Bending Properties of Cold-Formed Thin-Walled Steel/Fast-Growing Timber Composite I-Beams
Abstract
:1. Introduction
2. Materials and Methods
2.1. Specimen Details
2.2. Material Tests
2.2.1. Steel
2.2.2. Fast-Growing Timber Board
2.2.3. Adhesive
2.2.4. Fasteners
2.3. Test Setup and Instrumentation
2.4. Calculation Method for Flexural Bearing Capacity
- (1)
- The strain distribution across the mid-span section shows that the deformation of the mid-span section conforms to the plane section assumption;
- (2)
- The sliding behavior of the interface is neglected when the cold-formed thin-walled steel and timber boards are bonded;
- (3)
- The sliding behavior of the interface between cold-formed thin-walled steel and timber boards of composite beams is considered when they are mechanically connected. The strain curvature of the flange and web is the same, and the additional stress of the section caused by sliding is distributed linearly.
3. Test Results and Discussion
3.1. Phenomena and Failure Modes
3.2. Bend Performance Analysis
3.2.1. Load-Displacement Curves
3.2.2. Bearing Capacity
3.2.3. Stiffness
3.2.4. Ductility Analysis
3.2.5. Load-Strain Response
3.2.6. Theoretical Analysis and Verification
4. Conclusions
- When composite beams in Group B and Group S were tested, the timber in the upper flanges was locally squeezed or crushed, and some instances of buckling were observed on the upper flanges of the steel. Subsequently, the timber in the lower flanges broke at the midspan position. In Groups A, BA, and SA, the timber in the lower flanges fractured laterally or diagonally, accompanied by bonding failure occurring at the interface between the upper and lower flanges. The steel in the upper flanges showed no obvious yield before final failure. In Group A, the debonding of the lower flange gradually extended to the entire midspan interface. The fasteners delayed and controlled this failure in Groups BA and SA.
- Connection methods significantly impacted the beam’s flexural stiffness and load capacity. Beams connected by screws and bolts demonstrated ductile failure and an adequate ultimate bearing capacity of 74 kN. The quality of bonding significantly influenced the performance of adhesive composite beams. Specimens A-1, SA-2, and BA-3 achieved ultimate load capacities of 100 kN, 117 kN, and 117 kN, respectively, when the adhesive layer remained intact. Compared to the B and S group beams, the A group beams showed a 35% increased ultimate bearing capacity. By playing a delaying and safeguarding role, fasteners further increased the ultimate bearing capacity of SA-2 and BA-3 by approximately 18% compared to A-1. Moreover, SA-2 and BA-3 exhibited stiffness values that were 35.4% and 68.3% higher than those of Group B and S. Mechanically connected beams exhibited higher ductility than beams with glued connections.
- During the elastic stage, the mid-span section of the composite beam exhibited a linear strain distribution at the steel–timber interface in beams connected with fasteners. As the load increased, strain differentials and slippage occurred. When adhesive was used, the steel’s strength was fully utilized, and beam slippage occurred upon damage to the adhesive layer. The proposed formula provided theoretical values for both elastic and ultimate bearing capacities that aligned well with experimental results. Compared with the experimental results, the formula demonstrated an error rate of less than 13%, mostly within 10%, indicating its applicability for the engineering design of composite beams.
- Using hybrid connection methods like SA-2 and BA-3, composite beams exhibited significant flexural bearing capacity and stiffness. However, limitations of adhesive and hybrid connections were noted, including reduced construction efficiency and the necessity for precise operation. Environmental concerns regarding structural adhesives also present obstacles to their use. Beams with fastener connections showed improved ductility and adequate bearing capacity. It is worth emphasizing that screwed connections, which do not require pre-drilled holes, offer a more straightforward assembly process compared to bolted connections. Future research on optimizing screwed connection configurations (specifications, arrangement) is crucial for enhancing the engineering value of cold-formed thin-walled steel/timber composite beams.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Khorasani, Y. Feasibility Study of Hybrid Wood Steel Structures. Master’s Thesis, University of British Columbia, Vancouver, BC, Canada, 2011. Available online: http://hdl.handle.net/2429/33561 (accessed on 23 March 2024).
- Ghanbari Ghazijahani, T.; Jiao, H.; Holloway, D. Composite timber beams strengthened by steel and CFRP. J. Compos. Constr. 2017, 21, 04016059. [Google Scholar] [CrossRef]
- Wang, X.; Su, P.; Liu, J.; Chen, Z.; Khan, K. Seismic performance of light steel-natural timber composite beam-column joint in low-rise buildings. Eng. Struct. 2022, 256, 113969. [Google Scholar] [CrossRef]
- Guo, N.; Wu, M.; Li, L.; Li, G.; Zhao, Y. Bending performance of prestressed continuous glulam beams. Adv. Civ. Eng. 2021, 2021, 5512350. [Google Scholar] [CrossRef]
- Liu, J.; Liu, R.; Li, W.; Wang, J.; Chen, L. Experimental study on the flexural performance of Timber–Steel Composite (TSC) I-beams. Buildings 2022, 12, 1206. [Google Scholar] [CrossRef]
- Yang, H.; Liu, W.; Lu, W.; Zhu, S.; Geng, Q. Flexural behavior of FRP and steel reinforced glulam beams: Experimental and theoretical evaluation. Constr. Build. Mater. 2016, 106, 550–563. [Google Scholar] [CrossRef]
- Adi, D.S.; Risanto, L.; Damayanti, R.; Rullyati, S.; Dewi, L.M.; Susanti, R.; Dwianto, W.; Hermiati, E.; Watanabe, T. Exploration of unutilized fast growing wood species from secondary forest in Central Kalimantan: Study on the fiber characteristic and wood density. Procedia Environ. Sci. 2014, 20, 321–327. [Google Scholar] [CrossRef]
- Mola-Yudego, B.; Arevalo, J.; Díaz-Yáñez, O.; Dimitriou, I.; Freshwater, E.; Haapala, A.; Khanam, T.; Selkimäki, M. Reviewing wood biomass potentials for energy in Europe: The role of forests and fast growing plantations. Biofuels 2017, 8, 401–410. [Google Scholar] [CrossRef]
- González-García, S.; Moreira, M.T.; Feijoo, G.; Murphy, R.J. Comparative life cycle assessment of ethanol production from fast-growing wood crops (black locust, eucalyptus and poplar). Biomass Bioenergy 2012, 39, 378–388. [Google Scholar] [CrossRef]
- Bredemeier, M.; Busch, G.; Hartmann, L.; Jansen, M.; Richter, F.; Lamersdorf, N.P. Fast growing plantations for wood production–integration of ecological effects and economic perspectives. Front. Bioeng. Biotechnol. 2015, 3, 72. [Google Scholar] [CrossRef]
- Kamperidou, V.; Terzopoulou, P.; Barboutis, I. Marginal lands providing tree–crop biomass as feedstock for solid biofuels. Biofuels Bioprod. Biorefining 2021, 15, 1395–1405. [Google Scholar] [CrossRef]
- Kojima, M.; Yamamoto, H.; Okumura, K.; Ojio, Y.; Yoshida, M.; Okuyama, T.; Ona, T.; Matsune, K.; Nakamura, K.; Ide, Y. Effect of the lateral growth rate on wood properties in fast-growing hardwood species. J. Wood Sci. 2009, 55, 417–424. [Google Scholar] [CrossRef]
- Cown, D.J. Moisture-related distortion of boards and wooden products of radiata pine: Comparison with Norway spruce. Wood Fiber Sci. 2005, 37, 424–436. [Google Scholar]
- Montón, J.; Arriaga, F.; íñiguez-Gonzalez, G.; Segués, E. Warp requirements and yield efficiency in the visual grading of sawn radiata pine timber. BioResources 2015, 10, 1115–1126. [Google Scholar] [CrossRef]
- Xu, P. Estimating the influence of knots on the local longitudinal stiffness in radiata pine structural timber. Wood Sci. Technol. 2002, 36, 501–509. [Google Scholar] [CrossRef]
- Jurkiewiez, B.; Durif, S.; Bouchair, A.; Grazide, C. Experimental and analytical study of hybrid steel-timber beams in bending. Structures 2022, 39, 1231–1248. [Google Scholar] [CrossRef]
- Jimenez, P.; Dunkl, A.; Eibel, K.; Denk, E.; Grote, V.; Kelz, C.; Moser, M. Wood or laminate?—Psychological research of customer expectations. Forests 2016, 7, 275. [Google Scholar] [CrossRef]
- Tsai, M.T.; Le, T.D.H. Determination of initial stiffness of timber–steel composite (TSC) beams based on experiment and simulation modeling. Sustainability 2018, 10, 1220. [Google Scholar] [CrossRef]
- Liu, R.; Liu, J.; Wu, Z.; Chen, L.; Wang, J. A study on the influence of bolt arrangement parameters on the bending behavior of timber–steel composite (TSC) beams. Buildings 2022, 12, 2013. [Google Scholar] [CrossRef]
- Jasieńko, J.; Nowak, T.P. Solid timber beams strengthened with steel plates—Experimental studies. Constr. Build. Mater. 2014, 63, 81–88. [Google Scholar] [CrossRef]
- Franke, S.; Franke, B.; Harte, A.M. Failure modes and reinforcement techniques for timber beams—State of the art. Constr. Build. Mater. 2015, 97, 2–13. [Google Scholar] [CrossRef]
- De Luca, V.; Marano, C. Prestressed glulam timbers reinforced with steel bars. Constr. Build. Mater. 2012, 30, 206–217. [Google Scholar] [CrossRef]
- Soriano, J.; Pellis, B.P.; Mascia, N.T. Mechanical performance of glued-laminated timber beams symmetrically reinforced with steel bars. Compos. Struct. 2016, 150, 200–207. [Google Scholar] [CrossRef]
- Mcconnell, E.; Mcpolin, D.; Taylor, S. Post-tensioning of glulam timber with steel tendons. Constr. Build. Mater. 2014, 73, 426–433. [Google Scholar] [CrossRef]
- Borri, A.; Corradi, M. Strengthening of timber beams with high strength steel cords. Compos. Part B Eng. 2011, 42, 1480–1491. [Google Scholar] [CrossRef]
- Yang, X.; Xue, W.; Guo, N. Bending performance of glued-lumber beam reinforced with steel plate. J. Jilin Univ. (Eng. Technol. Ed.) 2017, 47, 10. [Google Scholar]
- Bulleit, W.M.; Sandberg, L.B.; Woods, G.J. Steel reinforced glued laminated timber. J. Struct. Eng. 1989, 115, 433–444. [Google Scholar] [CrossRef]
- Wang, Y.; Hou, Q.; Xu, T.; Qu, S.; Zhang, B. The bending-shear behaviors of steel reinforced fast-growing poplar glulam beams with different shear-span ratios. Constr. Build. Mater. 2021, 300, 124008. [Google Scholar] [CrossRef]
- Bulleit, W. Reinforcement of wood materials: A review. Wood Fiber Sci. 1984, 16, 391–397. [Google Scholar]
- Fajdiga, G.; Šubic, B.; Kovačič, A. Bending stiffness of hybrid wood-metal composite beams: An experimentally validated numerical model. Forests 2021, 12, 918. [Google Scholar] [CrossRef]
- Šubic, B.; Fajdiga, G.; Lopatič, J. Bending stiffness, load-bearing capacity and flexural rigidity of slender hybrid wood-based beams. Forests 2018, 9, 703. [Google Scholar] [CrossRef]
- Winter, W.; Tavoussi, K.; Pixner, T.; Parada, F.R. Timber-steel-hybrid beams for multi-storey buildings: Final report. In Proceedings of the World Conference on Timber Engineering 2016, Vienna, Austria, 22–25 August 2016. [Google Scholar]
- Kyvelou, P.; Gardner, L.; Nethercot, D.A. Composite action between cold-formed steel beams and wood-based floorboards. Int. J. Struct. Stab. Dyn. 2015, 15, 1540029. [Google Scholar] [CrossRef]
- Kyvelou, P.; Gardner, L.; Nethercot, D.A. Testing and analysis of composite cold-formed steel and wood−based flooring systems. J. Struct. Eng. 2017, 143, 04017146. [Google Scholar] [CrossRef]
- Hassanieh, A.; Valipour, H.R.; Bradford, M.A. Experimental and numerical study of steel-timber composite (STC) beams. J. Constr. Steel Res. 2016, 122, 367–378. [Google Scholar] [CrossRef]
- Hassanieh, A.; Valipour, H.R.; Bradford, M.A. Experimental and numerical investigation of short-term behaviour of CLT-steel composite beams. Eng. Struct. 2017, 144, 43–57. [Google Scholar] [CrossRef]
- Kyvelou, P.; Gardner, L.; Nethercot, D.A. Finite element modelling of composite cold-formed steel flooring systems. Eng. Struct. 2018, 158, 28–42. [Google Scholar] [CrossRef]
- Kyvelou, P.; Reynolds, T.P.S.; Beckett, C.T.S.; Huang, Y. Experimental investigation on composite panels of cold-formed steel and timber. Eng. Struct. 2021, 247, 113186. [Google Scholar] [CrossRef]
- Kyvelou, P.; Gardner, L.; Nethercot, D.A. Design of composite cold-formed steel flooring systems. Structures 2017, 12, 242–252. [Google Scholar] [CrossRef]
- Kyvelou, P.; Gardner, L.; Nethercot, D.A. Impact statement on “design of composite cold-formed steel flooring systems”. Structures 2019, 20, 213. [Google Scholar] [CrossRef]
- Awadhani, L.V.; Bewoor, A. Parametric study of single bolted composite bolted joint subjected to static tensile loading. IOP Conf. Series. Mater. Sci. Eng. 2017, 225, 12215. [Google Scholar] [CrossRef]
- Dujmovic, D.; Androic, B.; Lukacevic, I. Composite Structures According to Eurocode 4, Worked Examples; Ernst & Sohn: Berlin, Germany, 2015. [Google Scholar]
- Hassanieh, A.; Valipour, H.R.; Bradford, M.A. Load-slip behaviour of steel-cross laminated timber (CLT) composite connections. J. Constr. Steel. Res. 2016, 122, 110–121. [Google Scholar] [CrossRef]
- Hassanieh, A.; Valipour, H.R.; Bradford, M.A. Composite connections between CLT slab and steel beam: Experiments and empirical models. J. Constr. Steel. Res. 2017, 138, 823–836. [Google Scholar] [CrossRef]
- Loss, C.; Piazza, M.; Zandonini, R. Connections for steel–timber hybrid prefabricated buildings. Part I: Experimental tests. Constr. Build. Mater. 2016, 122, 781–795. [Google Scholar] [CrossRef]
- Hassanieh, A.; Valipour, H.R.; Bradford, M.A. Experimental and analytical behaviour of steel-timber composite connections. Constr. Build. Mater. 2016, 118, 63–75. [Google Scholar] [CrossRef]
- Vella, N.; Gardner, L.; Buhagiar, S. Experimental analysis of cold-formed steel-to-timber connections with inclined screws. Structures 2020, 24, 890–904. [Google Scholar] [CrossRef]
- Yang, R.; Li, H.; Lorenzo, R.; Ashraf, M.; Sun, Y.; Yuan, Q. Mechanical behaviour of steel timber composite shear connections. Constr. Build. Mater. 2020, 258, 119605. [Google Scholar] [CrossRef]
- Chen, Z.; Niu, X.; Liu, J.; Khan, K. Experimental study of thin-walled steel-timber single-shear connection with a self-tapping screw. Structures 2021, 34, 4389–4405. [Google Scholar] [CrossRef]
- Zhang, A.; Liu, J.; Wang, J.; Chen, Z.; Li, Y. Experimental and analytical behaviour of light gauge steel-fast growing timber composite shear connections. Structures 2023, 47, 1691–1709. [Google Scholar] [CrossRef]
- Liu, J.; Zhang, A.; Chen, Z.; Liu, Y.; Li, Y. Experimental and theoretical model study on the shear behavior of the self-tapping screw connections of steel-timber composite members. J. Tianjin Univ. (Sci. Technol.) 2023, 56, 680–689. [Google Scholar]
- GB/T 228.1-2021; Metallic Materials—Tensile Testing—Part 1: Method of Test at Room Temperature. Standardization Administration of China: Beijing, China, 2019.
- GB50005-2017; Standard for Design of Timber Structures. Ministry of Housing and Urban-Rural Development of the People’s Republic of China: Beijing, China, 2017.
- GB/T 1943-2009; Method for Determination of the Modulus of Elasticity in Compression Perpendicular to Grain of Wood. General Administration of Quality Supervision, Inspection and Quarantine of the People’s Republic of China: Beijing, China, 2009.
- GB/T 1939-2009; Method of Testing in Compression Perpendicular to Grain of Wood. General Administration of Quality Supervision, Inspection and Quarantine of the People’s Republic of China: Beijing, China, 2009.
- GB/T 15777-2017; Method for Determination of the Modulus of Elasticity in Compression Parallel to Grain of Wood. General Administration of Quality Supervision, Inspection and Quarantine of the People’s Republic of China: Beijing, China, 2017.
- GB-T 1928-2009; General Request for Physical and Mechanical Test for Wood. Ministry of Forestry of the PRC: Beijing, China, 2009.
- GB/T 50329-2012; Standard for Test Methods of Timber Structures. Housing and Urban-Rural Development of the People’s Republic of China: Beijing, China, 2012.
- Zhou, H. Flagship Store of Ailike. Available online: https://ailikebg.tmall.com (accessed on 23 March 2024).
- Zhang, F.; Chen, H.; Li, X.; Li, H.; Lv, T.; Zhang, W.; Yang, Y. Experimental study of the mechanical behavior of FRP-reinforced concrete canvas panels. Compos. Struct. 2017, 176, 608–616. [Google Scholar] [CrossRef]
- Li, H.; Chen, H.; Li, X.; Zhang, F. Design and construction application of concrete canvas for slope protection. Powder Technol. 2019, 344, 937–946. [Google Scholar] [CrossRef]
- Chen, T.; Chen, Z.; Liu, J. Experimental and numerical analysis of single-strap adhesive joints combining thin-walled steel and fast-growing natural timber. Int. J. Adhes. Adhes. 2023, 126, 103434. [Google Scholar] [CrossRef]
- GJB 715.24 A 2002; Fastener Test Methods-Single Shear. Commission of Science, Technology and Industry for National Defense: Beijing, China, 2002.
- GB/T 232-2010; Metallic Materials-Bend Test. Ministry of Housing and Urban-Rural Development of the People’s Republic of China: Beijing, China, 2011.
- Hassanieh, A.; Valipour, H.R.; Bradford, M.A.; Sandhaas, C. Modelling of steel-timber composite connections: Validation of finite element model and parametric study. Eng. Struct. 2017, 138, 35–49. [Google Scholar] [CrossRef]
- Chybiński, M.; Polus, Ł. Experimental and numerical investigations of aluminium-timber composite beams with bolted connections. Structures 2021, 34, 1942–1960. [Google Scholar] [CrossRef]
- Li, Y.; Shan, W.; Shen, H.; Zhang, Z.; Liu, J. Bending resistance of I-section bamboo–steel composite beams utilizing adhesive bonding. Thin-Walled Struct. 2015, 89, 17–24. [Google Scholar] [CrossRef]
- Duan, S.; Zhou, W.; Liu, X.; Yuan, J.; Wang, Z.; Cristiano, L.; Loss, C. Experimental study on the bending behavior of steel-wood composite beams. Adv. Civ. Eng. 2021, 2021, 1315849. [Google Scholar] [CrossRef]
- Shan, Q.; Zhang, J.; Tong, K.; Li, Y.; Dongsheng, H.; Huang, D. Study on flexural behaviour of box section bamboo-steel composite beams. Adv. Civ. Eng. 2020, 2020, 8878776. [Google Scholar] [CrossRef]
- Duan, Y.; Zhang, J.; Tong, K.; Wu, P.; Li, Y. The effect of interfacial slip on the flexural behavior of steel-bamboo composite beams. Structures 2021, 32, 2060–2072. [Google Scholar] [CrossRef]
- Feng, P.; Qiang, H.-L.; Ye, L.-P. Discussion and definition on yield points of materials, members and structures. Eng. Mech. 2017, 34, 36–46. [Google Scholar]
- Gao, Y.; Xu, F.; Meng, X.; Zhang, Y.; Yang, H. Experimental and numerical study on the lateral torsional buckling of full-scale steel-timber composite beams. Adv. Struct. Eng. 2022, 25, 522–540. [Google Scholar] [CrossRef]
No. | Connection Method | Normal Section | Number | |||
---|---|---|---|---|---|---|
Steel–Timber Connection at Web | Steel–Timber Connection at Flanges | Timber–Timber Connection at Flanges | ||||
S | Screwed | Screwed | Screwed | 3 | ||
B | Bolted | Bolted | Screwed | 3 | ||
A | Adhesive | Adhesive | Adhesive | 3 | ||
SA | Screwed-adhesive | Screwed-adhesive | Screwed-adhesive | 3 | ||
BA | Bolted-adhesive | Bolted-adhesive | Screwed-adhesive | 3 |
t (mm) | (MPa) | (MPa) | (MPa) | |
---|---|---|---|---|
1.5 | 198.3 | 0.29 | 324.0 | 399.0 |
Elastic Modulus (MPa) | Poisson’s Ratio | Shear Modulus (MPa) | Compressive Strength (MPa) | ||||||
---|---|---|---|---|---|---|---|---|---|
6211 | 353 | 241 | 0.37 | 0.29 | 0.43 | 266 | 176 | 365 | 28.1 |
Adhesive | (MPa) | (MPa) | (GPa) |
---|---|---|---|
Ailike | 2330 | 890 | 0.37 |
No. | (kN) | Δy (mm) | (kN) | Δu (mm) | e (kN/mm) | |
---|---|---|---|---|---|---|
S-1 | 31.76 | 2.20 | 77.46 | 58.23 | 26.47 | 14.44 |
S-2 | 31.25 | 2.11 | 72.70 | 52.82 | 25.03 | 14.81 |
S-3 | 31.40 | 2.10 | 70.55 | 60.88 | 24.49 | 14.95 |
B-1 | 32.75 | 1.98 | 79.52 | 49.01 | 24.75 | 16.54 |
B-2 | 31.45 | 2.30 | 75.99 | 60.86 | 26.46 | 13.67 |
B-3 | 23.52 | 2.01 | 66.65 | 53.93 | 26.83 | 11.70 |
A-1 | 35.53 | 1.23 | 100.10 | 32.65 | 23.39 | 28.89 |
A-2 | 38.02 | 2.10 | 58.12 | 24.67 | 11.75 | 18.10 |
A-3 | 25.95 | 2.13 | 81.46 | 25.96 | 12.19 | 12.18 |
SA-1 | 20.54 | 2.22 | 50.49 | 46.86 | 21.11 | 9.25 |
SA-2 | 26.20 | 1.35 | 117.99 | 28.75 | 21.30 | 19.41 |
SA-3 | 31.12 | 5.85 | 67.46 | 55.01 | 9.40 | 5.32 |
BA-1 | 28.89 | 1.83 | 85.82 | 41.69 | 22.78 | 15.79 |
BA-2 | 32.89 | 1.72 | 112.96 | 23.12 | 13.44 | 19.12 |
BA-3 | 35.73 | 1.52 | 117.79 | 25.94 | 17.07 | 23.51 |
No. | (kN) | Δy (mm) | (kN) | Δu (mm) | e (kN/mm) | |
---|---|---|---|---|---|---|
S-ave | 31.47 | 2.14 | 73.57 | 57.31 | 25.33 | 14.73 |
B-ave | 28.65 | 2.10 | 74.05 | 54.60 | 26.01 | 13.97 |
A-1 | 35.53 | 1.23 | 100.10 | 32.65 | 23.39 | 28.89 |
SA-2 | 26.93 | 1.35 | 117.99 | 28.75 | 21.30 | 19.95 |
BA-3 | 35.73 | 1.52 | 117.79 | 25.94 | 17.07 | 23.51 |
Specimens | kN·m | kN·m | kN·m | kN·m | ||
---|---|---|---|---|---|---|
S | 31.61 | 29.43 | 1.07 | 11.60 | 12.59 | 0.92 |
B | 33.19 | 29.62 | 1.07 | 11.60 | 11.46 | 1.01 |
A-1 | 44.32 | 40.04 | 1.11 | 12.16 | 13.26 | 0.92 |
SA-2 | 46.13 | 47.20 | 0.98 | 12.16 | 10.77 | 1.13 |
BA-3 | 46.13 | 47.12 | 0.98 | 12.16 | 13.15 | 0.92 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Chen, T.; Chen, Z.; Liu, J.; Zhang, A. Bending Properties of Cold-Formed Thin-Walled Steel/Fast-Growing Timber Composite I-Beams. Forests 2024, 15, 857. https://doi.org/10.3390/f15050857
Chen T, Chen Z, Liu J, Zhang A. Bending Properties of Cold-Formed Thin-Walled Steel/Fast-Growing Timber Composite I-Beams. Forests. 2024; 15(5):857. https://doi.org/10.3390/f15050857
Chicago/Turabian StyleChen, Tianshu, Zhihua Chen, Jiadi Liu, and Anling Zhang. 2024. "Bending Properties of Cold-Formed Thin-Walled Steel/Fast-Growing Timber Composite I-Beams" Forests 15, no. 5: 857. https://doi.org/10.3390/f15050857
APA StyleChen, T., Chen, Z., Liu, J., & Zhang, A. (2024). Bending Properties of Cold-Formed Thin-Walled Steel/Fast-Growing Timber Composite I-Beams. Forests, 15(5), 857. https://doi.org/10.3390/f15050857