Modeling and Simulation of UAV Carrier Landings

Fuente: arXiv
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Main Authors: Misra, Gaurav, Gao, Tianyu, Bai, Xiaoli
Format: Preprint
Published: 2019
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author Misra, Gaurav
Gao, Tianyu
Bai, Xiaoli
author_facet Misra, Gaurav
Gao, Tianyu
Bai, Xiaoli
contents With UAVs promising capabilities to increase operation flexibility and reduce mission cost, we are exploiting the automated carrier-landing performance advancement that can be achieved by fixed-wing UAVs. To demonstrate such potentials, in this paper, we investigate two key metrics, namely, flight path control performance, and reduced approach speeds for UAVs based on the F/A-18 High Angle of Attack (HARV) model. The landing control architecture consists of an auto-throttle, a stability augmentation system, glideslope and approach track controllers. The performance of the control model is tested using Monte Carlo simulations under a range of environmental uncertainties including atmospheric turbulence consisting of wind shear, discrete and continuous wind gusts, and carrier airwakes. Realistic deck motion is considered where the standard deck motion time histories under the Systematic Characterization of the Naval Environment (SCONE) program released by the Office of Naval Research (ONR) are used. We numerically demonstrate the limiting approach conditions which allow for successful carrier landings and factors affecting it's performance.
format Preprint
id arxiv_https___arxiv_org_abs_1901_07951
institution arXiv
publishDate 2019
record_format arxiv
spellingShingle Modeling and Simulation of UAV Carrier Landings
Misra, Gaurav
Gao, Tianyu
Bai, Xiaoli
Systems and Control
With UAVs promising capabilities to increase operation flexibility and reduce mission cost, we are exploiting the automated carrier-landing performance advancement that can be achieved by fixed-wing UAVs. To demonstrate such potentials, in this paper, we investigate two key metrics, namely, flight path control performance, and reduced approach speeds for UAVs based on the F/A-18 High Angle of Attack (HARV) model. The landing control architecture consists of an auto-throttle, a stability augmentation system, glideslope and approach track controllers. The performance of the control model is tested using Monte Carlo simulations under a range of environmental uncertainties including atmospheric turbulence consisting of wind shear, discrete and continuous wind gusts, and carrier airwakes. Realistic deck motion is considered where the standard deck motion time histories under the Systematic Characterization of the Naval Environment (SCONE) program released by the Office of Naval Research (ONR) are used. We numerically demonstrate the limiting approach conditions which allow for successful carrier landings and factors affecting it's performance.
title Modeling and Simulation of UAV Carrier Landings
topic Systems and Control
url https://arxiv.org/abs/1901.07951