Life Sciences

UNVEILING HISTORICAL HYDRODYNAMIC CUES AS A SENSORY LANDSCAPE FOR AQUATIC NAVIGATION TASKS

Publié le - 25th HFSP Awardees Meeting

Auteurs : James Herbert-Read, Dixia Fan, Gurvan Jodin, Nadia Maria Hamilton, Bastien Lagneaux, Li Ang, A Liang, Hannah Mac Gregor, Thomas Omarini, Corentin Porcon, Florence Razan, Boai Sun, Siming Wang, Yi Zhu

Understanding how aquatic animals perceive and respond to hydrodynamic cues requires experimental tools capable of resolving low-amplitude pressure fluctuations over biologically relevant spatial and temporal scales. Recent advances in embedded electronics have enabled the development of custom pressure- sensing instruments capable of capturing the subtle hydrodynamic traces left in the wake of swimming fish, helping to clarify how such signals may contribute to social interactions. We present a modular distributed pressure-sensing network designed to characterize fish-generated hydrodynamic signatures in confined aquatic environments. The system consists of 96 differential pressure sensors distributed over a 1 m2 wall-mounted array, synchronized through a wireless time-coherent acquisition architecture operating at 200 Hz. The platform achieves a noise floor of ±0.15 Pa, a dynamic range of ±500 Pa, and an effective bandwidth of 0.3–30 Hz, enabling the detection of weak, spatially distributed pressure perturbations generated by freely swimming fish. Unlike conventional point-wise hydrophones or optical velocimetry techniques, the proposed approach enables long-duration, spatially resolved mapping of pressure fields with minimal intrusion and manageable data volumes. A dedicated synchronization framework integrates pressure recordings with high-speed video tracking, allowing reconstruction of spatio-temporal pressure footprints associated with individual trajectories. Long-duration experiments demonstrate the ability to capture evolving hydrodynamic wakes and transient pressure structures generated by swimming fish. This platform provides a new experimental basis for investigating lateral-line-mediated perception and hydrodynamic interactions in aquatic systems. The modular architecture is scalable up to 240 sensing points and adaptable to different tank geometries, offering a versatile tool for interdisciplinary research at the interface of fluid dynamics, sensory biology, and behavioral ecology.