Performance of Self-Healing Cementitious Composites Using Aligned Tubular Healing Fiber
Abstract
:1. Introduction
2. Materials and Mixtures
3. Alignment of Tubular PVDF Fibers Using Electromagnetic Field
3.1. Optimal Required Conditions
3.2. Healing Fiber Amount across a Crack Section in AHFCC-2SF and RHFCC
3.3. Self-Healing Activation Process
4. Healing Efficiency of Aligned Tubular Fibers Full of Healing Agent
4.1. Specimen Recovery According to the Splitting Tensile Strength
4.2. Specimen Recovery According to the Permeability
5. Discussion
5.1. Influence of the Alignment of Hybrid Fiber on the Composite Mechanical Performance
5.2. Practical Use of the Self-Healing Method in the Construction Field
6. Conclusions
- The analysis of the optimum requirements for an efficient alignment process using a magnetic field showed an effective influence in using a hybrid fiber (combination of two steel fibers with each healing fiber) for the alignment process. Additionally, in regards to the quantities of the combined steel fiber, the mixture’s workability also intervenes as a key element for an effective automatic alignment process using a magnetic field. The mixture workability should be lower than the magnetic field, to allow an effective alignment of the healing fibers. However, a mixture with a viscosity too low will, on the contrary, lead the fibers to sink into the mixture.
- The healing fibers’ orientations showed an effective influence on the healing capability, with the aligned healing fibers providing a more effective recovery than with the randomly distributed healing fibers, according to a repetitive splitting tensile test before and after healing, as well as permeability properties. This is due to the amount of the containers that penetrate the crack cross-section through the alignment of the healing fibers in the composite.
- Additionally, the presence of healing fibers in the matrix of the cementitious composite showed a decreasing effect on the material’s mechanical properties. However, according to the research results and based on previous literature, it has been deduced that the healing fibers’ effect on the mechanical properties can be neglected compared to the healing capability obtained by aligning the healing fibers parallel to the direction of the tensile stress in the cementitious composite matrix.
- In the case of this research, the self-healing activation process requested a maximum time of up to 10 days, due to the setting time of the healing agent to ensure an effective healing process. This setting time may differ from other cases according to the circumstance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Specimen Type | W/C | Cement (kg/m3) | Sand (kg/m3) | Water (kg/m3) | Super Plasticizer (kg/m3) | Spread (mm) | Distribution of Healing Fiber |
---|---|---|---|---|---|---|---|
AHFCC | 0.36 | 651 | 1302 | 235 | 1.34 | 240 | Aligned |
RHFCC | 0.36 | 651 | 1302 | 235 | 1.34 | 240 | Random |
Specimen Type | Average Crack Width (μm) | Healing Fiber Content (%) | Steel Fiber Content (%) | Splitting Tensile Strength (MPa) | |
---|---|---|---|---|---|
Before healing | AHFCC | 270 | 0.06% | 0.08% | 2.09 |
RHFCC | 220 | 0.04% | 0.08% | 2.31 | |
After healing | AHFCC | 260 | 0.06% | 0.08% | 1.31 |
RHFCC | 1070 | 0.04% | 0.08% | 1.09 |
Specimen Type | Average Crack Width (μm) before Healing | Average Water Flow Q at Constant Phase (m3/s) | Darcy’s Coefficient of Permeability K (m/s) |
---|---|---|---|
AHFCC | 270 | 1.183 × 10⁻8 | 1.53 × 10⁻10 |
RHFCC | 220 | 5.689 × 10⁻7 | 7.39 × 10⁻9 |
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Mu, R.; Soro, D.L.; Wang, X.; Qing, L.; Cao, G.; Mei, S.; Liu, Y. Performance of Self-Healing Cementitious Composites Using Aligned Tubular Healing Fiber. Materials 2021, 14, 6162. https://doi.org/10.3390/ma14206162
Mu R, Soro DL, Wang X, Qing L, Cao G, Mei S, Liu Y. Performance of Self-Healing Cementitious Composites Using Aligned Tubular Healing Fiber. Materials. 2021; 14(20):6162. https://doi.org/10.3390/ma14206162
Chicago/Turabian StyleMu, Ru, Dogniman Landry Soro, Xiaowei Wang, Longbang Qing, Guorui Cao, Shaolin Mei, and Yongshuai Liu. 2021. "Performance of Self-Healing Cementitious Composites Using Aligned Tubular Healing Fiber" Materials 14, no. 20: 6162. https://doi.org/10.3390/ma14206162
APA StyleMu, R., Soro, D. L., Wang, X., Qing, L., Cao, G., Mei, S., & Liu, Y. (2021). Performance of Self-Healing Cementitious Composites Using Aligned Tubular Healing Fiber. Materials, 14(20), 6162. https://doi.org/10.3390/ma14206162