Synergistic Effects of Steel Fiber and Rubber Powder on the Physico-Mechanical Properties of UHPC
Abstract
1. Introduction
2. Materials and Methods
2.1. Raw Materials
2.2. Experiment Design and Mixing Procedure
2.3. Test Methods
3. Results
3.1. Flowability
3.2. Compressive Strength
3.3. Splitting Tensile Strength
3.4. Abrasion Resistance
3.5. Chloride Ion Penetration Resistance
4. Discussion
5. Conclusions
- (1)
- Steel fibers are pivotal for enhancing mechanical strength and abrasion resistance. The 20 mm hook-end fibers provided the best overall performance due to superior crack-bridging and anchorage. A content of 2.0% to 2.5% was identified as the effective range for maximizing compressive/tensile strength and abrasion resistance (up to 72.4% improvement), beyond which flowability is significantly compromised. Rubber powder improves flowability (peaking at 10% replacement) and abrasion resistance (up to 41.1% increase at 30%) through its elastic and lubricating effects. However, it inevitably reduces mechanical strength and increases chloride permeability. For applications where durability against chloride ingress is critical, its content should be limited, whereas for applications prioritizing abrasion/impact resistance, higher contents (e.g., 20–30%) can be utilized.
- (2)
- The co-incorporation of both materials enables a synergistic design strategy to balance the trade-offs. The three-dimensional steel fiber network can physically confine the weak interfacial zones around rubber particles, suppressing the growth of microcracks. An optimized blend of approximately 2% steel fiber (14–20 mm hook-end) with 10–15% rubber powder is recommended. This combination leverages the rubber’s flowability and energy-absorption benefits while utilizing the fiber network to maintain robust mechanical strength and mitigate chloride diffusion, offering a practical pathway for designing UHPC with balanced performance.
- (3)
- The developed UHPC with rubber powder and steel fiber shows high potential for sustainable construction in demanding environments, such as heavy-duty pavements, bridge deck overlays, and marine splash zones, where enhanced abrasion resistance, impact tolerance, and a reduced carbon footprint are simultaneously required. Future research should focus on the following: Microscopic validation of the proposed synergistic mechanisms using SEM and MIP to directly observe the fiber–rubber–matrix interactions; long-term field performance and durability monitoring under real environmental conditions; life cycle assessment to quantitatively evaluate the environmental benefits of this sustainable UHPC system; and numerical modeling of its abrasion resistance to facilitate predictive design.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| CaO | SiO2 | Fe2O3 | MgO | Ti2O3 | Al2O3 | K2O | Rest |
|---|---|---|---|---|---|---|---|
| 64.48 | 21.4 | 3.5 | 1.46 | 0.58 | 5.45 | 0.80 | 2.33 |
| CaO | SiO2 | MgO | Al2O3 | K2O | Na2O | P2O5 | Rest |
|---|---|---|---|---|---|---|---|
| 0.37 | 95.12 | 0.42 | 0.23 | 0.86 | 0.13 | 2.0 | 0.87 |
| CaO | SiO2 | Fe2O3 | MgO | TiO2 | Al2O3 | K2O | Na2O | SO3 | Rest |
|---|---|---|---|---|---|---|---|---|---|
| 12.41 | 49.55 | 4.35 | 1.54 | 1.09 | 24.55 | 0.95 | 0.19 | 0.91 | 4.46 |
| Water Absorption | Hardness | Roughness | Unconfined Compressive Strength (MPa) | Brazilian Splitting Strength (MPa) | Angularity |
|---|---|---|---|---|---|
| 12.41 | 49.55 | 4.35 | 1.54 | 1.09 | 24.55 |
| Steel Fiber | Length/mm | Shape | Tensile Strength/MPa | Equivalent Diameter/mm | Length–Diameter Ratio |
|---|---|---|---|---|---|
| Type-1 | 8 | Straight | 2700 | 0.145 | 55 |
| Type-2 | 14 | Hook-end | 2550 | 0.22 | 65 |
| Type-3 | 20 | Hook-end | 2550 | 0.30 | 65 |
| Samples | Coarse Aggregate | Cement | Silica Fume | Fly Ash | Water | PS | Steel Fiber | Steel Fiber Type | Quartz Sand | Rubber Powder |
|---|---|---|---|---|---|---|---|---|---|---|
| 0Ru-0St | 600 | 610.09 | 87.16 | 174.31 | 139.45 | 17.43 | / | / | 871.56 | 0 |
| 5Ru-0St | 600 | 610.09 | 87.16 | 174.31 | 139.45 | 17.43 | / | / | 827.98 | 43.578 |
| 10Ru-0St | 600 | 610.09 | 87.16 | 174.31 | 139.45 | 17.43 | / | / | 784.40 | 87.156 |
| 15Ru-0St | 600 | 610.09 | 87.16 | 174.31 | 139.45 | 17.43 | / | / | 740.83 | 130.73 |
| 20Ru-0St | 600 | 610.09 | 87.16 | 174.31 | 139.45 | 17.43 | / | / | 697.25 | 174.31 |
| 30Ru-0St | 600 | 610.09 | 87.16 | 174.31 | 139.45 | 17.43 | / | / | 610.09 | 261.46 |
| 0Ru-0.5St14 | 600 | 597.49 | 85.36 | 170.71 | 136.57 | 17.07 | 39.25 | 14 mm | 853.55 | / |
| 0Ru-1St14 | 600 | 584.89 | 83.56 | 167.11 | 133.69 | 16.71 | 78.5 | 14 mm | 835.55 | / |
| 0Ru-1.5St14 | 600 | 572.28 | 81.75 | 163.51 | 130.81 | 16.35 | 117.75 | 14 mm | 817.54 | / |
| 0Ru-2St14 | 600 | 559.68 | 79.95 | 159.91 | 127.93 | 15.99 | 157 | 14 mm | 799.54 | / |
| 0Ru-2.5St14 | 600 | 547.05 | 78.15 | 156.3 | 125.04 | 15.63 | 196.25 | 14 mm | 781.5 | / |
| 0Ru-2St8 | 600 | 559.68 | 79.95 | 159.91 | 127.93 | 15.99 | 157 | 8 mm | 799.54 | / |
| 0Ru-2St20 | 600 | 559.68 | 79.95 | 159.91 | 127.93 | 15.99 | 157 | 20 mm | 799.54 | / |
| 5Ru-2St14 | 600 | 559.68 | 79.95 | 159.91 | 127.93 | 15.99 | 157 | 14 mm | 759.56 | 39.98 |
| 10Ru-2St14 | 600 | 559.68 | 79.95 | 159.91 | 127.93 | 15.99 | 157 | 14 mm | 719.59 | 79.95 |
| 15Ru-2St14 | 600 | 559.68 | 79.95 | 159.91 | 127.93 | 15.99 | 157 | 14 mm | 679.61 | 119.93 |
| 20Ru-2St14 | 600 | 559.68 | 79.95 | 159.91 | 127.93 | 15.99 | 157 | 14 mm | 639.63 | 159.91 |
| 30Ru-2St14 | 600 | 559.68 | 79.95 | 159.91 | 127.93 | 15.99 | 157 | 14 mm | 559.68 | 239.86 |
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Luo, C.; Wang, H.; Cai, D.; Wang, A.; Zhang, L.; Wang, D.; Wang, C.; Kong, D.; Huang, S.; Xu, C. Synergistic Effects of Steel Fiber and Rubber Powder on the Physico-Mechanical Properties of UHPC. Sustainability 2026, 18, 846. https://doi.org/10.3390/su18020846
Luo C, Wang H, Cai D, Wang A, Zhang L, Wang D, Wang C, Kong D, Huang S, Xu C. Synergistic Effects of Steel Fiber and Rubber Powder on the Physico-Mechanical Properties of UHPC. Sustainability. 2026; 18(2):846. https://doi.org/10.3390/su18020846
Chicago/Turabian StyleLuo, Changqing, Hao Wang, Dongbo Cai, Anni Wang, Lianzhen Zhang, Deming Wang, Chao Wang, Degao Kong, Sining Huang, and Chaohui Xu. 2026. "Synergistic Effects of Steel Fiber and Rubber Powder on the Physico-Mechanical Properties of UHPC" Sustainability 18, no. 2: 846. https://doi.org/10.3390/su18020846
APA StyleLuo, C., Wang, H., Cai, D., Wang, A., Zhang, L., Wang, D., Wang, C., Kong, D., Huang, S., & Xu, C. (2026). Synergistic Effects of Steel Fiber and Rubber Powder on the Physico-Mechanical Properties of UHPC. Sustainability, 18(2), 846. https://doi.org/10.3390/su18020846

