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Erschienen in: Measurement Techniques 3/2018

04.07.2018 | PHYSICOCHEMICAL MEASUREMENTS

Theoretical Basis for Fused-Quartz Resonator Flow Tube Design

verfasst von: Yu. K. Taranenko, O. Yu. Oliynyk, N. A. Minakova, O. V. Titova

Erschienen in: Measurement Techniques | Ausgabe 3/2018

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Abstract

We have derived the basic equations underlying the design specifications for fused-quartz resonator flow tubes, as well as the equations for the amplitude and angular frequency of the oscillations; developed a design for a resonator detector with a quartz-glass resonator flow tube; and studied the vibrational modes for the quartz tubes in this resonator. We present equations for determining the sensitivity and estimated error of the sensor element in the resonator sensor.

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Literatur
1.
Zurück zum Zitat A. G. Divin, S. V. Ponomarev, and G. V. Mozgova, Measurement Methods, Measuring Instruments, Tests, and Checks: Textbook, Pt. 2, TGTU, Tambov (2012). A. G. Divin, S. V. Ponomarev, and G. V. Mozgova, Measurement Methods, Measuring Instruments, Tests, and Checks: Textbook, Pt. 2, TGTU, Tambov (2012).
2.
Zurück zum Zitat A. Ya. Suranov, LabVIEW 7: Functional Reference, DMK-Press, Moscow (2005). A. Ya. Suranov, LabVIEW 7: Functional Reference, DMK-Press, Moscow (2005).
3.
Zurück zum Zitat V. K. Batorvin, A. S. Bessonov, V. V. Moshkin, and V. F. Papulovskii, LabVIEW: Laboratory Manual on Basic Measurement Techniques, DMK-Press, Moscow (2005). V. K. Batorvin, A. S. Bessonov, V. V. Moshkin, and V. F. Papulovskii, LabVIEW: Laboratory Manual on Basic Measurement Techniques, DMK-Press, Moscow (2005).
4.
Zurück zum Zitat V. Fedosov and A. Nesterenko, Digital Signal Processing in LabVIEW: Textbook, DMK-Press, Moscow (2017). V. Fedosov and A. Nesterenko, Digital Signal Processing in LabVIEW: Textbook, DMK-Press, Moscow (2017).
5.
Zurück zum Zitat V. A. Zverev, E. V. Krivopustova, and T. V. Tochilina, Optical Materials: Textbook for Optical System and Instrument Designers, Pt. 2, SPb NIU ITMO, St. Petersburg (2013). V. A. Zverev, E. V. Krivopustova, and T. V. Tochilina, Optical Materials: Textbook for Optical System and Instrument Designers, Pt. 2, SPb NIU ITMO, St. Petersburg (2013).
6.
Zurück zum Zitat Y. Murozaki, K. Nogawa, and F. Arai, “Miniaturized load sensor using quartz crystal resonator constructed through microfabrication and bonding,” Robomech J., 1, No. 1, 3 (2014).CrossRef Y. Murozaki, K. Nogawa, and F. Arai, “Miniaturized load sensor using quartz crystal resonator constructed through microfabrication and bonding,” Robomech J., 1, No. 1, 3 (2014).CrossRef
7.
Zurück zum Zitat M. Köhring, S. Böttger, U. Willer, and W. Schade, “LED-absorption-QEPAS sensor for biogas plants,” Sensors, 15, 12092–12102 (2015).CrossRef M. Köhring, S. Böttger, U. Willer, and W. Schade, “LED-absorption-QEPAS sensor for biogas plants,” Sensors, 15, 12092–12102 (2015).CrossRef
8.
Zurück zum Zitat J. P. Waclawek, H. Moser, and B. Lendl, “Compact quantum cascade laser based quartz-enhanced photoacoustic spectroscopy sensor system for detection of carbon disulfi de,” Opt. Express, 24, 6559–6571 (2016).ADSCrossRef J. P. Waclawek, H. Moser, and B. Lendl, “Compact quantum cascade laser based quartz-enhanced photoacoustic spectroscopy sensor system for detection of carbon disulfi de,” Opt. Express, 24, 6559–6571 (2016).ADSCrossRef
9.
Zurück zum Zitat J. Nie, J. Liu, N. Li, and X. Meng, “Dew point measurement using dual quartz crystal resonator sensor,” Sens. Actuators, B, 246, 792–799 (2017).CrossRef J. Nie, J. Liu, N. Li, and X. Meng, “Dew point measurement using dual quartz crystal resonator sensor,” Sens. Actuators, B, 246, 792–799 (2017).CrossRef
10.
Zurück zum Zitat J. Mouro, L. Teagno, A. Gualdino, et al., “Electrical characterization of thin-film silicon flexural resonators in linear and nonlinear regimes of motion for integration with electronics,” Sens. Actuators, A, 247, 482–493 (2016).CrossRef J. Mouro, L. Teagno, A. Gualdino, et al., “Electrical characterization of thin-film silicon flexural resonators in linear and nonlinear regimes of motion for integration with electronics,” Sens. Actuators, A, 247, 482–493 (2016).CrossRef
11.
Zurück zum Zitat L. Kong, X. Xie, J. Zhang, et al., “On the interaction between a quartz crystal resonator and an array of micro-beams in thickness-shear vibrations,” Acta Mech. Solida Sinica, 28, 464–470 (2015).CrossRef L. Kong, X. Xie, J. Zhang, et al., “On the interaction between a quartz crystal resonator and an array of micro-beams in thickness-shear vibrations,” Acta Mech. Solida Sinica, 28, 464–470 (2015).CrossRef
12.
Zurück zum Zitat V. L. Biderman, Theory of Mechanical Oscillations, Vysshaya Shkola, Moscow (1980). V. L. Biderman, Theory of Mechanical Oscillations, Vysshaya Shkola, Moscow (1980).
13.
Zurück zum Zitat O. V. Mazurin, M. V. Strel’tsina, and T. P. Shvaiko-Shvaikovskaya, Properties of Glasses and Glass-Forming Coatings: Handbook, Nauka, Leningrad (1998), Vol. 1. O. V. Mazurin, M. V. Strel’tsina, and T. P. Shvaiko-Shvaikovskaya, Properties of Glasses and Glass-Forming Coatings: Handbook, Nauka, Leningrad (1998), Vol. 1.
14.
Zurück zum Zitat V. I. Anur’ev, Machinery Design Engineer’s Handbook, I. N. Zhestkova (ed.), Mashinostroenie, Moscow (2001), Vol. 1. V. I. Anur’ev, Machinery Design Engineer’s Handbook, I. N. Zhestkova (ed.), Mashinostroenie, Moscow (2001), Vol. 1.
15.
Zurück zum Zitat Yu. K. Taranenko, “Mathematical model of the sensitivity of a differential fluid density sensor based on two tube resonators,” Vopr. Khim. Khim. Tekhnol., No. 5, 228–232 (2006). Yu. K. Taranenko, “Mathematical model of the sensitivity of a differential fluid density sensor based on two tube resonators,” Vopr. Khim. Khim. Tekhnol., No. 5, 228–232 (2006).
Metadaten
Titel
Theoretical Basis for Fused-Quartz Resonator Flow Tube Design
verfasst von
Yu. K. Taranenko
O. Yu. Oliynyk
N. A. Minakova
O. V. Titova
Publikationsdatum
04.07.2018
Verlag
Springer US
Erschienen in
Measurement Techniques / Ausgabe 3/2018
Print ISSN: 0543-1972
Elektronische ISSN: 1573-8906
DOI
https://doi.org/10.1007/s11018-018-1427-0

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