Study of Mechanical and Fracture Properties of Concrete with Different Lengths of Polypropylene Fibers
Abstract
1. Introduction
2. Materials and Methods
2.1. Concrete Mixtures
2.2. Experimental Program
2.2.1. Workability
2.2.2. Volumetric Mass
2.2.3. Compressive Strength
2.2.4. Tensile Splitting Strength
2.2.5. Elastic Modulus
2.2.6. Fracture Mechanics
- (i)
- interpolation of a straight line through the initial ascending branch,
- (ii)
- iterative removal of outlier points until the correlation coefficient (R2) approached unity, and
- (iii)
- recalculation of fracture parameters using the adjusted curve.
3. Results
3.1. Mechanical Test
3.2. Fracture Properties
4. Summary and Discussion
5. Conclusions
- The addition of hybrid polypropylene fibers significantly improved the strength properties. The optimal mixture (2.0/0.5/0.5 kg/m3) increased compressive strength by 28.7% and splitting tensile strength by 30.1% compared with the reference concrete without fibers.
- The elastic modulus was only slightly affected, with changes within ±8% depending on fiber dosage.
- Fracture parameters were strongly influenced: fracture toughness and specific fracture energy were notably higher in fiber-reinforced mixtures. The hybridization provided a synergistic effect, where longer fibers bridged macrocracks and shorter fibers reduced microcrack propagation.
- Higher fiber contents (≥4.0/1.0/1.0 kg/m3) led to reduced workability and strength, likely due to fiber clustering and compaction difficulties, although fracture energy was still improved.
- The novelty of this work lies in the systematic evaluation of a fixed hybrid fiber ratio (4:1:1), combining macro- and microfibers in one mixture and simultaneously assessing mechanical and fracture properties.
- Limitations of this study include the use of only one commercial fiber type (Forta Ferro), the absence of microstructural validation (e.g., SEM or XCT), and the lack of long-term durability tests. Future research should therefore focus on different fiber brands, detailed microstructural analyses, and durability studies (e.g., freeze–thaw, chloride penetration, and carbonation).
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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C_reference | C_2.0/0.5/0.5 | C_4.0/1.0/1.0 | C_6.0/1.5/1.5 | |
---|---|---|---|---|
Portland Cement CEM I 42.5R [kg] | 340 | 340 | 340 | 340 |
Fly ash [kg] | 80 | 80 | 80 | 80 |
Fine aggregate 0/4 [kg] | 784 | 784 | 784 | 784 |
Coarse aggregate 4/8 [kg] | 920 | 920 | 920 | 920 |
Superplastificator [kg] | 5 | 6 | 6 | 6 |
Water [L] | 180 | 162 | 166 | 165 |
Mixture | C_2.0/0.5/0.5 | C_4.0/1.0/1.0 | C_6.0/1.5/1.5 |
---|---|---|---|
Relative difference | 0.9% | −0.9% | −2.2% |
Mixture | C_2.0/0.5/0.5 | C_4.0/1.0/1.0 | C_6.0/1.5/1.5 |
---|---|---|---|
Relative difference | 28.7% | 9.3% | 14.7% |
Mixture | C_2.0/0.5/0.5 | C_4.0/1.0/1.0 | C_6.0/1.5/1.5 |
---|---|---|---|
Relative difference | 30.1% | 27.4% | 23.3% |
Mixture | C_2.0/0.5/0.5 | C_4.0/1.0/1.0 | C_6.0/1.5/1.5 |
---|---|---|---|
Relative difference | 4.7% | 7.8% | 0.0% |
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Hrabová, K.; Láník, J.; Lehner, P. Study of Mechanical and Fracture Properties of Concrete with Different Lengths of Polypropylene Fibers. Buildings 2025, 15, 3041. https://doi.org/10.3390/buildings15173041
Hrabová K, Láník J, Lehner P. Study of Mechanical and Fracture Properties of Concrete with Different Lengths of Polypropylene Fibers. Buildings. 2025; 15(17):3041. https://doi.org/10.3390/buildings15173041
Chicago/Turabian StyleHrabová, Kristýna, Jaromír Láník, and Petr Lehner. 2025. "Study of Mechanical and Fracture Properties of Concrete with Different Lengths of Polypropylene Fibers" Buildings 15, no. 17: 3041. https://doi.org/10.3390/buildings15173041
APA StyleHrabová, K., Láník, J., & Lehner, P. (2025). Study of Mechanical and Fracture Properties of Concrete with Different Lengths of Polypropylene Fibers. Buildings, 15(17), 3041. https://doi.org/10.3390/buildings15173041