Acceso abierto

Assessing the Mechanical Properties and Frost Resistance of Recycled Coarse Aggregate Concrete in Finland

, ,  y   
03 jul 2025

Cite
Descargar portada

Wimala M, Fujiki A & Kawai K: “Environmental Impact of Waste Concrete Treatment in Precast Concrete Production”. Proceedings, Annual Conference Japan Concrete Institute, Japan, 2011. Search in Google Scholar

Walberg D: “Solid and Timber Construction in Residential Buildings”. Mauerwerk, 2016, pp. 16-31. Search in Google Scholar

Zheng L, Wu H, Zhang H, Duan H, Wang J, Jiang W, Dong B, Liu G, Zuo J & Song Q: “Characterizing the Generation and Flows of Construction and Demolition Waste in China”. Construction and Building Materials, 2017, pp. 405-413. Search in Google Scholar

Ma M, Tam V W, Le K N & Li W: “Challenges in Current Construction and Demolition Waste Recycling: A China Study”. Waste Management, 2020, pp. 610-625. Search in Google Scholar

Sadagopan M, Malaga K, Lundin M & Nagy A: “Effects of Slag Addition and Mechanical Pre-Processing on the Properties of Recycled Concrete in Terms of Compressive Strength and Workability”. Nordic Concrete Research, 2021, pp. 11-29. Search in Google Scholar

LCA Consulting Oy: “Carbon footprint of Betoroc crushed concrete in infrastructure construction”. Report version 1.1, July, 2021. Search in Google Scholar

Helsing E, Brander L & Martinsson P: “Durability of Concrete with Recycled Aggregate”. Nordic Concrete Research, 2024, pp. 69-89. Search in Google Scholar

Flower D J M & Sanjayan J G: “Green House Gas Emissions Due to Concrete Manufacture”. The International Journal of Life Cycle Assessment, 2007, pp. 282-288. Search in Google Scholar

Wang B, Yan L, Fu Q & Kasal B: “A Comprehensive Review on Recycled Aggregate and Recycled Aggregate Concrete”. Resources, Conservation & Recycling, 2021. Search in Google Scholar

Kumutha R & Vijai K: “Strength of Concrete Incorporating Aggregates Recycled from Demolition Waste”. ARPN Journal of Engineering and Applied Sciences, 2010. Search in Google Scholar

Liu K, Fu K, Sang Y, Yang Y, Zou C, Xie T & Zhao X: “Frost Resistance of Recycled Aggregate Concrete: A Critical Review”. Journal of Building Engineering, Vol. 90, 2024. Search in Google Scholar

Maruyama I, Sogo M, Sogabe T & Sato R: “Flexural Properties of Reinforced Recycled Concrete Beams”. Proceedings, Conference on the Use of Recycled Materials in Buildings and Structures, Barcelona, Spain, 2004. Search in Google Scholar

Kheder G & Al-Windawi S: “Variation in Mechanical Properties of Natural and Recycled Aggregate Concrete as Related to the Strength of Their Binding Mortar”. Materials and Structures, 2005, pp. 701-709. Search in Google Scholar

Gómez-Soberón J M: “Relationship Between Gas Adsorption and the Shrinkage and Creep of Recycled Aggregate Concrete”. Cement Concrete and Aggregates, 2003. Search in Google Scholar

Doming-Cabo A, Lázaro C, López-Gayarre F, Serrano-López M, Serna P & Castaño-Tabares J: “Creep and Shrinkage of Recycled Aggregate Concrete”. Construction and Building Materials, 2009, pp. 2545-2553. Search in Google Scholar

Kou S. C., Poon C. S. and Chan D.: “Influence of fly ash as a cement addition on the hardened properties of recycled aggregate concrete”. Materials and Structures, 2008, Vol. 41, pp. 1191-1201. Search in Google Scholar

Kou S. C., Poon C. S., Agrela F.: “Comparisons of natural and recycled aggregate concretes prepared with the addition of different mineral admixtures”. Cement & Concrete Composites, 2011, Vol. 33, pp. 788-795. Search in Google Scholar

Padmini, A.K., Ramamurthy, K., Mathews, M.S.: “Influence of parent concrete on the properties of recycled aggregate concrete”. Construction and Building Materials, 2009, Vol. 2, pp. 829-836. Search in Google Scholar

Sadagopan M, Malaga K, and Nagy A: “Improving recycled aggregate quality by mechanical pre-processing”. Materials, 2020. Search in Google Scholar

Finnish Standards Association: “SFS-EN 206. Concrete. Specification, Performance, Production and Conformity”, Helsinki, Finland, 2014. 93 pp. Search in Google Scholar

Finnish Standards Association: “SFS-EN 12350-2. Testing Fresh Concrete. Part 2: Slump Test”, Helsinki, Finland, 2019. 12 pp. Search in Google Scholar

Finnish Standards Association: “SFS-EN 12350-7. Testing Fresh Concrete. Part 7: Air Content. Pressure Methods”, Helsinki, Finland, 2019. 5 pp. Search in Google Scholar

Finnish Standards Association: “SFS-EN 12390-3. Testing hardened concrete. Part 3: Compressive strength of test specimens”, Helsinki, Finland, 2019. 20 pp. Search in Google Scholar

Finnish Standards Association: “SFS 5445. Betoni. Vetolujuus (Concrete. Tensile Strength)”, 1988. 2 pp. (In Finnish) Search in Google Scholar

Finnish Standards Association: “SFS-EN 12390-5. Flexural Strength of Test Specimens”, 2019. 20 pp. Search in Google Scholar

Finnish Standards Association: “SFS-EN 12390-13. Testing Hardened Concrete. Part 13: Determination of Secant Modulus of Elasticity in Compression”, 2021. 14 pp. Search in Google Scholar

Finnish Standards Association: “SFS-EN 12390-17. Testing Hardened Concrete. Part 17: Determination of Creep of Concrete in Compression”, 2019. 16 pp. Search in Google Scholar

Finnish Standards Association: “SFS-EN 12390-16. Testing Hardened Concrete. Part 16: Determination of the shrinkage of concrete”, 2019. 13 pp. Search in Google Scholar

European Committee for Standardization: “CEN/TR 15177. Testing the Freeze-Thaw Resistance of Concrete. Internal Structural Damage”, 2006. 34 pp. Search in Google Scholar

Idioma:
Inglés
Calendario de la edición:
2 veces al año
Temas de la revista:
Ciencia de los materiales, Procesamiento de materiales