Leading-edge vortices over swept-back wings with varying sweep geometries

Author:

Lambert William B.1,Stanek Mathew J.2,Gurka Roi2ORCID,Hackett Erin E.2ORCID

Affiliation:

1. Department of Math, Computer Science, and Physics, Roanoke College, Salem, VA, USA

2. Department of Coastal and Marine Systems Science, Coastal Carolina University, Conway, SC, USA

Abstract

Micro air vehicles are used in a myriad of applications, such as transportation and surveying. Their performance can be improved through the study of wing designs and lift generation techniques including leading-edge vortices (LEVs). Observation of natural fliers, e.g. birds and bats, has shown that LEVs are a major contributor to lift during flapping flight, and the common swift ( Apus apus ) has been observed to generate LEVs during gliding flight. We hypothesize that nonlinear swept-back wings generate a vortex in the leading-edge region, which can augment the lift in a similar manner to linear swept-back wings (i.e. delta wing) during gliding flight. Particle image velocimetry experiments were performed in a water flume to compare flow over two wing geometries: one with a nonlinear sweep (swift-like wing) and one with a linear sweep (delta wing). Experiments were performed at three spanwise planes and three angles of attack at a chord-based Reynolds number of 26 000. Streamlines, vorticity, swirling strength, and Q -criterion were used to identify LEVs. The results show similar LEV characteristics for delta and swift-like wing geometries. These similarities suggest that sweep geometries other than a linear sweep (i.e. delta wing) are capable of creating LEVs during gliding flight.

Funder

National Science Foundation

Publisher

The Royal Society

Subject

Multidisciplinary

Reference31 articles.

1. Kurtulus D. 2011 Introduction to micro air vehicles: concepts design and applications. In Recent developments in unmanned aircraft systems (eds R Decuypere M Carbonaro) pp. 219–255. Sint-Genesius-Rode Belgium: von Karman Institute for Fluid Dynamics.

2. Recent Studies of Subsonic Vortex Lift Including Parameters Affecting Stable Leading-Edge Vortex Flow

3. A theory for the core of a leading-edge vortex

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