Influence of Fluid–Thermal–Structural Interaction on Boundary Layer Flow in Rectangular Supersonic Nozzles

The aim of this work is to highlight the significance of Fluid–Thermal–Structural Interaction (FTSI) as a diagnosis of existing designs, and as a means of preliminary investigation to ensure the feasibility of new designs before conducting experimental and field tests. The novelty of this work lies...

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Main Authors: Kalyani Bhide, Kiran Siddappaji, Shaaban Abdallah
Format: Article
Language:English
Published: MDPI AG 2018-03-01
Series:Aerospace
Subjects:
Online Access:http://www.mdpi.com/2226-4310/5/2/33
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spelling doaj-1a574d6bb0984aa6a809a9a5b20b97852020-11-25T00:27:02ZengMDPI AGAerospace2226-43102018-03-01523310.3390/aerospace5020033aerospace5020033Influence of Fluid–Thermal–Structural Interaction on Boundary Layer Flow in Rectangular Supersonic NozzlesKalyani Bhide0Kiran Siddappaji1Shaaban Abdallah2Department of Mechanical Engineering, University of Cincinnati, Cincinnati, OH 45221, USADepartment of Mechanical Engineering, University of Cincinnati, Cincinnati, OH 45221, USADepartment of Mechanical Engineering, University of Cincinnati, Cincinnati, OH 45221, USAThe aim of this work is to highlight the significance of Fluid–Thermal–Structural Interaction (FTSI) as a diagnosis of existing designs, and as a means of preliminary investigation to ensure the feasibility of new designs before conducting experimental and field tests. The novelty of this work lies in the multi-physics simulations, which are, for the first time, performed on rectangular nozzles. An existing experimental supersonic rectangular converging/diverging nozzle geometry is considered for multi-physics 3D simulations. A design that has been improved by eliminating the sharp throat is further investigated to evaluate its structural integrity at design Nozzle Pressure Ratio (NPR 3.67) and off-design (NPR 4.5) conditions. Static structural analysis is performed by unidirectional coupling of pressure loads from steady 3D Computational Fluid Dynamics (CFD) and thermal loads from steady thermal conduction simulations, such that the simulations represent the experimental set up. Structural deformation in the existing design is far less than the boundary layer thickness, because the impact of Shock wave Boundary Layer Interaction (SBLI) is not as severe. FTSI demonstrates that the discharge coefficient of the improved design is 0.99, and its structural integrity remains intact at off-design conditions. This proves the feasibility of the improved design. Although FTSI influence is shown for a nozzle, the approach can be applied to any product design cycle, or as a prelude to building prototypes.http://www.mdpi.com/2226-4310/5/2/33fluid–thermal–structural interactionrectangular nozzlessupersonicmulti-physicsstructural deformation and boundary layer thickness
collection DOAJ
language English
format Article
sources DOAJ
author Kalyani Bhide
Kiran Siddappaji
Shaaban Abdallah
spellingShingle Kalyani Bhide
Kiran Siddappaji
Shaaban Abdallah
Influence of Fluid–Thermal–Structural Interaction on Boundary Layer Flow in Rectangular Supersonic Nozzles
Aerospace
fluid–thermal–structural interaction
rectangular nozzles
supersonic
multi-physics
structural deformation and boundary layer thickness
author_facet Kalyani Bhide
Kiran Siddappaji
Shaaban Abdallah
author_sort Kalyani Bhide
title Influence of Fluid–Thermal–Structural Interaction on Boundary Layer Flow in Rectangular Supersonic Nozzles
title_short Influence of Fluid–Thermal–Structural Interaction on Boundary Layer Flow in Rectangular Supersonic Nozzles
title_full Influence of Fluid–Thermal–Structural Interaction on Boundary Layer Flow in Rectangular Supersonic Nozzles
title_fullStr Influence of Fluid–Thermal–Structural Interaction on Boundary Layer Flow in Rectangular Supersonic Nozzles
title_full_unstemmed Influence of Fluid–Thermal–Structural Interaction on Boundary Layer Flow in Rectangular Supersonic Nozzles
title_sort influence of fluid–thermal–structural interaction on boundary layer flow in rectangular supersonic nozzles
publisher MDPI AG
series Aerospace
issn 2226-4310
publishDate 2018-03-01
description The aim of this work is to highlight the significance of Fluid–Thermal–Structural Interaction (FTSI) as a diagnosis of existing designs, and as a means of preliminary investigation to ensure the feasibility of new designs before conducting experimental and field tests. The novelty of this work lies in the multi-physics simulations, which are, for the first time, performed on rectangular nozzles. An existing experimental supersonic rectangular converging/diverging nozzle geometry is considered for multi-physics 3D simulations. A design that has been improved by eliminating the sharp throat is further investigated to evaluate its structural integrity at design Nozzle Pressure Ratio (NPR 3.67) and off-design (NPR 4.5) conditions. Static structural analysis is performed by unidirectional coupling of pressure loads from steady 3D Computational Fluid Dynamics (CFD) and thermal loads from steady thermal conduction simulations, such that the simulations represent the experimental set up. Structural deformation in the existing design is far less than the boundary layer thickness, because the impact of Shock wave Boundary Layer Interaction (SBLI) is not as severe. FTSI demonstrates that the discharge coefficient of the improved design is 0.99, and its structural integrity remains intact at off-design conditions. This proves the feasibility of the improved design. Although FTSI influence is shown for a nozzle, the approach can be applied to any product design cycle, or as a prelude to building prototypes.
topic fluid–thermal–structural interaction
rectangular nozzles
supersonic
multi-physics
structural deformation and boundary layer thickness
url http://www.mdpi.com/2226-4310/5/2/33
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AT kiransiddappaji influenceoffluidthermalstructuralinteractiononboundarylayerflowinrectangularsupersonicnozzles
AT shaabanabdallah influenceoffluidthermalstructuralinteractiononboundarylayerflowinrectangularsupersonicnozzles
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