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Erschienen in: Mobile Networks and Applications 5/2018

11.04.2018

Doppler Effect in the Acoustic Ultra Low Frequency Band for Wireless Underwater Networks

verfasst von: A.-M. Ahmad, J. Kassem, M. Barbeau, E. Kranakis, S. Porretta, J. Garcia-Alfaro

Erschienen in: Mobile Networks and Applications | Ausgabe 5/2018

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Abstract

It is well known that communication is affected by the change in frequency of a signal for an observer that is moving relative to the source. As a result of the motion of either the source or the observer, successive waves are emitted from a position that may get closer or further to the observer. This phenomenon, known as Doppler effect, also affects underwater acoustic waves used for communications between Autonomous Underwater Vehicles (AUVs), Underwater Sensors (USs) and remote operators. There have been few studies on the impact of Doppler shift in underwater communications. Assuming underwater communications using acoustic waves, in this paper we study the Doppler effect in relation to the half-power bandwidth and distance in the Ultra Low Frequency (ULF) band (i.e., from 0.3 to 3 kHz). We investigate two specific issues. Firstly, the maximum shift that can be expected on underwater links in the ULF band. Secondly, the maximum frequency drift, and associated patterns, that can happen during the reception of data frames. Numeric simulations are conducted. The analysis is based on scenarios that show the existence of significant Doppler effect. More specifically, we show that Doppler effect, under narrow half-power bandwidth, is significant with respect to the half-power bandwidth in the ULF band, for long distance communications. Furthermore, we show that Doppler effect patterns are not necessarily linear.

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Fußnoten
1
Some authors also refer to this range as Low Frequency [5] or Very Low Frequency [7].
 
2
The radial velocity of T and S, with respect to R, is the rate of distance change between T and R, and S and R, respectively [2].
 
Literatur
1.
Zurück zum Zitat Barbeau M, Blouin S, Cervera G, Garcia-Alfaro J, Hasannezhad B, Kranakis E (2015) Simulation of underwater communications with a colored noise approximation and mobility. In: 28th IEEE canadian conference on electrical and computer engineering (CCECE 2015), Halifax, NS, 2015, pp 1532–1537 Barbeau M, Blouin S, Cervera G, Garcia-Alfaro J, Hasannezhad B, Kranakis E (2015) Simulation of underwater communications with a colored noise approximation and mobility. In: 28th IEEE canadian conference on electrical and computer engineering (CCECE 2015), Halifax, NS, 2015, pp 1532–1537
2.
Zurück zum Zitat Blouin S, Mahboubi H, Aghdam AG (2017) Long-range passive doppler-only target tracking by single-hydrophone underwater sensors with mobility. In: Migliardi M, Merlo A, Al-HajBaddar S (eds) Adaptive Mobile Computing, chap 4, pp 65–82 Blouin S, Mahboubi H, Aghdam AG (2017) Long-range passive doppler-only target tracking by single-hydrophone underwater sensors with mobility. In: Migliardi M, Merlo A, Al-HajBaddar S (eds) Adaptive Mobile Computing, chap 4, pp 65–82
4.
Zurück zum Zitat Caruso A, Paparella F, Vieira LFM, Erol M, Gerla M (2008) The meandering current mobility model and its impact on underwater mobile sensor networks. In: 27th conference on computer communications (INFOCOM 2008), pp 221–225 Caruso A, Paparella F, Vieira LFM, Erol M, Gerla M (2008) The meandering current mobility model and its impact on underwater mobile sensor networks. In: 27th conference on computer communications (INFOCOM 2008), pp 221–225
5.
Zurück zum Zitat Decarpigny J, Hamonic B, Wilson O (1991) The design of low frequency underwater acoustic projectors: present status and future trends. IEEE J Ocean Eng 16(1):107–122CrossRef Decarpigny J, Hamonic B, Wilson O (1991) The design of low frequency underwater acoustic projectors: present status and future trends. IEEE J Ocean Eng 16(1):107–122CrossRef
6.
Zurück zum Zitat Freitag L, Partan J, Koski P, Singh S (2015) Long range acoustic communications and navigation in the arctic. In: OCEANS 2015 - MTS/IEEE Washington, pp 1–5 Freitag L, Partan J, Koski P, Singh S (2015) Long range acoustic communications and navigation in the arctic. In: OCEANS 2015 - MTS/IEEE Washington, pp 1–5
7.
Zurück zum Zitat Hixson E (2009) A low-frequency underwater sound source for seismic exploration. J Acoust Soc Am 126 (4):2234–2234CrossRef Hixson E (2009) A low-frequency underwater sound source for seismic exploration. J Acoust Soc Am 126 (4):2234–2234CrossRef
8.
Zurück zum Zitat Lurton X (2002) An introduction to underwater acoustics: principles and applications. Springer, Berlin Lurton X (2002) An introduction to underwater acoustics: principles and applications. Springer, Berlin
9.
Zurück zum Zitat Marage JP, Mori Y (2010) Sonar and underwater acoustics. Wiley, New York Marage JP, Mori Y (2010) Sonar and underwater acoustics. Wiley, New York
10.
Zurück zum Zitat The Mathworks Inc. Natick (2015) MATLAB version 8.5.0.197613 (R2015a) The Mathworks Inc. Natick (2015) MATLAB version 8.5.0.197613 (R2015a)
12.
Zurück zum Zitat Otnes R, Asterjadhi A, Casari P, Goetz M, Husøy T, Nissen I, Rimstad K, Van Walree P, Zorzi M (2012) Underwater acoustic networking techniques. Springer, BerlinCrossRef Otnes R, Asterjadhi A, Casari P, Goetz M, Husøy T, Nissen I, Rimstad K, Van Walree P, Zorzi M (2012) Underwater acoustic networking techniques. Springer, BerlinCrossRef
13.
Zurück zum Zitat Otnes R, Voldhaug JE, Haavik S (2008) On communication requirements in underwater surveillance networks. In: OCEANS 2008-MTS/IEEE Kobe techno-ocean, pp 1–7 Otnes R, Voldhaug JE, Haavik S (2008) On communication requirements in underwater surveillance networks. In: OCEANS 2008-MTS/IEEE Kobe techno-ocean, pp 1–7
15.
Zurück zum Zitat Thorp W (1965) Deep ocean sound attenuation in the sub and low kilocycle per second region. J Acoust Soc Am 38(4):648–654CrossRef Thorp W (1965) Deep ocean sound attenuation in the sub and low kilocycle per second region. J Acoust Soc Am 38(4):648–654CrossRef
16.
Zurück zum Zitat Thorp W (1967) Analytic description of the low frequency attenuation coefficient. J Acoust Soc Am 42(1):270CrossRef Thorp W (1967) Analytic description of the low frequency attenuation coefficient. J Acoust Soc Am 42(1):270CrossRef
17.
Zurück zum Zitat Thorp W, Browning D (1973) Attenuation of low frequency sound in the ocean. J Sound Vib 26(1):576–578CrossRef Thorp W, Browning D (1973) Attenuation of low frequency sound in the ocean. J Sound Vib 26(1):576–578CrossRef
19.
Zurück zum Zitat Wu B (2015) A correction of the half-power bandwidth method for estimating damping. Arch Appl Mech 85 (2):315–320CrossRef Wu B (2015) A correction of the half-power bandwidth method for estimating damping. Arch Appl Mech 85 (2):315–320CrossRef
Metadaten
Titel
Doppler Effect in the Acoustic Ultra Low Frequency Band for Wireless Underwater Networks
verfasst von
A.-M. Ahmad
J. Kassem
M. Barbeau
E. Kranakis
S. Porretta
J. Garcia-Alfaro
Publikationsdatum
11.04.2018
Verlag
Springer US
Erschienen in
Mobile Networks and Applications / Ausgabe 5/2018
Print ISSN: 1383-469X
Elektronische ISSN: 1572-8153
DOI
https://doi.org/10.1007/s11036-018-1036-9

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