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Limit elastic speed analysis of rotating porous annulus functionally graded disks

  • Madan, Royal (Department of Mechanical Engineering, National Institute of Technology Raipur (C.G)) ;
  • Bhowmick, Shubhankar (Department of Mechanical Engineering, National Institute of Technology Raipur (C.G)) ;
  • Hadji, Lazreg (Faculty of Civil Engineering, Ton Duc Thang University) ;
  • Tounsi, Abdelouahed (YFL (Yonsei Frontier Lab), Yonsei University)
  • Received : 2021.03.27
  • Accepted : 2021.11.26
  • Published : 2022.02.10

Abstract

In this work, limit elastic speed analysis of functionally graded porous rotating disks has been reported. The work proposes an effective approach for modeling the mechanical properties of a porous functionally graded rotating disk. Four different types of porosity models namely: uniform, symmetric, inner maximum, and outer maximum distribution are considered. The approach used is the variational principle, and the solution has been achieved using Galerkin's error minimization theory. The study aims to investigate the effect of grading indices, aspect ratio, porosity volume fraction, and porosity types on limit angular speed for uniform and variable disk geometries of constant mass. To validate the current study, finite element analysis has been used, and there is good agreement between the two methods. The study yielded a decrease in limit speed as grading indices and aspect ratio increase. The porosity volume fraction is found to be more significant than the aspect ratio effect. The research demonstrates a range of operable speeds for porous and non-porous disk profiles that can be used in industries as design data. The results show a significant increase in limit speed for an exponential disk when compared to other disk profiles, and thus, the study demonstrates a range of FG-based structures for applications in industries that will not only save material (lightweight structures) but also improve overall performance.

Keywords

References

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