Journal article icon

Journal article

The impact of imperfect heat transfer on the convective instability of a thermal boundary layer in a porous media

Abstract:
We consider convective instability in a deep porous medium cooled from above with a linearised thermal exchange at the upper surface, thus determining the impact of using a Robin boundary condition, in contrast to previous previous studies using a Dirichlet boundary condition. With the linearised surface exchange, the thermal flux out of the porous layer depends linearly on the temperature difference between the effective temperature of a heat sink at the upper boundary and the temperature at the surface of the porous layer. The rate of this exchange is characterised by a dimensionless Biot number, Bi, determined by the effective thermal conductivity of exchange with the heat sink relative to the physical thermal conductivity of the porous layer. For a given temperature difference between the heat sink at the upper boundary and deep in the porous medium, we find that imperfectly cooled layers with finite Biot numbers are more stable to convective instabilities than perfectly cooled layers which have large, effectively infinite Biot numbers. Two regimes of behaviour were determined with contrasting stability behaviour and characteristic scales. When the Biot number is large the near-perfect heat transfer produces small corrections of order 1/Bi to the perfectly conducting behaviour found when the Biot number is infinite. In the insulating limit as the Biot number approaches zero, a different behaviour was found with significantly larger scales for the critical wavelength and depth of convection both scaling proportional to 1/ √ Bi
Publication status:
Published
Peer review status:
Peer reviewed

Actions


Access Document


Files:
Publisher copy:
10.1017/jfm.2016.149

Authors


More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Physics
Sub department:
Atmos Ocean & Planet Physics
Role:
Author
More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Physics
Sub department:
Atmos Ocean & Planet Physics
Role:
Author


More from this funder
Funding agency for:
Wells, A
Grant:
FP7 award PCIG13-GA-2013-618610 SEAICE-CFD
More from this funder
Funding agency for:
Hitchen, J
Grant:
NE/L501530/1
NE/I528493/1


Publisher:
Cambridge University Press
Journal:
Journal of Fluid Mechanics More from this journal
Publication date:
2016-03-30
Acceptance date:
2016-02-07
DOI:
EISSN:
1469-7645
ISSN:
0022-1120


Pubs id:
pubs:605753
UUID:
uuid:8cab5d6b-d392-4b1d-a3b3-3e5a1e13e3b9
Local pid:
pubs:605753
Source identifiers:
605753
Deposit date:
2016-02-23

Terms of use



Views and Downloads






If you are the owner of this record, you can report an update to it here: Report update to this record

TO TOP