Experimental Investigation of Light Steel Framing Walls under Horizontal Loading
Abstract
:1. Introduction
2. Experimental Program
2.1. Specimens and Materials
- a fastener spacing of 75 mm (instead of 150 mm);
- the use of a plasterboard cladding (with a thickness of 13 mm) in addition to the 12 mm thick OSB cladding;
- OSB thickness of 22 mm (instead of 12 mm);
- the use of a 1.5 mm thick steel strap x-bracing system;
- the use of a 1.5 mm thick steel sheet.
2.2. Test Setup and Instrumentation
2.3. Loading Protocols and Experimental Procedure
3. Results and Discussion
3.1. Load–Displacement Curves, Ultimate Loads, and Failure Mechanisms
3.2. Ductility, Buckling, and Damage
4. Conclusions
- The strengths of the walls stemming from the monotonic tests seem to be good predictors of their strengths under cyclic loading since the average ratio between the latter and the former is 1.04;
- The ultimate load of walls with non-metallic cladding is mainly influenced (i) by the number of fasteners (doubling it leads to an increase of 33% of the ultimate load) and (ii) by OSB thickness (its increase, in 80%, leads to an increase in ultimate load of 13%). The use of the plasterboard did not improve the ultimate load of the LSF walls, as this element fails before the OSB; such failure only leads to a decrease in the rigidity of the wall as the load increases;
- The less brittle walls were generally those with OSB as cladding (including that with the plasterboard) with exception of that with twice the number of fasteners. The latter presented a ductility index similar to that of the wall with x-bracing, in which the ductility of steel straps was not triggered. The most brittle wall was that with the steel sheet, which presented a ductility 50 to 75% lower than the remaining walls;
- The wall with the steel x-bracing element was the most damaged (damage parameter of 0.85) at the end of testing due to the failure of the fasteners of the steel straps; the elements responsible for its rigidity. For the remaining walls, in which the tension field can rotate as the displacement increases and have a further number of fasteners to ensure load transmission, the damage parameter presented values, at the end of the tests, between 0.40 and 0.60.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Yu, W.W. Cold Formed Design, 3rd ed.; John Wiley & Sons: New York, NY, USA, 2000. [Google Scholar]
- Silvestre, N.; Pires, J.; Santos, A. Manual de Conceção de Estruturas e Edifícios em LSF.; Associação Portuguesa de Estruturas Metálicas e Mistas—CMM: Coimbra, Portugal, 2013. [Google Scholar]
- Serrette, R.; Ogunfunmi, K. Shear resistance of gypsum-sheathed light-gauge steel stud walls. J. Struct. Eng. 1996, 122, 383–389. [Google Scholar] [CrossRef]
- Fulop, L.A.; Dubina, D. Performance of wall-stud cold-formed shear panels under monotonic and cyclic loading Part I: Experimental research. Thin-Walled Struct. 2004, 42, 321–338. [Google Scholar] [CrossRef]
- Tian, Y.S.; Wang, J.; Lu, T.J. Racking strength and stiffness of cold-formed steel wall frames. J. Constr. Steel Res. 2004, 60, 1069–1093. [Google Scholar] [CrossRef]
- Al-Kharat, M.; Rogers, C.A. Inelastic performance of cold-formed steel strap braced walls. J. Constr. Steel Res. 2007, 63, 460–474. [Google Scholar] [CrossRef]
- Dubina, D. Behavior and performance of cold-formed steel-framed houses under seismic action. J. Constr. Steel Res. 2008, 64, 896–913. [Google Scholar] [CrossRef]
- Yan, Z.; Cheng, Y.; Shicai, C.; Ziqin, J.; Wenying, Z. Shear performance of cold-formed steel shear walls with high-aspect-ratios. Structures 2021, 33, 1193–1206. [Google Scholar] [CrossRef]
- Moghimi, H.; Ronagh, H.R. Performance of light-gauge cold-formed steel strap-braced stud walls subjected to cyclic loading. Eng. Struct. 2009, 31, 69–83. [Google Scholar] [CrossRef]
- Xiang, Y.; Zhou, X.; Ke, K.; Shi, Y.; Xu, L. Experimental research on seismic performance of cold-formed thin-walled steel frames with braced shear panel. Thin-Walled Struct. 2023, 182, 110210. [Google Scholar] [CrossRef]
- Yu, C.; Tian, Y.; Yan, W.; Zhang, W. Novel Energy Dissipation Bracing Designed for Corrugated Sheet–Sheathed Cold-Formed Steel Shear Wall. J. Struct. Eng. 2021, 147, 04021171. [Google Scholar] [CrossRef]
- Javaheri-Tafti, M.R.; Ronagh, H.R.; Behnamfar, F.; Memarzadeh, P. An experimental investigation on the seismic behavior of cold-formed steel walls sheathed by thin steel plates. Thin-Walled Struct. 2014, 80, 66–79. [Google Scholar] [CrossRef]
- Peterman, K.D.; Stehman, M.J.; Madsen, R.L.; Buonopane, S.G.; Nakata, N.; Schafer, B.W. Experimental seismic response of a full-scale cold-formed steel-framed building. I: System-level response. J. Struct. Eng. 2016, 142, 04016127. [Google Scholar] [CrossRef]
- Wang, J.; Wang, W.; Xiao, Y.; Yu, B. Cyclic test and numerical analytical assessment of cold-formed thin-walled steel shear walls using tube truss. Thin-Walled Struct. 2019, 134, 442–459. [Google Scholar] [CrossRef]
- Shi, Y.; Gu, Y.; Xu, Y.; Li, H.; Yang, X. Seismic behavior of steel-sheathed cold-formed steel shear walls with reinforced end columns. J. Constr. Steel Res. 2022, 197, 107509. [Google Scholar] [CrossRef]
- Shi, Y.; Luo, Z.; Xu, Y.; Zou, Y.; Xu, L.; Ma, Q. Experimental study on the seismic behavior of high-performance cold-formed steel plate shear walls. Eng. Struct. 2022, 251, 113552. [Google Scholar] [CrossRef]
- Xingxing, W.; Wei, W.; Haojie, F. Shear performance degradation of cold-formed steel shear walls sheathed with gypsum boards under multi-cycle reversed loading. Thin-Walled Struct. 2021, 161, 107521. [Google Scholar] [CrossRef]
- Zhang, X.; Zhang, E.; Zhang, Y. Study on shear performance of cold-formed thin-walled steel walls sheathed by paper straw board. Eng. Struct. 2021, 245, 112873. [Google Scholar] [CrossRef]
- Wu, H.; Sui, L.; Wang, J.; Zhou, T. Cycle performance tests and numerical modeling of infilled CFS shear walls. J. Constr. Steel Res. 2020, 168, 106010. [Google Scholar] [CrossRef]
- Chen, Z.; Sun, H.; Cao, B. Experimental study on seismic behavior of cold-formed steel shear walls with reinforced plastered straw-bale sheathing. Thin-Walled Struct. 2021, 169, 108303. [Google Scholar] [CrossRef]
- Kechidi, S.; Iuorio, O. Investigation of the effect of modular construction details on the lateral behaviour of cold-formed steel framed shear walls. Eng. Struct. 2022, 268, 114707. [Google Scholar] [CrossRef]
- Saifullah, I.; Gad, E.; Shahi, R.; Wilson, J.; Lam, N.; Watson, K. Behaviour of plasterboard-lined steel-framed ceiling diaphragms. Thin-Walled Struct. 2019, 141, 1–14. [Google Scholar] [CrossRef]
- Hasanali, M.; Roy, K.; Mojtabaei, S.M.; Hajirasouliha, I.; Clifton, G.C.; Lim, J.B. A critical review of cold-formed steel seismic resistant systems: Recent developments, challenges and future directions. Thin-Walled Struct. 2022, 180, 109953. [Google Scholar] [CrossRef]
- Zhou, X.; Yao, X.; Xu, L.; Shi, Y.; Ke, K.; Liu, L. Shake table tests on a full-scale six-storey cold-formed thin-walled steel-steel plate shear wall structure. Thin-Walled Struct. 2022, 181, 110009. [Google Scholar] [CrossRef]
- Santos, P.; Gonçalves, M.; Martins, C.; Soares, N.; Costa, J.J. Thermal transmittance of lightweight steel framed walls: Experimental versus numerical and analytical approaches. J. Build. Eng. 2019, 25, 100776. [Google Scholar] [CrossRef]
- Santos, P.; Mateus, D. Experimental assessment of thermal break strips performance in load-bearing and non-load-bearing LSF walls. J. Build. Eng. 2020, 32, 101693. [Google Scholar] [CrossRef]
- Magarabooshanam, H.; Ariyanayagam, A.; Mahendran, M. Behaviour of load bearing double stud LSF walls in fire. Fire Saf. J. 2019, 107, 15–28. [Google Scholar] [CrossRef]
- Tao, Y.; Mahendran, M.; Ariyanayagam, A. Numerical study of LSF walls made of cold-formed steel hollow section studs in fire. Thin-Walled Struct. 2021, 167, 108181. [Google Scholar] [CrossRef]
- Chen, C.Y. Testing and Performance of Steel Frame/Wood Panel Shear Walls. Master’s Thesis, Civil Engineering, McGill University, Montreal, QC, Canada, 2004. [Google Scholar]
- Yanagi. Analytical Model of Cold-Formed Steeel Framed Shear Wall with Steel Sheet and Wood-Based Sheathing. Master’s Thesis, Engineering Systems—Construction Management, University of North Texas, Texas, TX, USA, 2013. [Google Scholar]
- Fiorino, L.; Iuorio, O.; Landolfo, R. Sheathed cold-formed steel housing: A seismic design procedure. Thin-Walled Struct. 2009, 47, 919–930. [Google Scholar] [CrossRef]
- Yanagi, N.; Yu, C. Effective strip method for the design of cold-formed steel framed shear wall with steel sheet sheathing. J. Struct. Eng. 2014, 140, 04013101. [Google Scholar] [CrossRef]
- ECCS-TC1-TWG 1.3; Recommended Testing Procedure for Assessing the Behavior of Structural Steel Elements Under Cyclic Loads. ECCS: Brussels, Belgium, 1986.
- Timoshenko, S.P.; Gere, K.M. Theory of Elastic Stability, 2nd ed.; McGraw-Hill: New York, NY, USA, 1985. [Google Scholar]
Specimen | Cladding/ Bracing | Schematic Drawing |
---|---|---|
O12_150_M | 12 mm thick OSB | |
O12_150_C | ||
O12_75_M | 12 mm thick OSB | |
O12_75_C | ||
O22_150_M | 22 mm thick OSB | |
O22_150_C | ||
SS1.5_150_M | 2050 × 1200 × 1.5 mm steel sheet | |
SS1.5_150_C | ||
O12_P13_150_M | 12 mm thick OSB + 13 mm thick plasterboard | |
O12_P13_150_C | ||
XB1.5_150_M | 2200 × 100 × 1.5 mm steel straps | |
XB1.5_150_C |
Elongitudinal (GPa) | Etransversal (GPa) | fu,bending (Longitudinal) (MPa) | fu,bending (Transversal) (MPa) | |
---|---|---|---|---|
OSB3 | 3.5 | 1.4 | 18.0 | 9.0 |
Plasterboard | - | - | 6.2 | 2.4 |
E (GPa) | fy (MPa) | fu (MPa) | εu (-) | |
S280 GD | 210 | 280 | 360 | 0.18 |
Specimen | K0 (kN/mm) | dy (mm) | Fu (kN) | μ (-) | Overall Failure Mechanism |
---|---|---|---|---|---|
O12_150_M | 0.66 | 9.0 | 9.6 | 5.8 | Tearing of OSB |
O12_75_M | 0.72 | 15.0 | 12.5 | 2.9 | Tearing of OSB |
O12_P13_150_M | 0.92 | 10.0 | 9.2 | 4.8 | Tearing of OSB |
O22_150_M | 0.65 | 16.0 | 10.8 | 3.4 | Tearing of OSB |
XB1.5_150_M | 0.39 | 16.0 | 8.9 | 2.8 | Shear cut and pull out of fasteners |
SS1.5_150_M | 0.74 | 13.0 | 10.0 | 1.4 | Shear cut and pull out of fasteners |
O12_150_C | 0.66 a | 9.0 a | 9.3 | - | Tearing of OSB |
O12_75_C | 0.72 a | 15.0 a | 12.7 | - | Tearing of OSB |
O12_P13_150_C | 0.92 a | 10.0 a | 10.0 | - | Tearing of OSB |
O22_150_C | 0.65 a | 16.0 a | 10.5 | - | Tearing of OSB |
XB1.5_150_C | 0.39 a | 16.0 a | 10.9 | - | Shear cut and pull out of fasteners |
SS1.5_150_C | 0.74 a | 13.0 a | 9.9 | - | Shear cut and pull out of fasteners |
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Lopes, D.M.; Duarte, A.P.C.; Silvestre, N. Experimental Investigation of Light Steel Framing Walls under Horizontal Loading. Buildings 2023, 13, 193. https://doi.org/10.3390/buildings13010193
Lopes DM, Duarte APC, Silvestre N. Experimental Investigation of Light Steel Framing Walls under Horizontal Loading. Buildings. 2023; 13(1):193. https://doi.org/10.3390/buildings13010193
Chicago/Turabian StyleLopes, Dalila M., António P. C. Duarte, and Nuno Silvestre. 2023. "Experimental Investigation of Light Steel Framing Walls under Horizontal Loading" Buildings 13, no. 1: 193. https://doi.org/10.3390/buildings13010193
APA StyleLopes, D. M., Duarte, A. P. C., & Silvestre, N. (2023). Experimental Investigation of Light Steel Framing Walls under Horizontal Loading. Buildings, 13(1), 193. https://doi.org/10.3390/buildings13010193