Sensing signal conditioning circuit design and analysis for emerging pressure sensing technology

Advances made in the fields of material science and Micromechanical Systems (MEMS) have resulted in high performance MEMS devices that are used successfully as sensors. In the field of healthcare, emerging pressure sensor technologies have become of interest. Piezocapacitive, piezoelectric and piezo...

Full description

Saved in:
Bibliographic Details
Main Author: Lim, John Jia Song
Other Authors: Goh Wang Ling
Format: Final Year Project
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/10356/71737
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-71737
record_format dspace
spelling sg-ntu-dr.10356-717372023-07-07T16:32:09Z Sensing signal conditioning circuit design and analysis for emerging pressure sensing technology Lim, John Jia Song Goh Wang Ling School of Electrical and Electronic Engineering Microelectronics Centre DRNTU::Engineering::Electrical and electronic engineering::Integrated circuits Advances made in the fields of material science and Micromechanical Systems (MEMS) have resulted in high performance MEMS devices that are used successfully as sensors. In the field of healthcare, emerging pressure sensor technologies have become of interest. Piezocapacitive, piezoelectric and piezoresistive sensors are some technologies used for pressure sensing for their excellent accuracy, sensitivity, resolution and miniaturization capability. In this research, the required performance of a radial pulse blood pressure sensor was characterized. Piezocapacitive, piezoelectric and piezoresistive sensors were then compared to review their operating principle, reliability, performance and robustness with respect to their ability to be used as a non-invasive radial pulse blood pressure sensor. For capacitive sensing, piezoelectric sensing and piezoresistive sensing, the technologies selected were the capacitive comb drive technology, PZT crystal and the highly doped semiconductor strain gage respectively. Using the high performance LTSPICE simulator, SPICE models were made based of the traits of the selected materials to simulate the electrical characteristics of the sensors. For each of these sensor electrical models, several signal conditioning circuit case studies were designed and analyzed. Charge mode amplifier and voltage mode amplifier circuits were built for piezoelectric sensors. Switched Capacitor based Capacitance to Voltage Converters and Capacitance to Digital Converters with a Successive Approximation Register (SAR) circuit were built for capacitive sensors. Finally, for the semiconductor piezoresistive strain gage, a Wheatstone bridge circuit used in conjunction with three different signal conditioning circuits were built: the op-amp subtractor, two op-amp INA and three op-amp INA. Transient response and frequency response simulations were then conducted in SPICE to analyze the performance of the circuit in response to a 100Hz sinusoidal signal, mimicking a 100Hz, 0 – 35KPa radial pulse signal. Based on the simulation results, the capacitive sensing and piezoresistive technologies were selected as good potential technologies to monitor radial blood pressure, though the final choice was made to use piezoresistive technology for its high performance and ease of use. The op-amp used to model the circuits were mostly ideal hence more investigation can be done in the future regarding the performance of these circuits with practical op amps. Bachelor of Engineering 2017-05-19T02:19:24Z 2017-05-19T02:19:24Z 2017 Final Year Project (FYP) http://hdl.handle.net/10356/71737 en Nanyang Technological University 91 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Electrical and electronic engineering::Integrated circuits
spellingShingle DRNTU::Engineering::Electrical and electronic engineering::Integrated circuits
Lim, John Jia Song
Sensing signal conditioning circuit design and analysis for emerging pressure sensing technology
description Advances made in the fields of material science and Micromechanical Systems (MEMS) have resulted in high performance MEMS devices that are used successfully as sensors. In the field of healthcare, emerging pressure sensor technologies have become of interest. Piezocapacitive, piezoelectric and piezoresistive sensors are some technologies used for pressure sensing for their excellent accuracy, sensitivity, resolution and miniaturization capability. In this research, the required performance of a radial pulse blood pressure sensor was characterized. Piezocapacitive, piezoelectric and piezoresistive sensors were then compared to review their operating principle, reliability, performance and robustness with respect to their ability to be used as a non-invasive radial pulse blood pressure sensor. For capacitive sensing, piezoelectric sensing and piezoresistive sensing, the technologies selected were the capacitive comb drive technology, PZT crystal and the highly doped semiconductor strain gage respectively. Using the high performance LTSPICE simulator, SPICE models were made based of the traits of the selected materials to simulate the electrical characteristics of the sensors. For each of these sensor electrical models, several signal conditioning circuit case studies were designed and analyzed. Charge mode amplifier and voltage mode amplifier circuits were built for piezoelectric sensors. Switched Capacitor based Capacitance to Voltage Converters and Capacitance to Digital Converters with a Successive Approximation Register (SAR) circuit were built for capacitive sensors. Finally, for the semiconductor piezoresistive strain gage, a Wheatstone bridge circuit used in conjunction with three different signal conditioning circuits were built: the op-amp subtractor, two op-amp INA and three op-amp INA. Transient response and frequency response simulations were then conducted in SPICE to analyze the performance of the circuit in response to a 100Hz sinusoidal signal, mimicking a 100Hz, 0 – 35KPa radial pulse signal. Based on the simulation results, the capacitive sensing and piezoresistive technologies were selected as good potential technologies to monitor radial blood pressure, though the final choice was made to use piezoresistive technology for its high performance and ease of use. The op-amp used to model the circuits were mostly ideal hence more investigation can be done in the future regarding the performance of these circuits with practical op amps.
author2 Goh Wang Ling
author_facet Goh Wang Ling
Lim, John Jia Song
format Final Year Project
author Lim, John Jia Song
author_sort Lim, John Jia Song
title Sensing signal conditioning circuit design and analysis for emerging pressure sensing technology
title_short Sensing signal conditioning circuit design and analysis for emerging pressure sensing technology
title_full Sensing signal conditioning circuit design and analysis for emerging pressure sensing technology
title_fullStr Sensing signal conditioning circuit design and analysis for emerging pressure sensing technology
title_full_unstemmed Sensing signal conditioning circuit design and analysis for emerging pressure sensing technology
title_sort sensing signal conditioning circuit design and analysis for emerging pressure sensing technology
publishDate 2017
url http://hdl.handle.net/10356/71737
_version_ 1772828900847517696