Literature DB >> 23242235

Developments in control systems for rotary left ventricular assist devices for heart failure patients: a review.

Abdul-Hakeem H AlOmari1, Andrey V Savkin, Michael Stevens, David G Mason, Daniel L Timms, Robert F Salamonsen, Nigel H Lovell.   

Abstract

From the moment of creation to the moment of death, the heart works tirelessly to circulate blood, being a critical organ to sustain life. As a non-stopping pumping machine, it operates continuously to pump blood through our bodies to supply all cells with oxygen and necessary nutrients. When the heart fails, the supplement of blood to the body's organs to meet metabolic demands will deteriorate. The treatment of the participating causes is the ideal approach to treat heart failure (HF). As this often cannot be done effectively, the medical management of HF is a difficult challenge. Implantable rotary blood pumps (IRBPs) have the potential to become a viable long-term treatment option for bridging to heart transplantation or destination therapy. This increases the potential for the patients to leave the hospital and resume normal lives. Control of IRBPs is one of the most important design goals in providing long-term alternative treatment for HF patients. Over the years, many control algorithms including invasive and non-invasive techniques have been developed in the hope of physiologically and adaptively controlling left ventricular assist devices and thus avoiding such undesired pumping states as left ventricular collapse caused by suction. In this paper, we aim to provide a comprehensive review of the developments of control systems and techniques that have been applied to control IRBPs.

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Year:  2012        PMID: 23242235     DOI: 10.1088/0967-3334/34/1/R1

Source DB:  PubMed          Journal:  Physiol Meas        ISSN: 0967-3334            Impact factor:   2.833


  14 in total

1.  Preload Sensitivity with TORVAD Counterpulse Support Prevents Suction and Overpumping.

Authors:  Jeffrey R Gohean; Erik R Larson; Raul G Longoria; Mark Kurusz; Richard W Smalling
Journal:  Cardiovasc Eng Technol       Date:  2019-06-11       Impact factor: 2.495

2.  Parameter Identification of Cardiovascular System Model Used for Left Ventricular Assist Device Algorithms.

Authors:  Suraj R Pawar; Ethan S Rapp; Jeffrey R Gohean; Raul G Longoria
Journal:  J Eng Sci Med Diagn Ther       Date:  2022-01-12

Review 3.  Effects of pump speed changes on exercise capacity in patients supported with a left ventricular assist device-an overview.

Authors:  Thomas Schmidt; Birna Bjarnason-Wehrens; Sebastian Schulte-Eistrup; Nils Reiss
Journal:  J Thorac Dis       Date:  2018-06       Impact factor: 2.895

4.  Echo-guided left ventricular assist device speed optimisation for exercise maximisation.

Authors:  Maciej Stapor; Adam Pilat; Andrzej Gackowski; Agnieszka Misiuda; Izabela Gorkiewicz-Kot; Michal Kaleta; Pawel Kleczynski; Krzysztof Zmudka; Jacek Legutko; Boguslaw Kapelak; Karol Wierzbicki
Journal:  Heart       Date:  2022-06-10       Impact factor: 7.365

5.  Preload-based starling-like control for rotary blood pumps: numerical comparison with pulsatility control and constant speed operation.

Authors:  Mahdi Mansouri; Robert F Salamonsen; Einly Lim; Rini Akmeliawati; Nigel H Lovell
Journal:  PLoS One       Date:  2015-04-07       Impact factor: 3.240

Review 6.  Mechanical Circulatory Support for Advanced Heart Failure: Are We about to Witness a New "Gold Standard"?

Authors:  Massimo Capoccia
Journal:  J Cardiovasc Dev Dis       Date:  2016-12-12

7.  Preload-based Starling-like control of rotary blood pumps: An in-vitro evaluation.

Authors:  Mahdi Mansouri; Shaun D Gregory; Robert F Salamonsen; Nigel H Lovell; Michael C Stevens; Jo P Pauls; Rini Akmeliawati; Einly Lim
Journal:  PLoS One       Date:  2017-02-17       Impact factor: 3.240

8.  Exercise gas exchange in continuous-flow left ventricular assist device recipients.

Authors:  Alessandro Mezzani; Massimo Pistono; Piergiuseppe Agostoni; Andrea Giordano; Marco Gnemmi; Alessandro Imparato; Pierluigi Temporelli; Ugo Corrà
Journal:  PLoS One       Date:  2018-06-01       Impact factor: 3.240

9.  An Implantable Intravascular Pressure Sensor for a Ventricular Assist Device.

Authors:  Luigi Brancato; Grim Keulemans; Tom Verbelen; Bart Meyns; Robert Puers
Journal:  Micromachines (Basel)       Date:  2016-08-08       Impact factor: 2.891

10.  An Intra-Cycle Optimal Control Framework for Ventricular Assist Devices Based on Atrioventricular Plane Displacement Modeling.

Authors:  Clemens Zeile; Thomas Rauwolf; Alexander Schmeisser; Jeremi Kaj Mizerski; Rüdiger C Braun-Dullaeus; Sebastian Sager
Journal:  Ann Biomed Eng       Date:  2021-09-21       Impact factor: 3.934

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