Model-based accuracy enhancements for guarded conductivity measurements: determination of effective electrode areas utilising numerical field simulation

Methods utilising current measurements for conductivity and permittivity determination require precise knowledge of the effective electrode area in order to obtain accurate results. Owing to field distortions (e.g. caused by fringing) in guarded electrode setups, the effective electrode area differs...

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Main Authors: Claudius Freye, Frank Jenau
Format: Article
Language:English
Published: Wiley 2018-09-01
Series:High Voltage
Subjects:
Online Access:https://digital-library.theiet.org/content/journals/10.1049/hve.2017.0182
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spelling doaj-0f9522976cd84b17a3f36b429b2ad2452021-04-02T13:28:32ZengWileyHigh Voltage2397-72642018-09-0110.1049/hve.2017.0182HVE.2017.0182Model-based accuracy enhancements for guarded conductivity measurements: determination of effective electrode areas utilising numerical field simulationClaudius Freye0Frank Jenau1Institute of High Voltage Engineering, TU Dortmund UniversityInstitute of High Voltage Engineering, TU Dortmund UniversityMethods utilising current measurements for conductivity and permittivity determination require precise knowledge of the effective electrode area in order to obtain accurate results. Owing to field distortions (e.g. caused by fringing) in guarded electrode setups, the effective electrode area differs significantly from the geometrical calculated. Focusing on guarded electrode setups for conductivity determination, a generic method based on numerical field simulation is presented allowing a convenient determination of the relevant effective electrode area. For this purpose, a brief overview of yet existing normative guidelines and related research work is provided. State-of-the-art conductivity measurement setups are presented in order to identify parameters which affect the field distribution within the measurement arrangements. The description of the implemented method and its realisation in COMSOL multiphysics is followed by its validation using analytical fringing calculations. Furthermore, presented method is used for the evaluation of fringing effects and additional field distortion caused by design aspects of the measurement cell itself and potential imbalances related to the measurement setup. Moreover, dependencies on conductivity of the surrounding environment are considered. Achieved model-based accuracy enhancements are calculated and are leading to a gain in precision for conductivity determination of up to 25% compared to yet existing approaches.https://digital-library.theiet.org/content/journals/10.1049/hve.2017.0182electrical conductivity measurementelectrodesnumerical analysispermittivity measurementmodel-based accuracy enhancementguarded conductivity measurementnumerical field simulationeffective electrode determinationpermittivity measurementCOMSOL multiphysicsanalytical fringing calculation
collection DOAJ
language English
format Article
sources DOAJ
author Claudius Freye
Frank Jenau
spellingShingle Claudius Freye
Frank Jenau
Model-based accuracy enhancements for guarded conductivity measurements: determination of effective electrode areas utilising numerical field simulation
High Voltage
electrical conductivity measurement
electrodes
numerical analysis
permittivity measurement
model-based accuracy enhancement
guarded conductivity measurement
numerical field simulation
effective electrode determination
permittivity measurement
COMSOL multiphysics
analytical fringing calculation
author_facet Claudius Freye
Frank Jenau
author_sort Claudius Freye
title Model-based accuracy enhancements for guarded conductivity measurements: determination of effective electrode areas utilising numerical field simulation
title_short Model-based accuracy enhancements for guarded conductivity measurements: determination of effective electrode areas utilising numerical field simulation
title_full Model-based accuracy enhancements for guarded conductivity measurements: determination of effective electrode areas utilising numerical field simulation
title_fullStr Model-based accuracy enhancements for guarded conductivity measurements: determination of effective electrode areas utilising numerical field simulation
title_full_unstemmed Model-based accuracy enhancements for guarded conductivity measurements: determination of effective electrode areas utilising numerical field simulation
title_sort model-based accuracy enhancements for guarded conductivity measurements: determination of effective electrode areas utilising numerical field simulation
publisher Wiley
series High Voltage
issn 2397-7264
publishDate 2018-09-01
description Methods utilising current measurements for conductivity and permittivity determination require precise knowledge of the effective electrode area in order to obtain accurate results. Owing to field distortions (e.g. caused by fringing) in guarded electrode setups, the effective electrode area differs significantly from the geometrical calculated. Focusing on guarded electrode setups for conductivity determination, a generic method based on numerical field simulation is presented allowing a convenient determination of the relevant effective electrode area. For this purpose, a brief overview of yet existing normative guidelines and related research work is provided. State-of-the-art conductivity measurement setups are presented in order to identify parameters which affect the field distribution within the measurement arrangements. The description of the implemented method and its realisation in COMSOL multiphysics is followed by its validation using analytical fringing calculations. Furthermore, presented method is used for the evaluation of fringing effects and additional field distortion caused by design aspects of the measurement cell itself and potential imbalances related to the measurement setup. Moreover, dependencies on conductivity of the surrounding environment are considered. Achieved model-based accuracy enhancements are calculated and are leading to a gain in precision for conductivity determination of up to 25% compared to yet existing approaches.
topic electrical conductivity measurement
electrodes
numerical analysis
permittivity measurement
model-based accuracy enhancement
guarded conductivity measurement
numerical field simulation
effective electrode determination
permittivity measurement
COMSOL multiphysics
analytical fringing calculation
url https://digital-library.theiet.org/content/journals/10.1049/hve.2017.0182
work_keys_str_mv AT claudiusfreye modelbasedaccuracyenhancementsforguardedconductivitymeasurementsdeterminationofeffectiveelectrodeareasutilisingnumericalfieldsimulation
AT frankjenau modelbasedaccuracyenhancementsforguardedconductivitymeasurementsdeterminationofeffectiveelectrodeareasutilisingnumericalfieldsimulation
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