File(s) under permanent embargo
A novel design of a polymeric aortic valve
INTRODUCTION: In this paper we propose a novel method for developing a polymeric heart valve that could potentially offer an optimum solution for a heart valve substitute. The valve design proposed will provide superior hydrodynamic performance and excellent structural integrity. A full description of the design process is given together with an analysis of the hemodynamic performance using a 2-way strongly coupled Fluid Structure Interaction (FSI). METHOD: A polymeric tri-leaflet heart valve is designed based on a patient's sinus of Valsalva (SOV) geometry. The design strategy aims to improve valve hemodynamic performance as well as valve durability by avoiding stress concentrations in the leaflets and reducing the maximum stress level. The valve dynamics and stress levels are also validated by comparing the predicted data to existing experimental and numerical data. RESULTS: The stress distribution in the valve structure is fully characterized throughout the simulation and Von Mises stress is found to be up to 5.32 Mpa during diastole. The results show that an effective orifice area (EOA) and a pressure drop of 3.22 cm^2, and 3.52 mmHg, respectively, can be achieved using the proposed design. CONCLUSIONS: The optimized valve demonstrates high hemodynamic performance with no sign of damaging stress concentration in the entire cardiac cycle.
History
Journal
International journal of artificial organsVolume
38Issue
5Pagination
259 - 270Publisher
SAGE PublicationsLocation
London, Eng.Publisher DOI
eISSN
1724-6040Language
engPublication classification
C Journal article; C1.1 Refereed article in a scholarly journalCopyright notice
2015, Wichtig PublishingUsage metrics
Keywords
Aortic ValveBioprosthesisHeart Valve ProsthesisHemodynamicsMaterials TestingModels, CardiovascularProsthesis DesignDesign of prosthetic heart valvePolymeric heart valveDesign optimizationFluid structure Interaction (FSI) analysisScience & TechnologyTechnologyLife Sciences & BiomedicineEngineering, BiomedicalTransplantationEngineeringPOLYURETHANE HEART-VALVESINDUCED PLATELET ACTIVATIONMECHANICAL-PROPERTIESMITRAL-VALVEIN-VITROPROSTHESISLEAFLETFLOWFUTURECALCIFICATIONMechanical Engineering