Nonlinear Forced Vibration of Curved Beam with Nonlinear Viscoelastic Ends

被引:4
|
作者
Mohamed, N. [1 ]
Mohamed, S. A. [1 ]
Eltaher, M. A. [2 ,3 ]
机构
[1] Zagazig Univ, Fac Engn, Dept Engn Math, Zagazig, Egypt
[2] King Abdulaziz Univ, Fac Engn, Dept Mech Engn, Jeddah, Saudi Arabia
[3] Zagazig Univ, Dept Mech Design & Prod, Fac Engn, Zagazig, Egypt
关键词
Nonlinear viscoelastic boundary conditions; nonlinear partial integro-differential; curved beam; nonlinear dynamics; differential integral quadrature method; INSTABILITY; MICROBEAMS; EQUATION;
D O I
10.1142/S1758825124500315
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
This article develops a mathematical formulation to investigate the nonlinear forced vibration of curved viscoelastic beam with nonlinear viscoelastic boundary conditions around buckled position numerically, for the first time. The nonlinear integro-differential equation of buckling problem and the corresponding nonlinear nonhomogeneous boundary conditions are discretized by the differential integral quadrature method (DIQM) and after that, they are solved via Newton-iterative method to compute the nonlinear static deflection paths. By employing DIQM, the linear vibration problem is converted to a linear eigenvalue problem that is solved easily. The Galerkin technique is implemented to reduce the nonlinear partial integro-differential equation governing the nonlinear dynamic problem into Duffing-type equation. The Duffing equation is discretized via periodic spectral differentiation matrix operators. Finally, the pseudo-arc length continuation algorithm is applied to solve the nonlinear eigenvalue problem resulting from the discretized duffing equation. Validation of numerical techniques implemented in the solutions is proved with previous works. Parametric studies are conducted to deliberate the influences of the amplitude of initial curvature, axial load, linear and nonlinear support parameters on the static and dynamic behaviors of straight and curved beams. It should be noted that the proposed algorithm computes both stable and unstable solutions.
引用
收藏
页数:26
相关论文
共 50 条
  • [21] Nonlinear forced vibration analysis of a multi-cracked Euler-Bernoulli curved beam with inclusion of damping
    Zhao, X.
    Li, S. Y.
    Zhu, W. D.
    Li, Y. H.
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2022, 180
  • [22] Nonlinear Forced Vibration of Curved Microbeam Resting on Nonlinear Foundation Using the Modified Strain Gradient Theory
    Allahkarami F.
    Saryazdi M.G.
    Nikkhah-Bahrami M.
    International Applied Mechanics, 2018, 54 (6) : 718 - 738
  • [23] Nonlinear forced dynamics of an axially moving viscoelastic beam with an internal resonance
    Ghayesh, Mergen H.
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2011, 53 (11) : 1022 - 1037
  • [24] FORCED VIBRATION OF A CURVED BEAM WITH VISCOUS DAMPING
    SHEINMAN, I
    COMPUTERS & STRUCTURES, 1979, 10 (03) : 499 - 503
  • [25] Nonlinear Vibration of a Beam Resting on a Nonlinear Viscoelastic Foundation Traversed by a Moving Mass: A Homotopy Analysis
    Pourseifi, Mehdi
    Monfared, Mojtaba Mahmoudi
    ENGINEERING TRANSACTIONS, 2022, 70 (04): : 355 - 371
  • [26] Approximate and numerical analysis of nonlinear forced vibration of axially moving viscoelastic beams
    Hu Ding · Li-Qun Chen Shanghai Institute of Applied Mathematics and Mechanics
    Acta Mechanica Sinica, 2011, 27 (03) : 426 - 437
  • [27] Approximate and numerical analysis of nonlinear forced vibration of axially moving viscoelastic beams
    Ding, Hu
    Chen, Li-Qun
    ACTA MECHANICA SINICA, 2011, 27 (03) : 426 - 437
  • [28] Approximate and numerical analysis of nonlinear forced vibration of axially moving viscoelastic beams
    Hu Ding
    Li-Qun Chen
    Acta Mechanica Sinica, 2011, 27 : 426 - 437
  • [29] The forced vibration of a beam with viscoelastic boundary supports
    Fan, ZJ
    Lee, JH
    Kang, KH
    Kim, KJ
    JOURNAL OF SOUND AND VIBRATION, 1998, 210 (05) : 673 - 682
  • [30] Nonlinear forced vibration analysis of composite beam considering internal damping
    Kwangchol Kim
    Kwangchol Ri
    Cholil Yun
    Choljun Pak
    Poknam Han
    Nonlinear Dynamics, 2022, 107 : 3407 - 3423