Author:
Fu Li,Wang Lingling,Hu Jianghai
Abstract
PurposeThe aim of this paper is to propose a new coning correction algorithm, based on the singular perturbation technique, for the attitude update computation with non‐ideal angular rate information.Design/methodology/approachUnlike conventional coning correction algorithms, the new method uses angular rate two‐time scale model to construct the coning correction term of attitude update. In order to achieve balanced real/pseudo coning correction performance, the selection guidelines of the new algorithm parameters are established.FindingsPerformance of the new algorithm is evaluated by comparison with the conventional algorithm in no ideal sensors undergoing stochastic coning environments. The accuracy of attitude update can be improved effectively with reduced computational workload by using this new coning algorithm as compared with conventional ones.Practical implicationsThe proposed coning correction algorithm can be implemented with angular rate sensors in UAV (unmanned aerial vehicle) and other aircrafts attitude estimation for navigation and control applications.Originality/valueSingular perturbation is an effective method for structuring coning correction algorithm with filtered angular rate outputs in stochastic coning environments. The improved coning correction algorithm based on singular perturbations reduces the real and pseudo coning effects effectively as compared with conventional ones. It is proved to be valid for improvement of accuracy with reduced computations of the attitude update.
Reference26 articles.
1. Adewuya, A.A. (1996), “New methods in genetic search with real‐valued chromosomes”, Master's thesis, Massachusetts Institute of Technology, Cambridge, MA.
2. Bertrand, S., Guenard, N., Hamel, T., Piet‐Lahanier, H. and Eck, L. (2011), “A hierarchical controller for miniature VTOL UAVs: design and stability analysis using singular perturbation theory”, Control Engineering Practice, Vol. 19, pp. 1099‐1106.
3. Bortz, J.E. (1971), “A new mathematical formulation for strapdown inertial navigation”, IEEE Aerospace and Electronic Systems Magazine, Vol. 7 No. 1, pp. 61‐66.
4. Chong, S.H. (2006), “Role of structural relaxations and viberational excitations in the high‐frequency dynamics of liquids and glasses”, Institute for Molecular Science, Vol. 74 No. 3, pp. 1‐13.
5. Coffee, J.R. and Frank, S. (1989), “Strapdown gyro contribution to coning motion errors”, IEEE International Conference on Systems Engineering, Fairborn, OH, USA, pp. 55‐58.
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