Experimental-Theoretical Research of Mechanical Properties of Perforated Composite Sandwich Panels

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This work is devoted to experimental-theoretical analysis of mechanical properties of sandwich panels made of fibrous polymer composite materials. The structures with tubular core were considered. Numerical simulations of the mechanical behaviour and tensile testing of full-scale samples of sandwich panels were done. The analysis of influence of perforation on mechanical properties of fiberglass laminates and sandwich panels was alsoperformed.

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Solid State Phenomena (Volume 243)

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1-10

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October 2015

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© 2016 Trans Tech Publications Ltd. All Rights Reserved

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[1] Vinson J.R., The behavior of sandwich structures of isotropic and composite materials, Technomic Publishing Company, Inc., Lancaster, Pennsylvania, (1999).

Google Scholar

[2] VenugopalM.M., MaharanaS.K., BadarinarayanK.S., Finite element evaluation of composite sandwich panel under static four point bending load, Journal of Engineering, Science and Technology Management. 2 (2013).

Google Scholar

[3] Sayyidmousavi A., MalekzadehK., BoughararH., Element buckling analysis of laminated composite sandwich panels with transversely flexible core containing a face/core debond, Journal of Composite materials. 46 (2011) 193-202.

DOI: 10.1177/0021998311410495

Google Scholar

[4] Chen D.H., Ozaki S., Analysis of in-plane elastic modulus for a hexagonal honeycomb core: effect of core height and proposed analytical method, Composite Structures. 88 (2009) 17–25.

DOI: 10.1016/j.compstruct.2008.02.021

Google Scholar

[5] Aktaya L., JohnsonA.F., Numerical modeling of honeycomb core crush behavior, Engineering Fracture Mechanics. 75 (2008) 2616–2630.

DOI: 10.1016/j.engfracmech.2007.03.008

Google Scholar

[6] Meraghni F., Desrumaux F., Benzeggagh M.L., Mechanical behaviour of cellular core for structural sandwich panels. Composites Part A. 30 (1999) 767–779.

DOI: 10.1016/s1359-835x(98)00182-1

Google Scholar

[7] Masters I.G., Evans K.E., Models for the elastic deformation of honeycombs, Composite Structures. 35 (1996) 403–422.

DOI: 10.1016/s0263-8223(96)00054-2

Google Scholar

[8] Anoshkin A.N., Zuiko V. Yu., Glezman A.V., Analysis of mechanical properties of composite sandwich panels with fillers, Proceeding of 16th European Conference for Composite Materials (ECCM16), Seville, Spain, (2014).

Google Scholar

[9] Minakuch iS., Okabe Y., Takeda N., Real-time detection of debonding between honeycomb core and facesheet using a small-diameter FBG sensor embedded in adhesive layer, Journal of Sandwich Structures and Materials. 9 (2007) 9-33.

DOI: 10.1177/1099636207064457

Google Scholar

[10] Okabe Y., Minakuchi S., Shiraishi N., Murakami K., Takeda N., Smart honeycomb sandwich panels with damage detection and shape recovery functions, Advanced Composite Materials. 17 (2008) 41-56.

DOI: 10.1163/156855108x295645

Google Scholar

[11] Ramlya R., Embedded FBG sensor in aircraft smart composite materials for structural monitoring, Applied Mechanics and Materials. 393 (2013) 311-316.

DOI: 10.4028/www.scientific.net/amm.393.311

Google Scholar

[12] Anoshkin A.N., Zuiko V. Yu., Tashkinov M.A., Silberschmidt V.V., Repair of damage in aircraft composite sound-absorbing panels, Composite Structures. 120 (2015) 153–166.

DOI: 10.1016/j.compstruct.2014.10.001

Google Scholar

[13] Tsai S.W., Wu E.M., A general theory of strength for anisotropic materials, Journal of Composite Materials. 5 (1971)58–80.

Google Scholar

[14] Zhang Y.X., Yang C.H., Recent developments in finite element analysis for laminated composite plates, Composite Structures. 88 (2009) 147–157.

DOI: 10.1016/j.compstruct.2008.02.014

Google Scholar

[15] ASTM D 882: Standard Test Method for Tensile Properties of Thin Plastic Sheeting (2012).

Google Scholar

[16] Zuiko V. Yu. , Lobanov D.S., Anoshkin A.N., Technique of experimental determination of ultimate strength of composite sandwichpanelsin tension, compression and shear static tests (in Russian), PNRPU Mechanics Bulletin. 2 (2012) 99–111.

Google Scholar

[17] Anoshkin A.N., Vildeman V.E., Lobanov D.S., Chikhachev A.I., Evaluation of repair efficiency in structures made of fibrous polymer composite materials, Mechanics of Composite Materials. 50 (2014) 311-316.

DOI: 10.1007/s11029-014-9416-0

Google Scholar