Yıl: 2017 Cilt: 25 Sayı: 5 Sayfa Aralığı: 3839 - 3853 Metin Dili: İngilizce İndeks Tarihi: 29-07-2022

Robust control for line-of-sight stabilization of a two-axis gimbal system

Öz:
Line-of-sight stabilization against various disturbances is an essential property of gimbaled imaging systems mounted on mobile platforms. In recent years, the importance of target detection from higher distances has increased. This has raised the need for better stabilization performance. For that reason, stabilization loops are designed such that they have higher gains and larger bandwidths. As these are required for good disturbance attenuation, sufficient loop stability is also needed. However, model uncertainties around structural resonances impose strict restrictions on sufficient loop stability. Therefore, to satisfy high stabilization performance in the presence of model uncertainties, robust control methods are required. In this paper, a robust controller design in LQG/LTR, H 1 , and -synthesis framework is described for a two-axis gimbal. First, the performance criteria and weights are determined to minimize the stabilization error with moderate control effort under known platform disturbance pro le. Second, model uncertainties are determined by considering locally linearized models at different operating points. Next, robust LQG/LTR, H 1 , and controllers are designed. Robust stability and performance of the three designs are investigated and compared. The paper nishes with the experimental performances to validate the designed robust controllers.
Anahtar Kelime:

Konular: Mühendislik, Elektrik ve Elektronik
Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
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APA Baskın M, LEBLEBİCİOĞLU M (2017). Robust control for line-of-sight stabilization of a two-axis gimbal system. , 3839 - 3853.
Chicago Baskın Mehmet,LEBLEBİCİOĞLU MEHMET KEMAL Robust control for line-of-sight stabilization of a two-axis gimbal system. (2017): 3839 - 3853.
MLA Baskın Mehmet,LEBLEBİCİOĞLU MEHMET KEMAL Robust control for line-of-sight stabilization of a two-axis gimbal system. , 2017, ss.3839 - 3853.
AMA Baskın M,LEBLEBİCİOĞLU M Robust control for line-of-sight stabilization of a two-axis gimbal system. . 2017; 3839 - 3853.
Vancouver Baskın M,LEBLEBİCİOĞLU M Robust control for line-of-sight stabilization of a two-axis gimbal system. . 2017; 3839 - 3853.
IEEE Baskın M,LEBLEBİCİOĞLU M "Robust control for line-of-sight stabilization of a two-axis gimbal system." , ss.3839 - 3853, 2017.
ISNAD Baskın, Mehmet - LEBLEBİCİOĞLU, MEHMET KEMAL. "Robust control for line-of-sight stabilization of a two-axis gimbal system". (2017), 3839-3853.
APA Baskın M, LEBLEBİCİOĞLU M (2017). Robust control for line-of-sight stabilization of a two-axis gimbal system. Turkish Journal of Electrical Engineering and Computer Sciences, 25(5), 3839 - 3853.
Chicago Baskın Mehmet,LEBLEBİCİOĞLU MEHMET KEMAL Robust control for line-of-sight stabilization of a two-axis gimbal system. Turkish Journal of Electrical Engineering and Computer Sciences 25, no.5 (2017): 3839 - 3853.
MLA Baskın Mehmet,LEBLEBİCİOĞLU MEHMET KEMAL Robust control for line-of-sight stabilization of a two-axis gimbal system. Turkish Journal of Electrical Engineering and Computer Sciences, vol.25, no.5, 2017, ss.3839 - 3853.
AMA Baskın M,LEBLEBİCİOĞLU M Robust control for line-of-sight stabilization of a two-axis gimbal system. Turkish Journal of Electrical Engineering and Computer Sciences. 2017; 25(5): 3839 - 3853.
Vancouver Baskın M,LEBLEBİCİOĞLU M Robust control for line-of-sight stabilization of a two-axis gimbal system. Turkish Journal of Electrical Engineering and Computer Sciences. 2017; 25(5): 3839 - 3853.
IEEE Baskın M,LEBLEBİCİOĞLU M "Robust control for line-of-sight stabilization of a two-axis gimbal system." Turkish Journal of Electrical Engineering and Computer Sciences, 25, ss.3839 - 3853, 2017.
ISNAD Baskın, Mehmet - LEBLEBİCİOĞLU, MEHMET KEMAL. "Robust control for line-of-sight stabilization of a two-axis gimbal system". Turkish Journal of Electrical Engineering and Computer Sciences 25/5 (2017), 3839-3853.