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Research Article

Non-linear vibration and parametric optimization of sandwich composite curved shell panels with graphene reinforced skins and auxetic honeycomb core

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Received 31 Mar 2023, Accepted 29 Jul 2023, Published online: 24 Aug 2023

References

  • Akbari, H., M. Azadi, and H. Fahham. 2022. Free vibration analysis of thick sandwich cylindrical panels with saturated FG-porous core. Mechanics Based Design of Structures and Machines 50 (4):1268–86. doi: 10.1080/15397734.2020.1748051.
  • Arumugam, A. B., M. Subramani, M. Dalakoti, P. Jindal, R. Selvaraj, and E. Khalife. 2023. Dynamic characteristics of laminated composite CNT reinforced MRE cylindrical sandwich shells using HSDT. Mechanics Based Design of Structures and Machines 51 (7):4120–36. doi: 10.1080/15397734.2021.1950550.
  • Dharmasena, K. P., H. N. Wadley, Z. Xue, and J. W. Hutchinson. 2008. Mechanical response of metallic honeycomb sandwich panel structures to high-intensity dynamic loading. International Journal of Impact Engineering 35 (9):1063–74. doi: 10.1016/j.ijimpeng.2007.06.008.
  • Eipakchi, H., and F. Mahboubi Nasrekani. 2022. A closed-form solution for asymmetric free vibration analysis of composite cylindrical shells with metamaterial honeycomb core layer based on shear deformation theory. Mechanics Based Design of Structures and Machines 1–19. doi: 10.1080/15397734.2022.2051183.
  • Gao, X., M. Zhang, Y. Huang, L. Sang, and W. Hou. 2020. Experimental and numerical investigation of thermoplastic honeycomb sandwich structures under bending loading. Thin-Walled Structures 155:106961. doi: 10.1016/j.tws.2020.106961.
  • Guo, L.-J., J.-J. Mao, W. Zhang, Y.-Z. Liu, J. Chen, and W. Zhao. 2022. Modeling and analyze of behaviors of functionally graded graphene reinforced composite beam with geometric imperfection in multiphysics. Aerospace Science and Technology 127:107722. doi: 10.1016/j.ast.2022.107722.
  • Guo, L.-J., J.-J. Mao, W. Zhang, and M. Wu. 2023. Stability analyses of cracked functionally graded graphene-platelets reinforced composite beam covered with piezoelectric layers. International Journal of Structural Stability and Dynamics 2350164. doi: 10.1142/S021945542350164X.
  • Jiang, F., S. Yang, C. Qi, H.-T. Liu, A. Remennikov, and L.-Z. Pei. 2023. Blast response and multi-objective optimization of graded re-entrant circular auxetic cored sandwich panels. Composite Structures 305:116494. doi: 10.1016/j.compstruct.2022.116494.
  • Joshi, K. K., V. R. Kar, and B. Thomas. 2022. Higher-order finite element solution of graphene platelets reinforced nanocomposite curved panels with uniform/non-uniform porosity. Mechanics Based Design of Structures and Machines 1–20. doi: 10.1080/15397734.2022.2104311.
  • Kant, T., and K. Swaminathan. 2001. Analytical solutions for free vibration of laminated composite and sandwich plates based on a higher-order refined theory. Composite Structures 53 (1):73–85. doi: 10.1016/S0263-8223(00)00180-X.
  • Karimiasl, M., and A. Alibeigloo. 2022. Nonlinear free and forced vibration analysis of sandwich cylindrical panel with auxetic core and GPLRC facing sheets in hygrothermal environment. Thin-Walled Structures 175:109164. doi: 10.1016/j.tws.2022.109164.
  • Li, Y., Z. Feng, L. Huang, K. Essa, E. Bilotti, H. Zhang, T. Peijs, and L. Hao. 2019. Additive manufacturing high performance graphene-based composites: A review. Composites Part A: Applied Science and Manufacturing 124:105483. doi: 10.1016/j.compositesa.2019.105483.
  • Liu, Z., X. Wu, M. Yu, and M. Habibi. 2022. Large-amplitude dynamical behavior of multilayer graphene platelets reinforced nanocomposite annular plate under thermo-mechanical loadings. Mechanics Based Design of Structures and Machines 50 (11):3722–46. doi: 10.1080/15397734.2020.1815544.
  • Mehar, K., S. Kumar Panda, T. Q. Bui, and T. R. Mahapatra. 2017. Nonlinear thermoelastic frequency analysis of functionally graded CNT-reinforced single/doubly curved shallow shell panels by FEM. Journal of Thermal Stresses 40 (7):899–916. doi: 10.1080/01495739.2017.1318689.
  • Mirzaei, M. 2022. Vibration characteristics of sandwich plates with GPLRC core and piezoelectric face sheets with various electrical and mechanical boundary conditions. Mechanics Based Design of Structures and Machines 1–24. doi: 10.1080/15397734.2022.2126986.
  • Naidu, N. S., and P. K. Sinha. 2007. Nonlinear free vibration analysis of laminated composite shells in hygrothermal environments. Composite Structures 77 (4):475–83. doi: 10.1016/j.compstruct.2005.08.002.
  • Papageorgiou, D. G., I. A. Kinloch, and R. J. Young. 2017. Mechanical properties of graphene and graphene-based nanocomposites. Progress in Materials Science 90:75–127. doi: 10.1016/j.pmatsci.2017.07.004.
  • Safarpour, M., A. R. Rahimi, and A. Alibeigloo. 2020. Static and free vibration analysis of graphene platelets reinforced composite truncated conical shell, cylindrical shell, and annular plate using theory of elasticity and DQM. Mechanics Based Design of Structures and Machines 48 (4):496–524. doi: 10.1080/15397734.2019.1646137.
  • Salehipour, H., M. A. Shahmohammadi, P. D. Folkow, and O. Civalek. 2022. An analytical solution for vibration response of CNT/GPL/fibre/polymer hybrid composite micro/nanoplates. Mechanics of Advanced Materials and Structures 1–21. doi: 10.1080/15376494.2022.2150916.
  • Shen, H.-S., Y. Xiang, and F. Lin. 2017. Nonlinear vibration of functionally graded graphene-reinforced composite laminated plates in thermal environments. Computer Methods in Applied Mechanics and Engineering 319:175–93. doi: 10.1016/j.cma.2017.02.029.
  • Van Quyen, N., N. Van Thanh, T. Q. Quan, and N. D. Duc. 2021. Nonlinear forced vibration of sandwich cylindrical panel with negative Poisson’s ratio auxetic honeycombs core and CNTRC face sheets. Thin-Walled Structures 162:107571.doi: 10.1016/j.tws.2021.107571.
  • Wang, S., J. Mao, W. Zhang, and H. Lu. 2022. Nonlocal thermal buckling and postbuckling of functionally graded graphene nanoplatelet reinforced piezoelectric micro-plate. Applied Mathematics and Mechanics 43 (3):341–54. doi: 10.1007/s10483-022-2821-8.
  • Wang, Y., R. Zeng, and M. Safarpour. 2022. Vibration analysis of FG-GPLRC annular plate in a thermal environment. Mechanics Based Design of Structures and Machines 50 (1):352–70. doi: 10.1080/15397734.2020.1719508.
  • Wang, Z.-X., and H.-S. Shen. 2012. Nonlinear vibration and bending of sandwich plates with nanotube-reinforced composite face sheets. Composites Part B: Engineering 43 (2):411–21. doi: 10.1016/j.compositesb.2011.04.040.
  • Zhang, J., G. Lu, and Z. You. 2020. Large deformation and energy absorption of additively manufactured auxetic materials and structures: A review. Composites Part B: Engineering 201:108340. doi: 10.1016/j.compositesb.2020.108340.
  • Zhao, S., Z. Zhao, Z. Yang, L. Ke, S. Kitipornchai, and J. Yang. 2020. Functionally graded graphene reinforced composite structures: A review. Engineering Structures 210:110339. doi: 10.1016/j.engstruct.2020.110339.
  • Zhao, S., Y. Zhang, H. Wu, Y. Zhang, and J. Yang. 2022. Functionally graded graphene origami-enabled auxetic metamaterial beams with tunable buckling and postbuckling resistance. Engineering Structures 268:114763. doi: 10.1016/j.engstruct.2022.114763.
  • Zhao, S., Y. Zhang, Y. Zhang, J. Yang, and S. Kitipornchai. 2022. A functionally graded auxetic metamaterial beam with tunable nonlinear free vibration characteristics via graphene origami. Thin-Walled Structures 181:109997. doi: 10.1016/j.tws.2022.109997.

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