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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/multiphysics+model/comsol+multiphysics+model/pmc12212249-327-8-8
Average 90 stars, based on 1 article reviews
comsol multiphysics-predicted model - by Bioz Stars, 2026-09
90/100 stars

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Article Title: Numerical Investigation on the Impact of Alternating Magnetic Fields on the Mechanical Properties of Concrete with Various Silica Sand and Ferrosilicon Compositions
Article Snippet: Hernandez-Bautista et al. [44], developed a Multiphysics model using COMSOL to simulate the accelerated curing process of pre-cast concrete, focusing on cement hydration and heat and mass transport.

Article Title: Simulation and Experimental Study of the Single-Pulse Femtosecond Laser Ablation Morphology of GaN Films.
Article Snippet: A multiphysics model was established using COMSOL Multiphysics® 4.3 to generate the isothermal distributions.

Article Title: Simulation and Experimental Study of the Single-Pulse Femtosecond Laser Ablation Morphology of GaN Films
Article Snippet: A multiphysics model was established using COMSOL Multiphysics ® 4.3 to generate the isothermal distributions.

Software:

Article Title: Research Progress in and Defect Improvement Measures for Laser Cladding.
Article Snippet: .. Ye et al. [106] established a multiphysics model based on Comsol 5.6 software and revealed the regulatory mechanism of Marangoni convection on the uniformity of the molten pool flow field. ..

Article Title: Electrochemical machining and allied processes: a comprehensive review
Article Snippet: Electrochemical machining (ECM) is a contemporary electrochemical energy-based machining practice that has widely been attempted for the productive processing of a vast range of typical engineering materials, namely, composites and difficultto-process advanced materials.. In the present work, an attempt has been made to critically review and report the previously investigated studies and research in the domain of machining numerous materials with electrochemical machining and its other allied methods.. This work also deeply explores the various theoretical, experimental, modeling-based, and optimizationrelated research studies carried out in the broad domain of ECM for finding out the most effective and conclusive outcomes with the overall process improvement with the support and quality selection of machine, tool materials, electrolyte flow, and some other operating parameters.

Convection:

Article Title: Research Progress in and Defect Improvement Measures for Laser Cladding.
Article Snippet: .. Ye et al. [106] established a multiphysics model based on Comsol 5.6 software and revealed the regulatory mechanism of Marangoni convection on the uniformity of the molten pool flow field. ..

Battery:

Article Title: Enhancing Electric Vehicle Safety: AI-Driven Multiphysics Approach for Predicting Thermal Failures in Li-Ion Batteries
Article Snippet: .. The multiphysics model, implemented using COMSOL software, simulates the electrochemical-thermal characteristics of the cylindrical battery within the module under various conditions. ..

Biomarker Discovery:

Article Title: Electrochemical machining and allied processes: a comprehensive review
Article Snippet: Electrochemical machining (ECM) is a contemporary electrochemical energy-based machining practice that has widely been attempted for the productive processing of a vast range of typical engineering materials, namely, composites and difficultto-process advanced materials.. In the present work, an attempt has been made to critically review and report the previously investigated studies and research in the domain of machining numerous materials with electrochemical machining and its other allied methods.. This work also deeply explores the various theoretical, experimental, modeling-based, and optimizationrelated research studies carried out in the broad domain of ECM for finding out the most effective and conclusive outcomes with the overall process improvement with the support and quality selection of machine, tool materials, electrolyte flow, and some other operating parameters.



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( A , C , and E ) The geometries and boundary conditions of COMSOL <t>Multiphysics</t> finite element thermal models for schematic cross sections of the crust and upper mantle in the region of the CE5 landing site. Compositions and thermal conductivities used for all models are shown in (A) and discussed in Materials and Methods. The upper KREEP layer represents Imbrium ejecta to the east of the CE5 landing site and begins generating heat at 3.9 Ga in all models. The lower KREEP layer has the composition of high-K KREEP . See Materials and Methods for more details on initial model conditions. ( B , D , and F ) Model results showing the temperature profiles of the crust and upper mantle at 2 Ga for each model. As these models are purely conductive and absolute temperatures are not necessarily applicable to the mantle, but rather these models show the relative heating effects of a subcrustal KREEP layer of either 5 km (D) or 10 km (F) thickness.
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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).
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( A , C , and E ) The geometries and boundary conditions of COMSOL Multiphysics finite element thermal models for schematic cross sections of the crust and upper mantle in the region of the CE5 landing site. Compositions and thermal conductivities used for all models are shown in (A) and discussed in Materials and Methods. The upper KREEP layer represents Imbrium ejecta to the east of the CE5 landing site and begins generating heat at 3.9 Ga in all models. The lower KREEP layer has the composition of high-K KREEP . See Materials and Methods for more details on initial model conditions. ( B , D , and F ) Model results showing the temperature profiles of the crust and upper mantle at 2 Ga for each model. As these models are purely conductive and absolute temperatures are not necessarily applicable to the mantle, but rather these models show the relative heating effects of a subcrustal KREEP layer of either 5 km (D) or 10 km (F) thickness.

Journal: Science Advances

Article Title: A shallow mantle source for the Chang’e 5 lavas reveals how top-down heating prolonged lunar magmatism

doi: 10.1126/sciadv.adr1486

Figure Lengend Snippet: ( A , C , and E ) The geometries and boundary conditions of COMSOL Multiphysics finite element thermal models for schematic cross sections of the crust and upper mantle in the region of the CE5 landing site. Compositions and thermal conductivities used for all models are shown in (A) and discussed in Materials and Methods. The upper KREEP layer represents Imbrium ejecta to the east of the CE5 landing site and begins generating heat at 3.9 Ga in all models. The lower KREEP layer has the composition of high-K KREEP . See Materials and Methods for more details on initial model conditions. ( B , D , and F ) Model results showing the temperature profiles of the crust and upper mantle at 2 Ga for each model. As these models are purely conductive and absolute temperatures are not necessarily applicable to the mantle, but rather these models show the relative heating effects of a subcrustal KREEP layer of either 5 km (D) or 10 km (F) thickness.

Article Snippet: A series of two-dimensional thermal evolution models for a simplified east-west cross section of the local region of the Moon in northern Oceanus Procellarum where the CE5 basalts were collected were constructed using the COMSOL Multiphysics finite element physical modeling program.

Techniques:

(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