Effect of Geometry Modifications on the Vectoring Performance of a Controlled Jet

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Date

2017

Journal Title

Journal ISSN

Volume Title

Publisher

Isfahan University of Technology secretary@jafmonline.net

Open Access Color

GOLD

Green Open Access

Yes

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0

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3

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No
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Abstract

Jet vectoring performances of ten different designs with various depths and geometrical outlines were quantified through constant temperature anemometry measurements for a Reynolds number range from 10,000 to 30,000 by using passive and active flow control methods at cold flow. The reference design was based on NASA's double throat nozzle concept and a self-injection double throat nozzle design that uses similar flow control concept as the reference design, were also tested for performance comparison. Furthermore, jet vectoring performance of a single throat design, utilizing Coanda effect for jet vectoring, was also quantified. Results indicated jet vectoring angles starting from 2° up to 47° for a control jet flow rate range from 1% up to 10% with respect to the primary jet flow rate in the investigated Re range. Maximum jet vectoring angle was achieved with a single throat design which incorporates small step geometry before the Coanda surface for more effective flow attachment and these results were compared with the vectoring performance of the double throat nozzle designs. © 2018 Elsevier B.V., All rights reserved.

Description

Tomac, Mehmet/0000-0003-1373-4639

Keywords

Active Flow Control, Constant Temperature Anemometry, Jet Vectoring, TJ1-1570, Active flow control, Constant temperature anemometry, Mechanical engineering and machinery, Jet vectoring; Active flow control; Constant temperature anemometry., Jet vectoring

Fields of Science

0404 agricultural biotechnology, 0203 mechanical engineering, 0103 physical sciences, 04 agricultural and veterinary sciences, 02 engineering and technology, 0405 other agricultural sciences, 01 natural sciences

Citation

WoS Q

Q3

Scopus Q

Q3
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OpenCitations Citation Count
3

Source

Journal of Applied Fluid Mechanics

Volume

10

Issue

1

Start Page

283

End Page

291
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2

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2

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5

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