TU Darmstadt / ULB / TUbiblio

Magnetic-Optical-Plasma-Analysis in a Vacuum Model Switch with RMF-Contacts

Dorsch, Christian ; Weber, Benjamin ; Nierenberg, Manuel ; Hinrichsen, Volker ; Kurrat, Michael (2022)
Magnetic-Optical-Plasma-Analysis in a Vacuum Model Switch with RMF-Contacts.
4. ETG-Fachtagung Hochspannungstechnik. Berlin, Germany (08.11.2022 -10.11.2022)
Konferenzveröffentlichung, Bibliographie

Kurzbeschreibung (Abstract)

Vacuum interrupters are state of the art in medium-voltage power grids. By means of continuous development, they are also being introduced in the high-voltage grid as climate-friendly alternative to SF6 circuit breakers. The objectives of the vacuum interrupter development are therefore an increased switching capacity, while improving the service life. The service life of the vacuum interrupter is largely determined by the stress on the contact pieces. When opening the contacts, a plasma consisting of metal vapour is formed, which conducts the current up to the final interruption at currentzero. At currents above 10 kA, the plasma contracts to a columnar vacuum arc, which leads to strong local melting of the contact material. This greatly reduces the switching capacity and service life of the vacuum circuit breaker. To reduce the local heating of contact material, one solution is a magnetic driven plasma motion by a special contact geometry, which distributes the heating energy evenly over a larger area. For further improvements of vacuum interrupters, it is necessary to get a better understanding of the current density distribution in the contact gap and the behavior of the metal vapour plasma. As part of the here presented research a vacuum model switch was developed that allows simultaneous optical and magnetic analyses, both being established methods for the required investigations. Two angled arms in combination with a mirror system allow a three-dimensional analysis of the plasma movement and intensity with only one high-speed camera. Additionally, a magnetic-field measuring system consisting of several Hall-Sensors is positioned around the vacuum chamber at the contact level. The position and rotational speed of the contracted plasma column can be determined from the magnetic field distribution. The evaluation of the results, given by the two measuring methods, allows their comparison and thus the cross-validation of the arc movement. Building on previous work, this paper presents the magnetic measuring system and its function. For this investigation, short-circuit current interruptions were performed in a synthetic test circuit at 35 kA (peak/50 Hz) on the vacuum model switch containing radial magnetic field (RMF) contacts. The evaluated results from both measuring systems are shown und compared. This includes the position and the rotational speed of the contracted plasma column.

Typ des Eintrags: Konferenzveröffentlichung
Erschienen: 2022
Autor(en): Dorsch, Christian ; Weber, Benjamin ; Nierenberg, Manuel ; Hinrichsen, Volker ; Kurrat, Michael
Art des Eintrags: Bibliographie
Titel: Magnetic-Optical-Plasma-Analysis in a Vacuum Model Switch with RMF-Contacts
Sprache: Englisch
Publikationsjahr: November 2022
Verlag: VDE
Buchtitel: VDE Hochspannungstechnik
Reihe: ETG-Fachbericht
Band einer Reihe: 169
Kollation: 6 Seiten
Veranstaltungstitel: 4. ETG-Fachtagung Hochspannungstechnik
Veranstaltungsort: Berlin, Germany
Veranstaltungsdatum: 08.11.2022 -10.11.2022
URL / URN: https://ieeexplore.ieee.org/document/10048049
Kurzbeschreibung (Abstract):

Vacuum interrupters are state of the art in medium-voltage power grids. By means of continuous development, they are also being introduced in the high-voltage grid as climate-friendly alternative to SF6 circuit breakers. The objectives of the vacuum interrupter development are therefore an increased switching capacity, while improving the service life. The service life of the vacuum interrupter is largely determined by the stress on the contact pieces. When opening the contacts, a plasma consisting of metal vapour is formed, which conducts the current up to the final interruption at currentzero. At currents above 10 kA, the plasma contracts to a columnar vacuum arc, which leads to strong local melting of the contact material. This greatly reduces the switching capacity and service life of the vacuum circuit breaker. To reduce the local heating of contact material, one solution is a magnetic driven plasma motion by a special contact geometry, which distributes the heating energy evenly over a larger area. For further improvements of vacuum interrupters, it is necessary to get a better understanding of the current density distribution in the contact gap and the behavior of the metal vapour plasma. As part of the here presented research a vacuum model switch was developed that allows simultaneous optical and magnetic analyses, both being established methods for the required investigations. Two angled arms in combination with a mirror system allow a three-dimensional analysis of the plasma movement and intensity with only one high-speed camera. Additionally, a magnetic-field measuring system consisting of several Hall-Sensors is positioned around the vacuum chamber at the contact level. The position and rotational speed of the contracted plasma column can be determined from the magnetic field distribution. The evaluation of the results, given by the two measuring methods, allows their comparison and thus the cross-validation of the arc movement. Building on previous work, this paper presents the magnetic measuring system and its function. For this investigation, short-circuit current interruptions were performed in a synthetic test circuit at 35 kA (peak/50 Hz) on the vacuum model switch containing radial magnetic field (RMF) contacts. The evaluated results from both measuring systems are shown und compared. This includes the position and the rotational speed of the contracted plasma column.

Fachbereich(e)/-gebiet(e): 18 Fachbereich Elektrotechnik und Informationstechnik
18 Fachbereich Elektrotechnik und Informationstechnik > Institut für Elektrische Energiesysteme > Hochspannungstechnik
18 Fachbereich Elektrotechnik und Informationstechnik > Institut für Elektrische Energiesysteme
Hinterlegungsdatum: 29 Okt 2024 13:47
Letzte Änderung: 29 Okt 2024 13:47
PPN:
Export:
Suche nach Titel in: TUfind oder in Google
Frage zum Eintrag Frage zum Eintrag

Optionen (nur für Redakteure)
Redaktionelle Details anzeigen Redaktionelle Details anzeigen