Study of Free Vibration Characteristics of Carbon Epoxy Based Composite Beams

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Carbon fibers find their application in lightweight structures due to high strength to weight ratio. Passive damping is proving important for vibration control and dynamic stability in advanced engineering systems like aerospace, automobiles and in ship building industry. In the present investigation, Mechanical properties and free vibration characteristics of woven fabric carbon composites were studied by adding micro rubber alone as reinforcement and combination of micro rubber and nanosilica particles as other reinforcements in epoxy matrix. Carbon composites were prepared with two different epoxy matrices containing 9 wt. % micro rubber particle and 6wt. % nanosilica and 9 wt. % micro rubber particles as another combination. To study the influence of cross sectional shapes on vibration behavior of beams, most widely used structural shapes like I, Box and Channel section were chosen. Beams were fabricated with woven carbon fabric and epoxy resin by hand layup technique by maintaining 40 % fiber volume fraction and 60 % matrix volume fraction for all epoxy combinations. Mechanical behavior of modified carbon composites were studied by conducting tests as prescribed by ASTM standards. Vibration damping behavior was studied by subjecting fabricated beams to Impulse frequency response test under cantilever end boundary conditions. It was found that the hybrid carbon epoxy beams with 6% nanoSilica and 9% Micro Rubber by weight showed better damping performance for successive resonance frequencies. Modal responses of all beams like mode shapes and their corresponding natural frequencies were extracted using MEScopeVES® software and discussed.

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1042-1046

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November 2015

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© 2015 Trans Tech Publications Ltd. All Rights Reserved

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[1] R Chandra, S. P Singh, K Gupta, Damping studies in fiber-composites – a review, Composite Structures, 46 (1999) 41 – 51.

DOI: 10.1016/s0263-8223(99)00041-0

Google Scholar

[2] Ioana C. Finegan, Ronald f. Gibson, Recent research on enhancement of damping in polymer composites, Composite Structures. 44 (1999) 89-98.

DOI: 10.1016/s0263-8223(98)00073-7

Google Scholar

[3] Liao, F.S., Su, A. c. and Hsu, T – C. J Vibration Damping of Interleaved Carbon Fiber-Epoxy Composite Beams, Journal of Composite Materials, 28 (1994) 1840-1854.

DOI: 10.1177/002199839402801806

Google Scholar

[4] Gintautas, Damping Properties of Concrete with Rubber Waste Additives, Materials science 15 (2009) 266-272.

Google Scholar

[5] A. J Kinloch and A.C. Taylor, The toughening of cyanate-ester polymers – Part I – Physical modification using particles, fibres and woven-mats, J of Material Science. 37 (2002) 433-460.

Google Scholar

[6] Toughening mechanisms of nanoparticle-modified epoxy polymers, B. B Johnsen, A.J. Kinloch, R.D. Mohammed, A.C. Taylor and S. Sprenger, Polymer. 48 (2007) 530-541.

DOI: 10.1016/j.polymer.2006.11.038

Google Scholar

[7] The Interlaminar toughness of carbon-fibre reinforced plastic composites using hybrid-toughened, matrices, A.J. Kinloch, R.D. Mohammed, A.C. Taylor, S. Sprenger and D. Egan, J. Mater. Sci., 41, 5043-5046, (2006).

DOI: 10.1007/s10853-006-0130-8

Google Scholar

[8] Rosso P, Ye L, Friedrich K, and Sprenger S, A toughened epoxy resin by silica nanoparticle reinforcement. J Applied Polymer Science. 100(3). pp.1849-1855, (2006).

DOI: 10.1002/app.22805

Google Scholar

[9] Guo Y and Li Y, Quasi-static /dynamic response of SiO2–epoxy nanocomposites. Materials Science and Engineering, 458(1-2). pp.330-335, (2007).

DOI: 10.1016/j.msea.2007.02.011

Google Scholar

[10] C. Senthamaraikannan, S. K Sarathkumar, R. Ramesh, Experimental Investigation on Modal Response of Woven fabric Carbon Composite plate reinforced with particles of micro rubber blended epoxy matrix under Free Vibration Condition, Advance Materials Research Vols. 984-985, (2014).

DOI: 10.4028/www.scientific.net/amr.984-985.273

Google Scholar

[11] ASTM D638, Standard test method for tensile properties of polymer matrix composite materials, Annual book of ASTM standards.

Google Scholar

[12] ASTM D790-03, Standard test method for flexural properties of unreinforced and electrical Insulating Materials, Annual book of ASTM standards.

Google Scholar

[13] C. Senthamaraikannan, R Ramesh, Experimental investigation on vibration characteristics of woven carbon fabric-reinforced composite beams of various cross-sectional shapes, Proc IMechE Part L: J Materials: Design and Applications, 4 August 2014, DOI: 10. 1177/1464420714545368, Aug (2014).

DOI: 10.1177/1464420714545368

Google Scholar

[14] T.H. Hsieh, A.J. Kinloch, K. Masania, A.C. Taylor, S. Sprenger, The mechanisms and mechanics of the toughening of epoxy polymers modified with silica nanoparticles, Polymer 51, 6284-6294, (2010).

DOI: 10.1016/j.polymer.2010.10.048

Google Scholar