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New mixed finite element methods for natural convection with phase-change in porous media

Abstract:
This article is concerned with the mathematical and numerical analysis of a steady phase change problem for non-isothermal incompressible viscous flow. The system is formulated in terms of pseudostress, strain rate and velocity for the Navier–Stokes–Brinkman equation, whereas temperature, normal heat flux on the boundary, and an auxiliary unknown are introduced for the energy conservation equation. In addition, and as one of the novelties of our approach, the symmetry of the pseudostress is imposed in an ultra-weak sense, thanks to which the usual introduction of the vorticity as an additional unknown is no longer needed. Then, for the mathematical analysis two variational formulations are proposed, namely mixed-primal and fully-mixed approaches, and the solvability of the resulting coupled formulations is established by combining fixed-point arguments, Sobolev embedding theorems and certain regularity assumptions. We then construct corresponding Galerkin discretizations based on adequate finite element spaces, and derive optimal a priori error estimates. Finally, numerical experiments in 2D and 3D illustrate the interest of this scheme and validate the theory.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1007/s10915-019-00931-4

Authors

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Institution:
University of Oxford
Department:
Mathematical Institure
Role:
Author
More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Mathematical Institute
Role:
Author


Publisher:
Springer
Journal:
Journal of Scientific Computing More from this journal
Volume:
80
Issue:
1
Pages:
141-174
Publication date:
2019-03-06
Acceptance date:
2019-02-20
DOI:
EISSN:
1573-7691
ISSN:
0885-7474


Language:
English
Keywords:
Pubs id:
pubs:985164
UUID:
uuid:a37f0d0d-e94e-46d8-b97a-ce6115113c32
Local pid:
pubs:985164
Source identifiers:
985164
Deposit date:
2019-04-01
ARK identifier:

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