Content area

Abstract

Diving induces large pressure during water entry accompanied by the creation of cavity and water splash ejected from the free water surface. To minimize impact forces, divers streamline their shape at impact. Here, we investigate the impact forces and splash evolution of wedges entering water as a function of the wedge opening angle. A gradual transition from impactful to smooth entry is observed as the wedge angle decreases. After submersion, the wedge experiences significantly smaller drag forces (two-fold smaller) than immersed wedges. Our experimental findings compare favourably with existing force models upon the introduction of empirically based corrections. We experimentally characterize the shapes of the cavity and splash created by the wedge and find that they are independent of the entry velocity at short times, but that the splash exhibits distinct variations in shape at later times. We propose a one-dimensional model of the splash that takes into account gravity, surface tension and aerodynamic forces. The model shows, in conjunction with experimental data, that the splash shape is dominated by the interplay between a destabilizing Venturi-suction force due to air rushing between the splash and the water surface and a stabilizing force due to surface tension. Taken together, these findings could direct future research aimed at understanding and combining the mechanisms underlying all stages of water entry in application to engineering and bio-related problems, including naval engineering, disease spreading or platform diving.

Details

Title
Dynamics of water entry
Publication title
Volume
846
Pages
508-535
Number of pages
28
Publication year
2018
Publication date
Jul 10, 2018
Publisher
Cambridge University Press
Place of publication
Cambridge
Country of publication
United Kingdom
ISSN
00221120
e-ISSN
14697645
Source type
Scholarly Journal
Language of publication
English
Document type
Journal Article
ProQuest document ID
2038595275
Document URL
https://www.proquest.com/scholarly-journals/dynamics-water-entry/docview/2038595275/se-2?accountid=208611
Copyright
© 2018 Cambridge University Press
Last updated
2024-11-07
Database
ProQuest One Academic