This MSCA has pushed the frontiers of real-time GNSS meteorology forward in numerous ways. The advanced GNSS data processing strategy has been developed, which exploits a quad-GNSS constellation, deals directly with all major signal propagation errors, provides advanced troposphere products, and is competitive with existing near real-time solutions in terms of accuracy, while also reducing the latency of products. The corresponding analysis software was developed and the service was established to process GNSS data from the European network of permanent GNSS stations. The accuracy of real-time ZTD in ReS4ToM is at the level of 5 to 8 mm, which corresponds to the accuracy of Integrated Water Vapor of 1.5 – 2.5 kg/m2.
It was also proven, that Galileo and supporting services are already mature enough to provide reliable information on the troposphere state in real-time. The combination of GPS and Galileo observations is superior to single-system processing, as it increases the accuracy and availability of troposphere products. Moreover, such a combination suppresses orbit-related artificial signals of high frequency in the ZTD time series.
Furthermore, it was demonstrated, that horizontal gradients form consistent signatures during the presence of a severe weather event. Thus, such parameters represent relevant information on troposphere asymmetry, which should be exploited further in weather forecasting.
Last but not least, the feasibility of using low-cost GNSS receivers for GNSS meteorology was also confirmed. Data from such devices leads to troposphere products, for which the accuracy is sufficient for assimilation into an NWP model. Therefore, densification of existing GNSS networks at a reduced cost is possible, thus allowing to observe local dynamics of water vapor content.
This action did not only combine a manifold of recent advancements in GNSS but also demonstrates that the transition from well-established near real-time processing to real-time processing will bring benefits for GNSS meteorology. It is anticipated, that E-GVAP analysis centers will update their processing strategies, while weather services will increase their efforts in assimilating real-time and advanced troposphere products. The demonstration of benefits for GNSS meteorology coming from low-cost GNSS receivers should convince meteorological offices and GNSS service providers to densify tracking networks. The Fellow’s PhD student is currently developing other engineering and monitoring applications of this technology.