Experimental and Numerical Study of a Thermal Expansion Gyroscope for Different Gases

A new single-axis gas thermal gyroscope without proof mass is presented in this paper. The device was designed, manufactured and experimentally characterized. The obtained results were compared to numerical simulation. The working principle of the gyroscope is based on the deflection of a laminar ga...

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Main Authors: Guillaume Kock, Philippe Combette, Marwan Tedjini, Markus Schneider, Caroline Gauthier-Blum, Alain Giani
Format: Article
Language:English
Published: MDPI AG 2019-01-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/19/2/360
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spelling doaj-6d0587dee67947ab98ae7c475b6fdeff2020-11-25T02:15:23ZengMDPI AGSensors1424-82202019-01-0119236010.3390/s19020360s19020360Experimental and Numerical Study of a Thermal Expansion Gyroscope for Different GasesGuillaume Kock0Philippe Combette1Marwan Tedjini2Markus Schneider3Caroline Gauthier-Blum4Alain Giani5Institut d’Électronique et des Systèmes, Université de Montpellier, IES, F-34090 Montpellier, FranceInstitut d’Électronique et des Systèmes, Université de Montpellier, IES, F-34090 Montpellier, FranceInstitut d’Électronique et des Systèmes, Université de Montpellier, IES, F-34090 Montpellier, FranceThe French-German Research Institute of Saint-Louis, F-68301 Saint Louis CEDEX, FranceThe French-German Research Institute of Saint-Louis, F-68301 Saint Louis CEDEX, FranceInstitut d’Électronique et des Systèmes, Université de Montpellier, IES, F-34090 Montpellier, FranceA new single-axis gas thermal gyroscope without proof mass is presented in this paper. The device was designed, manufactured and experimentally characterized. The obtained results were compared to numerical simulation. The working principle of the gyroscope is based on the deflection of a laminar gas flow caused by the Coriolis effect. A bidirectional hot air flow is generated by alternating activation of two suspended resistive micro-heaters. The heated gas is encapsulated in a semi-open cavity and the gas expands primarily inside the cavity. The thermal expansion gyroscope has a simple structure. Indeed, the device is composed of a micromachined cavity on which three bridges are suspended. The central bridge is electrically separated into two segments enabling to set up two heaters which may be supplied independently from each other. The two other bridges, placed symmetrically on each side of the central bridge, are equipped with temperature detectors which measure variations in gas temperature. The differential temperature depends on the rotational velocity applied to the system. Various parameters such as the heating duty cycle, the type of the gas and the power injected into the heaters have been studied to define the optimal working conditions required to obtain the highest level of sensitivity over a measurement range of around 1000°/s. The robustness of the device has also been tested and validated for a shock resistance of 10,000 g for a duration of 400 µs.http://www.mdpi.com/1424-8220/19/2/360gas thermal gyroscopeMEMSthermal expansionshock resistancenumerical simulation
collection DOAJ
language English
format Article
sources DOAJ
author Guillaume Kock
Philippe Combette
Marwan Tedjini
Markus Schneider
Caroline Gauthier-Blum
Alain Giani
spellingShingle Guillaume Kock
Philippe Combette
Marwan Tedjini
Markus Schneider
Caroline Gauthier-Blum
Alain Giani
Experimental and Numerical Study of a Thermal Expansion Gyroscope for Different Gases
Sensors
gas thermal gyroscope
MEMS
thermal expansion
shock resistance
numerical simulation
author_facet Guillaume Kock
Philippe Combette
Marwan Tedjini
Markus Schneider
Caroline Gauthier-Blum
Alain Giani
author_sort Guillaume Kock
title Experimental and Numerical Study of a Thermal Expansion Gyroscope for Different Gases
title_short Experimental and Numerical Study of a Thermal Expansion Gyroscope for Different Gases
title_full Experimental and Numerical Study of a Thermal Expansion Gyroscope for Different Gases
title_fullStr Experimental and Numerical Study of a Thermal Expansion Gyroscope for Different Gases
title_full_unstemmed Experimental and Numerical Study of a Thermal Expansion Gyroscope for Different Gases
title_sort experimental and numerical study of a thermal expansion gyroscope for different gases
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2019-01-01
description A new single-axis gas thermal gyroscope without proof mass is presented in this paper. The device was designed, manufactured and experimentally characterized. The obtained results were compared to numerical simulation. The working principle of the gyroscope is based on the deflection of a laminar gas flow caused by the Coriolis effect. A bidirectional hot air flow is generated by alternating activation of two suspended resistive micro-heaters. The heated gas is encapsulated in a semi-open cavity and the gas expands primarily inside the cavity. The thermal expansion gyroscope has a simple structure. Indeed, the device is composed of a micromachined cavity on which three bridges are suspended. The central bridge is electrically separated into two segments enabling to set up two heaters which may be supplied independently from each other. The two other bridges, placed symmetrically on each side of the central bridge, are equipped with temperature detectors which measure variations in gas temperature. The differential temperature depends on the rotational velocity applied to the system. Various parameters such as the heating duty cycle, the type of the gas and the power injected into the heaters have been studied to define the optimal working conditions required to obtain the highest level of sensitivity over a measurement range of around 1000°/s. The robustness of the device has also been tested and validated for a shock resistance of 10,000 g for a duration of 400 µs.
topic gas thermal gyroscope
MEMS
thermal expansion
shock resistance
numerical simulation
url http://www.mdpi.com/1424-8220/19/2/360
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