Copper bar structure, intelligent electrical switch and charging pile

Through the reasonable planning of adopting copper row structure in smart electrical switches, the conductive parts are alternately arranged in different directions and sliding switching is used to solve the problem of excessive volume of smart electrical switches on multiple outputs, and the improvement of space utilization and cost reduction is achieved.

CN223167352UActive Publication Date: 2025-07-29SHENZHEN LANSHENG ELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202422061172.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-07-29
Estimated Expiration
2034-08-23

AI Technical Summary

Technical Problem

The existing copper duct structure of multi-output intelligent electrical switches takes up a lot of space, resulting in excessive charging pile size and low space utilization.

Method used

The copper row structure adopts a copper row structure including the first, second, third and fourth copper rows, the conductive parts are arranged at intervals in different directions and alternately arranged. The third copper row can be slid to realize the circuit conduction or disconnection, reasonably plan the copper row space and reduce the use of components.

Benefits of technology

The volume of smart electrical switches and charging piles is reduced, space utilization is improved, circuit system is simplified, and maintenance costs are reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a copper bar structure, an intelligent electrical switch and a charging pile, and relates to the technical field of electrical switches, the copper bar structure comprises a first copper bar piece, a second copper bar piece, a third copper bar piece and a fourth copper bar piece; the first copper bar piece comprises a first conductive piece; the second copper bar piece comprises a plurality of second conductive pieces, and the second conductive pieces are connected with the first conductive pieces in a one-to-one mode. The third copper bar piece comprises a plurality of third conductive pieces, and the third conductive pieces and the second conductive pieces are alternately arranged; the fourth copper bar piece comprises a plurality of fourth conductive pieces, and the fourth conductive pieces and the third conductive pieces are alternately arranged; the third conductive part can connect or disconnect the second conductive part and the fourth conductive part; according to the technical scheme provided by the utility model, the conductive pieces with the same type and function are arranged in the same copper bar piece, so that the space of the copper bar piece is reasonably planned, the copper bar structure is more compact, the space occupied by the copper bar structure can be reduced, and the volumes of the intelligent electrical switch and the charging pile are reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of electrical switches, and particularly relates to a copper bar structure, an intelligent electrical switch and a charging pile. Background Technique

[0002] An intelligent electrical switch is an automatic switching electrical appliance for connecting or disconnecting the main circuit of a motor or a load, and is an electrical appliance that uses electromagnetic force to close or disconnect the switch. It is suitable for frequent operation, remote control of high-voltage circuits, and has the protection performance of low-voltage release. The working principle of the intelligent electrical switch is to use the cooperation of electromagnetic force and spring elasticity to realize the connection and disconnection of the contacts. The intelligent electrical switch has two working states: power-off state and power-on state. When the attracting coil is energized, the static iron core generates electromagnetic suction, the armature is attracted, the connecting rod connected to the armature drives the contact to act, so that the normally closed contact is disconnected, and the contactor is in the power-on state; when the attracting coil is de-energized, the electromagnetic suction disappears, the armature is released under the action of the return spring, all the contacts are reset accordingly, and the contactor is in the power-off state.

[0003] Inside the intelligent electrical switch, there is a copper bar structure as an electrical connector and a current output component. When there are multiple output ports of the output component, it means that there are multiple sets of independent copper bar structures inside the intelligent electrical switch as conductive structures. In the existing multi-output intelligent electrical switch, when there are more output terminals, the more conductive structures need to be accommodated inside the intelligent electrical switch, and the more copper bar structures that make up the conductive structures. Since the copper bar structures cannot interfere with each other and need to be arranged at intervals, the shapes of each copper bar structure are quite different. Therefore, when there are more copper bar structures, a larger equipment space needs to be occupied, and the space utilization rate is low, resulting in an overly large volume of the multi-port intelligent electrical switch, and ultimately a large floor space for the charging pile. Summary of the Utility Model

[0004] The main purpose of the utility model is to propose a copper bar structure, an intelligent electrical switch and a charging pile, aiming to reduce the volume of the multi-output-port intelligent electrical switch to improve the space utilization rate of the intelligent electrical switch.

[0005] To achieve the above object, the copper bar structure proposed by the present utility model for intelligent electrical switches includes: a first copper bar member, a second copper bar member, a third copper bar member, and a fourth copper bar member; the first copper bar member includes a plurality of first conductive members arranged at intervals along a first direction; the second copper bar member includes a plurality of second conductive members arranged at intervals along a second direction, and the second conductive members are connected to the first conductive members one by one; the third copper bar member includes a plurality of third conductive members arranged at intervals along the second direction, and the third conductive members and the second conductive members are alternately arranged along the second direction; the fourth copper bar member includes a plurality of fourth conductive members arranged at intervals along the second direction, and the fourth conductive members and the third conductive members are alternately arranged along the second direction; the third copper bar member can slide along the second direction to conduct or disconnect the second conductive member and the fourth conductive member, and the second direction intersects the first direction.

[0006] In one embodiment, the third conductive member has a first moving contact and a second moving contact, the second conductive member has a first fixed contact corresponding to the first moving contact, and the fourth conductive member has a second fixed contact corresponding to the second moving contact; the third copper bar member has a first position and a second position; when the third copper bar member is in the first position, the first moving contact is in contact conduction with the first fixed contact, and the second moving contact is in contact conduction with the second fixed contact; when the third copper bar member is in the second position, the first moving contact is in contact disconnection with the first fixed contact, and the second moving contact is in contact disconnection with the second fixed contact.

[0007] In one embodiment, the third conductive member extends along the first direction, and the first moving contact and the second moving contact are provided on the same side of the third conductive member so that the first moving contact and the second moving contact can simultaneously abut against the first fixed contact and the second fixed contact.

[0008] In one embodiment, the fourth conductive member extends along a third direction, the fourth conductive member has a second output portion and a second abutting portion, and the second fixed contact is provided on a side of the second abutting portion close to the third copper bar member, and the third direction intersects the first direction and the second direction.

[0009] In one embodiment, the first conductive member has a first output portion extending along the second direction and a connecting portion provided at one end of the first output portion. The connecting portion is bent relative to the first output portion, and an output end for outputting current is formed at an end of the first output portion away from the connecting portion. The connecting portion is detachably connected to the second conductive member.

[0010] In one embodiment, the connecting portion has a jack, and one end of the second conductive member is provided with a plugging portion that is plugged and matched with the jack.

[0011] In one embodiment, the second conductive member includes a first bent portion and a second bent portion connected by bending. The first bent portion extends along a third direction, and the second bent portion extends along a first direction. One end of the first bent portion away from the second bent portion is connected to the first conductive member, and a first abutting portion for cooperating with the third conductive member is provided at one end of the second bent portion away from the first bent portion.

[0012] In one embodiment, the third copper busbar member further includes a driving seat capable of sliding along a second direction. A plurality of mounting grooves are provided at intervals along the second direction on the driving seat, and the third conductive members are mounted one by one in the mounting grooves.

[0013] The present utility model also provides an intelligent electrical switch, which includes a housing and the copper busbar structure described in any one of the above. The copper busbar structure is installed in the housing, and the output end of the copper busbar structure protrudes from the outer wall of the housing.

[0014] The present utility model also provides a charging pile, which includes the intelligent electrical switch described in the previous item.

[0015] The technical solution of the present utility model adopts a copper busbar structure including a first copper busbar member, a second copper busbar member, a third copper busbar member, and a fourth copper busbar member. The first copper busbar member has a plurality of first conductive members, each of which is arranged at intervals and has a current output end. The fourth copper busbar member has a plurality of fourth conductive members, each of which is arranged at intervals and has a current output end, so that a copper busbar structure has a plurality of current output ends for outputting current. A second copper busbar member and a third copper busbar member capable of connecting the first copper busbar member and the fourth copper busbar member are also provided, so that the first copper busbar member and the fourth copper busbar member can be electrically connected by sharing electrical connectors, reducing the use of copper busbar structure components to reduce the volume of the copper busbar structure. The technical solution of the present utility model rationally plans the space of the copper busbar member by arranging conductive members with the same type of function in the same copper busbar member, making the copper busbar structure more compact while having a plurality of current output ports, capable of reducing the space occupied by the copper busbar structure, thereby reducing the volume of the intelligent electrical switch and the charging pile. Description of the Drawings

[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained based on the structures shown in these drawings without creative efforts.

[0017] Figure 1Schematic diagram of a structure of a copper bar structure provided by the present utility model;

[0018] Figure 2 Exploded view of a structure of a copper bar structure provided by the present utility model;

[0019] Figure 3 Schematic diagram of a structure of an intelligent electrical switch provided by the present utility model.

[0020] Explanation of the reference numerals in the drawings:

[0021] 100, copper bar structure; 1, first copper bar member; 11, first conductive member; 111, first output portion; 112, connecting portion; 113, jack; 2, second copper bar member; 21, second conductive member; 211, insertion portion; 212, first abutting portion; 22, first fixed contact; 3, third copper bar member; 31, third conductive member; 32, first moving contact; 33, second moving contact; 34, driving seat; 4, fourth copper bar member; 41, fourth conductive member; 411, second output portion; 412, second abutting portion; 42, second fixed contact; 5, output terminal;

[0022] 200, intelligent electrical switch.

[0023] The realization, functional features and advantages of the object of the present utility model will be further described with reference to the embodiments and the accompanying drawings. Specific embodiments

[0024] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts belong to the scope of protection of the present utility model.

[0025] It should be noted that if there are directional indications (such as up, down, left, right, front, back...) in the embodiments of the present utility model, the directional indications are only used to explain the relative positional relationship and movement conditions between components in a specific posture. If the specific posture changes, the directional indications will also change accordingly.

[0026] In addition, if the descriptions such as "first", "second", etc. are involved in the embodiments of the present utility model, the descriptions of "first", "second", etc. are only for descriptive purposes and should not be construed as indicating or implying their relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In addition, if "and / or" or "and / or" appears throughout the text, its meaning includes three parallel solutions. Taking "A and / or B" as an example, it includes solution A, solution B, or a solution where A and B are satisfied simultaneously. In addition, the technical solutions between various embodiments can be combined with each other, but it must be based on the fact that those of ordinary skill in the art can implement it. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present utility model.

[0027] The present utility model provides a copper busbar structure 100.

[0028] Please refer to Figure 1-2 , in an embodiment of the present utility model, the copper busbar structure 100 is used for an intelligent electrical switch 200 and includes: a first copper busbar member 1, a second copper busbar member 2, a third copper busbar member 3, and a fourth copper busbar member 4; the first copper busbar member 1 includes a plurality of first conductive members 11 arranged at intervals along a first direction; the second copper busbar member 2 includes a plurality of second conductive members 21 arranged at intervals along a second direction, and the second conductive members 21 are connected to the first conductive members 11 one by one; the third copper busbar member 3 includes a plurality of third conductive members 31 arranged at intervals along the second direction, and the third conductive members 31 and the second conductive members 21 are arranged alternately along the second direction; the fourth copper busbar member 4 includes a plurality of fourth conductive members 41 arranged at intervals along the second direction, and the fourth conductive members 41 and the third conductive members 31 are arranged alternately along the second direction; the third copper busbar member 3 can slide along the second direction so that the third conductive members 31 conduct or disconnect the second conductive members 21 and the fourth conductive members 41, and the second direction intersects the first direction.

[0029] In this embodiment, the first copper busbar member 1 has a plurality of first conductive members 11 arranged in a compact manner. The first conductive member 11 has an output end 5 extending outside the housing for connecting to an external electronic component or flexible wire. The second copper busbar member 2 has a plurality of second conductive members 21 with a compact structure. The second conductive member 21 can be bent multiple times to form different shapes and angles, thereby changing the current flow path. Since there are various other electronic components in the intelligent electrical switch 200 in addition to the copper busbar structure 100, these electronic components will occupy most of the space in the intelligent electrical switch 200. By bending the second conductive member 21 multiple times, it can be arranged to fit around the outer contour of these electronic components or extend into the gaps between these electronic components, without additionally occupying the internal space of the intelligent electrical switch 200, improving the space utilization rate of the intelligent electrical switch 200, and thus reducing the volume of the intelligent electrical switch 200. The third copper busbar member 3 has a plurality of third conductive members 31 arranged in a compact manner. The third conductive member 31 can slide within a small range in space, and the circuit is turned on or off by sliding. The fourth copper busbar member 4 has a plurality of fourth conductive members 41 arranged in a compact manner. The fourth conductive member 41 has an output end 5 for connecting to an external device. By connecting the output ends 5 of the first conductive member 11 and the fourth conductive member 41, the electrical components or devices at both ends can be electrically connected through the intelligent electrical switch 200. The number of the first conductive members 11, the second conductive members 21, the third conductive members 31, and the fourth conductive members 41 is the same. The number of the conductive members is the number of current paths in the intelligent electrical switch, enabling an intelligent electrical switch 200 to operate in multiple current loops, simplifying the components required for the circuit system. Inside the intelligent electrical switch 200, by arranging the conductive members in a compact manner along different directions, the conductive members can be reasonably arranged, reducing the space occupied by the copper busbar structure 100 and making the copper busbar assembly adapt to the gaps between different electronic components, reducing the additional occupied space and improving the space utilization rate.

[0030] The technical solution of the present utility model adopts a copper busbar structure 100, which includes a first copper busbar member 1, a second copper busbar member 2, a third copper busbar member 3, and a fourth copper busbar member 4; the first copper busbar member 1 has a plurality of first conductive members 11, each first conductive member 11 is arranged at intervals and has a current output terminal 5, the fourth copper busbar member 4 has a plurality of fourth conductive members 41, each fourth conductive member 41 is arranged at intervals and has a current output terminal 5, so that a copper busbar structure 100 has a plurality of current output terminals 5 for outputting current; a second copper busbar member 2 and a third copper busbar member 3 are also provided, which can connect the first copper busbar member 1 and the fourth copper busbar member 4, so that the first copper busbar member 1 and the fourth copper busbar member 4 can share an electrical connector for electrical conduction, reducing the use of components of the copper busbar structure 100 to reduce the volume of the copper busbar structure 100. The technical solution of the present utility model reasonably plans the space of the copper busbar member by arranging conductive members with the same type of function in the same copper busbar member, making the copper busbar structure 100 have a plurality of current output terminals 5 and a more compact structure, capable of reducing the space occupied by electronic components, thereby reducing the volume of the intelligent electrical switch 200 and the charging pile.

[0031] Referring to Figure 1 、 2 , in an embodiment, the third conductive member 31 has a first moving contact 32 and a second moving contact 33, the second conductive member 21 has a first fixed contact 22 corresponding to the first moving contact 32, and the fourth conductive member 41 has a second fixed contact 42 corresponding to the second moving contact 33; the third copper busbar member 3 has a first position and a second position; when the third copper busbar member 3 is in the first position, the first moving contact 32 is in contact conduction with the first fixed contact 22, and the second moving contact 33 is in contact conduction with the second fixed contact 42; when the third copper busbar member 3 is in the second position, the first moving contact 32 is in contact disconnection with the first fixed contact 22, and the second moving contact 33 is in contact disconnection with the second fixed contact 42. In this embodiment, the third copper busbar member 3 is an element for controlling the on and off of the circuit, and the third copper busbar member 3 can be switched between the first position and the second position by sliding; the first position is the on position, when the third copper busbar member 3 is located in the first position, the third conductive member 31 in the third copper busbar member 3 can electrically connect the second conductive member 21 and the fourth conductive member 41, so that the first conductive member 11, the second conductive member 21, the third conductive member 31, and the fourth conductive member 41 can be connected in sequence and are sequentially passed by current; the second position is the disconnection position, when the third copper busbar member 3 is located in the second position, the third conductive member 31 is disconnected from the second conductive member 21 and the fourth conductive member 41, and the current cannot pass, and at this time the intelligent electrical switch 200 is in the off state.

[0032] In one embodiment, the third conductive member 31 extends along a first direction, and the first moving contact 32 and the second moving contact 33 are disposed on the same side of the third conductive member 31, so that the first moving contact 32 and the second moving contact 33 can simultaneously abut against the first fixed contact 22 and the second fixed contact 42. The first moving contact 32 and the second moving contact 33 are disposed on the same side of the third conductive member 31, so that the conduction surfaces of the first moving contact 32 and the second moving contact 33 have the same orientation. When the third conductive member 31 slides, the first moving contact 32 and the second moving contact 33 move in the same direction by the same distance, and the first fixed contact 22 and the second fixed contact 42 are both located at the same position on the sliding paths of the first moving contact 32 and the second moving contact 33, so that when the third conductive member 31 slides to the first position, the first moving contact 32 and the first fixed contact 22, and the second moving contact 33 and the second fixed contact 42 can all abut against each other.

[0033] In one embodiment, the fourth conductive member 41 extends along a third direction, the fourth conductive member 41 has a second output portion 411 and a second abutting portion 412, and a second fixed contact 42 is provided on the side of the second abutting portion 412 close to the third copper bus member 3. The third direction intersects the first direction and the second direction. The second output portion 411 is used for connecting to an external circuit, and the second abutting portion 412 is used for abutting against the third conductive member 31 to finally form a complete conduction circuit.

[0034] In one embodiment, the first conductive member 11 has a first output portion 111 extending along a second direction, and a connecting portion 112 provided at one end of the first output portion 111. The connecting portion 112 is bent relative to the first output portion 111. An output end 5 for outputting current is formed at the end of the first output portion 111 away from the connecting portion 112. The connecting portion 112 is detachably connected to the second conductive member 21. In this embodiment, the first output portion 111 is used for communicating with an external circuit, and the connecting portion 112 is bent in a direction perpendicular to the first output portion 111 to reduce the length of the first conductive member 11. At the same time, since multiple different first conductive members 11 have different mounting points, providing the connecting portion 112 can extend the first output portions 111 of the multiple first conductive members 11 in a unified direction, avoiding the problem that the first output portions 111 extend in different directions due to different mounting points, resulting in an irregular orientation of the output end 5. By providing the bent connecting portion 112, the first output portions 111 can be guided to the same direction, arranged more closely together, reducing the occupied space, and not touching each other to cause a short circuit.

[0035] In one embodiment, the connecting portion 112 has a jack 113, and one end of the second conductive member 21 is provided with a plugging portion 211 that is plugged and matched with the jack 113. In this embodiment, the shape of the jack 113 is square, and the outer contour of the plugging portion 211 is square and adapted to the size and shape of the jack 113. When the plugging portion 211 is plugged into the jack 113, the jack 113 can not only limit the horizontal position of the plugging portion 211, but also limit the rotation of the plugging portion 211. The two dimensions of the second conductive member 21 can be limited through one through hole. In other embodiments, in order to be able to adjust the angle of the second conductive member 21 at any time, or to adapt to gaps provided at different angles, the through hole can also be set as a circular hole, so that the rotation of the second conductive member 21 is not restricted and the position can be adjusted at any time.

[0036] In one embodiment, the second conductive member 21 includes a first bent portion and a second bent portion that are bent and connected. The first bent portion extends along the third direction, and the second bent portion extends along the first direction. One end of the first bent portion away from the second bent portion is connected to the first conductive member 11, and one end of the second bent portion away from the first bent portion is provided with a first abutting portion 212 for cooperating with the third conductive member 31. By providing the first bent portion and the bent portion, the second conductive member 21 can be bent to form a variety of different shapes, enabling the second conductive member 21 to better adapt to different structures to a greater extent. By providing the first bent portion and the second bent portion on the second conductive member 21, one ends of a plurality of second conductive members 21 away from the plugging portion 211 can all extend along the first direction, enabling the second conductive members 21 to be closely arranged in the structure along the second direction, saving the occupied space of the second copper row member 2 and improving the space utilization rate.

[0037] In one embodiment, the third copper row member 3 further includes a driving seat 34. The driving seat 34 can slide along the second direction. A plurality of mounting grooves are arranged at intervals along the second direction on the driving seat 34, and the third conductive members 31 are mounted one by one in the mounting grooves. Both sides of the mounting groove are open along the first direction. The third conductive members 31 are inserted through the mounting grooves and are arranged perpendicular to the sliding direction of the sliding seat. Springs are provided in the mounting grooves of the driving seat 34. The springs are arranged along the sliding direction of the driving seat 34 and are used to continuously press the third conductive members 31 against one side wall of the mounting groove; when the third copper row member 3 moves towards the first position, during the process of the fixed contact and the moving contact abutting against each other, the springs can play a buffering role, buffering the pressure received when the fixed contact and the moving contact abut. In addition, the springs can continuously provide pressure for the contact between the fixed contact and the moving contact, so that the fixed contact and the moving contact can continuously receive a pressing force during the contact process, thereby avoiding the situation of disconnection.

[0038] Refer to Figure 1 、 3, the present utility model also provides an intelligent electrical switch 200, which includes a housing and a busbar structure 100. The busbar structure 100 is installed in the housing, and the output end of the busbar structure 100 protrudes from the outer wall of the housing; the specific structure of the busbar structure 100 refers to the above-mentioned embodiments. Since the intelligent electrical switch 200 of the present utility model adopts all the technical solutions of the above-mentioned embodiments, it at least has all the beneficial effects brought by the technical solutions of the above-mentioned embodiments, which will not be elaborated here one by one. Among them, the output end of the busbar structure 100 is the output end 5 provided on the first busbar member 1 and the fourth busbar member 4. The housing includes two parts, a base and a housing. The base has an installation groove for installing the busbar structure 100. Both the housing and the busbar structure 100 are detachably connected to the base. After installing the busbar structure 100 and each electronic component on the base, then buckle the housing onto the base, which is convenient for the assembly of the intelligent electrical switch 200, or convenient for the intelligent electrical switch 200 to be disassembled and replace the damaged internal parts, thereby improving the production efficiency of the intelligent electrical switch 200 and reducing the subsequent maintenance cost of the intelligent electrical switch.

[0039] The present utility model also provides a charging pile, which includes the intelligent electrical switch 200 in the previous item. In the embodiment of the present utility model, the charging pile is used to charge an electric vehicle. The intelligent electrical switch 200 can save internal space for the charging pile, enabling it to use the internal space to accommodate other larger and more important components, or reduce its own volume to adapt to more environmental spaces.

[0040] The above description is only an exemplary embodiment of the present utility model, and does not limit the patent scope of the present utility model. Any equivalent structural transformation made under the technical concept of the present utility model by using the content of the specification and drawings of the present utility model, or directly / indirectly applied in other related technical fields, is included in the patent protection scope of the present utility model.

Claims

1. A copper bar structure for intelligent electrical switches, characterized in that, Comprising: A first copper busbar member, including a plurality of first conductive members arranged at intervals in a first direction; A second copper busbar member, including a plurality of second conductive members arranged at intervals in a second direction, and the second conductive members are connected to the first conductive members one by one; A third copper busbar member, including a plurality of third conductive members arranged at intervals in the second direction, and the third conductive members and the second conductive members are arranged alternately in the second direction; And A fourth copper busbar member, including a plurality of fourth conductive members arranged at intervals in the second direction, and the fourth conductive members and the third conductive members are arranged alternately in the second direction; The third copper busbar member can slide in the second direction so that the third conductive member conducts or disconnects the second conductive member and the fourth conductive member, and the second direction intersects the first direction.

2. The copper busbar structure according to claim 1, characterized in that, The third conductive member has a first moving contact and a second moving contact, the second conductive member has a first fixed contact corresponding to the first moving contact, and the fourth conductive member has a second fixed contact corresponding to the second moving contact; The third copper busbar member has a first position and a second position; When the third copper busbar member is in the first position, the first moving contact is in contact conduction with the first fixed contact, and the second moving contact is in contact conduction with the second fixed contact; When the third copper busbar member is in the second position, the first moving contact is in contact disconnection with the first fixed contact, and the second moving contact is in contact disconnection with the second fixed contact.

3. The copper busbar structure according to claim 2, wherein The third conductive member extends along the first direction, and the first moving contact and the second moving contact are arranged on the same side of the third conductive member so that the first moving contact and the second moving contact can simultaneously abut against the first fixed contact and the second fixed contact.

4. The copper busbar structure according to claim 2, wherein, The fourth conductive member extends along a third direction, the fourth conductive member has a second output portion and a second abutting portion, and the second fixed contact is arranged on a side of the second abutting portion close to the third copper busbar member, and the third direction intersects the first direction and the second direction.

5. The copper busbar structure according to claim 1, characterized in that, The first conductive member has a first output portion extending along the second direction, and a connecting portion arranged at one end of the first output portion. The connecting portion is bent relative to the first output portion. An output end for outputting current is formed at an end of the first output portion far from the connecting portion, and the connecting portion is detachably connected to the second conductive member.

6. The copper busbar structure according to claim 5, characterized in that, The connecting portion has a jack, and one end of the second conductive member is provided with a plugging portion that is plugged and matched with the jack.

7. The copper busbar structure according to claim 1, characterized in that The second conductive member includes a first bent portion and a second bent portion that are bent and connected. The first bent portion extends along the third direction, and the second bent portion extends along the first direction. One end of the first bent portion far from the second bent portion is connected to the first conductive member, and a first abutting portion for cooperating with the third conductive member is arranged at one end of the second bent portion far from the first bent portion.

8. The copper busbar structure according to any one of claims 1 to 7, characterized in that, The third copper busbar member further includes a driving seat that can slide in the second direction. A plurality of mounting grooves are arranged at intervals along the second direction on the driving seat, and the third conductive members are mounted in the mounting grooves one by one.

9. An intelligent electrical switch, characterized in that, Comprising a housing and a copper busbar structure as described in any one of claims 1 to 8, the copper busbar structure being installed in the housing, and an output end of the copper busbar structure protruding from an outer wall of the housing.

10. A charging pile, characterized in that, Comprising an intelligent electrical switch as described in claim 9.