Wireless power system for left ventricular assist device: Influence of coil design and tissue behavior on efficiency

This paper proposes a compact wireless power transfer (WPT) system designed to energize an implanted heart pump. The design integrates several power converters: a buck-boost converter supplied by a 14-volt battery, an H-bridge inverter, a low-pass filter, and a resonant inductive coupling WPT unit....

Full description

Saved in:
Bibliographic Details
Main Authors: Almorshidi Hawraa A., Mahdi Ali Jafer, Nawir Manal Hussain
Format: Article
Language:English
Published: Sciendo 2025-06-01
Series:Journal of Electrical Bioimpedance
Subjects:
Online Access:https://doi.org/10.2478/joeb-2025-0010
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849234066688180224
author Almorshidi Hawraa A.
Mahdi Ali Jafer
Nawir Manal Hussain
author_facet Almorshidi Hawraa A.
Mahdi Ali Jafer
Nawir Manal Hussain
author_sort Almorshidi Hawraa A.
collection DOAJ
description This paper proposes a compact wireless power transfer (WPT) system designed to energize an implanted heart pump. The design integrates several power converters: a buck-boost converter supplied by a 14-volt battery, an H-bridge inverter, a low-pass filter, and a resonant inductive coupling WPT unit. A resistive load of 40 ohms is used to simulate the equivalent pump's operation. To improve efficiency and limit power losses caused by high-frequency skin effects, a Litz wire is utilized. Consequently, a multi-layer transmission coil structure is employed to strengthen coupling and ensure deeper field penetration. The system operates in an open-loop configuration with manual adjustment of the DC-DC converter's duty cycle. A frequency of 6.78 MHz is selected based on the Industrial, Scientific, and Medical band due to its recognized safety and its ability to achieve deeper penetration into biological tissues. To optimize the design, precise mathematical modeling of both the WPT system and the tissue layers is conducted, simulating their impact on electromagnetic field behavior. Simulation results demonstrate an impressive power transfer efficiency of 91% across a separation of 60 mm. It is worth noting that most existing studies focus on low-power wireless energy delivery for internal medical devices; this research advances the field by targeting higher power demands, positioning it as a practical solution for critical applications like heart assist pumps.
format Article
id doaj-art-0e53000f4e284e46aa0ccadb745e411d
institution Kabale University
issn 1891-5469
language English
publishDate 2025-06-01
publisher Sciendo
record_format Article
series Journal of Electrical Bioimpedance
spelling doaj-art-0e53000f4e284e46aa0ccadb745e411d2025-08-20T04:03:17ZengSciendoJournal of Electrical Bioimpedance1891-54692025-06-01161697910.2478/joeb-2025-0010Wireless power system for left ventricular assist device: Influence of coil design and tissue behavior on efficiencyAlmorshidi Hawraa A.0Mahdi Ali Jafer1Nawir Manal Hussain2Department of Electrical and Electronic Engineering, University of Kerbala, 56001Karbala, IraqDepartment of Electrical and Electronic Engineering, University of Kerbala, 56001Karbala, IraqDepartment of Electrical and Electronic Engineering, University of Kerbala, 56001Karbala, IraqThis paper proposes a compact wireless power transfer (WPT) system designed to energize an implanted heart pump. The design integrates several power converters: a buck-boost converter supplied by a 14-volt battery, an H-bridge inverter, a low-pass filter, and a resonant inductive coupling WPT unit. A resistive load of 40 ohms is used to simulate the equivalent pump's operation. To improve efficiency and limit power losses caused by high-frequency skin effects, a Litz wire is utilized. Consequently, a multi-layer transmission coil structure is employed to strengthen coupling and ensure deeper field penetration. The system operates in an open-loop configuration with manual adjustment of the DC-DC converter's duty cycle. A frequency of 6.78 MHz is selected based on the Industrial, Scientific, and Medical band due to its recognized safety and its ability to achieve deeper penetration into biological tissues. To optimize the design, precise mathematical modeling of both the WPT system and the tissue layers is conducted, simulating their impact on electromagnetic field behavior. Simulation results demonstrate an impressive power transfer efficiency of 91% across a separation of 60 mm. It is worth noting that most existing studies focus on low-power wireless energy delivery for internal medical devices; this research advances the field by targeting higher power demands, positioning it as a practical solution for critical applications like heart assist pumps.https://doi.org/10.2478/joeb-2025-0010left ventricular assist devicewireless power transfer systemlitz wiremutual inductancemultilayer coilbuck-boost converterhuman tissues
spellingShingle Almorshidi Hawraa A.
Mahdi Ali Jafer
Nawir Manal Hussain
Wireless power system for left ventricular assist device: Influence of coil design and tissue behavior on efficiency
Journal of Electrical Bioimpedance
left ventricular assist device
wireless power transfer system
litz wire
mutual inductance
multilayer coil
buck-boost converter
human tissues
title Wireless power system for left ventricular assist device: Influence of coil design and tissue behavior on efficiency
title_full Wireless power system for left ventricular assist device: Influence of coil design and tissue behavior on efficiency
title_fullStr Wireless power system for left ventricular assist device: Influence of coil design and tissue behavior on efficiency
title_full_unstemmed Wireless power system for left ventricular assist device: Influence of coil design and tissue behavior on efficiency
title_short Wireless power system for left ventricular assist device: Influence of coil design and tissue behavior on efficiency
title_sort wireless power system for left ventricular assist device influence of coil design and tissue behavior on efficiency
topic left ventricular assist device
wireless power transfer system
litz wire
mutual inductance
multilayer coil
buck-boost converter
human tissues
url https://doi.org/10.2478/joeb-2025-0010
work_keys_str_mv AT almorshidihawraaa wirelesspowersystemforleftventricularassistdeviceinfluenceofcoildesignandtissuebehavioronefficiency
AT mahdialijafer wirelesspowersystemforleftventricularassistdeviceinfluenceofcoildesignandtissuebehavioronefficiency
AT nawirmanalhussain wirelesspowersystemforleftventricularassistdeviceinfluenceofcoildesignandtissuebehavioronefficiency