Repository logo
Communities & Collections
Research Outputs
Fundings & Projects
People
Statistics
New user? Click here to register.Have you forgotten your password?
  1. Home
  2. KMITL
  3. Publication
  4. Numerical solutions for functionally graded solids under thermal and mechanical loads using a high-order control volume finite element method
Loading...
Thumbnail Image

Numerical solutions for functionally graded solids under thermal and mechanical loads using a high-order control volume finite element method

Author(s)
Chareonsuk, Jarruwat
Vessakosol, Passakorn
Date Issued
February 1, 2011
Type
Article
DOI
10.1016/j.applthermaleng.2010.09.001
Abstract
In this article, a high-order control volume finite element method (CVFEM) is proposed to explore thermal stress analysis for functionally graded materials (FGMs) at steady state with the unstructured mesh capability for arbitrary-shaped domain. This formulation, also known as cell-vertex finite volume formulation, is useful for material engineers and scientists in determining the thermal response and thermo-deformations in FGM that subjected to thermal and mechanical loads such as thermal barrier plates, pressure vessels, heat exchanger tubes, etc. The heat conduction is considered for thermal analysis whereas the plane elasticity is considered for stress analysis. The quadratic interpolation for unknown variables and their derivatives are obtained from the shape functions of six-node triangular element given by the finite element theory. In addition, the material properties in functionally graded structure are also modeled by using the high-order shape functions. To verify and illustrate the accuracy of the proposed method, the results from our computer program are compared with those obtained analytically and numerically by a conventional Finite Element Method. The effect of grading parameter is also discussed. © 2010 Elsevier Ltd. All rights reserved.
Citation
Applied Thermal Engineering, 31(2-3), 213-227, 2011
Subjects

Finite volume method

Functionally graded m...

Heat conduction

Thermo-mechanical def...

Metrics
Get Involved!
  • Source Code
  • Documentation
  • Slack Channel
Make it your own

DSpace-CRIS can be extensively configured to meet your needs. Decide which information need to be collected and available with fine-grained security. Start updating the theme to match your Institution's web identity.

Need professional help?

The original creators of DSpace-CRIS at 4Science can take your project to the next level, get in touch!

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science

  • Accessibility settings
  • Privacy policy
  • End User Agreement
  • Send Feedback