Literature DB >> 24610385

Numerical simulation of blood flow and pressure drop in the pulmonary arterial and venous circulation.

M Umar Qureshi1, Gareth D A Vaughan, Christopher Sainsbury, Martin Johnson, Charles S Peskin, Mette S Olufsen, N A Hill.   

Abstract

A novel multiscale mathematical and computational model of the pulmonary circulation is presented and used to analyse both arterial and venous pressure and flow. This work is a major advance over previous studies by Olufsen et al. (Ann Biomed Eng 28:1281-1299, 2012) which only considered the arterial circulation. For the first three generations of vessels within the pulmonary circulation, geometry is specified from patient-specific measurements obtained using magnetic resonance imaging (MRI). Blood flow and pressure in the larger arteries and veins are predicted using a nonlinear, cross-sectional-area-averaged system of equations for a Newtonian fluid in an elastic tube. Inflow into the main pulmonary artery is obtained from MRI measurements, while pressure entering the left atrium from the main pulmonary vein is kept constant at the normal mean value of 2 mmHg. Each terminal vessel in the network of 'large' arteries is connected to its corresponding terminal vein via a network of vessels representing the vascular bed of smaller arteries and veins. We develop and implement an algorithm to calculate the admittance of each vascular bed, using bifurcating structured trees and recursion. The structured-tree models take into account the geometry and material properties of the 'smaller' arteries and veins of radii ≥ 50 μm. We study the effects on flow and pressure associated with three classes of pulmonary hypertension expressed via stiffening of larger and smaller vessels, and vascular rarefaction. The results of simulating these pathological conditions are in agreement with clinical observations, showing that the model has potential for assisting with diagnosis and treatment for circulatory diseases within the lung.

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Mesh:

Year:  2014        PMID: 24610385      PMCID: PMC4183203          DOI: 10.1007/s10237-014-0563-y

Source DB:  PubMed          Journal:  Biomech Model Mechanobiol        ISSN: 1617-7940


  53 in total

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9.  Multi-Scale Computational Model of Three-Dimensional Hemodynamics within a Deformable Full-Body Arterial Network.

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Journal:  Ann Rheum Dis       Date:  2003-11       Impact factor: 19.103

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  26 in total

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4.  Influence of image segmentation on one-dimensional fluid dynamics predictions in the mouse pulmonary arteries.

Authors:  Mitchel J Colebank; L Mihaela Paun; M Umar Qureshi; Naomi Chesler; Dirk Husmeier; Mette S Olufsen; Laura Ellwein Fix
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5.  Image-based scaling laws for somatic growth and pulmonary artery morphometry from infancy to adulthood.

Authors:  Melody Dong; Weiguang Yang; John S Tamaresis; Frandics P Chan; Evan J Zucker; Sahana Kumar; Marlene Rabinovitch; Alison L Marsden; Jeffrey A Feinstein
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6.  A computational study of pressure wave reflections in the pulmonary arteries.

Authors:  M Umar Qureshi; N A Hill
Journal:  J Math Biol       Date:  2015-03-10       Impact factor: 2.259

7.  Heterogeneous mechanics of the mouse pulmonary arterial network.

Authors:  Pilhwa Lee; Brian E Carlson; Naomi Chesler; Mette S Olufsen; M Umar Qureshi; Nicolas P Smith; Taha Sochi; Daniel A Beard
Journal:  Biomech Model Mechanobiol       Date:  2016-01-20

8.  Analysis of Contact Stability and Contact Safety of a Robotic Intravascular Cardiac Catheter under Blood Flow Disturbances.

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Journal:  Rep U S       Date:  2021-02-10

9.  Fluid-structure interaction in a fully coupled three-dimensional mitral-atrium-pulmonary model.

Authors:  Liuyang Feng; Hao Gao; Nan Qi; Mark Danton; Nicholas A Hill; Xiaoyu Luo
Journal:  Biomech Model Mechanobiol       Date:  2021-03-26

10.  Plasticity and Enzymatic Degradation Coupled With Volumetric Growth in Pulmonary Hypertension Progression.

Authors:  Eun-Ho Lee; Seungik Baek
Journal:  J Biomech Eng       Date:  2021-11-01       Impact factor: 2.097

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