Technical Papers
Jul 13, 2021

Empirical Design Equation for Compression Strength of Lightweight FRP Sandwich Panel Walls

Publication: Journal of Architectural Engineering
Volume 27, Issue 3

Abstract

A new empirical design approach is presented for predicting the compression strength of lightweight fiber-reinforced polymer (FRP) sandwich panel columns. The model is simple enough to use for design purposes, yet it considers both local and global failure modes and is able to capture trends observed in experimental results. Insulated FRP sandwich panels present promising energy-efficient solutions for rapid modular construction, including wall or decking applications. To date, no straightforward design method exists for these systems, especially under compression loading, which limits their use in practice. Predicting the load-bearing capacity of these elements is complicated by the fact that several possible failure modes may occur, including global buckling, local wrinkling, face sheet crushing, or core shear failures. The proposed empirical model was calibrated using test results from 168 concentrically loaded sandwich columns with either flax FRP (FFRP) or glass FRP (GFRP) face sheets and polyurethane or polyisocyanurate rigid foam cores. A wide range of material properties, face sheet thicknesses, and slenderness ratios were considered in the analysis. The average experimental-to-predicted ratio was 1.04 with a coefficient of variation (COV) of 0.17.

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References

Allen, H. G. 1969. Analysis and design of structural sandwich panels. Oxford, UK: Pergamon.
Carlsson, L. A., and G. A. Kardomateas. 2011. Structural and failure mechanics of sandwich composites. New York: Springer.
CoDyre, L., and A. Fam. 2016. “The effect of foam core density at various slenderness ratios on axial strength of sandwich panels with glass-FRP skins.” Composites, Part B 106: 129–138. https://doi.org/10.1016/j.compositesb.2016.09.016.
CoDyre, L., and A. Fam. 2017. “Axial strength of sandwich panels of different lengths with natural flax-fiber composite skins and different foam-core densities.” J. Compos. Constr. 21 (5): 04017042. https://doi.org/10.1061/(ASCE)CC.1943-5614.0000820.
Fam, A., and T. Sharaf. 2010. “Flexural performance of sandwich panels comprising polyurethane core and GFRP skins and ribs of various configurations.” Compos. Struct. 92 (12): 2927–2935. https://doi.org/10.1016/j.compstruct.2010.05.004.
Frostig, Y., and M. Baruch. 1993. “High-order buckling analysis of sandwich beams with transversely flexible core.” J. Eng. Mech. 119 (3): 476–495. https://doi.org/10.1061/(ASCE)0733-9399(1993)119:3(476).
Frostig, Y., M. Baruch, O. Vilnay, and I. Sheinman. 1992. “High-order theory for sandwich-beam behavior with transversely flexible core.” J. Eng. Mech. 118 (5): 1026–1043. https://doi.org/10.1061/(ASCE)0733-9399(1992)118:5(1026).
Hermann, A. S., P. C. Zahlen, and I. Zuardy. 2005. “Sandwich structures technology in commercial aviation—Present applications and future trends.” In Sandwich structures 7: Advancing with sandwich structures and materials, edited by O. T. Thomsen, E. Bozhevolnaya, and A. Lyckegaard, 13–26. Dordrecht, Netherlands: Springer.
Kardomateas, G. A. 2005. “Wrinkling of wide sandwich panels/beams with orthotropic phases by an elasticity approach.” J. Appl. Mech. 72 (6): 818–825. https://doi.org/10.1115/1.1978919.
Kardomateas, G. A. 2010. “An elasticity solution for the global buckling of sandwich beams/wide panels with orthotropic phases.” J. Appl. Mech. 77 (2): 021015. https://doi.org/10.1115/1.3173758.
Liu, Q. 2006. Literature review: Materials with negative Poisson’s ratios and potential applications to aerospace and defence. Technical Rep. No. DSTO-GD-0472. Canberra, Australia: Australian Dept. of Defense.
Mak, K., A. Fam, and C. MacDougall. 2015. “Flexural behavior of sandwich panels with bio-FRP face sheets made of flax fibres and epoxidized pine-oil resin.” J. Compos. Constr. 19 (6): 13.
Mathieson, H., and A. Fam. 2014. “Axial loading tests and simplified modeling of sandwich panels with GFRP face sheets and soft core at various slenderness ratios.” J. Compos. Constr. 19 (2): 13.
Sadeghian, P., D. Hristozov, and L. Wroblewski. 2016. “Experimental and analytical behavior of sandwich composite beams: Comparison of natural and synthetic materials.” J. Sandwich Struct. Mater. 20: 287–307. https://doi.org/10.1177/1099636216649891.
Sharaf, T., and A. Fam. 2012. “Numerical modelling of sandwich panels with soft core and different rib configurations.” J. Reinf. Plast. Compos. 31 (11): 771–784. https://doi.org/10.1177/0731684412445494.
Sharaf, T., W. Shawkat, and A. Fam. 2010. “Structural performance of sandwich wall panels with different foam core densities in one-way bending.” J. Compos. Mater. 44 (19): 2249–2263. https://doi.org/10.1177/0021998310369577.
Sokolinsky, V., and Y. Frostig. 1999. “Boundary condition effects in buckling of ‘soft’ core sandwich panels.” J. Eng. Mech. 125 (8): 865–874. https://doi.org/10.1061/(ASCE)0733-9399(1999)125:8(865).
Steeves, C. A., and N. A. Fleck. 2004. “Material selection in sandwich beam construction.” Scr. Mater. 50 (10): 1335–1339. https://doi.org/10.1016/j.scriptamat.2004.02.015.
Thomsen, O. T., and Y. Frostig. 1997. “Localized bending effects in sandwich panels: Photoelastic investigation versus highorder sandwich theory results.” Compos. Struct. 37 (1): 97–108. https://doi.org/10.1016/S0263-8223(97)00023-8.

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Go to Journal of Architectural Engineering
Journal of Architectural Engineering
Volume 27Issue 3September 2021

History

Received: Sep 17, 2020
Accepted: Jun 16, 2021
Published online: Jul 13, 2021
Published in print: Sep 1, 2021
Discussion open until: Dec 13, 2021

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Authors

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Associate Professor, Dept. of Civil Engineering, Univ. of Ottawa, 161 Louis Pasteur Private, Ottawa, ON, Canada K1N 6N5 (corresponding author). ORCID: https://orcid.org/0000-0003-4431-7715. Email: [email protected]
Amir Fam, F.ASCE [email protected]
Professor, Donald and Sarah Munro Chair in Engineering and Applied Science, Dept. of Civil Engineering, Queen’s Univ., 58 University Ave., Kingston, ON, Canada K7L 3N6. Email: [email protected]

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  • Comparison between Stiffened Plate and Steel Aluminum Foam Sandwich Panels, Practice Periodical on Structural Design and Construction, 10.1061/PPSCFX.SCENG-1309, 29, 2, (2024).

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