Abstract
The effects of transverse gusts on free-falling plates are investigated using two-way coupled fluidโstructure interaction simulations for a Galilei number (๐บ๐) between 10 and 50 and a density ratio (๐) between 5 and 50. We consider gust ratios (๐บ๐
) of up to 5, where ๐บ๐
is the ratio of the free-stream velocity change to an estimate of the terminal velocity. We demonstrate that the plate experiences the gust as a transient horizontal force, which displaces it horizontally. This results in a transient reduction in the angle of attack, an increase in absolute velocity and the generation of circulation. The vertical component of the latter increases the upward aerodynamic force, slowing down the vertical descent of the plate. Furthermore, the plateโs horizontal displacement with respect to its original wake results in a further transient increase in the upward aerodynamic force. The altitude gained by the plate in response to the gust is maximum for ๐ = 15, and increases non-monotonically with ๐บ๐ and ๐บ๐
. The non-monotonic trend is due to plate pitch: if the maximum pitch of the plate in response to the gust is close to vertical, the plate temporarily falls faster, losing some of the altitude it has gained. The present findings reveal an energy-harvesting mechanism that free-falling bodies can exploit to increase their time afloat.
| Original language | English |
|---|---|
| Article number | A23 |
| Pages (from-to) | A23/1-A23/28 |
| Number of pages | 28 |
| Journal | Journal of Fluid Mechanics |
| Volume | 1040 |
| Early online date | 7 Aug 2026 |
| DOIs | |
| Publication status | Published - 10 Aug 2026 |
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