On sensitivity analysis of the fundamental frequency of cracked fiber metal laminated (FML) beams using experimental survey and finite element method
International Journal of Structural Integrity
ISSN: 1757-9864
Article publication date: 7 August 2024
Issue publication date: 30 September 2024
Abstract
Purpose
In this research, the free vibration sensitivity analysis of cracked fiber metal laminated (FML) beams is investigated numerically and experimentally. The effects of single and double cracks on the frequency of the cantilever beams are simulated using the finite element method (FEM) and compared to the experimental results.
Design/methodology/approach
In FEM analysis, the crack defect is simulated by the contour integral technique without considering the crack growth. The specimens are fabricated with an aluminum sheet, woven carbon fiber and epoxy resin. The FML specimens are constructed by bonding five layers as [carbon fiber-epoxy/Al/carbon fiber-epoxy/Al/carbon fiber-epoxy]. First, the location and length of cracks are considered input factors for the frequency sensitivity analysis. Then, the design of the experiment is produced in the cases of single and double cracks to compute the frequency of the beams in the first and second modes using the FEM. The mechanical shaker is used to determine the natural frequency of the specimens. In addition, the predicted response values of the frequency for the beam are used to compare with the experimental results.
Findings
Consequently, the results of the sensitivity analysis demonstrate that the location and length of the crack have significant effects on the modes.
Originality/value
Effective interaction diagrams are introduced to investigate crack detection for input factors, including the location and length of cracks in the cases of single and double cracks.
Keywords
Citation
Salmalian, K., Alijani, A. and Ramezannejad Azarboni, H. (2024), "On sensitivity analysis of the fundamental frequency of cracked fiber metal laminated (FML) beams using experimental survey and finite element method", International Journal of Structural Integrity, Vol. 15 No. 5, pp. 974-992. https://doi.org/10.1108/IJSI-11-2023-0126
Publisher
:Emerald Publishing Limited
Copyright © 2024, Emerald Publishing Limited