Influence of Impeller Speed Patterns on Hemodynamic Characteristics and Hemolysis of the Blood Pump
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[1] Eisuke Tatsumi,et al. Rotational speed modulation used with continuous-flow left ventricular assist device provides good pulsatility. , 2018, Interactive cardiovascular and thoracic surgery.
[2] S. Garcia,et al. Effects of pulsatile- and continuous-flow left ventricular assist devices on left ventricular unloading. , 2008, The Journal of heart and lung transplantation : the official publication of the International Society for Heart Transplantation.
[3] Katharine H Fraser,et al. The use of computational fluid dynamics in the development of ventricular assist devices. , 2011, Medical engineering & physics.
[4] Selim Bozkurt. Physiologic outcome of varying speed rotary blood pump support algorithms: a review study , 2015, Australasian Physical & Engineering Sciences in Medicine.
[5] H Reul,et al. Assessment of hemolysis related quantities in a microaxial blood pump by computational fluid dynamics. , 2001, Artificial organs.
[6] H. Reul,et al. Estimation of Shear Stress-related Blood Damage in Heart Valve Prostheses - in Vitro Comparison of 25 Aortic Valves , 1990, The International journal of artificial organs.
[7] André Garon,et al. Fast three-dimensional numerical hemolysis approximation. , 2004, Artificial organs.
[8] P. Lawford,et al. Numerical Modeling of Hemodynamics with Pulsatile Impeller Pump Support , 2010, Annals of Biomedical Engineering.
[9] Fotis Sotiropoulos,et al. Characterization of Hemodynamic Forces Induced by Mechanical Heart Valves: Reynolds vs. Viscous Stresses , 2008, Annals of Biomedical Engineering.
[10] Eisuke Tatsumi,et al. Electrocardiogram-synchronized rotational speed change mode in rotary pumps could improve pulsatility. , 2011, Artificial organs.
[11] Menéndez Blanco Alberto,et al. Numerical methodology for the CFD simulation of diaphragm volumetric pumps , 2019, International Journal of Mechanical Sciences.
[12] Stijn Vandenberghe,et al. Pulsatile control of rotary blood pumps: Does the modulation waveform matter? , 2012, The Journal of thoracic and cardiovascular surgery.
[13] Steven C. Koenig,et al. Defining pulsatility during continuous-flow ventricular assist device support. , 2013, The Journal of heart and lung transplantation : the official publication of the International Society for Heart Transplantation.
[14] Kim H. Parker,et al. Investigation of the Characteristics of HeartWare HVAD and Thoratec HeartMate II Under Steady and Pulsatile Flow Conditions. , 2016, Artificial organs.
[15] Heinrich Schima,et al. Dynamic Modeling and Identification of an Axial Flow Ventricular Assist Device , 2009, The International journal of artificial organs.
[16] P. Atluri,et al. Do patients with a continuous-flow left ventricular assist device benefit from induced-pulsatility or are we just spinning our wheels? , 2015, The Journal of thoracic and cardiovascular surgery.
[17] Katharine H Fraser,et al. Evaluation of Eulerian and Lagrangian Models for Hemolysis Estimation , 2012, ASAIO journal.
[18] Farzan Ghalichi,et al. Computational fluid dynamics-based study of possibility of generating pulsatile blood flow via a continuous-flow VAD , 2016, Medical & Biological Engineering & Computing.
[19] Marcus Hormes,et al. A validated computational fluid dynamics model to estimate hemolysis in a rotary blood pump. , 2005, Artificial organs.
[20] Seongjin Choi,et al. Hemodynamic controller for left ventricular assist device based on pulsatility ratio. , 2007, Artificial organs.
[21] Mehdi Behbahani,et al. A review of computational fluid dynamics analysis of blood pumps , 2009, European Journal of Applied Mathematics.
[22] M. Slaughter,et al. Comparison of continuous-flow and pulsatile-flow left ventricular assist devices: is there an advantage to pulsatility? , 2014, Annals of cardiothoracic surgery.
[23] C Bludszuweit,et al. Three-dimensional numerical prediction of stress loading of blood particles in a centrifugal pump. , 1995, Artificial organs.
[24] Kiyotaka Fukamachi,et al. Speed Modulation of the Continuous-Flow Total Artificial Heart to Simulate a Physiologic Arterial Pressure Waveform , 2010, ASAIO journal.
[25] Steven C. Koenig,et al. Flow Modulation Algorithms for Continuous Flow Left Ventricular Assist Devices to Increase Vascular Pulsatility: A Computer Simulation Study , 2011 .
[26] Karen May-Newman,et al. Modeling the Link between Left Ventricular Flow and Thromboembolic Risk Using Lagrangian Coherent Structures , 2016 .