Transient multi-scale analysis with micro-inertia effects using direct FE\(^2\) method
DOI10.1007/s00466-021-02012-6zbMath1467.74090OpenAlexW3155187831WikidataQ113326717 ScholiaQ113326717MaRDI QIDQ2037491
Jie Zhi, Karthikayen Raju, Vincent Beng Chye Tan, Tong-Earn Tay
Publication date: 8 July 2021
Published in: Computational Mechanics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1007/s00466-021-02012-6
wave propagationmultiscale methodcomposite beamlow-velocity impactacoustic metamaterialHill-Mandel principle
Finite element methods applied to problems in solid mechanics (74S05) Micromechanics of solids (74M25) Composite and mixture properties (74E30) Impact in solid mechanics (74M20)
Related Items (9)
Cites Work
- Homogenization of locally resonant acoustic metamaterials towards an emergent enriched continuum
- Transient computational homogenization for heterogeneous materials under dynamic excitation
- Geometrically nonlinear analysis of matrix cracking and delamination in composites with floating node method
- The reduced model multiscale method (R3M) for the nonlinear homogenization of hyperelastic media at finite strains
- Multi-scale computational homogenization: trends and challenges
- \(FE^2\) multiscale approach for modelling the elastoviscoplastic behaviour of long fibre SiC/Ti composite materials
- Dynamic homogenization of resonant elastic metamaterials with space/time modulation
- Considering computational speed vs. accuracy: choosing appropriate mesoscale RVE boundary conditions
- High performance reduction technique for multiscale finite element modeling (HPR-FE\(^2\)): towards industrial multiscale FE software
- Spectral variational multiscale model for transient dynamics of phononic crystals and acoustic metamaterials
- Direct \(\mathrm{FE}^2\) for concurrent multilevel modelling of heterogeneous structures
- Micromechanics-based surrogate models for the response of composites: a critical comparison between a classical mesoscale constitutive model, hyper-reduction and neural networks
- A computational multiscale homogenization framework accounting for inertial effects: application to acoustic metamaterials modelling
- Computational homogenization of heterogeneous materials with finite elements
- Continuum approach to computational multiscale modeling of propagating fracture
- Effective constitutive relations for waves in composites and metamaterials
- Multiscale Modeling and Simulation of Composite Materials and Structures
- Toward realization of computational homogenization in practice
- Mechanics of Solid Materials
- A numerical two-scale homogenization scheme: the FE2-method
- Transient analysis of nonlinear locally resonant metamaterials via computational homogenization
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