2d finite element method (fem) electrostatics model Search Results


90
COMSOL Inc 2d finite element model
2d Finite Element Model, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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ANSYS inc finite element model
Finite Element Model, supplied by ANSYS inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COMSOL Inc nonlinear 2d finite element model
Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each <t>section,</t> <t>endoderm</t> (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a <t>2D</t> slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.
Nonlinear 2d Finite Element Model, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/2d+finite+element+method+%28fem%29+electrostatics+model/pmc03317971-150-13-26?v=COMSOL+Inc
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nonlinear 2d finite element model - by Bioz Stars, 2026-08
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COMSOL Inc comsol multiphysics 5.1
Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each <t>section,</t> <t>endoderm</t> (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a <t>2D</t> slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.
Comsol Multiphysics 5.1, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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comsol multiphysics 5.1 - by Bioz Stars, 2026-08
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COMSOL Inc multiphysics® 5.2
Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each <t>section,</t> <t>endoderm</t> (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a <t>2D</t> slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.
Multiphysics® 5.2, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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multiphysics® 5.2 - by Bioz Stars, 2026-08
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KU Leuven 2d finite element (fe) model
Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each <t>section,</t> <t>endoderm</t> (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a <t>2D</t> slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.
2d Finite Element (Fe) Model, supplied by KU Leuven, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/2d+finite+element+method+%28fem%29+electrostatics+model/pm38700788-22-8-18?v=KU+Leuven
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2d finite element (fe) model - by Bioz Stars, 2026-08
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ANSYS inc 2d finite element cohesive zone model
Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each <t>section,</t> <t>endoderm</t> (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a <t>2D</t> slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.
2d Finite Element Cohesive Zone Model, supplied by ANSYS inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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2d finite element cohesive zone model - by Bioz Stars, 2026-08
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ANSYS inc finite element method 2d plane-strain non-linear models
Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each <t>section,</t> <t>endoderm</t> (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a <t>2D</t> slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.
Finite Element Method 2d Plane Strain Non Linear Models, supplied by ANSYS inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/2d+finite+element+method+%28fem%29+electrostatics+model/10__1016_slash_j__prostr__2016__06__237-74-0-10?v=ANSYS+inc
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finite element method 2d plane-strain non-linear models - by Bioz Stars, 2026-08
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COMSOL Inc multiphysics©
Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each <t>section,</t> <t>endoderm</t> (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a <t>2D</t> slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.
Multiphysics©, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/2d+finite+element+method+%28fem%29+electrostatics+model/pm26150320-106-12-11?v=COMSOL+Inc
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multiphysics© - by Bioz Stars, 2026-08
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COMSOL Inc 2d finite element based model comsol 5.2 wave optics module
Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each <t>section,</t> <t>endoderm</t> (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a <t>2D</t> slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.
2d Finite Element Based Model Comsol 5.2 Wave Optics Module, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/2d+finite+element+method+%28fem%29+electrostatics+model/pmc05457259-51-4-12?v=COMSOL+Inc
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2d finite element based model comsol 5.2 wave optics module - by Bioz Stars, 2026-08
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COMSOL Inc finite element approach comsol ac/dc module 2d axisymmetric model
Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each <t>section,</t> <t>endoderm</t> (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a <t>2D</t> slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.
Finite Element Approach Comsol Ac/Dc Module 2d Axisymmetric Model, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/2d+finite+element+method+%28fem%29+electrostatics+model/pm34359904-148-16-19?v=COMSOL+Inc
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finite element approach comsol ac/dc module 2d axisymmetric model - by Bioz Stars, 2026-08
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COMSOL Inc 2d human head finite element model (fem)
CT image and <t>2D</t> finite element model of human head used for simulation experiments. (a) A head CT image of a healthy volunteer was used to construct a finite element model. (b) A finite element model <t>(FEM)</t> with an ideally symmetrical structure was constructed according to the right boundary of each layer of head tissues in the head CT image. The 2D head model consisted of 17659 triangular elements, 9200 nodes, and 16 electrodes (A: anterior; P: posterior; L: left; and R: right).
2d Human Head Finite Element Model (Fem), supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/2d+finite+element+method+%28fem%29+electrostatics+model/pmc04060593-128-8-22?v=COMSOL+Inc
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2d human head finite element model (fem) - by Bioz Stars, 2026-08
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Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each section, endoderm (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a 2D slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.

Journal: Development (Cambridge, England)

Article Title: Not just inductive: a crucial mechanical role for the endoderm during heart tube assembly

doi: 10.1242/dev.073486

Figure Lengend Snippet: Geometry for computational model. (A) Bright-field and OCT images of HH stage 8+ embryo. OCT sections were taken through medial (green), mediolateral (orange) and lateral (purple) locations around the AIP. On each section, endoderm (blue) and cardiogenic mesoderm (red) were resolved by visual inspection. Arrows indicate orientation of each OCT section within the embryo. Scale bars: 300 μm (black); 100 μm (white). (B) OCT sections shown in A arrayed in 3D space. We consider a 2D slice through the tissue. Note that the thickness of the mesoderm (red) is greater than that of the adjacent endoderm (blue). (C) 2D projection of this slice overlaid with a schematic of HH stage 8+ embryo. (D) For our model geometry, we consider an idealized 2D representation of the tissue, and both tissue layers are modeled as concentric circular rings of pseudoelastic material. We assume bilateral symmetry relative to the embryonic midline, and the model geometry includes only the yellow boxed region in C. A polar coordinate system (r, θ) has its origin at the center of the rings. See text for further details.

Article Snippet: Model geometry To help interpret our tissue cutting experiments, we constructed a nonlinear 2D finite element model of the endoderm and mesoderm around the AIP using COMSOL Multiphysics (Version 3.5, COMSOL AB, Providence, RI, USA).

Techniques:

CT image and 2D finite element model of human head used for simulation experiments. (a) A head CT image of a healthy volunteer was used to construct a finite element model. (b) A finite element model (FEM) with an ideally symmetrical structure was constructed according to the right boundary of each layer of head tissues in the head CT image. The 2D head model consisted of 17659 triangular elements, 9200 nodes, and 16 electrodes (A: anterior; P: posterior; L: left; and R: right).

Journal: The Scientific World Journal

Article Title: Exploratory Study on the Methodology of Fast Imaging of Unilateral Stroke Lesions by Electrical Impedance Asymmetry in Human Heads

doi: 10.1155/2014/534012

Figure Lengend Snippet: CT image and 2D finite element model of human head used for simulation experiments. (a) A head CT image of a healthy volunteer was used to construct a finite element model. (b) A finite element model (FEM) with an ideally symmetrical structure was constructed according to the right boundary of each layer of head tissues in the head CT image. The 2D head model consisted of 17659 triangular elements, 9200 nodes, and 16 electrodes (A: anterior; P: posterior; L: left; and R: right).

Article Snippet: According to finite element modeling [ ], a 2D human head finite element model (FEM) with ideally bilateral symmetry was established with COMSOL Multiphysics 3.5a (COMSOL, Inc., Stockholm, Sweden) ( ).

Techniques: Construct

Index of asymmetry (IA) of the 2D FEM of human head.

Journal: The Scientific World Journal

Article Title: Exploratory Study on the Methodology of Fast Imaging of Unilateral Stroke Lesions by Electrical Impedance Asymmetry in Human Heads

doi: 10.1155/2014/534012

Figure Lengend Snippet: Index of asymmetry (IA) of the 2D FEM of human head.

Article Snippet: According to finite element modeling [ ], a 2D human head finite element model (FEM) with ideally bilateral symmetry was established with COMSOL Multiphysics 3.5a (COMSOL, Inc., Stockholm, Sweden) ( ).

Techniques: