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Structured Review

COMSOL Inc 1d, 2d, and 3d capacitive sensors
Three Capacitive sensor structures and the electric field distributions in; ( a <t>)</t> <t>1D</t> coplanar interdigital capacitor (IDC), ( b ) 2D parallel plate capacitor (PPC), ( c ) <t>3D</t> PPC.
1d, 2d, And 3d Capacitive Sensors, 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/pmc09610494-8-7-15?v=COMSOL+Inc
Average 90 stars, based on 1 article reviews
1d, 2d, and 3d capacitive sensors - by Bioz Stars, 2026-08
90/100 stars

Images

1) Product Images from "Comparative Study and Simulation of Capacitive Sensors in Microfluidic Channels for Sensitive Red Blood Cell Detection"

Article Title: Comparative Study and Simulation of Capacitive Sensors in Microfluidic Channels for Sensitive Red Blood Cell Detection

Journal: Micromachines

doi: 10.3390/mi13101654

Three Capacitive sensor structures and the electric field distributions in; ( a ) 1D coplanar interdigital capacitor (IDC), ( b ) 2D parallel plate capacitor (PPC), ( c ) 3D PPC.
Figure Legend Snippet: Three Capacitive sensor structures and the electric field distributions in; ( a ) 1D coplanar interdigital capacitor (IDC), ( b ) 2D parallel plate capacitor (PPC), ( c ) 3D PPC.

Techniques Used:

Design parameters of capacitive sensor structures in 25 μm microfluidic channel; ( a ) 1D coplanar IDC, ( b ) 2D PPC, ( c ) L-shape 3D PPC, ( d ) Ω-shape 3D PPC.
Figure Legend Snippet: Design parameters of capacitive sensor structures in 25 μm microfluidic channel; ( a ) 1D coplanar IDC, ( b ) 2D PPC, ( c ) L-shape 3D PPC, ( d ) Ω-shape 3D PPC.

Techniques Used:

Initial capacitances (C init ) of the  1D  and  2D/3D  designs.
Figure Legend Snippet: Initial capacitances (C init ) of the 1D and 2D/3D designs.

Techniques Used:



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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) 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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Image Search Results


(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