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Vibration analysis of rotating porous functionally graded material beams using exact formulation

Amoozgar, Mohammadreza; Gelman, Len

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Authors

Len Gelman



Abstract

In this article, the exact free vibration of porous functionally graded rotating blades is investigated. The nonlinear 3D dynamics of the blade is simulated using the geometrically exact fully intrinsic beam equations, and the corresponding cross-sectional properties of the FG beam are developed. The material properties of the functionally graded material blade are graded through the thickness using a power law distribution. Furthermore, it is assumed that due to the manufacturing process, a level of porosity exists in the material which in turn can affect the material properties of the blade. Two porosity models resembling the even and uneven distributions of porosity are considered. First, the obtained results for a functionally graded material rotating blade are compared with those reported in the literature, and a very good agreement is observed. Furthermore, the effect of various parameters on the vibration of the functionally graded material beam is investigated. It is obtained that the dynamics of the rotating blade is sensitive to the type of the porosity due to manufacturing flaws. Moreover, the numerical results show that the blade length to height ratio, power law index, rotating speed and porosity distribution model affect the dynamics of the beam significantly.

Citation

Amoozgar, M., & Gelman, L. (2022). Vibration analysis of rotating porous functionally graded material beams using exact formulation. Journal of Vibration and Control, 28(21-22), 3195-3206. https://doi.org/10.1177/10775463211027883

Journal Article Type Article
Acceptance Date May 11, 2021
Online Publication Date Jun 22, 2021
Publication Date 2022-11
Deposit Date Jun 10, 2024
Publicly Available Date Jun 11, 2024
Journal Journal of Vibration and Control
Print ISSN 1077-5463
Electronic ISSN 1741-2986
Publisher SAGE Publications
Peer Reviewed Peer Reviewed
Volume 28
Issue 21-22
Pages 3195-3206
DOI https://doi.org/10.1177/10775463211027883
Public URL https://nottingham-repository.worktribe.com/output/34874098
Publisher URL https://journals.sagepub.com/doi/10.1177/10775463211027883

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