DocumentCode :
1483847
Title :
Model-Based Assessment of Tissue Perfusion and Temperature in Deep Hypothermic Patients
Author :
Schwarz, Michael ; Krueger, Martin W. ; Busch, Hans-Jorg ; Benk, Christoph ; Heilmann, Claudia
Author_Institution :
ITK Eng. AG, Herxheim, Germany
Volume :
57
Issue :
7
fYear :
2010
fDate :
7/1/2010 12:00:00 AM
Firstpage :
1577
Lastpage :
1586
Abstract :
Deep hypothermic circulatory arrest is necessary for some types of cardiac and aortic surgery. Perfusion of the brain can be maintained using a heart-lung machine and unilateral antegrade cerebral perfusion. Cooling rates during extracorporeal circulation depend on local perfusion. A core temperature of 24 °C-25 °C is aimed at to extend ischemic tolerance of tissues. Information on cerebral perfusion and temperature is important for the safety of patients, but hardly accessible to measurement. A combined simulation model of hemodynamics and temperature is presented in this paper. The hemodynamics model employs the transmission-line approach and integrates the Circle of Willis (CoW). This allows for parameterization of individual aberrations. Simulation results of cerebral perfusion are shown for two configurations of the CoW. The temperature model provides spatial information on temperature fields. It considers heat transfer in the various tissues retrieving data of local tissue perfusion from the hemodynamics model. The combined model is evaluated by retrospective simulation of two aortic operations.
Keywords :
blood vessels; brain; haemodynamics; haemorheology; heat transfer; hyperthermia; transmission lines; Circle of Willis; aberrations; aortic surgery; cardiac surgery; cerebral perfusion; deep hypothermia; heat transfer; hemodynamics; local tissue perfusion; parameterization; simulation model; temperature model; transmission-line approach; Biological system modeling; biomedical monitoring; blood flow; cardiovascular surgery; temperature; Aorta, Thoracic; Arteries; Body Temperature; Cardiac Surgical Procedures; Circle of Willis; Circulatory Arrest, Deep Hypothermia Induced; Computer Simulation; Hemodynamics; Humans; Models, Cardiovascular; Organ Specificity; Perfusion; Skin;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2010.2048324
Filename :
5458074
Link To Document :
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