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Mechanical Strengths, Durability, and Corrosion Resistance of Concrete with Recycled Sand

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10 apr 2025
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Shahidan S, Azmi MAM, Kupusamy K, Zuki SSM, Ali N. Utilizing construction and demolition (C and D) waste as recycled aggregates (RA) in concrete. Procedia Eng. 2017;174:1028-35. DOI: 10.1016/j.proeng. 2017.01.255. Search in Google Scholar

Amnon K. Properties of concrete made with recycled aggregate from partially hydrated old concrete. Cem Concr Res. 2003;33(5):703-11. DOI: 10.1016/S0008-8846(02)01033-5. Search in Google Scholar

Meddah MS, Al-Harthy A, Ismail, M. Recycled concrete aggregates and their influences on performances of low and normal strength concretes. Buildings. 2020;10:167. DOI: 10.3390/buildings10090167. Search in Google Scholar

Surendar M, Ananthi GBG, Sharaniya M, Deepak MS, Soundarya TV. Mechanical properties of concrete with recycled aggregate and M-sand. Mater Today. 2021;44(1)1723-30. DOI: 10.1016/j.matpr.2020.11.896. Search in Google Scholar

Etxeberria M, Vázquez E, Marí A, Barra M. Influence of amount of recycled coarse aggregates and production process on properties of recycled aggregate concrete. Cem Concr Res. 2007;37:735-42. DOI: 10.1016/j.cemconres.2007.02.002. Search in Google Scholar

Ozbakkaloglu T, Gholampour A, Xie T. Mechanical and durability properties of recycled aggregate concrete: effect of recycled aggregate properties and content. J Mater Civ Eng. 2018;30(2):04017275. DOI: 10.1061/(ASCE)MT.1943-5533.0002142. Search in Google Scholar

Verian KP, Ashraf W, Cao Y. Properties of recycled concrete aggregate and their influence in new concrete production. Resour Conserv Recycl. 2018;133:30-49. DOI: 10.1016/j.resconrec.2018.02.005. Search in Google Scholar

Pani L, Francesconi L, Rombi J, Mistretta F, Sassu M, Stochino F. Effect of parent concrete on the performance of recycled aggregate concrete. Sustainability. 2020;12(22): 9399. DOI: 10.3390/su12229399. Search in Google Scholar

Abbas A, Fathifazl G, Fournier B, Isgor OB, Zavadil R, Razaqpur AG, et al. Quantification of the residual mortar content in recycled concrete aggregates by image analysis. Mater Charact. 2009;60(7):716-28. DOI: 10.1016/j.matchar.2009.01.010. Search in Google Scholar

Koper A, Koper W, Koper M. Influence of raw concrete material quality on selected properties of recycled concrete aggregates. Procedia Eng. 2017;172:536-43. DOI: 10.1016/j.proeng.2017.02.063. Search in Google Scholar

Pereira MML, Capuzzo VMS, de Brito J. Concrete produced with recycled concrete aggregate exposed to treatment methods. Case Stud Constr Mater. 2023;18:e01938. DOI: 10.1016/j.cscm.2023.e01938. Search in Google Scholar

Salehlamein FR, Solikin M, Sunarjono I. Effect of recycled coarse aggregate on concrete properties. Int J Innov Res Technol Sci Eng. 2015;4(1):19060-8. DOI: 10.15680/IJIRSET.2015.0401084. Search in Google Scholar

Braga M, Silvestre JD, De Brito J. Compared environmental and economic impact from cradle to gate of concrete with natural and recycled coarse aggregates. J Cleaner Prod. 2017;62:529-43. DOI: 10.1016/j.jclepro.2017.06.057. Search in Google Scholar

Akhtar A, Sarmah AK. Construction and demolition waste generation and properties of recycled aggregate concrete: A global perspective. J Cleaner Prod. 2018;186:262-81. DOI:10.1016/j.jclepro.2018.03.085. Search in Google Scholar

Barragan-Ramos A, Ríos-Fresneda C, Lizarazo-Marriaga J, Hernández-Romero N. Rebar corrosion and ASR durability assessment of fly ash concrete mixes using high contents of fine recycled aggregates. Constr Build Mater. 2022;349:128759. DOI: 10.1016/j.conbuildmat.2022.128759. Search in Google Scholar

Tam VW, Soomro M, Evangelista ACJ. A review of recycled aggregate in concrete applications (2000-2017). Constr Build Mater. 2018;172: 272-92. DOI: 10.1016/j.conbuildmat.2018.03.240. Search in Google Scholar

Ulsen C, Kahn H, Hawlitschek G, Masini EA, Angulo SC, John VM. Production of recycled sand from construction and demolition waste. Constr Build Mater. 2013;40:1168-73. DOI: 10.1016/j.conbuildmat.2012.02.004. Search in Google Scholar

Shi-Cong K, Chi-sun P. Long term mechanical and durability properties of recycled aggregate concrete prepared with the incorporation of fly ash. Cem Concr Compos. 2013;37:12-9. DOI: 10.1016/j.cemconcomp.2012.12.011. Search in Google Scholar

Akhtar MN, Bani-Hani KA, Malkawi DAH, Albatayneh O. Suitability of sustainable sand for concrete manufacturing-A complete review of recycled and desert sand substitution. Results Eng. 2024;23:102478. DOI: 10.1016/j.rineng.2024.102478. Search in Google Scholar

Ju M, Jeong JG, Palou M, Park K. Mechanical colovior of fine recycled concrete aggregate concrete with the mineral admixtures. Materials. 2020;13(10):2264. DOI: 10.3390/ma13102264. Search in Google Scholar

Liu Q, Singh A, Xiao J, Li B, Tam VW. Workability and mechanical properties of mortar containing recycled sand from aerated concrete blocks and sintered clay bricks. Resour Conserv Recycl. 2020;157:104728. DOI: 10.1016/j.resconrec.2020.104728. Search in Google Scholar

Singh R, Nayak D, Pandey A, Kumar R, Kumar V. Effects of recycled fine aggregates on properties of concrete containing natural or recycled coarse aggregates: A comparative study. J Build Eng. 2022;45:103442. DOI: 10.1016/j.jobe.2021.103442. Search in Google Scholar

Carriço A, Bogas JA, Hu S, Real S, Pereira MFC. Novel separation process for obtaining recycled cement and high-quality recycled sand from waste hardened concrete. J Clean Prod. 2021;309:127375. DOI: 10.1016/j.jclepro.2021.127375. Search in Google Scholar

Kim JH, Sung JH, Jeon CS, Lee SH, Kim HSA. Study on the properties of recycled aggregate concrete and its production facilities. Appl Sci. 2019;9(9):1935. DOI: 10.3390/app9091935. Search in Google Scholar

De Juan MS, Gutiérrez PA. Study on the influence of attached mortar content on the properties of recycled concrete aggregate. Constr Build Mater. 2011;23(2):872-7. DOI: 10.1016/j.conbuildmat.2008.04.012. Search in Google Scholar

Carro-López D, González-Fonteboa B, Martínez-Abella F, González-Taboada I, De Brito J, Varela-Puga F. Proportioning microstructure and fresh properties of self-compacting concrete with recycled sand. Procedia Eng. 2017;171:645-57. DOI: 10.1016/j.proeng.2017.01.401. Search in Google Scholar

Tahar ZEA, Kadri EH, Ngo TT, Bouvet A, Kaci A. Influence of recycled sand and gravel on the rheological and mechanical characteristic of concrete. J Adhes Sci Technol. 2016;30(4):392-411. DOI: 10.1080/01694243.2015.1101185. Search in Google Scholar

Sérifou M, Sbartaï ZM, Yotte S, Boffoué MO, Emeruwa E, Bos F. A study of concrete made with fine and coarse aggregates recycled from fresh concrete waste. J Constr Eng. 2013;5:317182. DOI: 101155/2013/317182. Search in Google Scholar

Nguyen VN. Valorization of fines and aggregates from recycled concretes as cementitious materials. [PhD Thesis]. France: University Toulouse 3 Paul Sabatier; 2016. Search in Google Scholar

Kou SC, Poon CS, Etxeberria M. Residue strength water absorption and pore size distributions of recycled aggregate concrete after exposure to elevated temperatures. Cem Concr Compos. 2014;53:73-82. DOI: 10.1016/j.cemconcomp.2014.06.001. Search in Google Scholar

Kirthika SK, Singh SK, Chourasia. A Performance of recycled fine-aggregate concrete using novel mix-proportioning method. J Mater Civ Eng. 2020;32:04020216. DOI: 10.1061/(ASCE)MT.1943-5533.0003289. Search in Google Scholar

Berredjem L, Arabi N, Molez L. Mechanical and durability properties of concrete based on recycled coarse and fine aggregates produced from demolished concrete. Constr Build Mater. 2020;246:118421. DOI: 10.1016/j.conbuildmat.2020.118421. Search in Google Scholar

Berger RL. Properties of concrete with cement clinker aggregate. Cement Concr Res. 1974;4(1):99-112. DOI: 10.1016/0008-8846(74)90069-6. Search in Google Scholar

Prošek Z, Trejbal J, Nežerka V, Goliáš V, Faltus M, Tesárek P. Recovery of residual anhydrous clinker in finely ground recycled concrete. Resour Conserv Recycl. 2020;155:104640. DOI: 10.1016/j.resconrec.2019.104640. Search in Google Scholar

Henning R, Sturm P, Keßler S, Gluth GJ. Corrosion of hybrid alkaline cements in saline solution simulating evaporite rock-Effect of the Portland clinker content. Cement Concr Res. 2023;172:107215. DOI: 101016/jcemconres2023107215. DOI: 101016/jconbuildmat201202004. Search in Google Scholar

NF EN197-1 Cement - Part 1: composition, specifications and conformity criteria for common cements. Available from: www.boutique.afnor.org/en-gb/standard/nf-en-1971/cement-part-1-composition-specifications-and-conformity-criteria-for-common/fa149898/1234. Search in Google Scholar

NF EN 934-2+A1 Admixtures for concrete, mortar and grout - Part 2: Concrete admixtures - Definitions, requirements, conformity, marking and labelling. Available from: www.boutique.afnor.org/engb/standard/nf-en-9342-a1/admixtures-for-concrete-mortar-and-grout-part-2-concrete-admixturesdefinit/fa178669/1262. Search in Google Scholar

NF EN 933-1 Tests for geometrical properties of aggregates - Part 1: determination of particle size distribution - Sieving method. Available from: http://www.boutique.afnor.org/en-gb/standard/nf-en-9331/tests-for-geometrical-properties-of-aggregates-part-1-determination-of-part/fa163900/39221. Search in Google Scholar

EN 1097-6 Tests for mechanical and physical properties of aggregates - Part 6: determination of particle density and water absorption. Available from: www.boutique.afnor.org/en-gb/standard/nf-en-10976/tests-for-mechanical-and-physical-properties-of-aggregates-part-6-determina/fa192181/321395. Search in Google Scholar

NF EN 1097-3 Tests for mechanical and physical properties of aggregates - Part 3: determination of loose bulk density and voids. Available from: www.boutique.afnor.org/en-gb/standard/nf-en-10973/tests-for-mechanical-and-physical-properties-of-aggregates-part-3-determina/fa039534/10658. Search in Google Scholar

NF EN 933-8: Tests for geometrical properties of aggregates - Part 8: assessment of fines - Sand equivalent test. Available from: http://www.boutique.afnor.org/en-gb/standard/nf-en-9338/tests-for-geometrical-properties-of-aggregates-part-8-assessment-of-fines-s/fa172274/38926. Search in Google Scholar

Kisku N, Joshi H, Ansari M, Panda SK, Nayak S, Dutta SC. A critical review and assessment for usage of recycled aggregate as sustainable construction material. Constr Build Mater. 2017;131:721-40. DOI: 10.1016/j.conbuildmat.2016.11.029. Search in Google Scholar

NF EN 12350-2 Testing fresh concrete - Part 2: slump test. Available from: www.boutique.afnor.org/engb/standard/nf-en-123502/testing-fresh-concrete-part-2-slump-test/fa190558/83431. Search in Google Scholar

NF EN 12350-6 Testing fresh concrete - Part 6: density. Available from: www.boutique.afnor.org › Available from: www.boutique.afnor.org/en-gb/standard/nf-en-123506/testing-fresh-concrete-part-6-density/fa190562/83423. Search in Google Scholar

NF EN 12390-3 Testing hardened concrete - Part 3: compressive strength of test specimens. Available from: www.boutique.afnor.org/en-gb/standard/nf-en-123903/testing-hardened-concrete-part-3-compressive-strength-of-test-specimens/fa190566/83462. Search in Google Scholar

NF EN 12390-6 Testing hardened concrete - Part 6: tensile splitting strength of test specimens. Available from: http://www.boutique.afnor.org/en-gb/standard/nf-en-123906/testing-hardened-concrete-part-6-tensile-splitting-strength-of-test-specime/fa163501/39060. Search in Google Scholar

NF EN 12390-5 Testing hardened concrete - Part 5: flexural strength of test specimens. Available from: http://www.boutique.afnor.org/en-gb/standard/nf-en-123905/testing-hardened-concrete-part-5-flexural-strength-of-test-specimens/fa043000/19052. Search in Google Scholar

ASTM C642-21 Standard Test Method for Density Absorption and Voids in Hardened Concrete. Available from: https://cdn.standards.iteh.ai › samples › ASTM-C642-21. Search in Google Scholar

NF EN 13057 Products and systems for the protection and repair of concrete structures - Test methods -Determination of resistance of capillary absorption. Available from: www.boutique.afnor.org/engb/standard/nf-en-13057/products-and-systems-for-the-protection-and-repair-of-concrete-structures-t/fa046982/20861. Search in Google Scholar

ASTM C267-20: Standard Test Methods for Chemical Resistance of Mortars Grouts and Monolithic Surfacings and Polymer Concretes. Available from: https://cdn.standards.iteh.ai › samples › ASTM-C20. Search in Google Scholar

Jourdain X, Hélène H, François M. Destructive tests on concrete and steel reinforcement specimens. 2018. Available from: http://eduscol.education.fr/sti/si-ens-paris-saclay. Search in Google Scholar

Mehta PK, Monteiro PJM. Concrete: Structure, Properties, and Materials. McGraw-Hill Education; 2014. ISBN: 9780071797870. Search in Google Scholar

Ridzuan ARM, Diah ABM, Hamir R, Kamarulzaman KB. The influence of recycled aggregate on the early compressive strength and drying shrinkage of concrete. Struct Eng Mech. 2001;2:1415-22. DOI: 10.1016/B978-008043948-8/50158-2. Search in Google Scholar

Batayneh M, Marie I, Asi I. Use of selected waste materials in concrete mixes. Waste Manage. 2007;27(12):1870-6. DOI: 10.1016/j.wasman.2006.07.026. Search in Google Scholar

Brand AS, Roesler JR, Salas A. Initial moisture and mixing effects on higher quality recycled coarse aggregate concrete. Constr Build Mater. 2015;79:83-9. DOI: 10.1016/j.conbuildmat.2015.01.047. Search in Google Scholar

Hafez H, Kurda R, Kurda R, Al-Hadad B, Mustafa R, Ali B. A critical review on the influence of fine recycled aggregates on technical performance environmental impact and cost of concrete. Appl Sci. 2020;10(3):1018. DOI: 10.3390/app10031018. Search in Google Scholar

Noui A, Bouglada MS, Belagraa L, Achour Y, Abderazak B. Study of the mechanical behavior and durability of mortars based on prepared sand. J Min Sci. 2020;27:47-59. DOI: 10.37190/msc202704. Search in Google Scholar

Khatib JM. Absorption characteristics of metakaolin concrete. Cement Concr Res. 2004;34:19-29. DOI: 10.1016/S0008-8846(03)00188-1. Search in Google Scholar

Kou SC, Poon CS. Mechanical properties of 5-year-old concrete prepared with recycled aggregates obtained from three different sources. Mag Concr Res. 2008;60:57-64. DOI: 10.1680/macr.2007.00052. Search in Google Scholar

Evangelista L, Guedes M, De Brito J, Ferro AC, Pereira MF. Physical chemical and mineralogical properties of fine recycled aggregates made from concrete waste. Constr Build Mater. 2015;86:178-88. DOI: 10.1016/j.conbuildmat.2015.03.112. Search in Google Scholar

Poon CS, Shui ZH, Lam L, Fok H, Kou SC. Influence of moisture states of natural and recycled aggregates on the slump and compressive strength of concrete. Cement Concr Res. 2004;34(1):31-6. DOI: 10.1016/S0008-8846(03)00186-8. Search in Google Scholar

Gao D, Wang F. Effects of recycled fine aggregate and steel fiber on compressive and splitting tensile properties of concrete. J Build Eng. 2021;44:102631. DOI: 10.1016/j.jobe.2021.102631. Search in Google Scholar

Leite M. Evaluation of the Mechanical Properties of Concrete Made with Recycled Aggregates from Construction and Demolition Waste. [PhD Thesis]. Brazil: Federal University of Rio Grande do Sul Porto Alegre; 2001. Search in Google Scholar

Katz A. Properties of concrete made with recycled aggregate from partially hydrated old concrete. Cem Concr Res. 2003;33(5):703-11. DOI: 10.1016/S0008-8846(02)01033-5. Search in Google Scholar

Torres-Gómez AI, F Ledesma E, Otero R, Fernández JM, Jiménez JR, de Brito J. Combined effects of non-conforming fly ash and recycled masonry aggregates on mortar properties. Materials. 2016;9(9):729. DOI: 10.3390/ma9090729. Search in Google Scholar

Silva RV, De Brito J, Dhir RK. Properties and composition of recycled aggregates from construction and demolition waste suitable for concrete production. Constr Build Mater. 2014;65:201-17. DOI: 10.1016/j.conbuildmat.2014.04.117. Search in Google Scholar

Kubissa W, Jaskulski R, Koper A, Szpetulski J. Properties of concretes with natural aggregate improved by RCA addition. Procedia Eng. 2015;108:30-8. DOI: 10.1016/j.proeng.2015.06.116. Search in Google Scholar

Evangelista L, De Brito J. Concrete with fine recycled aggregates: a review. Eur J Environ Civ. 2014;18(2):129-72. DOI: 10.1080/19648189.2013.851038. Search in Google Scholar

Gómez-Soberón J. Porosity of recycled concrete with substitution of recycled concrete aggregate: an experimental study. Cement Concr Res. 2002;32(8):1301-11. DOI: 10.1016/S0008-8846(02)00795-0. Search in Google Scholar

Chawla A, Kabeer KSA, Vyas AK. Evaluation of strength and durability of lean concrete mixes containing marble waste as fine aggregate. Eur J Environ Civ. 2020;24(9):1398-413. DOI: 10.1080/19648189.2018.1471009. Search in Google Scholar

Al-Swaidani AM, Baddoura MK, Aliyan SD, Choeb W. Acid resistance, water permeability and chloride penetrability of concrete containing crushed basalt as aggregates. J Mater Sci Eng. 2015;5(7-8):285-304. DOI: 10.17265/2161-6213/2015.7-8.005. Search in Google Scholar

Benalia S, Zeghichi L. Contribution to the study of the effect of activation on the mechanical behavior of geopolymers . J Civ Eng. 2021;39(1):87-90. DOI: 10.26168/ajce.39.1.20. Search in Google Scholar

You N, Shi J, Zhang Y. Corrosion behaviour of low-carbon steel reinforcement in alkali-activated slag-steel slag and Portland cement-based mortars under simulated marine environment. Corros Sci. 2020;175:108874. DOI: 101016/jcorsci2020108874. Search in Google Scholar

Doussang L, Samson G, Deby F, Huet B, Guillon E, Cyr M. Durability parameters of three low-carbon concretes (low clinker alkali-activated slag and supersulphated cement). Constr Build Mater. 2023;407:133511. DOI: 10.1016/j.conbuildmat.2023.133511. Search in Google Scholar

Silva, RV Brito JD, Neves R, Dhir R. Prediction of chloride ion penetration of recycled aggregate concrete. Materials Res. 2015;18:427-40. DOI: 10.1590/1516-1439.000214. Search in Google Scholar

Ma Z, Liu M, Tang Q, Liang C, Duan Z. Chloride permeability of recycled aggregate concrete under the coupling effect of freezing-thawing elevated temperature or mechanical damage. Constr Build Mater. 2020;237:117648. DOI: 101016/jconbuildmat2019117648. Search in Google Scholar

Ming J, Zhou X, Jiang L, Shi J. Corrosion resistance of low-alloy steel in concrete subjected to long-term chloride attack: Characterization of surface conditions and rust layers. Corros Sci. 2022;203:110370. DOI: 101016/jcorsci2022110370. Search in Google Scholar

Vázquez E, Barra M, Aponte D, Jiménez C, Valls S. Improvement of the durability of concrete with recycled aggregates in chloride exposed environment. Constr Build Mater. 2014;67:61-7. DOI: 10.1016/j.conbuildmat.2013.11.028. Search in Google Scholar

Zhao Y, Dong J, Wu Y, Wang H, Li X, Xu Q. Steel corrosion and corrosion-induced cracking in recycled aggregate concrete. Corros Sci. 2014;85:241-50. DOI: 10.1016/j.corsci.2014.04.028. Search in Google Scholar

Saraswathy V, Song. Electrochemical studies on the corrosion performance of steel embedded in activated fly ash blended concrete. Electrochim Acta. 2006;51(22):4601-11. DOI: 101016/jelectacta200601005. Search in Google Scholar

Al-Amoudi OSB, Maslehuddin M, Lashari AN, Almusallam A. A effectiveness of corrosion inhibitors in contaminated concrete. Cem Concr Compos. 2003;25(4-5):439-49. DOI: 101016/S0958-9465(02)00084-7. Search in Google Scholar

Wang Y, Zhang A, Wang H. Electrochemical investigation on the effect of chloride ion concentration on the corrosion of concrete reinforcement using in-situ nano-Ag/AgCl electrode Alexandria. Eng J. 2023;66:451-6. DOI: 10.1016/j.aej.2022.11.008. Search in Google Scholar

Jinsong L, Qian G, Jing L, Lin F. Influence of calcium nitrite on electrochemical corrosion behavior of API X120 carbon steel and 316LN stainless steel reinforced concrete in marine environment. Int J Electrochem. 2022;7(2):22027. DOI: 1020964/20220235. Search in Google Scholar

Lingua:
Inglese
Frequenza di pubblicazione:
4 volte all'anno
Argomenti della rivista:
Chimica, Chimica sostenibile ed ecologica, Ingegneria, Elettrotecnica, Tecnologia energetica, Scienze biologiche, Ecologia