Cargando…

A Non-Invasive Physiological Control System of a Rotary Blood Pump Based on Preload Sensitivity: Use of Frank–Starling-Like Mechanism

Implanting rotary blood pumps (RBPs) has become the principal treatment for patients suffering from severe heart failure. There are still many challenges to address for RBP control systems. These problems include meeting the patient’s physiological perfusion, eliminating postoperative complications,...

Descripción completa

Detalles Bibliográficos
Autores principales: Wang, Fangqun, Wang, Shaojun, Li, Zhijian, He, Chenyang, Xu, Fan, Jing, Teng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9692647/
https://www.ncbi.nlm.nih.gov/pubmed/36422409
http://dx.doi.org/10.3390/mi13111981
_version_ 1784837319905247232
author Wang, Fangqun
Wang, Shaojun
Li, Zhijian
He, Chenyang
Xu, Fan
Jing, Teng
author_facet Wang, Fangqun
Wang, Shaojun
Li, Zhijian
He, Chenyang
Xu, Fan
Jing, Teng
author_sort Wang, Fangqun
collection PubMed
description Implanting rotary blood pumps (RBPs) has become the principal treatment for patients suffering from severe heart failure. There are still many challenges to address for RBP control systems. These problems include meeting the patient’s physiological perfusion, eliminating postoperative complications, as well as debugging the patient’s physiological control system (automatically and indiscriminately). This paper proposes a non-invasive adaptive control system based on the Frank–Starling-like mechanism (NAC-FSL) to solve these problems. This control system uses the motor speed of the rotary blood pump as the only input variable, and the pump flow was estimated by the motor speed for achieving non-invasive detection. Simultaneously, a cardiovascular reference model was developed to provide an appropriate real-time preload for heart failure patients. The Frank–Starling-like control baseline was tracked to obtain the desired reference average pump flow by using the preload. Avoiding suction was done by adopting the control baseline (CLn), which included a flat slope under a high preload. Moreover, the NAC-FSL system could potentially unload the left ventricle and provide a higher pump flow with a smaller error during the exercise state, as compared to the CSC system. Finally, the K value indicating the preload sensitivity in the NAC-FSL controller was optimized to meet the perfusion needs according to the hemodynamic parameters.
format Online
Article
Text
id pubmed-9692647
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96926472022-11-26 A Non-Invasive Physiological Control System of a Rotary Blood Pump Based on Preload Sensitivity: Use of Frank–Starling-Like Mechanism Wang, Fangqun Wang, Shaojun Li, Zhijian He, Chenyang Xu, Fan Jing, Teng Micromachines (Basel) Article Implanting rotary blood pumps (RBPs) has become the principal treatment for patients suffering from severe heart failure. There are still many challenges to address for RBP control systems. These problems include meeting the patient’s physiological perfusion, eliminating postoperative complications, as well as debugging the patient’s physiological control system (automatically and indiscriminately). This paper proposes a non-invasive adaptive control system based on the Frank–Starling-like mechanism (NAC-FSL) to solve these problems. This control system uses the motor speed of the rotary blood pump as the only input variable, and the pump flow was estimated by the motor speed for achieving non-invasive detection. Simultaneously, a cardiovascular reference model was developed to provide an appropriate real-time preload for heart failure patients. The Frank–Starling-like control baseline was tracked to obtain the desired reference average pump flow by using the preload. Avoiding suction was done by adopting the control baseline (CLn), which included a flat slope under a high preload. Moreover, the NAC-FSL system could potentially unload the left ventricle and provide a higher pump flow with a smaller error during the exercise state, as compared to the CSC system. Finally, the K value indicating the preload sensitivity in the NAC-FSL controller was optimized to meet the perfusion needs according to the hemodynamic parameters. MDPI 2022-11-15 /pmc/articles/PMC9692647/ /pubmed/36422409 http://dx.doi.org/10.3390/mi13111981 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Fangqun
Wang, Shaojun
Li, Zhijian
He, Chenyang
Xu, Fan
Jing, Teng
A Non-Invasive Physiological Control System of a Rotary Blood Pump Based on Preload Sensitivity: Use of Frank–Starling-Like Mechanism
title A Non-Invasive Physiological Control System of a Rotary Blood Pump Based on Preload Sensitivity: Use of Frank–Starling-Like Mechanism
title_full A Non-Invasive Physiological Control System of a Rotary Blood Pump Based on Preload Sensitivity: Use of Frank–Starling-Like Mechanism
title_fullStr A Non-Invasive Physiological Control System of a Rotary Blood Pump Based on Preload Sensitivity: Use of Frank–Starling-Like Mechanism
title_full_unstemmed A Non-Invasive Physiological Control System of a Rotary Blood Pump Based on Preload Sensitivity: Use of Frank–Starling-Like Mechanism
title_short A Non-Invasive Physiological Control System of a Rotary Blood Pump Based on Preload Sensitivity: Use of Frank–Starling-Like Mechanism
title_sort non-invasive physiological control system of a rotary blood pump based on preload sensitivity: use of frank–starling-like mechanism
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9692647/
https://www.ncbi.nlm.nih.gov/pubmed/36422409
http://dx.doi.org/10.3390/mi13111981
work_keys_str_mv AT wangfangqun anoninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT wangshaojun anoninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT lizhijian anoninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT hechenyang anoninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT xufan anoninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT jingteng anoninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT wangfangqun noninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT wangshaojun noninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT lizhijian noninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT hechenyang noninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT xufan noninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism
AT jingteng noninvasivephysiologicalcontrolsystemofarotarybloodpumpbasedonpreloadsensitivityuseoffrankstarlinglikemechanism