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Application Of Computational Fluid Dynamics In Modelling Blood Flow In Human Thoracic Aorta Paritosh Vasava

  • SKU: BELL-37315374
Application Of Computational Fluid Dynamics In Modelling Blood Flow In Human Thoracic Aorta Paritosh Vasava
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Application Of Computational Fluid Dynamics In Modelling Blood Flow In Human Thoracic Aorta Paritosh Vasava instant download after payment.

Publisher: Lappeenranta University of Technology
File Extension: PDF
File size: 16.37 MB
Pages: 122
Author: Paritosh Vasava
ISBN: 9789522651969, 9789522651976, 9522651966, 9522651974
Language: English
Year: 2011

Product desciption

Application Of Computational Fluid Dynamics In Modelling Blood Flow In Human Thoracic Aorta Paritosh Vasava by Paritosh Vasava 9789522651969, 9789522651976, 9522651966, 9522651974 instant download after payment.

The aim of this study was to simulate blood flow in thoracic human aorta and understand the role of flow dynamics in the initialization and localization of atherosclerotic plaque in human thoracic aorta. The blood flow dynamics in idealized and realistic models of human thoracic aorta were numerically simulated in three idealized and two realistic thoracic aorta models. The idealized models of thoracic aorta were reconstructed with measurements available from literature,and the realistic models of thoracic aorta were constructed by image processing Computed Tomographic (CT) images. The CT images were made available by South Karelia Central Hospital in Lappeenranta. The reconstruction of thoracic aorta consisted of operations, such as contrast adjustment, image segmentations,and 3D surface rendering. Additional design operations were performed to make the aorta model compatible for the numerical method based computer code. The image processing and design operations were performed with specialized medical image processing software. Pulsatile pressure and velocity boundary conditions were deployed as inlet boundary conditions. The blood flow was assumed homogeneous and incompressible. The blood was assumed to be a Newtonian fluid. The simulations with idealized models of thoracic aorta were carried out with Finite Element Method based computer code, while the simulations with realistic models of thoracic aorta were carried out with Finite Volume Method based computer code. Simulations were carried out for four cardiac cycles. The distribution of flow, pressure and Wall Shear Stress (WSS) observed during the fourth cardiac cycle were extensively analyzed.

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