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  4. Simulation-driven Electrical Impedance Tomography for buoyancy-driven electrolyte mixing: A hybrid hydrodynamic–circuit modeling framework
 
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Simulation-driven Electrical Impedance Tomography for buoyancy-driven electrolyte mixing: A hybrid hydrodynamic–circuit modeling framework

Citation Link: https://doi.org/10.15480/882.16259
Type
Simulation Data
Source Code
Experimental Data
Date Issued
2025-12-04
Author(s)
Ostovar, Hossein  
Chemische Reaktionstechnik V-2  
Hollenberg, Moritz  
Mechatronik im Maschinenbau M-4  
Liebing, Tom  
Mechatronik im Maschinenbau M-4  
Data Collector
Ostovar, Hossein  
Chemische Reaktionstechnik V-2  
Hollenberg, Moritz  
Mechatronik im Maschinenbau M-4  
Language
English
DOI
https://doi.org/10.15480/882.16259
TORE-URI
https://hdl.handle.net/11420/59268
Is Supplement To
10.1016/j.measurement.2025.119745
Abstract
This dataset accompanies the article “Simulation-driven Electrical Impedance Tomography for buoyancy-driven electrolyte mixing: A hybrid hydrodynamic–circuit modeling framework” (Measurement, 2025, https://doi.org/10.1016/j.measurement.2025.119745). The data represent a physics- and hardware-consistent, EIT benchmark case of single-phase, buoyancy-driven mixing of an electrolyte in a laboratory-scale vessel. Starting from numerical solutions of the coupled Stokes–Boussinesq and advection–diffusion equations, local solute concentrations are converted into conductivity fields and then mapped onto a multi-electrode EIT tank model implemented as a resistor network. The resulting files include time-resolved concentration and conductivity fields, axisymmetric conductivity maps, and simulated boundary voltage measurements generated with a circuit-level EIT front-end. Together, these materials allow readers to reproduce the forward simulations in the paper, to regenerate key figures, and to use exactly the same ground-truth fields and measurement data for benchmarking alternative EIT reconstruction algorithms and evaluation metrics described in the publication.
Subjects
Monitoring Electrolyte Transport
Electrical Impedance tomography
EIT Circuit Emulation
DDC Class
621.38: Electronics, Communications Engineering
Funding(s)
SFB 1615 - Teilprojekt A02: Quantitative elektrische 3D-Impedanztomographie in Echtzeit für Mehrphasenreaktoren  
More Funding Information
This project is funded by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) – SFB 1615 – 503850735.
License
https://creativecommons.org/licenses/by-nc/4.0/
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Name

CodeAndData.zip

Size

41.26 MB

Format

ZIP

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