Dynamic Aerothermal Analysis of a Cone-Cylinder Flight Body
Exploring the aerothermal characteristic of a flight body has great military applications in tracking, locating, thermal protection, and infrared stealth technologies. Available studies are mostly focused on the transient aerothermal characteristics of vehicles in some specific flight datum, which a...
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Series: | International Journal of Aerospace Engineering |
Online Access: | http://dx.doi.org/10.1155/2020/2813856 |
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doaj-de2297a4f0f741f3b6f10ae9d560b01f2020-11-25T03:31:56ZengHindawi LimitedInternational Journal of Aerospace Engineering1687-59661687-59742020-01-01202010.1155/2020/28138562813856Dynamic Aerothermal Analysis of a Cone-Cylinder Flight BodyJun Zhang0Guangchen Jia1Sibanda Gibson Mkumbuzi2Yu Wu3College of Engineering Science and Technology, Shanghai Ocean University, Shanghai 201306, ChinaCollege of Engineering Science and Technology, Shanghai Ocean University, Shanghai 201306, ChinaCollege of Engineering Science and Technology, Shanghai Ocean University, Shanghai 201306, ChinaCollege of Engineering Science and Technology, Shanghai Ocean University, Shanghai 201306, ChinaExploring the aerothermal characteristic of a flight body has great military applications in tracking, locating, thermal protection, and infrared stealth technologies. Available studies are mostly focused on the transient aerothermal characteristics of vehicles in some specific flight datum, which are not able to satisfy the requirements in real-time tracking for an infrared system. This paper probes into a method of dynamic thermal analysis of a cone-cylinder flight body with a high spinning speed. Firstly, a theoretical model for analyzing the dynamic aerothermal characteristics is established using the thermal node-network method. Then, trajectory datum and the convective heat-transfer coefficients are solved simultaneously. Besides, the trajectory datum in supersonic, transonic, and subsonic regimes is separately defined as the boundary conditions, and fluid-thermal analysis methods are implemented by a combination of sliding mesh and multicoordinate approaches. Finally, the flow characteristics are analyzed and compared with disregarding the rotational speed. The results demonstrate that there are significant differences between the two cases, especially at the high-speed regimes. This study further confirms that it is essential to conduct the aerothermal analysis from a dynamic point of view, and taking the impacts of coupling motion into account is also of vital importance.http://dx.doi.org/10.1155/2020/2813856 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jun Zhang Guangchen Jia Sibanda Gibson Mkumbuzi Yu Wu |
spellingShingle |
Jun Zhang Guangchen Jia Sibanda Gibson Mkumbuzi Yu Wu Dynamic Aerothermal Analysis of a Cone-Cylinder Flight Body International Journal of Aerospace Engineering |
author_facet |
Jun Zhang Guangchen Jia Sibanda Gibson Mkumbuzi Yu Wu |
author_sort |
Jun Zhang |
title |
Dynamic Aerothermal Analysis of a Cone-Cylinder Flight Body |
title_short |
Dynamic Aerothermal Analysis of a Cone-Cylinder Flight Body |
title_full |
Dynamic Aerothermal Analysis of a Cone-Cylinder Flight Body |
title_fullStr |
Dynamic Aerothermal Analysis of a Cone-Cylinder Flight Body |
title_full_unstemmed |
Dynamic Aerothermal Analysis of a Cone-Cylinder Flight Body |
title_sort |
dynamic aerothermal analysis of a cone-cylinder flight body |
publisher |
Hindawi Limited |
series |
International Journal of Aerospace Engineering |
issn |
1687-5966 1687-5974 |
publishDate |
2020-01-01 |
description |
Exploring the aerothermal characteristic of a flight body has great military applications in tracking, locating, thermal protection, and infrared stealth technologies. Available studies are mostly focused on the transient aerothermal characteristics of vehicles in some specific flight datum, which are not able to satisfy the requirements in real-time tracking for an infrared system. This paper probes into a method of dynamic thermal analysis of a cone-cylinder flight body with a high spinning speed. Firstly, a theoretical model for analyzing the dynamic aerothermal characteristics is established using the thermal node-network method. Then, trajectory datum and the convective heat-transfer coefficients are solved simultaneously. Besides, the trajectory datum in supersonic, transonic, and subsonic regimes is separately defined as the boundary conditions, and fluid-thermal analysis methods are implemented by a combination of sliding mesh and multicoordinate approaches. Finally, the flow characteristics are analyzed and compared with disregarding the rotational speed. The results demonstrate that there are significant differences between the two cases, especially at the high-speed regimes. This study further confirms that it is essential to conduct the aerothermal analysis from a dynamic point of view, and taking the impacts of coupling motion into account is also of vital importance. |
url |
http://dx.doi.org/10.1155/2020/2813856 |
work_keys_str_mv |
AT junzhang dynamicaerothermalanalysisofaconecylinderflightbody AT guangchenjia dynamicaerothermalanalysisofaconecylinderflightbody AT sibandagibsonmkumbuzi dynamicaerothermalanalysisofaconecylinderflightbody AT yuwu dynamicaerothermalanalysisofaconecylinderflightbody |
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