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Tool for analysis of traffic of vertical take-off and landing aircraft in urban agglomerations

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The concept of Urban Air Mobility (UAM) assumes that a significant part of road traffic and services will be shifted to the airspace. The appearance of a large number of VTOLs over urban agglomerations must be preceded by a set of ATM and risks analysis. In order to support this process, a tool for aircraft traffic analysis in urban agglomerations has been developed. In the article, the software is presented, where all crucial features and configuration are shown. To prove its usability, a couple of simulations have been conducted. Finally, the results of test simulations and their analysis are described.
Rocznik
Strony
103--113
Opis fizyczny
Bibliogr. 15 poz., rys., tab.
Twórcy
autor
  • Warsaw University of Technology, Institute of Aeronautics and Applied Mechanics, Poland
  • Warsaw University of Technology, Institute of Aeronautics and Applied Mechanics, Poland
  • Warsaw University of Technology, Institute of Aeronautics and Applied Mechanics, Poland
Bibliografia
  • 1. Castro D.G., Garc´ıa E.V., 2021, Safety challenges for integrating U-space in urban environments, 2021 International Conference on Unmanned Aircraft Systems (ICUAS), Athens, Greece, 1258-1267
  • 2. Ellis K., Koelling J., Davies M., Krois P., 2020, In-Time System-Wide Safety Assurance (ISSA) Concept of Operations and Design Considerations for Urban Air Mobility (UAM), Technical Report, Hampton, USA
  • 3. European Aviation Safety Agency, 2015, Technical Opinion – Introduction of a regulatory framework for the operation of unmanned aircraft, Technical Report
  • 4. GIS Support, 2022, Dane statystyczne GUS (in Polish)
  • 5. Hart P.E., Nilsson N.J., Raphael B., 1968, A formal basis for the heuristic determination of minimum cost paths, IEEE Transactions on Systems Science and Cybernetics, 4, 2, 100-107
  • 6. InPost S.A., 2023, Annual Report 2022, Technical Report
  • 7. Jankowski Ł., Pisarski D., Konowrocki R., Popławski B., Faraj R., 2024, Efficient realtime positioning using Bayesian analysis and magnetic anomaly field, Measurement, 233, 114738
  • 8. Last Mile Experts, 2022, Polish CEP Report 2022, Technical Report
  • 9. Meincke P., Duca G., Ciaburri M., Russo R., Enei R., et al., 2022, Concept of operations for ATM service to passengers in intermodal transport system, SESAR, Technical Report
  • 10. Polish Air Navigation Services Agency, 2019, AIP VFR ENR 2.1.1 Prohibited Areas
  • 11. Polish Air Navigation Services Agency, 2023, PansaUTM
  • 12. Stava, 2023, Stava Report on Food Delivery Market in Poland 2023 (in Polish), Technical Report
  • 13. Thipphavong D.P., Apaza R., Barmore B., Battiste V., Burian B., et al., 2018, Urban air mobility airspace integration concepts and considerations, 2018 Aviation Technology, Integration, and Operations Conference, AIAA AVIATION Forum, American Institute of Aeronautics and Astronautics
  • 14. Warsaw Metropolitan Roads Administration (Zarząd Dróg Miejskich w Warszawie), 2023, Results of Automatic Traffic Measurement System – Year 2022 (Wyniki pomiarów systemu automatycznych pomiarów ruchu APR ZDM – 2022 rok)
  • 15. Żugaj M., Bibik P., Jacewicz M., 2016, UAV aircraft model for control system failures analysis, Journal of Theoretical and Applied Mechanics, 54, 4, 1405-1415
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d1fe273c-c206-46d4-b1cd-d20c8c35d6d9
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