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Static analysis of FGM cylinders by a mesh-free method

  • Foroutan, M. (Mechanical Engineering Department, Razi University) ;
  • Moradi-Dastjerdi, R. (Young Researchers Club, Khomeinishahr Branch, Islamic Azad University) ;
  • Sotoodeh-Bahreini, R. (Mechanical Engineering Department, Razi University)
  • Received : 2010.07.15
  • Accepted : 2011.10.11
  • Published : 2012.01.25

Abstract

In this paper static analysis of FGM cylinders subjected to internal and external pressure was carried out by a mesh-free method. In this analysis MLS shape functions are used for approximation of displacement field in the weak form of equilibrium equation and essential boundary conditions are imposed by transformation method. Mechanical properties of cylinders were assumed to be variable in the radial direction. Two types of cylinders were analyzed in this work. At first cylinders with infinite length were considered and results obtained for these cylinders were compared with analytical solutions and a very good agreement was seen between them. Then the proposed mesh-free method was used for analysis of cylinders with finite length and two different types of boundary conditions. Results obtained from these analyses were compared with results of finite element analyses and a very good agreement was seen between them.

Keywords

References

  1. Askari, M., Akhlaghi, M. and Hosseini, S.M. (2009), "Dynamic analysis of two-dimensional functionally graded thick hollow cylinder with finite length under impact loading", J. Acta. Mech., 208(3-4), 163-180. https://doi.org/10.1007/s00707-008-0133-4
  2. Ching, H.K. and Yen, S.C. (2005), "Meshless local Petrov-Galerkin analysis for 2d functionally graded elastic solids under mechanical and thermal loads", J. Compos. Part B, 36(3), 223-240. https://doi.org/10.1016/j.compositesb.2004.09.007
  3. Gilhooley, D.F., Xiao, J.R., Batra, R.C., McCarthy, M.A. and Gillespie, Jr.J.W. (2008), "Two-dimensional stress analysis of functionally graded solids using the MLPG method with radial basis functions" J. compu. mater. sci., 41(4), 467-481 https://doi.org/10.1016/j.commatsci.2007.05.003
  4. Horgan, C.O. and Chan, A.M. (1999), "The pressurized hollow cylinder or disk problem for functionally graded isotropic linearly elastic materials", J. Elasticity, 55(1), 43-59. https://doi.org/10.1023/A:1007625401963
  5. Jabbari, M., Bahtui, A. and Eslami, M.R. (2006), "Axisymmetric mechanical and thermal stresses in thick long FGM cylinders", J. Therm. Stresses., 29(7), 643-663 https://doi.org/10.1080/01495730500499118
  6. Lancaster, P. and Salkauskas, K. (1981), "Surface generated by moving least squares methods", Math. Comput., 37(155), 141-158. https://doi.org/10.1090/S0025-5718-1981-0616367-1
  7. Li, X.-F. and Peng, X.-L. (2009), "A pressurized functionally graded hollow cylinder with arbitrarily varying material properties", J. Elas., 96(1), 81-95. https://doi.org/10.1007/s10659-009-9199-z
  8. Sladek, J., Sladek, V. and Zhang. Ch. (2003), "Transient heat conduction analysis in functionally graded materials by the meshless local boundary integral equation method", J. compu. mater. sci., 28(3-4), 494-504. https://doi.org/10.1016/j.commatsci.2003.08.006
  9. Sladek, V., Sladek, J. and Zhang, Ch. (2008), "Local integral equation formulation for axially symmetric problems involving elastic FGM", Eng. Anal. Bound. Elem., 32(12), 1012-1024. https://doi.org/10.1016/j.enganabound.2007.09.006
  10. Tutuncu, N. and Ozturk, M. (2001), "Exact solutions for stresses in functionally graded pressure vessels", J. Compos. part B, 32(8), 683-686. https://doi.org/10.1016/S1359-8368(01)00041-5
  11. Tutuncu, N. (2007), "Stresses in thick-walled FGM cylinders with exponentially-varying properties", J. Eng. struct., 29(9), 2032-2035. https://doi.org/10.1016/j.engstruct.2006.12.003
  12. Tutuncu, N. and Temel, B. (2009), "A novel approach to stress analysis of pressurized FGM cylinders, disks and spheres", J. Compos. Struct., 91(3), 385-390. https://doi.org/10.1016/j.compstruct.2009.06.009
  13. Zhao, X. and Liew, K.M. (2010), "A mesh-free method for analysis of the thermal and mechanical buckling of functionally graded cylindrical shell panels", Comput. Mech., 45, 297-310. https://doi.org/10.1007/s00466-009-0446-8

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