Por favor, use este identificador para citar o enlazar este ítem:
https://hdl.handle.net/20.500.12008/38195
Cómo citar
Título: | An immersed boundary method to conjugate heat transfer problems in complex geometries. Application to an automotive antenna. |
Autor: | Favre, F. Antepara, O. Oliet, C. Lehmkuhl, O. Perez-Segarra, C.D. |
Tipo: | Preprint |
Palabras clave: | Conjugate heat transfer, Cooling electronics, Computational fluid dynamics, Inmmersed boundary method, Automotive antenna |
Fecha de publicación: | 2019 |
Resumen: | Considering that the most common reason for electronic component failure is the excessive temperature
level, an efficient thermal management design can prolong the operating life of the equipment, while also
increasing its performance. Computational Fluid Dynamics and Heat Transfer (CFD&HT) have proved
valuable in the study of these problems, since they can produce reliable fields of fluid flow, temperature and
heat fluxes. Moreover, thanks to the recent advances in high-performance computers, CFD&HT numerical
simulations are becoming viable tools to study real problems. The conventional approach, which consists
of employing body-conformal meshes to the solids and fluids regions, often results costly and ineffective in
applications with very complex geometries and large deformation. For these cases, an alternative approach,
the Immersed Boundary Method (IBM), which employs a non-body conformal mesh and discretizes the entire
domain using a special treatment in the vicinity of the solid-fluid interfaces, has proven more effective. In this
work, an IBM was extended to simulate problems with conjugate heat transfer (CHT) boundary conditions
taking into account the radiative exchange between surfaces. It was designed to work with any type of mesh
(domain discretization) and to handle any body geometry. The implementation was validated and verified by
several simulations of benchmark cases. Moreover, the IBM was applied in an industrial application which
consists of the simulation of a Smart Antenna Module (SAM). All in all, the carried out studies resulted in
a monolithic methodology for the simulation of realistic situations, where all three heat transfer mechanisms
can be considered in complex geometries. |
Descripción: | Publicado en Applied Thermal Engineering, v. 148, no. 5, February, 2019, p. 907-928. |
Citación: | Favre, F., Antepara, O., Oliet, C. y otros. An immersed boundary method to conjugate heat transfer problems in complex geometries. [Preprint] Publicado en: Applied Thermal Engineering, volume 148, number 5, Feb., 2019, p. 907-928. DOI:10.1016/j.applthermaleng.2018.11.099 |
Aparece en las colecciones: | Publicaciones académicas y científicas - Instituto de Ingeniería Mecánica y Producción Industrial |
Ficheros en este ítem:
Fichero | Descripción | Tamaño | Formato | ||
---|---|---|---|---|---|
FAOLP19.pdf | Preprint | 6,14 MB | Adobe PDF | Visualizar/Abrir |
Este ítem está sujeto a una licencia Creative Commons Licencia Creative Commons