High-frequency operation of a pulsatile VAD – a simulation study
暂无分享,去创建一个
Mirko Meboldt | Raffael Amacher | Marianne Schmid Daners | Mathias Rebholz | Anastasios Petrou | M. Meboldt | Mathias Rebholz | Raffael Amacher | A. Petrou | M. Schmid Daners
[1] Eisuke Tatsumi,et al. Electrocardiogram-synchronized rotational speed change mode in rotary pumps could improve pulsatility. , 2011, Artificial organs.
[2] Kevin Bourque,et al. In vivo assessment of a rotary left ventricular assist device-induced artificial pulse in the proximal and distal aorta. , 2006, Artificial organs.
[3] 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.
[4] H. Harasaki,et al. Do we really need pulse? Chronic nonpulsatile and pulsatile blood flow: from the exercise response viewpoints. , 1994, Artificial organs.
[5] Kiyotaka Fukamachi,et al. Does pulsatility matter in the era of continuous-flow blood pumps? , 2015, The Journal of heart and lung transplantation : the official publication of the International Society for Heart Transplantation.
[6] M. Mehra,et al. A history of devices as an alternative to heart transplantation. , 2014, Heart failure clinics.
[7] Karen May-Newman,et al. Biomechanics of the Aortic Valve in the Continuous Flow VAD-Assisted Heart , 2010, ASAIO journal.
[8] Steven C. Koenig,et al. Flow Modulation Algorithms for Continuous Flow Left Ventricular Assist Devices to Increase Vascular Pulsatility: A Computer Simulation Study , 2011 .
[9] T. Carrel,et al. Effect of pulsatility on the mathematical modeling of rotary blood pumps. , 2011, Artificial organs.
[10] P. Verdonck,et al. The impact of pump speed and inlet cannulation site on left ventricular unloading with a rotary blood pump. , 2004, Artificial organs.
[11] T. Akutsu,et al. Effect of drive mode of left ventricular assist device on the left ventricular mechanics. , 2008, Artificial organs.
[12] Rini Akmeliawati,et al. Hemodynamic response to exercise and head-up tilt of patients implanted with a rotary blood pump: a computational modeling study. , 2014, Artificial organs.
[13] Gregor Ochsner,et al. Synchronized pulsatile speed control of turbodynamic left ventricular assist devices: review and prospects. , 2014, Artificial organs.
[14] Minoru Ono,et al. Advantage of Pulsatility in Left Ventricular Reverse Remodeling and Aortic Insufficiency Prevention During Left Ventricular Assist Device Treatment. , 2015, Circulation journal : official journal of the Japanese Circulation Society.
[15] M. Ono,et al. A novel counterpulsation mode of rotary left ventricular assist devices can enhance myocardial perfusion , 2011, Journal of Artificial Organs.
[16] Guruprasad A Giridharan,et al. Rotary Pumps and Diminished Pulsatility: Do We Need a Pulse? , 2013, ASAIO journal.
[17] 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.
[18] 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.
[19] F. Colacino,et al. Left Ventricle Load Impedance Control by Apical VAD Can Help Heart Recovery and Patient Perfusion: A Numerical Study , 2007, ASAIO journal.
[20] F. Casas,et al. Development of a pump flow estimator for rotary blood pumps to enhance monitoring of ventricular function. , 2012, Artificial organs.
[21] Stijn Vandenberghe,et al. Pulsatile control of rotary blood pumps: Does the modulation waveform matter? , 2012, The Journal of thoracic and cardiovascular surgery.
[22] Eisuke Tatsumi,et al. Change in myocardial oxygen consumption employing continuous-flow LVAD with cardiac beat synchronizing system, in acute ischemic heart failure models , 2013, Journal of Artificial Organs.
[23] Ranjit John,et al. Right Ventricular Failure—A Continuing Problem in Patients with Left Ventricular Assist Device Support , 2010, Journal of cardiovascular translational research.
[24] M. Slaughter,et al. Left ventricular assist devices: current controversies and future directions. , 2016, European heart journal.
[25] Heinrich Schima,et al. Debate: creating adequate pulse with a continuous flow ventricular assist device can it be done and should it be done? Probably not, it may cause more problems than benefits! , 2016, Current opinion in cardiology.
[26] Robert L Kormos,et al. Seventh INTERMACS annual report: 15,000 patients and counting. , 2015, The Journal of heart and lung transplantation : the official publication of the International Society for Heart Transplantation.
[27] Lino Guzzella,et al. Control of ventricular unloading using an electrocardiogram-synchronized Thoratec paracorporeal ventricular assist device. , 2013, The Journal of thoracic and cardiovascular surgery.
[28] Daniel Timms,et al. A review of clinical ventricular assist devices. , 2011, Medical engineering & physics.
[29] R. Hetzer,et al. Differences in pulsatile and non-pulsatile mechanical circulatory support in long-term use , 2007 .
[30] Victor L Poirier,et al. Design Features, Developmental Status, and Experimental Results With the Heartmate III Centrifugal Left Ventricular Assist System With a Magnetically Levitated Rotor , 2007, ASAIO journal.
[31] Martin Schweiger,et al. Is bridge to recovery more likely with pulsatile left ventricular assist devices than with nonpulsatile-flow systems? , 2011, The Annals of thoracic surgery.
[32] M. Morshuis,et al. Initial Results of Clinical Trial with a New Left Ventricular Assist Device (LVAD) Providing Synchronous Pulsatile Flow , 2009, The International journal of artificial organs.
[33] Gregor Ochsner,et al. Emulation of ventricular suction in a hybrid mock circulation , 2013, 2013 European Control Conference (ECC).
[34] A. Guyton,et al. Textbook of Medical Physiology , 1961 .
[35] Juan F Del Cañizo,et al. Synchrony Relationships between the Left Ventricle and a left Ventricular Assist Device: An Experimental Study in Pigs , 2012, The International journal of artificial organs.