Browse > Article
http://dx.doi.org/10.12989/scs.2020.35.3.439

Thermoelastic effect on inter-laminar embedded delamination characteristics in Spar Wingskin Joints made with laminated FRP composites  

Mishra, P.K. (Department of Mechanical Engineering, Biju Patnaik University of Technology)
Pradhan, A.K. (School of Mechanical Sciences, Indian Institute of Technology)
Pandit, M.K. (School of Mechanical Sciences, Indian Institute of Technology)
Panda, S.K. (Department of Mechanical Engineering, Biju Patnaik University of Technology)
Publication Information
Steel and Composite Structures / v.35, no.3, 2020 , pp. 439-447 More about this Journal
Abstract
This paper presents two sets of full three-dimensional thermoelastic finite element analyses of superimposed thermo-mechanically loaded Spar Wingskin Joints made with laminated Graphite Fiber Reinforced Plastic composites. The study emphasizes the influence of residual thermal stresses and material anisotropy on the inter-laminar delamination behavior of the joint structure. The delamination has been pre-embedded at the most likely location, i.e., in resin layer between the top and next ply of the fiber reinforced plastic laminated wingskin and near the spar overlap end. Multi-Point Constraint finite elements have been made use of at the vicinity of the delamination fronts. This helps in simulating the growth of the embedded delamination at both ends. The inter-laminar thermoelastic peel and shear stresses responsible for causing delamination damage due to a combined thermal and a static loading have been evaluated. Strain energy release rate components corresponding to the Mode I (opening), Mode II (sliding) and Mode III (tearing) of delamination are determined using the principle of Virtual Crack Closure Technique. These are seen to be different and non-self-similar at the two fronts of the embedded delamination. Residual stresses developed due to the thermoelastic anisotropy of the laminae are found to strongly influence the delamination onset and propagation characteristics, which have been reflected by the asymmetries in the nature of energy release rate plots and their significant variation along the delamination front.
Keywords
delamination; strain energy release rate; Spar Wingskin Joint; thermoelastic; virtual crack closure technique;
Citations & Related Records
Times Cited By KSCI : 12  (Citation Analysis)
연도 인용수 순위
1 Francavilla, A.B., Latour, M., Piluso, V. and Rizzano, G. (2016), "Bolted T-stubs: A refined model for flange and bolt fracture modes", Steel Compos. Struct., 20(2), 267-293. https://doi.org/10.12989/scs.2016.20.2.267.   DOI
2 Gillespie Jr, J.W. and Pipes, R.B. (1978), "Behavior of integral composite joints-finite element and experimental evaluation 1", J. Compos. Mater.s, 12(4), 408-421. https://doi.org/10.1177/002199837801200406.   DOI
3 Grant, L.D.R., Adams, R.D. and da Silva, L.F. (2009), "Experimental and numerical analysis of single-lap joints for the automotive industry", Int. J. Adhesion Adhesives, 29(4), 405-413. https://doi.org/10.1016/j.ijadhadh.2008.09.001.   DOI
4 Hong, S. and Liu, D. (1989), "On the relationship between impact energy and delamination area", Exp. Mech., 29(2), 115-120. https://doi.org/10.1007/BF02321362.   DOI
5 Irwin, G.R. (1957), "Analysis of stresses and strains near the end of a crack transversing a plate", T. ASME, J. Appl. Mech., 24, 361-364.   DOI
6 Jena, B. (1993), "Analysis of Adhesive-Bonded Joints in FRP Composite Laminates and Tubes", (Doctoral dissertation, IIT, Kharagpur).
7 Kairouz, K.C. and Matthews, F.L. (1993), "Strength and failure modes of bonded single lap joints between cross-ply adherends", Composites, 24(6), 475-484. https://doi.org/10.1016/0010-4361(93)90017-3.   DOI
8 Kakei, A., Epaarachchi, J.A., Islam, M., Leng, J. and Rajic, N. (2016), "Detection and characterisation of delamination damage propagation in Woven Glass Fibre Reinforced Polymer Composite using thermoelastic response mapping", Compos. Struct., 153, 442-450. https://doi.org/10.1016/j.compstruct.2016.06.044.   DOI
9 Kharazan, M., Sadr, M.H. and Kiani, M. (2014), "Delamination growth analysis in composite laminates subjected to low velocity impact", Steel Compos. Struct., 17(4), 387-403. http://dx.doi.org/10.12989/scs.2014.17.4.387.   DOI
10 Krueger, R., Minguet, P.J. and O'Brien, T.K. (2003). "Implementation of interlaminar fracture mechanics in design: an overview".
11 Kumar, R.R., Vinod, G., Renjith, S., Rajeev, G., Jana, M.K. and Harikrishnan, R. (2005), "Thermo-structural analysis of composite structures", Mater. Sci. Eng.: A, 412(1-2), 66-70. https://doi.org/10.1016/j.msea.2005.08.065.   DOI
12 Lackman, L.M., O'brien, W.L. and Loyd, M.S. (1980), "Advanced composites integral structures meet the challenge of future aircraft systems", Fibrous composites in structural design. Springer, Boston, MA.
13 Mishra, P.K., Pradhan, A.K. and Pandit, M.K. (2016), "Interlaminar delamination analyses of Spar Wing-skin Joints made with flat FRP composite laminates", Int. J. Adhesion Adhesives, 68, 19-29. ttps://doi.org/10.1016/j.ijadhadh.2016.02.001.   DOI
14 Moradi-Dastjerdi, R. and Payganeh, G. (2017), "Thermoelastic dynamic analysis of wavy carbon nanotube reinforced cylinders under thermal loads", Steel Compos. Struct., 25(3), 315-326. https://doi.org/10.12989/scs.2017.25.3.315.   DOI
15 Moradi-Dastjerdi, R. and Behdinan, K. (2019), "Thermoelastic static and vibrational behaviors of nanocomposite thick cylinders reinforced with graphene", Steel Compos. Struct., 31(5), 529-539. https://doi.org/10.12989/scs.2019.31.5.529.   DOI
16 Sassi, S., Tarfaoui, M., and Yahia, H.B. (2018), "Thermomechanical behavior of adhesively bonded joints under out-of-plane dynamic compression loading at high strain rate", J. Compos. Mater.s, 52(30), 4171-4184. https://doi.org/10.1177/0021998318777048.   DOI
17 Nguyen, T.C., Bai, Y., Al-Mahaidi, R. and Zhao, X.L. (2012), "Time-dependent behaviour of steel/CFRP double strap joints subjected to combined thermal and mechanical loading", Compos. Struct., 94(5), 1826-1833. https://doi.org/10.1016/j.compstruct.2012.01.007.   DOI
18 Panigrahi, S.K. and Pradhan, B. (2009), "Development of load coupler profiles of spar wingskin joints with improved performance for integral structural construction of aircraft wings", J. Reinf. Plast. Comp., 28(6), 657-673. https://doi.org/10.1177/0731684407086594.   DOI
19 Rice, J. (1988), "Elastic fracture mechanics concepts for interfacial cracks", J. Appl. Mech., 55(1), 98-103. https://doi.org/10.1115/1.3173668.   DOI
20 Rybicki, E.F. and Kanninen, M.F. (1977), "A finite element calculation of stress intensity factors by a modified crack closure integral", Eng. Fract. Mech., 9(4), 931-938. https://doi.org/10.1016/0013-7944(77)90013-3.   DOI
21 Shokrieh, M.M., Torabizadeh, M.A. and Fereidoon, A. (2012), "Progressive failure analysis of glass/epoxy composites at low temperatures", Strength of Materials, 44(3), 314-324. https://doi.org/10.1007/s11223-012-9384-3.   DOI
22 Tong, L. (1998), "Failure of adhesive-bonded composite single lap joints with embedded cracks". AIAA J., 36(3), 448-456.   DOI
23 Byrd, L.W. and Birman, V. (2006), "Effect of temperature on stresses and delamination failure of z-pinned joints", Int. J. Mech. Sci., 48(9), 938-949. https://doi.org/10.1016/j.ijmecsci.2006.03.014.   DOI
24 Wilkins, D.J., Eisenmann, J.R., Camin, R.A., Margolis, W.S. and Benson, R.A. (1982), "Characterizing delamination growth in graphite-epoxy", Damage in Composite Materials: Basic Mechanisms, Accumulation, Tolerance, and Characterization. ASTM International.
25 Xu, Y., Chen, D.M., Zhu, W., Li, G. and Chattopadhyay, A. (2019). "Delamination identification of laminated composite plates using measured mode shapes", Smart Struct. Syst., 23(2), 195-205. http://dx.doi.org/10.12989/sss.2019.23.2.195.   DOI
26 Banea, M.D. and da Silva, L.F. (2009), "Adhesively bonded joints in composite materials: an overview", Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, 223(1), 1-18.   DOI
27 Benchiha, A. and Madani, K. (2015), "Influence of the presence of defects on the stresses shear distribution in the adhesive layer for the single-lap bonded joint", Struct. Eng. Mech., 53(5), 1017-1030. https://doi.org/10.12989/sem.2015.53.5.1017.   DOI
28 Beylergil, B., Tanoglu, M. and Aktas, E. (2019), "Mode-I fracture toughness of carbon fiber/epoxy composites interleaved by aramid nonwoven veils", Steel Compos. Struct., 31(2), 113-123. https://doi.org/10.12989/scs.2019.31.2.113.   DOI
29 Cope, R.D. and Pipes, R.B. (1982), "Design of the composite sparwingskin joint", Composites, 13(1), 47-53. https://doi.org/10.1016/0010-4361(82)90170-7.   DOI
30 Elhannani, M., Madani, K., Mokhtari, M., Touzain, S., Feaugas, X., and Cohendoz, S. (2016), "A new analytical approach for optimization design of adhesively bonded single-lap joint", Struct. Eng. Mech., 59(2), 313-326. http://dx.doi.org/10.12989/sem.2016.59.2.313.   DOI