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September 10, 2025Applied Sciences1 citationsOpen Access

Aeroelastic Oscillations of Cantilever Beams Reinforced by Carbon Nanotubes Based on a Modified Third-Order Piston Theory

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MAMehdi AlimoradzadehFTFrancesco TornabeneRDRossana Dimitri

Key Points

  • Results indicate FG-X reinforcement provides the best frequency response and deflection, noted among various CNT distributions.
  • An increased CNT volume fraction significantly enhances system stiffness and frequency up to a critical threshold, where damped behavior occurs.
  • The modified third-order piston theory captures supersonic air flow effects accurately, providing a robust model for nonlinear dynamics.
  • Higher Mach numbers and thickness ratios amplify both frequency response and lateral deflections, while damping rates generally decrease.

Abstract

This work analyzes the aero-elastic oscillations of cantilever beams reinforced by carbon nanotubes (CNTs). Four different distributions of single-walled CNTs are assumed as the reinforcing phase, in the thickness direction of the polymeric matrix. A modified third-order piston theory is used as an accurate tool to model the supersonic air flow, rather than a first-order piston theory. The nonlinear dynamic equation governing the problem accounts for Von Kármán-type nonlinearities, and it is derived from Hamilton’s principle. Then, the Galerkin decomposition technique is adopted to discretize the nonlinear partial differential equation into a nonlinear ordinary differential equation. This is solved analytically according to a multiple time scale method. A comprehensive parametric analysis was conducted to assess the influence of CNT volume fraction, beam slenderness, Mach number, and thickness ratio on the fundamental frequency and lateral dynamic deflection. Results indicate that FG-X reinforcement yields the highest frequency response and lateral deflection, followed by UD and FG-A patterns, whereas FG-O consistently exhibits the lowest performance metrics. An increase in CNT volume fraction and a reduction in slenderness ratio enhance the system’s stiffness and frequency response up to a critical threshold, beyond which a damped beating phenomenon emerges. Moreover, higher Mach numbers and greater thickness ratios significantly amplify both frequency response and lateral deflections, although damping rates tend to decrease. These findings provide valuable insights into the optimization of CNTR composite structures for advanced aeroelastic applications under supersonic conditions, as useful for many engineering applications.

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Cite This Study

Alimoradzadeh et al. (2025) studied this question.

synapsesocial.com/papers/68c1bb6a54b1d3bfb60ed6e6https://doi.org/10.3390/app15158700
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