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TechTIDE: Warning and Mitigation Technologies for Travelling Ionospheric Disturbances Effects

机译:TechTIDE:传播电离层扰动效应的警告和缓解技术

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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.
机译:行进的电离层扰动(TID)是中空大气层中近地空间动力学和低层大气现象驱动的内部大气重力波(AGW)的电离层表现。它们对诸如精确导航(例如EGNOS和NRTK)和高频地理定位之类的操作系统构成​​威胁,因为它们可以施加幅度高达周围环境电子密度约20%的干扰,并且多普勒频移约为0.5 HF信号上的Hz。由欧盟委员会资助的Horizo​​n 2020项目TechTIDE(http://techtide.space.noa.gr/)旨在为受影响的技术设计和测试新的可行的TID缓解策略,方法是开发能够实时计算的系统TID的主要特征(速度,幅度,传播方向),以现实方式指定背景电离层条件,并指定那些由于TID而扰动对每种特定技术产生影响的电离层特征。 TechTIDE系统将有助于对导致TID形成的物理过程的新理解,从而有助于识别行星际介质,磁层和大气中的驱动因素。本文将对所涉及的仪器进行描述,并概述基于Digisonde,GNSS接收器和连续多普勒测深系统网络实时观测结果的TID识别和跟踪的项目方法。

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