GNSS ionospheric seismology: Recent observation evidences and characteristics

The detail and nature of earthquakes are still challenging from traditional technique observations, e.g., seismometers and strong motion accelerographs. Nowadays, the ionospheric total electron content (TEC) can be obtained from ground-based global navigation satellite systems (GNSS) and space-borne...

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Published inEarth-science reviews Vol. 147; pp. 54 - 64
Main Authors Jin, Shuanggen, Occhipinti, Giovanni, Jin, Rui
Format Journal Article
LanguageEnglish
Published Amsterdam Elsevier B.V 01.08.2015
Elsevier Sequoia S.A
Elsevier
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Abstract The detail and nature of earthquakes are still challenging from traditional technique observations, e.g., seismometers and strong motion accelerographs. Nowadays, the ionospheric total electron content (TEC) can be obtained from ground-based global navigation satellite systems (GNSS) and space-borne GNSS Radio Occultation, which can be used to investigate the seismo-ionospheric disturbances and may provide insights on the earthquake. In this paper, GNSS ionospheric seismology is presented and reviewed, including methods, observation results and characteristics. Case studies of the 2008 Wenchuan earthquake and 2011 Japan earthquake are presented using ground-based GNSS observations. Significant co-/post-seismic ionospheric anomalies are found from continuous GNSS observations near the epicenters, showing that the seismic ionospheric total electron content (TEC) disturbances were derived mainly from the main shock. The detailed pattern and evolution of the ionospheric disturbance are revealed by denser GNSS observations. Some simulations explore the nature of the ionospheric perturbation, highlighting that acoustic-gravity waves are generated close to the epicenter, and that surface Rayleigh waves and tsunamis generate in the atmosphere/ionosphere acoustic and gravity waves respectively. These waves are induced by solid-Earth/ocean and atmosphere coupling at the ground or ocean interface with the atmosphere propagating upward until the ionosphere create strong perturbation in plasma density and plasma velocity.
AbstractList The detail and nature of earthquakes are still challenging from traditional technique observations, e.g., seismometers and strong motion accelerographs. Nowadays, the ionospheric total electron content (TEC) can be obtained from ground-based global navigation satellite systems (GNSS) and space-borne GNSS Radio Occultation, which can be used to investigate the seismo-ionospheric disturbances and may provide insights on the earthquake. In this paper, GNSS ionospheric seismology is presented and reviewed, including methods, observation results and characteristics. Case studies of the 2008 Wenchuan earthquake and 2011 Japan earthquake are presented using ground-based GNSS observations. Significant co-/post-seismic ionospheric anomalies are found from continuous GNSS observations near the epicenters, showing that the seismic ionospheric total electron content (TEC) disturbances were derived mainly from the main shock. The detailed pattern and evolution of the ionospheric disturbance are revealed by denser GNSS observations. Some simulations explore the nature of the ionospheric perturbation, highlighting that acoustic-gravity waves are generated close to the epicenter, and that surface Rayleigh waves and tsunamis generate in the atmosphere/ionosphere acoustic and gravity waves respectively. These waves are induced by solid-Earth/ocean and atmosphere coupling at the ground or ocean interface with the atmosphere propagating upward until the ionosphere create strong perturbation in plasma density and plasma velocity.
The detail and nature of earthquakes are still challenging from traditional technique observations, e.g., seismometers and strong motion accelerographs. Nowadays, the ionospheric total electron content (TEC) can be obtained from ground-based global navigation satellite systems (GNSS) and space-borne GNSS Radio Occultation, which can be used to investigate the seismo-ionospheric disturbances and may provide insights on the earthquake. In this paper, GNSS ionospheric seismology is presented and reviewed, including methods, observation results and characteristics. Case studies of the 2008 Wenchuan earthquake and 2011 Japan earthquake are presented using ground-based GNSS observations. Significant co-/post-seismic ionospheric anomalies are found from continuous GNSS observations near the epicenters, showing that the seismic ionospheric total electron content (TEC) disturbances were derived mainly from the main shock. The detailed pattern and evolution of the ionospheric disturbance are revealed by denser GNSS observations. Some simulations explore the nature of the ionospheric perturbation, highlighting that acoustic-gravity waves are generated close to the epicenter, and that surface Rayleigh waves and tsunamis generate in the atmosphere/ionosphere acoustic and gravity waves respectively. These waves are induced by solid-Earth/ocean and atmosphere coupling at the ground or ocean interface with the atmosphere propagating upward until the ionosphere create strong perturbation in plasma density and plasma velocity
Author Jin, Shuanggen
Occhipinti, Giovanni
Jin, Rui
Author_xml – sequence: 1
  givenname: Shuanggen
  surname: Jin
  fullname: Jin, Shuanggen
  email: sgjin@shao.ac.cn, sg.jin@yahoo.com
  organization: Shanghai Astronomical Observatory, Chinese Academy of Sciences, Shanghai 200030, China
– sequence: 2
  givenname: Giovanni
  surname: Occhipinti
  fullname: Occhipinti, Giovanni
  organization: Institut de Physique du Globe de Paris, Paris 94107, France
– sequence: 3
  givenname: Rui
  surname: Jin
  fullname: Jin, Rui
  organization: Shanghai Astronomical Observatory, Chinese Academy of Sciences, Shanghai 200030, China
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Keywords Ionospheric seismology
TEC
GNSS
Ionospheric disturbance
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Snippet The detail and nature of earthquakes are still challenging from traditional technique observations, e.g., seismometers and strong motion accelerographs....
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SubjectTerms Astrophysics
Atmospheres
Earth and Planetary Astrophysics
Earthquake accelerograms
Earthquakes
GNSS
Gravity
Ionosphere
Ionospheric disturbance
Ionospheric seismology
Ionospherics
Navigation systems
Oceans
Sciences of the Universe
Seismic phenomena
TEC
Tsunamis
Title GNSS ionospheric seismology: Recent observation evidences and characteristics
URI https://dx.doi.org/10.1016/j.earscirev.2015.05.003
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https://insu.hal.science/insu-02751227
Volume 147
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