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FLIGHT DEVELOPMENT OF A DISTRIBUTED INERTIAL SATELLITE MICRONAVIGATTION SYSTEM FOR SYNTHETIC - APERTURE RADAR

Abstract

The current state of the onboard systems is characterized by the integration of aviation and radio-electronic equipment systems for solving problems of navigation and control. These problems include micro-navigation of the anten- na phase center (APC) of the radar during the review of the Earth's surface from aboard the aircraft. Increasing of the reso- lution of the radar station (RLS) by hardware increasing the antenna size is not always possible due to restrictions on the aircraft onboard equipment weight and dimensions. Therefore the implementation of analytic extension of the radiation pattern by "gluing" the images, obtained by RLS on the aircraft motion trajectory is embodied. The estimations are con- verted into amendments to the signals of RLS with synthetic aperture RSA to compensate instabilities. The purpose of the research is building a theoretical basis and a practical implementation of procedures for evaluating the trajectory APS in- stabilities using a distributed system of inertial-satellite micro-navigation (DSMN) taking into account the RSA flight oper- ations actual conditions. The technology of evaluation and compensation of RSA trajectory instabilities via DSMN is con- sidered. The implementation of this technology is based on the mutual support of inertial, satellite and radar systems. Syn- chronization procedures of inertial and satellite measurements in the evaluation of DSMN errors are proposed. The given results of DSMN flight testing justify the possibility and expediency to apply the proposed technology in order to improve the resolution of RSA. The compensation of aircraft trajectory instabilities in RSA signals can be provided by inertial- satellite micro-navigation system, taking into account the actual conditions of the RSA flight operations. The researches show that in order to achieve the required resolution of RSA it seems to be appropriate to define the rational balance be- tween accuracy DSMN characteristics and RSA wavelength range.

About the Authors

A. V. Chernodarov
LLC "Experimental Workshop NaukaSoft"
Russian Federation

Associate Professor, Chief Scientific Officer in the LLC "Experimental Workshop NaukaSoft", Professor in the Branch "Strela" of the Moscow Aviation Institute (MAI),

Moscow



A. P. Patrikeev
LLC "Experimental Workshop NaukaSoft"
Russian Federation

PhD, Chief Deputy,

Moscow



V. N. Kovregin
JSC "ZASLON"
Russian Federation

PhD, Associate Professor, Senior Researcher,

Moscow



G. M. Kovregina
JSC "ZASLON"
Russian Federation

PhD, Head of the Laboratory,

Moscow



I. I. Merkulova
Bauman Moscow State Technical University
Russian Federation

engineer NIISM,

Moscow 



References

1. Aviatsionnye sistemy radiovideniya [Aviation Systems of Aero Vision. Under G.S. Kondratenkov edition]. M., Radiotekhnika [Radio engineering]. 2015. 400 p. (in Russian)

2. Chernodarov A.V., Patrikeyev A.P., Korkishko Yu.N., Fedorov V.A., Perelyayev S.Ye. Polunaturnaya otrabotka programmno-matematicheskogo obespecheniya inertsial'no-sputnikovoy navigatsionnoy sistemy BINS-500 na volokonno-opticheskikh giroskopakh [HIL testing of mathematical software inertial-satellite navigation system BINS-500 to fiber optic gyros]. Giroskopiya i navigatsiya [Gyroscopy and navigation], 2010, no. 4, pp. 19–31. (in Russian)

3. Brown, R.G., Hartman G.L. Kalman filter with delayed states as observables. Proc. of the NAECON, 1968, vol. 24, pp. 66–72.

4. Dzhandzhgava G.I., Gerasimov G.I., Petkevlchyus P.Yu., Sukhorukov S.Ya., Babichenko A.V., Gaynullin I.A., Chernodarov A.V. Razvitiye intellektual'nykh integrirovannykh kompleksov bortovogo oborudovaniya navigatsii, upravleniya i navedeniya letatel'nykh apparatov v razrabotkakh Ramenskogo priborostroitel'nogo konstruktorskogo byuro [Development of intellectual integrated complexes of onboard equipment navigation, control and directing aircrafts to in the decisions of Ramenskoe Design Company]. Aviakosmicheskoye priborostroyeniye [Aerospace Instrument], 2008, no. 2, pp. 2–10. (in Russian)

5. Chеrnodarov A.V., Babichenko A.V. Kontrol' i adaptivno-robastnaya zashchita tselostnosti inertsial'nykh izmeritel'nykh moduley [Monitoring and adaptive robust protection of the integrity of inertial measurement units]. Aviakosmicheskoye priborostroyeniye [Aerospace Instrument], 2008, no. 11, pp. 59–64. (in Russian)

6. Chernodarov A.V. Kontrol' i adaptivno-robastnaya otsenka sostoyaniya integrirovannykh navigatsionnykh sistem na baze kvantovo-opticheskikh izmeriteley [Monitoring and adaptive robust estimation of integrated navigation systems based on optical quantum sensors]. Nauchnyj Vestnik MGTU GA [Scientific Bulletin of the MSTUCA], 2012, no. 185, pp. 5–12. (in Russian)

7. Chernodarov A.V. Kontrol' i parirovaniye narusheniy v integrirovannykh navigatsionnykh sistemakh na osnove kombinirovannykh kriteriyev soglasiya [Monitoring and counteraction against faults in integrated navigation systems by the use of combined goodness-of-fit tests]. Nauchnyj Vestnik MGTU GA [Scientific Bulletin of the MSTUCA], 2015, no. 213 (3), pp. 13–21. (in Russian)

8. Chernodarov A.V., Patrikeyev A.P. Kontrol' i parirovaniye narusheniy v nablyudayemykh dinamicheskikh sistemakh s ispol'zovaniyem kombinirovannykh kriteriyev soglasiya [Monitoring and parry violations observed dynamical systems using combined criteria of consent]. Trudy mezhdunarodnogo simpoziuma Nadezhnost' i kachestvo. Penza [Proceedings of the International Symposium Reliability and quality. Penza.], 2015, vol. 2, pp. 81–85. (in Russian)

9. Dzhandzhgava G.I., Chernodarov A.V. Adaptivno-robastnaya fil'tratsiya i inertsial'naya navigatsiya [Adaptive robust filtering and navigation systems integration]. Inzhenernaya fizika [Engineering Physics], 2016, no. 4, pp. 50–59. (in Russian)


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For citations:


Chernodarov A.V., Patrikeev A.P., Kovregin V.N., Kovregina G.M., Merkulova I.I. FLIGHT DEVELOPMENT OF A DISTRIBUTED INERTIAL SATELLITE MICRONAVIGATTION SYSTEM FOR SYNTHETIC - APERTURE RADAR. Civil Aviation High Technologies. 2017;20(1):222-231. (In Russ.)

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ISSN 2079-0619 (Print)
ISSN 2542-0119 (Online)