Literature DB >> 21428677

In vitro validation of finite-element model of AAA hemodynamics incorporating realistic outlet boundary conditions.

Ethan O Kung1, Andrea S Les, Francisco Medina, Ryan B Wicker, Michael V McConnell, Charles A Taylor.   

Abstract

The purpose of this study is to validate numerical simulations of flow and pressure in an abdominal aortic aneurysm (AAA) using phase-contrast magnetic resonance imaging (PCMRI) and an in vitro phantom under physiological flow and pressure conditions. We constructed a two-outlet physical flow phantom based on patient imaging data of an AAA and developed a physical Windkessel model to use as outlet boundary conditions. We then acquired PCMRI data in the phantom while it operated under conditions mimicking a resting and a light exercise physiological state. Next, we performed in silico numerical simulations and compared experimentally measured velocities, flows, and pressures in the in vitro phantom to those computed in the in silico simulations. There was a high degree of agreement in all of the pressure and flow waveform shapes and magnitudes between the experimental measurements and simulated results. The average pressures and flow split difference between experiment and simulation were all within 2%. Velocity patterns showed good agreement between experimental measurements and simulated results, especially in the case of whole-cycle averaged comparisons. We demonstrated methods to perform in vitro phantom experiments with physiological flows and pressures, showing good agreement between numerically simulated and experimentally measured velocity fields and pressure waveforms in a complex patient-specific AAA geometry.

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Year:  2011        PMID: 21428677      PMCID: PMC4404703          DOI: 10.1115/1.4003526

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  41 in total

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7.  Quantification of hemodynamics in abdominal aortic aneurysms during rest and exercise using magnetic resonance imaging and computational fluid dynamics.

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Review 8.  Hemodynamics and atherosclerosis. Insights and perspectives gained from studies of human arteries.

Authors:  S Glagov; C Zarins; D P Giddens; D N Ku
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Journal:  Am J Physiol       Date:  1985-04
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  14 in total

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7.  In Vitro Validation of Patient-Specific Hemodynamic Simulations in Coronary Aneurysms Caused by Kawasaki Disease.

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Review 8.  Computational modeling and engineering in pediatric and congenital heart disease.

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9.  Characterization of the transport topology in patient-specific abdominal aortic aneurysm models.

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Review 10.  Modeling single ventricle physiology: review of engineering tools to study first stage palliation of hypoplastic left heart syndrome.

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