کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
288101 | 509605 | 2012 | 18 صفحه PDF | دانلود رایگان |

Passive structural vibration reduction by means of shunted piezoelectric patches is addressed in this paper. We present a strategy to optimize, in terms of damping efficiency, the geometry of piezoelectric patches as well as their placement on the host elastic structure. This procedure is based on the maximization of the modal electro-mechanical coupling factor (MEMCF) of the mechanical vibration mode to which the shunt is tuned. To illustrate the method, a general analytical model of a laminated beam is proposed. Two particular configurations are investigated: (i) a beam with two collocated piezoelectric patches connected in series or in parallel to the shunt and (ii) a cantilever beam with one patch. After a modal expansion, original closed-form solutions of the MEMCF are exhibited, which enables to compute optimal values for the placement, length and thickness of the piezoelectric patches that maximize the MEMCF. A dimensionless model is used so that this study can be used to design any smart beam, whatever be its dimensions. More general results about the coupling mechanisms between the piezoelectric patches and the host structure are also raised. In particular, it is found that the patches thickness is an essential parameter and that several configurations are possible, depending on the considered vibration mode. Experiments are also proposed to validate the model.
► An analytic model of a beam in vibration with asymmetric lamination is proposed.
► Closed form expressions for the modal electromechanical coupling factor are obtained.
► The electromechanical effect of the placement, thickness and length of piezoelectric patches is studied.
► General results on the optimal design parameters of a piezoelectric smart beam are given.
► Several optimal set of parameters are obtained for a given vibration mode.
Journal: Journal of Sound and Vibration - Volume 331, Issue 14, 2 July 2012, Pages 3286–3303