TY - JOUR
T1 - Analytical Method for Nonlinear Vibrations of Integral-Type Viscoelastic Beams Considering Longitudinal Inertia Coupling
AU - Gu, Xudong
AU - Hu, Rongchun
AU - Xu, Feng
AU - Li, Shuai
AU - Deng, Zichen
N1 - Publisher Copyright:
© Springer Nature Singapore Pte Ltd. 2026.
PY - 2026/6
Y1 - 2026/6
N2 - Purpose: This paper investigates nonlinear vibrations of integral-type viscoelastic cantilever beams used in aerospace flexible structures, which involve complex coupling of viscoelastic integrals, geometric nonlinearity, and longitudinal inertia. Methods: A refined dynamic model is established considering longitudinal inertia, geometric nonlinearity, and integral-type viscoelasticity. The assumed mode method is used for discretization. An improved approximation converts viscoelastic integral forces into amplitude-dependent equivalent damping and restoring forces. Analytical solutions are derived via enhanced harmonic balance and modified stochastic averaging methods. Results: Numerical examples and Monte Carlo simulations validate the solutions. Longitudinal inertia regulates the beam’s nonlinear hardening/softening behavior, and viscoelastic parameters present coupled damping-stiffness effects. Conclusion: The proposed framework effectively analyzes nonlinear vibrations of integral-type viscoelastic beams, fills the theoretical gap, and provides a reliable tool for dynamic design of aerospace flexible structures.
AB - Purpose: This paper investigates nonlinear vibrations of integral-type viscoelastic cantilever beams used in aerospace flexible structures, which involve complex coupling of viscoelastic integrals, geometric nonlinearity, and longitudinal inertia. Methods: A refined dynamic model is established considering longitudinal inertia, geometric nonlinearity, and integral-type viscoelasticity. The assumed mode method is used for discretization. An improved approximation converts viscoelastic integral forces into amplitude-dependent equivalent damping and restoring forces. Analytical solutions are derived via enhanced harmonic balance and modified stochastic averaging methods. Results: Numerical examples and Monte Carlo simulations validate the solutions. Longitudinal inertia regulates the beam’s nonlinear hardening/softening behavior, and viscoelastic parameters present coupled damping-stiffness effects. Conclusion: The proposed framework effectively analyzes nonlinear vibrations of integral-type viscoelastic beams, fills the theoretical gap, and provides a reliable tool for dynamic design of aerospace flexible structures.
KW - Assumed mode method
KW - Harmonic analysis
KW - Nonlinear vibration
KW - Stochastic averaging method
KW - Viscoelastic material
UR - https://www.scopus.com/pages/publications/105037506717
U2 - 10.1007/s42417-026-02484-x
DO - 10.1007/s42417-026-02484-x
M3 - 文章
AN - SCOPUS:105037506717
SN - 2523-3920
VL - 14
JO - Journal of Vibration Engineering and Technologies
JF - Journal of Vibration Engineering and Technologies
IS - 5
M1 - 273
ER -