Acoustic Resonance between Ground and Thermosphere
Ultra-low frequency acoustic waves called "acoustic gravity waves" or "infrasounds" are theoretically expected to resonate between the ground and the thermosphere. This resonance is a very important phenomenon causing the coupling of the solid Earth, neutral atmosphere, and ionos...
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doaj-11493738150b456f92f4e774e8d313f52020-11-24T23:30:03ZengUbiquity PressData Science Journal1683-14702009-04-01810.2481/dsj.8.S68308Acoustic Resonance between Ground and ThermosphereM Matsumura0T Iyemori1Y Tanaka2D Han3M Nose4M Utsugi5N Oshiman6H Shinagawa7Y Odagi8Y Tabata9Graduate School of Science, Kyoto University, Kyoto 606-8502, JapanGraduate School of Science, Kyoto University, Kyoto 606-8502, JapanFaculty of Engineering, Setsunan University, Neyagawa 572-8508, JapanPolar Research Institute of China, Pudong, Jinqiao Road 451, Shanghai 200136, ChinaGraduate School of Science, Kyoto University, Kyoto 606-8502, JapanGraduate School of Science, Kyoto University, Kyoto 606-8502, JapanDisaster Prevention Research Institute, Kyoto University, Uji 611-0011, JapanNational Institute of Information and Communications Technology, Koganei 184-8795, JapanGraduate School of Science, Kyoto University, Kyoto 606-8502, JapanResearch Institute for Sustainable Humanosphere, Kyoto University, Uji 611-0011, JapanUltra-low frequency acoustic waves called "acoustic gravity waves" or "infrasounds" are theoretically expected to resonate between the ground and the thermosphere. This resonance is a very important phenomenon causing the coupling of the solid Earth, neutral atmosphere, and ionospheric plasma. This acoustic resonance, however, has not been confirmed by direct observations. In this study, atmospheric perturbations on the ground and ionospheric disturbances were observed and compared with each other to confirm the existence of resonance. Atmospheric perturbations were observed with a barometer, and ionospheric disturbances were observed using the HF Doppler method. An end point of resonance is in the ionosphere, where conductivity is high and the dynamo effect occurs. Thus, geomagnetic observation is also useful, so the geomagnetic data were compared with other data. Power spectral density was calculated and averaged for each month. Peaks appeared at the theoretically expected resonance frequencies in the pressure and HF Doppler data. The frequencies of the peaks varied with the seasons. This is probably because the vertical temperature profile of the atmosphere varies with the seasons, as does the reflection height of infrasounds. These results indicate that acoustic resonance occurs frequently.http://datascience.codata.org/articles/307infrasoundacoustic resonance |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
M Matsumura T Iyemori Y Tanaka D Han M Nose M Utsugi N Oshiman H Shinagawa Y Odagi Y Tabata |
spellingShingle |
M Matsumura T Iyemori Y Tanaka D Han M Nose M Utsugi N Oshiman H Shinagawa Y Odagi Y Tabata Acoustic Resonance between Ground and Thermosphere Data Science Journal infrasound acoustic resonance |
author_facet |
M Matsumura T Iyemori Y Tanaka D Han M Nose M Utsugi N Oshiman H Shinagawa Y Odagi Y Tabata |
author_sort |
M Matsumura |
title |
Acoustic Resonance between Ground and Thermosphere |
title_short |
Acoustic Resonance between Ground and Thermosphere |
title_full |
Acoustic Resonance between Ground and Thermosphere |
title_fullStr |
Acoustic Resonance between Ground and Thermosphere |
title_full_unstemmed |
Acoustic Resonance between Ground and Thermosphere |
title_sort |
acoustic resonance between ground and thermosphere |
publisher |
Ubiquity Press |
series |
Data Science Journal |
issn |
1683-1470 |
publishDate |
2009-04-01 |
description |
Ultra-low frequency acoustic waves called "acoustic gravity waves" or "infrasounds" are theoretically expected to resonate between the ground and the thermosphere. This resonance is a very important phenomenon causing the coupling of the solid Earth, neutral atmosphere, and ionospheric plasma. This acoustic resonance, however, has not been confirmed by direct observations. In this study, atmospheric perturbations on the ground and ionospheric disturbances were observed and compared with each other to confirm the existence of resonance. Atmospheric perturbations were observed with a barometer, and ionospheric disturbances were observed using the HF Doppler method. An end point of resonance is in the ionosphere, where conductivity is high and the dynamo effect occurs. Thus, geomagnetic observation is also useful, so the geomagnetic data were compared with other data. Power spectral density was calculated and averaged for each month. Peaks appeared at the theoretically expected resonance frequencies in the pressure and HF Doppler data. The frequencies of the peaks varied with the seasons. This is probably because the vertical temperature profile of the atmosphere varies with the seasons, as does the reflection height of infrasounds. These results indicate that acoustic resonance occurs frequently. |
topic |
infrasound acoustic resonance |
url |
http://datascience.codata.org/articles/307 |
work_keys_str_mv |
AT mmatsumura acousticresonancebetweengroundandthermosphere AT tiyemori acousticresonancebetweengroundandthermosphere AT ytanaka acousticresonancebetweengroundandthermosphere AT dhan acousticresonancebetweengroundandthermosphere AT mnose acousticresonancebetweengroundandthermosphere AT mutsugi acousticresonancebetweengroundandthermosphere AT noshiman acousticresonancebetweengroundandthermosphere AT hshinagawa acousticresonancebetweengroundandthermosphere AT yodagi acousticresonancebetweengroundandthermosphere AT ytabata acousticresonancebetweengroundandthermosphere |
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