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Metals  2011 

Impact Response of Aluminum Foam Sandwiches for Light-Weight Ship Structures

DOI: 10.3390/met1010098

Keywords: aluminum foam sandwich, low velocity impact, Computed Tomography, shipbuilding

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Abstract:

The structures realized using sandwich technologies combine low weight with high energy absorbing capacity, so they are suitable for applications in the transport industry (automotive, aerospace, shipbuilding industry) where the “lightweight design” philosophy and the safety of vehicles are very important aspects. While sandwich structures with polymeric foams have been applied for many years, currently there is a considerable and growing interest in the use of sandwiches with aluminum foam core. The aim of this paper was the analysis of low-velocity impact response of AFS (aluminum foam sandwiches) panels and the investigation of their collapse modes. Low velocity impact tests were carried out by a drop test machine and a theoretical approach, based on the energy balance model, has been applied to investigate their impact behavior. The failure mode and the internal damage of the impacted AFS have also been investigated by a Computed Tomography ( CT) system.

References

[1]  Abrate, S. Impact on Composite Structures; Cambridge University Press: Cambridge, UK, 2005.
[2]  Ashby, M.F.; Evans, A.; Fleck, N.A.; Gibson, L.J.; Hutchinson, J.W.; Wadley, H.N.G. Metal Foams: A Design Guide; Butterworth Heinmann: Burlington, VT, USA, 2000.
[3]  Gibson, L.J.; Ashby, M.F. Cellular Solids, 2nd ed. ed.; Cambridge University Press: Cambridge, UK, 1997.
[4]  Banhart, J.; Schmoll, C.; Neumann, U. Light-weight aluminum foam structures for ships. Proceedings of the Conference on Materials in Oceanic Environment (Euromat '98), Lisbon, Portugal, 22–24 July 1998; Faria, L., Ed.; Federation of European Materials Societies (FEMS): Lisbon, Portugal, 1998; 1, pp. 55–63.
[5]  Baumeister, J.; Banhart, J.; Weber, M. Aluminum foams for transport industry. Mater. Des. 1997, 18, 217–220.
[6]  Hazizan, M.A.; Cantwell, W.J. The low velocity impact response of foam-based sandwich structures. Compos. Part B 2002, 33, 193–204.
[7]  Crupi, V.; Epasto, G.; Guglielmino, E. Low velocity impact strength of sandwich materials. J. Sandw. Struct. Mater. 2011, 13, 409–426.
[8]  Crupi, V.; Epasto, G.; Guglielmino, E. Computed tomography analysis of damage in composites subjected to impact loading. Fract. Struct. Integr. 2011, 17, 32–41.
[9]  Olurin, O.B.; Arnold, M.; K?rner, C.; Singer, R.F. The investigation of morphometric parameters of aluminum foams using micro-computed tomography. Mater. Sci. Eng. 2002, A328, 334–343.
[10]  Wicklein, M.; Thoma, K. Numerical investigations of the elastic and plastic behaviour of an open-cell aluminum foam. Mater. Sci. Eng. 2005, A397, 391–399.
[11]  Mahfuz, H.; Al Mamum, W.; Jeelani, S. Effect of core density and implanted delamination on the high strain rate response of foam core sandwich composites. Sandw. Constr. 1997, 5, 597–606.
[12]  Compston, P.; Styles, M.; Kalyanasundaram, S. Low energy impact damage modes in aluminum foam and polymer foam sandwich structures. J. Sandw. Struct. Mater. 2006, 8, 365–379.
[13]  Shivakumar, K.N.; Elber, W.; Illg, W. Prediction of impact force and duration during low-velocity impact on circular composite laminates. Trans. ASME J. Appl. Mech. 1985, 52, 674–680.
[14]  Foo, C.C.; Seah, L.K.; Chai, G.B. Low-velocity impact failure of aluminum honeycomb sandwich panels. Compos. Struct. 2008, 85, 20–28.

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