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January 24, 2026Physics of Fluids0 citations

Numerical investigation of tuna swimming: Kinematic performance and vortex dynamics under sinusoidal perturbations

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YCYu CaoPGPengcheng GaoQHQiaogao Huang

Key Points

  • The aim is to explore how kinematic parameters and sinusoidal perturbations influence tuna swimming dynamics and performance.
  • Developed a precise morphological model of tuna.
  • Utilized the immersed boundary method for simulations.
  • Analyzed the impact of kinematic parameters on thrust and efficiency.
  • Examined effects of amplitude- and frequency-varying perturbations on hydrodynamic performance.
  • Thrust coefficient increases with Strouhal number, while propulsive efficiency shows a peak before a decline.
  • Amplitude-varying perturbations lead to increased time-averaged thrust and better efficiency compared to baseline.
  • Frequency-varying perturbations cause significant oscillations in thrust and efficiency at higher disturbance frequencies.

Abstract

This study presents a numerical investigation into the propulsion dynamics of tuna, with a focus on the effects of individual kinematic parameters and the introduction of sinusoidal perturbations on hydrodynamic performance and vortex field evolution. A precise morphological model and kinematic equations of tuna were established, and the swimming process was simulated using the immersed boundary method. Regarding the effect of a single kinematic parameter, the thrust coefficient increases monotonically with the Strouhal number (St). The propulsive efficiency, however, is non-monotonic, first increasing sharply to a peak value, maintaining a plateau, and then decreasing slightly with a further increase in St. In the case of motion perturbations, the hydrodynamic performance exhibits distinct characteristics. When amplitude-varying perturbations are introduced, the time-averaged thrust increases progressively with the disturbance amplitude. Furthermore, the propulsive efficiency not only improves but also consistently remains superior to the non-disturbance baseline. When frequency-varying perturbations are introduced, however, both the time-averaged thrust and propulsive efficiency demonstrate significant oscillatory behavior with increasing disturbance frequency. This research provides novel insights for the motion control of bio-inspired underwater vehicles.

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Cite This Study

Cao et al. (2026) studied this question.

synapsesocial.com/papers/697461a8bb9d90c67120b890https://doi.org/10.1063/5.0312594
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