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Abaqus Inc fsi simulation
Fsi Simulation, supplied by Abaqus 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/fsi+simulation/fsi+model/pm38761502-114-3-19
Average 90 stars, based on 1 article reviews
fsi simulation - by Bioz Stars, 2026-10
90/100 stars

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Article Title: Hemodynamics and wall shear metrics in a pulmonary autograft: Comparing a fluid-structure interaction and computational fluid dynamics approach.
Article Snippet: Objective: In young patients, aortic valve disease is often treated by placement of a pulmonary autograft (PA) which adapts to its new environment through growth and remodeling.. To better understand the hemodynamic forces acting on the highly distensible PA in the acute phase after surgery, we developed a fluid-structure interaction (FSI) framework and comprehensively compared hemodynamics and wall shear-stress (WSS) metrics with a computational fluid dynamic (CFD) simulation.. Methods: The FSI framework couples a prestressed non-linear hyperelastic arterial tissue model with a fluid model using the in-house coupling code CoCoNuT.

Software:

Article Title: Patient-specific air puff-induced loading using machine learning
Article Snippet: .. In this section, we explain the input dataset of our algorithm of the fully coupled FSI simulation of the air jet CFD model and the FE model of the eye obtained from the model of ( ). shows the coupled FSI model from the ABAQUS 6.14 software. ..



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(A) Representative position tracking of a fluorescent bead in 1% agarose gel upon 10 Hz actuation. (B and C) 3D rendered phase and amplitude difference submerged in DMEM vs water at 37°C. (D) Fluid-structure interaction simulation model setup. (E) Simulation-predicted damping ratio as a function of the gel extrusion length. (F) Simulation-predicted damping ratio at varying viscosity and culture medium density with an extrusion length of 6.5 mm suggesting predominantly mass damping. (G and H) Simulation -predicted damping ratio at various agarose gel elastic moduli (G) and diameters (H) with an extrusion length of 6.5 mm. (I and J) Angle of rotation along central-boundary axis. (K) Angle of rotation along Y axis. (L) Increased deflection along Y axis. (M) Constant Y phase speed under different actuation frequencies suggesting non-dispersive shear wave propagation along the Y axis.
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(A) Representative position tracking of a fluorescent bead in 1% agarose gel upon 10 Hz actuation. (B and C) 3D rendered phase and amplitude difference submerged in DMEM vs water at 37°C. (D) Fluid-structure interaction simulation model setup. (E) Simulation-predicted damping ratio as a function of the gel extrusion length. (F) Simulation-predicted damping ratio at varying viscosity and culture medium density with an extrusion length of 6.5 mm suggesting predominantly mass damping. (G and H) Simulation -predicted damping ratio at various agarose gel elastic moduli (G) and diameters (H) with an extrusion length of 6.5 mm. (I and J) Angle of rotation along central-boundary axis. (K) Angle of rotation along Y axis. (L) Increased deflection along Y axis. (M) Constant Y phase speed under different actuation frequencies suggesting non-dispersive shear wave propagation along the Y axis.
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( a ) Fluid–structure interaction (FSI) simulation illustrating the distribution of flow fields inside the microchannel and the deformation of the microcantilever; ( b ) Displacement of the cantilever beam corresponding to the four sensing elements (time series data) simulated using the finite element method (FEM) model; ( c ) Displacement amplitude response of the microcantilevers.

Journal: Biomimetics

Article Title: A Highly Sensitive Deep-Sea Hydrodynamic Pressure Sensor Inspired by Fish Lateral Line

doi: 10.3390/biomimetics9030190

Figure Lengend Snippet: ( a ) Fluid–structure interaction (FSI) simulation illustrating the distribution of flow fields inside the microchannel and the deformation of the microcantilever; ( b ) Displacement of the cantilever beam corresponding to the four sensing elements (time series data) simulated using the finite element method (FEM) model; ( c ) Displacement amplitude response of the microcantilevers.

Article Snippet: To gain more insight into the piezopotential distribution on the interdigital electrodes, FEM simulations were conducted using the coupled fluid–structure interaction (FSI) module of COMSOL Multiphysics by placing a sensing unit in a water canal.

Techniques:

(A) Representative position tracking of a fluorescent bead in 1% agarose gel upon 10 Hz actuation. (B and C) 3D rendered phase and amplitude difference submerged in DMEM vs water at 37°C. (D) Fluid-structure interaction simulation model setup. (E) Simulation-predicted damping ratio as a function of the gel extrusion length. (F) Simulation-predicted damping ratio at varying viscosity and culture medium density with an extrusion length of 6.5 mm suggesting predominantly mass damping. (G and H) Simulation -predicted damping ratio at various agarose gel elastic moduli (G) and diameters (H) with an extrusion length of 6.5 mm. (I and J) Angle of rotation along central-boundary axis. (K) Angle of rotation along Y axis. (L) Increased deflection along Y axis. (M) Constant Y phase speed under different actuation frequencies suggesting non-dispersive shear wave propagation along the Y axis.

Journal: bioRxiv

Article Title: Tissue stiffness mapping by light sheet elastography

doi: 10.1101/2023.12.09.570896

Figure Lengend Snippet: (A) Representative position tracking of a fluorescent bead in 1% agarose gel upon 10 Hz actuation. (B and C) 3D rendered phase and amplitude difference submerged in DMEM vs water at 37°C. (D) Fluid-structure interaction simulation model setup. (E) Simulation-predicted damping ratio as a function of the gel extrusion length. (F) Simulation-predicted damping ratio at varying viscosity and culture medium density with an extrusion length of 6.5 mm suggesting predominantly mass damping. (G and H) Simulation -predicted damping ratio at various agarose gel elastic moduli (G) and diameters (H) with an extrusion length of 6.5 mm. (I and J) Angle of rotation along central-boundary axis. (K) Angle of rotation along Y axis. (L) Increased deflection along Y axis. (M) Constant Y phase speed under different actuation frequencies suggesting non-dispersive shear wave propagation along the Y axis.

Article Snippet: To investigate the impact of system parameters (e.g., gel extrusion length) on the damping behavior and the source of DMEM-induced damping (i.e., mass vs. viscous damping), we conducted COMSOL fluid-structure interaction (FSI) simulations.

Techniques: Agarose Gel Electrophoresis, Viscosity, Shear