Simulation of Elliptical Liquid Jet Primary Breakup In Supersonic Crossflow

The study of elliptical liquid jets in supersonic flow in a Mach 2.0 is performed numerically. The primary breakup process of the elliptical liquid jet is simulated for a Weber number 223, liquid/gas flux momentum 4.0. The aspect ratios of elliptical geometries are set to be 0.25, 0.5, 1, 2, and 5....

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Main Authors: Yao-zhi Zhou, Feng Xiao, Qing-lian Li, Chen-yang Li
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:International Journal of Aerospace Engineering
Online Access:http://dx.doi.org/10.1155/2020/6783038
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spelling doaj-8b79fe1f2f254a60884d00dc067038f82020-11-25T03:24:46ZengHindawi LimitedInternational Journal of Aerospace Engineering1687-59661687-59742020-01-01202010.1155/2020/67830386783038Simulation of Elliptical Liquid Jet Primary Breakup In Supersonic CrossflowYao-zhi Zhou0Feng Xiao1Qing-lian Li2Chen-yang Li3Science and Technology on Scramjet Laboratory, National University of Defense Technology, Changsha 410073, ChinaScience and Technology on Scramjet Laboratory, National University of Defense Technology, Changsha 410073, ChinaScience and Technology on Scramjet Laboratory, National University of Defense Technology, Changsha 410073, ChinaScience and Technology on Scramjet Laboratory, National University of Defense Technology, Changsha 410073, ChinaThe study of elliptical liquid jets in supersonic flow in a Mach 2.0 is performed numerically. The primary breakup process of the elliptical liquid jet is simulated for a Weber number 223, liquid/gas flux momentum 4.0. The aspect ratios of elliptical geometries are set to be 0.25, 0.5, 1, 2, and 5. The results show a remarkable difference in liquid jet disintegration morphology at different aspect ratios. Under supersonic crossflow conditions, the elliptical liquid jet shows more breakup characteristics than the round liquid jet. As the aspect ratio grows, the penetration depth decreases. The elliptical liquid jet with AR=0.25 has the largest penetration depth in all cases. Moreover, the round jet has a maximum spreading angle of 50.2°. The changing trends of the column breakup length both x direction and y direction are similar. The elliptical jet at a lower aspect ratio has a shorter breakup length due to the narrower windward area. The liquid jet has a pair of larger horseshoe vortex structure and a wider wake region at a higher aspect ratio. Two pairs of reversal vortex pairs with obvious characteristics can be observed in all the simulations.http://dx.doi.org/10.1155/2020/6783038
collection DOAJ
language English
format Article
sources DOAJ
author Yao-zhi Zhou
Feng Xiao
Qing-lian Li
Chen-yang Li
spellingShingle Yao-zhi Zhou
Feng Xiao
Qing-lian Li
Chen-yang Li
Simulation of Elliptical Liquid Jet Primary Breakup In Supersonic Crossflow
International Journal of Aerospace Engineering
author_facet Yao-zhi Zhou
Feng Xiao
Qing-lian Li
Chen-yang Li
author_sort Yao-zhi Zhou
title Simulation of Elliptical Liquid Jet Primary Breakup In Supersonic Crossflow
title_short Simulation of Elliptical Liquid Jet Primary Breakup In Supersonic Crossflow
title_full Simulation of Elliptical Liquid Jet Primary Breakup In Supersonic Crossflow
title_fullStr Simulation of Elliptical Liquid Jet Primary Breakup In Supersonic Crossflow
title_full_unstemmed Simulation of Elliptical Liquid Jet Primary Breakup In Supersonic Crossflow
title_sort simulation of elliptical liquid jet primary breakup in supersonic crossflow
publisher Hindawi Limited
series International Journal of Aerospace Engineering
issn 1687-5966
1687-5974
publishDate 2020-01-01
description The study of elliptical liquid jets in supersonic flow in a Mach 2.0 is performed numerically. The primary breakup process of the elliptical liquid jet is simulated for a Weber number 223, liquid/gas flux momentum 4.0. The aspect ratios of elliptical geometries are set to be 0.25, 0.5, 1, 2, and 5. The results show a remarkable difference in liquid jet disintegration morphology at different aspect ratios. Under supersonic crossflow conditions, the elliptical liquid jet shows more breakup characteristics than the round liquid jet. As the aspect ratio grows, the penetration depth decreases. The elliptical liquid jet with AR=0.25 has the largest penetration depth in all cases. Moreover, the round jet has a maximum spreading angle of 50.2°. The changing trends of the column breakup length both x direction and y direction are similar. The elliptical jet at a lower aspect ratio has a shorter breakup length due to the narrower windward area. The liquid jet has a pair of larger horseshoe vortex structure and a wider wake region at a higher aspect ratio. Two pairs of reversal vortex pairs with obvious characteristics can be observed in all the simulations.
url http://dx.doi.org/10.1155/2020/6783038
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