Multiscale Boundary Conditions for Drug Dissolution Applied to Coronary Stents
From MaRDI portal
Publication:4601612
DOI10.1137/16M1088946zbMath1380.65264OpenAlexW2768359481MaRDI QIDQ4601612
Publication date: 17 January 2018
Published in: Multiscale Modeling & Simulation (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1137/16m1088946
PDEs in connection with fluid mechanics (35Q35) PDEs in connection with biology, chemistry and other natural sciences (35Q92) Analyticity in context of PDEs (35A20) Finite element, Rayleigh-Ritz and Galerkin methods for initial value and initial-boundary value problems involving PDEs (65M60)
Cites Work
- Mathematical modeling of coupled drug and drug-encapsulated nanoparticle transport in patient-specific coronary artery walls
- A decade of modelling drug release from arterial stents
- Cardiovascular mathematics. Modeling and simulation of the circulatory system
- Numerical simulation of drug eluting coronary stents: mechanics, fluid dynamics and drug release
- Streamline upwind/Petrov-Galerkin formulations for convection dominated flows with particular emphasis on the incompressible Navier-Stokes equations
- 3D mathematical model for blood flow and non-Fickian mass transport by a coronary drug-eluting stent
- Robust numerical approximation of coupled Stokes' and Darcy's flows applied to vascular hemodynamics and biochemical transport
- MODELING POLYMERIC CONTROLLED DRUG RELEASE AND TRANSPORT PHENOMENA IN THE ARTERIAL TISSUE
- Multiscale Boundary Conditions for Drug Release from Cardiovascular Stents
- Model Reduction Strategies Enable Computational Analysis of Controlled Drug Release from Cardiovascular Stents
- Release mechanism and parameter estimation in drug-eluting stent systems: analytical solutions of drug release and tissue transport