A Multi-Frequency Focused Impedance Measurement System Based on Analogue Synchronous Peak Detection

IF 1.9 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Frontiers in electronics Pub Date : 2021-12-10 DOI:10.3389/felec.2021.791016
M. A. Kadir, Adrian J. Wilson, K. Siddique-e Rabbani
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引用次数: 3

Abstract

Monitoring of anatomical structures and physiological processes by electrical impedance has attracted scientists as it is noninvasive, nonionizing and the instrumentation is relatively simple. Focused Impedance Method (FIM) is attractive in this context, as it has enhanced sensitivity at the central region directly beneath the electrode configuration minimizing contribution from neighboring regions. FIM essentially adds or averages two concentric and orthogonal combinations of conventional Tetrapolar Impedance Measurements (TPIM) and has three versions with 4, 6, and 8 electrodes. This paper describes the design and testing of a multi-frequency FIM (MFFIM) system capable of measuring all three versions of FIM at 8 frequencies in the range 10 kHz—1 MHz. A microcontroller based multi-frequency signal generator and a balanced Howland current source with high output impedance (476 kΩ at 10 kHz and 58.3 kΩ at 1 MHz) were implemented for driving currents into biological tissues with an error <1%. The measurements were carried out at each frequency sequentially. The peak values of the amplified voltage signals were measured using a novel analogue synchronous peak detection technique from which the transfer impedances were obtained. The developed system was tested using TPIM measurements on a passive RC Cole network placed between two RC networks, the latter representing skin-electrode contact impedances. Overall accuracy of the measurement was very good (error <4% at all frequencies except 1 MHz, with error 6%) and the resolution was 0.1 Ω. The designed MFFIM system had a sampling rate of >45 frames per second which was deemed adequate for noninvasive real-time impedance measurements on biological tissues.
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基于模拟同步峰值检测的多频聚焦阻抗测量系统
电阻抗监测解剖结构和生理过程因其无创、非电离和仪器相对简单而吸引了科学家。聚焦阻抗法(FIM)在这种情况下很有吸引力,因为它在电极结构正下方的中心区域增强了灵敏度,最大限度地减少了邻近区域的影响。FIM基本上是将传统四极阻抗测量(TPIM)的两个同心和正交组合相加或平均,并有4、6和8个电极的三种版本。本文描述了一个多频FIM (MFFIM)系统的设计和测试,该系统能够在10 kHz-1 MHz范围内的8个频率测量所有三个版本的FIM。基于微控制器的多频信号发生器和具有高输出阻抗的平衡Howland电流源(10khz时为476 kΩ, 1mhz时为58.3 kΩ)用于驱动电流进入生物组织,误差为每秒45帧,被认为足以用于生物组织的非侵入性实时阻抗测量。
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