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Non-Fourier thermal shock resistance and transient thermal fracture of magneto-electro-elastic composite with a penny-shaped crack

  • Dongmei Chang*
  • , Baolin Wang
  • , Xuefeng Liu
  • , Tiegang Wang
  • , Gang Jin
  • , Jianxin Han
  • *Corresponding author for this work
  • TianJin University of Technology and Education
  • Western Sydney University
  • Civil Aviation University of China

Research output: Contribution to journalArticlepeer-review

Abstract

Magneto-electro-elastic composite with a penny-shaped crack is analyzed. The exact solution of temperature field based on non-Fourier heat conduction is derived by the method of standard separation of variables. The thermal stress, electrical displacement and magnetic induction in the transversely isotropic and axis-symmetric magneto-electro-elastic cylinder are evaluated by Hankel transform technique. The thermal stress, electrical displacement and magnetic induction intensity factors at the tip of penny-shaped crack are obtained by Abel type integral equation. The influence of the thermal relaxation time, crack length, characteristic length of materials and magneto-electro-thermo-elastic coupling on intensity factors are analyzed. Thermal shock resistance of MEE cylinder is evaluated by associating the stress based failure criterion and fracture mechanics based failure criterion.

Original languageEnglish
Article number107871
JournalEngineering Fracture Mechanics
Volume253
DOIs
StatePublished - Aug 2021
Externally publishedYes

Keywords

  • Crack
  • Magneto-electro-elastic composite
  • Non-Fourier
  • Thermal shock resistance

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