REAL-TIME AUTONOMOUS WEATHER AND SPACE WEATHER MONITORING
A method of calculating ionospheric scintillation includes calculating a motion-corrected perturbation of a GNSS radio signal received by a monitoring device deployed in an oceanic environment. The method includes calculating the σ Φ using the high rate phase of the GNSS signal adjusted by removing the change in distance between the monitoring device and the GNSS satellite. The calculating the σ Φ may further include passing the adjusted high rate phase through a high pass filter to remove a drift motion of the monitoring device. The method further includes calculating the S 4 through calculating a tilt angle between the antenna of the monitoring device with the GNSS satellite and adjusting the antenna gain through known gain pattern of the antenna. The wave height of the oceanic environment may be calculated by detrending the antenna height to remove low frequency motion when a high rate position of the monitoring device is calculated.
1 . An apparatus, comprising:
an interface configured for receiving ionospheric scintillation data from at least one monitoring device through a network, the at least one monitoring device configured to be located at a location near an Earth's surface; and
a processor configured to: calculate an ionospheric scintillation while compensating for an antenna motion of the at least one of the monitoring device by:
determining a change in distance between the antenna and the orbital navigation satellite resulting from the antenna motion; and
removing an effect of the change in distance resulting from the antenna motion from the ionospheric scintillation calculation.
2 . The apparatus of claim 1 , wherein the processor is configured to aggregate ionospheric scintillation data from a plurality of monitoring devices.
3 . The apparatus of claim 2 , wherein the processor is configured to calculate an ionosphere weather model using the aggregated ionospheric scintillation data and configured to calculate a high frequency (HF) propagation model using the ionosphere weather model.
4 . The apparatus of claim 3 , wherein the ionosphere weather model is calculated based on ionospheric scintillation at a plurality of locations in the ionosphere based on the aggregated ionospheric scintillation data from the plurality of monitoring devices.
5 . The apparatus of claim 3 , wherein the processor is configured to calculate a transmission frequency using the HF propagation model for a location of a network device.
6 . The apparatus of claim 1 , further comprising a storage configured to store the ionospheric scintillation data as historical data.
7 . The apparatus of claim 1 , wherein the at least one monitoring device is configured for receiving one or more radio signals, each radio signal from a corresponding orbital navigation satellite located beyond an ionosphere.
8 . The apparatus of claim 7 , wherein at least one of the corresponding orbital navigation satellite is one of a Global Positioning System (GPS), Global Navigation Satellite System (GLONASS), Galileo system, Indian Regional Navigation Satellite System (IRNASS), and BeiDou Navigation Satellite System (BDS).
9 . The apparatus of claim 1 , wherein the at least one monitoring device is configured to be deployed in an oceanic environment.
10 . The apparatus of claim 9 , wherein the apparatus is configured for calculating a wave height of the oceanic environment, comprising:
calculating a high-rate position of the monitoring device in a window of time; and
detrending a height of the antenna to remove a low frequency motion of the monitoring device.