期刊文献+

Dynamic Analysis of Non-Symmetric Functionally Graded (FG) Cylindrical Structure under Shock Loading by Radial Shape Function Using Meshless Local Petrov-Galerkin (MLPG) Method with Nonlinear Grading Patterns 被引量:2

下载PDF
导出
摘要 In this paper,dynamic behavior of non-symmetric Functionally Graded(FG)cylindrical structure under shock loading is carried out.Dynamic equations in the polar coordinates are drawn out using Meshless Local Petrov-Galerkin(MLPG)method.Nonlinear volume fractions are used for radial direction to simulate the mechanical properties of Functionally Graded Material(FGM).To solve dynamic equations of nonsymmetric FG cylindrical structure in the time domain,the MLPG method are combined with the Laplace transform method.For computing the inverse Laplace transform in the present paper,the Talbot algorithm for the numerical inversion is used.To verify the obtained results by the MLPG method,these results are compared with the analytical solution and the Finite Element Method(FEM).The obtained results through the MLPG method show a good agreement in comparison to other results and the MLPG method has high accuracy for dynamic analysis of non-symmetric FG cylindrical structure.The capability of the present method to dynamic analysis of non-symmetric FG cylindrical structure is demonstrated by dynamic analysis of the cylinder with different volume fraction exponents under harmonic and rectangular shock loading.The present method shows high accuracy,efficiency and capability to dynamic analysis of non-symmetric FG cylindrical structure with nonlinear grading patterns,which furnishes a ground for a more flexible design.
出处 《Computer Modeling in Engineering & Sciences》 SCIE EI 2017年第4期497-520,共24页 工程与科学中的计算机建模(英文)
  • 相关文献

参考文献1

二级参考文献46

  • 1Shen,Hui-Shen, Functionally Graded Materials: Nonlinear Analysis of Plates and Shells. CRC Press, Taylor & Francis Group, 2009.
  • 2Reddy, J.N. and Chin,C.D., Thermo-elastical analysis of functionally graded cylinders and plates. Journal of Thermal Stresses, 1998, 21: 593-626.
  • 3Muller,E., Drasar,C., Schilz,J. and Kaysser,W.A., Functionally graded materials for sensor and energy applications. Materials Science and Engineering, 2003, A362: 17-39.
  • 4Qiu,J., Tani,J., Ueno,T., Morita,T., Takahashi,H. and Du,H., Fabrication and high durability of functionally graded piezoelectric bending actuators. Smart Materials and Structures, 2003, 12: 115-121.
  • 5Liu,L.S., Zhang,Q.J. and Zhai,P.C., The optimization design of metal/ceramic FGM armor with neural net and conjugate gradient method. Materials Science Forum, 2003, 423-425: 791-796.
  • 6Paszkiewicz,B., Paszkiewicz,R., Wosko,M., Radziewicz,D., Sciana,B., Szyska,A., Macherzynski,W. and T- laczala,M., Functionally graded semiconductor layers for devices application. Vacuum, 2008, 82: 389-394.
  • 7Watari,F., Yokoyama,A., Omori,M., Hirari,T., Kondo,H., Uo,M. and Kawasaki,T., Biocompatibility of ma- terials and development to functionally graded implant for bio-medical application. Composites Science and Technology, 2004, 64: 893-908.
  • 8Birman,V. and Byrd,L.W., Modelling and analysis of functionally graded materials and structures. Applies Mechanics Review, 2007, 60: 195-216.
  • 9Nemat-Alla,M., Ahmed,Kh.I.E. and Hassab-Allah,I., Elastic-plastic analysis of two-dimensional function- ally graded materials under thermal loading. International Journal of Solids and Structures, 2009, 46: 2774-2786.
  • 10Asgari,M. and Akhlaghi,M., Transient thermal stresses in two-dimensional functionally graded thick hollow cylinder with finite length. Archive of Applied Mechanics, 2010, 80: 353-376.

同被引文献3

引证文献2

二级引证文献4

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部