The Design, Modeling and Experimental Investigation of a Micro-G Microoptoelectromechanical Accelerometer with an Optical Tunneling Measuring Transducer; Sensors; Vol. 24, iss. 3

Bibliografski detalji
Parent link:Sensors.— .— Basel: MDPI AG
Vol. 24, iss. 3.— 2024.— Article number 765, 21 p.
Autor kompanije: Томский политехнический университет
Daljnji autori: Barbin E. S. Evgeny Sergeevich, Nesterenko T. G. Tamara Georgijewna, Koleda A. N. Alexej Nikolajevistch, Shesterikov E. Evgeny, Kulinich I. Ivan, Kokolov A. Andrey, Perin A. Anton
Sažetak:Title screen
This treatise studies a microoptoelectromechanical accelerometer (MOEMA) with an optical measuring transducer built according to the optical tunneling principle (evanescent coupling). The work discusses the design of the accelerometer’s microelectromechanical sensing element (MSE) and states the requirements for the design to achieve a sensitivity threshold of 1 µg m/s2 at a calculated eigenvalue of the MSE. The studies cover the selection of the dimensions, mass, eigenfrequency and corresponding stiffness of the spring suspension, gravity-induced cross-displacements. The authors propose and experimentally test an optical transducer positioning system represented by a capacitive actuator. This approach allows avoiding the restrictions in the fabrication of the transducer conditioned by the extremely high aspect ratio of deep silicon etching (more than 100). The designed MOEMA is tested on three manufactured prototypes. The experiments show that the sensitivity threshold of the accelerometers is 2 µg. For the dynamic range from minus 0.01 g to plus 0.01 g, the average nonlinearity of the accelerometers’ characteristics ranges from 0.7% to 1.62%. For the maximum dynamic range from minus 0.015 g to plus 0.05 g, the nonlinearity ranges from 2.34% to 2.9%, having the maximum deviation at the edges of the regions. The power gain of the three prototypes of accelerometers varies from 12.321 mW/g to 26.472 mW/g. The results provide broad prospects for the application of the proposed solutions in integrated inertial devices
Текстовый файл
Jezik:engleski
Izdano: 2024
Teme:
Online pristup:http://earchive.tpu.ru/handle/11683/132484
https://doi.org/10.3390/s24030765
Format: Elektronički Poglavlje knjige
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=672566

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200 1 |a The Design, Modeling and Experimental Investigation of a Micro-G Microoptoelectromechanical Accelerometer with an Optical Tunneling Measuring Transducer  |f E. S. Barbin, T. G. Nesterenko, A. N. Koleda [et al.] 
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330 |a This treatise studies a microoptoelectromechanical accelerometer (MOEMA) with an optical measuring transducer built according to the optical tunneling principle (evanescent coupling). The work discusses the design of the accelerometer’s microelectromechanical sensing element (MSE) and states the requirements for the design to achieve a sensitivity threshold of 1 µg m/s2 at a calculated eigenvalue of the MSE. The studies cover the selection of the dimensions, mass, eigenfrequency and corresponding stiffness of the spring suspension, gravity-induced cross-displacements. The authors propose and experimentally test an optical transducer positioning system represented by a capacitive actuator. This approach allows avoiding the restrictions in the fabrication of the transducer conditioned by the extremely high aspect ratio of deep silicon etching (more than 100). The designed MOEMA is tested on three manufactured prototypes. The experiments show that the sensitivity threshold of the accelerometers is 2 µg. For the dynamic range from minus 0.01 g to plus 0.01 g, the average nonlinearity of the accelerometers’ characteristics ranges from 0.7% to 1.62%. For the maximum dynamic range from minus 0.015 g to plus 0.05 g, the nonlinearity ranges from 2.34% to 2.9%, having the maximum deviation at the edges of the regions. The power gain of the three prototypes of accelerometers varies from 12.321 mW/g to 26.472 mW/g. The results provide broad prospects for the application of the proposed solutions in integrated inertial devices 
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461 1 |t Sensors  |c Basel  |n MDPI AG 
463 1 |t Vol. 24, iss. 3  |v Article number 765, 21 p.  |d 2024 
610 1 |a электронный ресурс 
610 1 |a труды учёных ТПУ 
610 1 |a microoptoelectromechanical accelerometer 
610 1 |a tunneling effect 
610 1 |a evanescent coupling 
610 1 |a proof mass 
610 1 |a waveguides 
610 1 |a microoptoelectromechanical sensing element 
610 1 |a optical measuring transducer 
610 1 |a sensitivity threshold 
610 1 |a positioning system 
701 1 |a Barbin  |b E. S.  |c specialist in the field of instrument engineering  |c engineer of Tomsk Polytechnic University  |f 1988-  |g Evgeny Sergeevich  |9 19519 
701 1 |a Nesterenko  |b T. G.  |c Fachmann auf dem Gebiet des Maschinenbaues  |c Dozent der Polytechnischen Universität Tomsk, Kandidat der technischen Wissenschaften  |f 1946-  |g Tamara Georgijewna  |9 15262 
701 1 |a Koleda  |b A. N.  |c Fachmann auf dem Gebiet des Gerätebaues  |c Ingenieur der Polytechnischen Universitat Tomsk  |f 1985-  |g Alexej Nikolajevistch  |9 17032 
701 1 |a Shesterikov  |b E.  |g Evgeny 
701 1 |a Kulinich  |b I.  |g Ivan 
701 1 |a Kokolov  |b A.  |g Andrey 
701 1 |a Perin  |b A.  |g Anton 
712 0 2 |a Томский политехнический университет  |c 1991-  |9 26305 
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