Computer aided techniques for estimation and reduction of electromagnetic measurement devices uncertainties
At non-linear electromagnetic measurement systems, the finite element method is the most convenient tool for the system analysis and measurement uncertainties budget estimation. Two non-linear devices will be analyzed by finite element method: electrical steel sheet tes...
| Published in: | International Journal of Metrology and Quality Engineering |
|---|---|
| Main Authors: | , |
| Format: | Article |
| Language: | English |
| Published: |
EDP Sciences
2010-01-01
|
| Subjects: | |
| Online Access: | https://www.metrology-journal.org/articles/ijmqe/pdf/2010/02/ijmqe2010015.pdf |
| _version_ | 1852766582216851456 |
|---|---|
| author | Cundeva-Blajer M. Arsov L. |
| author_facet | Cundeva-Blajer M. Arsov L. |
| author_sort | Cundeva-Blajer M. |
| collection | DOAJ |
| container_title | International Journal of Metrology and Quality Engineering |
| description | At non-linear electromagnetic measurement systems, the finite element method is the most
convenient tool for the system analysis and measurement uncertainties budget estimation.
Two non-linear devices will be analyzed by finite element method: electrical steel sheet
testing device-Epstein frame and combined current-voltage instrument transformer. The
Epstein frame must comply with the standard IEC 60404-2:1996+A1:2008, and the combined
instrument transformer with the IEC 60044-3: 2002. The Epstein frame forms an unloaded
transformer and the analytical transformer theory introduces some approximations. The main
approximation is introduced by the standard IEC 60404-2 (through the presumption of
constant, invariant to the specimen grade effective magnetic path length). The finite
element method results will enable an Epstein frame and combined current-voltage
instrument transformer prototype design (by using a computer program based on genetic
algorithm with minimal uncertainty budget as goal function) with reduced measurement
uncertainty, which will be experimentally verified in the Metrological Laboratory for
Electromagnetic Quantities at the Faculty of Electrical Engineering and Information
Technologies-Skopje. |
| format | Article |
| id | doaj-art-e0497da72492418aab83248d501ecc5d |
| institution | Directory of Open Access Journals |
| issn | 2107-6839 2107-6847 |
| language | English |
| publishDate | 2010-01-01 |
| publisher | EDP Sciences |
| record_format | Article |
| spelling | doaj-art-e0497da72492418aab83248d501ecc5d2025-08-19T20:53:33ZengEDP SciencesInternational Journal of Metrology and Quality Engineering2107-68392107-68472010-01-0112899710.1051/ijmqe/2010018ijmqe2010015Computer aided techniques for estimation and reduction of electromagnetic measurement devices uncertaintiesCundeva-Blajer M.Arsov L.At non-linear electromagnetic measurement systems, the finite element method is the most convenient tool for the system analysis and measurement uncertainties budget estimation. Two non-linear devices will be analyzed by finite element method: electrical steel sheet testing device-Epstein frame and combined current-voltage instrument transformer. The Epstein frame must comply with the standard IEC 60404-2:1996+A1:2008, and the combined instrument transformer with the IEC 60044-3: 2002. The Epstein frame forms an unloaded transformer and the analytical transformer theory introduces some approximations. The main approximation is introduced by the standard IEC 60404-2 (through the presumption of constant, invariant to the specimen grade effective magnetic path length). The finite element method results will enable an Epstein frame and combined current-voltage instrument transformer prototype design (by using a computer program based on genetic algorithm with minimal uncertainty budget as goal function) with reduced measurement uncertainty, which will be experimentally verified in the Metrological Laboratory for Electromagnetic Quantities at the Faculty of Electrical Engineering and Information Technologies-Skopje.https://www.metrology-journal.org/articles/ijmqe/pdf/2010/02/ijmqe2010015.pdfuncertainties estimationinstrument transformerepstein framefinite element methodgenetic algorithm |
| spellingShingle | Cundeva-Blajer M. Arsov L. Computer aided techniques for estimation and reduction of electromagnetic measurement devices uncertainties uncertainties estimation instrument transformer epstein frame finite element method genetic algorithm |
| title | Computer aided techniques for estimation and reduction of
electromagnetic measurement devices uncertainties |
| title_full | Computer aided techniques for estimation and reduction of
electromagnetic measurement devices uncertainties |
| title_fullStr | Computer aided techniques for estimation and reduction of
electromagnetic measurement devices uncertainties |
| title_full_unstemmed | Computer aided techniques for estimation and reduction of
electromagnetic measurement devices uncertainties |
| title_short | Computer aided techniques for estimation and reduction of
electromagnetic measurement devices uncertainties |
| title_sort | computer aided techniques for estimation and reduction of electromagnetic measurement devices uncertainties |
| topic | uncertainties estimation instrument transformer epstein frame finite element method genetic algorithm |
| url | https://www.metrology-journal.org/articles/ijmqe/pdf/2010/02/ijmqe2010015.pdf |
| work_keys_str_mv | AT cundevablajerm computeraidedtechniquesforestimationandreductionofelectromagneticmeasurementdevicesuncertainties AT arsovl computeraidedtechniquesforestimationandreductionofelectromagneticmeasurementdevicesuncertainties |
