TY - JOUR
T1 - Finite element simulation of fluid dynamics and CO 2 gas exchange in the alveolar sacs of the human lung
AU - Caucha, Luis J.
AU - Frei, Stefan
AU - Rubio, Obidio
N1 - Publisher Copyright:
© 2018, SBMAC - Sociedade Brasileira de Matemática Aplicada e Computacional.
PY - 2018/11/1
Y1 - 2018/11/1
N2 - In this article, we present a numerical framework based on continuum models for the fluid dynamics and the CO2 gas distribution in the alveolar sacs of the human lung during expiration and inspiration, including the gas exchange to the cardiovascular system. We include the expansion and contraction of the geometry by means of the Arbitrary Lagrangian–Eulerian (ALE) method. For discretisation, we use equal-order finite elements in combination with pressure-stabilisation techniques based on local projections or interior penalties. We derive formulations for both techniques that are suitable on arbitrarily anisotropic meshes. These formulations are novel within the ALE method. Moreover, we investigate the effect of different boundary conditions, that vary between inspiration and expiration. We present numerical results on a simplified two-dimensional alveolar sac geometry and investigate the influence of the pressure stabilisations as well as the boundary conditions.
AB - In this article, we present a numerical framework based on continuum models for the fluid dynamics and the CO2 gas distribution in the alveolar sacs of the human lung during expiration and inspiration, including the gas exchange to the cardiovascular system. We include the expansion and contraction of the geometry by means of the Arbitrary Lagrangian–Eulerian (ALE) method. For discretisation, we use equal-order finite elements in combination with pressure-stabilisation techniques based on local projections or interior penalties. We derive formulations for both techniques that are suitable on arbitrarily anisotropic meshes. These formulations are novel within the ALE method. Moreover, we investigate the effect of different boundary conditions, that vary between inspiration and expiration. We present numerical results on a simplified two-dimensional alveolar sac geometry and investigate the influence of the pressure stabilisations as well as the boundary conditions.
KW - Alveolar gas dynamics
KW - Anisotropic pressure stabilisation
KW - Arbitrary Lagrangian–Eulerian (ALE) method
KW - Artificial boundary conditions
KW - Interior penalty stabilisation
KW - Local projection stabilisation
UR - http://www.scopus.com/inward/record.url?scp=85058165129&partnerID=8YFLogxK
U2 - 10.1007/s40314-018-0692-5
DO - 10.1007/s40314-018-0692-5
M3 - Artículo
AN - SCOPUS:85058165129
SN - 2238-3603
VL - 37
SP - 6410
EP - 6432
JO - Computational and Applied Mathematics
JF - Computational and Applied Mathematics
IS - 5
ER -