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- Title
Free Vibration and Dynamic Analysis on Free-Constrained Layer of Graphene Based on Composite Conical Shell via Jacobi–Ritz Method.
- Authors
Zhao, Jing; Fan, Guobin; Guan, Jialin; Li, Hui; Liu, Jincan; Xie, Zhengchao; Wong, Pak Kin
- Abstract
Excessive vibration has always been a serious problem for conical shell structures, while the application of the graphene-based free-constrained layer (GFCL) based on carbon fiber-reinforced composite (CFRC) structure is a novel way to improve structural performance. An analytical model for vibration and dynamic characteristics of the GFCL-CFRC conical shell resting on the Winkler–Pasternak elastic foundation with arbitrary boundary conditions is constructed, and four types of GFCL porosity distribution and GFCL dispersion pattern are considered in this model. The multi-segment technique and virtual spring technique are utilized to simulate arbitrary boundary conditions. Then, the first-order shear deformation theory (FSDT) and Hamilton's principle are employed to obtain the motion equation of the GFCL-CFRC conical shell, and the motion equation of the GFCL-CFRC conical shell is solved by the Ritz method. In conclusion, the dispersion mode of GFCL, thickness ratio of GFCL, and fiber angle have influence on the dynamic performance. With a reasonable design, the dynamic performance of the GFCL-CFRC conical shell can be further improved.
- Subjects
FREE vibration; CONICAL shells; COMPOSITE plates; HAMILTON'S principle function; SHEAR (Mechanics); ELASTIC foundations; RITZ method
- Publication
International Journal of Structural Stability & Dynamics, 2024, Vol 24, Issue 2, p1
- ISSN
0219-4554
- Publication type
Article
- DOI
10.1142/S0219455424500238