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Robust Flight Control Using Incremental Nonlinear Dynamic Inversion and Angular Acceleration Prediction
Author(s) -
S. Sieberling,
Q. P. Chu,
J.A. Mulder
Publication year - 2010
Publication title -
journal of guidance control and dynamics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.573
H-Index - 143
eISSN - 1533-3884
pISSN - 0731-5090
DOI - 10.2514/1.49978
Subject(s) - angular acceleration , angular velocity , nonlinear system , control theory (sociology) , inversion (geology) , acceleration , angular displacement , computer science , physics , acoustics , classical mechanics , control (management) , geology , paleontology , quantum mechanics , artificial intelligence , structural basin
This paper presents a flight control strategy based on nonlinear dynamic inversion. The approach presented, called incremental nonlinear dynamic inversion, uses properties of general mechanical systems and nonlinear dynamic inversion by feeding back angular accelerations. Theoretically, feedback of angular accelerations eliminates sensitivity to model mismatch, greatly increasing the robust performance of the system compared with conventional nonlinear dynamic inversion. However, angular accelerations are not readily available. Furthermore, it is shown that angular acceleration feedback is sensitive to sensor measurement time delays. Therefore, a linear predictive filter is proposed that predicts the angular accelerations, solving the time delay and angular acceleration availability problem. The predictive filter uses only references and measurements of angular rates. Hence, the proposed control method makes incremental nonlinear dynamic inversion practically available using conventional inertial measurement units

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