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The article shows the results of a study on the determination of SBAS satellite positioning integrity parameters as a HPL and VPL protection levels. To this end, a modified algorithm was developed to determine the HPL and VPL protection levels from a common aircraft position navigation solution based on EGNOS and SDCM augmentation systems. The developed mathematical scheme was verified on real GNSS kinematic data recorded by two onboard Septentrio AsterRx2i and Trimble Alloy receivers installed on a Diamond DA 20-C aircraft. Based on the conducted tests, it was found that the HPL parameter does not exceed 12.24 m, while respectively the VPL does not exceed 18.01 m. In addition, in the course of the study it was found that the proposed EGNOS+SDCM solution improves the HPL/VPL integrity determination in relation to the EGNOS solution by 8÷66%. The mathematical scheme used in the study was also applied to designation the HPL/VPL terms for the UAV platform. The obtained results of the HPL/VPL values for the positioning of the aircraft and the UAV platform show a high efficiency of the developed algorithm for improving the integrity parameter.
Rocznik
Tom
Strony
239--252
Opis fizyczny
Bibliogr. 24 poz.
Twórcy
autor
- Faculty of Transport and Aviation Engineering, Silesian University of Technology, Krasińskiego 8 Street, 40-019 Katowice, Poland
autor
- Faculty of Transport and Aviation Engineering, Silesian University of Technology, Krasińskiego 8 Street, 40-019 Katowice, Poland
autor
- nstitute of Navigation, Polish Air Force University, Dywizjonu 303 nr 35 Street, 08-521 Dęblin, Poland
autor
- nstitute of Navigation, Polish Air Force University, Dywizjonu 303 nr 35 Street, 08-521 Dęblin, Poland
autor
- nstitute of Navigation, Polish Air Force University, Dywizjonu 303 nr 35 Street, 08-521 Dęblin, Poland
autor
- Algerian Space Agency, Center of Space Techniques, Department of Space Geodesy, 1 Av Palestine, 31200 Arzew, Algeria.
Bibliografia
- 1. Fellner R. 2014. “Analysis of the EGNOS/GNSS parameters in selected aspects of Polish transport”. Transport Problems 4(4): 27-37.
- 2. Ciećko A. 2019. “Analysis of the EGNOS quality parameters during high ionosphere activity”. IET Radar, Sonar & Navigation, 13(7): 1131-1139.
- DOI: 10.1049/iet-rsn.2018.5571.
- 3. International Civil Aviation Organization. 2006. ICAO Standards and Recommended Practices (SARPS), Annex 10, Volume I (Radio Navigation Aids). Available at: http://www.ulc.gov.pl/pl/prawo/prawomi%C4%99dzynarodowe/206-konwencje.
- 4. Banaszek K., A. Fellner, P. Trómiński, P. Zadrąg. 2010. “NPA GNSS essential step for the LUN implementation and the chance for the air regional transport”. Archives of Transport System Telematics 3(1): 45-52.
- 5. Fellner A., H. Jafernik. 2014. “Airborne measurement system during validation of EGNOS/GNSS essential parameters in landing”. Rep. Geod. Geoinf. 96: 27-37.
- 6. Ciećko A., G. Grunwald. 2017. “Examination of Autonomous GPS and GPS/EGNOS Integrity and Accuracy for Aeronautical Applications”. Periodica Polytechnica Civil. Eng. 61: 920-928.
- 7. Ciećko A., G. Grunwald. 2017. “The comparison of EGNOS performance at the airports located in eastern Poland”. Tech. Sci. 20: 181-198.
- 8. Fellner A., K. Banaszek, P. Trómiński. 2010. “The implementation of the EGNOS system to APV-I precision approach operations”. Trans. Nav. Int. J. Mar. Navig. Safe. Sea Transp. 4: 41-46.
- 9. Kaleta W. 2014. “EGNOS Based APV Procedures Development Possibilities In The South-Eastern Part Of Poland”. Ann. Navig. 21: 85-94.
- 10. Fellner A., K. Banaszek, P. Trómiński. 2012. “The satellite based augmentation system - EGNOS for non-precision approach global navigation satellite system”. Transport Problems 7(1): 5-19.
- 11. Ciećko A., G. Grunwald, T. Templin, M. Dobek. 2017. “Aeronautical surveys of Olsztyn airfield and surroundings in order to develop RNAV GNSS flight procedure”. 17th International Multidisciplinary Scientific GeoConference SGEM 2017: 51-58. ISSN: 1314-2704. DOI: 10.5593/sgem2017/22/S09.007.
- 12. Azoulai L., S. Virag, R. Leinekugel-Le-Cocq, C. Germa, B. Charlot, P. Durel. 2009. “Experimental Flight Tests with EGNOS on A380 to Support RNAV LPV Operations”. In: Proceedings of the 22nd International Technical Meeting of The Satellite Division of the Institute of Navigation (ION GNSS 2009): 1203-1215. Savannah, GA, USA,
- 22-25 September 2009.
- 13. Hvezda M. 2021. “Simulation of EGNOS satellite navigation signal usage for aircraft LPV precision instrument approach”. Aviation 25: 171-181.
- 14. Oliveira J., C. Tiberius. 2008. “Landing: Added Assistance to Pilots on Small Aircraft Provided by EGNOS”. In: Proceedings of the Conference 2008 IEEE/ION Position, Location and Navigation Symposium: 321-333. Monterey, CA, USA, 5-8 May 2008.
- 15. Secretan H., J. Ventura-Traveset, F. Toran, G. Solari, S. Basker. 2001. “EGNOS System Test Bed Evolution and Utilisation”. In: Proceedings of the 14th International Technical Meeting of the Satellite Division of The Institute of Navigation (ION GPS 2001): 1891-1900. Salt Lake City, UT, USA, 11-14 September 2001.
- 16. Soley S., Farnworth R., Breeuwer E. 2002. “Approaching nice with the EGNOS system test bed”. In: Proceedings of the ION NTM 2002, San Diego, CA, USA, 28–31 January 2002; pp 539–550.
- 17. Tabti L., S. Kahlouche, B. Benadda. 2021. “Performance of the EGNOS system in Algeria for single and dual frequency”. International Journal of Aviation, Aeronautics, and Aerospace 8(3): 1-19.
- 18. Tabti L., S. Kahlouche, B. Benadda. 2018. “Improving availability of the EGNOS system in Algeria for dual frequency”. Coordinate Magazine 14(1): 36-40.
- 19. Roturier B., E. Chatre, J. Ventura-Traveset. 2001. “The SBAS Integrity Concept Standardised by ICAO. Application to EGNOS”. Available at: http://www.egnos-pro.esa.int/Publications/GNSS%202001/SBAS_integrity.pdf.
- 20. Aeroclub of Warmia and Mazury website. Available at: http://aeroklub.olsztyn.pl.
- 21. CNES Service website. Available at: ftp://serenad-public.cnes.fr/SERENAD0.
- 22. Takasu T. 2013. “RTKLIB Ver. 2.4.2 Manual, RTKLIB: An Open Source Program Package for GNSS Positioning”. Available at: http://www.rtklib.com/prog/manual_2.4.2.pdf.
- 23. RTKLIB Website. Available at: http://www.rtklib.com.
- 24. Scilab Website. Available at: http://www.scilab.org.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-2d5f9459-a62a-4bff-bb08-069d825111c5