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COMSOL Inc 3d comsol simulation model
3d Comsol Simulation 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/3d+simulation+model/comsol+multiphysics/pmc10436375__tg3c00012_si_001-11-0-1
Average 90 stars, based on 1 article reviews
3d comsol simulation model - by Bioz Stars, 2026-09
90/100 stars

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Article Title: Study on the anticorrosion and antifouling performance of magnetically responsive self-healing polyurethane coatings
Article Snippet: The dispersivity of self-healing microcapsules plays a critical role in the self-repairing properties of coatings.. However, resolving the aggregation phenomenon of self-healing microcapsules has been challenging due to their high surface energy.. In this paper, we successfully developed magnetically responsive self-healing microcapsule (MS-TO@CA) and polyurethane (PU) coatings with biomimetic interface wet-adhesion patterned microstructures and realized the adsorption, automatic capture and dispersion of MS-TO@CA based on different patterned microstructure sizes, microparticle sizes and contents.

Article Title: Optimizing Light Pattern Curvature to improve the performance of Optoelectronic Tweezers in micromanipulation
Article Snippet: Simulation of the OET device: A 3D simulation model was built using COMSOL Multiphysics based on an electric current module.

Article Title: Design of High-Efficiency Circularly Polarized Reflection Mirror Based on Chiral Dielectric Metasurface
Article Snippet: Supplementary Materials: The following supporting information can be downloaded at: https:// www.mdpi.com/article/10.3390/photonics12040341/s1, Figure S1: Front view of the COMSOL 3D simulation model; Figure S2: The influence of the thickness hs of the AlOx layer on the metasurface.

Article Title: Design Optimization of Printed Multi-Layered Electroactive Actuators Used for Steerable Guidewire in Micro-Invasive Surgery
Article Snippet: To dissociate the effect of slenderness from that of the surrounding substrate, a 3D simulation model was conducted via COMSOL software under different input voltage amplitudes.

Article Title: Optoelectronically navigated nano-kirigami microrotors.
Article Snippet: A 3D simulation model was built using COMSOL Multiphysics based on an electric current module.

Article Title: Microfluidic Device with an Oxygen Gradient Generator for Investigating Effects of Specific Hypoxia Conditions on Responses of Tumor Cells.
Article Snippet: The oxygen level in the tumor microenvironment (TME) plays a critical role in regulating cell fates such as proliferation, migration, apoptosis, and so forth.. To better elucidate how hypoxia affects tumor cell behaviors, a series of microfluidic strategies have been utilized to generate an oxygen gradient covering both hypoxia and normoxia conditions.. However, in most studies, some chemicals are introduced into microfluidic chips, causing the potential of their poor biocompatibility.

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Article Title: On-Chip Droplet Splitting with High Volume Ratios Using a 3D Conical Microstructure-Based Microfluidic Device.
Article Snippet: This work reports a simple microfluidic method for splitting a mother droplet into two daughter droplets with high and precise volume ratios.. To achieve this, a droplet-splitting microfluidic device embedded with a three-dimensional (3D) conical microstructure is fabricated, in which the high splitting ratios of monodisperse mother droplets are achieved.. The volume ratio of the split daughter droplets can reach up to 265.

Article Title: Enhancing solar efficiency around the clock through simultaneous solar energy harvesting and radiative cooling
Article Snippet: Despite global urbanization, a significant part of the world’s population lacks access to the electrical grid.. Photovoltaic (PV) cells offer off-grid electricity but face efficiency challenges and shortened lifespans due to prolonged exposure to high temperatures.. While PV cells traditionally generate electricity only during daylight, our innovative system integrates radiative cooling (RC), thermoelectric generators (TE), and phase change materials (PCM).



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Schematic diagram of the ultrasound modulated electroencephalography (USMEEG) principle. EEG, electroencephalography; tFUS, transcranial focused ultrasound; Chan., channel.

Journal: Cyborg and Bionic Systems

Article Title: Noninvasive Intracranial Source Signal Localization and Decoding with High Spatiotemporal Resolution

doi: 10.34133/cbsystems.0206

Figure Lengend Snippet: Schematic diagram of the ultrasound modulated electroencephalography (USMEEG) principle. EEG, electroencephalography; tFUS, transcranial focused ultrasound; Chan., channel.

Article Snippet: The 3D transcranial single-source dipole numerical simulation model was constructed based on the above skull model and COMSOL 6.0 as shown in Fig. B1, and the ultrasound raster scanning area is shown in Fig. B2, with the yellow star shape as the neuron setting position and the red dots as the ultrasound irradiation point positions.

Techniques:

Schematic of the flow of the decoding and localization algorithm for acoustoelectric signals, 3D transcranial single-source dipole localization simulation model, and schematic diagram of the ultrasound irradiation strategy and electrocorticography (ECoG) signal compared to the fitted signal. (A1) Flowchart of the envelope decoding and localization algorithm . (A2) Flowchart of the pulse repetition frequency (PRF) sideband localization algorithm. (B1) Numerical simulation model. (B2) Schematic diagram of the ultrasound irradiation strategy. (C1) S1 analog source signal. (C2) S2 analog source signal. (C3) S3 analog source signal. (C4) S4 analog source signal. AE, acoustoelectric effect.

Journal: Cyborg and Bionic Systems

Article Title: Noninvasive Intracranial Source Signal Localization and Decoding with High Spatiotemporal Resolution

doi: 10.34133/cbsystems.0206

Figure Lengend Snippet: Schematic of the flow of the decoding and localization algorithm for acoustoelectric signals, 3D transcranial single-source dipole localization simulation model, and schematic diagram of the ultrasound irradiation strategy and electrocorticography (ECoG) signal compared to the fitted signal. (A1) Flowchart of the envelope decoding and localization algorithm . (A2) Flowchart of the pulse repetition frequency (PRF) sideband localization algorithm. (B1) Numerical simulation model. (B2) Schematic diagram of the ultrasound irradiation strategy. (C1) S1 analog source signal. (C2) S2 analog source signal. (C3) S3 analog source signal. (C4) S4 analog source signal. AE, acoustoelectric effect.

Article Snippet: The 3D transcranial single-source dipole numerical simulation model was constructed based on the above skull model and COMSOL 6.0 as shown in Fig. B1, and the ultrasound raster scanning area is shown in Fig. B2, with the yellow star shape as the neuron setting position and the red dots as the ultrasound irradiation point positions.

Techniques: Irradiation

(A) Schematic of the delay distribution of the array elements (the darker the color, the higher the delay). (B) Acoustic pressure field before and after transcranial modulation. (C) Comparison results of the focal acoustic pressure and mechanical index (MI). (D) Distribution of transcranial TR-modulated onset temperature field.

Journal: Cyborg and Bionic Systems

Article Title: Noninvasive Intracranial Source Signal Localization and Decoding with High Spatiotemporal Resolution

doi: 10.34133/cbsystems.0206

Figure Lengend Snippet: (A) Schematic of the delay distribution of the array elements (the darker the color, the higher the delay). (B) Acoustic pressure field before and after transcranial modulation. (C) Comparison results of the focal acoustic pressure and mechanical index (MI). (D) Distribution of transcranial TR-modulated onset temperature field.

Article Snippet: The 3D transcranial single-source dipole numerical simulation model was constructed based on the above skull model and COMSOL 6.0 as shown in Fig. B1, and the ultrasound raster scanning area is shown in Fig. B2, with the yellow star shape as the neuron setting position and the red dots as the ultrasound irradiation point positions.

Techniques: Comparison

Focal acoustic pressure and MI for each modulation method

Journal: Cyborg and Bionic Systems

Article Title: Noninvasive Intracranial Source Signal Localization and Decoding with High Spatiotemporal Resolution

doi: 10.34133/cbsystems.0206

Figure Lengend Snippet: Focal acoustic pressure and MI for each modulation method

Article Snippet: The 3D transcranial single-source dipole numerical simulation model was constructed based on the above skull model and COMSOL 6.0 as shown in Fig. B1, and the ultrasound raster scanning area is shown in Fig. B2, with the yellow star shape as the neuron setting position and the red dots as the ultrasound irradiation point positions.

Techniques: