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Gerhard Sommer

Mechanical Properties of Healthy and Diseased Human Arteries

Insights into Human Arterial Biomechanics and Related Material Modeling

Gerhard Sommer
Mechanical Properties of Healthy and Diseased Human Arteries

Insights into Human Arterial Biomechanics and Related Material Modeling

ISBN: 978-3-85125-111-1
Scope: 258 pages
Language: Englisch
Release date: December 2010
Series: Monographic Series TU Graz / Computation in Engineering and Science, Issue Vol. 7

€ 26.00

Cardiovascular diseases (CVDs), often related to atherosclerosis, are responsible for the leading cause of death in the developed countries. The social and economical burden of CVDs remains very high. It is widely agreed that the mechanical environment and properties of arteries play an important role in the origin and progression of CVDs.

This work focuses on the determination of the mechanical properties of healthy and diseased human arteries, their respective layers and tissue components. Different types of testing methods have been applied (uniaxial, extension-inflation, peeling). The obtained experimental data give valuable implications for vascular physiology, surgery and clinical applications. Moreover, the data are fitted to novel constitutive models appropriately describing the mechanical features of soft biological tissues, which serves as basis for finite element implementations.

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also available as e-book

Sorry, this entry is only available in Deutsch.

Cardiovascular diseases (CVDs), often related to atherosclerosis, are responsible for the leading cause of death in the developed countries. The social and economical burden of CVDs remains very high. It is widely agreed that the mechanical environment and properties of arteries play an important role in the origin and progression of CVDs.

This work focuses on the determination of the mechanical properties of healthy and diseased human arteries, their respective layers and tissue components. Different types of testing methods have been applied (uniaxial, extension-inflation, peeling). The obtained experimental data give valuable implications for vascular physiology, surgery and clinical applications. Moreover, the data are fitted to novel constitutive models appropriately describing the mechanical features of soft biological tissues, which serves as basis for finite element implementations.

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