A combined switchgear

By incorporating isolation chambers and isolation zones into the switchgear insulation design, the problem of insufficient SF6 gas insulation performance is solved, achieving high insulation strength and safe operation of the switchgear.

CN120809515BActive Publication Date: 2026-02-06NINGBO TIAN AN SMART GRID TECH CO LTD
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Patent Information

Application Number
CN202511301613.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-09-12
Publication Date
2026-02-06
Estimated Expiration
2045-09-12

AI Technical Summary

Technical Problem

Due to the limited insulation properties of SF6 gas in existing switchgear, the local electric field strength in compact switchgear may exceed the gas's tolerance limit, leading to discharge and breakdown accidents and affecting the safe operation of the equipment.

Method used

The design incorporates multiple isolation chambers and isolation zones within the insulating frame. Vacuum interrupters between each phase are physically isolated through the isolation chambers, and isolation contacts between each phase are physically isolated through the isolation zones. Combined with insulating beams and partition plates, multi-layer insulation is achieved to enhance insulation performance.

Benefits of technology

The double isolation design significantly improves the insulation performance of the combined switchgear, blocks the phase-to-phase conductive path, and enhances the insulation strength and safety of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a combined switch device, which comprises a rack, vacuum arc-extinguishing chambers, isolation contacts, grounding contacts and a contact blade assembly. The rack is formed by splicing a plurality of insulating partitions and has a plurality of isolation cavities formed inside. The vacuum arc-extinguishing chambers are vertically installed in the corresponding isolation cavities and have static contacts at the bottom ends. The isolation contacts are installed at the bottom end of the rack through insulating isolation beams. The isolation beams are provided with isolation areas corresponding to the isolation cavities, and the isolation contacts are located in the corresponding isolation areas. The grounding contacts are installed at the bottom end of the rack and correspond to the isolation cavities. The contact blade assembly is rotatably installed at the bottom end of the rack through an isolation shaft. The combined switch device has the beneficial effects that the vacuum arc-extinguishing chambers between each phase are physically isolated through the isolation cavities, and the isolation contacts between each phase are also physically isolated through the isolation areas. The double-isolation design greatly blocks the conduction path between the phases in space, greatly improves the insulation electric field between the phases, and improves the insulation performance of the combined switch device.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of electrical equipment, in particular to a combined switch device. BACKGROUND

[0002] In the existing switch cabinet, a three-position combined switch device is mostly used, which integrates a vacuum circuit breaker, an isolation switch, and a grounding switch. The so-called three-position refers to three working positions: one is the closed position of the main breaking point of the isolation switch, the second is the isolation position of the separated main breaking point, and the third is the grounding position of the grounding side.

[0003] In the switch cabinet, in order to ensure its insulation, SF6 (sulfur hexafluoride gas) is filled in the box where the combined switch is installed. SF6 has good insulation performance and arc extinguishing performance. Therefore, the physical insulation isolation of each switch during installation is not ideal, especially in compact switch devices, the local electric field strength may exceed the tolerance limit of SF6 gas, causing discharge or even breakdown accidents, threatening the safe operation of the device. Therefore, how to increase the insulation performance of the existing switch device to overcome the above problems is a problem that needs to be solved by those skilled in the art. SUMMARY

[0004] One of the purposes of the present application is to provide a combined switch device capable of improving insulation performance.

[0005] To achieve the above purposes, the technical solution adopted by the present application is as follows: a combined switch device, comprising a rack, a vacuum arc-extinguishing chamber, an isolation contact, a grounding contact, and a contact knife assembly, the rack is spliced by a plurality of insulation partitions and forms a plurality of isolation cavities inside, the vacuum arc-extinguishing chamber is vertically installed corresponding to the isolation cavities and has a static contact at the bottom end, the isolation contact is installed at the bottom end of the rack through an insulation isolation beam, the isolation beam is provided with an isolation area corresponding to the isolation cavities, the isolation contact is located in the isolation area, the grounding contact is installed at the bottom end of the rack and corresponds to the isolation cavities, and the contact knife assembly is rotatably installed at the bottom end of the rack through an isolation shaft; when closing, the first end of the contact knife assembly cooperates with the static contact and is located in the isolation cavity, and the second end of the contact knife assembly cooperates with the isolation contact and is located in the isolation area.

[0006] Preferably, the rack comprises an isolation front plate, an isolation rear plate, a pair of side plates, and a plurality of three-phase partitions, the two ends of the two side plates are respectively connected and matched by the isolation front plate and the isolation rear plate, the three-phase partitions are installed between the two side plates, and the isolation cavities are formed between adjacent three-phase partitions.

[0007] Preferably, a plurality of partition plate sets are mounted on the outer part of the isolation crossbeam at intervals, each of the partition plate sets comprising a plurality of partition plate bodies arranged at equal intervals between adjacent partition plate bodies, and the partition plate sets are located on both sides of the isolation contact to form the isolation area.

[0008] Preferably, a plurality of insulating cylinders I are arranged at the bottom end of the isolation crossbeam, the insulating cylinders I are arranged at the bottom end positions corresponding to the isolation contacts, and the insulating cylinders I are provided with avoiding openings for line connection of the isolation contacts, and the avoiding openings are located corresponding to the side part of the isolation crossbeam.

[0009] Preferably, the static contact comprises a contact plate and a head body arranged at the bottom end of the contact plate, the bottom end of the contact plate is provided with an insulating plate covering the connection member, and the bottom end of the insulating plate is provided with an insulating cylinder II covering the connection member.

[0010] Preferably, the three-phase partition plate extends outward to form a plug-in part near the side part of the side plate, and the outer side of the side plate is provided with a plug-in groove; when the three-phase partition plate is installed, the plug-in part cooperates with the plug-in groove, and the side plate cooperates with the three-phase partition plate.

[0011] Preferably, the isolation shaft comprises a shaft body and a mounting seat, and the contact blade assembly is mounted on the shaft body; the mounting seat is of an insulating structure, the mounting seat is arranged outside the shaft body and covers the contact blade assembly, and the end part of the contact blade assembly extends out of the mounting seat.

[0012] Preferably, the isolation shaft is integrally injection molded by plastic, and the shaft body is of a hollow structure; the outer circumferential surface of the shaft body is inwardly recessed to form a plurality of annular grooves, and a reinforcing ring is formed between adjacent annular grooves.

[0013] Preferably, the contact blade assembly is of a double-break structure and the included angle between the two ends is θ, wherein 90°<θ<150°, the contact blade assembly comprises a lap plate and a pair of contact blades; the mounting seat is provided with a mounting cavity, and a slot opening communicating with the mounting cavity is further formed in the mounting seat; the lap plate is mounted in the mounting cavity, the contact blades are adapted to be plugged into the slot opening and connected with the end part of the lap plate; and the mounting seat is detachably provided with an insulating cover, and the cover is adapted to cover the mounting cavity.

[0014] Preferably, the combined switchgear further comprises a balancing assembly mounted on the isolation shaft, and the balancing assembly is located at a circumferential direction different from the contact blade assembly; when the isolation shaft rotates, the wind area of the balancing assembly is larger than the wind area of the contact blade assembly, and the balancing assembly is adapted to balance the gravity of the contact blade assembly through air resistance.

[0015] Compared with the prior art, the application has the beneficial effects that:

[0016] The application realizes physical isolation of the vacuum arc-extinguishing chambers between each phase through the isolation cavities and physical isolation of the isolation contacts between each phase through the isolation areas, which greatly blocks the conduction path between phases in space, greatly improves the insulation electric field between phases, and improves the insulation performance of the combined switch device. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 It is a whole structure schematic diagram of one side of the combined switch of the application.

[0018] Figure 2 It is a whole structure schematic diagram of the other side of the combined switch of the application.

[0019] Figure 3 It is a side view structure schematic diagram of the application.

[0020] Figure 4 It is a Figure 3 It is a sectional view structure schematic diagram of A-A of the application.

[0021] Figure 5 It is a Figure 3 It is a sectional view structure schematic diagram of B-B of the application.

[0022] Figure 6 It is an enlarged structure schematic diagram of A of the application.

[0023] Figure 7 It is a schematic diagram of the main shaft and the fixed plate after being split of the application.

[0024] Figure 8 It is an enlarged structure schematic diagram of B of the application.

[0025] Figure 9 It is a three-dimensional structure schematic diagram of the bottom end of the vacuum arc-extinguishing chamber of the application.

[0026] Figure 10 It is an enlarged structure schematic diagram of C of the application.

[0027] Figure 11 It is a specific structure schematic diagram of the grounding contact of the application.

[0028] Figure 12 It is a schematic diagram of the isolation of the application.

[0029] Figure 13 It is a schematic diagram of the isolation of the application.

[0030] Figure 14Schematic diagram of grounding of the present application.

[0031] Figure 15 Schematic diagram of rack explosion structure of the present application.

[0032] Figure 16 Schematic diagram of specific structure of isolation crossbeam of the present application.

[0033] Figure 17 Schematic diagram of overall structure of isolation shaft of the present application.

[0034] Figure 18 Schematic diagram of disassembly of contactor assembly and balancing assembly from isolation shaft of the present application.

[0035] Figure 19 Schematic diagram of enlarged structure at D of the present application.

[0036] Figure 20 Schematic diagram of specific structure of contactor assembly of the present application.

[0037] Figure 21 Schematic diagram of specific structure of balancing assembly of the present application.

[0038] Figure 22 Schematic diagram of axial section structure of isolation shaft of the present application.

[0039] Figure 23 Schematic diagram of side section structure of isolation shaft of the present application.

[0040] Figure 24 Schematic diagram of enlarged structure at E of the present application.

[0041] In the figure: 1, rack; 101, isolation front plate; 102, isolation back plate; 103, side plate; 104, breaker front plate; 105, three-phase partition plate; 2, vacuum interrupter; 201, static contact; 202, moving contact; 3, isolation cavity; 4, isolation shaft; 401, shaft body; 402, mounting seat; 5, grounding cross beam; 6, isolation contact; 7, isolation cross beam; 8, main shaft; 9, fixed plate; 10, guide structure; 1001, guide block; 1002, guide groove; 11, insulating pull rod; 12, contact knife assembly; 1201, contact knife; 1202, lap plate; 13, grounding contact; 14, bolt protection cover; 15, support frame; 16, elastic pad; 17, insulating plate; 18, insulating cylinder two; 19, frame body; 20, bolt protection cover; 21, grounding copper bar; 22, isolation area; 23, partition plate group; 2301, partition plate body; 24, insulating cylinder one; 25, avoidance opening; 26, balancing assembly; 2601, cover body; 2602, fan blade; 27, annular groove; 28, reinforcing ring; 29, fixed bent plate; 30, notch; 31, reinforcing rib; 32, mounting portion; 33, shielding sleeve; 34, clamping block; 35, clamping plate; 36, bolt insert; 37, mounting cavity; 38, clamping groove. DETAILED DESCRIPTION

[0042] Hereinafter, the present application will be further described in conjunction with specific embodiments, and it should be noted that the following described embodiments or technical features can be combined in any manner to form new embodiments without conflict.

[0043] In the description of the present application, it should be noted that for orientation words such as the terms "center", "transverse", "longitudinal", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc. indicate the orientation and positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and cannot be understood as limiting the specific protection scope of the present application.

[0044] It should be noted that the terms "first", "second", etc. in the specification and claims of the present application are used to distinguish similar objects, and do not necessarily describe a specific order or sequence.

[0045] One of the preferred embodiments of the present application is as follows: Figures 1 to 24As shown, a combined switch device comprises a rack 1, vacuum arc-extinguishing chambers 2, isolation contacts 6, grounding contacts 13 and a contact blade assembly 12, wherein the rack 1 is spliced by a plurality of insulating partitions and forms a plurality of isolation cavities 3 inside, and the vacuum arc-extinguishing chambers 2 are vertically installed in the corresponding isolation cavities 3 and have static contacts 201 at the bottom ends, the isolation contacts 6 are installed at the bottom end of the rack 1 through isolation cross beams 7, the isolation cross beams 7 are provided with isolation areas 22 corresponding to the isolation cavities 3, the isolation contacts 6 are located in the corresponding isolation areas 22, and the grounding contacts 13 are installed at the bottom end of the rack 1 and correspond to the isolation cavities 3; the contact blade assembly 12 is rotatably installed at the bottom end of the rack 1 through an isolation shaft 4.

[0046] It can be understood that the vacuum arc-extinguishing chambers 2 between each phase are physically isolated through the isolation cavities 3, and the isolation contacts 6 between each phase are also physically isolated through the isolation areas 22; when closing, the first end of the contact blade assembly 12 cooperates with the static contact 201 and is located in the isolation cavity 3, and the second end of the contact blade assembly 12 cooperates with the isolation contact 6 and is located in the isolation area 22, thereby ensuring the insulation isolation performance between each phase when closing, and the double isolation design greatly blocks the inter-phase conduction path in space, i.e. greatly improves the inter-phase insulation electric field, and improves the insulation performance of the combined switch device.

[0047] In this embodiment, as shown in Figure 15 , the rack 1 comprises an isolation front plate 101, an isolation rear plate 102, a pair of side plates 103 and a plurality of three-phase partitions 105, the two ends of the two side plates 103 are respectively butted and cooperated through the isolation front plate 101 and the isolation rear plate 102, and the three-phase partitions 105 are installed at intervals between the two side plates 103, thereby forming the isolation cavities 3 between the adjacent three-phase partitions 105.

[0048] Specifically, as shown in Figure 1 and Figure 2 , i.e. the isolation front plate 101, the isolation rear plate 102 and the pair of side plates 103 are assembled together in the form of a square; and the three-phase partitions 105 are equidistantly arranged inside, since the switch is three-phase, the number of the three-phase partitions 105 is preferably three, and the isolation cavities 3 for installing the three vacuum arc-extinguishing chambers 2 are formed between the adjacent three-phase partitions 105, as shown in Figure 15 .

[0049] As shown in Figure 1 and Figure 2As shown in the figure, both ends of the isolation shaft 4 are rotatably installed between the front isolation plate 101 and the rear isolation plate 102, and the isolation shaft 4 is located below the side plate 103. The purpose of this design is as follows: We know that the width (or thickness) of the vacuum interrupter 2 is not very large, so the distance between the two side plates 103 is not very large either, and it only needs to be installed to fit the vacuum interrupter 2. The static contact 201, the isolation contact 6, and the grounding contact 13 are distributed in a circular pattern around the axis of the isolation shaft 4. Therefore, enough space is required at the lower end inside the frame 1 for installation, and this installation space is definitely larger than the width (or thickness) space required by the vacuum interrupter 2. Therefore, if the static contact 201 and the grounding contact 13 are designed to be located inside the two side plates 103, a larger distance between the two side plates 103 is required, which will increase the space of the entire device and is not conducive to miniaturization design.

[0050] Therefore, the isolation shaft 4 is designed to be located below the side plate 103, so that the distance design between the two side plates 103 will not be affected; specifically, the installation space between the front isolation plate 10 and the rear isolation plate 102 is adaptively increased, and the installation space between the two side plates 103 is used for installing the vacuum interrupter 2. As Figure 1 and Figure 2 shown, the lower part of the entire frame 1 occupies a larger space, while the upper middle part of the frame 1 occupies a smaller space. Such a design is more reasonable and compact.

[0051] In addition, both the front isolation plate 101 and the rear isolation plate 102 not only facilitate the installation of specific components in the switch, but also bear the skeleton load-bearing function of the entire frame 1; moreover, the entire frame 1 can be assembled by four plates, with a simple structure, convenient installation and disassembly, which is conducive to later maintenance and repair work.

[0052] This application does not specifically limit the structure of the three-phase partition 105. The following provides a specific embodiment for reference:

[0053] As Figure 5 and Figure 15 shown, the three-phase partition 105 as a whole has a "tu" - shaped structure, so it includes an integrally formed vertical section, an upper horizontal section, and a lower horizontal section. The lower horizontal section is located at the bottom of the vertical section, and the upper horizontal section is located in the middle of the vertical section. When assembling the frame 1, at this time, both the upper horizontal section and the lower horizontal section are inserted and installed in the slots of the two side plates 103, and the vertical section abuts between the two side plates 103; that is to say, after the frame 1 is assembled, the width of the vertical section is the width space inside the frame 1, and the vacuum interrupter 2 is located between the two vertical sections, thereby achieving insulation isolation between each phase.

[0054] Of course, the specific structure of the three-phase partition 105 is not limited to the "soil" - shaped structure described above. As long as its outer side near the side plate 103 extends outward to form a plug-in part, during installation, the plug-in fit between the plug-in part and the side plate 103 can achieve its quick disassembly and assembly.

[0055] Furthermore, as Figure 5 shown, the upper horizontal section corresponds to the moving contact 202 at the top of the vacuum interrupter 2, and the lower horizontal section corresponds to the static contact 201. We know that the two contacts of the vacuum interrupter 2 are the areas for circuit connection. Therefore, by using a longer horizontal section to isolate the adjacent contacts, the insulation strength between the adjacent contacts can be greatly improved, and the short - circuit phenomenon between adjacent phases can be avoided.

[0056] It is worth mentioning that the plug - in installation of the three - phase partition 105 can not only achieve the effect of insulation isolation, but also have the following effects: ① Strengthen the strength of the overall frame 1; Specifically, after the two side plates 103 are installed, they are abutted and supported on both sides of the three - phase partition 105, which can prevent the two side plates 103 from being squeezed and deformed inward. ② Facilitate loading and unloading; Specifically, during the initial assembly and later disassembly, no fixing parts (such as bolts) are required, thus greatly improving the work efficiency. ③ Perform installation pre - positioning; Specifically, when assembling the frame 1, the two side plates 103 can be sleeved and abutted on both sides of the three - phase partition 105. That is, both the upper horizontal section and the lower horizontal section of the three - phase partition 105 play a role in pre - positioning, ensuring that the two side plates 103 are parallel to each other, corresponding to each other, and have a uniform spacing, thereby further improving the installation efficiency.

[0057] In one embodiment of the present application, as Figure 2 and Figure 16 shown in (a) of, a plurality of separator groups 23 are installed at intervals outside the isolation cross - beam 7. The separator groups 23 are located beside the isolation contacts 6, thereby forming an isolation area 22.

[0058] Understandably, the design of the insulating partition plate assembly 23 can provide insulation between each isolation contact 6, thereby preventing short circuits between adjacent isolation contacts 6. Specifically, the partition plate assembly 23 includes multiple partition plate bodies 2301, which are equally spaced to further improve insulation performance. The design of the partition plate bodies 2301 also has the following effects: ① The partition plate bodies 2301 and the isolation beam 7 can be connected by reinforcing ribs 31. This improves the stability of the partition plate bodies 2301 installation and further strengthens the overall strength of the isolation beam 7; the isolation beam 7 itself also increases the stability of the entire frame 1. ② The design of multiple partition plate bodies 2301 increases the contact range with the gas, thereby improving the heat dissipation performance at the isolation contacts 6 and ensuring the safe and stable operation of the equipment. ③ The equally spaced partition plate bodies 2301 also help maintain uniform heat dissipation and prevent localized overheating. ④ This multi-plate arrangement design also facilitates later maintenance and repair work, enabling quick location of the isolating contact 6 components and improving work efficiency. ⑤ As shown in the figure, the partition plate group 23 and the three-phase partition 105 cooperate accordingly, thereby isolating the corresponding contact knife assembly 12 and further improving the insulation isolation effect. In addition, this corresponding cooperation design between the partition plate group 23 and the three-phase partition 105 also makes the structure of the entire frame 1 more compact and reasonable, effectively utilizing the space within the frame 1 and avoiding unnecessary space waste. In summary, the specific design of the isolation beam 7 fully considers the needs of practical applications, and through reasonable layout and structural design, achieves the goals of miniaturization, high insulation strength, high stability, and ease of maintenance.

[0059] Furthermore, in order to achieve better insulation at the seven points of the isolation beam, such as... Figure 16 As shown in (b), the bottom end of the isolation beam 7 is provided with multiple insulating cylinders 24, that is, the insulating cylinders 24 correspond to the isolation contacts 6, and the insulating cylinders 24 cover the bottom end of the isolation contacts 6; of course, in order to facilitate the connection between the line and the isolation contacts 6, a clearance opening 25 can be provided on the side of the insulating cylinder 24, so that the staff can easily connect the line by passing through the clearance opening 25; this not only ensures the insulation performance of the isolation contacts 6, but also facilitates the connection of the line, improving the practicality and convenience of the equipment.

[0060] It should be noted that the position of the avoidance port 25 corresponds to the side of the isolation beam 7, that is, the adjacent avoidance ports 25 are not relatively designed, which can avoid interference between adjacent lines, further improving the safety and stability of the equipment. In order to facilitate the overall production of the isolation beam 7, the isolation beam 7, the partition plate group 23 and the insulating cylinder 24 can be integrally injection molded by insulating plastic, thereby greatly improving the insulation effect. In addition, the design of the insulating cylinder 24 also has the advantages that the insulating cylinder 24 can also protect the isolation contact 6 from being damaged due to accidental touch or external force impact during the later maintenance operation of the staff, thereby improving the reliability and safety of the equipment.

[0061] Based on the above embodiment, a similar insulation structure can also be used at the bottom end of the static contact 201, as shown in Figure 8 and Figure 9 The static contact 201 includes a contact plate and a head body, and the head body is arranged at the bottom end of the contact plate. It should be understood that the contact plate is for the installation of the static contact 201, and the head body is a component for subsequent power-on and power-off. Therefore, the insulation and isolation of the contact plate are very important. Further, the insulating plate 17 can be installed at the bottom end of the contact plate through a connecting piece (generally a bolt), and the insulating plate 17 is covered by the insulating plate 17. The bottom end of the insulating plate 17 is provided with an insulating cylinder 18 which covers the connecting piece.

[0062] Specifically, the insulating cylinder 18 and the insulating plate 17 can also be integrally injection molded by plastic, and the installed bolt is located in the insulating cylinder 18, that is, the insulating cylinder 18 covers the bottom end position of the static contact 201. The design of the insulating plate 17 and the insulating cylinder 18 not only improves the insulation performance of the static contact 201, but also effectively prevents the short circuit risk caused by the direct exposure of the bolt mounting part. Of course, the insulating cylinder 18 and the insulating cylinder 24 can also play a protective role.

[0063] Further, in order to prevent the contact blade assembly 12 from contacting the insulating cylinder 18 when closing, as shown in Figure 9 , the elastic pad 16 can be installed at the position corresponding to the head body at the bottom end of the insulating plate 17 through the frame 19; when the contact blade assembly 12 cooperates with the static contact 201, the contact blade assembly 12 will abut against the elastic pad 16. Of course, the elastic pad 16 also has the following advantages: ① The elastic pad 16 can be made of insulating flexible materials such as rubber and resin, thereby providing a buffering effect when the contact blade assembly 12 is closed, reducing the impact and wear between the contact blade assembly 12 and the static contact 201, and prolonging the service life of the equipment. ② Since the installation position of the elastic pad 16 is fixed, when the contact blade assembly 12 cooperates with the static contact 201, it reaches the maximum rotation angle of the contact blade assembly 12, that is, the elastic pad 16 can limit the contact blade assembly 12, thereby improving the stability and safety of the equipment.

[0064] In this embodiment, as shown in Figure 11 The grounding contact 13 includes a grounding crossbeam 5, a grounding copper bar 21 and the grounding contact 13, both ends of the grounding crossbeam 5 are fixedly installed between the isolation front plate 101 and the isolation back plate 102 by bolts, and the grounding contact 13 is installed in the grounding crossbeam 5 through the grounding copper bar 21; it should be understood that the contact blade assembly 12 cooperates with the grounding contact 13 during grounding. Of course, the grounding crossbeam 5 is also installed in the isolation front plate 101 and the isolation back plate 102, which further improves the installation strength of the rack 1.

[0065] In one embodiment of the present application, as shown in Figure 6 A main shaft 8 is horizontally rotatably installed at the upper end of the inside of the rack 1, a plurality of fixed plates 9 are installed outside the main shaft 8, and the fixed plates 9 cooperate with the moving contact 202 of the corresponding vacuum interrupter 2 through the guide structure 10. It can be understood that the main shaft 8 can drive the fixed plate 9 to rotate, and the fixed plate 9 drives the moving contact 202 to cooperate with the fixed contact 201 through the guide structure 10, thereby realizing the on-off of the vacuum interrupter 2.

[0066] Specifically, the main shaft 8 can be installed in the following way: as shown in Figure 7 and Figure 15 A support frame 15 is bolted to the upper side of the opposite side of the two side plates 103, and the fixed plate 9 is rotatably installed in the support frame 15, and the main shaft 8 can be inserted into the fixed plate 9 and fixed; of course, the circuit breaker front plate 104 can be bolted to the upper side of the end of the two side plates 103, and the one end of the main shaft 8 is rotatably installed in the circuit breaker front plate 104; in this way, the stable installation of the main shaft 8 can be ensured, and the strength of the rack 1 can be improved. In order to improve the insulation performance, a bolt protection cover 14 can be installed at the bolt, of course, it is not limited to the installation here, and the bolt protection cover 14 can be used for protection in other parts of the circuit breaker which need to be installed by bolts; for example, in Figure 11 The bolts for installing the grounding copper bar 21 and the grounding contact 13 can be protected by the bolt protection cover 20.

[0067] The structure of the guide structure 10 is not limited in the present application, and the following provides a specific embodiment for reference:

[0068] The guide structure 10 comprises a guide groove 1002 and a guide block 1001, wherein the guide groove 1002 is arranged outside the fixed plate 9, the guide block 1001 is connected with the movable contact 202 through the insulating pull rod 11, and the guide groove 1002 cooperates with the guide block 1001. It can be understood that when the main shaft 8 drives the fixed plate 9 to rotate, the guide groove 1002 will rotate at this time, and the guide groove 1002 will drag the guide block 1001 to move up and down, thereby enabling the movable contact 202 to move to realize the on-off of the vacuum interrupter 2. It should be noted that in the prior art, the opening and closing of the movable contact 202 generally needs to be driven through multiple crank arms, and the application can effectively realize the on-off operation of the circuit breaker through the cooperation of the guide groove 1002 and the guide block 1001, thereby improving the transmission efficiency and reducing the complexity of the structure.

[0069] In addition, the inventor of the application finds that when the isolation shaft 4 rotates, there are also such problems as Figure 13 and Figure 23 As shown in the figures, the double-break contact blade assembly 12 is installed on the isolation shaft 4 and is in the closed state, and the angle between the two contact blades 1201 is 120°. As can be seen from the figures, at this time, the gravity of the isolation shaft 4 is not evenly distributed (i.e., the center of gravity is on the left), and we will take the example of counterclockwise rotation of the isolation shaft 4 to open the circuit breaker: when the isolation shaft 4 rotates from the Figure 13 position to the Figure 12 position (rotates by 60 degrees), the center of gravity is not at the vertical position, and the gravity will generate a torque that tends to pull the center of gravity to the lowest point, which results in: for the upper contact blade 1201, the gravity torque is the same as the rotation direction when it rotates from the high position to the low position, which pushes the rotating shaft to accelerate. For the lower contact blade 1201, the gravity torque is the same as the rotation direction when it rotates from the high position to the low position, which pushes the isolation shaft 4 to accelerate; when it passes the lowest point and rotates from the low position to the high position, the gravity torque is opposite to the rotation direction, which plays a braking role.

[0070] Specifically, only the circumferential component of the gravity provides the acceleration or inhibition effect (i.e., produces tangential acceleration), and the resultant force of the gravity of the two contact blades 1201 in the contact blade assembly 12 always drives the isolation shaft 4 to accelerate, which will cause the phenomenon of overshoot of the isolation shaft 4, affecting the stability during opening.

[0071] In order to solve the above technical problems, as shown in Figure 17 , a balance assembly 26 can also be installed on the isolation shaft 4, and of course the balance assembly 26 is arranged in a staggered manner with the contact blade assembly 12 in the circumferential direction, which is to prevent interference between the balance assembly 26 and the contact blade assembly 12, and to better enable the balance assembly 26 to function.

[0072] It is understandable that, such as Figure 2 As shown, when the isolation shaft 4 rotates, the balancing component 26 comes into contact with the airflow. The windward area of ​​the balancing component 26 is larger than that of the contact blade component 12. The air resistance generated by the airflow will hinder and suppress the rotation of the isolation shaft 4. That is, the air resistance is used to balance the gravity effect when the contact blade component 12 rotates, so as to achieve the stability of the isolation shaft 4 during the rotation process and reduce the impact of overshoot.

[0073] It should be understood that in the prior art, those skilled in the art generally perform static balancing design on the isolating shaft 4, that is, install counterweights or symmetrical arm structures at symmetrical positions where the center of gravity of the isolating shaft 4 is offset, thereby eliminating eccentricity and reducing rotational inertia. However, this design has the following drawback: it increases the weight or volume of the entire isolating shaft 4, which requires adaptive improvements in the strength or space of the disconnecting switchgear, and increases manufacturing costs. In contrast, the balancing component 26 of this application balances the gravity of the contact assembly 12 by utilizing air resistance during rotation, that is, it only needs to ensure sufficient contact area with the gas during rotation, thus eliminating the need to add excessive mass or volume to balance the isolating shaft 4, ensuring the reliability and stability of the disconnecting switch.

[0074] This application does not specifically limit the structure of the balancing component 26, but two specific embodiments are provided below for reference:

[0075] Structure 1 (not shown): The balancing component 26 includes a plurality of fan blades 2602 extending radially along the isolation shaft 4. When the isolation shaft 4 rotates, the fan blades 2602 can effectively contact the air, generating sufficient air resistance to achieve the effect of balancing the gravity of the contact blade assembly 12. The number, shape and size of the fan blades 2602 can be adjusted by those skilled in the art according to actual needs to achieve the best balancing effect.

[0076] Structure 2: such as Figure 18 and Figure 19 As shown, the isolation shaft 4 includes a shaft body 401 and a mounting base 402. The mounting base 402 is an insulating structure and is located outside the shaft body 401. The mounting base 402 has a mounting cavity 37 and a slot 30 communicating with the mounting cavity 37. The contact blade assembly 12 is installed in the mounting cavity 37 and extends outward from the slot 30, that is, both ends of the contact blade assembly 12 are exposed. The balancing assembly 26 is also an insulating structure. The balancing assembly 26 is detachably installed in the mounting base 402 and covers the mounting cavity 37.

[0077] It can be understood that the mounting seat 402 and the structure of the balance assembly 26 can wrap the installed contact blade assembly 12, and the insulation structure design can make the insulation effect of the contact blade assembly 12 better. It should be known that the isolating switch is generally applied to a three-phase switch, as shown in Figure 18 Therefore, the corresponding mounting seat 402 has three groups and is arranged at equal intervals on the shaft body 401, and the contact blade assemblies 12 of each phase need to be strictly insulated from each other. At the same time, this structure design is also convenient for the installation and disassembly of the contact blade assembly 12 and the balance assembly 26, that is, after the balance assembly 26 is disassembled, the mounting cavity 37 is opened, and then the contact blade assembly 12 is disassembled, thereby improving the maintainability and convenience of the entire isolating switch.

[0078] It should be noted that the structure one is simple in structure, and the structure two has better insulation effect and is convenient for disassembly and maintenance of the contact blade assembly 12 and the balance assembly 26, and a person skilled in the art can select according to actual needs. Of course, based on the present application, the structure two is preferred, and therefore the structure two of the balance assembly 26 is further described in the following embodiments.

[0079] The specific structure of the balance assembly 26 is further optimized in the present application. The balance assembly 26 includes a cover body 2601 and a fan blade 2602. Of course, the cover body 2601 is installed at the opening position of the mounting cavity 37 to open and close the mounting cavity 37. The fan blade 2602 is arranged outside the cover body 2601 and extends along the radial direction of the isolation shaft 4. This is to enable the fan blade 2602 to better contact the airflow during rotation to generate better air resistance, thereby more effectively balancing the gravity of the contact blade assembly 12.

[0080] Of course, the shape and size of the fan blade 2602 can be designed according to actual needs to ensure that sufficient air resistance is generated when the isolation shaft 4 rotates. For example: ① as shown in Figure 21 The fan blade 2602 is in a straight plate structure, which is simple in structure and convenient for processing and installation. ② The side of the fan blade 2602 is recessed in a shell structure; in simple terms, the fan blade 2602 can be in a bowl structure. First, the recessed surface of the bowl structure forces the airflow to separate, forming a low-pressure vortex area at the back and a high-pressure area at the front, thereby forming a significant pressure difference and generating stronger reverse resistance (pressure difference resistance). Second, the airflow needs to bypass the bowl-shaped curved surface, and the flow path is increased, which causes more kinetic energy to be converted into heat energy, thereby increasing energy loss (resistance).

[0081] Further, in order to better arrange and install the fan blade 2602, as shown in Figure 21 and Figure 23As shown, the cover 2601 is in the form of a fan-shaped shell, and the cover 2601 is snap-fitted to the mounting seat 402, and the center of the cover 2601 coincides with the center of the isolation shaft 4.

[0082] It can be understood that, first, the snap-fitting of the cover 2601 facilitates its later quick disassembly; and after the cover 2601 is installed, its outer circumference is preferably tangent to the outer circumference of the entire isolation shaft 4, as shown in the figure. Figure 23 As shown, in the axial projection direction of the isolation shaft 4, the projection of the cover 2601 coincides with the projection of the isolation shaft 4, and this design ensures the aesthetic appearance; and the cover 2601 and the fan blades 2602 are preferably integrally injection molded with plastic, which not only ensures a certain strength, but also reduces the production cost.

[0083] Specifically, through the concentric design, when rotating, the centers of rotation of the cover 2601 and the isolation shaft 4 are consistent, which can ensure the stability of the relative position between the two, reduce the shaking or misalignment, and further improve the stability and reliability of the overall structure of the isolation shaft 4. At the same time, the circular-arc-shaped shell structure and the design of the fan blades 2602 can also lengthen the creepage safety distance. It should be noted that the creepage distance refers to the shortest distance between two conductive parts measured along the surface of the insulating material. Lengthening the creepage distance has the following advantages: ① Reducing the risk of electric leakage: A longer creepage distance can effectively reduce the risk of electric leakage due to dirt, moisture or other environmental factors. ② Reducing the risk of electrical breakdown: In a high-voltage environment, increasing the creepage distance can reduce the risk of electrical breakdown. Electrical breakdown refers to the loss of insulation performance of the insulating material, causing current to flow through an unintended path. As the creepage distance increases, the likelihood of reaching the breakdown voltage decreases, thereby reducing the likelihood of electrical breakdown. ③ Enhancing insulation strength and improving device reliability.

[0084] In specific implementation, in order to improve the air resistance effect of the balancing assembly 26, the number of fan blades 2602 can be set according to actual needs. In this application, a plurality of fan blades 2602 can be uniformly arranged circumferentially on the outside of the cover 2601 to increase the contact area with the airflow, thereby improving the air resistance and more effectively balancing the gravity of the contact blade assembly 12. If only one fan blade 2602 is used, the fan blade 2602 needs to have a large enough area and be installed at the center position of the cover 2601 to ensure that when the isolation shaft 4 rotates, the fan blade 2602 can generate sufficient air resistance to balance the gravity of the contact blade assembly 12. However, a fan blade 2602 that is too large will not only increase the manufacturing cost, but also may interfere with the surrounding equipment during rotation. Therefore, the preferred solution is to uniformly arrange a plurality of fan blades 2602 circumferentially on the outside of the cover 2601, which not only ensures the air resistance effect, but also avoids interference and high manufacturing cost.

[0085] Specifically, as shown in Figure 7 and Figure 10 , the cover body 2601 extends outward at both ends to form a clamping portion on the same straight line, and the side of the clamping portion is provided with a clamping block 34 and a clamping plate 35, the clamping block 34 is preferably four groups and is located at the four corner positions of the cover body 2601; and the clamping plate 35 is preferably a pair, which is located in the length extension direction of the clamping portion, and a clamping groove 38 is provided on the mounting seat 402.

[0086] It can be understood that when the clamping installation of the cover body 2601 is carried out, the clamping block 34 is correspondingly inserted and matched with the clamping groove 38, and at the same time the clamping plate 35 also abuts against the inner side position of the mounting cavity 37; here the clamping block 34 and the clamping groove 38 are clamped and matched to realize the installation of the cover body 2601, and the clamping plate 35 is used to further support and limit the installed cover body 2601, improve the contact area between the cover body 2601 and the mounting seat 402, and further improve the stability of the installation of the cover body 2601, and prevent the cover body 2601 from being deformed.

[0087] Further, as shown in Figure 24 , the end of the clamping block 34 has a hook portion, and the width of the clamping groove 38 is greater than the thickness of the clamping block 34. It can be understood that during installation, the hook portion is deformed inward under the extrusion of the clamping groove 38; when the hook portion is completely inserted into the clamping groove 38, the hook portion is restored to deform outward under the action of the elastic force, thereby realizing the stable clamping installation of the cover body 2601 on the mounting seat 402. When disassembling the cover body 2601, the hook portion is deformed inward under the action of external force, so that the hook portion corresponds to the clamping groove 38, and then the clamping block 34 and the clamping groove 38 are separated to complete the disassembly.

[0088] It should be known that the two ends of the double-break contact blade assembly 12 have a certain included angle design, and the general included angle θ is between 90° and 150°, and the application adopts a design of 120°. If the contact blade assembly 12 is directly installed as a whole in the mounting cavity 37 and the two ends thereof are extended from the slot 30, the contact blade assembly 12 may be deformed due to the action of external force during installation, thereby affecting the use effect of the contact blade assembly 12.

[0089] In order to solve the above technical problems, as shown in Figure 20As shown, in the present embodiment, the contact blade assembly 12 comprises a lap joint plate 1202 and a pair of contact blades 1201. Specifically during installation, ① first, the lap joint plate 1202 can be installed in the installation cavity 37 through the fixed bending plate 29 and the bolt fixation. ② The contact blade 1201 is inserted into the slot 30, and then the first end (i.e. the end close to the lap joint plate 1202) of the contact blade 1201 is connected with the end position of the lap joint plate 1202 (bolted), and the second end (i.e. the end away from the lap joint plate 1202) of the contact blade 1201 is exposed outside the isolation shaft 4 to form the two end positions of the contact blade assembly 12, and of course the exposed part of the contact blade 1201 can also be provided with a shielding sleeve 33. ③ Finally, the cover 2601 is installed to close and cover the installation cavity 37.

[0090] As shown in the present embodiment, Figure 17 In order to further improve the insulation performance of the isolation shaft 4, the isolation shaft 4 (i.e. the shaft body 401 and the mounting seat 402) can also be integrally injection molded with plastic, and the outer part of the shaft body 401 is in a hollow structure. It should be known that the isolation shaft 4 in the prior art is generally made of metal material, although the metal material has high strength and rigidity, but it also has electrical conductivity, which affects the insulation performance of the isolation switch to some extent. The plastic material isolation shaft 4 of the present application is relatively thick, and the hollow structure design not only reduces the overall weight of the isolation shaft 4 and reduces the production cost, but also increases the heat dissipation area inside the isolation shaft 4 and improves the heat dissipation effect. In addition, the design of the hollow structure can also increase the mechanical strength of the isolation shaft 4 and improve its anti-deformation ability, further ensuring the stability and reliability of the isolation shaft 4.

[0091] Further, as shown in the present embodiment, Figure 18 On both sides of the mounting seat 402, a plurality of annular grooves 27 are formed inwardly corresponding to the outer circumferential surface of the shaft body 401, and a reinforcing ring 28 is formed between adjacent annular grooves 27, and the cooperation of the reinforcing ring 28 and the annular groove 27 has the following advantages: the setting of the reinforcing ring 28 can further ensure the mechanical strength and stability of the isolation shaft 4. Specifically, the reinforcing ring 28 can increase the surface area of the outer circumferential surface of the isolation shaft 4, thereby improving its ability to withstand external pressure. At the same time, the reinforcing ring 28 can also play a role in dispersing stress, when the isolation shaft 4 is subjected to external pressure, the stress will be dispersed to each reinforcing ring 28, thereby avoiding damage or deformation caused by stress concentration and other problems.

[0092] Based on the above embodiment, that is, the isolation shaft 4 is made of plastic injection molding, and the lap plate 1202 generally needs to be connected by bolts, but the structural strength of plastic is not enough; Therefore, the installation part 32 needs to be provided in the installation cavity 37, such as the bolt insert 36 is embedded in the installation part 32, and the cooperation of the bolt insert 36 and the bolt can realize the stable installation of the lap plate 1202. Because the installation seat 402 is provided with the notch 30 and the installation cavity 37, the whole installation seat 402 is in a shell type structure, so as to stably install the bolt insert 36, the installation seat 402 needs to have enough thickness, but this will increase the overall quality of the installation seat 402. Further, without increasing the installation seat 402, the installation part 32 can be protrudingly arranged at the outer side of the installation seat 402, but the stability of the installation part 32 is still not good enough, and the strength of the installation part 32 is the premise of determining the stable installation of the whole contact knife assembly 12; In addition, the strength of the notch 30 outside the installation seat 402 is also the premise of determining the stable limiting support of the contact knife assembly 12, as shown in Figure 18 and Figure 19 When the contact knife assembly 12 is closed at both ends, the force of the contact knife assembly 12 on the notch 30 is very large, and the connection position of the notch 30 and the installation seat 402 is very easy to cause stress concentration and damage.

[0093] Therefore, in order to further ensure the strength of the installation part 32 and the notch 30, as shown in Figure 19 the reinforcing ribs 31 connected to the outside of the installation seat 402 can be arranged outside the two, and the arrangement of the reinforcing ribs 31 can significantly improve the structural strength of the installation part 32 and the notch 30. Specifically, the reinforcing ribs 31 can increase the material thickness of the installation seat 402 in the key area, thereby improving its ability to withstand external force. At the same time, the reinforcing ribs 31 can also play a role in dispersing stress, avoiding structural damage caused by stress concentration. When designing the reinforcing ribs 31, those skilled in the art can reasonably set the number, position and shape of the reinforcing ribs 31 according to the actual situation to achieve the best reinforcing effect.

[0094] In the embodiment, as shown in Figure 23 the included angle between the two contact knives 1201 can be 120°, and the center line of the balance assembly 26 (that is, the cover 2601) is located on the extension line of the angle bisector between the two contact knives 1201. Specifically, the center lines of the two contact knives 1201 and the balance assembly 26 are distributed equidistantly in a circle, and in combination with the analysis of the overshoot of the contact knife assembly 12, as shown in Figure 23As shown, during rotation, the gravity of the contactor assembly 12 will drive the isolation shaft 4 to accelerate and overshoot, and at this time, the fan 2602 is arranged at the symmetrical position of the gravity center of the contactor assembly 12, and the fan 2602 will generate resistance, which will offset the gravity moment generated by the contactor assembly 12 to some extent, thereby effectively slowing down the overshoot.

[0095] The working principle of the application is:

[0096] As shown in the figure, Figures 12 to 14 The static contact 201, the isolation contact 6 and the grounding contact 13 are evenly distributed at the axis of the isolation shaft 4, that is, the angle between adjacent ones is 120°, and of course the 120° design at both ends of the contactor assembly 12 is also based on the equidistant distribution design of the above-mentioned three positions.

[0097] ①As shown in the figure, Figure 12 At this time, the isolation and opening state, the first end (left end) of the contactor assembly 12 is located at the center between the static contact 201 and the isolation contact 6, and the second end (right end) of the contactor assembly 12 is located at the center between the grounding contact 13 and the isolation contact 6; of course, at this time, the vacuum arc chamber 2 is also in the opening and breaking state, thereby realizing the double-break design of the combined switch. ②As shown in the figure, Figure 13 The isolation closing operation is carried out: under the action of the operating mechanism, the isolation shaft 4 rotates clockwise, and the contactor assembly 12 will rotate and be matched with the static contact 201 and the isolation contact 6 at both ends. ③As shown in the figure, Figure 14 The grounding closing operation is carried out: under the action of the operating mechanism, the isolation shaft 4 rotates counterclockwise, and the contactor assembly 12 will rotate and be matched with the grounding contact 13 and the isolation contact 6 at both ends, and at this time, the grounding loop is connected, and the main loop is disconnected.

[0098] It should be noted that the rotation of the isolation shaft 4 and the main shaft 8 is driven by an external operating mechanism, and the operating mechanism is known to those skilled in the art, and therefore will not be described again. The present application can drive the isolation and grounding break by rotating the isolation shaft 4 clockwise or counterclockwise, and the double-break effectively solves the problem of electric field creepage distance of the isolation and grounding break, making the switch safer.

[0099] Finally, it needs to be explained that the present application is mainly applied to 24KV low-carbon environmentally friendly body switch, and has the development direction of small and compact switch cabinet, and is developed 24KV low-carbon environmentally friendly circuit breaker + double-break three-position isolation integrated switch, and the combined switch also adopts the insulation type design in many places, which can effectively improve the insulation performance and safety of the whole equipment. For example, in each key part of the combined switch: vacuum arc extinguishing chamber 2, contact blade assembly 12, isolation shaft 4, isolation contact 6 and installed bolt, etc., insulation materials or insulation structures are used for wrapping or isolation, so as to avoid equipment failure or safety accident caused by phase-to-phase short circuit or contact discharge; such insulation design can also effectively improve the withstand voltage level and anti-breakdown capability of the equipment, so that it can stably operate under more severe working conditions. At the same time, the design of the rack 1 makes the electrical equipment structure more compact and smaller, reduces the occupied working space, and is easy to operate.

[0100] It should be known that in the prior art, the switch device is installed in a sealed box, and then the box needs to be filled with sulfur hexafluoride (SF6) gas, which has good insulation and arc extinguishing performance, and can ensure safe production operation. However, SF6 gas is chemically stable and not easy to decompose in the atmospheric environment; moreover, SF6 gas can harm the environment and cause the greenhouse effect; in addition, the existing SF6 gas usually contains toxic low-sulfur fluoride, hydrogen fluoride and sulfur dioxide gas, which can easily harm the human body.

[0101] And the present application adopts the above-mentioned insulation and voltage resistance design in many places, without filling sulfur hexafluoride (SF6) gas, and can use dry air or environmentally friendly nitrogen for insulation work; on the one hand, it can ensure safe production operation, on the other hand, it will not harm the environment and the human body, and has good environmental performance. In addition, the switch metal material parts of the present application use copper for the conductive part, and the rest use stainless steel material for part processing, thereby effectively controlling the electromagnetic effect caused by the material magnetic field on the switch itself.

[0102] The above describes the basic principles, main features and advantages of the present application. Those skilled in the art should understand that the present application is not limited to the above-mentioned embodiments, and the above-mentioned embodiments and descriptions in the specification are only the principles of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the claimed present application. The scope of protection claimed by the present application is defined by the appended claims and their equivalents.

Claims

1. A combination switchgear apparatus characterized by, The utility model relates to a combined switch device, which comprises a rack, a vacuum arc extinguishing chamber, an isolated contact, a grounding contact and a contact blade assembly. The rack is assembled by a plurality of insulating partitions and forms a plurality of isolated cavities inside. The vacuum arc extinguishing chamber is vertically installed in the corresponding isolated cavities and has a static contact at the bottom end. The isolated contact is installed at the bottom end of the rack through an insulating isolated crossbeam, and the isolated crossbeam is provided with isolated areas corresponding to the isolated cavities. The grounding contact is installed at the bottom end of the rack and corresponds to the isolated cavities. The contact blade assembly is rotatably installed at the bottom end of the rack through an isolated shaft. When closing, the first end of the contact blade assembly cooperates with the static contact and is located in the isolated cavity, and the second end of the contact blade assembly cooperates with the isolated contact and is located in the isolated area. The isolated shaft comprises a shaft body and a mounting seat, and the contact blade assembly is installed on the shaft body. The mounting seat is an insulating structure, which is arranged outside the shaft body and covers the contact blade assembly. The contact blade assembly has a double-break structure and the included angle of the two ends is θ, wherein 90°< θ < 150°.

2. The combination switchgear apparatus of claim 1, wherein: The mounting seat is provided with a mounting cavity, and a slot is formed in the mounting seat and communicates with the mounting cavity.

3. The combination switchgear apparatus of claim 1, wherein: The lapping plate is installed in the mounting cavity, and the contact blade is adapted to be inserted from the slot and connected with the end of the lapping plate.

4. The combination switchgear apparatus of claim 3, wherein: The outer part of the mounting seat is detachably provided with a cover of an insulating structure, which is adapted to cover the mounting cavity.

5. The combination switchgear apparatus of claim 1, wherein: The combined switch device further comprises a balancing assembly installed on the isolated shaft, and the balancing assembly is located in the circumferential direction and is staggered with the contact blade assembly. When the isolated shaft rotates, the wind area of the balancing assembly is larger than that of the contact blade assembly, and the balancing assembly is adapted to balance the gravity of the contact blade assembly through air resistance. The rack comprises an isolated front plate, an isolated rear plate, a pair of side plates and a plurality of three-phase partitions. The two ends of the two side plates are respectively connected and matched by the isolated front plate and the isolated rear plate. The three-phase partitions are installed between the two side plates, and the isolated cavities are formed between adjacent three-phase partitions. A plurality of partition plate groups are installed outside the isolated crossbeam. Each partition plate group comprises a plurality of partition plate bodies, and adjacent partition plate bodies are equidistantly arranged. The partition plate groups are located on both sides of the isolated contact and form the isolated areas. The bottom end of the isolated crossbeam is provided with a plurality of insulating cylinders I. The insulating cylinder I covers the bottom end position of the corresponding isolated contact. The outer part of the insulating cylinder I is provided with a avoiding opening for line connection of the isolated contact. The static contact comprises a contact plate and a head body. The head body is arranged at the bottom end of the contact plate. The bottom end of the contact plate is provided with an insulating plate through a connecting piece. The bottom end of the insulating plate is provided with an insulating cylinder II covering the connecting piece.

6. The combination switchgear apparatus of claim 2, wherein: The three-phase partition plate extends outward to form a plug-in part at the position close to the side of the side plate, and the outside of the side plate is provided with a plug-in groove; when the three-phase partition plate is installed, the plug-in part cooperates with the plug-in groove, and the side plate cooperates with the three-phase partition plate.

7. The combination switchgear apparatus of claim 1, wherein: The isolation shaft is integrally injection molded by plastic, and the shaft body is in a hollow structure; the outer circumferential surface of the shaft body is inwardly recessed to form a plurality of annular grooves, and a reinforcing ring is formed between adjacent annular grooves.

Citation Information

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