Literature DB >> 20812022

Hemodynamics model of fluid-solid interaction in internal carotid artery aneurysms.

Xu Bai-Nan1, Wang Fu-Yu, Liu Lei, Zhang Xiao-Jun, Ju Hai-Yue.   

Abstract

The objective of this study is to present a relatively simple method to reconstruct cerebral aneurysms as 3D numerical grids. The method accurately duplicates the geometry to provide computer simulations of the blood flow. Initial images were obtained by using CT angiography and 3D digital subtraction angiography in DICOM format. The image was processed by using MIMICS software, and the 3D fluid model (blood flow) and 3D solid model (wall) were generated. The subsequent output was exported to the ANSYS workbench software to generate the volumetric mesh for further hemodynamic study. The fluid model was defined and simulated in CFX software while the solid model was calculated in ANSYS software. The force data calculated firstly in the CFX software were transferred to the ANSYS software, and after receiving the force data, total mesh displacement data were calculated in the ANSYS software. Then, the mesh displacement data were transferred back to the CFX software. The data exchange was processed in workbench software. The results of simulation could be visualized in CFX-post. Two examples of grid reconstruction and blood flow simulation for patients with internal carotid artery aneurysms were presented. The wall shear stress, wall total pressure, and von Mises stress could be visualized. This method seems to be relatively simple and suitable for direct use by neurosurgeons or neuroradiologists, and maybe a practical tool for planning treatment and follow-up of patients after neurosurgical or endovascular interventions with 3D angiography.

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Mesh:

Year:  2010        PMID: 20812022      PMCID: PMC3015168          DOI: 10.1007/s10143-010-0282-5

Source DB:  PubMed          Journal:  Neurosurg Rev        ISSN: 0344-5607            Impact factor:   3.042


  20 in total

1.  In vivo analysis of mechanical wall stress and abdominal aortic aneurysm rupture risk.

Authors:  Mark F Fillinger; M L Raghavan; Steven P Marra; Jack L Cronenwett; Francis E Kennedy
Journal:  J Vasc Surg       Date:  2002-09       Impact factor: 4.268

2.  Computed tomographic angiography versus digital subtraction angiography for the diagnosis and early treatment of ruptured intracranial aneurysms.

Authors:  G B Anderson; D E Steinke; K C Petruk; R Ashforth; J M Findlay
Journal:  Neurosurgery       Date:  1999-12       Impact factor: 4.654

3.  Biomechanical properties of ruptured versus electively repaired abdominal aortic aneurysm wall tissue.

Authors:  Elena S Di Martino; Ajay Bohra; Jonathan P Vande Geest; Navyash Gupta; Michel S Makaroun; David A Vorp
Journal:  J Vasc Surg       Date:  2006-03       Impact factor: 4.268

4.  Computational blood flow modelling: errors associated with reconstructing finite element models from magnetic resonance images.

Authors:  J A Moore; D A Steinman; C R Ethier
Journal:  J Biomech       Date:  1998-02       Impact factor: 2.712

5.  Role of the bloodstream impacting force and the local pressure elevation in the rupture of cerebral aneurysms.

Authors:  Masaaki Shojima; Marie Oshima; Kiyoshi Takagi; Ryo Torii; Kazuya Nagata; Ichiro Shirouzu; Akio Morita; Takaaki Kirino
Journal:  Stroke       Date:  2005-08-04       Impact factor: 7.914

6.  Mechanical wall stress in abdominal aortic aneurysm: influence of diameter and asymmetry.

Authors:  D A Vorp; M L Raghavan; M W Webster
Journal:  J Vasc Surg       Date:  1998-04       Impact factor: 4.268

7.  Characterization of cerebral aneurysms for assessing risk of rupture by using patient-specific computational hemodynamics models.

Authors:  Juan R Cebral; Marcelo A Castro; James E Burgess; Richard S Pergolizzi; Michael J Sheridan; Christopher M Putman
Journal:  AJNR Am J Neuroradiol       Date:  2005 Nov-Dec       Impact factor: 3.825

8.  Prediction of rupture risk in abdominal aortic aneurysm during observation: wall stress versus diameter.

Authors:  Mark F Fillinger; Steven P Marra; M L Raghavan; Francis E Kennedy
Journal:  J Vasc Surg       Date:  2003-04       Impact factor: 4.268

9.  Flow-induced arterial enlargement is inhibited by suppression of nitric oxide synthase activity in vivo.

Authors:  R J Guzman; K Abe; C K Zarins
Journal:  Surgery       Date:  1997-08       Impact factor: 3.982

10.  In vitro measurement of fluid-induced wall shear stress in unruptured cerebral aneurysms harboring blebs.

Authors:  Satoshi Tateshima; Yuichi Murayama; J Pablo Villablanca; Taku Morino; Kiyoe Nomura; Kazuo Tanishita; Fernando Viñuela
Journal:  Stroke       Date:  2003-01       Impact factor: 7.914

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  3 in total

Review 1.  Physical factors effecting cerebral aneurysm pathophysiology.

Authors:  Chander Sadasivan; David J Fiorella; Henry H Woo; Baruch B Lieber
Journal:  Ann Biomed Eng       Date:  2013-04-03       Impact factor: 3.934

2.  Lattice Boltzmann Model of 3D Multiphase Flow in Artery Bifurcation Aneurysm Problem.

Authors:  Aizat Abas; N Hafizah Mokhtar; M H H Ishak; M Z Abdullah; Ang Ho Tian
Journal:  Comput Math Methods Med       Date:  2016-04-28       Impact factor: 2.238

3.  Wall shear stress in intracranial aneurysms and adjacent arteries.

Authors:  Fuyu Wang; Bainan Xu; Zhenghui Sun; Chen Wu; Xiaojun Zhang
Journal:  Neural Regen Res       Date:  2013-04-15       Impact factor: 5.135

  3 in total

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