Skip to main content
Top
Published in: Measurement Techniques 1/2019

09-05-2019 | ELECTROMAGNETIC MEASUREMENTS

Compensation of Motion-Induced Noise for an Electric-Field-Strength Sensor Electrode in Seawater

Author: V. G. Maksimenko

Published in: Measurement Techniques | Issue 1/2019

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

We demonstrate that it is possible to compensate for electric-field-strength sensor electrode noise due to variations in fluid velocity relative to the sensor electrodes. This compensation will provide more than a factor of two increase in the sensitivity of the electric-field-strength measurement device. We propose a device design for electric field strength measurements in seawater in the extremely-low-frequency and super-low-frequency bands.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
1.
go back to reference S. L. Bernstein, M. L. Burrows, J. E. Evans, et al., “Long-range communications at extremely low frequencies,” TIIER, 62, No. 3, 5–30 (1974). S. L. Bernstein, M. L. Burrows, J. E. Evans, et al., “Long-range communications at extremely low frequencies,” TIIER, 62, No. 3, 5–30 (1974).
2.
go back to reference Naval Communications, Command, and Control. 1909–2009: Anniversary Edition, Inform. Most, Moscow (2005). Naval Communications, Command, and Control. 1909–2009: Anniversary Edition, Inform. Most, Moscow (2005).
3.
go back to reference A. A. Sarkisova (ed.), Role of Russian Science in Development of the Domestic Submarine Fleet, Nauka, Moscow (2008). A. A. Sarkisova (ed.), Role of Russian Science in Development of the Domestic Submarine Fleet, Nauka, Moscow (2008).
4.
go back to reference N. A. Palshin, “Oceanic electromagnetic studies: A review,” Surv. Geophys., 17, No. 4, 455–491 (1996).ADSCrossRef N. A. Palshin, “Oceanic electromagnetic studies: A review,” Surv. Geophys., 17, No. 4, 455–491 (1996).ADSCrossRef
5.
go back to reference V. V. Fedynskii, Exploration Geophysics: Geophysical Techniques for Studying the Earth’s Crust, Prospecting for Minerals, and Mineral Exploration, Nedra, Moscow (1964). V. V. Fedynskii, Exploration Geophysics: Geophysical Techniques for Studying the Earth’s Crust, Prospecting for Minerals, and Mineral Exploration, Nedra, Moscow (1964).
6.
go back to reference E. P. Velikhov (ed.), Interaction between Electromagnetic Fields Emitted by a Controllable UHF Source and the Ionosphere/Earth’s Crust: Proc. 1st All-Russ. Sci. Pract. Seminar, Institute of Geology, Kola Science Center, Earth Science Division, Russian Academy of Sciences (2014), Vol. 1. E. P. Velikhov (ed.), Interaction between Electromagnetic Fields Emitted by a Controllable UHF Source and the Ionosphere/Earth’s Crust: Proc. 1st All-Russ. Sci. Pract. Seminar, Institute of Geology, Kola Science Center, Earth Science Division, Russian Academy of Sciences (2014), Vol. 1.
7.
go back to reference E. P. Velikhov (ed.), Interaction between ELF and SLF Electromagnetic Fields and the Ionosphere/Earth’s Crust: Proc. 1st All-Russ. Sci. Pract. Seminar, Institute of Geology, Kola Science Center, Earth Science Division, Russian Academy of Sciences (2014), Vol. 2. E. P. Velikhov (ed.), Interaction between ELF and SLF Electromagnetic Fields and the Ionosphere/Earth’s Crust: Proc. 1st All-Russ. Sci. Pract. Seminar, Institute of Geology, Kola Science Center, Earth Science Division, Russian Academy of Sciences (2014), Vol. 2.
8.
go back to reference E. F. Zimin and E. S. Kochanov, Measurement of Electric and Magnetic Fields in Conductive Media, Energoatomizdat, Moscow (1985). E. F. Zimin and E. S. Kochanov, Measurement of Electric and Magnetic Fields in Conductive Media, Energoatomizdat, Moscow (1985).
9.
go back to reference V. V. Akindinov, V. I. Naryshkin, and A. M. Ryazantsev, “Electromagnetic fields in sea water (review),” Radiotekhn. Elektron., 21, No. 5, 913–944 (1976). V. V. Akindinov, V. I. Naryshkin, and A. M. Ryazantsev, “Electromagnetic fields in sea water (review),” Radiotekhn. Elektron., 21, No. 5, 913–944 (1976).
10.
go back to reference V. G. Maksimenko and V. I. Naryshkin, “Motion noise of the electrode-type electric field sensors moving in seawater and means of its reduction,” Radiotekhn. Elektron., 48, No. 1, 70–76 (2003). V. G. Maksimenko and V. I. Naryshkin, “Motion noise of the electrode-type electric field sensors moving in seawater and means of its reduction,” Radiotekhn. Elektron., 48, No. 1, 70–76 (2003).
11.
go back to reference V. Z. Dykman, O. I. Efremov, and V. A.Barabash, Patent 2548126 RF, “Device for measuring flow variations in an electrically conductive fluid,” Izobret. Polezn. Modeli, No. 10 (2015). V. Z. Dykman, O. I. Efremov, and V. A.Barabash, Patent 2548126 RF, “Device for measuring flow variations in an electrically conductive fluid,” Izobret. Polezn. Modeli, No. 10 (2015).
12.
go back to reference B. I. Reznikov, Invent. Certif. 1615644 USSR, “Three-component electric-field-strength sensor for use in sea water,” Otkryt. Izobret., No. 47 (1990). B. I. Reznikov, Invent. Certif. 1615644 USSR, “Three-component electric-field-strength sensor for use in sea water,” Otkryt. Izobret., No. 47 (1990).
13.
go back to reference M. S. Kasimzade, R. F. Khalilov, and A. N. Balashov, Electrokinetic Data Transducers, Energiya, Moscow (1973). M. S. Kasimzade, R. F. Khalilov, and A. N. Balashov, Electrokinetic Data Transducers, Energiya, Moscow (1973).
14.
go back to reference V. V. Akindinov, V. I. Naryshkin, and A. M. Ryazantsev, “Experimental studies of the polarization of a metal electrode moving in an electrolyte,” Radiotekhn. Elektron., 41, No. 8, 985–989 (1996). V. V. Akindinov, V. I. Naryshkin, and A. M. Ryazantsev, “Experimental studies of the polarization of a metal electrode moving in an electrolyte,” Radiotekhn. Elektron., 41, No. 8, 985–989 (1996).
15.
go back to reference V. G. Maksimenko, “Noise of an electrode sensor in a flow of liquid,” Izmer. Tekhn., No. 9, 57–61 (2017). V. G. Maksimenko, “Noise of an electrode sensor in a flow of liquid,” Izmer. Tekhn., No. 9, 57–61 (2017).
16.
go back to reference V. G. Maksimenko, Ya. V. Machina, and O. G. Maksimenko, Patent 159105 RF, “Device for fluid velocity measurement,” Izobret. Polezn. Modeli, No. 3 (2016). V. G. Maksimenko, Ya. V. Machina, and O. G. Maksimenko, Patent 159105 RF, “Device for fluid velocity measurement,” Izobret. Polezn. Modeli, No. 3 (2016).
17.
go back to reference V. G. Maksimenko, “Statistical characteristics of the nonstationary noise of an electrode sensor,” Radiotekhn. Elektron., 58, No. 8, 768–775 (2013). V. G. Maksimenko, “Statistical characteristics of the nonstationary noise of an electrode sensor,” Radiotekhn. Elektron., 58, No. 8, 768–775 (2013).
Metadata
Title
Compensation of Motion-Induced Noise for an Electric-Field-Strength Sensor Electrode in Seawater
Author
V. G. Maksimenko
Publication date
09-05-2019
Publisher
Springer US
Published in
Measurement Techniques / Issue 1/2019
Print ISSN: 0543-1972
Electronic ISSN: 1573-8906
DOI
https://doi.org/10.1007/s11018-019-01588-z

Other articles of this Issue 1/2019

Measurement Techniques 1/2019 Go to the issue