Preliminary Study of Optimum Piezoelectric Cross-Ply Composites for Energy Harvesting

  • Betts D
  • Kim H
  • Bowen C
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Abstract

Energy harvesting devices based on a piezoelectric material attached to asymmetric bistable laminate plates have been shown to exhibit high levels of power extraction over a wide range of frequencies. This paper optimizes for the design of bistable composites combined with piezoelectrics for energy harvesting applications. The electrical energy generated during state-change, or “snap-through,” is maximized through variation in ply thicknesses and rectangular laminate edge lengths. The design is constrained by a bistability constraint and limits on both the magnitude of deflection and the force required for the reversible actuation. Optimum solutions are obtained for differing numbers of plies and the numerical investigation results are discussed.

Figures

  • Figure 1: Stable (solid) and unstable (dashed) shapes of a [0n/90n]T laminate.
  • Figure 2: An example 4-ply piezoelectric (grey) and laminate (white) geometry.
  • Figure 3: Arrangement for actuation of a rectangular cross-ply laminate.
  • Figure 4: Longitudinal and transverse components of the total electrical energy, U. Note: subscript denotes the associated direction; superscript denotes the top (t) and bottom (b) piezoelectric layer.
  • Figure 5: Force-deflection behavior.
  • Figure 6: Changing curvature and snap-through behavior of a [0n/90n]T laminate with applied force.
  • Table 1: Breakdown of electrical energy for two [0/0/90/90]T laminates.
  • Figure 7: Two stable states of a [0/0/90/90]T laminate with aspect ratio of (a) 1 and (b) 5.

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APA

Betts, D. N., Kim, H. A., & Bowen, C. R. (2012). Preliminary Study of Optimum Piezoelectric Cross-Ply Composites for Energy Harvesting. Smart Materials Research, 2012, 1–8. https://doi.org/10.1155/2012/621364

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