Experimental Assessment of Flow Fields Associated with Heart Valve Prostheses Using Particle Image Velocimetry (PIV): Recommendations for Best Practices

Experimental flow field characterization is a critical component of the assessment of the hemolytic and thrombogenic potential of heart valve substitutes, thus it is important to identify best practices for these experimental techniques. This paper presents a brief review of commonly used flow asses...

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Veröffentlicht in:Cardiovascular engineering and technology 2018-09, Vol.9 (3), p.273-287
Hauptverfasser: Raghav, Vrishank, Sastry, Sudeep, Saikrishnan, Neelakantan
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container_title Cardiovascular engineering and technology
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creator Raghav, Vrishank
Sastry, Sudeep
Saikrishnan, Neelakantan
description Experimental flow field characterization is a critical component of the assessment of the hemolytic and thrombogenic potential of heart valve substitutes, thus it is important to identify best practices for these experimental techniques. This paper presents a brief review of commonly used flow assessment techniques such as Particle image velocimetry (PIV), Laser doppler velocimetry, and Phase contrast magnetic resonance imaging and a comparison of these methodologies. In particular, recommendations for setting up planar PIV experiments such as recommended imaging instrumentation, acquisition and data processing are discussed in the context of heart valve flows. Multiple metrics such as residence time, local velocity and shear stress that have been identified in the literature as being relevant to hemolysis and thrombosis in heart valves are discussed. Additionally, a framework for uncertainty analysis and data reporting for PIV studies of heart valves is presented in this paper. It is anticipated that this paper will provide useful information for heart valve device manufacturers and researchers to assess heart valve flow fields for the potential for hemolysis and thrombosis.
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subjects Biomedical Engineering and Bioengineering
Biomedicine
Cardiology
Catheters
Critical components
Data processing
Engineering
Heart
Heart valves
Hemolysis
Image contrast
Laser doppler velocimeters
Magnetic resonance imaging
Particle image velocimetry
Phase contrast
Prostheses
Shear stress
Thrombosis
Uncertainty analysis
Velocity measurement
title Experimental Assessment of Flow Fields Associated with Heart Valve Prostheses Using Particle Image Velocimetry (PIV): Recommendations for Best Practices
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