Skip to main content
Top

2022 | OriginalPaper | Chapter

Physiological Control of Pulsatile and Rotary Pediatric Ventricular Assist Devices

Authors : T. R. Melo, T. D. Cordeiro, I. A. Cestari, J. S. da Rocha Neto, A. M. N. Lima

Published in: XXVII Brazilian Congress on Biomedical Engineering

Publisher: Springer International Publishing

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

Several control strategies have been proposed to achieve physiological adaptation of ventricular assist devices (VADs). This paper presents physiological control systems for pediatric VADs that were developed in a scientific cooperation between Bioengineering Division of the Heart Institute, Hospital das Clínicas, Faculty of Medicine on the University of São Paulo (InCor–HCFMUSP) and the Electrical Engineering Department at the Federal University of Campina Grande (DEE - UFCG). The pumping principle and mathematical models of two types of pediatric VADs (pulsatile and rotary) are described. The control strategies for the physiological control systems are discussed, and the main achievements and challenges for implementing these control systems are presented.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
[1]
go back to reference Di Molfetta A, Ferrari G, Iacobelli R et al (2017) Concurrent use of continuous and pulsatile flow ventricular assist device on a fontan patient: a simulation study. Artif Organs 41:32–39CrossRef Di Molfetta A, Ferrari G, Iacobelli R et al (2017) Concurrent use of continuous and pulsatile flow ventricular assist device on a fontan patient: a simulation study. Artif Organs 41:32–39CrossRef
[2]
go back to reference Yu Y-C, Boston JR, Simaan MA et al (1999) Modeling and simulation of a blood pump for the development of a left ventricular assist system controller. Kybernetika 35:651–664MATH Yu Y-C, Boston JR, Simaan MA et al (1999) Modeling and simulation of a blood pump for the development of a left ventricular assist system controller. Kybernetika 35:651–664MATH
[4]
go back to reference Stanfield JR, Selzman CH, Pardyjak ER et al (2012) Flow characteristics of continuous-flow left ventricular assist devices in a novel open-loop system. ASAIO J 58:590–596CrossRef Stanfield JR, Selzman CH, Pardyjak ER et al (2012) Flow characteristics of continuous-flow left ventricular assist devices in a novel open-loop system. ASAIO J 58:590–596CrossRef
[5]
go back to reference Moazami N, Dembitsky WP, Adamson R et al (2015) Does pulsatility matter in the era of continuous-flow blood pumps? J Heart Lung Transp 34:999–1004CrossRef Moazami N, Dembitsky WP, Adamson R et al (2015) Does pulsatility matter in the era of continuous-flow blood pumps? J Heart Lung Transp 34:999–1004CrossRef
[6]
go back to reference Petrou A, Lee J, Dual S et al (2018) Standardized comparison of selected physiological controllers for rotary blood pumps. Vitro Study Artif Organs 42:E29–E42CrossRef Petrou A, Lee J, Dual S et al (2018) Standardized comparison of selected physiological controllers for rotary blood pumps. Vitro Study Artif Organs 42:E29–E42CrossRef
[7]
go back to reference Wang Y, Koenig S, Wu Z et al (2018) Sensor-based physiologic control strategy for biventricular support with rotary blood pumps. ASAIO J 64:338–350CrossRef Wang Y, Koenig S, Wu Z et al (2018) Sensor-based physiologic control strategy for biventricular support with rotary blood pumps. ASAIO J 64:338–350CrossRef
[8]
go back to reference Leao T, Utiyama B, Fonseca J et al (2020) vitro evaluation of multi-objective physiological control of the centrifugal blood pump. Artif Organs. 00:1–12 Leao T, Utiyama B, Fonseca J et al (2020) vitro evaluation of multi-objective physiological control of the centrifugal blood pump. Artif Organs. 00:1–12
[9]
go back to reference Ferrari G, Di Molfetta A, Zieliński K et al (2017) Control of a pediatric pulsatile ventricular assist device: a hybrid cardiovascular model study. Artif Organs 41:1099–1108CrossRef Ferrari G, Di Molfetta A, Zieliński K et al (2017) Control of a pediatric pulsatile ventricular assist device: a hybrid cardiovascular model study. Artif Organs 41:1099–1108CrossRef
[10]
go back to reference Shin YR, Park Y-H, Park HK (2019) Pediatric ventricular assist device. Korean Circul J 49:678–690CrossRef Shin YR, Park Y-H, Park HK (2019) Pediatric ventricular assist device. Korean Circul J 49:678–690CrossRef
[11]
go back to reference Cordeiro TD, Sousa DL, Cestari IA et al (2020) A physiological control system for ECG-synchronized pulsatile pediatric ventricular assist devices. Biomed Signal Proc Cont 57 Cordeiro TD, Sousa DL, Cestari IA et al (2020) A physiological control system for ECG-synchronized pulsatile pediatric ventricular assist devices. Biomed Signal Proc Cont 57
[12]
go back to reference Cestari IA, Mazzetto M, Oyama HTT et al (2019) Design and hydrodynamic performance of a pediatric pulsatile pump. In: Costa-Felix R, Machado J, Alvarenga A (eds) XXVI Brazilian Congress on Biomedical Engineering. IFMBE Proceedings, vol 70/1. Springer, Singapore, pp 85–88 Cestari IA, Mazzetto M, Oyama HTT et al (2019) Design and hydrodynamic performance of a pediatric pulsatile pump. In: Costa-Felix R, Machado J, Alvarenga A (eds) XXVI Brazilian Congress on Biomedical Engineering. IFMBE Proceedings, vol 70/1. Springer, Singapore, pp 85–88
[13]
go back to reference Sousa DL, Cordeiro TD, Melo TR et al (2018) Modeling, characterization and test of a pediatric ventricular assist device. J Phys Conf Ser 1044:012047IOP Publishing 2018 Sousa DL, Cordeiro TD, Melo TR et al (2018) Modeling, characterization and test of a pediatric ventricular assist device. J Phys Conf Ser 1044:012047IOP Publishing 2018
[14]
go back to reference Melo TR, Vasconcelos FJS, Ribeiro LHRD et al (2018) Characterization of a pediatric rotary blood pump. Res Biomed Eng (Online) 34:299–309CrossRef Melo TR, Vasconcelos FJS, Ribeiro LHRD et al (2018) Characterization of a pediatric rotary blood pump. Res Biomed Eng (Online) 34:299–309CrossRef
[15]
go back to reference Stevens MC (2018) Chapter 20–physiological control. In: Gregory SD, Stevens MC, Fraser JF (eds) Mechanical circulatory and respiratory support. Academic Press, pp 627–657 Stevens MC (2018) Chapter 20–physiological control. In: Gregory SD, Stevens MC, Fraser JF (eds) Mechanical circulatory and respiratory support. Academic Press, pp 627–657
[16]
go back to reference Goodwin JA, Meurs WL, Sá Couto CD et al (2004) A model for educational simulation of infant cardiovascular physiology. Anesth Analg 99:1655–1664CrossRef Goodwin JA, Meurs WL, Sá Couto CD et al (2004) A model for educational simulation of infant cardiovascular physiology. Anesth Analg 99:1655–1664CrossRef
[17]
go back to reference Petukhov DS, Telyshev DV (2016) A mathematical model of the cardiovascular system of pediatric patients with congenital heart defect. Biomed Eng 50:229–232CrossRef Petukhov DS, Telyshev DV (2016) A mathematical model of the cardiovascular system of pediatric patients with congenital heart defect. Biomed Eng 50:229–232CrossRef
[18]
go back to reference Üdar A, Zapanta CM, Reibson JD et al (2005) Precise quantification of pressure flow waveforms of a pulsatile ventricular. Ass Dev ASAIO J 56–59 Üdar A, Zapanta CM, Reibson JD et al (2005) Precise quantification of pressure flow waveforms of a pulsatile ventricular. Ass Dev ASAIO J 56–59
Metadata
Title
Physiological Control of Pulsatile and Rotary Pediatric Ventricular Assist Devices
Authors
T. R. Melo
T. D. Cordeiro
I. A. Cestari
J. S. da Rocha Neto
A. M. N. Lima
Copyright Year
2022
DOI
https://doi.org/10.1007/978-3-030-70601-2_34