Prediction and measurement of forced response of a composite blade undergoing nonlinear vibration


Autoria(s): Piraccini, Matteo
Contribuinte(s)

Di Sante, Raffaella

Data(s)

19/03/2015

Resumo

The main objective of this project is to experimentally demonstrate geometrical nonlinear phenomena due to large displacements during resonant vibration of composite materials and to explain the problem associated with fatigue prediction at resonant conditions. Three different composite blades to be tested were designed and manufactured, being their difference in the composite layup (i.e. unidirectional, cross-ply, and angle-ply layups). Manual envelope bagging technique is explained as applied to the actual manufacturing of the components; problems encountered and their solutions are detailed. Forced response tests of the first flexural, first torsional, and second flexural modes were performed by means of a uniquely contactless excitation system which induced vibration by using a pulsed airflow. Vibration intensity was acquired by means of Polytec LDV system. The first flexural mode is found to be completely linear irrespective of the vibration amplitude. The first torsional mode exhibits a general nonlinear softening behaviour which is interestingly coupled with a hardening behaviour for the unidirectional layup. The second flexural mode has a hardening nonlinear behaviour for either the unidirectional and angle-ply blade, whereas it is slightly softening for the cross-ply layup. By using the same equipment as that used for forced response analyses, free decay tests were performed at different airflow intensities. Discrete Fourier Trasform over the entire decay and Sliding DFT were computed so as to visualise the presence of nonlinear superharmonics in the decay signal and when they were damped out from the vibration over the decay time. Linear modes exhibit an exponential decay, while nonlinearities are associated with a dry-friction damping phenomenon which tends to increase with increasing amplitude. Damping ratio is derived from logarithmic decrement for the exponential branch of the decay.

Formato

application/pdf

Identificador

http://amslaurea.unibo.it/8491/1/Piraccini_Matteo_tesi.pdf

Piraccini, Matteo (2015) Prediction and measurement of forced response of a composite blade undergoing nonlinear vibration. [Laurea magistrale], Università di Bologna, Corso di Studio in Ingegneria meccanica [LM-DM270] - Forli' <http://amslaurea.unibo.it/view/cds/CDS8202/>

Relação

http://amslaurea.unibo.it/8491/

Direitos

info:eu-repo/semantics/restrictedAccess

Palavras-Chave #Nonlinear vibration dynamics composite #scuola :: 843884 :: Ingegneria e Architettura #cds :: 8202 :: Ingegneria meccanica [LM-DM270] - Forli' #sessione :: terza
Tipo

PeerReviewed