1. A. P. Naveen, R. S. Priyadarsini and D. A. Krishna, “Effect of High Temperature on the Compressive and Flexural Performance of Fibrous Concrete-An Experimental Investigation”, Materialstoday: Proceedings, (2023),
https://doi.org/10.1016/j.matpr.2023.05.313.
2. A. Ahmed, M. Tahwia, M. Mokhles and W. E. Elemam, “Optimizing Characteristics of High-Performance Concrete Incorporating Hybrid Polypropylene Fibers”, Innovative Infrastructure Solutions, Vol. 8, No. 297, (2023),
https://doi.org/10.1007/s41062-023-01268-6.
3. J. H. Oh, J. H. Cheon, M. S. Lee and S. W. Yoo, “Evaluation of Spalling Characteristics and Fire Resistance Fiber-Entrained Mixed Cement Concrete at Ultra-High Temperatures”, Journal of the Korea Institute for Structural Maintenance and Inspection, Vol. 27, No. 5, pp. 23-29 (2023),
https://doi.org/10.11112/jksmi.2023.27.5.23.
4. M. Tawfik, A. El-said, A. Deifalla and A. Awad, “Mechanical Properties of Hybrid Steel-Polypropylene Fiber Reinforced High Strength Concrete Exposed to Various Temperatures”, Fibers, Vol. 10, (2022),
https://doi.org/10.3390/fib10060053.
5. G. Y. Kim, S. H. Jung, T. G. Lee, Y. S. Kim and J. S. Nam, “Compressive Behavior of Concrete with Loading and Heating”, Journal of the Korea Institute for Structural Maintenance and Inspection, Vol. 14, No. 4, pp. 119-125 (2010).
6. H. R. Moosaei, A. R. Zareei and N. Salemi, “Elevated Temperature Performance of Concrete Reinforced with Steel, Glass, and Polypropylene Fibers and Fire-proofed with Coating”, Engineering, Vol. 35, No. 5, pp. 917-930 (2022),
https://doi.org/10.5829/ije.2022.35.05b.08.
7. H. H. Y. AL-Radi, S. Dejian and H. K. Sultan, “Performance of Fiber Self Compacting Concrete at High Temperatures”, Civil Engineering Journal, Vol. 7, No. 12, (2021),
https://doi.org/10.28991/cej-2021-03091779.
8. M. Mubarak, R. S. M. Rashid, M. Amran, N. Vatin, R. Fediuk and S. Klyuev, “Mechanical Properties of High-Performance Hybrid Fiber-Reinforced Concrete at Elevated Temperatures”, Sustainability, Vol. 13, (2021),
https://doi.org/10.3390/su132313392.
9. M. A. Moghadam and R. A. Izadifard, “Effects of Steel and Glass Fibers on Mechanical and Durability Properties of Concrete Exposed to High Temperatures”, Fire Safety Journal, Vol. 113, (2020),
https://doi.org/10.1016/j.firesaf.2020.102978.
10. H. Caetano, G. Ferreira, J. P. C. Rodrigues and P. Pimienta, “Effect of the High Temperatures on the Microstructure and Compressive Strength of High Strength Fiber Concretes”, Construction and Building Materials, Vol. 199, pp. 717-736 (2019),
https://doi.org/10.1016/j.conbuildmat.2018.12.074.
11. J. Eidan, I. Rasoolan, A. Rezaeian and D. Poorveis, “Residual Mechanical Properties of Polypropylene Fiber-Reinforced Concrete After Heating”, Construction and Building Materials, Vol. 198, pp. 195-206 (2019),
https://doi.org/10.1016/j.conbuildmat.2018.11.209.
12. N. Yermak, P. Pliya, A. L. Beaucour, A. Simon and A. Noumowe, “Influence of Steel and/or Polypropylene Fibers on the Behaviour of Concrete at High Temperature: Spalling, Transfer and Mechanical Propertie”, Construction and Building Materials, Vol. 132, pp. 240-250 (2017),
https://doi.org/10.1016/j.conbuildmat.2016.11.120.
13. F. U. A. Shaikh and M. Taweel, “Compressive Strength and Failure Behaviour of Fiber Reinforced Concrete at Elevated Temperatures”, Advances in Concrete Construction, Vol. 3, No. 4, pp. 283-293 (2015),
https://doi.org/10.12989/acc.2015.3.4.283.
14. Y. Ding, C. Azevedo, J. B. Aguiar and S. Jalali, “Study on Residual Behaviour and Flexural Toughness of Fiber Cocktail Reinforced Self Compacting High Performance Concrete After Exposure to High Temperature”, Construction and Building Materials, Vol. 26, No. 1, pp. 21-31 (2012),
https://doi.org/10.1016/j.conbuildmat.2011.04.058.
15. U. K. Sharma, K. A. Zaidi and N. M. Bhandari, “Residual Compressive Stress-Strain Relationship for Concrete Subjected to Elevated Temperatures”, Journal of Structural Fire Engineering, Vol. 3, No. 4, (2012),
https://doi.org/10.1260/2040-2317.3.4.327.
16. P. Pliya, A. L. Beaucour and A. Noumowe, “Contribution of Cocktail of Polypropylene and Steel Fibers in Improving the Behaviour of High Strength Concrete Subjected to High Temperature”, Construction and Building Materials, Vol. 25, No. 4, pp. 1926-1934 (2011),
https://doi.org/10.1016/j.conbuildmat.2010.11.064.
18. D. Zhang and K. H. Tan, “Fire Performance of Ultra-High Performance Concrete: Effect of Fine Aggregate Size and Fibers”, Archives of Civil and Mechanical Engineering, Vol. 22, No. 116, (2022),
https://doi.org/10.1007/s43452-022-00430-8.
19. M. Zeiml, D. Leithner, R. Lackner and H. A. Mang, “How do Polypropylene Fibers Improve the Spalling Behavior of In-situ Concrete?” Cement and Concrete Research, Vol. 36, No. 5, pp. 929-942 (2006),
https://doi.org/10.1016/j.cemconres.2005.12.018.
20. G. A. Khoury and B. Willoughby, “Polypropylene Fibres in Heated Concrete. Part 1: Molecular Structure and Materials Behaviour”, Magazine of Concrete Research, Vol. 60, No. 2, pp. 125-136 (2008),
https://doi.org/10.1680/macr.2008.60.2.125.