Mechanical and Tribological Characterization of Composite Laminates Manufactured by Liquid Composite Molding Processes

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The aim of the present work is to investigate the influence of the Vacuum Assisted Resin Transfer Molding process steps on the impregnation quality of the laminates as well as on mechanical and tribological properties of the processed material. Composite laminates were realized using epoxy resin reinforced with carbon (CF) or glass continuous (GF) fibers. Two different textile architectures, namely non-crimp fabrics (UD) and woven-mat (0/90), were used and various processing conditions were employed. Optical observations revealed an unexpected trend relatively to the intra and inter bundle voids concentration with respect to the impregnation velocity, especially using UD-CF and UD-GF reinforcements and low impregnation rate. Tensile and three points bending tests highlighted the strong impact of fiber material and architecture on mechanical properties, whereas the presence of voids played a slightly influence on the fiber dominated characteristics analyzed. Tribological outcomes evidenced a reduction of the friction coefficient when the resin is reinforced by carbon or glass fibers as well as when the sliding direction of the counterbody is oriented parallel to the fiber direction.

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Key Engineering Materials (Volumes 651-653)

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907-912

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July 2015

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© 2015 Trans Tech Publications Ltd. All Rights Reserved

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[1] K. Friedrich, L. Chang, F. Haupert, Current and Future Applications of Polymer Composites in the Field of Tribology, in: L. Nicolais, M. Meo, E. Milella (Eds. ), Composite Materials, Springers, London, 2011, pp.129-167.

DOI: 10.1007/978-0-85729-166-0_6

Google Scholar

[2] T.Ø. Larsen, T.L. Andersen, B. Thorning, A. Horsewell, M.E. Vigild., Comparison of friction and wear for an epoxy resin reinforced by a glass or a carbon/aramid hybrid weave, Wear 262 (2007) 1013-1020.

DOI: 10.1016/j.wear.2006.10.004

Google Scholar

[3] S. Ghiorse, Effect of void content on the mechanical preperties of carbon/epoxy laminates, SAMPE J. 24 (1993) 54-59.

Google Scholar

[4] N. Patel, L. Lee, Modeling of void formation and removal in liquid composite molding. Part I: Wettability analysis, Polym. Compos. 17 (1996) 96-103.

DOI: 10.1002/pc.10594

Google Scholar

[5] N. Patel, L. Lee, Modeling of void formation and removal in liquid composite molding. Part II: Model development and implementation, Polym. Compos. 17 (1996) 104-114.

DOI: 10.1002/pc.10595

Google Scholar

[6] P. Carlone, G.S. Palazzo, Unsaturated and saturated flow front tracking in Liquid Composite Molding processes using dielectric sensors, Appl. Compos. Mater. (2014) 1-15.

DOI: 10.1007/s10443-014-9422-3

Google Scholar

[7] M. Sharma, I. Rao, J. Bijwe, Influence of orientation of long fibers in carbon fiber-polyetherimide composites on mechanical and tribological properties, Wear 267 (2009) 839-845.

DOI: 10.1016/j.wear.2009.01.015

Google Scholar

[8] A. Schelling, H. Kausch, Reciprocating Dry Friction and Wear of Short Fibre Reinforced Polymer Composites, in: K. Friedrich (Ed. ), Advances in Composite Tribology, Elsevier Science, Amsterdam, 1993, pp.65-105.

DOI: 10.1016/b978-0-444-89079-5.50007-6

Google Scholar

[9] M. Mathew, N.V. Padaki, R. Alagirusamy, B. Deopura, R. Fangueiro, L. Rocha, J. Gomes, Tribological behaviour of multilayered textile composites: The effect of reciprocating sliding frequency, Wear 267 (2009) 26-33.

DOI: 10.1016/j.wear.2009.01.001

Google Scholar

[10] H. Dhieb, J. Buijnsters, F. Eddoumy, J. Celis, Surface damage of unidirectional carbon fiber reinforced epoxy composites under reciprocating sliding in ambient air, Compos. Sci. Technol. 71 (2011) 1769-1776.

DOI: 10.1016/j.compscitech.2011.08.012

Google Scholar

[11] R.Y. Yee, T.S. Stephens, A TGA technique for determining graphite fiber content in epoxy composites, Thermochim. Acta 272 (1996) 191-199.

DOI: 10.1016/0040-6031(95)02606-1

Google Scholar

[12] H. -y. Zhu, D. -h. Li, D. -x. Zhang, B. -c. Wu, Y. -y. Chen, Influence of voids on interlaminar shear strength of carbon/epoxy fabric laminates, Trans. Nonferrous Met. Soc. China 19 (2009) 470-475.

DOI: 10.1016/s1003-6326(10)60091-x

Google Scholar

[13] A. Senatore, A. Ruggiero, V. Palade, S. Ciortan, Neural networks based study of friction coefficient variation in sliding bearings, DIPRE'07, Galati, Romania (2007) 17-21.

Google Scholar