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Design of a multi-frequency Bio-Impedance Spectroscopy system Analog Front-End and Digital Back-End with system on-chip implementation

机译:具有系统片上实现的多频生物阻抗谱系统模拟前端和数字后端的设计

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In this paper, the design of an on-board and system on-chip Bio-Impedance Spectroscopy (BIS) mixed signal system is presented. It consists of a Direct Digital Synthesis Sine-Wave Generator (DDS-SWG), an Analog Front-End (AFE), an Analog-Digital Converter (ADC), and a Digital Back-End implemented on a Field Programmable Gate Array (FPGA). The FPGA drives the ADC, the DDS-SWG, and the LCD. The AFE consists of a high output impedance Load-In-Loop Current Source (LL-CS) and High Common-Mode Rejection Ratio (CMRR) Instrumentation Amplifiers (IA). It uses a simple and straightforward impedance extraction algorithm using division and constant multiplication. Furthermore, a method that extends the AFE implementation to BIS tomography applications is presented offering low power dissipation and more chip area budget. The CMOS implementation of the AFE and the digital ASIC using TSMC 0.18 mu m 1P6M are also presented. The CMOS AFE has been optimized to dissipate low power even when operating at high frequency. The system forms part of a platform that aims to predict a urolithiasis (urinary stone) event where qualitative measures of K+, Ca2+, Cl- and Na+ concentrations in urine can be obtained through impedance/ conductivity. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在本文中,提出了一种板载和系统片上生物阻抗谱(BIS)混合信号系统的设计。它由直接数字合成正弦波发生器(DDS-SWG),模拟前端(AFE),模数转换器(ADC)和在现场可编程门阵列(FPGA)上实现的数字后端组成)。 FPGA驱动ADC,DDS-SWG和LCD。 AFE由高输出阻抗环路负载电流源(LL-CS)和高共模抑制比(CMRR)仪表放大器(IA)组成。它使用一种简单直接的阻抗提取算法,该算法使用除法和常数乘法。此外,提出了一种将AFE实施扩展到BI​​S层析成像应用程序的方法,该方法具有较低的功耗和更多的芯片面积预算。还介绍了使用TSMC 0.18μm1P6M的AFE的CMOS实现和数字ASIC。 CMOS AFE经过优化,即使在高频下也能消耗低功率。该系统构成了一个平台的一部分,该平台旨在预测尿石症(尿结石)事件,可通过阻抗/电导率获得尿中K +,Ca2 +,Cl-和Na +浓度的定性测量。 (C)2016 Elsevier Ltd.保留所有权利。

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