arXiv:2608.07722v1 Announce Type: new Abstract: High-fidelity immersed-boundary simulation resolves the coupled motion of a deforming swimmer and its surrounding flow, but the resulting cost limits repeated evaluations for engineering design, parameter studies, and control. We develop neural-operator surrogates for temporal prediction of the hydrodynamic fields generated by planar and volumetric eel swimmers. The surrogates are trained on regular-grid fields exported from adaptive fluid--structure simulations and are conditioned on swimmer geometry and Reynolds number. The planar model jointly predicts two velocity components, scalar vorticity, and pressure. On five held-out high-Reynolds-number trajectories, its full-domain global relative L^2 error is 3.51 %. The volumetric formulation uses three target-specific models with a common multichannel input: one model predicts three-dimensional velocity, one predicts vorticity, and one predicts pressure. Their full-domain global relative L^2 errors on five held-out within-range trajectories are 3.44 %, 5.58 %, and 19.2 %. Together, the results demonstrate the feasibility of field-resolved neural surrogates for moving-boundary swimmer flows while identifying pressure accuracy and physical consistency as priorities for further development.
Neural Operators for Immersed-Boundary Soft Swimmers Locomotion
Researchers developed neural-operator surrogates that predict hydrodynamic fields for planar and volumetric eel swimmers, achieving a full-domain global relative L2 error of 3.51% on five held-out high-Reynolds-number trajectories for the planar model. The volumetric model, using three target-specific models, achieved errors of 3.44% for velocity, 5.58% for vorticity, and 19.2% for pressure on five held-out within-range trajectories. The findings, reported in arXiv:2608.07722v1, demonstrate the feasibility of field-resolved neural surrogates for moving-boundary swimmer flows while highlighting pressure accuracy and physical consistency as areas for improvement.
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