Vortex Ring Model of Tip Vortex Aperiodicity in a Hovering Helicopter Rotor

Author:

Karpatne Anand1,Sirohi Jayant2,Mula Swathi1,Tinney Charles2

Affiliation:

1. Department of Aerospace and Engineering Mechanics, University of Texas, Austin, TX 78712 e-mail:

2. Assistant Professor Department of Aerospace and Engineering Mechanics, University of Texas, Austin, TX 78712 e-mail:

Abstract

The wandering motion of tip vortices trailed from a hovering helicopter rotor is described. This aperiodicity is known to cause errors in the determination of vortex properties that are crucial inputs for refined aerodynamic analyses of helicopter rotors. Measurements of blade tip vortices up to 260 deg vortex age using stereo particle-image velocimetry (PIV) indicate that this aperiodicity is anisotropic. We describe an analytical model that captures this anisotropic behavior. The analysis approximates the helical wake as a series of vortex rings that are allowed to interact with each other. The vorticity in the rings is a function of the blade loading. Vortex core growth is modeled by accounting for vortex filament strain and by using an empirical model for viscous diffusion. The sensitivity of the analysis to the choice of initial vortex core radius, viscosity parameter, time step, and number of rings shed is explored. Analytical predictions of the orientation of anisotropy correlated with experimental measurements within 10%. The analysis can be used as a computationally inexpensive method to generate probability distribution functions for vortex core positions that can then be used to correct for aperiodicity in measurements.

Publisher

ASME International

Subject

Mechanical Engineering

Reference19 articles.

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2. The Structure and Development of a Wing-Tip Vortex;J. Fluid Mech.,1996

3. Measurements of the Aperiodic Wake of a Hovering Rotor;Experiments Fluids,1998

4. Effect of tip vortex aperiodicity on measurement uncertainty;Experiments Fluids,2012

5. Richard, H., Bosbach, J., Henning, A., Raffel, M., and van der Wall, B., 2006, “2c and 3c PIV Measurements on a Rotor in Hover Condition,” 13th International Symposium on Applications of Laser Techniques to Fluid Mechanics, Lisbon, Portugal, June 26–29.

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