A Comparative Analysis between Radar and Human Observations of the Giant Hail Event of 30 August 2022 in Catalonia
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Data Used
2.2.1. Radar Data
2.2.2. Form Results
- (1)
- What are the coordinates of your location?;
- (2)
- At what time do you think the event occurred at your location?;
- (3)
- What was the duration of the event?;
- (4)
- What was the maximum size of the stones?;
- (5)
- Were all the stones regular in size?
3. Results
3.1. Description of the Event: A Comparison between Radar Data and the Electronic Form
3.1.1. Time of Occurrence of the Event
3.1.2. Duration of the Event
3.1.3. Maximum Size of the Stones and Homogeneity
3.2. Map of Maximum Size
3.3. Comparison between Observations and Radar Fields
- •
- The survey was made three months later, affecting the memory capacity of the contributors, especially concerning the time of occurrence. However, this lag helped to minimise the effect of exaggeration of the hail size;
- •
- VIL radar product was affected by different constraints presented previously: signal attenuation and distance of the hailstorm to the radars, among others.
4. Discussion
- Can you provide the exact location where you lived during the event?;
- What was the time of occurrence of the event?;
- How much time did it last?;
- What was the maximum size observed?;
- Were all the stones similar in size?
- The insufficient amount of data: In the present case, there are some areas with an evident lack of information, due to the low density population in the rural areas and the forest regions. However, the combination with the radar fields makes it possible to obtain an adequate estimation of the hail size in practically all the regions of interest. In any case, we preferred to avoid including data not validated correctly, especially those values without a picture, or those with a photograph that could not provide a comparison of the true size, because there was not an object of reference (a coin or a ruler);
- The biases provided by the economical interests: As was indicated before, we decided to wait a certain time before starting the form. The reason was that the high economical impact, caused mainly by damages in most of roofs in the epicenter of the region (La Bisbal and surroundings, as it was stated in the resolution of the Govern of the Generalitat of Catalonia—see https://residus.gencat.cat/web/.content/home/consultes_i_tramits_-_nou/subvencions/subvencions_mixtes/ajuts_amiant_meteo/resol_atorg_ACC_3194_2022_es.pdf —accessed on 14 December 2022), and the implications with regards to insurance and other economical assistance for many affected people. At the time of the initiation of the form, the economical assistance had arrived to most of those affected and they did not have a reason to exaggerate the size. In fact, some of the participants recognised that, after the three months period, they realised that the size was 1 or 2 cm less than their first estimations;
- The hail size accuracy reported: This point has a certain relationship with the previous one, but other reasons that exist other than economical reasons. People tend to provide exaggerated values of hail size, which are a consequence of the direct eye estimation without an adequate instrument to measure the diameter. For instance, some reporters provided observations of hailstones that were accurately measured after the form, because the reporters kept them in a freezer in optimal conditions. The result was differences of between 0.5 and 2 cm. The reporters confirmed that stones did not diminish in size because the stones were allocated in the same place where they were picked up.
5. Conclusions
- The combination of observational data provided using an e-survey and some radar fields allowed a better understanding of different elements of the evolution of a giant hail event;
- The observations at the ground gave a better estimation of the size;
- The weather radar helped to have a better understanding of the evolution’
- It was not possible, however, to generate a maximum hail size field by combining both data because of the limitations of the weather radar in this type of giant hail size.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
VIL | Vertical Integrated Liquid |
XRAD | Radar Network of the Servei Meteorològic de Catalunya |
UTC | Coordinated Universal Time |
LT | Local Time |
PDA | Puig d’Arques Radar |
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Advanced | Synchronised | Delayed | |
---|---|---|---|
N cases | 6 (4) | 12 (8) | 2 (2) |
Underestimated | Right | Overestimated | |
---|---|---|---|
N cases | 13 (13) | 4 (1) | 3 (0) |
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Rigo, T.; Farnell, C. A Comparative Analysis between Radar and Human Observations of the Giant Hail Event of 30 August 2022 in Catalonia. Atmosphere 2023, 14, 1190. https://doi.org/10.3390/atmos14071190
Rigo T, Farnell C. A Comparative Analysis between Radar and Human Observations of the Giant Hail Event of 30 August 2022 in Catalonia. Atmosphere. 2023; 14(7):1190. https://doi.org/10.3390/atmos14071190
Chicago/Turabian StyleRigo, Tomeu, and Carme Farnell. 2023. "A Comparative Analysis between Radar and Human Observations of the Giant Hail Event of 30 August 2022 in Catalonia" Atmosphere 14, no. 7: 1190. https://doi.org/10.3390/atmos14071190
APA StyleRigo, T., & Farnell, C. (2023). A Comparative Analysis between Radar and Human Observations of the Giant Hail Event of 30 August 2022 in Catalonia. Atmosphere, 14(7), 1190. https://doi.org/10.3390/atmos14071190