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  4. Passive damping of composite blades using embedded piezoelectric modules or shape memory alloy wires: a comparative study
 
research article

Passive damping of composite blades using embedded piezoelectric modules or shape memory alloy wires: a comparative study

Bachmann, F.
•
de Oliveira, R.
•
Sigg, A.  
Show more
2012
Smart Materials And Structures

Emission reduction from civil aviation has been intensively addressed in the scientific community in recent years. The combined use of novel aircraft engine architectures such as open rotor engines and lightweight materials offer the potential for fuel savings, which could contribute significantly in reaching gas emissions targets, but suffer from vibration and noise issues. We investigated the potential improvement of mechanical damping of open rotor composite fan blades by comparing two integrated passive damping systems: shape memory alloy wires and piezoelectric shunt circuits. Passive damping concepts were first validated on carbon fibre reinforced epoxy composite plates and then implemented in a 1:5 model of an open rotor blade manufactured by resin transfer moulding (RTM). A two-step process was proposed for the structural integration of the damping devices into a full composite fan blade. Forced vibration measurements of the plates and blade prototypes quantified the efficiency of both approaches, and their related weight penalty.

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Type
research article
DOI
10.1088/0964-1726/21/7/075027
Web of Science ID

WOS:000306002100027

Author(s)
Bachmann, F.
de Oliveira, R.
Sigg, A.  
Schnyder, V.
Delpero, T.
Jaehne, R.
Bergamini, A.
Michaud, V.  
Ermanni, P.
Date Issued

2012

Publisher

Institute of Physics

Published in
Smart Materials And Structures
Volume

21

Article Number

075027

Subjects

Active Vibration Control

•

Optimal Placement

•

Smart Composites

•

Strain-Rate

•

Bars

•

Optimization

•

Parameters

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LTC  
Available on Infoscience
August 3, 2012
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/84389
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