The feasibility of developing micro channel artificial lungs is calculated for eight possible strategies: 12 and 25 &mgr;m circular channels imbedded in gas-permeable sheets, 12 and 25 &mgr;m high open rectangular channels with gas-permeable walls, 12 and 25 &mgr;m high broad open channels with support posts and gas-permeable walls, and two 40 &mgr;m high screen-filled rectangular channels with gas-permeable walls. Each strategy is considered by imposing a pressure drop maximum of 10 mm Hg and limiting the possibility of shear-induced blood trauma. The pressure drop limit determines the acceptable channel length and required size to oxygenate 4 L/min of venous blood. Circular channels imbedded in open-pore, gas-permeable materials are especially attractive. With 12 &mgr;m channels, such a device would require 140 million, 0.8 mm long channels, but the total size of the gas-exchange section would be only 57 ml and a blood prime of only 13 ml. Also attractive are 12 &mgr;m high broad open channels with support posts and 40 &mgr;m screen-filled rectangular channels. The total size of the former would be 250 ml with a blood prime of 13 ml, and the total size of the latter would be 270 ml with a blood prime of 27 ml.
[1]
Y C Fung,et al.
Theory of sheet flow in lung alveoli.
,
1969,
Journal of applied physiology.
[2]
H H. Kung,et al.
Microchannel Technologies for Artificial Lungs: (3) Open Rectangular Channels
,
2008,
ASAIO journal.
[3]
P. Gaehtgens,et al.
Flow of blood through narrow capillaries: rheological mechanisms determining capillary hematocrit and apparent viscosity.
,
1980,
Biorheology.
[4]
Norio Ohshima,et al.
Simulation of intraluminal gas transport processes in the microcirculation
,
1995,
Annals of Biomedical Engineering.
[5]
J S Lee,et al.
Slow viscous flow in a lung alveoli model.
,
1969,
Journal of biomechanics.
[6]
H H. Kung,et al.
Microchannel Technologies for Artificial Lungs: (2) Screen-filled Wide Rectangular Channels
,
2008,
ASAIO journal.
[7]
J. D. Hellums,et al.
Oxygen Transport in 10μM Artificial Capillaries
,
1999
.
[8]
J. D. Hellums,et al.
Experimental Simulation of Oxygen Transport in Microvessels
,
1996
.