A Computational Framework for Design and Optimization of Flexoelectric Materials
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Publication:5237318
DOI10.1142/S0219876218500974zbMath1466.74007OpenAlexW2790697701WikidataQ106473596 ScholiaQ106473596MaRDI QIDQ5237318
Hamid Ghasemi, Harold S. Park, Naif Alajlan, Timon Rabczuk
Publication date: 17 October 2019
Published in: International Journal of Computational Methods (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1142/s0219876218500974
Electromagnetic effects in solid mechanics (74F15) Topological methods for optimization problems in solid mechanics (74P15)
Related Items (6)
Surface tension effect on flexoelectric energy harvesting based on extended isogeometric analysis ⋮ Two Interpolation Matrix Triangularization Methods for Parametric Level Set-Based Structural Topology Optimization ⋮ Topology optimization of flexoelectric composites using computational homogenization ⋮ An efficient 3D iterative interface-correction reinitialization for the level set method ⋮ Multilevel Monte Carlo method for topology optimization of flexoelectric composites with uncertain material properties ⋮ Multiphysics Topology Optimization of Thermal Actuators by Using the Level Set-Based Multiple-Type Boundary Method
Cites Work
- A theory of flexoelectricity with surface effect for elastic dielectrics
- Detection of multiple flaws in piezoelectric structures using XFEM and level sets
- Isogeometric analysis: CAD, finite elements, NURBS, exact geometry and mesh refinement
- On the possibility of piezoelectric nanocomposites without using piezoelectric materials
- ``Color level sets: A multi-phase method for structural topology optimization with multiple materials.
- A multiphase level set framework for image segmentation using the Mumford and Shah model
- A level set method for structural topology optimization.
- A level-set based IGA formulation for topology optimization of flexoelectric materials
- Detection of flaws in piezoelectric structures using extended FEM
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