Back to Search
Start Over
How Computational Modeling can Help to Predict Gas Transfer in Artificial Lungs Early in the Design Process
- Source :
- ASAIO Journal, 66(6), 683-690. Lippincot, Williams & Wilkins
- Publication Year :
- 2019
- Publisher :
- Ovid Technologies (Wolters Kluwer Health), 2019.
-
Abstract
- Wearable extracorporeal membrane oxygenation (ECMO) circuits may soon become a viable alternative to conventional ECMO treatment. Common device-induced complications, however, such as blood trauma and oxygenator thrombosis, must first be addressed to improve long-term reliability, since ambulatory patients cannot be monitored as closely as intensive care patients. Additionally, an efficient use of the membrane surface can reduce the size of the devices, priming volume, and weight to achieve portability. Both challenges are linked to the hemodynamics in the fiber bundle. While experimental test methods can often only provide global and time-averaged information, computational fluid dynamics (CFD) can give insight into local flow dynamics and gas transfer before building the first laboratory prototype. In this study, we applied our previously introduced micro-scale CFD model to the full fiber bundle of a small oxygenator for gas transfer prediction. Three randomized geometries as well as a staggered and in-line configuration were modeled and simulated with Ansys CFX. Three small laboratory oxygenator prototypes were built by stacking fiber segments unidirectionally with spacers between consecutive segments. The devices were tested in vitro for gas transfer with porcine blood in accordance with ISO 7199. The error of the predicted averaged CFD oxygen saturations of the random 1, 2, and 3 configurations relative to the averaged in-vitro data (over all samples and devices) was 2.4%, 4.6%, 3.1%, and 3.0% for blood flow rates of 100, 200, 300, and 400 ml/min, respectively. While our micro-scale CFD model was successfully applied to a small oxygenator with unidirectional fibers, the application to clinically relevant oxygenators will remain challenging due to the complex flow distribution in the fiber bundle and high computational costs. However, we will outline our future research priorities and discuss how an extended mass transfer correlation model implemented into CFD might enable an a priori prediction of gas transfer in full size oxygenators.
- Subjects :
- gas transfer prediction
Oxygenators
Swine
Computer science
Flow (psychology)
Biomedical Engineering
Biophysics
Bioengineering
030204 cardiovascular system & hematology
Computational fluid dynamics
Artificial lung
Biomaterials
03 medical and health sciences
Extracorporeal Membrane Oxygenation
0302 clinical medicine
Intensive care
Mass transfer
micro-scale CFD model
Animals
Humans
Computer Simulation
Oxygenator
artificial lung
Simulation
Oxygenators, Membrane
gas transfer modeling
business.industry
Hemodynamics
22/2 OA procedure
Equipment Design
General Medicine
oxygenator
030228 respiratory system
Volume (thermodynamics)
Hydrodynamics
business
Subjects
Details
- ISSN :
- 10582916
- Volume :
- 66
- Database :
- OpenAIRE
- Journal :
- ASAIO Journal
- Accession number :
- edsair.doi.dedup.....c584fc50a34db1ee286dcd6083f81233
- Full Text :
- https://doi.org/10.1097/mat.0000000000001098