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Erschienen in: Journal of Visualization 2/2021

22.09.2020 | Regular Paper

Vortex–shock and vortex–vortex interactions in the compressible starting jet from two beveled nozzle configurations

verfasst von: Liang Qin, Yang Xiang, Hong Liu

Erschienen in: Journal of Visualization | Ausgabe 2/2021

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Abstract

An experiment was conducted to investigate the flow structures in the compressible starting jet from two beveled nozzles (45\(^{\circ }\) and 30\(^{\circ }\) nozzle angles) of a shock tube using the schlieren technique. In the present study, the pressure ratios between the driver section and the driven section (PR) of 3.5, 7, and 10.5 corresponding to the shock wave Mach numbers (\(M_\mathrm{s}\)) of 1.28, 1.48, and 1.59 were applied to produce three types of compressible vortex rings (CVRs). Owing to the beveled nozzle, the shock wave diffracts twice to produce two coaxial CVRs. For PR = 3.5 with 45\(^{\circ }\) beveled nozzle, two shock-free CVRs are formed and merged into one primary CVR, while the two CVRs are separated from each other for the 30\(^{\circ }\) beveled nozzle. The main reason is that the strength of the secondary CVR generated from the 30\(^{\circ }\) beveled nozzle is much lower than that of the leading CVR. As for PR =7 and 10.5, the embedded shock and counter-rotating vortex rings (CRVRs) appear and constraint the formation of the secondary CVR. As a result, the two CVRs are merged into a primary CVR at a very early stage. In addition, for the two different beveled nozzles, the embedded shock–CVR, CRVR–CVR, and shock cell-trailing vortices interactions are observed and exhibited some differences. Moreover, by identifying the position of the primary CVR, it is found that the propagation velocity of the primary CVR generated from the beveled nozzles is significantly slower than that from a straight nozzle.

Graphic abstract

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Literatur
Zurück zum Zitat Anderson J (1990) Modern compressible flow with historical perspective. Fluid Dyn Res 237–238 Anderson J (1990) Modern compressible flow with historical perspective. Fluid Dyn Res 237–238
Zurück zum Zitat Arakeri J, Das D, Krothapalli A, Lourenco L (2004) Vortex ring formation at the open end of a shock tube: A particle image velocimetry study. Phys Fluids 16:1008–1019CrossRef Arakeri J, Das D, Krothapalli A, Lourenco L (2004) Vortex ring formation at the open end of a shock tube: A particle image velocimetry study. Phys Fluids 16:1008–1019CrossRef
Zurück zum Zitat Brouillette M, Hebert C (1997) Propagation and interaction of shock-generated vortices. Fluid Dyn Res 21:159–169CrossRef Brouillette M, Hebert C (1997) Propagation and interaction of shock-generated vortices. Fluid Dyn Res 21:159–169CrossRef
Zurück zum Zitat Cheng M, Lou J, Lim TT (2015) Leapfrogging of multiple coaxial viscous vortex rings. Phys Fluids 27:031702CrossRef Cheng M, Lou J, Lim TT (2015) Leapfrogging of multiple coaxial viscous vortex rings. Phys Fluids 27:031702CrossRef
Zurück zum Zitat Dora CL, Murugan T, De S, Das D (2014) Role of slipstream instability in formation of counter-rotating vortex rings ahead of a compressible vortex ring. J Fluid Mech 753:29–48CrossRef Dora CL, Murugan T, De S, Das D (2014) Role of slipstream instability in formation of counter-rotating vortex rings ahead of a compressible vortex ring. J Fluid Mech 753:29–48CrossRef
Zurück zum Zitat Elder F, Haas D (1952) Experimental study of the formation of a vortex ring at the open end of a cylindrical shock tube. J Appl Phys 23:1065–1069CrossRef Elder F, Haas D (1952) Experimental study of the formation of a vortex ring at the open end of a cylindrical shock tube. J Appl Phys 23:1065–1069CrossRef
Zurück zum Zitat Gurzhii AA, Konstantinov MY, Meleshko VV (1988) Interaction of coaxial vortex rings in an ideal fluid. Fluid Dyn 23:224MathSciNetCrossRef Gurzhii AA, Konstantinov MY, Meleshko VV (1988) Interaction of coaxial vortex rings in an ideal fluid. Fluid Dyn 23:224MathSciNetCrossRef
Zurück zum Zitat Helmholtz H (1858) Über integrale der hydrodynamischen gleichungen, welche den wirbelbewegungen entsprechen. J Reine Angew Math 1858:25–55MathSciNetCrossRef Helmholtz H (1858) Über integrale der hydrodynamischen gleichungen, welche den wirbelbewegungen entsprechen. J Reine Angew Math 1858:25–55MathSciNetCrossRef
Zurück zum Zitat Hicks WM (1992) On the mutual threading of vortex rings. Proc R Soc Lond A 102:111–131MATH Hicks WM (1992) On the mutual threading of vortex rings. Proc R Soc Lond A 102:111–131MATH
Zurück zum Zitat Kontis K, An R, Edwards J (2006) Compressible vortex-ring interaction studies with a number of generic body configurations. AIAA J 44:2962–2978CrossRef Kontis K, An R, Edwards J (2006) Compressible vortex-ring interaction studies with a number of generic body configurations. AIAA J 44:2962–2978CrossRef
Zurück zum Zitat Lim T (1997) A note on the leapfrogging between two coaxial vortex rings at low reynolds numbers. J Phys Soc Jpn 9:239–241 Lim T (1997) A note on the leapfrogging between two coaxial vortex rings at low reynolds numbers. J Phys Soc Jpn 9:239–241
Zurück zum Zitat Mariani R, Kontis K (2009) Effects of exit nozzle diameter on compressible vortex rings flow structure. AIAA J 410 Mariani R, Kontis K (2009) Effects of exit nozzle diameter on compressible vortex rings flow structure. AIAA J 410
Zurück zum Zitat Mariani R, Kontis K (2010) Experimental studies on coaxial vortex loops. Phys Fluids 22:126102CrossRef Mariani R, Kontis K (2010) Experimental studies on coaxial vortex loops. Phys Fluids 22:126102CrossRef
Zurück zum Zitat Minota T (1997) Dynamic motion of a compressible vortex ring. Proc SPIE Int Soc Opt Eng 3173:241–248 Minota T (1997) Dynamic motion of a compressible vortex ring. Proc SPIE Int Soc Opt Eng 3173:241–248
Zurück zum Zitat Moore D, Pullin D (1987) The compressible vortex pair. J Fluid Mech 187:171–204CrossRef Moore D, Pullin D (1987) The compressible vortex pair. J Fluid Mech 187:171–204CrossRef
Zurück zum Zitat Murugan T, Das D (2010) Characteristics of counter-rotating vortex rings formed ahead of a compressible vortex ring. Exp Fluids 49:1247–1261CrossRef Murugan T, Das D (2010) Characteristics of counter-rotating vortex rings formed ahead of a compressible vortex ring. Exp Fluids 49:1247–1261CrossRef
Zurück zum Zitat Oshima Y (1975) Interaction of two vortex rings moving along a common axis of symmetry. J Phys Soc Jpn 38:1159CrossRef Oshima Y (1975) Interaction of two vortex rings moving along a common axis of symmetry. J Phys Soc Jpn 38:1159CrossRef
Zurück zum Zitat Oshima Y (1978) The game of passing-through of a pair of vortex rings. J Phys Soc Jpn 45:660CrossRef Oshima Y (1978) The game of passing-through of a pair of vortex rings. J Phys Soc Jpn 45:660CrossRef
Zurück zum Zitat Qin L, Xiang Y, Lin HY, Liu H (2020) Formation and dynamics of compressible vortex rings generated by a shock tube. Exp Fluids 2020:61–86 Qin L, Xiang Y, Lin HY, Liu H (2020) Formation and dynamics of compressible vortex rings generated by a shock tube. Exp Fluids 2020:61–86
Zurück zum Zitat Qin SY, Liu H, Xiang Y (2017) Lagrangian flow visualization of multiple co-axial co-rotating vortex rings. J Vis 21:63–71CrossRef Qin SY, Liu H, Xiang Y (2017) Lagrangian flow visualization of multiple co-axial co-rotating vortex rings. J Vis 21:63–71CrossRef
Zurück zum Zitat Qin SY, Liu H, Xiang Y (2018) On the formation modes in vortex interaction for multiple co-axial co-rotating vortex rings. Phys Fluids 30:011901CrossRef Qin SY, Liu H, Xiang Y (2018) On the formation modes in vortex interaction for multiple co-axial co-rotating vortex rings. Phys Fluids 30:011901CrossRef
Zurück zum Zitat Sinha A, KGudmundsson, Xia H Colonius T (2016) Parabolized stability analysis of jets from serrated nozzles. J Fluid Mech 78:36–63MathSciNetCrossRef Sinha A, KGudmundsson, Xia H Colonius T (2016) Parabolized stability analysis of jets from serrated nozzles. J Fluid Mech 78:36–63MathSciNetCrossRef
Zurück zum Zitat Tophøj L, Aref H (2013) Instability of vortex pair leapfrogging. Phys Fluids 25:014017CrossRef Tophøj L, Aref H (2013) Instability of vortex pair leapfrogging. Phys Fluids 25:014017CrossRef
Zurück zum Zitat Yu Q, Grönig H (1996) Shock waves from an open-ended shock tube with different shapes. Shock Waves 6:249CrossRef Yu Q, Grönig H (1996) Shock waves from an open-ended shock tube with different shapes. Shock Waves 6:249CrossRef
Zurück zum Zitat Zaman KBMQ (1999) Spreading characteristics of compressible jets from nozzles of various geometries. J Fluid Mech 383:197–228CrossRef Zaman KBMQ (1999) Spreading characteristics of compressible jets from nozzles of various geometries. J Fluid Mech 383:197–228CrossRef
Zurück zum Zitat Zare-Behtash H, Kontis K, Gongora-Orozco N, Takayama K (2009) Compressible vortex loops: effect of nozzle geometry. Int J Heat Fluids Flow 30:561–576CrossRef Zare-Behtash H, Kontis K, Gongora-Orozco N, Takayama K (2009) Compressible vortex loops: effect of nozzle geometry. Int J Heat Fluids Flow 30:561–576CrossRef
Zurück zum Zitat Zhang H, Chen Z, Guo Z, Zheng C, Xue D (2018) Numerical investigation on the three-dimensional flow characteristics of unsteady subsonic elliptic jet. Comput Fluids 160:78–92MathSciNetCrossRef Zhang H, Chen Z, Guo Z, Zheng C, Xue D (2018) Numerical investigation on the three-dimensional flow characteristics of unsteady subsonic elliptic jet. Comput Fluids 160:78–92MathSciNetCrossRef
Metadaten
Titel
Vortex–shock and vortex–vortex interactions in the compressible starting jet from two beveled nozzle configurations
verfasst von
Liang Qin
Yang Xiang
Hong Liu
Publikationsdatum
22.09.2020
Verlag
Springer Berlin Heidelberg
Erschienen in
Journal of Visualization / Ausgabe 2/2021
Print ISSN: 1343-8875
Elektronische ISSN: 1875-8975
DOI
https://doi.org/10.1007/s12650-020-00700-8

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