Prediction of operational envelope maneuverability effects on rotorcraft design

Military helicopter operations require precise maneuverability characteristics for performance to be determined for the entire helicopter flight envelope. Historically, these maneuverability analyses are combinatorial in nature and involve human-interaction, which hinders their integration into conc...

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Main Author: Johnson, Kevin Lee
Published: Georgia Institute of Technology 2013
Subjects:
Online Access:http://hdl.handle.net/1853/47601
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-476012013-07-06T03:07:45ZPrediction of operational envelope maneuverability effects on rotorcraft designJohnson, Kevin LeeFlight mechanicsDynamic simulationReal-time analysisQuantitative analysisData filteringManeuver taxonomyControl independent simulationInverse simulationHelicopters Control systems Design and constructionFlight control Design and constructionTrajectory optimizationAerodynamicsHelicopters AerodynamicsMilitary helicopter operations require precise maneuverability characteristics for performance to be determined for the entire helicopter flight envelope. Historically, these maneuverability analyses are combinatorial in nature and involve human-interaction, which hinders their integration into conceptual design. A model formulation that includes the necessary quantitative measures and captures the impact of changing requirements real-time is presented. The formulation is shown to offer a more conservative estimate of maneuverability than traditional energy-based formulations through quantitative analysis of a typical pop-up maneuver. Although the control system design is not directly integrated, two control constraint measures are deemed essential in this work: control deflection rate and trajectory divergence rate. Both of these measures are general enough to be applied to any control architecture, while at the same time enable quantitative trades that relate overall vehicle maneuverability to control system requirements. The dimensionality issues stemming from the immense maneuver space are mitigated through systematic development of a maneuver taxonomy that enables the operational envelope to be decomposed into a minimal set of fundamental maneuvers. The taxonomy approach is applied to a helicopter canonical example that requires maneuverability and design to be assessed simultaneously. The end result is a methodology that enables the impact of design choices on maneuverability to be assessed for the entire helicopter operational envelope, while enabling constraints from control system design to be assessed real-time.Georgia Institute of Technology2013-06-15T02:45:42Z2013-06-15T02:45:42Z2013-04-08Dissertationhttp://hdl.handle.net/1853/47601
collection NDLTD
sources NDLTD
topic Flight mechanics
Dynamic simulation
Real-time analysis
Quantitative analysis
Data filtering
Maneuver taxonomy
Control independent simulation
Inverse simulation
Helicopters Control systems Design and construction
Flight control Design and construction
Trajectory optimization
Aerodynamics
Helicopters Aerodynamics
spellingShingle Flight mechanics
Dynamic simulation
Real-time analysis
Quantitative analysis
Data filtering
Maneuver taxonomy
Control independent simulation
Inverse simulation
Helicopters Control systems Design and construction
Flight control Design and construction
Trajectory optimization
Aerodynamics
Helicopters Aerodynamics
Johnson, Kevin Lee
Prediction of operational envelope maneuverability effects on rotorcraft design
description Military helicopter operations require precise maneuverability characteristics for performance to be determined for the entire helicopter flight envelope. Historically, these maneuverability analyses are combinatorial in nature and involve human-interaction, which hinders their integration into conceptual design. A model formulation that includes the necessary quantitative measures and captures the impact of changing requirements real-time is presented. The formulation is shown to offer a more conservative estimate of maneuverability than traditional energy-based formulations through quantitative analysis of a typical pop-up maneuver. Although the control system design is not directly integrated, two control constraint measures are deemed essential in this work: control deflection rate and trajectory divergence rate. Both of these measures are general enough to be applied to any control architecture, while at the same time enable quantitative trades that relate overall vehicle maneuverability to control system requirements. The dimensionality issues stemming from the immense maneuver space are mitigated through systematic development of a maneuver taxonomy that enables the operational envelope to be decomposed into a minimal set of fundamental maneuvers. The taxonomy approach is applied to a helicopter canonical example that requires maneuverability and design to be assessed simultaneously. The end result is a methodology that enables the impact of design choices on maneuverability to be assessed for the entire helicopter operational envelope, while enabling constraints from control system design to be assessed real-time.
author Johnson, Kevin Lee
author_facet Johnson, Kevin Lee
author_sort Johnson, Kevin Lee
title Prediction of operational envelope maneuverability effects on rotorcraft design
title_short Prediction of operational envelope maneuverability effects on rotorcraft design
title_full Prediction of operational envelope maneuverability effects on rotorcraft design
title_fullStr Prediction of operational envelope maneuverability effects on rotorcraft design
title_full_unstemmed Prediction of operational envelope maneuverability effects on rotorcraft design
title_sort prediction of operational envelope maneuverability effects on rotorcraft design
publisher Georgia Institute of Technology
publishDate 2013
url http://hdl.handle.net/1853/47601
work_keys_str_mv AT johnsonkevinlee predictionofoperationalenvelopemaneuverabilityeffectsonrotorcraftdesign
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