A fast strapdown gyrocompassing algorithm based on INS differential errors

Author:

Atashgah M. A. Amiri,Mohammadkarimi Hamed,Ebrahimi Mehrdad

Abstract

AbstractThis paper presents an enhanced algorithm for inertial gyrocompassing using strapdown sensors, which performs faster than the other available ones. The proposed algorithm is based on differential errors in an inertial navigation system and requires only the output of the inertial measurement unit while extracting and compensating for the inertial sensor errors. After eliminating the error of the inertial sensors, which is accomplished swiftly, the coarse alignment algorithm performs with error-compensated sensors, and the true north is extracted accurately. The number of non-observable parameters of the algorithm is equal to that of the fine alignment algorithm; therefore, its accuracy is the same as that of a well-tuned fine alignment. Numerical simulations and lab experiments demonstrate that the proposed method performs heading estimation in the time required to perform the coarse alignment, which is faster than the existing fine alignment algorithms.

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

Reference31 articles.

1. Rogers, R. M. Applied Mathematics in Integrated Navigation Systems (American Institute of Aeronautics and Astronautics (AIAA), 2007).

2. Li, W., Wu, W., Wang, J. & Lu, L. A fast SINS initial alignment scheme for underwater vehicle applications. J. Navig. 66, 181–198 (2012).

3. Zhu, L. & Cheng, X. An improved initial alignment method for rocket navigation systems. J. Navig. 66, 737–749 (2013).

4. Silva, F. O. E., Hemerly, E. M., Filho, W. D. C. L., Chagas, R. A. J. An improved stationary fine self-alignment approach for SINS using measurement augmentation. In Anais do XX Congresso Brasileiro de Automática, Belo Horizonte (2014).

5. Park, C. G. & Lee, J. G. An overlapping decomposed filter for INS initial alignment. J. Korean Soc. Aeronaut. Space Sci. 19(3), 65–76 (1991).

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