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dc.contributor.authorJavadzadegan, Ashkan
dc.date.accessioned2014-09-02
dc.date.available2014-09-02
dc.date.issued2014-03-31
dc.identifier.urihttp://hdl.handle.net/2123/11735
dc.description.abstractThis thesis aimed to use three-dimensional quantitative coronary angiography (3D-QCA), computational fluid dynamics (CFD), fluid-structure interaction (FSI) and particle image velocimetry (PIV) techniques in idealised and realistic coronary artery models based on data from patients in order to investigate the relation between haemodynamic forces and lesion morphology. The first aim was to assess the effect of lesion severity and eccentricity on important haemodynamic factors including flow recirculation and shear stress using CFD and PIV. The results showed that the extent of flow recirculation is much more sensitive to mild changes in the severity of intermediate stenoses than is peak shear. The second aim was to find the correlation between fractional flow reserve (FFR), a gold standard to measure the functional significance of coronary stenoses, lesion eccentricity and vessel distensibility using 3D-QCA and FSI methods. The results demonstrated that the coronary arteries with similar lesion morphology but different vessel distensibility are likely to experience different FFR. The third aim was to explore the impact of degree of freedom of coronary arteries on important haemodynamic factors. The results showed that modelling of coronary arteries as rigid vessels could result in treating a non-significant lesion as significant because the rigidity assumption overestimates the amount of flow abnormalities in coronary arteries. Overall, the greater the degree of freedom of movement, the lower the maximum wall shear stress (WSS) and the smaller the area of low WSS. Last but not least, the effect of spiral flow on haemodynamic parameters in an elastic model of abdominal aortic aneurysm (AAA) was investigated. The results demonstrated that neglecting the spiral effects of flow in the modelling of AAAs can result in overestimation of wall stress and the artery wall expansion rate.en_AU
dc.rightsThe author retains copyright of this thesis. It may only be used for the purposes of research and study. It must not be used for any other purposes and may not be transmitted or shared with others without prior permission.en_AU
dc.subjectCoronary arteryen_AU
dc.subject3D-QCAen_AU
dc.subjectCFDen_AU
dc.subjectFSIen_AU
dc.subjectPIVen_AU
dc.subjectHaemodynamicsen_AU
dc.titleComputational fluid dynamics modelling of atherosclerotic coronary arteries and abdominal aortic aneurysmsen_AU
dc.typeThesisen_AU
dc.date.valid2014-01-01en_AU
dc.type.thesisDoctor of Philosophyen_AU
usyd.facultyFaculty of Engineering and Information Technologies, School of Aerospace, Mechanical and Mechatronic Engineeringen_AU
usyd.degreeDoctor of Philosophy Ph.D.en_AU
usyd.awardinginstThe University of Sydneyen_AU


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