Investigating Fiber Reinforcement Effects on the Performance of Concrete Pavements under Repeated Load
Received: 21 February 2025 | Revised: 28 March 2025 | Accepted: 2 April 2025 | Online: 14 May 2025
Corresponding author: Mahmood Ghanim Abdul Jawad
Abstract
Concrete pavements are essential to modern infrastructure, but their low tensile and flexural strengths can cause cracking and shrinkage. This study evaluates fiber reinforcement with steel and carbon fibers in various combinations to improve rigid pavement performance. Six concrete mixes were tested: a control mix with no fiber, a mix with 1% steel fiber (SF1%), a mix with 1% carbon fiber (CF1%), and three hybrid mixes with 1% fiber content: 0.75% steel /0.25% carbon fiber (SF0.75CF0.25), 0.25% steel /0.75% carbon fiber (SF0.25CF0.75), and 0.5% steel /0.5% carbon fiber ((SF0.5CF0.5). Laboratory experiments including compressive, flexural, and splitting tensile strength tests were conducted at 7, 28, and 90 days, while Finite Element Analysis (FEA) using ABAQUS software was developed to examine pavement behavior under repeated loading. The results revealed that at 90 days, the SF1% mix exhibited a 9.1% improved compressive strength and CF1% mix a 7.3% improved strength over the control mix. The SF1% mix increased flexural strength by 72.5% and the CF1% mix by 48.6%. Additionally, splitting tensile strength increased by 70% for the SF1% and 45.5% for the CF1%. The hybrid mixes improved compressive strength by 7.6%-8.5%, flexural strength by 59.7%-70.2%, and splitting tensile strength by 56%-67.8%. The finite element modeling showed that the control mix was displaced 15 mm under repeated loading, while the SF1% reduced displacement by 35% and the hybrid mixes by 30%. These findings indicated that SF1% exhibited the best mechanical properties. However, fiber reinforcement, whether used single or in hybrid combinations, improves concrete pavement mechanical performance and loading behavior, offering a promising way to infrastructure durability and service life.
Keywords:
concrete pavements, fiber reinforcement, mechanical properties, finite element analysis, ABAQUSDownloads
References
M. H. Dawood, A. F. Izzet, and B. H. Khudair, "Performance of concrete thrust block at several burial conditions under the influence of thrust forces generated in the water distribution networks," Journal of the Mechanical Behavior of Materials, vol. 31, no. 1, pp. 473–483, Jan. 2022. DOI: https://doi.org/10.1515/jmbm-2022-0048
M. V. Mohod and K. N. Kadam, "A comparative study on rigid and flexible pavement: A review," IOSR Journal of Mechanical and Civil Engineering (IOSR-JMCE), vol. 13, no. 3, pp. 84–88, 2016.
S.-J. Jang et al., "Effect of Contents, Tensile Strengths and Aspect Ratios of Hooked-End Steel Fibers (SFs) on Compressive and Flexural Performance of Normal Strength Concrete," International Journal of Concrete Structures and Materials, vol. 17, no. 1, Aug. 2023, Art. no. 46. DOI: https://doi.org/10.1186/s40069-023-00611-6
A. A. E. Elzokra, A. A. Houri, A. Habib, M. Habib, and A. B. Malkawi, "Shrinkage Behavior of Conventional and Nonconventional Concrete: A Review," Civil Engineering Journal, vol. 6, no. 9, pp. 1839–1851, Sep. 2020. DOI: https://doi.org/10.28991/cej-2020-03091586
M. Anas, M. Khan, H. Bilal, S. Jadoon, and M. N. Khan, "Fiber Reinforced Concrete: A Review," in the 12th International Civil Engineering Conference (ICEC-2022), Karachi, Pakistan, May 2022. DOI: https://doi.org/10.3390/engproc2022022003
H. Z. Hassan and N. M. Saeed, "Fiber reinforced concrete: a state of the art," Discover Materials, vol. 4, no. 1, Dec. 2024, Art. no. 101. DOI: https://doi.org/10.1007/s43939-024-00171-w
M. B. Khan, M. Houda, N. S. Zada, M. Imran, and O. Benjeddou, "Hybrid effect of basalt fibers and carbon fibers on concrete mechanical and environmental properties," Results in Engineering, vol. 25, Mar. 2025. DOI: https://doi.org/10.1016/j.rineng.2024.103780
P. B. Bhavish Bhat, T. M. Swaroop, K. Jayanth, and B. O. Naveen, "Experimental studies and non-linear finite element analysis of flexural behavior of steel fibre-reinforced concrete under monotonic and repeated cyclic loading," Discover Civil Engineering, vol. 1, no. 1, Aug. 2024, Art. no. 61. DOI: https://doi.org/10.1007/s44290-024-00066-y
G. A. Almashhadani and M. H. Al-Sherrawi, "Effect Change Concrete Slab Layer Thickness on Rigid Pavement," Engineering, Technology & Applied Science Research, vol. 12, no. 6, pp. 9661–9664, Dec. 2022. DOI: https://doi.org/10.48084/etasr.5283
N. K. Singh and B. Rai, "A Review of Fiber Synergy in Hybrid Fiber Reinforced Concrete," Journal of Applied Engineering Sciences, vol. 8, no. 2, pp. 41–50, Dec. 2018. DOI: https://doi.org/10.2478/jaes-2018-0017
B. Ali, L. A. Qureshi, and S. U. Khan, "Flexural behavior of glass fiber-reinforced recycled aggregate concrete and its impact on the cost and carbon footprint of concrete pavement," Construction and Building Materials, vol. 262, Nov. 2020, Art. no. 120820. DOI: https://doi.org/10.1016/j.conbuildmat.2020.120820
Z. R. Aljazaeri and Z. Al-Jaberi, "Numerical Study on Flexural Behavior of Concrete Beams Strengthened with Fiber Reinforced Cementitious Matrix Considering Different Concrete Compressive Strength and Steel Reinforcement Ratio," International Journal of Engineering, vol. 34, no. 4, 2021. DOI: https://doi.org/10.5829/ije.2021.34.04a.05
Standard Specification for Portland Cement, ASTM C150/C150M, 2022.
Standard Specification for Sizes of Aggregate for Road and Bidge Construction, AASHTO M 43, 2005.
Standard Method of Test for Sieve Analysis of Fine and Coarse Aggregates, AASHTO T 27, 1993.
Sika Group, "Sika® ViscoCrete®-171 Precast: Product Data Sheet," Dec. 2022.
"Products." Haining ANJIE Composite Materials.
"State-of-the Art Report on fiber reinforced concrete," American Concrete Institute, ACI 544.1 R-96, 1996.
"Standard Practice for Selecting Proportions for Normal, Heavyweight, and Mass Concrete," American Concrete Institute, ACI 211.1-91, 1991.
Method for determination of compressive strength of concrete cubes, BS 1881-116, 1983.
Standard Test Method for Flexural Strength of Concrete (Using Simple Beam with Third-Point Loading), ASTM C78/C78M, 2022.
Standard test method for splitting tensile strength of cylindrical concrete specimens, ASTM C496/C496M, 2017.
AASHTO Guide for Design of Pavement Structures. WA, USA: American Association of State Highway and Transportation Officials.
H.-G. Kwak and F. Filippou, "Finite element analysis of reinforced concrete structures under monotonic loads," University of California, Berkeley, CA, USA, UCB/SEMM-90, 1990.
L. P. Saenz, " Discussion of equation for the stress-strain curve of concrete," ACI Journal Proceedings, vol. 61, no. 9, pp. 1229–1235, 1964. DOI: https://doi.org/10.14359/7785
H. M. Shakir, A. A. Al-Azzawi, and A. F. Al-Tameemi, "Nonlinear Finite Element Analysis of Fiber Reinforced Concrete Pavement under Dynamic Loading," Journal of Engineering, vol. 28, no. 2, pp. 81–98, Feb. 2022. DOI: https://doi.org/10.31026/j.eng.2022.02.06
A. Jagadeesh, W. A. A. S. Premarathna, A. Kumar, C. Kasbergen, and S. Erkens, "Finite element modelling of jointed plain concrete pavements under rolling forklift tire," Engineering Structures, vol. 328, Apr. 2025, Art. no. 119705. DOI: https://doi.org/10.1016/j.engstruct.2025.119705
Y. H. Huang, Pavement Analysis Design, 2nd ed. Upper Saddle River, NJ, USA: Pearson/Prentice Hall, 2004.
M. H. Dawood, A. F. Izzet, and B. H. Khudair, "Optimal Bedding Selection with the Specific Soil Type According to the Thrust Forces Generated in the Water Distribution Networks Using the Restraining Joint System," in Proceedings of 3ICGE-Iraq 2022, Singapore, 2023, pp. 38–51. DOI: https://doi.org/10.1007/978-981-19-7358-1_5
Z. Yin, K. M. Ndiema, R. L. Lekalpure, and C. K. Kiptum, "Numerical Study of Geotextile-Reinforced Flexible Pavement Overlying Low-Strength Subgrade," Applied Sciences, vol. 12, no. 20, Jan. 2022, Art. no. 10325. DOI: https://doi.org/10.3390/app122010325
A. E. A. El-Maaty, "Improving Rutting Resistance of Flexible Pavement Using Geosynthetics," Open Access Library Journal, vol. 03, no. 05, 2016, Art. no, 69304. DOI: https://doi.org/10.4236/oalib.1102655
M. Hamrat, B. Boulekbache, T. Tahenni, M. Chemrouk, and S. Amziane, "Experimental study of deflection of steel fibre reinforced concrete beams: comparison of different design codes," European Journal of Environmental and Civil Engineering, vol. 26, no. 6, pp. 2057–2073, Apr. 2022. DOI: https://doi.org/10.1080/19648189.2020.1749941
Downloads
How to Cite
License
Copyright (c) 2025 Mahmood Ghanim Abdul Jawad, Amjad H. Khalil Albayati

This work is licensed under a Creative Commons Attribution 4.0 International License.
Authors who publish with this journal agree to the following terms:
- Authors retain the copyright and grant the journal the right of first publication with the work simultaneously licensed under a Creative Commons Attribution License that allows others to share the work with an acknowledgement of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgement of its initial publication in this journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) after its publication in ETASR with an acknowledgement of its initial publication in this journal.