F dell'Isola et al 2004 Smart Mater. Struct. 13 299 doi:10.1088/0964-1726/13/2/008
F dell'Isola1, C Maurini2,3 and M Porfiri1,4
Show affiliationsThe aim of this work is two-fold: to design devices for passive electric damping of structural vibrations by distributed piezoelectric transducers and electric networks, and to experimentally validate the effectiveness of such a damping concept. Two different electric networks are employed, namely a purely resistive network and an inductive–resistive one. The presented devices can be considered as distributed versions of the well-known resistive and resonant shunt of a single piezoelectric transducer. The technical feasibility and damping effectiveness of the proposed novel devices are assessed through the construction of an experimental prototype. Experimental results are shown to be in very good agreement with theoretical predictions. It is proved that the presented technique allows for a substantial reduction in the inductances used when compared with those required by the single resonant shunted transducer. In particular, it is shown that the required inductance decreases when the number of piezoelectric elements is increased. The electric networks are optimized in order to reduce forced vibrations close to the first resonance frequency. Nevertheless, the damping effectiveness for higher modes is experimentally proved. As well as specific results, fundamental theoretical and experimental considerations for passive distributed vibration control are provided.
46.70.De Beams, plates and shells
46.40.Ff Resonance, damping and dynamic stability
07.05.Fb Design of experiments
85.50.-n Dielectric, ferroelectric, and piezoelectric devices
Issue 2 (April 2004)
Received 1 August 2003, in final form 6 January 2004
Published 18 February 2004
F dell'Isola et al 2004 Smart Mater. Struct. 13 299
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