Literature DB >> 30822150

Numerical simulation of two-phase non-Newtonian blood flow with fluid-structure interaction in aortic dissection.

Yonghui Qiao1, Yujie Zeng1, Ying Ding2, Jianren Fan1, Kun Luo1, Ting Zhu3.   

Abstract

The behavior of blood cells and vessel compliance significantly influence hemodynamic parameters, which are closely related to the development of aortic dissection. Here the two-phase non-Newtonian model and the fluid-structure interaction (FSI) method are coupled to simulate blood flow in a patient-specific dissected aorta. Moreover, three-element Windkessel model is applied to reproduce physiological pressure waves. Important hemodynamic indicators, such as the spatial distribution of red blood cells (RBCs) and vessel wall displacement, which greatly influence the hemodynamic characteristics are analyzed. Results show that the proximal false lumen near the entry tear appears to be a vortex zone with a relatively lower volume fraction of RBCs, a low time-averaged wall shear stress (TAWSS) and a high oscillatory shear index (OSI), providing a suitable physical environment for the formation of atherosclerosis. The highest TAWSS is located in the narrow area of the distal true lumen which might cause further dilation. TAWSS distributions in the FSI model and the rigid wall model show similar trend, while there is a significant difference for the OSI distributions. We suggest that an integrated model is essential to simulate blood flow in a more realistic physiological environment with the ultimate aim of guiding clinical treatment.

Entities:  

Keywords:  Aortic dissection; Windkessel model; computational fluid dynamics; fluid-structure interaction; two-phase blood flow

Mesh:

Year:  2019        PMID: 30822150     DOI: 10.1080/10255842.2019.1577398

Source DB:  PubMed          Journal:  Comput Methods Biomech Biomed Engin        ISSN: 1025-5842            Impact factor:   1.763


  5 in total

1.  Fluid-Structure Interaction Simulations of Repaired Type A Aortic Dissection: a Comprehensive Comparison With Rigid Wall Models.

Authors:  Yu Zhu; Saeed Mirsadraee; Ulrich Rosendahl; John Pepper; Xiao Yun Xu
Journal:  Front Physiol       Date:  2022-06-14       Impact factor: 4.755

2.  The influence of inlet velocity profile on predicted flow in type B aortic dissection.

Authors:  Chlöe Harriet Armour; Baolei Guo; Selene Pirola; Simone Saitta; Yifan Liu; Zhihui Dong; Xiao Yun Xu
Journal:  Biomech Model Mechanobiol       Date:  2020-10-17

3.  An integrated fluid-structure interaction and thrombosis model for type B aortic dissection.

Authors:  Mei Yan Chong; Boram Gu; Chlöe Harriet Armour; Socrates Dokos; Zhi Chao Ong; Xiao Yun Xu; Einly Lim
Journal:  Biomech Model Mechanobiol       Date:  2022-01-25

4.  A novel MRI-based data fusion methodology for efficient, personalised, compliant simulations of aortic haemodynamics.

Authors:  Catriona Stokes; Mirko Bonfanti; Zeyan Li; Jiang Xiong; Duanduan Chen; Stavroula Balabani; Vanessa Díaz-Zuccarini
Journal:  J Biomech       Date:  2021-10-09       Impact factor: 2.712

5.  Association of hemodynamic factors and progressive aortic dilatation following type A aortic dissection surgical repair.

Authors:  Yu Zhu; Saeed Mirsadraee; George Asimakopoulos; Alessia Gambaro; Ulrich Rosendahl; John Pepper; Xiao Yun Xu
Journal:  Sci Rep       Date:  2021-06-01       Impact factor: 4.379

  5 in total

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