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

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          Abstract

          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.

          Most cited references7

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          Electrical, Mechanical, and Thermal Properties of LDPE Graphene Nanoplatelets Composites Produced by Means of Melt Extrusion Process

          Composites of LDPE filled with different amounts of graphene nanoplatelets (GnP) were prepared in form of films by means of precoating technique and single screw melt-extrusion using two types of screws, compression and mixing. This manufacturing process imposes strong anisotropy on the sample’s morphology, in which the nanoplatelets become oriented along the extrusion direction. Such orientation of GnP in LDPE matrix is confirmed by scanning electron microscopy observations and it yields unique electrical properties. As compared to pure LDPE, significant reductions of the through-plane conductivity are found for the composites at relatively low electric fields (<20 kV/mm) at low filler concentrations. Above the field level of 20 kV/mm, a crossover effect is observed that results in a strong field dependency of the conductivity where the non-linear behavior starts to dominate. Moreover, differential scanning calorimetry (DSC) results indicate a decrease in polymer crystallinity of the composite matrix with increasing filler content, whereas thermogravimetric (TG) analysis shows a slight increase in the material’s thermal stability. Application of GnP also leads to improvement of mechanical properties, manifested by the increase of Young’s modulus and tensile strength in both types of samples.
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            Effective area of thin guarded electrode in determining of permittivity and volume resistivity

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              • Record: found
              • Abstract: not found
              • Article: not found

              Capacitance corrections for guard gaps

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                Author and article information

                Contributors
                Journal
                HVE
                High Voltage
                High Volt.
                The Institution of Engineering and Technology
                2397-7264
                29 March 2018
                17 May 2018
                September 2018
                : 3
                : 3
                : 217-225
                Affiliations
                Institute of High Voltage Engineering, TU Dortmund University , 44227 Dortmund, Germany
                Article
                HVE.2017.0182 HVE.2017.0182.R1
                10.1049/hve.2017.0182
                516c495b-daab-458c-82b3-fba2b11d8a98

                This is an open access article published by the IET and CEPRI under the Creative Commons Attribution License ( http://creativecommons.org/licenses/by/3.0/)

                History
                : 1 December 2017
                : 21 March 2018
                : 28 March 2018
                Page count
                Pages: 0
                Funding
                Funded by: Bundesministerium für Wirtschaft und Energie
                Award ID: FKZ 03ET7514
                Categories
                Research Article

                Computer science,Engineering,Artificial intelligence,Electrical engineering,Mechanical engineering,Renewable energy
                electrical conductivity measurement,electrodes,numerical analysis,permittivity measurement,model-based accuracy enhancement,guarded conductivity measurement,numerical field simulation,effective electrode determination,COMSOL multiphysics,analytical fringing calculation

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