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Erschienen in: Meccanica 7/2014

01.07.2014

Size-dependent axial buckling analysis of functionally graded circular cylindrical microshells based on the modified strain gradient elasticity theory

verfasst von: R. Gholami, A. Darvizeh, R. Ansari, M. Hosseinzadeh

Erschienen in: Meccanica | Ausgabe 7/2014

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Abstract

In this paper, a size-dependent first-order shear deformable shell model is developed based upon the modified strain gradient theory (MSGT) for the axial buckling analysis of functionally graded (FG) circular cylindrical microshells. It is assumed that the material properties of FG materials, which obey a simple power-law distribution, vary through the thickness direction. The principle of virtual work is utilized to formulate the governing equations and corresponding boundary conditions. Numerical results are presented for the axial buckling of FG circular cylindrical microshells subject to simply-supported end conditions and the effects of material length scale parameter, material property gradient index, length-to-radius ratio and circumferential mode number on the size-dependent critical buckling load are extensively studied. For comparison purpose, the critical buckling loads predicted by modified couple stress theory (MCST) and classical theory (CT) are also presented. Results show that the size effect plays an important role for lower values of dimensionless length scale parameter. Moreover, it is observed that the critical buckling loads obtained based on MSGT are greater than those obtained based on MCST and CT.

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Literatur
1.
Zurück zum Zitat Miyamoto Y, Kaysser WA, Rabin BH (1999) Functionally graded materials: design, processing and applications. Kluwer Academic Press, DordrechtCrossRef Miyamoto Y, Kaysser WA, Rabin BH (1999) Functionally graded materials: design, processing and applications. Kluwer Academic Press, DordrechtCrossRef
2.
Zurück zum Zitat Loy CT, Lam KY, Reddy JN (1999) Vibration of functionally graded cylindrical shells. Int J Mech Sci 41:309–324CrossRefMATH Loy CT, Lam KY, Reddy JN (1999) Vibration of functionally graded cylindrical shells. Int J Mech Sci 41:309–324CrossRefMATH
3.
Zurück zum Zitat Pradhan SC, Loy CT, Lam KY, Reddy JN (2000) Vibration characteristics of functionally graded cylindrical shells under various boundary conditions. Appl Acoust 61:111–129CrossRef Pradhan SC, Loy CT, Lam KY, Reddy JN (2000) Vibration characteristics of functionally graded cylindrical shells under various boundary conditions. Appl Acoust 61:111–129CrossRef
4.
Zurück zum Zitat Shahsiah R, Eslami MR (2003) Thermal buckling of functionally graded cylindrical shell. J Therm Stress 26:277–294CrossRef Shahsiah R, Eslami MR (2003) Thermal buckling of functionally graded cylindrical shell. J Therm Stress 26:277–294CrossRef
5.
Zurück zum Zitat Du Ch, Li Y (2013) Nonlinear resonance behavior of functionally graded cylindrical shells in thermal environments. Compos Struct 102:164–174CrossRef Du Ch, Li Y (2013) Nonlinear resonance behavior of functionally graded cylindrical shells in thermal environments. Compos Struct 102:164–174CrossRef
6.
Zurück zum Zitat Khazaeinejad P, Najafizadeh MM (2010) Mechanical buckling of cylindrical shells with varying material properties. Proc Inst Mech Eng C J Mech Eng Sci 224:1551–1557CrossRef Khazaeinejad P, Najafizadeh MM (2010) Mechanical buckling of cylindrical shells with varying material properties. Proc Inst Mech Eng C J Mech Eng Sci 224:1551–1557CrossRef
7.
Zurück zum Zitat Fu YQ, Du HJ, Zhang S (2003) Functionally graded TiN/TiNi shape memory alloy films. Mater Lett 57:2995–2999CrossRef Fu YQ, Du HJ, Zhang S (2003) Functionally graded TiN/TiNi shape memory alloy films. Mater Lett 57:2995–2999CrossRef
8.
Zurück zum Zitat Fu YQ, Du HJ, Huang WM, Zhang S, Hu M (2004) TiNi-based thin films in MEMS applications: a review. Sens Actuators A 112:395–408CrossRef Fu YQ, Du HJ, Huang WM, Zhang S, Hu M (2004) TiNi-based thin films in MEMS applications: a review. Sens Actuators A 112:395–408CrossRef
9.
Zurück zum Zitat Witvrouw A, Mehta A (2005) The use of functionally graded poly-SiGe layers for MEMS applications. Mater Sci Forum 492:255–260 Witvrouw A, Mehta A (2005) The use of functionally graded poly-SiGe layers for MEMS applications. Mater Sci Forum 492:255–260
10.
Zurück zum Zitat Lee Z, Ophus C, Fischer LM, Nelson-Fitzpatrick N, Westra KL, Evoy S et al (2006) Metallic NEMS components fabricated from nanocomposite Al–Mo films. Nanotechnology 17:3063–3070CrossRef Lee Z, Ophus C, Fischer LM, Nelson-Fitzpatrick N, Westra KL, Evoy S et al (2006) Metallic NEMS components fabricated from nanocomposite Al–Mo films. Nanotechnology 17:3063–3070CrossRef
11.
Zurück zum Zitat Fleck NA, Muller GM, Ashby MF, Hutchinson JW (1994) Strain gradient plasticity: theory and experiments. Acta Metall Mater 42:475–487CrossRef Fleck NA, Muller GM, Ashby MF, Hutchinson JW (1994) Strain gradient plasticity: theory and experiments. Acta Metall Mater 42:475–487CrossRef
12.
Zurück zum Zitat Lam DCC, Yang F, Chong ACM, Wang J, Tong P (2003) Experiments and theory in strain gradient elasticity. J Mech Phys Solids 51:1477–1508ADSCrossRefMATH Lam DCC, Yang F, Chong ACM, Wang J, Tong P (2003) Experiments and theory in strain gradient elasticity. J Mech Phys Solids 51:1477–1508ADSCrossRefMATH
14.
16.
Zurück zum Zitat Koiter WT (1964) Couple stresses in the theory of elasticity I and II. Proc K Ned Akad Wet B 67:17–44MATH Koiter WT (1964) Couple stresses in the theory of elasticity I and II. Proc K Ned Akad Wet B 67:17–44MATH
17.
Zurück zum Zitat Yang F, Chong AC, Lam DCC, Tong P (2002) Couple stress based strain gradient theory for elasticity. Int J Solids Struct 39:2731–2743CrossRefMATH Yang F, Chong AC, Lam DCC, Tong P (2002) Couple stress based strain gradient theory for elasticity. Int J Solids Struct 39:2731–2743CrossRefMATH
18.
Zurück zum Zitat Park SK, Gao XL (2006) Bernoulli–Euler beam model based on a modified couple stress theory. J Micromech Microeng 16:2355–2359CrossRef Park SK, Gao XL (2006) Bernoulli–Euler beam model based on a modified couple stress theory. J Micromech Microeng 16:2355–2359CrossRef
19.
Zurück zum Zitat Ma HM, Gao XL, Reddy JN (2008) A microstructure-dependent Timoshenko beam model based on a modified couple stress theory. J Mech Phys Solids 56:3379–3391ADSCrossRefMATHMathSciNet Ma HM, Gao XL, Reddy JN (2008) A microstructure-dependent Timoshenko beam model based on a modified couple stress theory. J Mech Phys Solids 56:3379–3391ADSCrossRefMATHMathSciNet
20.
Zurück zum Zitat Asghari M, Rahaeifard M, Kahrobaiyan MH, Ahmadian MT (2011) The modified couple stress functionally graded Timoshenko beam formulation. Mater Des 32:1435–1443CrossRef Asghari M, Rahaeifard M, Kahrobaiyan MH, Ahmadian MT (2011) The modified couple stress functionally graded Timoshenko beam formulation. Mater Des 32:1435–1443CrossRef
21.
Zurück zum Zitat Asghari M, Kahrobaiyan MH, Ahmadian MT (2010) A nonlinear Timoshenko beam formulation based on the modified couple stress theory. Int J Eng Sci 48:1749–1761CrossRefMATHMathSciNet Asghari M, Kahrobaiyan MH, Ahmadian MT (2010) A nonlinear Timoshenko beam formulation based on the modified couple stress theory. Int J Eng Sci 48:1749–1761CrossRefMATHMathSciNet
22.
Zurück zum Zitat Kong SL, Zhou SJ, Nie ZF (2008) The size-dependent natural frequency of Bernoulli–Euler micro-beams. Int J Eng Sci 46:427–437CrossRefMATH Kong SL, Zhou SJ, Nie ZF (2008) The size-dependent natural frequency of Bernoulli–Euler micro-beams. Int J Eng Sci 46:427–437CrossRefMATH
23.
24.
Zurück zum Zitat Sahmani S, Ansari R, Gholami R, Darvizeh A (2013) Dynamic stability analysis of functionally graded higher-order shear deformable microshells based on the modified couple stress elasticity theory. Compos B 51:44–53CrossRef Sahmani S, Ansari R, Gholami R, Darvizeh A (2013) Dynamic stability analysis of functionally graded higher-order shear deformable microshells based on the modified couple stress elasticity theory. Compos B 51:44–53CrossRef
25.
Zurück zum Zitat Fleck NA, Hutchinson JW (1997) Strain gradient plasticity. Adv Appl Mech 33:296–358 Fleck NA, Hutchinson JW (1997) Strain gradient plasticity. Adv Appl Mech 33:296–358
26.
Zurück zum Zitat Fleck NA, Hutchinson JW (2001) A reformulation of strain gradient plasticity. J Mech Phys Solids 49:2245–2271ADSCrossRefMATH Fleck NA, Hutchinson JW (2001) A reformulation of strain gradient plasticity. J Mech Phys Solids 49:2245–2271ADSCrossRefMATH
27.
Zurück zum Zitat Altan BS, Aifantis EC (1992) On the structure of the mode III crack-tip in gradient elasticity. Scr Metall Mater 26:319–324CrossRef Altan BS, Aifantis EC (1992) On the structure of the mode III crack-tip in gradient elasticity. Scr Metall Mater 26:319–324CrossRef
29.
Zurück zum Zitat Wang B, Zhao J, Zhou S (2010) A microscale Timoshenko beam model based on strain gradient elasticity theory. Eur J Mech A Solids 29:591–599CrossRef Wang B, Zhao J, Zhou S (2010) A microscale Timoshenko beam model based on strain gradient elasticity theory. Eur J Mech A Solids 29:591–599CrossRef
30.
Zurück zum Zitat Akgoz B, Civalek O (2011) Strain gradient elasticity and modified couple stress models for buckling analysis of axially loaded micro-scaled beams. Int J Eng Sci 49:1268–1280CrossRefMathSciNet Akgoz B, Civalek O (2011) Strain gradient elasticity and modified couple stress models for buckling analysis of axially loaded micro-scaled beams. Int J Eng Sci 49:1268–1280CrossRefMathSciNet
31.
Zurück zum Zitat Papargyri-Beskou S, Giannakopoulosb AE, Beskos DE (2010) Variational analysis of gradient elastic flexural plates under static loading. Int J Solids Struct 47(2010):2755–2766CrossRefMATH Papargyri-Beskou S, Giannakopoulosb AE, Beskos DE (2010) Variational analysis of gradient elastic flexural plates under static loading. Int J Solids Struct 47(2010):2755–2766CrossRefMATH
32.
Zurück zum Zitat Wang B, Zhou Sh, Zhao J, Chen X (2011) A size-dependent Kirchhoff micro-plate model based on strain gradient elasticity theory. Eur J Mech A Solids 30:517–524CrossRef Wang B, Zhou Sh, Zhao J, Chen X (2011) A size-dependent Kirchhoff micro-plate model based on strain gradient elasticity theory. Eur J Mech A Solids 30:517–524CrossRef
33.
Zurück zum Zitat Papargyri-Beskoua S, Beskos DE (2009) Stability analysis of gradient elastic circular cylindrical thin shells. Int J Eng Sci 47:1379–1385CrossRef Papargyri-Beskoua S, Beskos DE (2009) Stability analysis of gradient elastic circular cylindrical thin shells. Int J Eng Sci 47:1379–1385CrossRef
34.
Zurück zum Zitat Ansari R, Gholami R, Sahmani S (2011) Free vibration of size-dependent functionally graded microbeams based on a strain gradient theory. Compos Struct 94:221–228CrossRef Ansari R, Gholami R, Sahmani S (2011) Free vibration of size-dependent functionally graded microbeams based on a strain gradient theory. Compos Struct 94:221–228CrossRef
35.
Zurück zum Zitat Ansari R, Gholami R, Sahmani S (2012) Study of small scale effects on the nonlinear vibration response of functionally graded Timoshenko microbeams based on the strain gradient theory. J Comput Nonlinear Dyn ASME J 7:031010CrossRef Ansari R, Gholami R, Sahmani S (2012) Study of small scale effects on the nonlinear vibration response of functionally graded Timoshenko microbeams based on the strain gradient theory. J Comput Nonlinear Dyn ASME J 7:031010CrossRef
36.
Zurück zum Zitat Donnell HL (1933) The problem of elastic stability, Transactions of the American Society of Mechanical Engineers, Aeronautical Division Donnell HL (1933) The problem of elastic stability, Transactions of the American Society of Mechanical Engineers, Aeronautical Division
37.
Zurück zum Zitat Ganapathi M (2007) Dynamic stability characteristics of functionally graded materials shallow spherical shells. Compos Struct 79:338–343CrossRef Ganapathi M (2007) Dynamic stability characteristics of functionally graded materials shallow spherical shells. Compos Struct 79:338–343CrossRef
38.
Zurück zum Zitat Ke LL, Wang YS (2011) Size effect on dynamic stability of functionally graded microbeams based on a modified couple stress theory. Compos Struct 93:342–350CrossRef Ke LL, Wang YS (2011) Size effect on dynamic stability of functionally graded microbeams based on a modified couple stress theory. Compos Struct 93:342–350CrossRef
Metadaten
Titel
Size-dependent axial buckling analysis of functionally graded circular cylindrical microshells based on the modified strain gradient elasticity theory
verfasst von
R. Gholami
A. Darvizeh
R. Ansari
M. Hosseinzadeh
Publikationsdatum
01.07.2014
Verlag
Springer Netherlands
Erschienen in
Meccanica / Ausgabe 7/2014
Print ISSN: 0025-6455
Elektronische ISSN: 1572-9648
DOI
https://doi.org/10.1007/s11012-014-9944-7

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