Google Scholar
SFS 7022:2024: “Concrete. Application of standard SFS-EN 206 in Finland”, 2024.Search in Google Scholar
Al-Neshawy F: “Computerised prediction of the deterioration of concrete building facades caused by moisture and changes in temperature”, Dissertation for the degree of Doctor of Science in Technology, Aalto University, School of Engineering, Department of Civil Engineering, 2013.Search in Google Scholar
Fattuhi NI: “Concrete carbonation as influenced by curing regime”. Cement and Concrete Research, Vol., No. 18, 1988, pp. 426-430.Search in Google Scholar
Utgenannt P: “The influence of ageing on the salt-frost resistance of concrete”, Doctoral Thesis(monograph), Division of Building Materials, Division of Building Materials, LTH, Lund University, 2004.Search in Google Scholar
Stark J, Ludwig HM: “Freeze-deicing salt scaling resistance of concretes containing cement rich in slag” Proceedings of the International RILEM Workshop on Resistance of Concrete to Freezing and Thawing with or without De-icing Chemicals, University of Essen, RILEM Proceedings 34, pp. 123-138, Essen, Germany, 1997.Search in Google Scholar
Von Greve-Dierfeld S, Lothenbach B, Vollpracht A et al.: “Understanding the carbonation of concrete with supplementary cementitious materials: a critical review by RILEM TC 281- CCC”. Materials and Structures, Vol., No.53, 2020.Search in Google Scholar
Copuroglu O: “The characterization, improvement and modelling aspects of Frost Salt Scaling Cement-Based Materials with a High Slag Content”, Doctoral thesis, Civil Engineering and Geosciences (CEG) (TU Delft), 2006.Search in Google Scholar
CEN/TR 16639:2014: “Use of K-value concept, equivalent concrete performance concept and equivalent performance of combinations concept”, 2014.Search in Google Scholar