Abstract

We present results on the drag on, and the flow field around, a submerged rectangular normal flat plate, which is uniformly accelerated to a constant target velocity along a straight path. The plate aspect ratio is chosen to be \(AR=2\) to resemble an oar blade in (competitive) rowing, the sport which inspired this study. The plate depth, i.e. the distance from the top of the plate to the air–water interface, the plate acceleration and the plate target velocity are varied, resulting in a plate width based Reynolds number of \(4\times 10^{4}\lesssim Re\lesssim 8\times 10^{4}\). In our analysis we distinguish three phases; (i) the acceleration phase during which the plate drag is enhanced, (ii) the transition phase during which the plate drag decreases to a constant steady value upon which (iii) the steady phase is reached. The plate drag force is measured as function of time which showed that the steady-phase plate drag at a depth of \(1/5\) plate height (20 mm depth for a plate height of 100 mm) increased by 45 % compared to the plate top at the surface (0 mm). Also, it is shown that the drag force during acceleration of the plate increases over time and is not captured by a single added mass coefficient for prolonged accelerations. Instead, an entrainment rate is defined that captures this behaviour. The formation of starting vortices and the wake development during the time of acceleration and transition towards a steady wake are studied using hydrogen bubble flow visualisations and particle image velocimetry. The formation time, as proposed by Gharib et al. (J. Fluid Mech., vol. 360, 1998, pp. 121–140), appears to be a universal time scale for the vortex formation during the transition phase.

Details

Title
Drag force on an accelerating submerged plate
Author
Grift, E J 1   VIAFID ORCID Logo  ; Vijayaragavan, N B 1 ; Tummers, M J 1 ; Westerweel, J 1 

 Laboratory for Aero and Hydrodynamics, Delft University of Technology, 2628 Delft, The Netherlands 
Pages
369-398
Section
JFM Papers
Publication year
2019
Publication date
May 2019
Publisher
Cambridge University Press
ISSN
00221120
e-ISSN
14697645
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2198020541
Copyright
© 2019 Cambridge University Press This article is published under (http://creativecommons.org/licenses/by/4.0/) (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.