MEASURING AN ELECTRICAL VOLTAGE ON A METAL-ENCAPSULATED SWITCHGEAR
20220317159 ยท 2022-10-06
Inventors
Cpc classification
H01H33/027
ELECTRICITY
G01R1/18
PHYSICS
H02B13/0356
ELECTRICITY
International classification
Abstract
A measuring apparatus for measuring an electrical voltage for a metal-encapsulated switchgear. The measuring apparatus has an electrical conductor, an electrically conductive measuring electrode, which surrounds a first conductor portion of the electrical conductor and is electrically insulated from the electrical conductor, and an electrically conductive field control electrode, which is electrically insulated from the electrical conductor and from the measuring electrode and which has a first field control electrode portion that surrounds the measuring electrode.
Claims
1-14. (canceled)
15. A measuring apparatus for measuring an electrical voltage for a metal-encapsulated switchgear, the measuring apparatus comprising: an electrical conductor; an electrically conductive measuring electrode that surrounds a conductor portion of the electrical conductor and is electrically insulated from said electrical conductor; and an electrically conductive field control electrode that is electrically insulated from said electrical conductor and from said measuring electrode; said field control electrode having a field control electrode portion that surrounds said measuring electrode.
16. The measuring apparatus according to claim 15, wherein said conductor portion of said electrical conductor is a first conductor portion and said field control electrode portion of said field control electrode that surrounds said measuring electrode is a first field control electrode portion; said field control electrode further comprising a second field control electrode portion that surrounds a second conductor portion of said electrical conductor; and said second field control electrode portion having a maximum diameter in a plane perpendicular to said electrical conductor that is smaller than a diameter of said first field control electrode portion.
17. The measuring apparatus according to claim 15, wherein said measuring electrode has a U-shaped profile with two legs that face away from said electrical conductor.
18. The measuring apparatus according to claim 15, wherein said field control electrode is formed of field control electrode segments that are arranged one after another along a path extending around said electrical conductor.
19. The measuring apparatus according to claim 15, wherein said measuring electrode is formed of measuring electrode segments that are arranged one after another along a path extending around said electrical conductor.
20. The measuring apparatus according to claim 15, further comprising a measuring coil for current measurement surrounded by said field control electrode and extending around said electrical conductor, wherein said measuring coil is electrically insulated from said field control electrode, from said electrical conductor, and from said measuring electrode.
21. The measuring apparatus according to claim 20, wherein said measuring coil is a Rogowski coil.
22. The measuring apparatus according to claim 20, wherein said measuring coil is arranged between said measuring electrode and said field control electrode.
23. The measuring apparatus according to claim 20, wherein said measuring electrode and said measuring coil are arranged one after another along said electrical conductor.
24. A method of measuring an electrical voltage, the method comprising: providing a measuring apparatus according to claim 15 configured for measuring the electrical voltage at the electrical conductor with respect to a reference potential; measuring a measurement voltage that is present at the measuring electrode of the measuring apparatus with respect to the reference potential; and ascertaining the voltage present at the electrical conductor of the measuring apparatus with respect to the reference potential from the measurement voltage.
25. A metal-encapsulated switchgear for selectively interrupting and closing an electrical current path, comprising: a measuring apparatus according to claim 15; wherein the electrical current path passes through the electrical conductor of said measuring apparatus.
26. The switchgear according to claim 25, wherein the field control electrode of the measuring apparatus is at a ground potential.
27. The switchgear according to claim 25, further comprising a metal housing and a bushing in said housing, wherein the electrical conductor of the measuring apparatus extends through said bushing and the field control electrode is arranged in said bushing.
28. The switchgear according to claim 25 being a power switch or a circuit breaker.
Description
[0017] The properties, features and advantages of this invention described above, as well as the manner in which these are achieved, will become clearer and more easily understandable in connection with the following description of exemplary embodiments that are explained more closely in connection with the drawings. In these:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023] Parts that correspond to one another are given the same reference signs in the figures.
[0024]
[0025] The bushing 5 comprises a funnel-shaped insulator 9, a flange 11 and a cover 13. The insulator 9 is manufactured from an electrically insulating material, extends away from a housing opening 15 of the housing 3, has an external surface with the shape of a truncated cone, and tapers increasingly as the distance from the housing opening 15 increases. The flange 11 extends at the housing 3 in the shape of a ring around a housing-side end of the insulator 9, and fixes the insulator 9 to the housing 3. The cover 13 closes an end of the insulator 9 that faces away from the housing 3 apart from a cover opening 17.
[0026]
[0027] The electrical conductor 19 extends through the cover opening 17 into the bushing 5 and through the bushing 5 into the housing 3, and is part of the current path that is interrupted and closed by the switchgear 1.
[0028] The measuring electrode 21 surrounds a first conductor portion 19.1 of the electrical conductor 19 like a ring. The measuring electrode 21 comprises a U-shaped profile with two legs 21.1, 21.2 facing away from the electrical conductor 19.
[0029] The field control electrode 23 has the form of a funnel. A first field control electrode portion 23.1 of the field control electrode 23 surrounds the measuring electrode 21. A second field control electrode portion 23.2 of the field control electrode 23 surrounds a second conductor portion 19.2 of the electrical conductor 19 that is adjacent to the first conductor portion 19.1. Between the first field control electrode portion 23.1 and the second field control electrode portion 23.2, the field control electrode 23 comprises a step-like transition region 23.3 in which its diameter in a plane perpendicular to the electrical conductor 19 falls from the first field control electrode portion 23.1 to the second field control electrode portion 23.2. The second field control electrode portion 23.2 tapers increasingly as the distance from the first field control electrode portion 23.1 increases, up to an end region 23.4 of the field control electrode 23 that is formed bent over away from the electrical conductor 19.
[0030] In operation of the switchgear 1, the field control electrode 23 and the housing 3 are placed at a ground potential. The measuring electrode 21 and the electrical conductor 19 form a cylindrical capacitor, with which an electrical voltage that is present at the electrical conductor 19 with respect to a reference potential is measured capacitively. For this purpose, a measurement voltage that is present at the measuring electrode 21 with respect to the reference potential is measured, and the voltage present at the electrical conductor 19 with respect to the reference potential is ascertained from the measurement voltage. The measurement voltage is, for example, accessed at a cable (not illustrated) that is electrically connected to the measuring electrode 21 and is passed in an electrically insulated manner through the field control electrode 23 or out of the field control electrode 23.
[0031] The exemplary embodiment of a switchgear 1 shown in
[0032]
[0033]
[0034]
[0035] The exemplary embodiments shown in
[0036] Although the invention has been illustrated and described in more detail through preferred exemplary embodiments, the invention is not restricted by the disclosed examples, and other variations can be derived from these by someone skilled in the art without leaving the protective scope of the invention.