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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Schematic diagram of rocket nozzle with regenerative cooling system Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of gas-side wall temperature for various mesh sizes Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Grid employed for the simulation shown in midplane Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Axial variation of static temperature and velocity in uncooled nozzle Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Axial variation of Mach number in uncooled nozzle Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Axial variation of static temperature in uncooled nozzle Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of static temperature along the wall of cooled nozzle Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of gas-side wall temperature for different coolant flow rates Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of gas-side wall temperature for cooled and uncooled cases Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of gas-side and coolant-side wall temperatures Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of gas-side wall temperature for different cooling media Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Heat flux variation along the rocket nozzle wall Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of gas-side wall temperature for different wall materials Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of gas-side wall temperature for different wall thickness Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of heat flux for different wall thickness Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of gas-side wall temperature for convection and radiation Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Variation of gas-side wall temperature for different viscous models Figure Legend:
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Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines J. Thermal Sci. Eng. Appl. 2015;7(1):011012-011012-8. doi:10.1115/1.4028979 Comparison of predicted gas-side wall temperature with published data [4] Figure Legend:
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