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Abaqus Inc abaqus based simulation model
Abaqus Based Simulation Model, supplied by Abaqus Inc, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/abaqus-based+models/abaqus+simulation+software/pmc12786735-37-2-2
Average 86 stars, based on 1 article reviews
abaqus based simulation model - by Bioz Stars, 2026-09
86/100 stars

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Related Articles

In Situ:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Tomography:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Modification:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Control:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Shear:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Homogenization:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Derivative Assay:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Insulation:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Micro-CT:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Computed Tomography:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Generated:

Article Title: Dynamic finite-strain modelling of the human left ventricle in health and disease using an immersed boundary-finite element method
Article Snippet: The IBAMR- and ABAQUS-based models were found to yield good quantitative agreement.

Article Title: Review Study on Mechanical Properties of Cellular Materials
Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.



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Image Search Results


Research articles on the prescription of cellular materials.

Journal: Materials

Article Title: Review Study on Mechanical Properties of Cellular Materials

doi: 10.3390/ma17112682

Figure Lengend Snippet: Research articles on the prescription of cellular materials.

Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Techniques: Modification, Control, Shear, Homogenization, Derivative Assay

Difference between open and closed cell foam.

Journal: Materials

Article Title: Review Study on Mechanical Properties of Cellular Materials

doi: 10.3390/ma17112682

Figure Lengend Snippet: Difference between open and closed cell foam.

Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Techniques: Insulation

Processing techniques for the Microstructure formation of Cellular Material.

Journal: Materials

Article Title: Review Study on Mechanical Properties of Cellular Materials

doi: 10.3390/ma17112682

Figure Lengend Snippet: Processing techniques for the Microstructure formation of Cellular Material.

Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Techniques: In Situ, Micro-CT

Computational techniques for the Microstructure formation of Cellular Material.

Journal: Materials

Article Title: Review Study on Mechanical Properties of Cellular Materials

doi: 10.3390/ma17112682

Figure Lengend Snippet: Computational techniques for the Microstructure formation of Cellular Material.

Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Techniques: Homogenization, Computed Tomography

Voronoï diagram of the hexagonal honeycomb: ( a ) regular control points; ( b ) generated regular hexagons; and ( c ) coordinate perturbation at each control point i .

Journal: Materials

Article Title: Review Study on Mechanical Properties of Cellular Materials

doi: 10.3390/ma17112682

Figure Lengend Snippet: Voronoï diagram of the hexagonal honeycomb: ( a ) regular control points; ( b ) generated regular hexagons; and ( c ) coordinate perturbation at each control point i .

Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Techniques: Control, Generated

( a ) 3D Voronoi structure; ( b ) Corresponding cell base on the FE model; and ( c ) middle section perpendicular to the 2nd direction .

Journal: Materials

Article Title: Review Study on Mechanical Properties of Cellular Materials

doi: 10.3390/ma17112682

Figure Lengend Snippet: ( a ) 3D Voronoi structure; ( b ) Corresponding cell base on the FE model; and ( c ) middle section perpendicular to the 2nd direction .

Article Snippet: In addition, it examines computer-based models including 3D Additive Manufacturing (AM) structures, Laguerre tessellation, 2D and 3D Voronoi diagrams, ABAQUS-based models, tetradecahedral (Kelvin) structures, in situ X-ray tomography Scanning, finite element modeling, and Bravais lattice systems to explain mechanical properties through homogenized equations.

Techniques: