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Numerical Flexural Strength Analysis of Thermally Stressed Delaminated Composite Structure under Sinusoidal Loading

  • C. K. Hirwani
  • , S. Biswash
  • , K. Mehar
  • , S. K. Panda

Research output: Contribution to journalConference articlepeer-review

Abstract

In this article, we investigate the thermomechanical deflection characteristics of the debonded composite plate structure using an isoparametric type of higher-order finite element model. The current formulation is derived using higher-order kinematic theory and the displacement variables described as constant along the thickness direction whereas varying nonlinearly for the in-plane directions. The present mid-plane kinematic model mainly obsoletes the use of shear correction factor as in the other lower-order theories. The separation between the adjacent layers is modeled via the sub-laminate technique and the intermittent continuity conditions imposed to avoid the mathematical ill conditions. The governing equation of equilibrium of the damaged plate structure under the combined state of loading are obtained using the variational principle and solved numerically to compute the deflection values. Further, the convergence test has been performed by refining the numbers of elements and validated through comparing the present results with available published values. The usefulness of the proposed formulation has been discussed by solving the different kind of numerical examples including the size, location and position of delamination.

Original languageEnglish
Article number012019
JournalIOP Conference Series: Materials Science and Engineering
Volume338
Issue number1
DOIs
Publication statusPublished - 10-04-2018
Event7th National Conference on Processing and Characterization of Materials, NCPCM 2017 - Rourkela, India
Duration: 08-12-201709-12-2017

All Science Journal Classification (ASJC) codes

  • General Materials Science
  • General Engineering

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