Research Article

COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES

Volume: 22 Number: 3 September 29, 2021
EN

COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES

Abstract

In this work, three theories of Functionally Graded Material (FGM) are compared for structural dynamic and static performance of the thin-walled rotating blade. For this purpose, the pretwisted Thin Wall Rotating Beam (TWRB) with a fixed angular velocity is considered. The goal is to find the desirable FG model with improved free vibration, static deformation, and buckling behavior of the FGM blades. The Euler–Lagrange equations of motion of the energetic system are extracted utilizing Hamilton's principle. The Extended Galerkin`s Method (EGM) is used to solve the governing equation of motions. The effects of some parameters, such as the FGM models, angular velocity, and pretwist angle on the mechanical behavior of the FG beams are studied.

Keywords

Thin-walled blade, Functionally graded material, Structural dynamics

References

  1. [1] Thai C H, Kulasegaram, S, Tran LV, Nguyen-Xuan H. Generalized shear deformation theory for functionally graded isotropic and sandwich plates based on isogeometric approach. Computers & Structures, 2014; 141: 94-112.
  2. [2] Wang YQ, Zu JW. Vibration behaviors of functionally graded rectangular plates with porosities and moving in thermal environment. Aerospace Science and Technology, 2017; 69: 550-562.
  3. [3] Yu TT, Yin S, Bui TQ, Hirose S. A simple FSDT-based isogeometric analysis for geometrically nonlinear analysis of functionally graded plates. Finite Elements in Analysis and Design, 2015; 96: 1-10.
  4. [4] Farsadi T, Rahmanian M, Kurtaran H. Nonlinear analysis of functionally graded skewed and tapered wing-like plates including porosities: A bifurcation study. Thin-Walled Structures, 2021; 160: 107341.
  5. [5] Mahamood RM, Akinlabi ET. Types of functionally graded materials and their areas of application. In Functionally Graded Materials, 2017: 9-21, Springer, Cham.
  6. [6] Librescu L, Oh SY, Song O. Thin-walled beams made of functionally graded materials and operating in a high temperature environment: vibration and stability. Journal of Thermal Stresses 2005; 28 (6-7): 649-712.
  7. [7] Oh SY, Librescu L, Song O. Thermoelastic modeling and vibration of functionally graded thin-walled rotating blades. AIAA journal, 2003; 41(10): 2051-2061.
  8. [8] Bahaadini R, Saidi AR. Aeroelastic analysis of functionally graded rotating blades reinforced with graphene nanoplatelets in supersonic flow. Aerospace Science and Technology, 2018; 80: 381-391.
  9. [9] Piovan MT, Machado SP. Thermoelastic dynamic stability of thin-walled beams with graded material properties. Thin-walled structures. 2011; 49(3): 437-447.
  10. [10] Latalski J, Warminski J. Dynamics of rotating thin-walled cantilever composite beam excited by translational motion. Procedia Engineering. 2016; 144: 1039-1046.
APA
Farsadi, T. (2021). COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES. Eskişehir Technical University Journal of Science and Technology A - Applied Sciences and Engineering, 22(3), 260-273. https://doi.org/10.18038/estubtda.867690
AMA
1.Farsadi T. COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES. Estuscience - Se. 2021;22(3):260-273. doi:10.18038/estubtda.867690
Chicago
Farsadi, Touraj. 2021. “COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES”. Eskişehir Technical University Journal of Science and Technology A - Applied Sciences and Engineering 22 (3): 260-73. https://doi.org/10.18038/estubtda.867690.
EndNote
Farsadi T (September 1, 2021) COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES. Eskişehir Technical University Journal of Science and Technology A - Applied Sciences and Engineering 22 3 260–273.
IEEE
[1]T. Farsadi, “COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES”, Estuscience - Se, vol. 22, no. 3, pp. 260–273, Sept. 2021, doi: 10.18038/estubtda.867690.
ISNAD
Farsadi, Touraj. “COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES”. Eskişehir Technical University Journal of Science and Technology A - Applied Sciences and Engineering 22/3 (September 1, 2021): 260-273. https://doi.org/10.18038/estubtda.867690.
JAMA
1.Farsadi T. COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES. Estuscience - Se. 2021;22:260–273.
MLA
Farsadi, Touraj. “COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES”. Eskişehir Technical University Journal of Science and Technology A - Applied Sciences and Engineering, vol. 22, no. 3, Sept. 2021, pp. 260-73, doi:10.18038/estubtda.867690.
Vancouver
1.Touraj Farsadi. COMPARATIVE STUDY OF FUNCTIONALLY GRADED MATERIAL MODELS FOR STRUCTURAL DESIGN OF THIN-WALLED BLADES. Estuscience - Se. 2021 Sep. 1;22(3):260-73. doi:10.18038/estubtda.867690