Literature DB >> 34581959

Effect of foam insertion in aneurysm sac on flow structures in parent lumen: relating vortex structures with disturbed shear.

Pawan Kumar Pandey1, Malay Kumar Das2.   

Abstract

Numerous studies suggest that disturbed shear, causing endothelium dysfunction, can be related to neighboring vortex structures. With this motivation, this study presents a methodology to characterize the vortex structures. Precisely, we use mapping and characterization of vortex structures' changes to relate it with the hemodynamic indicators of disturbed shear. Topological features of vortex core lines (VCLs) are used to quantify the changes in vortex structures. We use the Sujudi-Haimes algorithm to extract the VCLs from the flow simulation results. The idea of relating vortex structures with disturbed shear is demonstrated for cerebral arteries with aneurysms virtually treated by inserting foam in the sac. To get physiologically realistic flow fields, we simulate blood flow in two patient-specific geometries before and after foam insertion, with realistic velocity waveform imposed at the inlet, using the Carreau-Yasuda model to mimic the shear-thinning behavior. With homogenous porous medium assumption, flow through the foam is modeled using the Forchheimer-Brinkman extended Darcy model. Results show that foam insertion increases the number of VCLs in the parent lumen. The average length of VCL increases by 168.9% and 55.6% in both geometries. For both geometries under consideration, results demonstrate that the region with increased disturbed shear lies in the same arterial segment exhibiting an increase in the number of oblique VCLs. Based on the findings, we conjecture that an increase in oblique VCLs is related to increased disturbed shear at the neighboring portion of the arterial wall.
© 2021. Australasian College of Physical Scientists and Engineers in Medicine.

Entities:  

Keywords:  Cerebral aneurysm; Disturbed shear; Hemodynamics; Shape memory polymer foam; Vortex core line; Vortex structures

Mesh:

Year:  2021        PMID: 34581959     DOI: 10.1007/s13246-021-01058-3

Source DB:  PubMed          Journal:  Phys Eng Sci Med        ISSN: 2662-4729


  33 in total

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2.  Clipping or coiling: the first step for ruptured aneurysms.

Authors:  Joseph Broderick
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4.  Hemodynamic Effect of Flow Diverter and Coils in Treatment of Large and Giant Intracranial Aneurysms.

Authors:  Linkai Jing; Jingru Zhong; Jian Liu; Xinjian Yang; Nikhil Paliwal; Hui Meng; Shengzhang Wang; Ying Zhang
Journal:  World Neurosurg       Date:  2016-02-04       Impact factor: 2.104

5.  Virtual treatment of basilar aneurysms using shape memory polymer foam.

Authors:  J M Ortega; J Hartman; J N Rodriguez; D J Maitland
Journal:  Ann Biomed Eng       Date:  2013-01-18       Impact factor: 3.934

6.  Hemodynamics of Cerebral Aneurysms.

Authors:  Daniel M Sforza; Christopher M Putman; Juan Raul Cebral
Journal:  Annu Rev Fluid Mech       Date:  2009-01-01       Impact factor: 18.511

7.  Prototype laser-activated shape memory polymer foam device for embolic treatment of aneurysms.

Authors:  Duncan J Maitland; Ward Small; Jason M Ortega; Patrick R Buckley; Jennifer Rodriguez; Jonathan Hartman; Thomas S Wilson
Journal:  J Biomed Opt       Date:  2007 May-Jun       Impact factor: 3.170

Review 8.  Hemodynamic impact of cerebral aneurysm endovascular treatment devices: coils and flow diverters.

Authors:  Leonid Goubergrits; Jens Schaller; Ulrich Kertzscher; Thies Woelken; Moritz Ringelstein; Andreas Spuler
Journal:  Expert Rev Med Devices       Date:  2014-07       Impact factor: 3.166

9.  Hemodynamics and bleb formation in intracranial aneurysms.

Authors:  J R Cebral; M Sheridan; C M Putman
Journal:  AJNR Am J Neuroradiol       Date:  2009-10-01       Impact factor: 3.825

10.  Porous media properties of reticulated shape memory polymer foams and mock embolic coils for aneurysm treatment.

Authors:  Andrea D Muschenborn; Jason M Ortega; Jason M Szafron; David J Szafron; Duncan J Maitland
Journal:  Biomed Eng Online       Date:  2013-10-12       Impact factor: 2.819

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