Simple Calibration Technique for Phased Array Radar Systems

Détails bibliographiques
Parent link:Progress In Electromagnetics Research M
Vol. 55.— 2017.— [P. 109-119]
Collectivité auteur: Национальный исследовательский Томский политехнический университет (ТПУ) Институт кибернетики (ИК) Кафедра систем управления и мехатроники (СУМ)
Autres auteurs: Babur G. P. Galina Petrovna, Manokhin G. O. Gleb Olegovich, Monastyrev E. A. Evgeny Aleksandrovich, Geltser A. A. Andrey Aleksandrovich, Shibelgut A. A. Aleksandr Andreevich
Résumé:Title screen
This paper presents a novel effective calibration technique applicable to phased array radars. The real embedded patterns of the array elements are measured independently in operating mode, taking antenna coupling and other parasitic effects into account. The proposed calibration technique requires minimal modification of the radar hardware. A set of angular-dependent error coefficients, which are compensated during the calibration process, are extracted for one received pulse for one/each angular direction of interest. The performance and effectiveness of the here-proposed calibration technique are assessed by means of modeling and experimental verification.
Publié: 2017
Sujets:
Accès en ligne:http://dx.doi.org/10.2528/PIERM16101203
Format: Électronique Chapitre de livre
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=654568
Description
Résumé:Title screen
This paper presents a novel effective calibration technique applicable to phased array radars. The real embedded patterns of the array elements are measured independently in operating mode, taking antenna coupling and other parasitic effects into account. The proposed calibration technique requires minimal modification of the radar hardware. A set of angular-dependent error coefficients, which are compensated during the calibration process, are extracted for one received pulse for one/each angular direction of interest. The performance and effectiveness of the here-proposed calibration technique are assessed by means of modeling and experimental verification.
DOI:10.2528/PIERM16101203