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A Comparison of Rotor Disk Modeling and Blade-Resolved CFD Simulations for NASA's Tiltwing Air TaxiA multi-fidelity computational fluid dynamics analysis is carried out for NASA’s tiltwing air taxi concept operating in airplane and helicopter mode. High-fidelity simulations are computationally expensive due to individual rotor blade modeling in a time-dependent computational domain with rotating grids. The mid-fidelity rotor disk option, in its source term implementation, is explored as a more affordable alternative. Computations are performed with NASA’s OVERFLOW flow solver loosely-coupled with the comprehensive code CAMRAD II for appropriate rotor trim. Detailed comparisons are shown for the trim solution, airloads, wake geometry, and rotor performance. While the rotor disk model is able to capture the flow field with satisfactory agreement in airplane mode, it faces difficulties in helicopter mode due to the three-dimensional effects of the wake. Although this study is limited to a specific vehicle geometry, it is expected that the results are somewhat generalizable to the analysis of multi-rotor configurations.
Document ID
20230005884
Acquisition Source
Ames Research Center
Document Type
Conference Paper
Authors
David Garcia Perez
(Science and Technology Corporation (United States) Hampton, Virginia, United States)
Patricia Ventura Diaz
(Science and Technology Corporation (United States) Hampton, Virginia, United States)
Jasim Ahmad
(Ames Research Center Mountain View, California, United States)
Seokkwan Yoon
(Ames Research Center Mountain View, California, United States)
Date Acquired
April 14, 2023
Subject Category
Aeronautics (General)
Meeting Information
Meeting: The Vertical Flight Society's 79th Annual Forum & Technology Display
Location: West Palm Beach, FL
Country: US
Start Date: May 16, 2023
End Date: May 18, 2023
Sponsors: The Vertical Flight Society
Funding Number(s)
WBS: 664817.02.01.04.02
Distribution Limits
Public
Copyright
Public Use Permitted.
Technical Review
NASA Peer Committee
Keywords
ARMD
RVLT
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