Numerical modeling of continuous-flow left ventricular assist device performance
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[1] Sergey V Selishchev,et al. Optimisation of the Sputnik-VAD Design , 2016, The International journal of artificial organs.
[2] Daniel L. Timms,et al. Replication of the Frank-Starling response in a mock circulation loop , 2011, 2011 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[3] Marcel C M Rutten,et al. A mathematical model to evaluate control strategies for mechanical circulatory support. , 2009, Artificial organs.
[4] F. Pagani,et al. Hemodynamic and Exercise Performance With Pulsatile and Continuous-Flow Left Ventricular Assist Devices , 2007, Circulation.
[5] Stijn Vandenberghe,et al. Pulsatile control of rotary blood pumps: Does the modulation waveform matter? , 2012, The Journal of thoracic and cardiovascular surgery.
[6] D. Telyshev,et al. Analysis of the Preload and Afterload Sensitivity of the Sputnik Rotary Blood Pump , 2016, BioMed 2016.
[7] D. Zimpfer,et al. LVAD Pump Flow Does Not Adequately Increase With Exercise , 2018, Artificial organs.
[8] N. Smedira,et al. Axial and centrifugal continuous-flow rotary pumps: a translation from pump mechanics to clinical practice. , 2013, The Journal of heart and lung transplantation : the official publication of the International Society for Heart Transplantation.
[9] D. Mason,et al. Response of rotary blood pumps to changes in preload and afterload at a fixed speed setting are unphysiological when compared with the natural heart. , 2011, Artificial organs.
[10] Mirko Meboldt,et al. Hydraulic Characterization of Implantable Rotary Blood Pumps , 2019, IEEE Transactions on Biomedical Engineering.
[11] H. Scheld,et al. Left ventricular pressure and volume unloading during pulsatile versus nonpulsatile left ventricular assist device support. , 2004, The Annals of thoracic surgery.
[12] Heinrich Schima,et al. Use of continuous flow ventricular assist devices in patients with heart failure and a normal ejection fraction: a computer-simulation study. , 2013, The Journal of thoracic and cardiovascular surgery.
[13] Sean Pinney,et al. Interagency Registry for Mechanically Assisted Circulatory Support (INTERMACS) analysis of pump thrombosis in the HeartMate II left ventricular assist device. , 2014, The Journal of heart and lung transplantation : the official publication of the International Society for Heart Transplantation.
[14] Heinrich Schima,et al. Dynamic Modeling and Identification of an Axial Flow Ventricular Assist Device , 2009, The International journal of artificial organs.
[15] Andrew Boyle,et al. Gastrointestinal bleeding rates in recipients of nonpulsatile and pulsatile left ventricular assist devices. , 2009, The Journal of thoracic and cardiovascular surgery.
[16] F. N. van de Vosse,et al. Dependence of Intramyocardial Pressure and Coronary Flow on Ventricular Loading and Contractility: A Model Study , 2006, Annals of Biomedical Engineering.
[17] M. Slaughter,et al. Hemodynamic Responses to Continuous versus Pulsatile Mechanical Unloading of the Failing Left Ventricle , 2010, ASAIO journal.
[18] P. Bovendeerd,et al. Simulation of changes in myocardial tissue properties during left ventricular assistance with a rotary blood pump. , 2013, Artificial organs.
[19] D. Zimpfer,et al. Investigation of Hemodynamics in the Assisted Isolated Porcine Heart , 2013, The International journal of artificial organs.
[20] Sergey V. Selishchev,et al. The Effect of Rotor Geometry on the H−Q Curves of the Sputnik Implantable Pediatric Rotary Blood Pump , 2017, BioMed 2017.
[21] Shvetank Agarwal,et al. Newer-generation ventricular assist devices. , 2012, Best practice & research. Clinical anaesthesiology.
[22] Marcel C M Rutten,et al. Pump Flow Estimation From Pressure Head and Power Uptake for the HeartAssist5, HeartMate II, and HeartWare VADs , 2013, ASAIO journal.
[23] D. Telyshev,et al. Development of Left Ventricular Assist Devices as the Most Effective Acute Heart Failure Therapy , 2015 .
[24] Thomas Sénage,et al. A Mock Circulatory System to Assess the Performance of Continuous-Flow Left Ventricular Assist Devices (LVADs): Does Axial Flow Unload Better Than Centrifugal LVAD? , 2014, ASAIO journal.
[25] Load Sensitivity of Rotary Blood Pumps under Static Pressure Conditions , 2017, BioMed 2017.
[26] William E. Cohn,et al. Preload Sensitivity of the Jarvik 2000 and HeartMate II Left Ventricular Assist Devices , 2008, ASAIO journal.
[27] William E Cohn,et al. Optimization of axial-pump pressure sensitivity for a continuous-flow total artificial heart. , 2010, The Journal of heart and lung transplantation : the official publication of the International Society for Heart Transplantation.
[29] Kiyotaka Fukamachi,et al. Preload sensitivity in cardiac assist devices. , 2013, The Annals of thoracic surgery.
[30] F. Pagani,et al. Comparing the Effectiveness of an Axial and a Centrifugal Left Ventricular Assist Device in Ventricular Unloading , 2016, ASAIO journal.