МОДЕЛИРОВАНИЕ ВЛИЯНИЯ ОШИБОК РАЗМЕЩЕНИЯ ЭЛЕМЕНТОВ АНТЕННЫ НА ПОГРЕШНОСТЬ КОРРЕЛЯЦИОННОГО ИНТЕРФЕРОМЕТРИЧЕСКОГО РАДИОПЕЛЕНГАТОРА
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Научный журнал Моделирование, оптимизация и информационные технологииThe scientific journal Modeling, Optimization and Information Technology
Online media
issn 2310-6018

MODELING OF THE EFFECT OF ANTENNA ELEMENTS ARRANGEMENT INACCURACY ON THE ERROR OF THE CORRELATION INTERFEROMETRIC DIRECTION FINDER

Panychev A.I.   Maximov A.V.   Vaganova A.A.  

UDC 621.396.663
DOI:

  • Abstract
  • List of references
  • About authors

The main sources of instrumental errors of direction finding in means of automated radio monitoring are the design errors and the spread of the feeder path characteristics of the antenna system. In the article the direction finder realizing the principle of the correlation interferometric direction finder in which the resulting characteristic of the directionality of the ring antenna array is formed by the direct synthesis method is considered. The model of a volumetric array of linear radiators capable of taking arbitrary orientation and placed without shading each other is used. The distortions of the synthesized radiation pattern due to errors in the positioning of the antenna system elements along the azimuthal and radial coordinates are estimated. A comparative analysis of realizations of the synthesized radiation pattern of the direction finder obtained using various laws of distribution of geometric errors is carried out. Conclusions are made about the degree of influence of root-mean-square errors of antenna elements placement in azimuth and radius on the distortions of the radiation pattern. It is established that the displacement of the elements of the ring antenna array along the azimuth is more significant than radial displacement for deformation the radiation pattern. The main statistical characteristics of the direction-finding errors for both angular coordinates are calculated for different distribution laws for the errors in the placement of the elements of the antenna array. With a uniform distribution of placement errors, the hypothesis that a instrumental error in the azimuthal coordinate has a normal distribution is adopted in accordance with Pearson's agreement criterion. In the case of a normal distribution of placement errors, the law of distribution of instrumental error in both coordinates is not normal.

1. . Rembovskii A.M. Avtomatizirovannyj radiokontrol' izluchenij: zadachi i sredstva [Automated radio control of emissions: tasks and means]. Special'naya texnika. 2002. pp. 2-6. (in Russian)

2. Ashikhmin A.V., Vinogradov A.V., Rembovskii A.M. Printsipy postroeniya sovremennykh radiopelengatorov [Departmental corporate networks and systems]. Vedomstvennye korporativnye seti i sistemy. 2002. No. 2. pp. 80- 85 (in Russian)

3. Rembovskii A.M. Zadachi i struktura sredstv avtomatizirovannogo radiokontrolya [The tasks and structure of automated radio monitoring equipment]. Spetsial'naya tekhnika. 2003. pp. 2-8. (in Russian)

4. Donets I.V., Reizenkind Ya.A. Iteratsionnoe utochnenie otsenki pelenga pri razreshenii neskol'kikh kogerentnykh signalov krugovoi antennoi reshetkoi [Iterative refinement of the bearing estimation in the resolution of several coherent signals by a circular antenna array]. Radiokontrol'. 2003. No. 6. (in Russian)

5. Jun Chen, Wei Hong. An Iterative Algoritm, Based on the Mesered Equation of Invariance for the Scattering Analyses of Arbitray Multycylinders. // HIE Trans, on Antennas and Propagation. 1999. Vol. 47. № 9. P. 1233-1239.

6. Ivanov A.V., Kuz'minov Yu.V., Panychev S.N. Otsenka rezul'tiruyushchei tochnosti nelineinykh antennykh izmerenii metodom interval'nogo analiza [Estimation of the resulting accuracy of non-linear antenna measurements by the interval analysis method]. Antenny. 2005. No. 7-8(98- 99). pp. 79- 82. (in Russian)

7. Ivanov A.V., Pasternak Yu.G. Algoritm otsenki azimuta istochnika SVCh izlucheniya s pomoshch'yu kol'tsevoi antennoi reshetki iz logoperiodicheskikh antenn [Algorithm for estimating the azimuth of a microwave radiation source using a ring antenna array from log-periodic antennas]. Telekommunikatsii. 2006. No. 11. pp. 26-31. (in Russian)

8. Drogalin V.V., Merkulov V.I., Rodzivilov V.A., Fedorov I.B., Chernov M.V. Algoritmy otsenivaniya uglovykh koordinat istochnikov izluchenii, osnovannye na metodakh spektral'nogo analiza [Algorithms for estimating the angular coordinates of radiation sources, based on spectral analysis methods]. Uspekhi sovremennoi radioelektroniki. 1998. No. 2. p. 3-17. (in Russian)

9. Reglament radiosvyazi [Radio Regulations]. Vol. 1. M.: Radio i svyaz', 1985. 509 p. (in Russian)

10. Spravochnik po radiokontrolyu [Handbook of radio monitoring]. MSE 2002. – Zheneva, 2004. (in Russian)

11. Rembovskii A.M., Ashikhmin A.V., Koz'min V.A. Radiomonitoring: zadachi, metody, sredstva [Radiomonitoring: tasks, methods, tools] / Pod redaktsiei A.M. Rembovskogo. M.: Goryachaya liniya-Telekom, 2006. 492 p. (in Russian)

12. .Swindlehurs A., Kailath Т. Azimuth / Elevation Direction Finding Regular Array Geometries // IEEE Trans. Aerosp. and Electron Syst. 1993. Vol. 23.1. № l. P. 145-156.

13. Dinger R. A Planar Version of а 4 GHz Reactively Steered Adaptive Array // IEEE Trans. Antennas and Propag. 1986. Vol. 34. № 3. P. 427-431.

14. Nicel U. Angle Estimation With Adaptive Arrays and Its Relation to SuperResolution // IEEE Proc. 1987. Vol. 134. № 1. P. 77-82.

15. Upanikrishna Pillai S., Bar-Ness Y., Haber F. A New Approach to Array Geometry to improved Spatial Spectrum Estimation // Proc. of IEEE. 1985. Vol. 73. № 10. P. 93-95.

16. Иванов А.В. Математическое обеспечение программно-методического комплекса проектирования радиопеленгаторных антенн, основанное на систематизации их эвристических и строгих моделей: дис. … канд. техн. наук. Воронеж: ВГТУ, 2007. 226 с.

17. Panychev A.I., Solomakhin P.A. Model' antenny bazovoi stantsii sistemy sotovoi svyazi [Antenna model of a base station of a cellular communication system]. Telekommunikatsii. 2003. No. 4. pp. 25-29. (in Russian)

18. Panychev A.I., Tishchenko B.V. Otsenka vliyaniya oshibok izgotovleniya antenny bazovoi stantsii sistemy GSM na ee kharakteristiki [Evaluation of the effect of manufacturing errors of the GSM base station antenna on its characteristics]. Antenny. 2003. No. 6(73). pp. 43-47. (in Russian)

19. Panychev A.I. Ring Antenna Array with Cylindrical Reflector. DOI: 10.1109/CRIMICO.2005.1564940.

Panychev Andrei Ivanovich

Email: aipanychev@sfedu.ru

Southern Federal University, Institute of Radio Engineering Systems and Control

Taganrog, Russian Federation

Maximov Alexander Viktorovich

Southern Federal University, Institute of Radio Engineering Systems and Control

Taganrog, Russian Federation

Vaganova Anastasia Alekseevna

Southern Federal University, Institute of Radio Engineering Systems and Control

Taganrog, Russian Federation

Keywords: direction finder, annular array, radiation pattern, instrumental error, the direct synthesis method

For citation: Panychev A.I. Maximov A.V. Vaganova A.A. MODELING OF THE EFFECT OF ANTENNA ELEMENTS ARRANGEMENT INACCURACY ON THE ERROR OF THE CORRELATION INTERFEROMETRIC DIRECTION FINDER. Modeling, Optimization and Information Technology. 2017;5(3). Available from: https://moit.vivt.ru/wp-content/uploads/2017/08/PanichevSoavtori_3_1_17.pdf DOI: (In Russ).

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