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Study the Effect of Adding Waste Tire Rubber on Permeation and Thermal Properties of Fiber-Reinforced Foam Concrete

Open Access
|May 2025

References

  1. RAJ, B., et al., Mechanical and durability properties of hybrid fiber reinforced foam concrete. Construction and Building Materials, 2020. 245: p. 118373.
  2. IBRAHIM, H.A. and W.A. ABBAS, Fresh Properties of Self-Consolidating Expired Cement-Fly Ash Cold Bonded Lightweight Aggregate Concrete With Different Mineral Admixtures. Engineering and Technology Journal, 2023. 41(05): p. 734-744.
  3. ALMALKAWI, A.T., et al., Behavior of a lightweight frame made with aerated slurry-infiltrated chicken mesh under cyclic lateral loading. Construction and Building Materials, 2018. 160: p. 679-686.
  4. SUN, C., et al., Effects of foaming agent type on the workability, drying shrinkage, frost resistance and pore distribution of foamed concrete. Construction and Building Materials, 2018. 186: p. 833-839. .
  5. ABBAS, M.L. and W.A. ABBAS, Cold-bonded lightweight synthetic aggregate involving high reactive attapulgite at different curing conditions. Engineering and Technology Journal, 2023. 41(11): p. 1-14.
  6. HASSANLI, R., et al., Experimental and numerical study on the behavior of rubberized concrete. Advances in Civil Engineering Materials, 2017. 6(1): p. 134-156. .
  7. ZÁLESKÁ, M., et al., Eco-friendly concrete with scrap-tyre-rubber-based aggregate–Properties and thermal stability. Construction and Building Materials, 2019. 225: p. 709-722.
  8. LI, D., et al., Compressive stress strain behavior of crumb rubber concrete (CRC) and application in reinforced CRC slab. Construction and Building Materials, 2018. 166: p. 745-759..
  9. AHMED, S.N., A.L. ALMUTAIRI, and W.B. DOMAT, Non-Linear Analysis of Hybrid Reinforced T-Beam with Partial Substitution Recycled Rubberized Concrete. Civil and Environmental Engineering, 2024. 20(1): p. 397-410.
  10. HILAL, A.A., Effect of crumb tyres rubber on some properties of foamed concrete. Anbar Journal for Engineering Sciences, 2011. 4(2): p. 1-17. .
  11. AHMED, H.K., W.A. ABBAS, and D.M. ABDUL-RAZZAQ, Effect of plastic fibers on properties of foamed concrete. Eng Technol J, 2013. 31(Part A (7): p. 1313-30.
  12. MEHRANI, S.A., et al., Utilization of Rubber powder of waste tyres in foam concrete. Journal of Applied Engineering Sciences, 2019. 9(1): p. 87-90.
  13. KASHANI, A., et al., A sustainable application of recycled tyre crumbs as insulator in lightweight cellular concrete. Journal of cleaner production, 2017. 149: p. 925-935. .
  14. KASHANI, A., et al., Effects of surface treatments of recycled tyre crumb on cement-rubber bonding in concrete composite foam. Construction and Building Materials, 2018. 171: p. 467-473.
  15. EIRAS, J., et al., Physical and mechanical properties of foamed Portland cement composite containing crumb rubber from worn tires. Materials & Design, 2014. 59: p. 550-557. .
  16. BAYRAKTAR, O.Y., et al., Effect of cement dosage and waste tire rubber on the mechanical, transport and abrasion characteristics of foam concretes subjected to H2SO4 and freeze–thaw. Construction and Building Materials, 2021. 302: p. 124229. .
  17. DAMIANI, R.M., Y. Song, and D.A. Lange, Effect of Waste Rubber Inclusion on the Microstructure and Mechanical Performance of Low-Density Foam Concrete. Journal of Materials in Civil Engineering, 2024. 36(7): p. 04024159.
  18. ASTM C150/C150M, Standard Specification for Portland Cement, ASTM International: PA, USA, 2022.
  19. ASTM C 618-19, Standard specification for coal fly ash and raw or calcined natural pozzolan for use as a mineral admixture in Portland cement concrete, ASTM International: PA, USA, 2019.
  20. HILAL, A.A., N.H. THOM, and A.R. DAWSON, Pore structure and permeation characteristics of foamed concrete. Journal of Advanced Concrete Technology, 2014. 12(12): p. 535-544. .
  21. ASTM C33-18, Standard specification for concrete aggregates, ASTM International: PA, USA, 2018.
  22. OBAID, H.A. and A.A. HILAL, Foam concrete made with micro and nano silica sand: Pore structure and properties. Volume 12, Number 3, September 2021, p. 207-216.
  23. ASTM C494/C494M-17 Standard Specification for Chemical Admixtures for Concrete, ASTM International: PA, USA, 2017.
  24. ACI 523.3R-14, Guide for Cellular Concretes above 50 lb/ft3(800 kg/m3). 2014.
  25. Jaffal, A.N., A.A. Hilal, and A.S. Mahmoud, Behavior of Reinforced Composite Foamed-Normal Concrete Beams. Journal of Engineering, 2023. 2023(1): p. 3653472.
  26. ASTM C796/C796M-19, Standard test method for foaming agent for use in producing cellular concrete using preformed foam, ASTM International: PA, USA, 2019.
  27. RAMAMURTHY, K., E.K. NAMBIAR, and G.I.S. RANJANI, A classification of studies on properties of foam concrete. Cement and concrete composites, 2009. 31(6): p. 388-396.
  28. HILAL, A.A., N.H. THOM, and A.R. DAWSON, On void structure and strength of foamed concrete made without/with additives. Construction and Building Materials, 2015. 85: p. 157-164. .
  29. ASTM C1113-99, Test Method for Thermal Conductivity of Refractories by Hot Wire (Platinum Resistance Thermometer Technique, ASTM International: PA, USA,1999.
  30. KEARSLEY, E. and P. WAINWRIGHT, The effect of porosity on the strength of foamed concrete. Cement and concrete research, 2002. 32(2): p. 233-239.
  31. ASTM C1585-20, Standard Test Method for Measurement of Rate of Absorption of Water by Hydraulic-Cement Concretes, ASTM International: West Conshohocken, PA, USA, 2011.
  32. KEARSLEY, E. and P. WAINWRIGHT, Porosity and permeability of foamed concrete. Cement and concrete research, 2001. 31(5): p. 805-812.
  33. NAMBIAR, E.K. and K. RAMAMURTHY, Sorption characteristics of foam concrete. Cement and concrete research, 2007. 37(9): p. 1341-1347. .
  34. KEARSLEY, E.P., The effect of high volumes of ungraded fly ash on the properties of foamed concrete. 1999, university of leeds.
  35. OREN, O.H., et al., Physical and mechanical properties of foam concretes containing granulated blast furnace slag as fine aggregate. Construction and Building Materials, 2020. 238: p. 117774.
  36. ZÁLESKÁ, M., et al. Mechanical and thermal properties of light-weight concrete with incorporated waste tire rubber as coarse aggregate. in AIP Conference Proceedings. 2019. AIP Publishing.
  37. ZÁLESKÁ, M., et al. Evaluation of the size effect of waste tyre rubber particles on properties of lightweight rubber concrete. in IOP Conference Series: Materials Science and Engineering. 2019. IOP Publishing.
  38. ZHANG, H., et al., Properties of silt-based foamed concrete: A type of material for use in backfill behind an abutment. Construction and Building Materials, 2020. 261: p. 119966.
  39. ZHENG, G., Study on Properties of Fiber Reinforced Foam Concrete. 2022.
  40. ZHANG, P. and Q.-F. LI, Effect of polypropylene fiber on durability of concrete composite containing fly ash and silica fume. Composites Part B: Engineering, 2013. 45(1): p. 1587-1594.
DOI: https://doi.org/10.2478/cee-2025-0028 | Journal eISSN: 2199-6512 | Journal ISSN: 1336-5835
Language: English
Page range: 359 - 369
Published on: May 17, 2025
Published by: University of Žilina
In partnership with: Paradigm Publishing Services
Publication frequency: 2 times per year

© 2025 Oday Asaad Abd, Ameer A. Hilal, Tareq A. Khaleel, published by University of Žilina
This work is licensed under the Creative Commons Attribution 4.0 License.