DocumentCode
3383968
Title
A two-step approach for EMI evaluation of a wearable ECG
Author
Wei Liao ; Jingjing Shi ; Jianqing Wang
Author_Institution
Nagoya Inst. of Technol., Nagoya, Japan
fYear
2015
fDate
26-29 May 2015
Firstpage
27
Lastpage
29
Abstract
In this study, we propose a two-step approach to evaluate electromagnetic interference (EMI) with a wearable electrocardiogram (ECG) sensor. The two-step approach combines a quasi-static electromagnetic (EM) field analysis and an electric circuit analysis, and is applied to the EMI analysis at frequencies below 1 MHz for our developed wearable ECG to demonstrate its usefulness. The quasi-static EM field analysis gives the common mode voltage coupled from the incident EM field at the ECG sensing electrodes, and the electric circuit analysis quantifies a differential mode voltage at the differential amplifier output of the ECG detection circuit. The differential mode voltage has been shown to come from a conversion from the common mode voltage due to an unbalance between the contact impedances of the two sensing electrodes. It may achieve nearly 0.6 V at the differential amplifier output under 10-V/m plane-wave incident electric field, and completely mask the ECG signal. It is essential to reduce the unbalance as much as possible to not cause a significant interference voltage in the amplified ECG signal.
Keywords
biomedical electrodes; body sensor networks; electrocardiography; electromagnetic interference; network analysis; ECG detection circuit; ECG sensing electrodes; EMI analysis; EMI evaluation; common mode voltage; differential amplifier output; differential mode voltage; electric circuit analysis; electrocardiogram; electromagnetic interference; quasistatic electromagnetic field analysis; two step approach; wearable ECG sensor; Electrodes;
fLanguage
English
Publisher
ieee
Conference_Titel
Electromagnetic Compatibility (APEMC), 2015 Asia-Pacific Symposium on
Conference_Location
Taipei
Print_ISBN
978-1-4799-6668-4
Type
conf
DOI
10.1109/APEMC.2015.7175355
Filename
7175355
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