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2024 | OriginalPaper | Buchkapitel

A Comparative Study of Dual Throat Nozzles for Fluidic Thrust Vectoring Applications

verfasst von : M. Siva Sakthi, Surendra Bogadi

Erschienen in: Recent Advances in Aerospace Engineering

Verlag: Springer Nature Singapore

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Abstract

Thrust vectoring is the technique by which the jet coming out of the nozzle is made to deflect to control the vehicle. Fluidic thrust vector control by dual throat nozzle is found to have the highest thrust efficiency with minimum pressure losses. The present study involves the design and simulation of a dual throat nozzle (DTN), a DTN with injection (I-DTN), and a bypass dual throat nozzle with a V-shaped bypass duct (V-BDTN) and with an arc-shaped bypass duct (A-BDTN). The arc-shaped bypass duct design idea is taken from the author Wu and Kim (J Mech Sci Technol 35:3435–3443, 2021). It is found that I-DTN has the highest deflection angle of 12° for NPR = 4 and the highest coefficient of the thrust of 0.96. But implementing DTN with injection has the starting problem as mentioned in the research literature. To overcome this, A-BDTN and V-BDTN are introduced. Also, A-BDTN’s coefficient of thrust is very close to that of a DTN which means the thrust penalty for vectored state is negligible.

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Literatur
1.
Zurück zum Zitat Wu K, Kim HD (2021) A fluidic thrust vector control using the bypass flow in a dual throat nozzle. J Mech Sci Technol 35(08):3435–3443CrossRef Wu K, Kim HD (2021) A fluidic thrust vector control using the bypass flow in a dual throat nozzle. J Mech Sci Technol 35(08):3435–3443CrossRef
2.
Zurück zum Zitat Jain S, Roy S, Gupta D, Kumar V, Kumar N (2015) Study on fluidic thrust vectoring techniques for application in V/STOL aircrafts. In: SAE technical paper Jain S, Roy S, Gupta D, Kumar V, Kumar N (2015) Study on fluidic thrust vectoring techniques for application in V/STOL aircrafts. In: SAE technical paper
3.
Zurück zum Zitat Wu K, Kim TH, Kim HD (2021) Visualization and analysis on the thrust vectoring control in three-dimensional dual-throat nozzles. Visual Soc Jpn 24:891–915CrossRef Wu K, Kim TH, Kim HD (2021) Visualization and analysis on the thrust vectoring control in three-dimensional dual-throat nozzles. Visual Soc Jpn 24:891–915CrossRef
4.
Zurück zum Zitat Wang Y, Xu J, Huang S, Lin Y, Jiang J (2019) Computational study of axisymmetric divergent bypass dual throat nozzle. Int J Aerosp Sci Technol 86:177–190CrossRef Wang Y, Xu J, Huang S, Lin Y, Jiang J (2019) Computational study of axisymmetric divergent bypass dual throat nozzle. Int J Aerosp Sci Technol 86:177–190CrossRef
5.
Zurück zum Zitat Wang YS, Xu JL, Huang S (2017) Study of starting problem of axisymmetric divergent dual throat nozzle. J Eng Gas Turb Power 139(6):062602CrossRef Wang YS, Xu JL, Huang S (2017) Study of starting problem of axisymmetric divergent dual throat nozzle. J Eng Gas Turb Power 139(6):062602CrossRef
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Zurück zum Zitat Wu KX, Kim TH, Kim HD (2021) Numerical study of fluidic thrust vector control using dual throat nozzle. J Appl Fluid Mech 14(1):73–87 Wu KX, Kim TH, Kim HD (2021) Numerical study of fluidic thrust vector control using dual throat nozzle. J Appl Fluid Mech 14(1):73–87
7.
Zurück zum Zitat Flamm JD, Deere KA, Mason ML, Berrier BL, Johnson SK (2006) Experimental study of an axisymmetric dual throat fluidic thrust vectoring nozzle for supersonic aircraft application. In: Proceedings of the 3rd AIAA flow control conference Flamm JD, Deere KA, Mason ML, Berrier BL, Johnson SK (2006) Experimental study of an axisymmetric dual throat fluidic thrust vectoring nozzle for supersonic aircraft application. In: Proceedings of the 3rd AIAA flow control conference
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Zurück zum Zitat Jain S, Roy S, Gupta D, Kumar V, Kumar N (2006) Design enhancements of the two-dimensional, dual throat fluidic thrust vectoring nozzle concept. In: Proceedings of the 3rd AIAA flow control conference, AIAA 2006–3701 Jain S, Roy S, Gupta D, Kumar V, Kumar N (2006) Design enhancements of the two-dimensional, dual throat fluidic thrust vectoring nozzle concept. In: Proceedings of the 3rd AIAA flow control conference, AIAA 2006–3701
9.
Zurück zum Zitat Bogadi S, Sridhar BTN (2019) Decay of supersonic rectangular jet issuing from a nozzle with diagonal expansion ramps. Therm Sci 23(6B):3929–3940CrossRef Bogadi S, Sridhar BTN (2019) Decay of supersonic rectangular jet issuing from a nozzle with diagonal expansion ramps. Therm Sci 23(6B):3929–3940CrossRef
10.
Zurück zum Zitat Wang Y, Xu J, Huang S, Lin Y, Jiang J (2019) Experimental and numerical investigation of an axisymmetric divergent dual throat nozzle. J Aerospace Eng 234:563–572 Wang Y, Xu J, Huang S, Lin Y, Jiang J (2019) Experimental and numerical investigation of an axisymmetric divergent dual throat nozzle. J Aerospace Eng 234:563–572
Metadaten
Titel
A Comparative Study of Dual Throat Nozzles for Fluidic Thrust Vectoring Applications
verfasst von
M. Siva Sakthi
Surendra Bogadi
Copyright-Jahr
2024
Verlag
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-97-1306-6_33

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