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COMSOL Inc comsol multiphysics-predicted model
Comsol Multiphysics Predicted 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/comsol+multiphysics+models/comsol+multiphysics+model/pmc12212249-327-8-8
Average 90 stars, based on 1 article reviews
comsol multiphysics-predicted model - by Bioz Stars, 2026-09
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Article Title: Using Recurrent Neural Networks to Reconstruct Temperatures from Simulated Fluorescent Data for use in Bio-Microfluidics
Article Snippet: Using previous validated COMSOL multiphysics models [37], we modeled the thermal environment of the experimental setup shown in Figures 4a and 5 and determined the temperature distribution within the 3D printed device (Figure 4b).

Article Title: Suppression of Gas Crossover and Dendrite Growth in Sodium-Gas Batteries across a Wide Operating Temperature Range.
Article Snippet: Enabling highly stable alkali metal anodes in gas atmospheres, such as oxygen and carbon dioxide, is critical for the implementation of emerging metal−gas batteries with high energy density and improved safety.. Herein, we demonstrate a three-salt electrolyte system to tackle the problems of gas crossover and uncontrolled metallic dendrite growth for allclimate sodium−gas batteries by the formation of an electrochemically/chemically stable solid electrolyte interphase that is rich in fluoride and sulfate compounds.. Consequently, the sodium metal anodes present high reversible capacity (10 mAh cm−2 at 1.5 mA cm−2) and long cycle life (2000 h) in gas atmospheres across a wide operating temperature range.

Article Title: Development of a high current density, high temperature superconducting cable for pulsed magnets
Article Snippet: COMSOL multiphysics models with reasonable experimental agreement are shown in figure 8.

Article Title: Operando film-electrochemical EPR spectroscopy tracks radical intermediates in surface-immobilized catalysts.
Article Snippet: COMSOL Multiphysics models were built based on the information provided in Supplementary Section 9.

Article Title: Using Recurrent Neural Networks to Reconstruct Temperatures from Simulated Fluorescent Data for use in Bio-Microfluidics
Article Snippet: Using previous validated COMSOL multiphysics models [ ], we modeled the thermal environment of the experimental setup shown in and and determined the temperature distribution within the 3D printed device ( ).

Article Title: Dynamic actuation enhances transport and extends therapeutic lifespan in an implantable drug delivery platform
Article Snippet: Model. 8, 20 (2011)], which is the same value used in our COMSOL Multiphysics models.

Article Title: Using Recurrent Neural Networks to Reconstruct Temperatures from Simulated Fluorescent Data for Use in Bio-microfluidics
Article Snippet: Using previous validated COMSOL multiphysics models [39], we modeled the thermal environment of the experimental setup shown in Figs. 4a and 5 and determined the temperature distribution within the 3D printed device (Fig. 4b).

Article Title: Light-to-matter chirality transfer in plasmonics.
Article Snippet: Fig. 6c and d: COMSOL Multiphysics models.



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(a) The output power measured experimentally for TEC cells with different electrode separation ( i.e. electrolyte or hydrogel thickness) as a function of voltage. (b) V oc and current density calculated with a complete COMSOL <t>multiphysics</t> simulation as a function of electrode separation. (c) The experimental result for the maximum output power as a function of electrode separation along with a 3rd-order polynomial fit just to underline the trend. (d) The convection velocity at the electrode/electrolyte interface obtained for cells with 10 mm width and different heights, explaining the reason for the performance decay after 20 mm (obtained from simulations).
Comsol Multiphysics 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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(a) The output power measured experimentally for TEC cells with different electrode separation ( i.e. electrolyte or hydrogel thickness) as a function of voltage. (b) V oc and current density calculated with a complete COMSOL <t>multiphysics</t> simulation as a function of electrode separation. (c) The experimental result for the maximum output power as a function of electrode separation along with a 3rd-order polynomial fit just to underline the trend. (d) The convection velocity at the electrode/electrolyte interface obtained for cells with 10 mm width and different heights, explaining the reason for the performance decay after 20 mm (obtained from simulations).
Numerical Model Comsol 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
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(a) The output power measured experimentally for TEC cells with different electrode separation ( i.e. electrolyte or hydrogel thickness) as a function of voltage. (b) V oc and current density calculated with a complete COMSOL multiphysics simulation as a function of electrode separation. (c) The experimental result for the maximum output power as a function of electrode separation along with a 3rd-order polynomial fit just to underline the trend. (d) The convection velocity at the electrode/electrolyte interface obtained for cells with 10 mm width and different heights, explaining the reason for the performance decay after 20 mm (obtained from simulations).

Journal: Materials Horizons

Article Title: Hydrogel-based thermoelectrochemical cells for waste heat recovery under passive cooling conditions

doi: 10.1039/d5mh00771b

Figure Lengend Snippet: (a) The output power measured experimentally for TEC cells with different electrode separation ( i.e. electrolyte or hydrogel thickness) as a function of voltage. (b) V oc and current density calculated with a complete COMSOL multiphysics simulation as a function of electrode separation. (c) The experimental result for the maximum output power as a function of electrode separation along with a 3rd-order polynomial fit just to underline the trend. (d) The convection velocity at the electrode/electrolyte interface obtained for cells with 10 mm width and different heights, explaining the reason for the performance decay after 20 mm (obtained from simulations).

Article Snippet: Using a comprehensive COMSOL Multiphysics model (Fig. S3 with parameters reported in Table S1, ESI ), we compare the thermal behavior of a conventional liquid electrolyte and a hydrogel-based electrolyte as a function of the electrode separations, while keeping the lateral dimensions of the cell constant (width W = 10 mm and depth D = 10 mm).

Techniques: Convection