Reduction of the VLF Signal Phase Noise Before Earthquakes
Abstract
:1. Introduction
2. Observations and Data Processing
- Phase unwrapping. The recorded signal phase represents the deviation of the signal phase with respect to the phase generated at the receiver. Because of that it has a component of constant slope. However, this component does not affect the presented analysis, and for this reason we did not remove it. On the other side, all recorded values are given within a principal phase interval and for further analysis it is necessary to unwrap it. The obtained time evolutions of the unwrapped phase P are shown in Figure 2 where the vertical lines indicate times of EQ occurrences. Red lines represent the main EQ considered in corresponding time periods while the additional events listed in Table 1 are coloured in black. To visualize the magnitudes of these additional events, we divided them in three categories: 1. magnitude below 2.5, 2. magnitudes from 2.5 to 3, and 3. magnitudes from 3 to 4. These categories are represented by thin dotted, thin dashed and tick dotted black lines, respectively.
- Determination of the phase noise. To obtain the noise of the unwrapped phase P we calculate its deviation from the basic phase at time t. Here, is obtained in a procedure described in [33] as the mean value of unwrapped phase in the defined time bins around time t. Finally, noise of P is determined as the maximum of after elimination of the largest p percent of its values. To find this value, we first sorted the values of into an ascending array of N members, and determined the value of the phase noise as the value of the term that is in this array:In this study we use like in [33].
- Acoustic and gravity waves—excitations and attenuations. Research of the acoustic and gravity waves in this paper is based on processing of the VLF signal phase. We analyse their excitations and attenuations in periods around the considered EQs using the procedure given in [33]. It is based on the application of the Fast Fourier Transform (FFT) on fixed window time intervals (WTI) within the considered time periods. Keeping in mind that WTI affects the maximum of observable wave period and precision in the analysis of the observed variations we choose three WTIs of 20 min, 1 h and 3 h.The goal of this procedure is to analyse the recorded phase in frequency domain and connect the wave-periods for which important changes are recorded to the acoustic and gravity waves. The acoustic cut-off and the Brunt-Väisälä wave-periods representing minimal and maximal periods for the acoustic and gravity waves, respectively, are determined from the expressions:As it is obtained in [33] waves with periods , s and s, represents acoustic and gravity modes, respectively.
3. Results and Discussions
3.1. Signal Phase Noise
3.2. Acoustic and Gravity Waves
- Kraljevo—03/11/2010: 0.2 s, 0.23 s, 0.47 s (weak increase of the Fourier amplitude), 0.7 s and 1.4 s.
- Tyrrhenian Sea—03/11/2010: 0.23 s, 0.35 s, 0.47 s, 0.7 s and 1.4 s.
- Kraljevo—04/11/2010: 0.23 s, 0.35 s, 0.7 s and 1.4 s;
- Western Mediterranean Sea—09/11/2010: 0.23 s, 0.35 s, 0.47 s (during the first time period when noise reduction is recorded), 0.7 s and 1.4 s.
4. Conclusions
- In the cases of EQs with magnitudes greater than 5, a multi-hour noise reductions was observed. As in the case of the amplitude, they begin before the earthquake. In these cases, no changes that could be related to other earthquakes of lower intensity were observed.
- In the cases of EQs with magnitudes between 4 and 5, phase noise reductions are also recorded, but they are shortly interrupted by the noise amplifications. Specific reductions are potentially related to different EQs, i.e., it cannot be claimed that the strongest earthquake in the observed period masks the potential relationship between phase noise reduction and weaker EQs.
- Because the recorded phase reductions are very similar like those in the case of the amplitude the choice of the signal characteristic which can be used in the corresponding studies depends only on the quality of the recorded data and do not affect the results of study.
- Excitations of the acoustic waves are recorded for all four periods. The obtained wave-periods are below 1.5 s which is in agreement with results obtained in analysis of the amplitude.
- Attenuations of the acoustic and gravity waves are recorded continuously with wave-period except for those T corresponding to wave excitations. This result does not agree with those obtained when analysing amplitude variations where attenuations are primarily recorded for discrete values of wave periods, while similar continuous attenuations are much less pronounced.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Sample Availability
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No. | Date | t (UTC) | LAT () | LON () | d (km) | M | Location |
---|---|---|---|---|---|---|---|
Kraljevo—03/11/2010 | |||||||
1 | 2010/11/03 | 00:56:54 | 43.74 | 20.69 | 126.0 | 5.4 | Serbia (near Kraljevo) |
31 EQs until 8 UT—31 in Serbia, 3 in Italy and 1 in Bosnia and Herzegovina | |||||||
Tyrrhenian Sea (TS)—03/11/2010 | |||||||
2 | 2010-11-03 | 17:12:30 | 42.4 | 13.35 | 11.4 | 2 | Central Italy |
2010-11-03 | 17:48:04 | 43.75 | 20.7 | 120.7 | 2.5 | Serbia (near Kraljevo) | |
2010/11/03 | 18:13:10 | 40.03 | 13.2 | 219.1 | 5.1 | TS | |
2010-11-03 | 18:47:23 | 43.73 | 20.67 | 121.7 | 2.1 | Serbia (near Kraljevo) | |
Kraljevo—04/11/2010 | |||||||
1 | 2010-11-04 | 20:33:01 | 43.75 | 20.7 | 120.7 | 1.9 | Serbia (near Kraljevo) |
2010/11/04 | 21:09:05 | 43.78 | 20.62 | 114.9 | 4.4 | Serbia (near Kraljevo) | |
2010-11-04 | 21:55:40 | 45.81 | 7.55 | 562.9 | 1.2 | Northern Italy | |
2010-11-04 | 23:43:05 | 43.78 | 20.62 | 114.9 | 3.3 | Serbia (near Kraljevo) | |
2010-11-05 | 00:16:14 | 43.74 | 20.64 | 119.6 | 2.8 | Serbia (near Kraljevo) | |
2010-11-05 | 01:38:48 | 43.76 | 20.69 | 119.4 | 2.5 | Serbia (near Kraljevo) | |
Western Mediterranean Sea (WMS)—03/11/2010 | |||||||
4 | 2010-11-09 | 16:45:13 | 43.59 | 12.36 | 165.9 | 2.3 | Central Italy |
2010-11-09 | 18:23:36 | 42.25 | 6.77 | 287.7 | 4.3 | WMS |
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Nina, A.; Biagi, P.F.; Mitrović, S.T.; Pulinets, S.; Nico, G.; Radovanović, M.; Popović, L.Č. Reduction of the VLF Signal Phase Noise Before Earthquakes. Atmosphere 2021, 12, 444. https://doi.org/10.3390/atmos12040444
Nina A, Biagi PF, Mitrović ST, Pulinets S, Nico G, Radovanović M, Popović LČ. Reduction of the VLF Signal Phase Noise Before Earthquakes. Atmosphere. 2021; 12(4):444. https://doi.org/10.3390/atmos12040444
Chicago/Turabian StyleNina, Aleksandra, Pier Francesco Biagi, Srđan T. Mitrović, Sergey Pulinets, Giovanni Nico, Milan Radovanović, and Luka Č. Popović. 2021. "Reduction of the VLF Signal Phase Noise Before Earthquakes" Atmosphere 12, no. 4: 444. https://doi.org/10.3390/atmos12040444
APA StyleNina, A., Biagi, P. F., Mitrović, S. T., Pulinets, S., Nico, G., Radovanović, M., & Popović, L. Č. (2021). Reduction of the VLF Signal Phase Noise Before Earthquakes. Atmosphere, 12(4), 444. https://doi.org/10.3390/atmos12040444