In this paper the finite element model of an Unmanned Aerial Vehicle is updated by using experimental data coming from a standard ground vibration test in order to improve the numerical-experimental correlation. A sensitivity-based updating methodology that iteratively minimizes a residual vector, defined on the modal parameters (e.g. natural frequencies and mode shapes), is considered to identify the unknown values of the updating parameters. The structure under investigation is the Clarkson University Golden Eagle UAV. An initial numerical model of the structure is obtained by assembling the individual components previously updated which included wings, fuselage, horizontal tail, vertical tails and tail booms. As a result the identification procedure shifts its focus on the joints between UAV elements which could not be modeled accurately in earlier investigations.

Updating of an unmanned aerial vehicle finite element model using experimental data / Arras, Melissa; Coppotelli, Giuliano; Marzocca, Piergiovanni; Mezzapesa, Antonio Simone. - In: SAE TECHNICAL PAPER. - ISSN 0148-7191. - 2015-September:September(2015). (Intervento presentato al convegno SAE AeroTech Congress and Exhibition, AEROTECH 2015 tenutosi a Washington State Convention and Trade CenterSeattle, Usa) [10.4271/2015-01-2460].

Updating of an unmanned aerial vehicle finite element model using experimental data

Arras, Melissa
Membro del Collaboration Group
;
Coppotelli, Giuliano
Membro del Collaboration Group
;
2015

Abstract

In this paper the finite element model of an Unmanned Aerial Vehicle is updated by using experimental data coming from a standard ground vibration test in order to improve the numerical-experimental correlation. A sensitivity-based updating methodology that iteratively minimizes a residual vector, defined on the modal parameters (e.g. natural frequencies and mode shapes), is considered to identify the unknown values of the updating parameters. The structure under investigation is the Clarkson University Golden Eagle UAV. An initial numerical model of the structure is obtained by assembling the individual components previously updated which included wings, fuselage, horizontal tail, vertical tails and tail booms. As a result the identification procedure shifts its focus on the joints between UAV elements which could not be modeled accurately in earlier investigations.
2015
SAE AeroTech Congress and Exhibition, AEROTECH 2015
modal analysis; unmanned aerial vehicle; operational modal analysis
04 Pubblicazione in atti di convegno::04c Atto di convegno in rivista
Updating of an unmanned aerial vehicle finite element model using experimental data / Arras, Melissa; Coppotelli, Giuliano; Marzocca, Piergiovanni; Mezzapesa, Antonio Simone. - In: SAE TECHNICAL PAPER. - ISSN 0148-7191. - 2015-September:September(2015). (Intervento presentato al convegno SAE AeroTech Congress and Exhibition, AEROTECH 2015 tenutosi a Washington State Convention and Trade CenterSeattle, Usa) [10.4271/2015-01-2460].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1185222
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