Please use this identifier to cite or link to this item: https://www.um.edu.mt/library/oar/handle/123456789/18942
Title: Placement of trans-sternal wires according to an ellipsoid pressure vessel model of sternal forces
Authors: Casha, Aaron
Gauci, Marilyn
Camilleri-Podesta, Marie Therese
Schembri-Wismayer, Pierre
Sant, Zdenka
Gatt, Ruben
Grima, Joseph N.
Manche, Alexander
Keywords: Biomechanics
Sternum
Biological models
Pressure vessels
Issue Date: 2012-03
Publisher: Oxford University Press
Citation: Casha, A., Gauci, M., Camilleri-Podesta, M. T., Schembri Wismayer, P., Sant, Z., Gatt, R., ... Manche, A. (2012). Placement of trans-sternal wires according to an ellipsoid pressure vessel model of sternal forces. Interactive CardioVascular and Thoracic Surgery, 14(3), 283-287.
Abstract: Dehiscence of median sternotomy wounds remains a clinical problem. Wall forces in thin-walled pressure vessels can be calculated by membrane stress theory. An ellipsoid pressure vessel model of sternal forces is presented together with its application for optimal wire placement in the sternum. Sternal forces were calculated by computational simulation using an ellipsoid chest wall model. Sternal forces were correlated with different sternal thicknesses and radio-density as measured by computerized tomography (CT) scans of the sternum. A comparison of alternative placement of trans-sternal wires located either at the levels of the costal cartilages or the intercostal spaces was made. The ellipsoid pressure vessel model shows that higher levels of stress are operative at increasing chest diameter (P < 0.001). CT scans show that the thickness of the sternal body is on average 3 mm and 30% thicker (P < 0.001) and 53% more radio-dense (P < 0.001) at the costal cartilage levels when compared with adjacent intercostal spaces. This results in a decrease of average sternal stress from 438 kPa at the intercostal space level to 338 kPa at the costal cartilage level (P = 0.003). Biomechanical modelling suggests that placement of trans-sternal wires at the thicker bone and more radio-dense level of the costal cartilages will result in reduced stress.
Description: Funding from the University of Malta Medical School (Grant IMF/014/11) and University of Malta Research Fund (Grant 31/389/10) is gratefully acknowledged.
URI: https://www.um.edu.mt/library/oar//handle/123456789/18942
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Scholarly Works - FacSciMet

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