Modeling of electronic counter measures against fire control radar of air defense system
- Authors
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Володимир Маслов
Інститут фізики напівпровідників ім. В.Є. Лашкарьова НАН України
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- Keywords:
- Array, Array, Array, Array, Array, Array, Array, Array, Array
- Abstract
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It is marked that efficient deployment of tactical aviation under conditions of anti-aircraft warfare is impossible without exploiting aircraft EW self-protection systems. It is claimed that determining technical requirements for aircraft EW self-protection systems assumes modeling of electronic counter measures against fire control radar of air defense system, so that minimally such the models must include: space-energetic model and signal-energetic models of air defense system fire control radar functioning providing aim range tracking, range and speed tracking and angle tracking under jamming condition created by aircraft EW self-protection systems. The considered models are briefly described in a tabular form. Within space-energetic model jamming (jamming-free) zones are calculated. This model allows determining main energetic parameters for aircraft EW self-protection systems. Within signal-energetic model of air defense system fire control radar functioning providing aim range tracking, range and speed tracking, we use relationships that allow determining accuracies of joint and separate time delay and Doppler shift estimation and also radar resolution in these parameters. Within signal-energetic model of air defense system fire control radar functioning providing angle tracking we use relationships defining spatial spectrum estimation algorithms. These relationships allow determining accuracy of aim angle coordinates estimation and radar resolution in an angle coordinate. It is pointed that considered models of air defense system fire control radar functioning form the basis for determining main technical requirements for aircraft EW self-protection systems.
- Author Biographies
- References
-
Yarosh, S.P. (2014). Analysis of characteristics of modern aircraft EW systems. Weapon Systems and Military Technique. Harkiv: HUPS. № 3(39). Pp. 72—80.
Klimenko, V.V., Konotopets, M.M., Popov, A.O. & Tselischev, I.Yu. (2014). The state-of-the art and perspectives of modern aircraft EW systems of Armed Forces of Russian Federation. Proc. of DNDIA. № 10(17). K.: DNDIA. Pp. 26—33.
Electronic Warfare Handbook. The Shephard Press Ltd. 2008. 120 p.
Paliy, A.I. Electronic Warfare. М.: Voenizdat. 1989. 350 p.
Grishin, Yu.P., Ipatov, V.P., Kazarinov, Yu.M. (1990). Radioengineering systems. M.: Vysshaia shkola. 496 p.
Shirman, Ya.D. & Manzhos, V.N. (1981). Theory and technique of processing radar information in interference background. M.: Radio i Sviaz. 416 p.
Perunov, Yu.M., Fomichev, K.I. & Yudin, L.M. Electronic jamming information channels of weapon control systems. M.: Radiotehnika. 2003.
Lebedev, V., Varlamov, S., Kryuchkov, V. & Malyutin, N. (2016). Weapon System of Russian Air and Space Forces. Vol. 1. Modern Air and Space Defence Weapons and EW Systems of Russia. M.: Ethnica Studio Publishing. 560 p.
Welch, M. & Pywell. M. (2012). Electronic Warfare Test and Evaluation. NATO Research and Technology Organization 314 p.
Adamy, D.L. (2006). Introduction to Electronic Warfare Modeling and Simulation: Radar, Sonar and Navigation. Scitech Publ. 242 p. DOI: https://doi.org/10.1049/SBRA011E
Park, S.R., Nam, I. & Noh, S. Modeling and simulation for investigation of radar responses to electronic attacks in Electronic Warfare environments. Hindawi Security and Communications Networks. https://doi.org/10.1155/2018/3580536. DOI: https://doi.org/10.1155/2018/3580536
Vaseghi, S.V. (2000). Advanced Digital Signal Processing and Noise Reduction. 2nd Ed. John Wiley and Sons. DOI: https://doi.org/10.1002/0470841621
Antoniou, A. (2006). Digital Signal Processing: Signal, Systems and Filters. McGraw-Hill.
Widrow, B. & Stearns, S.D. (1985). Adaptive Signal Processing. Prentice Hall, Englewood Cliffs, NJ,
Haykin, S. (1991). Advances in Spectrum Analysis and Array Processing. Vol. 1 and 2. Englewood Cliffs, NJ, Prentice Hall.
Johnson, D.H. & Dudgeon, D.E. (1992). Array Signal Processing: Concepts and Methods. Englewood Cliffs, NJ, Prentice Hall.
Haykin, S. (1995). Advances in Spectrum Analysis and Array Processing. Vol. 3. Englewood Cliffs, NJ, Prentice Hall.
Buckley, K.M., Douglass, S.C., Sayed, A.H. & Van Veen B. (1999). Digital Signal Processing Handbook. Ed. by V.K. Madisetti & D.B. Williams. CRC Press. 1690 p.
Monzingo, R.A. & Miller, T.W. (1980). Introduction to Adaptive Arrays. John Wiley and Sons.
Tuzlukov, V. (2018). Signal Processing in Radar Systems. CRC Press. 624 p. DOI: https://doi.org/10.1201/9781315220147
Barton, D.K. (2005). Radar System Analysis and Modeling. Artech House. 564 p. DOI: https://doi.org/10.1109/MAES.2005.1423386
Marple, S.L. (1987). Digital Spectral Analysis with Applications. Prentice Hall. 492 p.
Capon, J. (1969). High-resolution frequency-wavenumber spectrum analysis. Proc. IEEE. Vol. 57. Pp. 1408—1418. DOI: https://doi.org/10.1109/PROC.1969.7278
Bangs, W.J. (1971). Array Processing with Generalized Beamformers. Ph.D. thesis, Yale University, New Haven, CT.
Johnson, D.H. (1982). Application of spectral estimation methods in bearing estimation problems. Proc. IEEE. Vol. 70. Pp. 1018—1028. DOI: https://doi.org/10.1109/PROC.1982.12430
Schmidt, R.O. (1979). Multiple emitter location and signal parameter estimation. Proc. RADC, Spectral Estimation Workshop, Rome, New York. Pp. 243—258.
Kumaresan, R. & Tufts, D.W. (1983). Estimating the angles of arrival of multiple plane waves. IEEE Trans. on Aerospace and Electronic systems, AES-19. Pp. 134—139. DOI: https://doi.org/10.1109/TAES.1983.309427
Paulraj, A., Roy, R. & Kailath, T. (1986). A subspace rotation approach to signal parameter estimation. Proc. of IEEE 74 (7). Pp. 1044—1046. DOI: https://doi.org/10.1109/PROC.1986.13583
Roy, R. & Kailath, T. (1989). ESPRIT – Estimation of signal parameters via rotational invariance techniques. IEEE Trans. on Acoustics, Speech, and Signal Processing, ASSP-37 (7). Pp. 984—995. DOI: https://doi.org/10.1109/29.32276
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- 2022-02-02
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