The Investigation of Bio-impedance Analysis at a Wrist Phantom with Two Pulsatile Arteries.

IF 1.6 4区 医学 Q3 CARDIAC & CARDIOVASCULAR SYSTEMS Cardiovascular Engineering and Technology Pub Date : 2023-12-01 Epub Date: 2023-10-17 DOI:10.1007/s13239-023-00689-9
Yang Yu, Andrew Lowe, Gautam Anand, Anubha Kalra, Huiyang Zhang
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Abstract

Purpose: Bio-impedance analysis (BIA) has been widely investigated for hemodynamic monitoring. However, previous works rarely modelled two synchronously pulsatile arteries (representing the radial and ulnar arteries) in the wrist/forearm model. This work aims to clarify and quantify the influences of two pulsatile arteries on BIA.

Methods: First, two blood-filled arteries were structured in a 3D wrist segment using the finite element method (FEM). Afterwards, an easy-to-produce two-arteries artificial wrist was fabricated with two components: gelatine-based surrounding tissue phantom and saline blood phantom. A syringe driver was utilised to constrict the arteries, and the impedance signals were measured using a Multi-frequency Impedance Analyser (MFIA).

Results: Both simulation and experimental results demonstrated the non-negligible influences of the ulnar artery on the overall BIA, inducing unwanted resistance changes to the acquired signals from the radial artery. The phantom experiments revealed the summation of the individual resistance changes caused by a single pulsatile artery was approximately equal to the measured resistance change caused by two synchronously pulsatile arteries, confirming the measured impedance signal at the wrist contains the pulsatile information from both arteries.

Conclusion: This work is the first simulation and phantom investigation into two synchronously pulsatile arteries under BIA in the distal forearm, providing a better insight and understanding in the morphology of measured impedance signals. Future research can accordingly select either a small spacing 4-spot electrode configuration for a single artery sensing or a band electrode configuration for overall pulsatile arteries sensing. A more accurate estimation of blood volume change and pulse wave analysis (PWA) could help to develop cuffless blood pressure measurement (BPM).

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具有两条脉动动脉的腕关节模型的生物阻抗分析研究。
目的:生物阻抗分析(BIA)已被广泛用于血液动力学监测。然而,以前的工作很少在手腕/前臂模型中模拟两条同步搏动的动脉(代表桡动脉和尺动脉)。这项工作旨在阐明和量化两条脉动动脉对BIA的影响。方法:首先,采用有限元法(FEM)将两条充满血液的动脉构造成三维腕关节段。然后,用明胶基周围组织模型和生理盐水模型制作了一个易于制作的双动脉人工腕。使用注射器驱动器收缩动脉,并使用多频阻抗分析仪(MFIA)测量阻抗信号。结果:模拟和实验结果都表明,尺动脉对整体BIA的影响是不可忽略的,对来自桡动脉的采集信号产生了不必要的阻力变化。体模实验表明,由单个脉动动脉引起的单个阻力变化的总和大致等于由两个同步脉动动脉引起测量的阻力变化,证实了手腕处测量的阻抗信号包含来自两个动脉的脉动信息。结论:这项工作是对前臂远端BIA下两条同步搏动动脉的首次模拟和体模研究,为更好地了解测量阻抗信号的形态提供了更好的见解和理解。因此,未来的研究可以选择用于单个动脉传感的小间距四电极配置,或者用于整个脉动动脉传感的带电极配置。更准确地估计血容量变化和脉搏波分析(PWA)有助于开发无袖带血压测量(BPM)。
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来源期刊
Cardiovascular Engineering and Technology
Cardiovascular Engineering and Technology Engineering-Biomedical Engineering
CiteScore
4.00
自引率
0.00%
发文量
51
期刊介绍: Cardiovascular Engineering and Technology is a journal publishing the spectrum of basic to translational research in all aspects of cardiovascular physiology and medical treatment. It is the forum for academic and industrial investigators to disseminate research that utilizes engineering principles and methods to advance fundamental knowledge and technological solutions related to the cardiovascular system. Manuscripts spanning from subcellular to systems level topics are invited, including but not limited to implantable medical devices, hemodynamics and tissue biomechanics, functional imaging, surgical devices, electrophysiology, tissue engineering and regenerative medicine, diagnostic instruments, transport and delivery of biologics, and sensors. In addition to manuscripts describing the original publication of research, manuscripts reviewing developments in these topics or their state-of-art are also invited.
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