Design of the MEMS Piezoresistive Electronic Heart Sound Sensor

This paper proposes the electronic heart sound sensor, based on the piezoresistive principle and MEMS (Micro-Electro-Mechanical System) technology. Firstly, according to the characteristics of heart sound detection, the double-beam-block microstructure has been proposed, and the theoretical analysis...

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Main Authors: Guojun Zhang, Mengran Liu, Nan Guo, Wendong Zhang
Format: Article
Language:English
Published: MDPI AG 2016-11-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/16/11/1728
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spelling doaj-e47702c5adc44df4afab5892e8e8b9292020-11-24T21:40:04ZengMDPI AGSensors1424-82202016-11-011611172810.3390/s16111728s16111728Design of the MEMS Piezoresistive Electronic Heart Sound SensorGuojun Zhang0Mengran Liu1Nan Guo2Wendong Zhang3Science and Technology on Electronic Test & Measurement Laboratory, North University of China, Taiyuan 030051, ChinaScience and Technology on Electronic Test & Measurement Laboratory, North University of China, Taiyuan 030051, ChinaScience and Technology on Electronic Test & Measurement Laboratory, North University of China, Taiyuan 030051, ChinaScience and Technology on Electronic Test & Measurement Laboratory, North University of China, Taiyuan 030051, ChinaThis paper proposes the electronic heart sound sensor, based on the piezoresistive principle and MEMS (Micro-Electro-Mechanical System) technology. Firstly, according to the characteristics of heart sound detection, the double-beam-block microstructure has been proposed, and the theoretical analysis and finite element method (FEM) simulation have been carried out. Combined with the natural frequency response of the heart sound (20~600 Hz), its structure sizes have been determined. Secondly, the processing technology of the microstructure with the stress concentration grooves has been developed. The material and sizes of the package have been determined by the three-layer medium transmission principle. Lastly, the MEMS piezoresistive electronic heart sound sensor has been tested compared with the 3200-type electronic stethoscope from 3M (São Paulo, MN, USA). The test results show that the heart sound waveform tested by the MEMS electronic heart sound sensor are almost the same as that tested by the 3200-type electronic stethoscope. Moreover, its signal-to-noise ratio is significantly higher. Compared with the traditional stethoscope, the MEMS heart sound sensor can provide the first and second heart sounds containing more abundant information about the lesion. Compared with the 3200-type electronic stethoscope from 3M, it has better performance and lower cost.http://www.mdpi.com/1424-8220/16/11/1728MEMSheart sound sensorstress concentrationsignal-to-noise ratio
collection DOAJ
language English
format Article
sources DOAJ
author Guojun Zhang
Mengran Liu
Nan Guo
Wendong Zhang
spellingShingle Guojun Zhang
Mengran Liu
Nan Guo
Wendong Zhang
Design of the MEMS Piezoresistive Electronic Heart Sound Sensor
Sensors
MEMS
heart sound sensor
stress concentration
signal-to-noise ratio
author_facet Guojun Zhang
Mengran Liu
Nan Guo
Wendong Zhang
author_sort Guojun Zhang
title Design of the MEMS Piezoresistive Electronic Heart Sound Sensor
title_short Design of the MEMS Piezoresistive Electronic Heart Sound Sensor
title_full Design of the MEMS Piezoresistive Electronic Heart Sound Sensor
title_fullStr Design of the MEMS Piezoresistive Electronic Heart Sound Sensor
title_full_unstemmed Design of the MEMS Piezoresistive Electronic Heart Sound Sensor
title_sort design of the mems piezoresistive electronic heart sound sensor
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2016-11-01
description This paper proposes the electronic heart sound sensor, based on the piezoresistive principle and MEMS (Micro-Electro-Mechanical System) technology. Firstly, according to the characteristics of heart sound detection, the double-beam-block microstructure has been proposed, and the theoretical analysis and finite element method (FEM) simulation have been carried out. Combined with the natural frequency response of the heart sound (20~600 Hz), its structure sizes have been determined. Secondly, the processing technology of the microstructure with the stress concentration grooves has been developed. The material and sizes of the package have been determined by the three-layer medium transmission principle. Lastly, the MEMS piezoresistive electronic heart sound sensor has been tested compared with the 3200-type electronic stethoscope from 3M (São Paulo, MN, USA). The test results show that the heart sound waveform tested by the MEMS electronic heart sound sensor are almost the same as that tested by the 3200-type electronic stethoscope. Moreover, its signal-to-noise ratio is significantly higher. Compared with the traditional stethoscope, the MEMS heart sound sensor can provide the first and second heart sounds containing more abundant information about the lesion. Compared with the 3200-type electronic stethoscope from 3M, it has better performance and lower cost.
topic MEMS
heart sound sensor
stress concentration
signal-to-noise ratio
url http://www.mdpi.com/1424-8220/16/11/1728
work_keys_str_mv AT guojunzhang designofthememspiezoresistiveelectronicheartsoundsensor
AT mengranliu designofthememspiezoresistiveelectronicheartsoundsensor
AT nanguo designofthememspiezoresistiveelectronicheartsoundsensor
AT wendongzhang designofthememspiezoresistiveelectronicheartsoundsensor
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