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http://dx.doi.org/10.12989/scs.2018.29.6.785

Ultimate strength estimation of composite plates under combined in-plane and lateral pressure loads using two different numerical methods  

Ghannadpour, S.A.M. (Aerospace Engineering Department, Faculty of New Technologies and Engineering, Shahid Beheshti University)
Shakeri, M. (Aerospace Engineering Department, Faculty of New Technologies and Engineering, Shahid Beheshti University)
Barvaj, A. Kurkaani (Aerospace Engineering Department, Faculty of New Technologies and Engineering, Shahid Beheshti University)
Publication Information
Steel and Composite Structures / v.29, no.6, 2018 , pp. 785-802 More about this Journal
Abstract
In this paper, two different computational methods, called Rayleigh-Ritz and collocation are developed to estimate the ultimate strength of composite plates. Progressive damage behavior of moderately thick composite laminated plates is studied under in-plane compressive load and uniform lateral pressure. The formulations of both methods are based on the concept of the principle of minimum potential energy. First order shear deformation theory and the assumption of large deflections are used to develop the equilibrium equations of laminated plates. Therefore, Newton-Raphson technique will be used to solve the obtained system of nonlinear algebraic equations. In Rayleigh-Ritz method, two degradation models called complete and region degradation models are used to estimate the degradation zone around the failure location. In the second method, a new energy based collocation technique is introduced in which the domain of the plate is discretized into the Legendre-Gauss-Lobatto points. In this new method, in addition to the two previous models, the new model named node degradation model will also be used in which the material properties of the area just around the failed node are reduced. To predict the failure location, Hashin failure criteria have been used and the corresponding material properties of the failed zone are reduced instantaneously. Approximation of the displacement fields is performed by suitable harmonic functions in the Rayleigh-Ritz method and by Legendre basis functions (LBFs) in the second method. Finally, the results will be calculated and discussions will be conducted on the methods.
Keywords
ultimate strength; Hashin failure criteria; collocation; Rayleigh-Ritz; composite plate; Legendre-Gauss-Lobatto nodes; geometric nonlinear analysis;
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1 Vu, T.V., Khosravifard, A., Hematiyan, M.R. and Bui, T.Q. (2018), "A new refined simple TSDT-based effective meshfree method for analysis of through-thickness FG plates", Appl. Math. Model., 57, 514-534.   DOI
2 Hayman, B., Berggreen, C., Lundsgaard-Larsen, C., Delarche, A., Toftegaard, H., Dow, R.S., Downes, J., Misirlis, K., Tsouvalis, N. and Douka, C. (2011), "Studies of the buckling of composite plates in compression", Ships Offshore Struct., 6(1-2), 81-92.   DOI
3 Jiang, G., Li, F. and Zhang, C. (2018), "Postbuckling and nonlinear vibration of composite laminated trapezoidal plates", Steel Compos. Struct., Int. J., 26(1), 17-29.
4 Jin, Z-H. and Batra, R.C. (1999), "Thermal shock cracking in a metal-particle-reinforced ceramic matrix composite", Eng. Fract. Mech., 62, 339-350 .   DOI
5 Kamareh, F., Farrokhabadi, A. and Rahimi, G. (2018), "Experimental and numerical investigation of skin/lattice stiffener debonding growth in composite panels under bending loading", Eng. Fract. Mech., 190, 471-490.   DOI
6 Mahieddinet, A., Ouali, M. and Mazouz, A. (2015), "Modeling and simulation of partially delaminated composite beams", Steel Compos. Struct., Int. J., 18(5), 1119-1127.   DOI
7 Mehrparvar, M. and Ghannadpour, S.A.M. (2018), "Plate assembly technique for nonlinear analysis of relatively thick functionally graded plates containing rectangular holes subjected to in-plane compressive load", Compos. Struct., 202, 867-880.   DOI
8 Muthusamy, P. and Sivakumar, S.M. (2014), "A constituentbehavior-motivated model for damage in fiber reinforced composites", Computat. Mater. Sci., 94, 163-172.   DOI
9 Afshin, M. and Taheri-Behrooz, F. (2015), "Interlaminar stresses of laminated composite beams resting on elastic foundation subjected to transverse loading", Computat. Mater. Sci., 96, 439-447.   DOI
10 Aghaei, M., Forouzan, M.R., Nikforouz, M. and Shahabi, E. (2015), "A study on different failure criteria to predict damage in glass/polyester composite beams under low velocity impact", Steel Compos. Struct., Int. J., 18(5), 1291-1303.   DOI
11 Argyris, J. and Tenek, L. (1997), "Recent advances in computational thermostructural analysis of composite plates and shells with strong nonlinearities", Appl. Mech. Rev., 50, 285-306.   DOI
12 Batra, R.C. and Xiao, J. (2013), "Analysis of post-buckling and delamination in laminated composite St. Venant-Kirchhoff beams using CZM and layer-wise TSNDT", Compos. Struct., 105, 369-384.   DOI
13 Becheri, T., Amara, K., Bouazza, M. and Benseddiq, N. (2016), "Buckling of symmetrically laminated plates using nth-order shear deformation theory with curvature effects", Steel Compos. Struct., Int. J., 21(6), 1347-1368.   DOI
14 Ovesy, H.R., Ghannadpour, S.A.M. and Nassirnia, M. (2015), "Post-buckling analysis of rectangular plates comprising Functionally Graded Strips in thermal environments", Comput. Struct., 147, 209-215.   DOI
15 Naghsh, A., Azhari, M. and Saadatpour, M.M. (2018), "Thermal buckling analysis of point-supported laminated composite plates in unilateral contact", Appl. Math. Model., 56, 564-583.   DOI
16 Ovesy, H.R. and Ghannadpour, S.A.M. (2011), "An exact finite strip for the nitial postbuckling analysis of channel section struts", Comput. Struct. 89(19), 1785-1796.   DOI
17 Ovesy, H.R., Ghannadpour, S.A.M. and Morada, G. (2005), "Geometric non-linear analysis of composite laminated plates with initial imperfection under end shortening, using two versions of finite strip method", Compos. Struct., 71(3), 307-314.   DOI
18 Paik, S., Gupta, S.S. and Batra, R.C. (2015), "Localization of buckling modes in plates and laminates", Compos. Struct., 120, 79-89.   DOI
19 Patel, S.N. (2014), "Nonlinear bending analysis of laminated composite stiffened plates", Steel Compos. Struct., Int. J., 17(6), 867-890.   DOI
20 Su, Z.C., Tay, T.E., Ridha, M. and Chen, B.Y. (2015), "Progressive damage modeling of open-hole composite laminates under compression", Compos. Struct., 122, 507-517.   DOI
21 Sun, Y., Li, S.R. and Batra, R.C. (2016), "Thermal buckling and post-buckling of FGM Timoshenko beams on nonlinear elastic foundation", J. Thermal Stress., 39(1), 11-26.   DOI
22 Topal, U. (2013), "Application of a new extended layerwise approach to thermal buckling load optimization of laminated composite plates", Steel Compos. Struct., Int. J., 14(3), 283-293.   DOI
23 Brubak, L., Hellesland, J. and Steen, E. (2007), "Semi-analytical buckling strength analysis of plates with arbitrary stiffener arrangements", J. Constr. Steel Res., 63(4), 532-543.   DOI
24 Brubak, L. and Hellesland, J. (2007a), "Approximate buckling strength analysis of arbitrarily stiffened and stepped plates", Eng. Struct., 29(9), 2321-2333.   DOI
25 Brubak, L. and Hellesland, J. (2007b), "Semi-analytical postbuckling and strength analysis of arbitrarily stiffened plates in local and global bending", Thin-Wall. Struct., 45(6), 620-633.   DOI
26 Brubak, L. and Hellesland, J. (2008), "Strength criteria in semianalytical and large deflection analysis of stiffened plates in local and global bending", Thin-Wall. Struct., 46(12), 1382-1390   DOI
27 Chakraverty, S. and Pradhan, K.K. (2014), "Free vibration of functionally graded thin rectangular plates resting on Winkler elastic foundation with general boundary conditions using Rayleigh-Ritz method", Int. J. Appl. Mech., 6(4), 1450043.   DOI
28 Fantuzzi, N. and Tornabene, F. (2016), "Strong formulation isogeometric analysis (SFIGA) for laminated composite arbitrarily shaped plates", Compos. Part B: Eng., 96, 173-203.   DOI
29 Fantuzzi, N., Tornabene, F., Bacciocchi, M. and Ferreira, A.J. (2018), "On the Convergence of Laminated Composite Plates of Arbitrary Shape through Finite Element Models", J. Compos. Sci., 2(1), 16.   DOI
30 Ghannadpour, S.A.M. and Kiani, P. (2018), "Nonlinear spectral collocation analysis of imperfect functionally graded plates under end-shortening", Struct. Eng. Mech., Int. J., 66(5), 557-568.
31 Yang, Q.J. and Hayman, B. (2015a), "Prediction of post-buckling and ultimate compressive strength of composite plates by semianalytical methods", Eng. Struct., 84, 42-53.   DOI
32 Tornabene, F., Fantuzzi, N. and Bacciocchi, M. (2017), "Linear static behavior of damaged laminated composite plates and shells", Materials, 10(7), 811, 1-52.   DOI
33 Tornabene, F., Fantuzzi, N., Bacciocchi, M. and Viola, E. (2018), "Mechanical behavior of damaged laminated composites plates and shells: higher-order shear deformation theories", Compos. Struct., 189, 304-329.   DOI
34 Vedrtnam, A. and Pawar, S.J. (2017), "Laminated Plate Theories and Fracture of Laminated Glass Plate-A Review", Eng. Fract. Mech., 186, 316-330 .   DOI
35 Yang, Q.J. and Hayman, B. (2015b), "Simplified ultimate strength analysis of compressed composite plates with linear material degradation", Compos. Part B: Eng., 69, 13-21.   DOI
36 Yang, Q.J., Hayman, B. and Osnes, H. (2013), "Simplified buckling and ultimate strength analysis of composite plates in compression", Compos. Part B: Eng., 54, 343-352.   DOI
37 Zhang, Y.X. and Yang, C.H. (2009), "Recent developments in finite element analysis for laminated composite plates", Compos. Struct., 88(1), 147-157.   DOI
38 Ghannadpour, S.A.M. and Shakeri, M. (2018), "Energy based collocation method to predict progressive damage behavior of imperfect composite plates under compression", Latin Am. J. Solids Struct., 15(4), e35. DOI: https://dx.doi.org/10.1590/1679-78254257   DOI
39 Ghannadpour, S.A.M. and Ovesy, H.R. (2009a), "The application of an exact finite strip to the buckling of symmetrically laminated composite rectangular plates and prismatic plate structures", Compos. Struct., 89(1), 151-158.   DOI
40 Ghannadpour, S.A.M. and Ovesy, H.R. (2009b), "Exact postbuckling stiffness calculation of box section struts", Eng. Computat., 26(7), 868-893.   DOI
41 Ghannadpour, S.A.M. and Mehrparvar, M. (2018), "Energy effect removal technique to model circular/elliptical holes in relatively thick composite plates under in-plane compressive load", Compos. Struct., 202, 1032-1041.   DOI
42 Ghannadpour, S.A.M., Ovesy, H.R. and Zia-Dehkordi, E. (2014), "An exact finite strip for the calculation of initial post-buckling stiffness of shear-deformable composite laminated plates", Compos. Struct., 108, 504-513.   DOI
43 Ghannadpour, S.A.M., Barvaj, A.K. and Tornabene, F. (2018), "A semi-analytical investigation on geometric nonlinear and progressive damage behavior of relatively thick laminated plates under lateral pressure and end-shortening", Compos. Struct., 194, 598-610.   DOI
44 Hashin, Z. and Rotem, A. (1973), "A fatigue failure criterion for fiber reinforced materials", J. Compos. Mater., 7(4), 448-464.   DOI