doi: 10.17586/2226-1494-2020-20-1-24-31


OPTICAL-ELECTRONIC COMPLEX OF DETAILED SURVEILLANCE

A. Denisov, V. V. Popov, S. V. Logunov, P. V. Karev


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Denisov A.V., Popov V.V., Logunov S.V., Karev P.V. Optical-electronic complex of detailed surveillance. Scientific and Technical Journal of InformationTechnologies,Mechanics and Optics,2020, vol.20,no.1,pp.24–31 (inRussian).doi:10.17586/2226- 1494-2020-20-1-24-31


Abstract
Subject of Research. The paper presents algorithms and methods of the optoelectronic complex operation for detailed surveillance in space aimed at the search, detection and registration of spacecraft images withdrawn from service due to the expiration of the service life, as well as asteroids and space debris. Optical-electronic system consists of optical- electronic equipment that includes space review instrument, equipment of space debris visual identification, equipment of stereoscopic detailed surveillance, as well as television laser system for building three-dimensional “cloud of points” (depth map) of the identified object. Method. Based on the analysis of known publicly available sources for space systems, we proposed a novel method that provides increasing the range to the object under study by conserving the pulse energy. The method gives the possibility to concentrate energy in a narrow angle due to the three precision motors in the developed device displacing the emitter installed on them. The proposed approach provides for three-planed control of the width and angle of the laser radiation. The original operation algorithms of the detailed surveillance optoelectronic complex for building a depth map of the object under study were developed. Main Results. The project of optoelectronic complex has been developed functioning in low, medium and geostationary orbits with the maximum relative linear velocity from the object under study up to 1.5 km/s in low and medium orbits, and up to 6.15 km/s in geostationary orbits. An original method of aiming the light beam at the object of observation has been developed. Practical Relevance. Applying the proposed algorithms, optical-electronic system of detailed surveillance draws a three-dimensional image of the observation object on distances from 100 m with the aim of its identification and cataloguing. The results of the work can be useful in the development of laser systems, control systems for spacecraft rendezvous and docking, as well as for tasks with systems of spacecraft orbital maintenance for the military and civil industries.

Keywords: optical-electronic complex of detailed surveillance, space survey, object identification, stereoscopic detailed observation, laser location system

Acknowledgements. The paper is based on the results of a part of the research work between JSC Television Scientific Research Institute and JSC LOMO.

References
 1. Demin A.V., Umbitaliev A.A., Tsytsulin A.K., Polishuk S, Savitsky A.M., Chernogubov A.A. Optical and electronic complex for promising space apparatus orbital service systems. Voprosy Radioelektroniki. Seriya: Tekhnika Televideniya, 2019, no. 2, pp. 3–9. (in Russian)
2. Dyemin A.V., Denisov A.V., Letunovsky A.V. Spaceborne optical- digital systems and complexes. Journal of Instrument Engineering, 2010, vol. 53, no. 3, pp. 53–59. (in Russian)
3. Logunov S.V., Rogov D.A., Chistyakov S.V. Method of calculation of size of gross of stars in system of the broadband optical receiver. Proceedings of the Mozhaisky Military Aerospace Academy, 2016, no. 654, pp. 89–95. (in Russian)
4. Golitsyn A.A., Seyfi N.A. Active-pulse observation method using CCD photodetector with interline transfer. Journal of Instrument Engineering, 2017, vol. 60, no. 11, pp. 1040–1047. (in Russian). doi: 10.17586/0021-3454-2017-60-11-1040-1047
5. Vargin P.S. Method of determining object space form. Patent RU 1840824C, 2012. (in Russian)
6. Umbitaliev A.A., Vargin P.S., Chernogubov A.A. Determination of the spatial form of artificial space objects by the method of television laser location. Voprosy Radioelektroniki. Seriya: Tekhnika Televideniya, 2019, no. 2, pp. 10–23. (in Russian)
7. Wang X., Cao Y., Cui W., Liu X., Fan S., Zhou Y., Li Y. Three- dimensional range-gated flash LIDAR for land surface remote sensing. Proceedings of SPIE, vol. 9260, pp. 92604L. doi: 10.1117/12.2074906
8. Ivanov V.G, Kamenev A.A. Estimation of space objects detection range by the onboard multi-spectral optical-electronic equipment. Voprosy Radioelektroniki. Seriya: Tekhnika Televideniya, 2016, no. 3, pp. 14–22. (in Russian)
9. Geikhman I.L., Volkov V.G. The Fundamentals of Visibility Improvement in Inclement Conditions. Moscow, Nedra-Biznescentr Publ., 1999, 286 p. (in Russian)
10. Everingham M., Van Gool L., Williams C.K.I., Winn J., Zisserman A. The pascal visual object classes (VOC) challenge. International Journal of Computer Vision, 2010, vol. 88, no. 2, pp. 303–338. doi: 10.1007/s11263-009-0275-4
11. Starovoitov E.I., Savchuk D.V., Zubov N.E. Selection of lasers for increasing the range of onboard laser ranging systems of space vehi- cles. Scientific periodical of the Bauman MSTU, 2013, no. 8, pp. 215– 232. (in Russian). doi: 10.7463/0813.0609292
12. Nazarov V.N., Balashov I.F. Energy Evaluation of Pulse Laser Rangefinders. St.Petersburg, SPb GITMO (TU), 2002, 38 p. Available at: http://de.ifmo.ru/bk_netra/start.php?bn=27 (accessed: 16.12.2019). (in Russian)
13. Stavrov A.A., Pozdniakov M.G. Pulse laser rangefinders for optic location systems. Doklady BGUIR, 2003, vol. 1, no. 2, pp. 59–65. (in Russian)
14. Protopopov V.V., Ustinov N.D. Infrared Laser Location Systems. Moscow, Voenizdat Publ., 1987, 175 p. (in Russian)
15. Xinwei W., Youfu L., Yan Z. Multi-pulse time delay integration method for flexible 3D super-resolution range-gated imaging. Optics Express, 2015, vol. 23, no. 6, pp. 7820–7831. doi: 10.1364/OE.23.007820


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