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    Effect of varying degrees of freedom on self-propelled undulatory swimmers

    Zhiqian Xin1, Jiadong Wang1, Xingyuan Mao1, Bowen Jin2, and Jian Deng1,2,*

    • 1State Key Laboratory of Fluid Power and Mechatronic Systems, Department of Mechanics, Zhejiang University, Hangzhou 310027, People's Republic of China
    • 2Huanjiang Laboratory, Zhejiang University, Hangzhou 310027, People's Republic of China

    • *Contact author: zjudengjian@zju.edu.cn

    Phys. Rev. E 112, 035103 – Published 19 September, 2025

    DOI: https://doi.org/10.1103/gy7m-4ysj

    Abstract

    This study investigates the influence of varying degrees of freedom (DOFs) on the swimming performance of self-propelled undulatory swimmers navigating a straight path in three flow configurations: an unbounded fluid, near a solid wall, and in a side-by-side arrangement. Vertical and rotational DOFs are frozen or actively controlled, resulting in four trajectory control scenarios. In unbounded flow, freezing motion DOFs generally underestimate the cost of transport while overestimating time-averaged amplitudes and Strouhal numbers, discrepancies that grow with increasing Reynolds number. Additionally, swimmers with two frozen DOFs exhibit phase shifts in lateral force and torque oscillations. Near solid boundaries, constrained swimmers experience more pronounced wall effects, whereas in side-by-side configurations, frozen-DOF swimmers display intensified channel effects. Analysis of the pressure distribution and wake topology reveals marked differences in pressure concentration and vortex street structures depending on DOFs. These findings underscore the critical role of motion DOFs in shaping swimming dynamics and emphasize the importance of appropriate trajectory control strategies for accurate modeling of fish locomotion.

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