Strengthening Effect of the Fixing Method of Polypropylene Band on Unreinforced Brick Masonry in Flexural, Shear, and Torsion Behaviors
Abstract
:1. Introduction
2. Target Fracture Pattens of Unreinforced Brick Masonry Wall
3. Materials and Methods for Fixing PP Band to Brick
3.1. Materials
3.1.1. Brick and Mortar
3.1.2. Strengthening Material
3.2. PP Band Fixing Method to Brick Tests
4. Experimental Tests
4.1. Flexural Tests
4.2. Shear Tests
4.3. Torsion Tests
5. Results and Discussion
5.1. Flexural Tests
5.2. Shear Tests
5.3. Torsion Tests
6. Conclusions
- Strengthening the prism specimens with PP bands in the flexural tests significantly improved their performances in terms of load-carrying capacities and deflections at the first crack and ultimate failure that were the findings in this study. The PP band specimens showed 1.70 times and 1.62 times higher capacities than those of the non-PP band specimens. Improvements in the load-carrying capacity and deflection capacity were observed.
- In the shear tests, the strengthened specimens represented negligible increases in the shear strength at the peak load for all pre-compression ranges of 0–0.6 N/mm2. After the specimens were damaged, the load did not increase and gradually decreased. Therefore, the use of the PP band is not yet effective for strengthening triplet specimens under pre-compression.
- In the torsion tests, improvements of 1.21 times and 1.47 times in the load-carrying capacity and deformation capacity at the first crack were observed, respectively. Nevertheless, at ultimate failure, the load-carrying capacity was lower than that at the first crack, even though PP bands were also effective in increasing the load. Thanks to PP band strengthening, the collapse times of the specimens were extended.
- The proposed fixing method was effective in improving performances, restricting separation at the brick–mortar interface, and maintaining the specimens’ integrity, particularly in the flexural tests.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- The World Bank. Vietnam Post-Typhoon Damrey Rapid Damage and Needs Assessment; Khanh Hoa Provincial People’s Committee: Hanoi, Vietnam, 2017. [Google Scholar]
- News.abs-cbn.com. Over 60 Feared Dead after Typhoon Molave Slams into Vietnam. Available online: https://news.abs-cbn.com/overseas/10/30/20/over-60-feared-dead-after-typhoon-molave-slams-into-vietnam (accessed on 30 October 2020).
- Takagi, H.; Thao, D.N.; Esteban, M. Tropical cyclones and storm surges in southern Vietnam. Eng. Plan. Perspect. 2014, 2014, 3–16. [Google Scholar]
- Trinh, T.T.; Charitha, P.; Toan, B. The contribution of forerunner to storm surges along the Vietnam coast. J. Mar. Sci. Eng. 2020, 8, 508. [Google Scholar] [CrossRef]
- Pandey, R.S.; Liou, Y.A. Decadal behaviors of tropical storm stacks in the North West Pacific Ocean. J. Atmos. Res. 2020, 246, 105143. [Google Scholar] [CrossRef]
- World-habitat.org. Preventing Typhoon Damage to Housing, Central Vietnam. Available online: https://world-habitat.org/world-habitat-awards/winners-and-finalists/preventing-typhoon-damage-to-housing-central-viet-nam/#peer-exchange (accessed on 28 September 2008).
- Lee, S. Disaster resilience of low-cost houses: Case study of Thua Thien Hue province. J. Civ. Eng. Archit. 2017, 5, 141–151. [Google Scholar] [CrossRef]
- Babaeidarabad, S.; Arboleda, D.; Loreto, G.; Manni, A. Shearing strengthening of un-reinforced concrete masonry walls with fabric-reinforced-cementitious-matrix. J. Constr. Build. Mater. 2014, 65, 243–253. [Google Scholar] [CrossRef]
- Bhattacharya, S.; Nayak, S.; Dutta, S.C. A critical review of retrofitting methods for unreinforced masonry structure. Int. J. Disaster Risk Reduct. 2014, 7, 51–67. [Google Scholar] [CrossRef]
- Architectural Institute of Japan (AIJ). Technical Information for Disaster Mitigation of Masonry Structure. Available online: http://news-sv.aij.or.jp/kouzou/s5/fruit/Technical%20Information%20for%20Disaster%20Mitigation%20of%20Masonry%20Structures_20170309.pdf (accessed on 9 March 2017).
- Al-Jaberi, Z.; Myers, J.J.; Elgawady, M.A. Out-of-plane flexural behavior of reinforced masonry walls strengthened with near-surface-mounted fiber-reinforced polymer. ACI Struct. J. 2018, 115, 997–1010. [Google Scholar] [CrossRef]
- Al-Jaberi, Z.; Myers, J.J.; Elgawady, M.A. Experimental and analytical approach for prediction of out-of-plane capacity of reinforced masonry walls strengthened with externally bonded FRP laminate. J. Compos. Constr. 2019, 23, 04019026. [Google Scholar] [CrossRef]
- Mayorca, P.; Meguro, K. Efficiency of polypropylene bands for the strengthening of masonry structures in developing countries. In Proceedings of the 5th International Summer Symposium, Japan Society of Civil Engineers (JSCE), Tokyo, Japan, 8 June 2003. [Google Scholar]
- Mayorca, P.; Meguro, K. Proposal of an efficient technique for retrofitting unreinforced masonry dwellings. In Proceedings of the 13th World Conference on Earthquake Engineering, Vancouver, BC, Canada, 1–6 August 2004. [Google Scholar]
- Bhattacharya, S.; Macabuag, J.; Gurgain, R. Seismic retrofitting of non-engineering masonry in rural Nepal. Proc. Inst. Civ. Eng. Struct. Build. 2012, 165, 273–286. [Google Scholar]
- Umair, S.U.; Numada, M.; Amin, M.N.; Meguro, K. Fiber reinforced polymer and polypropylene composite retrofitting technique for masonry structure. J. Polym. 2015, 7, 963–984. [Google Scholar] [CrossRef]
- Macabuag, J.; Bhattacharya, S.; Blakeborough, T. Extending the collapse time of non-engineered masonry buildings under seismic loading. In Proceedings of the 14th World Conference on Earthquake Engineering, Beijing, China, 20 February 2008. [Google Scholar]
- Banerjee, S.; Nayak, S.; Das, S. Enhancing the flexural behavior of masonry wallet using PP band and steel wire mesh. J. Constr. Build. Mater. 2019, 194, 179–191. [Google Scholar] [CrossRef]
- Velazquez-Dimas, J.I.; Ehsani, M.R. Modelling out-of-plane behavior of URM walls retrofitted with fiber composites. J. Compos. Constr. 2000, 4, 172–181. [Google Scholar] [CrossRef]
- Richard, D.J.; Jenes, B. Assessment of out-of-plane failure of non-engineering masonry wall due to storm surges. Int. J. Geomate 2019, 17, 1–7. [Google Scholar]
- Willis, C.R. Design of Unreinforced Masonry Walls for Out-of-Plane Loading. Ph.D. Thesis, University of Adelaide, Adelaide, Australia, 2004. [Google Scholar]
- Chang, L.-Z.; Rots, G.R.; Esposito, R. Influence of aspect ratio and pre-compression on force capacity of unreinforced masonry wall in out-of-plane two-way bending. J. Eng. Struct. 2021, 249, 113350. [Google Scholar] [CrossRef]
- Vasconcelos, G.; Lourenco, P. Experimental characterization of stone masonry in shear and compression. J. Constr. Build. Mater. 2009, 23, 3337–3345. [Google Scholar] [CrossRef]
- JIS R 1250; Common Bricks and Facing Bricks. Japanese Industrial Standards Committee: Tokyo, Japan, 2011.
- JIS R 2213; Test Method for Modulus of Rupture of Refractory Bricks. Japanese Industrial Standards Committee: Tokyo, Japan, 1995.
- JIS R 5201; Physical Testing Methods for Cement. Japanese Industrial Standards Committee: Tokyo, Japan, 2015.
- JIS Z 1527; Polypropylene Band. Japanese Industrial Standards Committee: Tokyo, Japan, 2002.
- ASTM E518-03; Standard Test Methods for Flexural Bond Strength of Masonry. American Society for Testing and Materials: West Conshohocken, PA, USA, 2010.
- Binda, L.; de Vekey, B.; Acharhabi, A.; Baronio, G.; Bekker, P.; Borchelt, G.; Bright, N.; Emrich, F.; Forde, M.; Gallegos, H.; et al. RILEM TC 127-MS. Tests for masonry materials and structures. Mater. Struct. 1996, 29, 459–475. [Google Scholar]
- Hansen, K.F.; Pedersen, C.M. Torsion testing of bed joints. Int. Mason. Soc. 2008, 21, 10. [Google Scholar]
- Hansen, K.F.; Pedersen, C.M. Shear and torsion testing of brick-mortar joints. Int. Mason. Soc. 2009, 22, 31–38. [Google Scholar]
Type of Material | Properties | Values (COVs) | |
---|---|---|---|
Brick | Dimension | 210 mm × 100 mm × 60 mm | |
Density | 1.98 g/cm3 | ||
Water absorption | 9% (4.3%) | ||
Flexural strength | 5.2 N/mm2 (9.8%) | ||
Compressive strength | 36 N/mm2 (10.3%) | ||
Young’s modulus | 15,700 N/mm2 | ||
Ordinary Portland Cement | Density | 3.15 g/cm3 | |
Specific surface area | 3490 cm2/g | ||
Pit Sand | Density | 2.61 g/cm3 | |
Mortar | Flexural strength Compressive strength Young’s modulus | 28 days | 3.6 N/mm2 (10.4%) 17.4 N/mm2 (11.5%) 2400 N/mm2 |
Experiment day | 4.7 N/mm2 (11.7%) 23 N/mm2 (12.6%)- |
Type of Material | Properties | Values |
---|---|---|
PP band | Width | 15.5 mm |
Thickness | 0.5 mm | |
Density | 0.9 g/cm3 | |
Tensile strength | 194.6 N/mm2 | |
Cut-off strain | 13.0% | |
Modulus of elasticity | 1500 N/mm2 |
Case | Sample | Load, N | Tensile Strength, N/mm2 | Strain | Average of Tensile Strength, N/mm2 | Average of Strain |
---|---|---|---|---|---|---|
1 | OW-1 OW-2 OW-3 | 262 272 317 | 33.7 35.1 40.7 | 0.011 0.012 0.016 | 36.5 | 0.013 |
2 | OWPP-1 OWPP-2 OWPP-3 | 442 452 538 | 57.0 58.3 69.4 | 0.025 0.027 0.031 | 61.6 | 0.028 |
3 | TWPP-1 TWPP-2 TWPP-3 | 628 607 649 | 81.0 78.3 83.7 | 0.055 0.038 0.045 | 81.0 | 0.046 |
Numbers | Weight W, N | Span L, mm | Wide b, mm | Depth d, mm | |
---|---|---|---|---|---|
FN-1 FN-2 FN-3 FN-4 | Non PP band | 200.3 199.8 198.3 198.1 | 426 427 427 427 | 210.0 209.5 210.3 209.7 | 100.0 100.5 100.0 99.80 |
FP-1 FP-2 FP-3 FP-4 FP-5 | PP band | 203.4 200.4 198.1 201.6 205.1 | 432 427 428 430 432 | 209.8 211.5 210.0 210.5 210.0 | 100.0 101.2 101.6 100.0 100.0 |
Numbers | Span L, mm | Length a, mm | Width b, mm | |
---|---|---|---|---|
TN-1 TN-2 TN-3 TN-4 TN-5 | Non PP band | 262 263 260 262 266 | 105.0 106.4 105.3 105.5 105.2 | 100.0 100.5 100.0 99.80 100.0 |
TP-1 TP-2 TP-3 TP-4 TP-5 | PP band | 264 263 265 266 267 | 104.8 105.0 106.5 106.0 104.5 | 100.0 101.2 101.6 100.0 100.0 |
Specimens | First Crack | Ultimate Failure | First Crack | Ultimate Failure | First Crack | Ultimate Failure | Deflection Ductility, Times | Average of Improvement, Times | |||
---|---|---|---|---|---|---|---|---|---|---|---|
Load, kN | Deflection, mm | Load, kN | Deflection, mm | Flexural Strength, N/mm2 | Flexural Moment, kNm | Deflection (First Crack) | Moment (First Crack and Ultimate Failure) | ||||
FN-1 FN-2 FN-3 FN-4 Ave. | 1.53 1.63 1.46 1.50 1.53 | 0.041 0.016 0.025 0.020 0.026 | - - - - - | - - - - - | 0.34 0.36 0.33 0.34 0.343 | - - - - - | 0.163 0.173 0.155 0.159 0.163 | - - - - - | 1.0 1.0 1.0 1.0 | - | - |
FP-1 FP-2 FP-3 FP-4 FP-5 Ave. | 1.99 1.85 2.23 1.82 1.77 1.93 | 0.042 0.040 0.035 0.039 0.054 0.042 | 2.58 2.61 2.49 2.83 2.32 2.57 | 16.38 9.53 14.65 22.09 6.55 | 0.44 0.39 0.46 0.40 0.40 0.418 | 0.57 0.55 0.51 0.61 0.52 0.552 | 0.216 0.198 0.234 0.196 0.194 0.208 | 0.280 0.279 0.262 0.304 0.254 0.276 | 390 238 419 566 121 | 1.62 | 1.28 and 1.70 |
Specimens | Load, kN | Slip, mm | Pre-Compression σ, N/mm2 or N | Shear Stress τ, N/mm2 | Stiffness, N/mm3 | Average of Shear Stress τ, N/mm2 | Average of Slip, mm |
---|---|---|---|---|---|---|---|
SN0-1 SN0-2 SN0-3 | 17.87 14.78 16.33 | 0.084 0.072 0.077 | 0 | 0.43 0.35 0.39 | 5.12 4.86 5.06 | 0.39 | 0.078 |
SN02-1 SN02-2 SN02-3 SN02-4 SN02-5 | 19.98 24.47 19.38 22.01 21.78 | 0.094 0.101 0.102 0.116 0.095 | 0.2 (4200 N) | 0.48 0.58 0.46 0.52 0.52 | 5.11 5.74 4.51 4.48 5.47 | 0.51 | 0.102 |
SN04-1 SN04-2 SN04-3 SN04-4 SN04-5 | 34.29 32.17 38.00 36.72 33.49 | 0.128 0.121 0.129 0.132 0.130 | 0.4 (8400 N) | 0.82 0.77 0.90 0.87 0.80 | 6.38 6.33 7.01 6.62 6.13 | 0.83 | 0.128 |
SN06-1 SN06-2 SN06-3 SN06-4 SN06-5 | 49.65 52.60 54.47 54.07 50.43 | 0.185 0.235 0.208 0.194 0.211 | 0.6 (12,600 N) | 1.18 1.25 1.29 1.19 1.20 | 6.38 5.32 6.20 6.13 5.69 | 1.22 | 0.207 |
Specimens | Load, kN | Slip, mm | Pre-Compression σ, N/mm2 | Shear Stress τ, N/mm2 | Stiffness, N/mm3 | Average of Shear Stress τ, N/mm2 | Average of Slip, mm |
---|---|---|---|---|---|---|---|
SP02-1 SP02-2 SP02-3 SP02-4 | 26.94 20.43 24.57 23.61 | 0.126 0.100 0.108 0.116 | 0.2 (4200 N) | 0.64 0.49 0.59 0.56 | 5.08 4.90 5.46 4.82 | 0.57 | 0.113 |
SP04-1 SP04-2 SP04-3 SP04-4 | 37.24 33.72 36.54 34.66 | 0.133 0.121 0.128 0.115 | 0.4 (8400 N) | 0.89 0.80 0.87 0.83 | 6.69 6.60 6.80 7.22 | 0.85 | 0.124 |
SP06-1 SP06-2 SP06-3 SP06-4 | 55.62 51.54 57.21 53.34 | 0.223 0.203 0.318 0.196 | 0.6 (12,600 N) | 1.32 1.23 1.36 1.27 | 5.92 6.06 4.27 6.48 | 1.29 | 0.235 |
Specimens | First Crack | Ultimate Failure | First Crack | Ultimate Failure | Deflection Ductility, Times | First Crack | Ultimate Failure | Average of Improvement, Times (First Crack) | |||
---|---|---|---|---|---|---|---|---|---|---|---|
Load, kN | Deformation, mm | Load, kN | Deformation, mm | Torsional Strength, N/mm2 | Torsional Moment, kNm | Deformation | Moment | ||||
TN-1 TN-2 TN-3 TN-4 TN-5 Ave. | 7.37 8.24 8.13 7.14 7.89 - | 0.225 0.200 0.267 0.214 0.207 0.223 | - - - - - - | - - - - - - | 1.17 1.31 1.29 1.14 1.25 1.23 | - - - - - - | 1.0 1.0 1.0 1.0 1.0 - | 0.98 1.09 1.08 0.95 1.05 1.03 | - - - - - - | - | - |
TP-1 TP-2 TP-3 TP-4 TP-5 Ave. | 9.98 9.18 8.07 11.06 8.49 - | 0.393 0.346 0.319 0.297 0.282 0.327 | - 5.89 4.82 - 5.71 - | - 19.09 21.09 - 20.38 - | 1.59 1.46 1.28 1.76 1.35 1.49 | - 0.94 0.77 - 0.91 0.87 | - 55 66 - 72 - | 1.32 1.22 1.07 1.46 1.11 1.24 | - 0.78 0.75 - 0.75 0.76 | 1.47 | 1.21 |
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Hung, T.Q.; Mizoguchi, M.; Takase, Y. Strengthening Effect of the Fixing Method of Polypropylene Band on Unreinforced Brick Masonry in Flexural, Shear, and Torsion Behaviors. Buildings 2023, 13, 2863. https://doi.org/10.3390/buildings13112863
Hung TQ, Mizoguchi M, Takase Y. Strengthening Effect of the Fixing Method of Polypropylene Band on Unreinforced Brick Masonry in Flexural, Shear, and Torsion Behaviors. Buildings. 2023; 13(11):2863. https://doi.org/10.3390/buildings13112863
Chicago/Turabian StyleHung, Ta Quy, Mitsuo Mizoguchi, and Yuya Takase. 2023. "Strengthening Effect of the Fixing Method of Polypropylene Band on Unreinforced Brick Masonry in Flexural, Shear, and Torsion Behaviors" Buildings 13, no. 11: 2863. https://doi.org/10.3390/buildings13112863
APA StyleHung, T. Q., Mizoguchi, M., & Takase, Y. (2023). Strengthening Effect of the Fixing Method of Polypropylene Band on Unreinforced Brick Masonry in Flexural, Shear, and Torsion Behaviors. Buildings, 13(11), 2863. https://doi.org/10.3390/buildings13112863