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COMSOL Inc comsol multiphysics 5.3a
Comsol Multiphysics 5.3a, 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/multiphysic/comsol+multiphysics+5+2a/pmc07506574-97-4-3
Average 90 stars, based on 1 article reviews
comsol multiphysics 5.3a - by Bioz Stars, 2026-10
90/100 stars

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Related Articles

Concentration Assay:

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator.
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a (COMSOL AB, 2023).

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Assuming the intensity of the fluorescing dye, I, is proportional to its concentration, Equation S8 can be re-written in terms of intensity: ∂ I ∂ t = D 0 ∂ 2 I ∂ x 2 ( S9 ) Equation S9 was solved numerically using COMSOL Multiphysics 5.3a, to calculate the gradient profiles over a 12-hour period.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a ( ).

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: The research encompasses four main phases: (1) establishing a dynamic model for the V-shaped electrothermal microactuator, establishing a first-order transfer function between input voltage and displacement; (2) optimizing valve performance via parametric analysis of rib geometry using COMSOL Multiphysics 5.2a simulations, with emphasis on enhancing static gain ( ζ ) and reducing time constant ( τ ); (3) validating system-level functionality through AMESim 16.0-based simulations and experimental tests, focusing on hysteresis mitigation, step response, and linearity under varying frequencies; (4) experimental validation of the valve’s static and dynamic performance, including step response, linearity, and frequency-dependent hysteresis.

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Gradient profiles and diffusion coefficients were then quantified using both finite volume numerical simulation in COMSOL Multiphysics 5.3a and NIH ImageJ Image Processing Software (FIG. 11B-11F, Eq.

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.

Diffusion-based Assay:

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator.
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a (COMSOL AB, 2023).

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Assuming the intensity of the fluorescing dye, I, is proportional to its concentration, Equation S8 can be re-written in terms of intensity: ∂ I ∂ t = D 0 ∂ 2 I ∂ x 2 ( S9 ) Equation S9 was solved numerically using COMSOL Multiphysics 5.3a, to calculate the gradient profiles over a 12-hour period.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a ( ).

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: The research encompasses four main phases: (1) establishing a dynamic model for the V-shaped electrothermal microactuator, establishing a first-order transfer function between input voltage and displacement; (2) optimizing valve performance via parametric analysis of rib geometry using COMSOL Multiphysics 5.2a simulations, with emphasis on enhancing static gain ( ζ ) and reducing time constant ( τ ); (3) validating system-level functionality through AMESim 16.0-based simulations and experimental tests, focusing on hysteresis mitigation, step response, and linearity under varying frequencies; (4) experimental validation of the valve’s static and dynamic performance, including step response, linearity, and frequency-dependent hysteresis.

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Gradient profiles and diffusion coefficients were then quantified using both finite volume numerical simulation in COMSOL Multiphysics 5.3a and NIH ImageJ Image Processing Software (FIG. 11B-11F, Eq.

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.

Software:

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator.
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a (COMSOL AB, 2023).

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Assuming the intensity of the fluorescing dye, I, is proportional to its concentration, Equation S8 can be re-written in terms of intensity: ∂ I ∂ t = D 0 ∂ 2 I ∂ x 2 ( S9 ) Equation S9 was solved numerically using COMSOL Multiphysics 5.3a, to calculate the gradient profiles over a 12-hour period.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a ( ).

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: The research encompasses four main phases: (1) establishing a dynamic model for the V-shaped electrothermal microactuator, establishing a first-order transfer function between input voltage and displacement; (2) optimizing valve performance via parametric analysis of rib geometry using COMSOL Multiphysics 5.2a simulations, with emphasis on enhancing static gain ( ζ ) and reducing time constant ( τ ); (3) validating system-level functionality through AMESim 16.0-based simulations and experimental tests, focusing on hysteresis mitigation, step response, and linearity under varying frequencies; (4) experimental validation of the valve’s static and dynamic performance, including step response, linearity, and frequency-dependent hysteresis.

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Gradient profiles and diffusion coefficients were then quantified using both finite volume numerical simulation in COMSOL Multiphysics 5.3a and NIH ImageJ Image Processing Software (FIG. 11B-11F, Eq.

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.

Derivative Assay:

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator.
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a (COMSOL AB, 2023).

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Assuming the intensity of the fluorescing dye, I, is proportional to its concentration, Equation S8 can be re-written in terms of intensity: ∂ I ∂ t = D 0 ∂ 2 I ∂ x 2 ( S9 ) Equation S9 was solved numerically using COMSOL Multiphysics 5.3a, to calculate the gradient profiles over a 12-hour period.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a ( ).

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: The research encompasses four main phases: (1) establishing a dynamic model for the V-shaped electrothermal microactuator, establishing a first-order transfer function between input voltage and displacement; (2) optimizing valve performance via parametric analysis of rib geometry using COMSOL Multiphysics 5.2a simulations, with emphasis on enhancing static gain ( ζ ) and reducing time constant ( τ ); (3) validating system-level functionality through AMESim 16.0-based simulations and experimental tests, focusing on hysteresis mitigation, step response, and linearity under varying frequencies; (4) experimental validation of the valve’s static and dynamic performance, including step response, linearity, and frequency-dependent hysteresis.

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Gradient profiles and diffusion coefficients were then quantified using both finite volume numerical simulation in COMSOL Multiphysics 5.3a and NIH ImageJ Image Processing Software (FIG. 11B-11F, Eq.

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.

Biomarker Discovery:

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator.
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a (COMSOL AB, 2023).

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Assuming the intensity of the fluorescing dye, I, is proportional to its concentration, Equation S8 can be re-written in terms of intensity: ∂ I ∂ t = D 0 ∂ 2 I ∂ x 2 ( S9 ) Equation S9 was solved numerically using COMSOL Multiphysics 5.3a, to calculate the gradient profiles over a 12-hour period.

Article Title: Methods for processing and analyzing images of vascularized micro-organ and tumor systems
Article Snippet: Finite element modeling of fluid flow within vascular networks was performed in COMSOL Multiphysics 5.2a ( ).

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: The research encompasses four main phases: (1) establishing a dynamic model for the V-shaped electrothermal microactuator, establishing a first-order transfer function between input voltage and displacement; (2) optimizing valve performance via parametric analysis of rib geometry using COMSOL Multiphysics 5.2a simulations, with emphasis on enhancing static gain ( ζ ) and reducing time constant ( τ ); (3) validating system-level functionality through AMESim 16.0-based simulations and experimental tests, focusing on hysteresis mitigation, step response, and linearity under varying frequencies; (4) experimental validation of the valve’s static and dynamic performance, including step response, linearity, and frequency-dependent hysteresis.

Article Title: Microfluidic bi-directional migration assay
Article Snippet: Gradient profiles and diffusion coefficients were then quantified using both finite volume numerical simulation in COMSOL Multiphysics 5.3a and NIH ImageJ Image Processing Software (FIG. 11B-11F, Eq.

Article Title: Research on Pneumatic Proportional Pressure Valve Based on Silicon Microfluidic Chip with V-Shaped Electrothermal Microactuator
Article Snippet: A first-order transfer function between input voltage and displacement of the microactuator was derived through theoretical modeling and validated via COMSOL Multiphysics 5.2a simulations.



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