Thrombogenic Risk Assessment of Transcatheter Prosthetic Heart Valves Using a Fluid-Structure Interaction Approach
Kyle Baylous, Brandon Kovarovic, Salwa Anam, Ryan Helbock, Marvin, Slepian, Danny Bluestein

TL;DR
This paper presents a computational fluid-structure interaction approach to assess thrombogenic risk in transcatheter aortic valve replacement devices, enabling improved design and patient-specific evaluation.
Contribution
It introduces an integrated FSI-thrombogenicity methodology validated against experimental data for assessing thrombogenic risk in TAVR devices.
Findings
Validated flow analysis model matching benchtop data
Identified key leaflet design parameters affecting thrombogenic risk
Demonstrated potential for patient-specific device evaluation
Abstract
Prosthetic heart valve interventions such as TAVR have surged over the past decade, but the associated complication of long-term, life-threatening thrombotic events continues to undermine patient outcomes. Thus, improving thrombogenic risk analysis of TAVR devices is crucial. In vitro studies for thrombogenicity are typically difficult to perform. However, revised ISO testing standards include computational testing for thrombogenic risk assessment of cardiovascular implants. We present a fluid-structure interaction (FSI) approach for assessing thrombogenic risk of prosthetic heart valves. An FSI framework was implemented via the incompressible computational fluid dynamics multi-physics solver of the Ansys LS-DYNA software. The numerical modeling approach for flow analysis was validated by comparing the derived flow rate of the 29-mm CoreValve device from benchtop testing and orifice…
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Taxonomy
TopicsCardiac Valve Diseases and Treatments · Orthopaedic implants and arthroplasty · Lubricants and Their Additives
