Research graph
References from Surrogate‐Assisted Multi‐Objective Optimization of an Axial‐Flow Ventricular Assist Device Rotor Using <scp>CFD</scp> , Hybrid Surrogates, Sobol Analysis, and <scp>MOPSO</scp>. Local targets link to admitted publications; unresolved targets remain external evidence.
Ventricular Assist Device Therapy for Heart Failure—Past, Present, and Future
10.1097/aia.0b013e31826233a9 · 2012 · External reference
Current Status of Left Ventricular Assist Device Technology
10.1053/j.semtcvs.2013.02.002 · 2013 · External reference
A Fully Magnetically Levitated Circulatory Pump for Advanced Heart Failure
10.1056/nejmoa1610426 · 2017 · External reference
The Use of Computational Fluid Dynamics in the Development of Ventricular Assist Devices
10.1016/j.medengphy.2010.10.014 · 2011 · External reference
Characterization of Erythrocyte Membrane Tension for Hemolysis Prediction in Complex Flows
10.1007/s10237-017-0995-2 · 2018 · External reference
Recent Advances in the Application of Computational Fluid Dynamics in the Development of Rotary Blood Pumps
10.1016/j.medntd.2022.100177 · 2022 · External reference
Blood Pump Design Variations and Their Influence on Hydraulic Performance and Indicators of Hemocompatibility
10.1007/s10439-017-1951-0 · 2018 · External reference
Computational Fluid Dynamics‐Based Design Optimization for an Implantable Miniature Maglev Pediatric Ventricular Assist Device
10.1115/1.4005765 · 2012 · External reference
A Quantitative Comparison of Mechanical Blood Damage Parameters in Rotary Ventricular Assist Devices: Shear Stress, Exposure Time and Hemolysis Index
10.1115/1.4007092 · 2012 · External reference
On the Representation of Effective Stress for Computing Hemolysis
10.1007/s10237-018-01108-y · 2019 · External reference
An Energy‐Dissipation‐Based Power‐Law Formulation for Estimating Hemolysis
10.1007/s10237-019-01232-3 · 2020 · External reference
Machine Learning Based on Computational Fluid Dynamics Enables Geometric Design Optimisation of the NeoVAD Blades
10.1038/s41598-023-33708-9 · 2023 · External reference
On the Optimization of a Centrifugal Maglev Blood Pump Through Design Variations
10.3389/fphys.2021.699891 · 2021 · External reference
Optimized FDA Blood Pump: A Case Study in System‐Level Customized Ventricular Assist Device Designs
10.1007/s10439-025-03834-8 · 2025 · External reference
Multi‐Objective CFD Optimization of an Intermediate Diffuser Stage for PediaFlow Pediatric Ventricular Assist Device
10.1111/aor.70004 · 2026 · External reference
Optimization of Secondary Flow Path Clearance in Centrifugal Blood Pump: A Combined Numerical and Experimental Study
10.3389/fphys.2025.1595588 · 2025 · External reference
Investigation of Shear‐Induced Platelet Activation in Ventricular Assist Device
2023 · External reference
Numerical Study of a New Ventricular Assist Device
10.1111/aor.13635 · 2020 · External reference
Optimization of Hemocompatibility Metrics in Ventricular Assist Device Design Using Machine Learning and CFD‐Based Response Surface Analysis
10.1177/03913988251346712 · 2025 · External reference
Computational Fluid Dynamics Analysis of a Maglev Centrifugal Left Ventricular Assist Device
10.1111/j.1525-1594.2004.07384.x · 2004 · External reference
10.1007/978-1-4020-5690-1_4
10.1007/978-1-4020-5690-1_4 · 2007 · External reference
Two‐Equation Eddy‐Viscosity Turbulence Models for Engineering Applications
10.2514/3.12149 · 1994 · External reference
Estimation of Shear Stress‐Related Blood Damage in Heart Valve Prostheses—In Vitro Comparison of 25 Aortic Valves
10.1177/039139889001300507 · 1990 · External reference
Evaluation of Shear‐Induced Platelet Activation Models Under Constant and Dynamic Shear Stress Loading Conditions Relevant to Devices
10.1007/s10439-013-0758-x · 2013 · External reference