Mechanical and Deformation Performance of Masonry Walls with Low-Strength Mortar Retrofitting Using Spray-on Polyurethane Coating
Abstract
:1. Introduction
2. Polyurethane Elastomer Mechanical Properties
2.1. Monotonic Tensile Test
2.2. Shear Bond Strength Test
3. Experiment Program
3.1. Test Specimens
3.2. Mechanical Characterization of The Materials
3.3. Test Setup, Instrumentation, and Loading Protocol
4. Experimental Results and Discussion
4.1. Experimental Observations and Failure Mechanisms
4.2. Hysteretic Response
4.3. Envelopes and Mechanical Performance
4.4. Stiffness and Strength Degradation
4.5. Energy Dissipation Capacity
4.6. Full-Field Lateral Displacement Analysis
5. Conclusions
- The feasibility of application was confirmed through monotonic tensile tests and shear bond strength tests on polyurethane samples. These tests demonstrated that high elongation and adequate shear bond strength with brick masonry can be achieved using hand-held spray guns. This suggests that the implementation of spray-on polyurethane coating technology is straightforward and accessible, without significant technical barriers;
- The cyclic lateral loading tests revealed that the spray-on polyurethane coating can significantly delay the initiation and progression of cracks in masonry walls, thereby enhancing their deformation and energy dissipation capacity. Compared to the unstrengthened specimen BW-U, the drift corresponding to the peak load and ultimate state of the single-side strengthened specimen BW-S increased by 109% and 60%, respectively. Moreover, cumulative energy dissipation increased by 514%;
- The application of polyurethane coating has been found to increase the load-bearing capacity of the specimen without compromising its lateral stiffness. Compared to the specimen BW-U, the peak load of the specimen BW-S increased by approximately 20%;
- The double-side strengthened specimen, BW-D, exhibited improved integrity, deformation capacity, and energy dissipation capacity compared to its single-side strengthened counterpart, BW-S. Specifically, BW-D’s ultimate displacement and cumulative energy dissipation saw an increase of 28% and 10%, respectively.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Sample Groups a | No. of Coupons | Elastic Modulus | Tensile Strength | Elongation at Fracture | |||
---|---|---|---|---|---|---|---|
Mean (MPa) | COV (%) | Mean (MPa) | COV (%) | Mean | COV (%) | ||
I | 10 | 63.0 | 10.5% | 11.3 | 8.4% | 5.0 | 7.3% |
II | 8 | 44.8 | 14.1% | 12.4 | 11.2% | 4.7 | 13.1% |
III | 11 | 29.3 | 9.1% | 11.5 | 9.4% | 6.6 | 7.1% |
Overall | 29 b | 45.2 | 34.0% | 11.7 | 10.0% | 5.5 | 17.0% |
Specimen ID | Description | Strengthening Details | |
---|---|---|---|
Technique | Polyurethane Thickness | ||
MW-U | Control | -- | -- |
MW-S | Strengthened | Single-side spraying | 3~4 mm |
MW-D | Strengthened | Double-side spraying | 3~4 mm |
Material Properties | No. of Samples | Mean (MPa) | COV (%) |
---|---|---|---|
Brick | |||
Compressive strength | 9 | 26.37 | 9.4 |
Mortar | |||
Compressive strength | 6 | 2.27 | 2.9 |
Masonry | |||
Shear bond strength | 9 | 0.13 | 63.2 |
Compressive strength | 6 | 4.08 | 17.9 |
Shear strength | 2 | 0.17 | 1.8 |
Specimen | Δy (mm) | Δm (mm) | Δu (mm) | Pm (kN) | K1st | Edc, final | ||||
---|---|---|---|---|---|---|---|---|---|---|
Push | Pull | Push | Pull | Push | Pull | Push | Pull | (kN/mm) | (kNm) | |
BW-U | 1.48 | 0.96 | 3.85 | 3.74 | 8.07 | 7.99 | 275.6 | 245.5 | 122.4 | 16.6 |
BW-S | 4.46 | 1.76 | 7.85 | 8.01 | 12.54 | 13.21 | 325.5 | 298.8 | 125.0 | 102.0 |
BW-D | 2.02 | 2.11 | 5.88 | 5.58 | 16.49 | 16.52 | 303.8 | 264.8 | 109.9 | 112.7 |
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Chen, H.; Liu, Y.; Tian, Y.; Huang, Q. Mechanical and Deformation Performance of Masonry Walls with Low-Strength Mortar Retrofitting Using Spray-on Polyurethane Coating. Buildings 2023, 13, 2470. https://doi.org/10.3390/buildings13102470
Chen H, Liu Y, Tian Y, Huang Q. Mechanical and Deformation Performance of Masonry Walls with Low-Strength Mortar Retrofitting Using Spray-on Polyurethane Coating. Buildings. 2023; 13(10):2470. https://doi.org/10.3390/buildings13102470
Chicago/Turabian StyleChen, Hai, Yang Liu, Ying Tian, and Qunxian Huang. 2023. "Mechanical and Deformation Performance of Masonry Walls with Low-Strength Mortar Retrofitting Using Spray-on Polyurethane Coating" Buildings 13, no. 10: 2470. https://doi.org/10.3390/buildings13102470
APA StyleChen, H., Liu, Y., Tian, Y., & Huang, Q. (2023). Mechanical and Deformation Performance of Masonry Walls with Low-Strength Mortar Retrofitting Using Spray-on Polyurethane Coating. Buildings, 13(10), 2470. https://doi.org/10.3390/buildings13102470