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Titlebook: Cardiovascular Fluid Mechanics; Gianni Pedrizzetti,Karl Perktold Book 2003 Springer-Verlag Wien 2003 Bio-engineering.Cardiovascular scienc

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CISM International Centre for Mechanical Scienceshttp://image.papertrans.cn/c/image/221941.jpg
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Arterial and Venous Fluid Dynamics,The majority of these lecture notes are taken from the author’s chapter “Blood flow in arteries and veins”, in the book “Perspectives in Fluid Mechanics” edited by G K Batchelor, H K Moffatt and M G Worster, published by Cambridge University Press, 2000. Other parts come from his own book, Pedley (1980).
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978-3-211-00538-5Springer-Verlag Wien 2003
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C. Marcolli,S. Gedamke,B. Zobristrical mathematics, scientific computation and due to the increased power of computers. Over the past years increasingly more elaborate models have been developed in order to gain a better insight into the physiological processes in the vascular system and the initiation and development of arterial d
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https://doi.org/10.1007/978-3-030-51874-5s that are widely used for the modeling of flow through arteries of large or small size. In the case of flow through large size arteries two numerical methods are presented extensively based on a pressure-correction type methodology and a pseudocompressibility methodology for the solution of steady
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https://doi.org/10.1007/978-3-030-51874-5ed in a perspective of application to fluid-tissue interaction problems. The formulation of a coupled fluid tissue problem is discussed. A linearized technique is then introduced as a model for wall elasticity in artery flow. This simplification transforms the coupled fluid-wall system into a cascad
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23-116 - 23-221: C6H4Cl2N2O2S - C6H5Cl3Sn,ulse generator that rapidly accelerates blood to a high peak outflow velocity early in its ejection period. The driving force for the flow of blood is the total energy imparted to it that corresponds to the mechanical, external work performed by the ventricle. The shape and structure of the ventricl
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