Visible to the public TechTIDE: Warning and Mitigation Technologies for Travelling Ionospheric Disturbances Effects

TitleTechTIDE: Warning and Mitigation Technologies for Travelling Ionospheric Disturbances Effects
Publication TypeConference Paper
Year of Publication2019
AuthorsBelehaki, Anna, Galkin, Ivan, Borries, Claudia, Pintor, Pedro, Altadill, David, Sanz, Jaume, Juan, J. Miguel, Buresova, Dalia, Verhulst, Tobias, Mielich, Jens, Katamzi-Joseph, Zama, Watermann, Juergen, Haralambous, Haris, Unger, Stefan
Conference Name2019 URSI Asia-Pacific Radio Science Conference (AP-RASC)
ISBN Number978-908-25987-5-9
Keywordsambient electron density, amplitudes, background ionospheric conditions, Continuous Doppler Sounding Systems, Digisonde networks, Doppler frequency shifts, electron density, European Commission, frequency 0.5 Hz, GNSS receivers, gravity waves, high frequency geolocation, Horizon 2020 Project TechTIDE, Human Behavior, human factors, instrumentation description, internal atmospheric gravity waves, interplanetary medium, ionospheric characteristics, ionospheric disturbances, ionospheric electromagnetic wave propagation, ionospheric manifestations, ionospheric techniques, lower atmosphere phenomena, magnetosphere, main TID characteristics, Metrics, near-Earth space dynamics, neutral atmosphere, operational systems, precise navigation, project methodologies, propagation drection, pubcrawl, resilience, Resiliency, specific technology, TechTIDE system, threat mitigation, TIDs, travelling Ionospheric Disturbances effects, viable TID impact mitigation strategies, warning technology
Abstract

Travelling Ionospheric Disturbances (TIDs) are ionospheric manifestations of internal atmospheric gravity waves (AGW) in the neutral atmosphere driven by near-Earth space dynamics and by lower atmosphere phenomena. They constitute a threat for operational systems such as precise navigation (e.g., EGNOS and NRTK) and high frequency geolocation as they can impose disturbances with amplitudes of up to 20% of the ambient electron density, and Doppler frequency shifts of the order of 0.5 Hz on HF signals. The Horizon 2020 Project TechTIDE (http://techtide.space.noa.gr/) funded by the European Commission aims at designing and testing new viable TID impact mitigation strategies for the technologies affected by developing a system able to calculate in real-time the main TID characteristics (velocity, amplitude, propagation drection), to realistically specify background ionospheric conditions and to specify those ionospheric characteristics whose perturbation, because of TIDs, cause the impact in each specific technology. The TechTIDE system will contribute new understanding of the physical processes resulting in the formation of TIDs, and will consequently help to identify the drivers in the interplanetary medium, the magnetosphere and the atmosphere. This paper will provide a description of the instrumentation involved and outline the project methodologies for the identification and tracking of TIDs based on the exploitation of real-time observations from networks of Digisonde, GNSS receivers and Continuous Doppler Sounding Systems.

URLhttps://ieeexplore.ieee.org/document/8738350
DOI10.23919/URSIAP-RASC.2019.8738350
Citation Keybelehaki_techtide_2019