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Contribution a l’etude des profils de tuyeres en ecoulements supersoniques visqueux par la methode des volumes finis.

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dc.contributor.author Mahfoudi, El-Ahcene
dc.contributor.author Gahmousse, Abderrahmane
dc.contributor.author Talbi, Kamel
dc.date.accessioned 2022-05-24T10:31:35Z
dc.date.available 2022-05-24T10:31:35Z
dc.date.issued 2014-03-06
dc.identifier.uri http://depot.umc.edu.dz/handle/123456789/6458
dc.description 133 f.
dc.description.abstract Experimental studies of supersonic compressible flows in Overexpanded nozzles have proved the existence and interaction of several physical phenomena: Supersonic jet, shock waves, boundary layer separation, reversed flow, viscous and turbulent mixing layer. These complex phenomena can significantly affect the performance and reliability of propulsive nozzles. This work focuses on the physical analysis and numerical simulation of turbulent separated flow in supersonic nozzles, operating in under-overexpanded conditions. The turbulence is modelled using a statistical approach (URANS) on a generalized coordinates, using the two-equation model of transport (SST Menter). The system of equations governing the flow is solved using the finite volume method in structured grid. The time integration is performed by the fully implicit numerical scheme of predictor-corrector type of Mac-Cormack. While the convective flows are discretized with shock capturing schemes (Roe, Steger-Warming). Viscous terms are discretized with a second order centred scheme. The Obtained numerical results have detected the various phenomena observed experimentally.
dc.description.abstract Experimental studies of supersonic compressible flows in Overexpanded nozzles have proved the existence and interaction of several physical phenomena: Supersonic jet, shock waves, boundary layer separation, reversed flow, viscous and turbulent mixing layer. These complex phenomena can significantly affect the performance and reliability of propulsive nozzles. This work focuses on the physical analysis and numerical simulation of turbulent separated flow in supersonic nozzles, operating in under-overexpanded conditions. The turbulence is modelled using a statistical approach (URANS) on a generalized coordinates, using the two-equation model of transport (SST Menter). The system of equations governing the flow is solved using the finite volume method in structured grid. The time integration is performed by the fully implicit numerical scheme of predictor-corrector type of Mac-Cormack. While the convective flows are discretized with shock capturing schemes (Roe, Steger-Warming). Viscous terms are discretized with a second order centred scheme. The Obtained numerical results have detected the various phenomena observed experimentally.
dc.format 30 cm.
dc.language.iso fr
dc.publisher Université Frères Mentouri - Constantine 1
dc.subject Génie Mécanique
dc.subject G.mecanique:Energetique
dc.subject Tuyères convergentes-divergentes
dc.subject Jet supersonique
dc.subject Ondes de choc
dc.subject Décollement de la couche limite
dc.subject Turbulence
dc.subject Simulation numérique
dc.subject Méthode des volumes finis
dc.subject Schémas de capture des ondes de choc
dc.subject Overexpanded nozzles
dc.subject Supersonic jet
dc.subject Shock waves
dc.subject Boundary layer separation
dc.subject Numerical simulation
dc.subject Finite volumes method
dc.subject Shock capturing schemes
dc.subject الفوهات المتقاربة-المتباعدة
dc.subject الفوهات المتقاربة-المتباعدة
dc.subject السريان الفوق صوتي
dc.subject الموجات الارتجافية
dc.subject الموجات الارتجافية
dc.subject انقلاع الطبقة الحدية
dc.subject للسريان المضطرب
dc.subject المحاكات العددية طريقة الحجوم المتناهية
dc.subject مخططات التقاط الموجة الارتجافية
dc.title Contribution a l’etude des profils de tuyeres en ecoulements supersoniques visqueux par la methode des volumes finis.
dc.type Thesis
dc.coverage 2 copies imprimées disponibles


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