Otwarty dostęp

Drying Shrinkage, Sorptivity and Micro-Structural Characteristics of Cellular Concrete Containing Waste Marble Powder as Cementitious Materials


Zacytuj

Abo-El-Enein S.A., El-Kady G., El-Sokkary T.M., Gharieb M. (2015). Physico-mechanical properties of composite cement pastes containing silica fume and fly ash, Hbrc J. 11 (1) 7–15. https://doi.org/10.1016/j.hbrcj.2014.02.003. Search in Google Scholar

Aliabdo, AA, Abd Elmoaty, AEM, Auda, EM. (2014). Reuse of waste marble dust in the production of cement and concrete. Construction and Building Materials 50, 28–41. Search in Google Scholar

Aprianti E., Shafigh P., Bahri S., Farahani J.N. (2015). Supplementary cementitious materials origin from agricultural wastes – A review, Constr. Build. Mater. 74176–187. https://doi.org/10.1016/j.conbuildmat.2014.10.010. Search in Google Scholar

Arel H.S. (2016). Recyclability of waste marble in concrete production, J. Clean. Product. 131, 179–188. Search in Google Scholar

Aruntas HY, Gürü M, Dayi M, Tekin (2010). Utilization of waste marble dust as an additive in cement Production, Materials and Design 31, 4039–4042. https://doi.org/10.1016/j.matdes.2010.03.036. Search in Google Scholar

Ashish D.K., Verma S.K., Kumar R., Sharma N. (2016). Properties of concrete incorporating sand and cement with waste marble powder, Adv. Concr. Construct. 4 145–160. Search in Google Scholar

Baoguo Ma, Jie Wang, Hongbo Tan, Xiangguo Li, Lixiong Cai, Yang Zhou, Zhugen Chu. (2019). Utilization of waste marble powder in cement-based materials by incorporating nano silica,Construction and Building Materials211, 139–149. https://doi.org/10.1016/j.conbuildmat.2019.03.248. Search in Google Scholar

Bouglada M.S., Noui A., Belagraa L. (2021). Optimization of Cellular Concrete Formulation with Aluminum Waste and Mineral Additions,Civil Engineering Journal,” Vol. 7, 1222-1234. Search in Google Scholar

Chen X., Wu S., Zhou J. (2013). Influence of porosity on compressive and tensile strength of cement mortar, Constr. Build. Mater. 40 (3) 869–874. Search in Google Scholar

Chica Lina, Alzate Albert. (2019). Cellular Concrete Review: New Trends for Application in Construction, Construction and Building Materials 200: 637–647. https://doi.org/10.1016/j.conbuildmat.2018.12.136. Search in Google Scholar

Chindaprasirt P, Rukzon S, Sirivivatnanon V, (2008). Resistance to chloride penetration of blended Portland cement mortar containing palm oil fuel ash, rice husk ash and fly ash, Constr. Build. Mater. 22 (5) 932–938. Search in Google Scholar

Corinaldesi, V, Moriconi, G and Naik, TR (2010). Characterization of marble powder for its use in mortar and concrete. Construction and Building Materials 24,113–117. https://doi.org/10.1016/j.conbuildmat.2009.08.013. Search in Google Scholar

Damene, Z, Goual, M. S., Houessou, J., Dheilly, R. M., Goullieux, A., Quéneudec, M (2018). The use of southern Algeria dune sand in cellular lightweight concrete manufacturing: effect of lime and aluminium content on porosity, compressive strength and thermal conductivity of elaborated materials. European Journal of Environmental and Civil Engineering, vol. 22, no10, pp. 1273-1289. https://doi.org/10.1080/19648189.2016.1256233. Search in Google Scholar

DJEBIEN R., ABBAS Y., BOUABAZ A., ZIADA Y N. (2022). Shrinkage And Absorption Of Sand Concrete Containing Marble Waste Powder. CEER; 32 (1): 0240-0254. https://doi.org/10.2478/ceer-2022-0014. Search in Google Scholar

Evi A.S. (2016), A huge number of artificial waste material can be supplementary cementitious material (SCM) for concrete production – a review part II, J. Cleaner Prod. 142. S0959652616000305. Search in Google Scholar

Ferhat A, Goual M.S, Damene Z, Quéneudec-t’Kint M (2023). Experimental study on the effect of lime and aluminium content on porosity, introduced porosity, compressive strength and thermal conductivity of a lightweight cellular concrete based on limestone sand. Construction and Building Materials, vol. 392, pp. 131552. https://doi.org/10.1016/j.conbuildmat.2023.131552. Search in Google Scholar

Gameiro, F., de Brito J., da Silva, D.C. (2014). Durability performance of structural concrete containing fine aggregates from waste generated by marble quarrying industry, Eng. Struct., 59,pp. 654–662. Search in Google Scholar

Gesoglu M, Güneyisi E, Kocabag ME, Bayram V., Mermerdas, K .(2012). Fresh and hardened characteristics of self compacting concretes made with combined use of marble powder, limestone filler, and fly ash. Construction and Building Materials 37, 160-170. Search in Google Scholar

Goual M. S (2001). Contribution à l’élaboration d’un procédé de valorisation de co-produits argileux. Cas du béton argileux cellulaire obtenu par réaction avec l’aluminium pulvérulent : Caractérisation et comportement thermohydrique; Thèse Doctorat d’état. L’ENP d’Alger. http://doi.org/10.13140/RG.2.1.2577.7766. Search in Google Scholar

Govern G. Mc, (2000). Manufacture and supply of ready-mix foamed concrete, One Day Awareness Seminar on Foamed concrete Properties, Applications and Potential, vol. 294, University of Dundee, Scotland. Search in Google Scholar

Hebhoub H, Belachia M, Djebien R (2014). Introduction of sand marble wastes in the composition of mortar, Structural Engineering and Mechanics49(4), 491-498. https://doi.org/10.12989/sem.2014.49.4.491. Search in Google Scholar

Hebhoub H, Kherraf L, Abdelouahed A, Belachia M (2020). Introduction of marble waste sand in the composition of mortar. In : Sandy Materials in Civil Engineering-Usage and Management.IntechOpen. Search in Google Scholar

Jiang, C, Guo, W, Chen, H, Zhu, Y and Jin, C (2018). Effect of filler type and content on mechanical properties and microstructure of sand concrete made with superfine waste sand, Construction and Building Materials 192, 442–449. Search in Google Scholar

Karagiannis N., Karoglou M., Bakolas A., Moropoulou A. (2016). Effect of temperature on water capillary rise coefficient of building materials, Build Environ. 106, 402–408. https://doi.org/10.1016/J.BUILDENV.2016.07.008. Search in Google Scholar

Khodabakhshian A., Brito J.D., Ghalehnovi M., Shamsabadi E.A. (2018). Mechanical, environmental and economic performance of structural concrete containing silica fume and marble industry waste powder, Constr. Build. Mater. 169237–251. Search in Google Scholar

Khodabakhshian A., Ghalehnovi M., Brito J.D., Shamsabadi E.A (2018). Durability performance of structural concrete containing silica fume and marble industry waste powder, J. Cleaner Prod. 170. S0959652617321145. https://doi.org/10.1016/J.JCLEPRO.2017.09.116. Search in Google Scholar

Lian C., Zhuge Y., Beecham S. (2011). The relationship between porosity and strength for porous concrete, Constr. Build. Mater. 25 (11) 4294–4298. Search in Google Scholar

Mashaly A.O., El-Kaliouby B.A., Shalaby B.N., El–Gohary A.M., Rashwan M.A. (2016), Effects of marble sludge incorporation on the properties of cement composites and concrete paving blocks, J. Clean. Prod. 112, 731–741. Search in Google Scholar

Nambiar E.K, Ramamurthy K, (2009). Shrinkage behavior of foam concrete, J. Mater.Civ. Eng. 21 (11) 631–636. https://doi.org/10.1061/(ASCE)0899-1561(2009)21:11(631). Search in Google Scholar

Nambiar E.K, Ramamurthy K, (2007). Sorption characteristics of foam concrete,Cem. Concr. Res. 37 (9) 1341–1347. Search in Google Scholar

Nambiar E.K, Ramamurthy K, (2006). Influence of filler type on the properties of foam concrete, Cem. Concr. Compos. 28 (5) 475–480. https://doi.org/10.1016/j.cemconcomp.2005.12.001. Search in Google Scholar

Narayanan N, Ramamurthy K. (2000), Structure and properties of aerated concrete: a review. Cement & Concrete Composites 22; 321-329. Search in Google Scholar

Neville Adam M. (2000). Propriétés des bétons. Traduit par le CRIB Edition Eyrolles, Paris. Search in Google Scholar

Nežerka V, Hrbek V, Prošek Z, Somr M, Tesárek P, Fládr J., (2018). Micromechanical characterization and modeling of cement pastes containing waste marble powder, Journal of Cleaner Production 195, 1081–1091. Search in Google Scholar

Patel N, Raval A, Pitroda J. (2013). Marble waste: Opportunities for development of low cost concrete. Global Research Analysis 2(2), 94-96. Search in Google Scholar

Rai B, Naushad HK, Abhishek, K, Rushad ST, Duggal, SK. (2011). Influence of marble powder/granules in concrete mix. International Journal of Civil and Structural Engineering 1(4), 827-834. ID: 55926297. Search in Google Scholar

Roslan A.F, Awang H, Mydin M, (2013). Effects of various additives on drying shrinkage, compressive and flexural strength of lightweight foamed concrete (LFC), Adv. Mater. Res. 626 594–604. Search in Google Scholar

Sarkar S.L. (2014). Chemical attack on durability of concrete in the absence/presence of pozzolans, Trans. Indian Ceram. Soc. 48 (4) 51–57. https://doi.org/10.1080/0371750x.1989.10822946. Search in Google Scholar

Sherong Zhang, Kelei Cao, Chao Wang, Xiaohua Wang, Jiaxin Wang, Benbo Sun (2020). Effect of Silica Fume and Waste Marble Powder on the Mechanical and Durability Properties of Cellular Concrete,Construction and Building Materials 241: 117980. Search in Google Scholar

Singh M, Srivastava A, Bhunia, D (2019). Long term strength and durability parameters of hardened concrete on partially replacing cement by dried waste marble powder slurry,Construction and Building Materials 198, 553–569. Search in Google Scholar

Singh M, Choudhary, Srivastava KA, Sangwan KS, Bhunia D. (2017). A study on environmental and economic impacts of using waste marble powder in concrete. Journal of Building Engineering 13, 87–95. https://doi.org/10.1016/J.JOBE.2017.07.009. Search in Google Scholar

Soliman N.M. (2013). Effect of using marble powder in concrete mixes on the behavior and strength of RC slabs, Int. J. Curr. Eng. Technol. 3, 1863–1870. Search in Google Scholar

Tikalsky P.J., Pospisil J., Macdonald W. (2004). A method for assessment of the freeze– thaw resistance of preformed foam cellular concrete, Cem. Concr. Res. 34 (5), 889–893. https://doi.org/10.1016/j.cemconres.2003.11.005. Search in Google Scholar

Topçu, IB, Bilir, T, Uygunoglu, T. (2009). Effect of waste marble dust content as filler on properties of self-compacting concrete, Construction and Building Materials 23(5), 1947–1953. https://doi.org/10.1016/j.conbuildmat.2008.09.007. Search in Google Scholar

Toubal NS, Mellas, M, Sadowski L, Żak A. (2018). Effects of marble powder on the properties of the aircured blended cement paste, J. Clean. Prod., 183, pp. 858-868. Search in Google Scholar

Vardhan, K, Siddique, R, Goyal S (2019). Strength, permeation and microstructural characteristics of concrete incorporating waste marble. Construction and Building Materials 203, 45–55. Search in Google Scholar

Yanbin Fu, Xiuling Wang, Lixin Wang, Yunpeng Li. (2020). Foam Concrete: A State-of-the-Art and State-of-the-Practice Review, Advances in Materials Science and Engineering 2020 1–25. Search in Google Scholar

eISSN:
2284-7197
Język:
Angielski
Częstotliwość wydawania:
2 razy w roku
Dziedziny czasopisma:
Engineering, Introductions and Overviews, other, Electrical Engineering, Energy Engineering, Geosciences, Geodesy