On the micro-mechanical study of 1--3 type piezoelectric composites with semi-coupled thermo-electro-elastic effects
From MaRDI portal
Publication:1696569
DOI10.1007/S11012-017-0656-7zbMath1380.74090OpenAlexW2595792156MaRDI QIDQ1696569
Publication date: 14 February 2018
Published in: Meccanica (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1007/s11012-017-0656-7
micro-mechanical modelelement-free Galerkin (EFG) methodpiezoelectric fiber reinforced composite (PFRC)thermo-electro-elastic effects
Micromechanics of solids (74M25) Thermal effects in solid mechanics (74F05) Electromagnetic effects in solid mechanics (74F15)
Cites Work
- A new local meshless method for steady-state heat conduction in heterogeneous materials
- A micromechanical study on the electro-elastic behavior of piezoelectric fiber-reinforced composites using the element-free Galerkin method
- The effective thermoelectroelastic properties of microinhomogeneous materials
- Treatment of material discontinuity in the element-free Galerkin method
- A comprehensive unit cell model: A study of coupled effects in piezoelectric 1-3 composites
- Thermo-electro-mechanical response of 1--3--2 piezoelectric composites: effect of fiber orientations
- Micromechanics models for the effective nonlinear electro-mechanical responses of piezoelectric composites
- An analytical and numerical approach for calculating effective material coefficients of piezoelectric fiber composites
- Element‐free Galerkin methods
- Meshfree Methods
- Micromechanics of off-axis loading of metal matrix composites using finite element analysis
- Closed-form expressions for the effective coefficients of fibre-reinforced composite with transversely isotropic constituents. I: Elastic and hexagonal symmetry
- Closed-form expressions for the effective coefficients of a fibre-reinforced composite with transversely isotropic constituents. II: Piezoelectric and hexagonal symmetry
This page was built for publication: On the micro-mechanical study of 1--3 type piezoelectric composites with semi-coupled thermo-electro-elastic effects