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Actuator modelling for attitude control using incremental nonlinear dynamic inversion
Author(s) -
Florian Binz,
Dieter Moormann
Publication year - 2020
Publication title -
international journal of micro air vehicles
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.324
H-Index - 21
eISSN - 1756-8307
pISSN - 1756-8293
DOI - 10.1177/1756829320961925
Subject(s) - control theory (sociology) , robustness (evolution) , nonlinear system , actuator , fidelity , computer science , inversion (geology) , computation , high fidelity , control engineering , engineering , control (management) , algorithm , artificial intelligence , telecommunications , paleontology , biochemistry , chemistry , physics , quantum mechanics , structural basin , biology , electrical engineering , gene
Recently, the concept of incremental nonlinear dynamic inversion has seen an increasing adoption as an attitude control method for a variety of aircraft configurations. The reasons for this are good stability and robustness properties, moderate computation requirements and low requirements on modelling fidelity. While previous work investigated the robust stability properties of incremental nonlinear dynamic inversion, the actual closed-loop performance may degrade severely in the face of model uncertainty. We address this issue by first analysing the effects of modelling errors on the closed-loop performance by observing the movement of the system poles. Based on this, we analyse the neccessary modelling fidelity and propose simple modelling methods for the usual actuators found on small-scale electric aircraft. Finally, we analyse the actuator models using (flight) test data where possible.

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