Experimental Investigations of Cement Clay Interlocking Brick Masonry Structures Strengthened with CFRP and Cement-Sand Mortar
Abstract
:1. Introduction
2. Experimental Scheme
2.1. Details of CCI Brick Masonry Walls
2.2. Properties of Materials
2.3. Preparation of CCI Brick Wall Specimens
2.4. Loading Setup and Instrumentation Details
3. Experimental Results
3.1. Axial Load Versus Axial Deformation Response
3.2. Ultimate Load Bearing Capacity of Walls
3.3. Ultimate Deflection of CCI Brick Walls
3.4. Modes of Failure of CCI Brick Masonry Walls
4. Conclusions
- The ultimate load-bearing capacity and ultimate deflection of the CCI brick wall are greatly enhanced when CFRP composites are utilized with a CS mortar combination. The strengthening method of configuration A was shown to be more effective than the strengthening method of configuration B; however, strengthening configuration B can still provide practical ways to improve the structural performance of CCI brick walls;
- The increase in maximum axial load-bearing capacity and axial deformation were maximum in the W-PC1-CFRP-2L specimen. The axial capacity of this strengthening scheme was 171% and 26% larger than the W-CON and W-CFRP-2L wall specimens, respectively;
- The as-built or control CCI brick masonry walls exhibited very brittle failure and very low ultimate load-bearing capacity and ultimate deflection. Whereas strengthened walls of CCI brick masonry demonstrated a very ductile ultimate failure mode as compared to the reference wall. The proposed CFRP composites and CS mortar combination-based strengthening techniques were observed to be very promising to improve the ultimate load-bearing capacity and ultimate deflection of walls of CCI brick masonry;
- For future study, appropriate constitutive models need to be established to explore the failure mechanism employing an accurate finite element and analytical modeling techniques. Furthermore, the influence of external reinforcement on the behavior of CCI brick masonry walls needs to be investigated;
- Based on the results of the experiments, it can be inferred that the overall cost of the strengthening program could be substantially decreased by utilizing conventional, low cost, and locally available materials. The CFRP composites, combined with CS mortar, provided an economical solution for the strengthening of CCI brick masonry walls. Similarly, additional work is needed to evaluate the performance of the proposed strengthening scheme with a combination of other viable and economical methods;
- It should be noted that due to the reduced number of tested specimens, the results to be assumed as general considerations need a wider experimental campaign and a large number of tests for each strengthening typology;
- The proposed methods are efficient and applicable to old structures and buildings. However, the proposed strengthening methods were only used for CCI bricks. For wider applications, there is a need to further explore the efficiency of these methods for solid bricks and concrete blocks.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Farzampour, A. Compressive Behavior of Concrete under Environmental Effects. In Compressive Strength of Concret; BoD–Books on Demand: Norderstedt, Germany, 2019. [Google Scholar]
- Farzampour, A. Temperature and humidity effects on behavior of grouts. Adv. Concr. Constr. 2017, 5, 659. [Google Scholar]
- Chalangaran, N.; Farzampour, A.; Paslar, N. Nano Silica and Metakaolin Effects on the Behavior of Concrete Containing Rubber Crumbs. CivilEng 2020, 1, 17. [Google Scholar] [CrossRef]
- Chalangaran, N.; Farzampour, A.; Paslar, N.; Fatemi, H. Experimental Investigation of Sound Transmission Loss in Concrete Containing Recycled Rubber Crumbs; Virginia Tech, Virginia Polytechnic Institute and State University: Blacksburg, VA, USA, 2021. [Google Scholar]
- Sorrentino, L.; Cattari, S.; Da Porto, F.; Magenes, G.; Penna, A. Seismic behaviour of ordinary masonry buildings during the 2016 central Italy earthquakes. Bull. Earthq. Eng. 2019, 17, 5583–5607. [Google Scholar] [CrossRef] [Green Version]
- Moon, L.M.; Griffith, M.C.; Dizhur, D.; Ingham, J.M. Performance of unreinforced masonry structures in the 2010/2011 Canterbury earthquake sequence. In Proceedings of the 15th World Conference on Earthquake Engineering (15WCEE), Lisbon, Portugal, 11 March 2011. [Google Scholar]
- Ruangrassamee, A.; Ornthammarath, T.; Lukkunaprasit, P. Damage Due to 24 March 2011 M6.8 Tarlay Earthquake in Northern Thailand. In Proceedings of the 15th World Conference on Earthquake Engineering (15WCEE), Lisbon, Portugal, 24–28 September 2012. [Google Scholar]
- Hendry, A.; Khalaf, F.M. Masonry Wall Construction; CRC Press: Boca Raton, FL, USA, 2017. [Google Scholar]
- Shakir, A.A.; Mohammed, A.A. Durability Property of Clay Ash, Quarry Dust and Billet Scale Bricks. J. Eng. Sci. Technol. 2015, 10, 591–605. [Google Scholar]
- Lenczner, D. Elements of Load Bearing Brickwork; Pergamon Press: Oxford, UK, 1972. [Google Scholar]
- Bakhteri, J. Sambasivam, Mechanical Behaviour of Structural Brick Masonry: An Experimental Evaluation. In Proceedings of the 5th Asia-Pacific Structural Engineering and Construction Conference, Johor Bahru, Malasia, 26–28 August 2003; pp. 305–317. [Google Scholar]
- Ahmad, A.; Othman, S.Z.; Md Yunus, B.; Mohamed, A. Behaviour of Masonry Wall Constructed using Interlocking Soil Cement Bricks. World Acad. Sci. Eng. Technol. 2011, 60, 1263–1269. [Google Scholar]
- Haach, V.G.; Vasconcelos, G.; Lourenço, P.B. Development of a New Test for Determination of Tensile Strength of Concrete Blocks. In Proceedings of the 12th Canadian Masonry Symposium, Mississauga, ON, Canada, 2–5 June 2013. [Google Scholar]
- Cascardi, A.; Leone, M.; Aiello, M.A. Transversal joining of multi-leaf masonry through different types of connector: Experimental and theoreticals investigation. Constr. Build. Mater. 2020, 265, 120733. [Google Scholar] [CrossRef]
- Joseph, S.; McGarry, B.; Sajjakulnukit, B.; Sopchokchai, O. A Study of Brick Production in Thailand. TDRI Q. Rev. 1990, 5, 11–15. [Google Scholar]
- Shakir, A.A.; Naganathan, S.; Mustapha, K.N. Properties of bricks made using fly ash, quarry dust and billet scale. Constr. Build. Mater. 2013, 41, 131–138. [Google Scholar] [CrossRef]
- Ravula, M.B.; Subramaniam, J.L. Experimental Investigation of Compressive Failure in Masonry Brick Assemblages Made with Soft Brick. Mater. Struct. 2017, 50, 19. [Google Scholar] [CrossRef]
- Sandoval, C.; Calderon, S.; Almazán, J.L. Experimental cyclic response assessment of partially grouted reinforced clay brick masonry walls. Bull. Earthq. Eng. 2018, 16, 3127–3152. [Google Scholar] [CrossRef]
- Joyklad, P.; Hussain, Q. axial compressive response of grouted cement–clay interlocking hollow brick walls. Asian J. Civ. Eng. 2019, 20, 733–744. [Google Scholar] [CrossRef]
- Joyklad, P.; Hussain, Q. Performance of Cement Clay Interlocking Hollow Brick Masonry Walls Subjected to Diagonal Compres- sion. J. Eng. Sci. Technol. 2019, 14, 2152–2170. [Google Scholar]
- Joyklad, P.; Hussain, Q. Lateral response of cement clay interlocking brick masonry walls subjected to earthquake loads. J. Eng. Sci. Technol. 2020, 15, 4320–4338. [Google Scholar]
- Sadek, D.M. Physico-mechanical Properties of Solid Cement Bricks Containing Recycled Aggregates. J. Adv. Res. 2012, 3, 253–260. [Google Scholar] [CrossRef] [Green Version]
- Kadir, A.B.A.; Mohajerani, A. Physical and Mechanical Properties of Fired Clay Bricks Incorporated with Cigarette Butts: Comparison between Slow and Fast Heating Rates. Appl. Mech. Mater. 2013, 421, 201–204. [Google Scholar] [CrossRef] [Green Version]
- Theint, P.S.; Ruangrassamee, A.; Hussain, Q. Strengthening of shear-critical RC columns by high-strength steel-rod collars. Eng. J. 2020, 24, 107–128. [Google Scholar] [CrossRef]
- Valluzzi, M.; Tinazzi, D.; Modena, C. Shear behavior of masonry panels strengthened by FRP laminates. Constr. Build. Mater. 2002, 16, 409–416. [Google Scholar] [CrossRef]
- Turco, V.; Secondin, S.; Morbin, A.; Valluzzi, M.R.; Modena, C. Flexural and shear strengthening of un-reinforced masonry with FRP bars. Compos. Sci. Technol. 2006, 66, 289–296. [Google Scholar] [CrossRef]
- Alecci, V.; Barducci, S.; D’Ambrisi, A.; De Stefano, M.; Focacci, F.; Luciano, R.; Penna, R. Shear capacity of masonry panels repaired with composite materials: Experimental and analytical investigations. Compos. Part B Eng. 2019, 171, 61–69. [Google Scholar] [CrossRef]
- Krevaikas, T.D. Experimental study on carbon fiber textile reinforced mortar system as a means for confinement of masonry columns. Constr. Build. Mater. 2019, 208, 723–733. [Google Scholar] [CrossRef]
- Chalioris, C.E.; Kytinou, V.K.; Voutetaki, M.E.; Papadopoulos, N.A. Repair of heavily damaged RC beams failing in shear using U-shaped mortar jackets. Buildings 2019, 9, 146. [Google Scholar] [CrossRef] [Green Version]
- Thomoglou, A.K.; Karabinis, A. Experimental investigation of the shear strength of hollow brick unreinforced masonry walls retrofitted with TRM system. Earthq. Struct. 2022, 22, 355–372. [Google Scholar]
- Mazzuca, P.; Firmo, J.P.; Correia, J.R.; Castilho, E. Influence of elevated temperatures on the mechanical properties of glass fibre reinforced polymer laminates produced by vacuum infusion. Constr. Build. Mater. 2022, 345, 128340. [Google Scholar] [CrossRef]
- Golias, E.; Zapris, A.G.; Kytinou, V.K.; Osman, M.; Koumtzis, M.; Siapera, D.; Chalioris, C.E.; Karayannis, C.G. Application of X-shaped CFRP ropes for structural upgrading of reinforced concrete beam–column joints under cyclic loading–experimental study. Fibers 2021, 9, 42. [Google Scholar] [CrossRef]
- Hussain, Q.; Ruangrassamee, A.; Tangtermsirikul, S.; Joyklad, P.; Wijeyewickrema, A.C. Low-cost fiber rope reinforced polymer (FRRP) confinement of square columns with different corner radii. Buildings 2021, 11, 355. [Google Scholar] [CrossRef]
- Hussain, Q.; Ruangrassamee, A.; Joyklad, P.; Wijeyewickrema, A.C. 2022. Shear enhancement of RC beams using low-cost natural fiber rope reinforced polymer composites. Buildings 2022, 12, 602. [Google Scholar] [CrossRef]
- Golias, E.; Zapris, A.G.; Kytinou, V.K.; Kalogeropoulos, G.I.; Chalioris, C.E.; Karayannis, C.G. Effectiveness of the novel rehabilitation method of seismically damaged RC joints using C-FRP ropes and comparison with widely applied method using C-FRP sheets—Experimental investigation. Sustainability 2021, 13, 6454. [Google Scholar] [CrossRef]
- Yardim, Y.; Lalaj, O. Shear strengthening of unreinforced masonry wall with different fiber reinforced mortar jacketing. Constr. Build. Mater. 2016, 102, 149–154. [Google Scholar] [CrossRef]
- Wahab, N.; Srinophakun, P.; Hussain, Q.; Chaimahawan, P. Performance of concrete confined with a jute–polyester hybrid Fiber reinforced polymer composite: A novel strengthening technique. Fibers 2019, 7, 72. [Google Scholar] [CrossRef] [Green Version]
- Joyklad, P.; Suparp, S.; Hussain, Q. Flexural response of JFRP and BFRP strengthened RC beams. Int. J. Eng. Technol. 2019, 11, 203–207. [Google Scholar] [CrossRef] [Green Version]
- Chaiyasarn, K.; Hussain, Q.; Joyklad, P.; Rodsin, K. New hybrid basalt/E-glass FRP jacketing for enhanced confinement of recycled aggregate concrete with clay brick aggregate. Case Stud. Constr. Mater. 2021, 14, e00507. [Google Scholar] [CrossRef]
- Joyklad, P.; Ali, N.; Verre, S.; Magbool, H.M.; Elnemr, A.; Qureshi, M.I.; Hussain, Q.; Chaiyasarn, K. Experimental Study on the Out-of-Plane Behavior of Brick Masonry Walls Strengthened with Mortar and Wire Mesh: A Pioneer Study. Infrastructures 2021, 6, 165. [Google Scholar] [CrossRef]
- ASTM C1314-1314; Standard Test Method for Compressive Strength of Masonry Prisms. ASTM International: West Conshohocken, PA, USA, 2014.
- ASTM C1006-07; Standard Test Method for Splitting Tensile Strength of Masonry Units. ASTM International: West Conshohocken, PA, USA, 2007.
CCIB Masonry Walls | Strengthening Material | Configuration | Layers of CFRP |
---|---|---|---|
W-CON | - | - | - |
W-CFRP-1L | CFRP | A | 1 |
W-CFRP-2L | CFRP | A | 2 |
W-PC1-10-CFRP-1L | CFRP + CS Mortar | A | 1 |
W-PC1-10-CFRP-2L | CFRP + CS Mortar | A | 2 |
W-PC1-10-CFRP-2S | CFRP Strips + CS Mortar | B | 2 |
Material Property | Test Result | Units |
---|---|---|
Compressive strength | 6.70 | MPa |
Tensile strength | 0.22 | MPa |
Water absorption | 13.0 | % |
Density | 1850 | Kg/m3 |
Nomenclature of Walls | Ultimate Load (kN) | % Increase in Ultimate Load | Ultimate Axial Deformation |
---|---|---|---|
W-CON | 247 | - | 1.8 |
W-CFRP-1L | 470 | 90 | 2.5 |
W-CFRP-2L | 605 | 145 | 4.0 |
W-PC1-10-CFRP-1L | 560 | 127 | 4.7 |
W-PC1-CFRP-2L | 670 | 171 | 5.2 |
W-PC1-CFRP-2S | 500 | 102 | 4.0 |
Nomenclature of Walls | Strengthening Material | Failure Modes |
---|---|---|
W-CON | - | Compression crushing and splitting of the CCI bricks |
W-CFRP-1L | CFRP | Explosive splitting and crushing of the CCI bricks along with sudden fall |
W-CFRP-2L | CFRP | |
W-PC1-10-CFRP-1L | CFRP + CS Mortar | Crushing of the CCI bricks and slight debonding of the CFRP composites |
W-PC1-10-CFRP-2L | CFRP + CS Mortar | |
W-PC1-10-CFRP-2S | CFRP Strips + CS Mortar | Severe splitting and crushing of the CCI bricks and complete debonding of the CFRP composite strips |
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Joyklad, P.; Waqas, H.A.; Hafeez, A.; Ali, N.; Ejaz, A.; Hussain, Q.; Khan, K.; Sangthongtong, A.; Saingam, P. Experimental Investigations of Cement Clay Interlocking Brick Masonry Structures Strengthened with CFRP and Cement-Sand Mortar. Infrastructures 2023, 8, 59. https://doi.org/10.3390/infrastructures8030059
Joyklad P, Waqas HA, Hafeez A, Ali N, Ejaz A, Hussain Q, Khan K, Sangthongtong A, Saingam P. Experimental Investigations of Cement Clay Interlocking Brick Masonry Structures Strengthened with CFRP and Cement-Sand Mortar. Infrastructures. 2023; 8(3):59. https://doi.org/10.3390/infrastructures8030059
Chicago/Turabian StyleJoyklad, Panuwat, Hafiz Ahmad Waqas, Abdul Hafeez, Nazam Ali, Ali Ejaz, Qudeer Hussain, Kaffayatullah Khan, Arissaman Sangthongtong, and Panumas Saingam. 2023. "Experimental Investigations of Cement Clay Interlocking Brick Masonry Structures Strengthened with CFRP and Cement-Sand Mortar" Infrastructures 8, no. 3: 59. https://doi.org/10.3390/infrastructures8030059
APA StyleJoyklad, P., Waqas, H. A., Hafeez, A., Ali, N., Ejaz, A., Hussain, Q., Khan, K., Sangthongtong, A., & Saingam, P. (2023). Experimental Investigations of Cement Clay Interlocking Brick Masonry Structures Strengthened with CFRP and Cement-Sand Mortar. Infrastructures, 8(3), 59. https://doi.org/10.3390/infrastructures8030059