DocumentCode :
23017
Title :
Coupled Controls-Computational Fluids Approach for the Estimation of the Concentration From a Moving Gaseous Source in a 2-D Domain With a Lyapunov-Guided Sensing Aerial Vehicle
Author :
Demetriou, Michael A. ; Gatsonis, Nikolaos A. ; Court, Jeffrey R.
Author_Institution :
Dept. of Mech. Eng., Worcester Polytech. Inst., Worcester, MA, USA
Volume :
22
Issue :
3
fYear :
2014
fDate :
May-14
Firstpage :
853
Lastpage :
867
Abstract :
The estimation of the gas concentration (process state) associated with an emitting stationary or moving source using a sensing aerial vehicle (SAV) is considered. The dispersion from such a gas source into the ambient atmosphere is representative of accidental or deliberate release of chemicals, or release of gases from the biological systems. Estimation of the concentration field provides a superior ability for source localization, assessment of possible adverse impacts, and eventual containment. The abstract and finite-dimensional approximation framework present couples theoretical estimation and control with computational fluid dynamics methods. The gas dispersion (process) model is based on the 2-D advection-diffusion equation with variable eddy diffusivities and ambient winds. The state estimator is a modified Luenberger observer with a collocated filter gain that is parameterized by the position of the SAV. The process-state (concentration) estimator is based on a 2-D adaptive, multigrid, multistep finite-volume method. The grid is adapted with local refinement and coarsening during the process-state estimation, to improve accuracy and efficiency. The 2-D motion dynamics of the SAV is incorporated into the spatial process and the SAV´s guidance is directly linked to the performance of the state estimator. The computational model and the state estimator are coupled in the sense that grid refinement is affected by the SAV repositioning, and the guidance laws of the SAV are affected by grid refinement. Extensive numerical simulations serve to demonstrate the effectiveness of the coupled approach.
Keywords :
Lyapunov methods; autonomous aerial vehicles; computational fluid dynamics; differential equations; diffusion; disperse systems; finite volume methods; gas sensors; iterative methods; multidimensional systems; observers; 2D adaptive finite-volume method; 2D advection-diffusion equation; 2D multigrid finite-volume method; 2D multistep finite-volume method; Lyapunov-guided sensing aerial vehicle; SAV 2D motion dynamics; SAV guidance; SAV position; SAV repositioning; chemical release; collocated filter gain; computational fluid dynamics; coupled controls-computational fluids approach; finite-dimensional approximation; gas concentration estimation; gas containment; gas dispersion model; gas source localization; grid adaptation; grid refinement; modified Luenberger observer; moving gaseous source; process-state concentration estimator; state estimator; variable eddy diffusivities; Grid adaptation; mobile sensors; model-based estimation; moving source; partial differential equations (PDEs); plume dispersion; source tracking; state estimation; switched system; switched system.;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2013.2267623
Filename :
6553107
Link To Document :
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