左室辅助装置无线供电系统:线圈设计和组织行为对效率的影响。

Q3 Biochemistry, Genetics and Molecular Biology
Journal of Electrical Bioimpedance Pub Date : 2025-06-16 eCollection Date: 2025-01-01 DOI:10.2478/joeb-2025-0010
Hawraa A Almorshidi, Ali Jafer Mahdi, Manal Hussain Nawir
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引用次数: 0

摘要

本文提出了一种紧凑的无线能量传输(WPT)系统,用于为植入心脏泵供电。该设计集成了几个电源转换器:一个由14伏电池供电的降压转换器、一个h桥逆变器、一个低通滤波器和一个谐振电感耦合WPT单元。采用40欧姆的阻性负载模拟等效泵的运行。为了提高效率和限制高频趋肤效应造成的功率损耗,采用了Litz线。因此,采用多层传输线圈结构来加强耦合并确保更深的场穿透。该系统在开环配置下运行,手动调节DC-DC变换器的占空比。基于工业、科学和医疗频段选择了6.78 MHz的频率,因为其公认的安全性以及能够更深地渗透到生物组织中。为了优化设计,对WPT系统和组织层进行了精确的数学建模,模拟了它们对电磁场行为的影响。仿真结果表明,在60毫米的间距上,功率传输效率高达91%。值得注意的是,现有的研究大多集中在内部医疗设备的低功耗无线能量传输上;这项研究通过瞄准更高的功率需求来推进该领域,将其定位为心脏辅助泵等关键应用的实用解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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. 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.

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来源期刊
Journal of Electrical Bioimpedance
Journal of Electrical Bioimpedance Engineering-Biomedical Engineering
CiteScore
3.00
自引率
0.00%
发文量
8
审稿时长
17 weeks
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