Sweep Angle Effects of Flow Over a Seal Whisker-Inspired Undulated Cylinder
Trevor K. Dunt, Christin T. Murphy, Ond\v{r}ej Fer\v{c}\'ak, Ra\'ul Bayo\'an Cal, Jennifer A. Franck

TL;DR
This study computationally investigates how sweep angles affect flow dynamics over a seal whisker-inspired undulated cylinder, revealing that sweep influences vortex behavior and force reduction, with implications for biological sensing and engineering design.
Contribution
It isolates the effects of sweep angle on flow over undulated cylinders, demonstrating how orientation impacts vortex breakup and force suppression compared to smooth geometries.
Findings
Zero sweep reduces drag by 11.4% and lift oscillations by 90.8%.
Increasing sweep diminishes vortex breakup and force suppression effects.
Low sweep angles still significantly suppress lift and marginally reduce drag.
Abstract
Flow over a seal whisker-inspired undulated cylinder at swept back angles is computationally investigated, comparing the vortex shedding, forces, and wake characteristics to those of an equivalent smooth geometry. Numerous prior studies have demonstrated that undulated cylinders can reduce mean drag and unsteady lift oscillations; however, none have isolated the effects of the sweep angle resulting from whisker positioning in flow. Inspired by the active control seals exert over their whiskers while navigating and sensing in unsteady aquatic environments, this study investigates how such orientation influences the hydrodynamic performance of the geometry. Simulations are performed of flow across a rigid, infinite-span, undulated cylinder at sweep angles from 0 to 60{\deg} and at Reynolds numbers of 250 and 500. At zero sweep, the undulated cylinder breaks up coherent two-dimensional…
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