Nonlinear dynamic and bifurcations analysis of an axially moving circular cylindrical nanocomposite shell

被引:9
|
作者
Mohamadi, Arash [1 ]
Shahgholi, Majid [1 ]
Ashenai Ghasemi, Faramarz [1 ]
机构
[1] Shahid Teacher Training Univ, Fac Mech Engn, Tehran, Iran
关键词
Nonlinear vibration; Axially moving; Nanocomposite shell; Normal form; Bifurcation analysis; Stability; FLOWING FLUID; FREE-VIBRATION; STABILITY;
D O I
10.1007/s10999-021-09571-9
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The focus of the present paper is on investigating the nonlinear dynamics of the axially moving FG-CNTRC shells with different reinforcement distribution and the scale effects of CNTs in the subcritical regime of axial speed. The governing equations are derived in cylindrical coordinate utilizing the Hamilton principle by implementing the Donnell-Mushtari nonlinear shell theory and considering the mechanical properties of nanocomposite shells obtained from the extended rule of mixture. Two nonlinear coupled nonhomogeneous PDEs, a compatibility equation, and the motion equation in the radial direction are the result of applying in-plane airy stress function and continuity conditions on them. Then by substituting the flexural mode shape in the mentioned equations, the airy stress function is achieved. By the aid of Jordan conical form, the coupling of the second derivative of time in seven nonlinear nonhomogeneous ODEs resulted from applying the Galerkin method on the equilibrium equation in the radial direction is removed. Eventually, these ODEs are transformed into the Normal Form. The bifurcation analysis based on the frequency, the force, the damping ratio, and the velocity are carried out for circular cylindrical nanocomposite shells with four distribution types of SWCNT reinforcement and various volume fraction of CNTs. Four sorts of fixed points, including saddle nodes, pitchfork bifurcation, periodic doubling, and torus, have appeared in outlined parameters' responses of nanocomposite circular cylindrical shells' vibration. The Runge Kutta 4th order and pseudo arclength continuation as the numerical methods state the accuracy of the Normal Form Method.
引用
收藏
页码:125 / 154
页数:30
相关论文
共 50 条
  • [41] Dynamic analysis for axially moving viscoelastic panels
    Saksa, Tytti
    Banichuk, Nikolay
    Jeronen, Juha
    Kurki, Matti
    Tuovinen, Tero
    INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2012, 49 (23-24) : 3355 - 3366
  • [42] Nonlinear dynamic response of axially moving, stretched viscoelastic strings
    Ghayesh, Mergen H.
    Moradian, Niloofar
    ARCHIVE OF APPLIED MECHANICS, 2011, 81 (06) : 781 - 799
  • [43] Dynamic Characteristics of an Axially Moving Viscoelastic Belt for Nonlinear Oscillations
    Liu, Yanqi
    Zhang, Wei
    Chu, Fulei
    PROCEEDINGS OF THE 4TH INTERNATIONAL CONFERENCE ON MECHANICAL ENGINEERING AND MECHANICS, 2011, : 427 - +
  • [44] Nonlinear dynamic response of axially moving, stretched viscoelastic strings
    Mergen H. Ghayesh
    Niloofar Moradian
    Archive of Applied Mechanics, 2011, 81 : 781 - 799
  • [46] Nonlinear bending examination of nanocomposite cylindrical shell exposed to mechanical loads using dynamic relaxation method
    Rahimi, E.
    Sadeghian, M.
    Golmakani, Mohammad E.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART N-JOURNAL OF NANOMATERIALS NANOENGINEERING AND NANOSYSTEMS, 2024,
  • [47] Steady-state response of an axially moving circular cylindrical panel with internal resonance
    Li, Ming
    Jiang, Weihong
    Li, Yanqi
    Dai, Fuhong
    EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2022, 92
  • [49] Linear dynamic analysis of axially moving cylindrical nanoshells considering surface energy effect with constant velocity
    Shakouri, Pouya
    Ghazavi, M. R.
    Shahgholi, Majid
    Mohamadi, Arash
    ACTA MECHANICA, 2022, 233 (10) : 4231 - 4246
  • [50] Linear dynamic analysis of axially moving cylindrical nanoshells considering surface energy effect with constant velocity
    Pouya Shakouri
    M. R. Ghazavi
    Majid Shahgholi
    Arash Mohamadi
    Acta Mechanica, 2022, 233 : 4231 - 4246