TY - JOUR
T1 - Mathematical modelling of fibre-enhanced perfusion inside a tissue-engineering bioreactor
AU - Whittaker, R
AU - Booth, R
AU - Dyson, Rosemary
AU - Bailey, C
AU - Parsonschini, L
AU - Naire, S
AU - Payvandi, S
AU - Rong, Z
AU - Woollard, H
AU - Cummings, L
PY - 2009/2/21
Y1 - 2009/2/21
N2 - We develop a simple mathematical model for forced flow of culture medium through a porous scaffold in a tissue-engineering bioreactor. Porous-walled hollow fibres penetrate the scaffold and act as additional sources of culture medium. The model, based on Darcy's law, is used to examine the nutrient and shear-stress distributions throughout the scaffold. We consider several configurations of fibres and inlet and outlet pipes. Compared with a numerical solution of the full Navier-Stokes equations within the complex scaffold geometry, the modelling approach is cheap, and does not require knowledge of the detailed microstructure of the particular scaffold being used. The potential of this approach is demonstrated through quantification of the effect the additional flow from the fibres has on the nutrient and shear-stress distribution.
AB - We develop a simple mathematical model for forced flow of culture medium through a porous scaffold in a tissue-engineering bioreactor. Porous-walled hollow fibres penetrate the scaffold and act as additional sources of culture medium. The model, based on Darcy's law, is used to examine the nutrient and shear-stress distributions throughout the scaffold. We consider several configurations of fibres and inlet and outlet pipes. Compared with a numerical solution of the full Navier-Stokes equations within the complex scaffold geometry, the modelling approach is cheap, and does not require knowledge of the detailed microstructure of the particular scaffold being used. The potential of this approach is demonstrated through quantification of the effect the additional flow from the fibres has on the nutrient and shear-stress distribution.
U2 - 10.1016/j.jtbi.2008.10.013
DO - 10.1016/j.jtbi.2008.10.013
M3 - Article
C2 - 19014952
SN - 0022-5193
VL - 256
SP - 533
EP - 546
JO - Journal of Theoretical Biology
JF - Journal of Theoretical Biology
IS - 4
ER -