The Boxprop is a novel, double-bladed, tip-joined propeller for high-speed flight. The concept draws inspiration from the box wing concept and could potentially decrease tip vortex strength compared with conventional propeller blades. Early Boxprop designs experienced significant amounts of blade interference. By performing a wake analysis and quantifying the various losses of the flow, it could be seen that these Boxprop designs produced 45% more swirl than a conventional reference blade. The reason for this was the proximity of the Boxprop blade halves to each other, which prevented the Boxprop from achieving the required aerodynamic loading on the outer parts of the blade. This paper presents an aerodynamic optimization of a 6-bladed Boxprop aiming at maximizing efficiency and thrust at cruise. A geometric parametrization has been adopted which decreases interference by allowing the blade halves to be swept in opposite directions. Compared with an earlier equal-thrust Boxprop design, the optimized design features a 7% percentage point increase in propeller efficiency and a lower amount of swirl and entropy generation. A vortex-like structure has also appeared downstream of the optimized Boxprop, but with two key differences relative to conventional propellers. (1) Its formation differs from a traditional tip vortex and (2) it is 46% weaker than the tip vortex of an optimized 12-bladed conventional propeller.
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Trollhättan SE-46181,
e-mail: anders.lundbladh@gknaerospace.com
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September 2019
Research-Article
Wake Analysis of an Aerodynamically Optimized Boxprop High-Speed Propeller
Alexandre Capitao Patrao,
Alexandre Capitao Patrao
1
Department of Mechanics and Maritime Sciences,
Gothenburg SE-41296,
e-mail: alexandre.capitao.patrao@gmail.com
Chalmers University of Technology
,Gothenburg SE-41296,
Sweden
e-mail: alexandre.capitao.patrao@gmail.com
1Corresponding author.
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Tomas Grönstedt,
Tomas Grönstedt
Department of Mechanics and Maritime Sciences,
Gothenburg SE-41296,
e-mail: tomas.gronstedt@chalmers.se
Chalmers University of Technology
,Gothenburg SE-41296,
Sweden
e-mail: tomas.gronstedt@chalmers.se
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Anders Lundbladh,
Trollhättan SE-46181,
e-mail: anders.lundbladh@gknaerospace.com
Anders Lundbladh
GKN Aerospace Sweden & Chalmers University of Technology
,Trollhättan SE-46181,
Sweden
e-mail: anders.lundbladh@gknaerospace.com
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Gonzalo Montero Villar
Gonzalo Montero Villar
Department of Mechanics and Maritime Sciences,
Gothenburg SE-41296,
e-mail: villar@chalmers.se
Chalmers University of Technology
,Gothenburg SE-41296,
Sweden
e-mail: villar@chalmers.se
Search for other works by this author on:
Alexandre Capitao Patrao
Department of Mechanics and Maritime Sciences,
Gothenburg SE-41296,
e-mail: alexandre.capitao.patrao@gmail.com
Chalmers University of Technology
,Gothenburg SE-41296,
Sweden
e-mail: alexandre.capitao.patrao@gmail.com
Tomas Grönstedt
Department of Mechanics and Maritime Sciences,
Gothenburg SE-41296,
e-mail: tomas.gronstedt@chalmers.se
Chalmers University of Technology
,Gothenburg SE-41296,
Sweden
e-mail: tomas.gronstedt@chalmers.se
Anders Lundbladh
GKN Aerospace Sweden & Chalmers University of Technology
,Trollhättan SE-46181,
Sweden
e-mail: anders.lundbladh@gknaerospace.com
Gonzalo Montero Villar
Department of Mechanics and Maritime Sciences,
Gothenburg SE-41296,
e-mail: villar@chalmers.se
Chalmers University of Technology
,Gothenburg SE-41296,
Sweden
e-mail: villar@chalmers.se
1Corresponding author.
Manuscript received August 16, 2018; final manuscript received June 3, 2019; published online July 10, 2019. Assoc. Editor: John Clark.
J. Turbomach. Sep 2019, 141(9): 091011 (13 pages)
Published Online: July 10, 2019
Article history
Received:
August 16, 2018
Revision Received:
June 3, 2019
Accepted:
June 4, 2019
Citation
Patrao, A. C., Grönstedt, T., Lundbladh, A., and Villar, G. M. (July 10, 2019). "Wake Analysis of an Aerodynamically Optimized Boxprop High-Speed Propeller." ASME. J. Turbomach. September 2019; 141(9): 091011. https://doi.org/10.1115/1.4043974
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