Title :
Nonlinear geometrical responses in large deflection of un-symmetrically layered piezo-electric plate under initial tension
Author :
Chen, Chun-Fu ; Li, I-Wei
Author_Institution :
Dept. of Mech. Eng., Chung-Hua Univ., Hsin Chu, Taiwan
Abstract :
The nonlinear geometrical responses in large deflection of an un-symmetrically piezo-electric layered plate under initial tension are studied. von Karman plate theory for large deflection is utilized and extended to an un-symmetrically layered plate including a piezoelectric layer. The nonlinear governing equations are derived, first, in a non-dimensional form in terms of lateral slope and radial force resultant. These equations are solved u sin g a numerical finite difference method with the aid of the clamped-ended boundary conditions of the problem and an iteration procedure, by taking the associated linear analytical solution of lateral slope as the initial guess. For an early monolithic plate under a very low applied voltage, the results agree well with available solutions for a single-layered case due to uniform lateral load in literature and thus the present approach is validated. For a two-layered un-symmetric plate made of typical silicon-based materials, the results show that piezoelectric effect seems to be apparent only up to a moderate initial tension and a moderate lateral pressure. Under this circumstance, the higher the applied voltage, the greater the central deflection; and hence the plate may transit to a membrane in a relatively low pretension condition. For a relatively high pretension or a severe lateral load, however, the piezoelectric effect becomes insignificant. Moreover, the effects of initial tension and lateral load may merge to become dominant, yielding nearly the same responses, regardless of the magnitude of the applied voltage.
Keywords :
elemental semiconductors; finite difference methods; iterative methods; piezoelectricity; plates (structures); silicon; Si; clamped-ended boundary conditions; initial tension; iteration procedure; large deflection; lateral slope; monolithic plate; nonlinear geometrical responses; numerical finite difference method; piezoelectric effect; piezoelectric layer; radial force resultant; silicon-based materials; unsymmetrically layered piezoelectric plate; von Karman plate theory; Actuators; Equations; Force; Materials; Sensor phenomena and characterization; Strontium;
Conference_Titel :
Microsystems, Packaging, Assembly and Circuits Technology Conference (IMPACT), 2011 6th International
Conference_Location :
Taipei
Print_ISBN :
978-1-4577-1387-3
Electronic_ISBN :
2150-5934
DOI :
10.1109/IMPACT.2011.6117232