Gas-insulated measurement transformer having a separating device
09831032 · 2017-11-28
Assignee
Inventors
Cpc classification
H01F27/04
ELECTRICITY
International classification
Abstract
A gas-insulated measurement transformer for measuring high voltages has a plurality of transformer arrays arranged in a fluid-tight housing for transforming a high voltage to a measurement voltage. Each of the arrays has an active part, a high voltage contact guided through the housing, a fixed contact that is electrically connected to the active part, a movable contact that is electrically connected to the fixed contact, and a separating device, which can be operated from outside the housing, for establishing or separating a connection between the movable contacts and the high voltage contacts. The separating device has a connecting element connecting the movable contacts to one another, and an adjustment device for moving the connecting element in an actuating direction, wherein the fixed contact is configured as a guiding device for the movable contact in an actuating direction.
Claims
1. A gas-insulated measurement transformer for measuring high voltages, comprising: a fluid-tight housing; a plurality of transformer arrays disposed in said fluid-tight housing for transforming a high voltage into a measurement voltage, each of said transformer arrays having an active part, a high voltage contact guided through said fluid-tight housing, a fixed contact electrically connected to said active part and a movable contact electrically connected to said fixed contact; a separating device operated from outside said fluid-tight housing for establishing or separating a connection between said movable contact and said high voltage contact, said separating device containing a connecting element connecting movable contacts to one another and an adjustment device for moving said connecting element in an actuating direction; and wherein said fixed contact is a guiding device for said movable contact in the actuating direction, said fixed contact has a tubular end and said movable contact has a rod-shaped end, and wherein said rod-shaped end can be pushed into said tubular end.
2. A gas-insulated measurement transformer for measuring high voltages, comprising: a fluid-tight housing; a plurality of transformer arrays disposed in said fluid-tight housing for transforming a high voltage into a measurement voltage, each of said transformer arrays having an active part, a high voltage contact guided through said fluid-tight housing, a fixed contact electrically connected to said active part and a movable contact electrically connected to said fixed contact; a separating device operated from outside said fluid-tight housing for establishing or separating a connection between said movable contact and said high voltage contact, said separating device containing a connecting element connecting movable contacts to one another and an adjustment device for moving said connecting element in an actuating direction; and a drive disposed outside said housing; and wherein said fixed contact is a guiding device for said movable contact in the actuating direction; and wherein said adjustment device has a push rod which is connected to said connecting element and is movable in the actuating direction by means of said drive.
3. The gas-insulated measurement transformer according to claim 2, further comprising a gearing for converting a rotating movement of said drive into a linear actuating movement of said push rod, said drive is coupled to said push rod via said gearing.
4. The gas-insulated measurement transformer according to claim 3, wherein said gearing is an eccentric gearing.
5. The gas-insulated measurement transformer according to claim 3, wherein said push rod is one of at least two push rods which are disposed parallel to each other and are movable simultaneously by means of said drive and are connected to said connecting element.
6. The gas-insulated measurement transformer according to claim 5, wherein each of said at least two push rods is coupled to said drive via said gearing.
7. A gas-insulated measurement transformer for measuring high voltages, comprising: a fluid-tight housing; a plurality of transformer arrays disposed in said fluid-tight housing for transforming a high voltage into a measurement voltage, each of said transformer arrays having an active part, a high voltage contact guided through said fluid-tight housing, a fixed contact electrically connected to said active part and a movable contact electrically connected to said fixed contact; a separating device operated from outside said fluid-tight housing for establishing or separating a connection between said movable contact and said high voltage contact, said separating device containing a connecting element connecting movable contacts to one another and an adjustment device for moving said connecting element in an actuating direction; and wherein said fixed contact is a guiding device for said movable contact in the actuating direction; and wherein said active part of each of said transformer arrays is disposed in a row with respect to one another in such a manner that they have a common winding axis.
8. The gas-insulated measurement transformer according to claimed in claim 3, further comprising a drive shaft disposed perpendicularly to the actuating direction, said drive is coupled to said gearing via said drive shaft.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
(1) The invention is explained in more detail below with reference to the drawings, in which:
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF THE INVENTION
(7) Parts corresponding to one another are provided with the same reference signs in all of the figures.
(8) The figures show a specific embodiment for illustrative purposes. However, the invention is not restricted thereto.
(9)
(10)
(11) The high voltage is conducted into the housing 2 via the high voltage contacts 6. The high voltage contacts 6 are conductor pieces which are guided in a gas-tight manner through the insulating bodies 5 of the leadthroughs 4.
(12) The primary windings of the active parts 9 are each electrically connected to a fixed contact 10. The connection can be established, for example, via a spring contact connected to the fixed contact 10. The fixed contact 10 has a tubular end 12 into which a rod-shaped end 13 of a movable contact 11 is inserted. The rod-shaped end 13 can move telescopically in an actuating direction 41 into the tubular end 12 and out therefrom. The rod-shaped end 13 is preferably guided in the tubular end 12. Alternative embodiments are possible. For example, the fixed contact could have a rod-shaped end 13 and the movable contact could have a tubular end 12, or one of the contacts has a groove and the other has a corresponding tongue guided in the groove.
(13) In each case one active part 9 having a core 8 forms, together with a high voltage contact 6, a fixed contact 10 and a movable contact 11, a transformer arrangement within the context of the invention.
(14) In the closed state, an approximately spherical contact piece 14 of the movable contact 11 is in contact with the high voltage contact 6 and establishes an electrical connection of the high voltage contact 6 via the movable contact 11 and the fixed contact 10 with the primary winding of the active part 9. The high voltage contact 6 can have a depression, which is in the shape of a spherical portion, for receiving the contact piece 14 in order to enlarge the contact surface therewith. The rod-shaped end 13 of the movable contact 11 is pulled here out of the tubular end 12 of the fixed contact 10. Only a small piece of the rod-shaped end 13, indicated in
(15) In the open state, as shown in
(16) Above the contact pieces 14, the movable contacts 11 are connected by a movable bar, as connecting element 15, parallel to the winding axis 40. One or more push rods 16 is/are connected to the connecting element 15 perpendicularly to the connecting element 15. The push rod 16 is coupled to a separating mechanism which is explained below and by means of which the push rod 16 is movable perpendicularly to the winding axis 40. The movement of the push rod 16 is transmitted here to the connecting element 15; the latter transmits the movement to the movable contact 11.
(17) Pairs of holding plates 26 which hold horizontal connecting webs 27 are fastened to the vertical limbs of the cores 8 or to the frames 28. The connecting webs 27 run parallel to the winding axis 40. The fixed contacts 10 penetrate said connecting webs 27 and are secured therein. The push rod 16 runs between in each case two fixed contacts 10 either between two connecting webs 27, in the intermediate space therebetween, or penetrates the connecting webs 27 through an opening therein. Guide sleeves 30 for the push rods 16 can be arranged on the holding plates 26 or on the connecting webs 27.
(18)
(19) The drive shaft 22 is guided by a holding plate 26 and is connected to the eccentric disk 18 by a phase angle error compensating coupling 23.
(20)
(21) Push rod 16, gearing 17 and drive shaft 22 form the adjustment means by means of which the connecting element 15 is moved in the actuating direction 41.
(22) The eccentric gearing 17 and the holding plates 26 are preferably manufactured from a high-strength material, such as steel. The push rods 16, the connecting element 15, the connecting web 27 and the guide sleeves 30 are preferably manufactured from an electrically non-conductive material, such as plastic, for example polyoxymethylene, which has high rigidity, low friction values and excellent dimensional stability and thermal stability.