Effects of Flagellar Morphology on Swimming Performance and Directional Control in Microswimmers
arXiv:2502.07224 · doi:10.1063/5.0264456
Abstract
In a fluid environment, flagellated microswimmers propel themselves by rotating their flagella. The morphology of these flagella significantly influences forward speed, swimming efficiency, and directional stability, which are critical for their survival. This study begins by simulating the three-dimensional motion trajectories of microswimmers to analyze their kinematic characteristics. The simulation results demonstrate that microswimmers can actively adjust their forward direction by modifying the orientation of their flagella. We subsequently perform numerical simulations to visualize the flow fields generated by a microswimmer and examine the hydrodynamic interactions between the cell body and the flagella, focusing on their impacts on forward speed and swimming efficiency. We conclude that forward speed and swimming efficiency are closely related to the filament radius, pitch angle, and contour length of the flagella, while the yaw angle of locomotion is determined by the helix radius and contour length of the flagella. We conclude that the pitch angle for maximum forward speed is slightly smaller than that for maximum swimming efficiency, which suggests that microswimmers can effectively alternate between states of maximum forward speed and maximum swimming efficiency by fine-tuning their pitch angle and adapting to varying ecological conditions. These morphological characteristics of microswimmers may result from species competition and natural selection. This research establishes an optimized model for microswimmers, providing valuable insights for the design of enhanced microrobots tailored to specific applications.
References in corpus (9)
- The hydrodynamics of swimming microorganisms
- Fluid dynamics and noise in bacterial cell-cell and cell-surface scattering
- Direct measurement of the flow field around swimming microorganisms
- Adaptive locomotion of artificial microswimmers
- Odd dynamics of living chiral crystals
- The colloidal nature of complex fluids leads to enhanced motility of flagellated bacteria
- Wall entrapment of peritrichous bacteria: A mesoscale hydrodynamics simulation study
- Dynamic stiffening of the flagellar hook
- Effective and efficient modeling of the hydrodynamics for bacterial flagella