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A LES Study on Passive Mixing in Supersonic Shear Layer Flows Considering Effects of Baffle Configuration
Author(s) -
Zhao-Xin Ren,
Bing Wang
Publication year - 2014
Publication title -
advances in mechanical engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.318
H-Index - 40
ISSN - 1687-8132
DOI - 10.1155/2014/836146
Subject(s) - baffle , mechanics , supersonic speed , mixing (physics) , combustor , vortex , materials science , choked flow , detached eddy simulation , nozzle , ramjet , drag , flow (mathematics) , physics , turbulence , thermodynamics , reynolds averaged navier–stokes equations , chemistry , organic chemistry , quantum mechanics , combustion
Under the background of dual combustor ramjet (DCR), a numerical investigation of supersonic mixing layer was launched, focused on the mixing enhancement method of applying baffles with different geometric configurations. Large eddy simulation with high order schemes, containing a fifth-order hybrid WENO compact scheme for the convective flux and sixth-order compact one for the viscous flux, was utilized to numerically study the development of the supersonic mixing layer. The supersonic cavity flow was simulated and the cavity configuration could influence the mixing characteristics, since the impingement process of large scale structures formed inside the cavity could raise the vorticity and promote the mixing. The effect of baffle's configurations on the mixing process was analyzed by comparing the flow properties, mixing efficiency, and total pressure loss. The baffle could induce large scale vortexes, promote the mixing layer to lose its stability easily, and then lead to the mixing efficiency enhancement. However, the baffle could increase the total pressure loss. The present investigation could provide guidance for applying new passive mixing enhancement methods for the supersonic mixing.

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