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Development of a digital adaptive control system for PO2 regulation in a membrane oxygenator

Authors :
A.R. Razieh
J.D.S. Gaylor
John F. Allen
A.C. Fisher
Source :
Journal of Biomedical Engineering. 14:404-411
Publication Year :
1992
Publisher :
Elsevier BV, 1992.

Abstract

Regulation of gas exchange in artificial lungs (oxygenators) during cardiopulmonary bypass is normally achieved by manual control of the gas composition and flow in response to intermittent sampling of the arterial partial pressures of oxygen ( P a O 2 ) and carbon dioxide ( P a CO 2 ). Manual control often results in abnormal blood gases which have been implicated in patient morbidity as well as influencing perfusion safety. Fine control of P a O 2 and P a CO 2 may be achieved by a combination of an in-line blood gas monitoring system and a membrane type oxygenator which is automatically regulated. The overall dynamics of the oxygenation process and control system components are complex and have nonlinear, multivariable and time-varying characteristics. Consequently, an adaptive control system approach is necessary. The implementation of a digital self-tuning control regime for P a O 2 is described here. The controller is based on an explicit Linear Quadratic Gaussian (LQG) self-tuning control design which is presented using a polynomial equation approach. The controller performance was investigated in in vitro experiments. The self-tuner performed satisfactority with various sensor/oxygenator combinations for blood flow and temperature load disturbances. In contrast, a nonadaptive (proportional-integral, PI) type of control system was found to be unsuitable.

Details

ISSN :
01415425
Volume :
14
Database :
OpenAIRE
Journal :
Journal of Biomedical Engineering
Accession number :
edsair.doi.dedup.....ddb5c8210344592226dd1daddaed1e2b
Full Text :
https://doi.org/10.1016/0141-5425(92)90086-z