4.5 Article

Waves in fluid-filled functionally graded piezoelectric hollow cylinders: A restudy based on the reverberation-ray matrix formulation

Journal

WAVE MOTION
Volume 50, Issue 3, Pages 415-427

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.wavemoti.2012.10.006

Keywords

Functionally graded piezoelectric cylinder; Reverberation-ray matrix formulation; Symplectic framework; Wave propagation

Funding

  1. National Natural Science Foundation of China [11202186, 11102183, 11090333, 10972196]
  2. National Project of Scientific and Technical Supporting Programs
  3. Ministry of Science and Technology of China [2009BAG12A01-A03-2]

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A functionally graded piezoelectric hollow cylinder (or cylindrical shell) with arbitrary through-thickness variation of material properties may be approximated as a multilayered cylinder, which then can be analyzed effectively based on the state-space formulation. However, the state-space formulation is not always numerically stable. On the other hand, the reverberation-ray matrix formulation is unconditionally numerically stable, but no attempt has been made in the cylindrical coordinates with the dominant direction along the radial direction. This paper links the two formulations together with the aid of a symplectic framework. Thus, the reverberation-ray matrix formulation is properly established to analyze the wave propagation in a fluid-filled functionally graded piezoelectric hollow cylinder, along with an approximate laminate model. Results confirm that the calculation based on the developed formulation is unconditionally stable. The influence of various parameters on the dispersion behavior is also studied numerically. (c) 2012 Elsevier B.V. All rights reserved.

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