GAS-INSULATED SWITCHGEAR
20200328580 ยท 2020-10-15
Assignee
Inventors
Cpc classification
H02B1/20
ELECTRICITY
International classification
H02B13/00
ELECTRICITY
H02B1/20
ELECTRICITY
Abstract
Provided is a gas-insulated switchgear that facilitates additional installation work and achieves reduction in working time in the case of increasing arranged boards in additional installation of open/close devices. A bus tank storing a bus is provided above a circuit breaker tank storing a circuit breaker, the bus is connected to a bus connection bushing provided at a width-direction end of the bus tank, a tank width dimension of the bus tank is smaller than an enclosure width dimension of the gas-insulated switchgear, and a space formed by a difference between the enclosure width dimension and the tank width dimension serves as a connection space for the bus when the gas-insulated switchgear is arranged in a row.
Claims
1. A gas-insulated switchgear comprising a plurality of gas-insulated switchgears arranged in a row in a switchgear width dimension which is a width direction of a switchgear enclosure, the gas-insulated switchgears each including a circuit breaker tank storing a circuit breaker, and a bus tank provided above the circuit breaker tank and storing a bus, wherein the bus tank of each of the gas-insulated switchgears arranged in a row is provided with bus connection bushings connected to the bus, at respective both ends in the switchgear width dimension. a tank width dimension of the bus tank in the switchgear width dimension is smaller than an enclosure width dimension of the switchgear enclosure, the bus connection bushings of the adjacent bus tanks are connected to each other via a first solid insulation bus adapter provided in a space formed by a difference between the enclosure width dimension and the tank width dimension, and a second solid insulation bus adapter having an end to which an insulating plug is attached is connected to the bus connection bushing of the bus tank on a last end side to which an additional board is planned to be arranged in a row.
2. The gas-insulated switchgear according to claim 1, wherein each solid insulation bus adapter has a conductive layer at a surface thereof and has an insulating layer on an inner side thereof.
3. The gas-insulated switchgear according to claim 1, wherein each bus connection bushing is formed such that a part protruding outward of the bus tank has a conductor portion at a center and has an insulating portion covering an outer surface thereof, and the insulating portion has a conical shape tapered toward a tip end.
4. The gas-insulated switchgear according to claim 1, wherein the bus stored in the bus tank comprises a plurality of buses arranged in parallel, and the plurality of buses are connected to each other via a switch.
5. The gas-insulated switchgear according to claim 2, wherein each bus connection bushing is formed such that a part protruding outward of the bus tank has a conductor portion at a center and has an insulating portion covering an outer surface thereof, and the insulating portion has a conical shape tapered toward a tip end.
6. The gas-insulated switchgear according to claim 2, wherein the bus stored in the bus tank comprises a plurality of buses arranged in parallel, and the plurality of buses are connected to each other via a switch.
7. The gas-insulated switchgear according to claim 3, wherein the bus stored in the bus tank comprises a plurality of buses arranged in parallel, and the plurality of buses are connected to each other via a switch.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EMBODIMENTS
Embodiment 1
[0025]
[0026] As shown in
[0027] The movable side of the circuit breaker 4 is connected to the buses 7 via bushings 12 provided at a partition part between the circuit breaker tank 2 and the bus tank 3, and via the subsequent disconnectors 6. The fixed side of the circuit breaker 4 is connected to the power cable 10 via a connection conductor and the instrument current transformer 5 provided at a certain part on the connection conductor.
[0028] The internal structures of the circuit breaker tank 2 and the cable chamber 11 are merely examples, and are not limited to those shown in the drawing.
[0029] As shown in the top view in
[0030] Inside the bus tank 3, the buses 7 for three phases are arranged in parallel along the switchgear width direction. Bus connection bushings 13 are provided at tank wall penetration portions at both ends of the buses 7, and the buses 7 are supported by being connected to the bus connection bushings 13.
[0031] In the case where boards are arranged in a row, i.e., a plurality of gas-insulated switchgears 1 are arranged side by side in the width direction, for example, the buses of the gas-insulated switchgear located at the left in
[0032]
[0033]
[0034] The bus connection bushings 13 are fitted to the plug-in portions 14c, and a plug-in contactor recess 15 and a plug-in contactor projection 16 described below are inserted into the bus contact engagement portion 14d. The procedure for attaching these will be described later.
[0035] Of each bus connection bushing 13, the part protruding outward of the bus tank 3 has a conductor portion 13a at the center and an insulating portion 13b coating the outer surface thereof. The insulating portion 13b has a conical shape tapered toward the tip end, and this part is fitted to the plug-in portion 14c.
[0036] It is noted that, of the bus connection bushing 13, the part attached to the bus tank 3 and the inward side are not shown in the drawing.
[0037]
[0038]
[0039] In the case where no board is planned to be arranged at the left of the board for the first panel, the bus connection bushings 13 on the left side of the bus tank 3 for the first panel need not protrude in a conical shape on the outward side, and are only required to have a structure for supporting ends of the buses 7.
[0040] In the board for the second panel, the plug-in contactor projections 16 are attached to the bus connection bushings 13 on the left side of the bus tank 3 by means of bolt-fastening or the like. Then, the board for the second panel is slid in the direction toward the board for the first panel, whereby both boards are arranged in a row and at the same time, the bus connection bushings 13 for the first panel and the second panel are plugged in to both sides of the solid insulation bus adapters 14. Thus, bus connection is completed.
[0041]
[0042]
[0043]
[0044]
[0045] In the case of further increasing arranged boards, the boards for the fourth and subsequent panels can be arranged in a row by the same method as described above. On the other hand, in the case where there is no plan of increasing boards any more, the bus connection bushings 13 on the outward side of the last end board need not protrude in a conical shape.
[0046]
[0047] In the conventional gas-insulated switchgear as shown in Patent Document 1, for example, it is necessary to detach all the insulation buses of the already provided boards, arrange an additional board in a row, and then attach the insulation buses again. In contrast, in the present embodiment, at the time of additional installation, the insulating plugs 17 at the end board are merely detached, and large-scale work is not performed on the already provided boards. Thus, it is possible to greatly reduce the working time.
[0048]
[0049] As described above, in the gas-insulated switchgear according to embodiment 1, a bus tank storing a bus is provided above a circuit breaker tank storing a circuit breaker, the bus is connected to a bus connection bushing provided at a width-direction end of the bus tank, a tank width dimension of the bus tank is smaller than a enclosure width dimension of the gas-insulated switchgear, and a space formed by a difference between the enclosure width dimension and the tank width dimension serves as a connection space for the bus when the gas-insulated switchgear is arranged in a row. Therefore, in the case of performing work of connecting buses with an adjacent board to be arranged in a row, the buses of both adjacent boards can be easily connected using the connection space. Thus, it becomes possible to reduce the working time.
[0050] In addition, in the case where the gas-insulated switchgears are arranged in a row, the bus connection bushings of the adjacent boards are connected to each other via the solid insulation bus adapters in the connection space. Therefore, at the time of board arrangement, it is possible to easily connect the buses and arrange the boards in a row, without detaching the insulation buses at the already provided boards. In addition, the state after board arrangement is equivalent to a state in which the buses are connected via solid insulation buses.
[0051] In addition, the solid insulation bus adapters are connected to the bus connection bushings, and the insulating plugs are provided at the ends of the solid insulation bus adapters. Therefore, in the case of performing additional installation work in the future, it is possible to easily connect the buses to the additional board by detaching the insulating plugs of the solid insulation bus adapters, whereby the working time can be reduced.
Embodiment 2
[0052]
[0053] The bus connection between the first panel and the second panel is the same as in embodiment 1, and the connection is made using the solid insulation bus adapter 14 in the connection space on the lateral side of the bus tank 3. The structure described thus far is the same as in embodiment 1.
[0054] In the present embodiment, as shown in
[0055] Inside the bus tank 3 of the board for the second panel, the bus 7 and the second bus 18 are connected via a second disconnector 19. The solid insulation bus adapter 14 is connected to the outward side of the bus connection bushing 13 on the right side of the second bus 18, and the second bus 18 is insulated by the insulating plug 17. It is noted that the second disconnector 19 part is not limited to a disconnector, that is, a switch is only required. In addition, although two buses are provided here, more than two buses may be provided.
[0056]
[0057] In the case of additionally installing the third panel at the right of the second panel, first, the second disconnector 19 in the board for the second panel is switched off to disconnect the bus 7 and the second bus 18 in the board for the second panel, and the second bus 18 is grounded. In this way, in additional installation work, while the first panel and the second panel remain in operation without being powered off, the insulating plug 17 of the solid insulation bus adapter 14 connected to the second bus 18 is detached and the third panel is arranged in a row through the same procedure as for the second panel.
[0058] After additional installation, the disconnector 19 in the second panel and the disconnector 6 in the third panel are switched on, and then the circuit breaker 4 in the third panel is switched on, whereby the third panel is also energized and thus becomes able to operate.
[0059] As described above, in the gas-insulated switchgear according to embodiment 2, the buses stored in the bus tank are composed of a plurality of buses arranged in parallel, and the plurality of buses are connected to each other via a switch. Therefore, in the case of increasing the arranged board in additional installation, the switch is turned off, and the bus on the additional board side is grounded, whereby additional installation work can be performed in a state in which the buses at the already provided boards are energized.
Embodiment 3
[0060]
[0061] The gas-insulated switchgear itself is basically the same as that described in embodiment 1. The bus connection bushing 13 is provided on the lateral side of the bus 7 stored in the bus tank 3. Here, a power cable 20 can be connected to the outward side of the bus connection bushing 13, and this is a characteristic part of the present embodiment. Therefore, the shape of a connection interface on the outward side of the bus connection bushing 13 to which the power cable 20 is connected is formed to be the same as the shape of an interface of a general cable connection portion. That is, the outward protruding side of the bus connection bushing 13 is formed in such a shape to which a cable head portion 20a of the power cable 20 can be fitted.
[0062] Thus, the cable head portion 20a of the power cable 20 can be directly connected to the bus connection bushing 13. A cable cover 21 for cable protection is provided so as to cover the power cable 20.
[0063] As shown in the single-line diagram in
[0064] In the conventional switchgear, for example, in the case where a power cable is led into the switchgear from the lower side and then a feeding cable is led out downward through the switchgear, one more panel is added to the present board, buses are connected between the present board and the additional board, and the feeding cable is led out downward from the additional board side. Therefore, a space for two panels is needed, leading to increase in both cost and space. In contrast, in the present embodiment, the structure can be made with only one panel. As a matter of course, as in embodiment 1, a board may be additionally installed on the left side of the present board.
[0065] As described above, in the gas-insulated switchgear according to embodiment 3, the shape of a connection interface on the outward side of the bus connection bushing is formed to match an interface of a connection portion of a power cable, so as to allow the power cable to be directly connected to the bus connection bushing. Therefore, it is possible to easily connect the power cable on the receiving side without the need of a board for cable connection.
[0066] Although the disclosure is described above in terms of various exemplary embodiments and implementations, it should be understood that the various features, aspects, and functionality described in one or more of the individual embodiments are not limited in their applicability to the particular embodiment with which they are described, but instead can be applied, alone or in various combinations to one or more of the embodiments of the disclosure.
[0067] It is therefore understood that numerous modifications which have not been exemplified can be devised without departing from the scope of the present disclosure. For example, at least one of the constituent components may be modified, added, or eliminated. At least one of the constituent components mentioned in at least one of the preferred embodiments may be selected and combined with the constituent components mentioned in another preferred embodiment.
DESCRIPTION OF THE REFERENCE CHARACTERS
[0068] 1 gas-insulated switchgear
[0069] 2 circuit breaker tank
[0070] 3 bus tank
[0071] 4 circuit breaker
[0072] 5 instrument current transformer
[0073] 6 disconnector
[0074] 7 bus
[0075] 8 operation chamber
[0076] 9 control chamber
[0077] 10 power cable
[0078] 11 cable chamber
[0079] 12 bushing
[0080] 13 bus connection bushing
[0081] 13a conductor portion
[0082] 13b insulating portion
[0083] 14 solid insulation bus adapter
[0084] 14a surface conductive layer
[0085] 14b internal insulating layer
[0086] 14c plug-in portion
[0087] 14d bus contact engagement portion
[0088] 15 plug-in contactor recess
[0089] 16 plug-in contactor projection
[0090] 16a contactor portion
[0091] 17 insulating plug
[0092] 18 second bus
[0093] 19 second disconnector
[0094] 20 power cable
[0095] 20a cable head portion
[0096] 21 cable cover