Creep Modeling in An Orthotropic FGM Cylinder

Authors

  • Ashish Singla Department of Mechanical Engineering, University College of Engineering, Punjabi University Patiala, Punjab, India
  • Manish Garg Department of Physics, Punjabi University Patiala, Punjab, India
  • Dharmpal Deepak Department of Mechanical Engineering, University College of Engineering, Punjabi University Patiala, Punjab, India
  • V. K. Gupta Department of Mechanical Engineering, University College of Engineering, Punjabi University Patiala, Punjab, India

DOI:

https://doi.org/10.51983/arme-2012.1.2.2294

Keywords:

Modeling, Steady state creep, Cylinder, Functionally Graded Material, Orthotropic

Abstract

A mathematical model has been developed to estimate steady state creep in an orthotropic cylinder made of functionally graded composite. The FG cylinder is assumed to undergo creep according to Power law. The model developed has been used to investigate the steady state creep response of the FGM cylinder for varying orthotropicity of the material. The results obtained are compared with those estimated for a similar FGM cylinder but having isotropic properties. The result reveals that the presence of orthotropicity in the FGM cylinder may significantly modify its creep response.

References

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Published

05-11-2012

How to Cite

Singla, A., Garg, M., Deepak, D., & Gupta, V. K. (2012). Creep Modeling in An Orthotropic FGM Cylinder. Asian Review of Mechanical Engineering, 1(2), 55–61. https://doi.org/10.51983/arme-2012.1.2.2294