Open Access

Enhancing Mechanical Behaviour and Durability of High Performance Concrete with Silica Fume, Ground Blast Furnace Slag, and Marble Powder


Cite

Abbass, M., Singh, D. Singh, G., 2021. Properties of Hybrid Geopolymer Concrete Prepared Using Rice Husk Ash, Fly Ash and GGBS with Coconut Fiber. Mater. Today Proc 45, 4964–4970. Search in Google Scholar

AbdelAleem, BH and Hassan, AAA., 2018. Development of self consolidating rubberized concrete incorporating silica fume. Construction and Building Materials 161, 389-397. Search in Google Scholar

A, Behnood, H, Ziari 2008, Effects of silica fume addition and water to cement ratio on the properties of high-strength concrete after exposure to high temperatures, Cem. Concr. Compos. 30 106–112. Search in Google Scholar

Ahmad, J, Martínez-García, R, Szelag, M, de-Prado-Gil, J, Marzouki, R, Alqurashi, M, Hussein, E.E., 2021. Effects of Steel Fibers (SF) and Ground Granulated Blast Furnace Slag (GGBS) on Recycled Aggregate Concrete. Materials 14, 7497. Search in Google Scholar

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

Belaribi, Hassiba, Mekki Mmellas, 2013. Evaluation of in situ fiber concrete By combination of non-destructive techniques (sclerometer and ultrasound). Africa Science: International Journal of Science and Technology 8.3 (2013): 1-13. Search in Google Scholar

Boughamsa, O, Hebhoub, H, Kherref, L, Belachia, M, Abdelouahed, A and Chaher, R., 2020. Valorization of marble’s waste as a substitute in sand concrete. Advances in Concrete Construction 9, 217-225. Search in Google Scholar

Bourzik, O, Baba, K, Akkouri, N, Nounah, A., 2023. Effect of waste marble powder on the properties of concrete. Materials Today: Proceedings 72, 3265-3269. Search in Google Scholar

Chaid, R, Jauberthie, R, Abadlia, M,T et Bali, A., 2008. Durability of the HPC cured in sulphate environment. International Conference on Durability of Building Materials and Component – 11DBMC, Istanbul, Turkey 11-14 may, Vol. I, 237-245. Search in Google Scholar

Chandramouli, K J, Sree Naga Chaitanya, Sk, Bifathima, G., Yaswanth Sai, 2022. Strength Study on Concrete by using Partial Replacement of Silica Fume with Cement and Marble Powder with Fine Aggregate - IJFMR 2022.Volume 4, Issue 4, July-August 2022. Search in Google Scholar

Chawla, A, Syed Ahmed Kabeer, KI and Vyas, AK., 2018. Evaluation of strength and durability of lean concrete mixes containing marble waste as fine aggregate. European Journal of Environnement and Civil Engineering 24, 1398-1413 Search in Google Scholar

Choudhary, R, Gupta, R and Nagar, R., 2020. Impact on fresh, mechanical, and microstructural properties of high strength self-compacting concrete by marble cutting slurry waste, fly ash, and silica fume. Construction and Building Materials 239, 117888. Search in Google Scholar

Djebien, R, Belachia, M and Hebhoub, H., 2015. Effect of marble waste fines on rheological and hardened properties of sand concrete. Structural engineering and Machanics 53, 1241-1251 Search in Google Scholar

Djebien, R, Hebhoub, H, Belachia, M, Berdoudi, S and Kherraf, L., 2018. Incorporation of marble waste as sand in formulation of self-compacting concrete. Structural Engineering and Machanics 67, 87-91. Search in Google Scholar

Dhir, R.K, Dyer, T.D, Tang, M,C., 2009. Alkali-Silica Reaction in Concrete Containing Glass. Mater. Struct 42, 1451–1462. Search in Google Scholar

Dilbas, H, Simşek, M, & Cakir, O., 2014. An investigation on mechanical and physical properties of recycled aggregate concrete (RAC) with and without silica fume. Constr. Build. Mater 61, 50-59 Search in Google Scholar

Dinakar, P, Sethy, K.P, Sahoo, U,C., 2013. Design of Self -Compacting Concrete with Ground Granulated Blast Furnace Slag. Mater. Des 43, 161–169. Search in Google Scholar

Du, H, Tan, K,H., 2013. Use of Waste Glass as Sand in Mortar: Part II—Alkali–Silica Reaction and Mitigation Methods. Cem. Concr.Compos 35, 118–126. Search in Google Scholar

Ergün, A., 2011. Effects of the usage of diatomite and waste marble powder as partial replacement of cement on the mechanical properties of concrete. Construction and Building Materials 25, 806-812. Search in Google Scholar

Farinha, C, de Brito, J and Veiga, R., 2015. Incorporation of fine sanitary ware aggregates in coating mortars. Const. Build. Mater 83, 194-206 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. Structs 59, 654-662. Search in Google Scholar

Ganesh, P, Murthy, A,R., 2019. Tensile Behaviour and Durability Aspects of Sustainable Ultra-High Performance Concrete Incorporated with GGBS as Cementitious Material. Constr. Build. Mater 197, 667–680. Search in Google Scholar

Gesoglu, M and Guneyisi, E., 2007. Strength development and chloride penetration in rubberized concretes with and without silica fume. Materials Structures 40, 953–964. Search in Google Scholar

Gupta, T, Chaudhary, S, Sharma, R, K., 2016. Mechanical and durability properties of waste rubber fiber concrete with and without silica fume. J. Clean. Prod 112, 702-711. Search in Google Scholar

Hebhoub, H, Aoun, H, Belachia, M., Houari, H. and Ghorbel, E., 2011. Use of waste marble aggregates in concrete. Const. Build. Mater 25, 1167-1171 Search in Google Scholar

Huang, W, Huang, X, Xing, Q and Zhou, Z., 2020. Strength reduction factor of crumb rubber as fine aggregate replacement in concrete. Journal of Building Engineering 32, 101346. Search in Google Scholar

Ince, C, Hamza, A, Derogar, S and Ball, RJ., 2020. Utilisation of waste marble dust for improved durability and cost efficiency of pozzolanic concrete. Journal of Cleaner production 270, 122213. Search in Google Scholar

Jalal, M, Arabali, P, Grasley, Z, Bullard, JW and Jalal, H., 2020. Behavior assessment, regression analysis and support vector machine (SVM) modeling of waste tire rubberized Concrete. Journal of Cleaner production 273,122960. Search in Google Scholar

Kansal, C, M & Goyal, R., 2021. Effect of nano silica, silica fume and steel slag on concrete properties. Materials Today: Proceedings 45, 4535–4540. Search in Google Scholar

Karakurt, C, Dumangöz, M., 2022. Rheological and Durability Properties of Self-Compacting Concrete Produced Using Marble Dust and Blast Furnace Slag. Materials 15, 1795. Search in Google Scholar

Köksal, F, Altun, F, Yiğit, İ, Şahin, Y .,2008. Combined effect of silica fume and steel fiber on the mechanical properties of high strength concretes. Constr. Build. Mater 22(8), 1874-1880. Search in Google Scholar

Laoufi, L, Senhadji, Y, Benazzouk, A, Langlet, T, Mouli, M, Laoufi, L et Benosman, AS., 2016. Evaluation de la durabilitéde mortiers pouzzolaniques exposés à une attaque chimique (Assessment of pozzolanic mortars sustainabilityexposed to chemical attack). J.Mater. Environ. Sci 7(5), 1835-1845 Search in Google Scholar

Mhaya, AM, Huseien, GF, Zainal Abidin, AR and Ismail, M.,2020. Long-term mechanical and durable properties of waste tires rubber crumbs replaced GBFS modified concretes. Construction and Building Materials 256, 119505. Search in Google Scholar

Nadh V, S, Krishna, C, Natrayan, L. et al., 2021. Structural behavior of nanocoated oil palm shell as coarse aggregate in lightweight concrete. Journal of Nanomaterials vol. 2021, Article ID 4741296, 7 pages, 2021. Search in Google Scholar

Naik, T,R., 2008. Sustainability of Concrete Construction. Pract. Period. Struct. Des. Constr 13, 98–103. Search in Google Scholar

Ramezanianpour, A.A, Pilvar, A, Mahdikhani, M, Moodi, F., 2011. Practical Evaluation of Relationship between Concrete Resistivity, Water Penetration, Rapid Chloride Penetration and Compressive Strength. Constr. Build. Mater 25, 2472–2479. Search in Google Scholar

Samimi, K, Kamali-Bernard, S, Maghsoudi, A,A, Maghsoudi, M., Siad, H., 2017. Influence of pumice and zeolite on compressive strength, transport properties and resistance to chloride penetration of high strength self-compacting concretes, Construct. Build. Mater 151, 292–311. Search in Google Scholar

Sanjuan, M. A, Argiz, C, Galvez, J, C, Moragues, A., 2015. Effect of silica fume fineness on the improvement of Portland cement strength performance. Constr. Build. Mater 96, 55-64. Search in Google Scholar

Sharmila, P, Dhinakaran, G., 2016. Compressive Strength, Porosity and Sorptivity of Ultra Fine Slag Based High Strength Concrete. Constr. Build. Mater 120, 48–53. Search in Google Scholar

Siddique, R., 2011. Utilization of silica fume in concrete: Review of hardened properties. Resour. Conserv. Recycl 55(11), 923-932. 805 Search in Google Scholar

Srikanth, S, Krishna, C, B, R, Srikanth, T, Sai Nitesh, K, J, N, Nadh, S,V, Kumar,S and Thanappan,S., 2022. Effect of Nano Ground Granulated Blast Furnace Slag (GGBS) Volume % on Mechanical Behaviour of High-Performance Sustainable Concrete. Journal of Nanomaterials.5 pages Search in Google Scholar

Solís-Carcaño, R., & Moreno, E. I., 2008. Evaluation of concrete made with crushed limestone aggregate based on ultrasonic pulse velocity. Construction and Building Materials, 22(6), 1225–1231. Search in Google Scholar

Taji, I, Ghorbani, S, de Brito, J, Tam, V, W, Y, Sharifi, S, Davoodi, A & Tavakkolizadeh, M., 2019. Application of statistical analysis to evaluate the corrosion resistance of steel rebars embedded in concrete with marble and granite waste dust. Journal of Cleaner Production 210, 837-846 Search in Google Scholar

Tang, Z, Li, W, Tam, V, W,Y & Xue, C., 2020. Advanced progress in recycling municipal and construction solid wastes for manufacturing sustainable construction materials. Resources, Conservation & Recycling X, 6, 10003. Search in Google Scholar

Thomas, M,D,A, Bamforth, P,B., 1999. Modelling Chloride Diffusion in Concrete: Effect of Fly Ash and Slag. Cem. Concr. Res 29, 487–495. Search in Google Scholar

Ulubeyli, GC and Artir, R., 2015. Properties of hardened concrete produced by waste marble powder. Procedia-Social and Behavioral Sci 195(3), 2181–2190. Search in Google Scholar

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

Varadharajan, S., 2020. Determination of mechanical properties and environmental impact due to inclusion of fly ash and marble waste powder in concrete. Structures 25, 613-630. Search in Google Scholar

Vieira, T, Alves, A, de Brito, J, Correia, JR and Silva, RV., 2016. Durability related performance of concrete containing fine recycled aggregates from crushed bricks and sanitary ware. Mater. Design 90(15), 767-776. Search in Google Scholar

Wang, X,Y, Lee, H,S., 2010. Modeling the Hydration of Concrete Incorporating Fly Ash or Slag. Cem. Concr. Res 40, 984–996. Search in Google Scholar

Youssf, O, Mills, JE, Benn, T, Zhuge, Y, MA, X, Roychand, R and Gravina, R.,2020. Development of Crumb Rubber Concrete for Practical Application in the Residential Construction Sector – Design and Processing. Construction and Building Materials 260, 119813. Search in Google Scholar

Zhang, S, Cao, K, Wang, C, Wang, X, Wang, J & Sun, B., 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

eISSN:
2284-7197
Language:
English
Publication timeframe:
2 times per year
Journal Subjects:
Engineering, Introductions and Overviews, other, Electrical Engineering, Energy Engineering, Geosciences, Geodesy