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Tracking Blade Tip Vortices for Numerical Flow Simulations of Hovering Rotorcraft
Author(s) -
David L. Kao,
Katherine L. Smith,
Zhanping Liu
Publication year - 2018
Publication title -
2018 aiaa aerospace sciences meeting
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2018-1175
Subject(s) - vortex , blade (archaeology) , tracking (education) , aerospace engineering , flow (mathematics) , mechanics , physics , control theory (sociology) , marine engineering , computer science , mechanical engineering , engineering , artificial intelligence , psychology , pedagogy , control (management)
Blade tip vortices generated by a helicopter rotor blade are a major source of rotor noise and airframe vibration. This occurs when a vortex passes closely by, and interacts with, a rotor blade. The accurate prediction of Blade Vortex Interaction (BVI) continues to be a challenge for Computational Fluid Dynamics (CFD). Though considerable research has been devoted to BVI noise reduction and experimental techniques for measuring the blade tip vortices in a wind tunnel, there are only a handful of post-processing tools available for extracting vortex core lines from CFD simulation data. In order to calculate the vortex core radius, most of these tools require the user to manually select a vortex core to perform the calculation. Furthermore, none of them provide the capability to track the growth of a vortex core, which is a measure of how quickly the vortex diffuses over time. This paper introduces an automated approach for tracking the core growth of a blade tip vortex from CFD simulations of rotorcraft in hover. The proposed approach offers an effective method for the quantification and visualization of blade tip vortices in helicopter rotor wakes. Keywords: vortex core, feature extraction, CFD, numerical flow visualization

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