Intelligent precision data center power column head cabinet

By designing sliding and fixed racks and using transmission components, the complex layout of traditional power supply cabinets is solved, enabling flexible expansion and convenient maintenance of electrical components, and improving the operational efficiency and precision of power management in data centers.

CN119482034BActive Publication Date: 2025-11-04JIANGSU NANFANG COMM TECH +1
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Patent Information

Application Number
CN202411888276.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-11-04
Estimated Expiration
2044-12-20

AI Technical Summary

Technical Problem

Traditional power supply racks have complex and inflexible layouts, making it difficult to meet the needs of modern data centers for efficient operation and maintenance, flexible expansion, and precise energy management. They are particularly difficult to operate when repairing and expanding electrical components.

Method used

The design employs a sliding frame and a fixed frame, allowing the distribution panel to be connected to the fixed frame via a sliding connection. The sliding and rotation of the distribution panel are achieved through a transmission component, and the conductive structure ensures the stability of the power supply.

Benefits of technology

It improves the ease of maintenance and space utilization, enables flexible expansion and convenient maintenance of the distribution panel, and ensures the stability and reliability of power supply.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the field of power supply and communication, and particularly relates to a smart and precise data center power supply column head cabinet, a switchboard is slidably connected with a fixed frame through a sliding frame, and the switchboard can rotate relative to the sliding frame, a slide rail is arranged on the fixed frame, the sliding frame is slidably connected with the slide rail through a sliding seat, and the switchboard is rotatably connected with the sliding seat through a supporting shaft; when the electric element is maintained or replaced, the maintenance personnel drives the sliding frame to move and drives the switchboard to move out of the cabinet, and then drives the switchboard to rotate relative to the sliding frame, so that the switchboard is adjusted to an angle convenient for maintenance; the whole switchboard does not need to be disassembled during the maintenance process, and the maintenance convenience is greatly improved. The fixed frames are arranged in parallel along the width direction of the cabinet, and the slide rails are arranged on each fixed frame, so that more switchboards and electric elements can be accommodated in the cabinet, and the space utilization is improved. Meanwhile, the flexible control of different switchboards can be realized through the sliding of the sliding frame on the slide rail.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of electrical power supply and communication, and particularly relates to an intelligent and precise data center power supply column head cabinet. BACKGROUND

[0002] With the rapid development of information technology, the importance of data centers as the core facilities for data storage and processing is increasingly prominent. The power supply column head cabinet, as the core equipment for power distribution and management in data centers, is responsible for providing stable and reliable power supply to servers, storage devices and other IT loads. However, the electrical components of traditional power supply column head cabinets gradually fail to meet the urgent needs of modern data centers for efficient operation and maintenance, flexible expansion, and precise energy management in terms of layout design, maintenance convenience, and intelligent management.

[0003] The power supply column head cabinet in the prior art usually adopts a high-integration design of electrical components, with various electrical components (such as circuit breakers, sockets, monitoring modules, etc.) being compactly installed on a single or a few fixed switchboards. The layout design of these cabinets maximizes the utilization of internal space based on the traditional column head cabinet structure. However, due to the high integration and fixed installation position of electrical components, when a component needs to be repaired or replaced, the entire switchboard or part of the area needs to be removed from the cabinet, which is complex to operate and requires maintenance personnel to operate in a limited space, making it difficult and time-consuming.

[0004] With the increasing business volume of data centers, the demand for power is constantly changing, which may require the addition or adjustment of electrical components. However, due to the fixed and compact layout of the existing structure of the power supply column head cabinet, it is difficult to flexibly expand without significantly modifying the overall structure, limiting the upgrade and modification of data centers.

[0005] The information disclosed in this background section is intended only to enhance understanding of the general background of the present disclosure, and should not be considered as acknowledging or implying in any form that this information constitutes prior art known to those skilled in the art. SUMMARY

[0006] The present application provides an intelligent and precise data center power supply column head cabinet, which can effectively solve the problems in the background art.

[0007] To achieve the above purpose, the technical solution adopted by the present application is as follows:

[0008] An intelligent and precise data center power supply column head cabinet, comprising a cabinet body, a fixed frame, a sliding frame and a switchboard arranged therein, the switchboard is rotatably connected with the sliding frame, and the sliding frame is slidably connected with the fixed frame.

[0009] The fixing frame is provided with a plurality of slide rails in a second direction on the fixing frame, the slide rails are horizontally arranged and perpendicular to the first direction, the slide frame is slidably connected with the slide rails through slide seats, and the switchboard is rotatably connected with the slide seats through support shafts.

[0010] Further, the switchboard is connected with the fixing frame through a transmission assembly, the transmission assembly comprises a transmission shaft and a driving rod arranged vertically, the transmission shaft is vertically arranged and fixedly connected with one end of the driving rod, the other end of the driving rod is hingedly connected with the switchboard, the transmission shaft is rotatably connected with a sliding block, and a limiting sliding groove is formed in the fixing frame in the second direction.

[0011] Further, a connecting seat is arranged at the edge of the switchboard close to the slide seat, the connecting seat is rotatably connected with the slide seat through the support shaft;

[0012] The driving rod is arranged on one side of the length of the connecting seat, and the front end of the driving rod is hingedly connected with the connecting seat, and the hinge point of the driving rod and the connecting seat is located between the front end of the connecting seat and the support shaft.

[0013] A spring sheet is arranged between the transmission shaft and the sliding block, and the transmission shaft is driven to rotate in opposite directions when the spring sheet is bent by less than or greater than 180 degrees.

[0014] Further, the spring sheet drives the transmission shaft to rotate and transmits the rotation to the hinge point of the connecting seat through the driving rod, a stop block is arranged at the front end of the connecting seat close to the hinge point, and an inclined surface is arranged on the stop block and faces the driving rod.

[0015] When the spring sheet is bent by greater than 180 degrees, the connecting seat is driven to rotate towards the side provided with the driving rod and is pressed against the driving rod.

[0016] When the spring sheet is bent by less than 180 degrees, the connecting seat is driven to rotate towards the side away from the driving rod, so that the included angle between the connecting seat and the driving rod is increased.

[0017] Further, the fixing frame is vertically arranged and has a U-shaped structure, and comprises upper and lower support beams arranged opposite to the top and bottom of the cabinet, the upper and lower support beams are arranged in the second direction, and the slide rails are arranged on the upper and lower support beams.

[0018] The slide frame has a U-shaped structure and is arranged inside the fixing frame, and the slide frame comprises two slide seats arranged in parallel and slidably connected with the two slide rails respectively.

[0019] Further, the connecting seat is arranged on the upper and lower sides of the switchboard, the transmission assembly is oppositely arranged with two connecting seats, and the limiting sliding grooves are arranged on the upper and lower support beams.

[0020] Further, the sliding seat is electrically connected with the sliding rail, and the conductive rail is arranged in the sliding rail.

[0021] The sliding seat is electrically connected with the connecting seat through the support shaft, and a plurality of conductive sheets are arranged on the connecting seat in parallel along the width direction of the connecting seat.

[0022] The support shaft comprises a plurality of conductive shaft sleeves arranged in different diameters in the inner ring of the support shaft, and the plurality of conductive shaft sleeves are correspondingly arranged with the plurality of conductive sheets.

[0023] Further, the connecting seat is arranged along the second direction and is fixedly connected with the switchboard through bolts, and the conductive sheets are arranged at the front end of the connecting seat corresponding to the support shaft.

[0024] Further, the handle is arranged on the sliding seat, and the conductive switch is arranged in the handle.

[0025] The conductive switch comprises a fixed shaft and a movable sleeve arranged on the outer ring of the fixed shaft, the movable sleeve is screwed with the fixed shaft, and moves along the length direction of the fixed shaft during rotation.

[0026] A plurality of conductive blocks are arranged on the fixed shaft in the length direction of the fixed shaft, and a plurality of conductive rings are arranged in the inner ring of the movable sleeve corresponding to the conductive blocks.

[0027] Further, the movable clamping seat is arranged on the sliding seat, the latch is arranged on the movable clamping seat, and the clamping groove is arranged on the fixed frame corresponding to the latch.

[0028] The beneficial effects of the present application are:

[0029] In the present application, the switchboard is slidably connected with the fixed frame through the sliding frame, and the switchboard can rotate relative to the sliding frame; in the specific implementation process, the sliding frame is driven to move along the length direction of the sliding rail and drive the switchboard to move out of the cabinet body, and then the switchboard is driven to rotate relative to the sliding frame, so that the switchboard is adjusted to an angle convenient for maintenance; when it is necessary to maintain or replace the electrical elements, the maintenance personnel can easily slide the switchboard out of the cabinet body and rotate to a position convenient for operation, without disassembling the entire switchboard, which greatly improves the maintenance convenience. BRIEF DESCRIPTION OF DRAWINGS

[0030] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or prior art description. Obviously, the drawings in the following description only show some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained from these drawings without any creative effort.

[0031] Figure 1 Structure schematic view of the intelligent precision data center power supply column head cabinet in the present application;

[0032] Figure 2 Distribution board layout schematic view inside the cabinet body in the present application;

[0033] Figure 3 Distribution board connection schematic view through the movable frame and the fixed frame in the present application;

[0034] Figure 4 Movable frame moving schematic view relative to the fixed frame in the present application;

[0035] Figure 5 Connection seat connection schematic view through the transmission assembly and the sliding seat in the present application;

[0036] Figure 6 Structure schematic view of the transmission assembly in the present application; Figure 5

[0037] Figure 7 Sectional structure schematic view of the conductive shaft sleeve inside the support shaft in the present application;

[0038] Figure 8 Sectional structure schematic view of the handle and the conductive switch inside the handle in the present application;

[0039] Figure 9 Structure schematic view of the movable clamping seat on the movable frame in the present application.

[0040] The drawings show that: 1, cabinet body; 2, fixed frame; 21, sliding rail; 211, conductive rail; 212, limit sliding groove; 22, upper support beam; 23, lower support beam; 24, clamping groove; 3, sliding frame; 31, sliding seat; 32, handle; 33, conductive switch; 331, fixed shaft; 331a, conductive block; 332, movable sleeve; 332a, conductive ring; 34, movable clamping seat; 341, latch; 4, distribution board; 41, support shaft; 411, conductive shaft sleeve; 42, connection seat; 421, conductive sheet; 43, bolt; 5, transmission assembly; 51, transmission shaft; 52, driving rod; 53, sliding block; 54, elastic sheet; 55, stop block. DETAILED DESCRIPTION

[0041] ​The technical solutions in the embodiments of the present application will be clearly and completely described with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments of the present application.

[0042] It should be noted that when an element is referred to as being "on" another element, it can be directly on the other element or intervening elements can also be present. Where, when an element is referred to as being "connected to" another element, it can be directly connected to the other element or intervening elements can also be present. The terms "vertical", "horizontal", "left", "right" and similar expressions as used herein are for illustrative purposes only and are not intended to be limiting.

[0043] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used in the description of the application herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. As used herein, the term "and / or" includes any and all combinations of one or more of the associated listed items.

[0044] As shown in Figures 1 to 9 An intelligent and precise data center power column head cabinet, comprising a cabinet body 1 and a fixed frame 2, a sliding frame 3 and a switchboard 4 arranged in the cabinet body 1, the switchboard 4 is rotationally connected with the sliding frame 3 and is slidably connected with the fixed frame 2 through the sliding frame 3; a plurality of fixed frames 2 are arranged in parallel in the cabinet body 1 along a first direction, the first direction is parallel to the width direction of the cabinet body 1, a sliding rail 21 is arranged on each fixed frame 2 along a second direction, the sliding rail 21 is horizontally arranged and perpendicular to the first direction, the sliding frame 3 is slidably connected with the sliding rail 21 through a sliding seat 31, and the switchboard 4 is rotationally connected with the sliding seat 31 through a support shaft 41.

[0045] In the present application, the switchboard 4 is slidably connected with the fixed frame 2 through the sliding frame 3, and the switchboard 4 can rotate relative to the sliding frame 3; in the specific implementation process, the sliding frame 3 is driven to move along the length direction of the sliding rail 21 and drive the switchboard 4 to move out of the cabinet body 1, and then the switchboard 4 is driven to rotate relative to the sliding frame 3, so that the switchboard 4 is adjusted to an angle convenient for maintenance; when it is necessary to maintain or replace the electrical elements, the maintenance personnel can easily slide the switchboard 4 out of the cabinet body 1 and rotate it to a position convenient for operation, without the need to disassemble the entire switchboard 4, thereby greatly improving the maintenance convenience.

[0046] Further, a plurality of fixed frames 2 are arranged in parallel in the cabinet body 1 along the width direction thereof, and a sliding rail 21 is arranged on each fixed frame 2, so that more switchboards 4 and electrical elements can be accommodated in the cabinet body 1, thereby improving the space utilization. At the same time, through the sliding of the sliding frame 3 on the sliding rail 21, flexible control of different switchboards 4 can be realized.

[0047] In the embodiment, as shown in Figure 5 and Figure 6 The distribution panel 4 is connected with the fixed frame 2 through a transmission assembly 5, the transmission assembly 5 comprises a vertical transmission shaft 51 and a driving rod 52, the transmission shaft 51 is vertically arranged and fixedly connected with one end of the driving rod 52, the other end of the driving rod 52 is hingedly connected with the distribution panel 4, the transmission shaft 51 is rotationally connected with a sliding block 53, and a limiting sliding groove 212 is formed in the fixed frame 2 along the second direction.

[0048] When the driving movable frame moves outwards of the cabinet 1, the synchronous belt drives the transmission assembly 5 to move, so that the sliding block 53 moves along the length direction of the limiting arc groove until the movable frame moves out of the cabinet 1, at this time, the sliding block 53 moves to the front end of the limiting sliding groove 212 and stops moving; during the rotation of the distribution panel 4 relative to the movable frame, one end of the driving rod 52 rotates relative to the connecting seat 42 on the distribution panel 4, and the other end drives the transmission shaft 51 to rotate relative to the sliding block 53.

[0049] Further, a connecting seat 42 is arranged at the edge of the distribution panel 4 close to the sliding seat 31, the connecting seat 42 is rotationally connected with the sliding seat 31 through a supporting shaft 41; the driving rod 52 is arranged at one side of the length of the connecting seat 42, and the front end of the driving rod 52 is hingedly connected with the connecting seat 42, the hinge point of the driving rod 52 and the connecting seat 42 is located between the front end of the connecting seat 42 and the supporting shaft 41; a spring piece 54 is arranged between the transmission shaft 51 and the sliding block 53, and the spring piece 54 drives the transmission shaft 51 to rotate in opposite directions when the spring piece 54 is bent by less than or greater than 180 degrees.

[0050] Specifically, as shown in Figure 6 The spring piece 54 drives the transmission shaft 51 to rotate and is transmitted to the hinge point of the connecting seat 42 through the driving rod 52, a stop block 55 is arranged at the front end of the connecting seat 42 close to the hinge point, and an inclined surface is arranged on the stop block 55 towards the driving rod 52; when the spring piece 54 is bent by greater than 180 degrees, the connecting seat 42 is driven to rotate towards the side provided with the driving rod 52 and is pressed tightly with the driving rod 52; when the spring piece 54 is bent by less than 180 degrees, the connecting seat 42 is driven to rotate towards the side away from the driving rod 52, so that the included angle between the connecting seat 42 and the driving rod 52 is increased.

[0051] In the specific implementation process, when the switchboard 4 needs to be removed for maintenance, first, the movable frame is removed from the cabinet 1, and then the switchboard 4 is rotated. When the switchboard 4 is rotated, one end of the driving rod 52 is rotated with the connecting seat 42, and the included angle between the two gradually increases. The bent spring sheet 54 gradually recovers and provides auxiliary driving force for the horizontal opening of the switchboard 4, facilitating the rotation of the switchboard 4 to be parallel to the first direction. At this time, the spring sheet 54 is still in a bent state and provides a certain supporting force to the connecting seat 42 to maintain the open state, and at the same time, the driving rod 52 is in abutment with the inclined surface of the stop block 55, realizing the locking and positioning of the open state of the switchboard 4.

[0052] When the switchboard 4 needs to be moved into the cabinet 1, first, the switchboard 4 is rotated to be withdrawn into the inside of the movable frame, and then the movable frame is driven to move back into the cabinet 1 along the slide seat 31. During the process of withdrawing the switchboard 4 into the movable frame, the included angle between the connecting seat 42 and the driving rod 52 gradually decreases until they are in close contact with each other. At this time, the spring sheet 54 is bent to an angle slightly larger than 180 degrees, and the connecting seat 42 and the driving rod 52 are further pressed and tightly abutted, that is, the locking state between the connecting seat 42 and the movable frame is realized through the transmission assembly 5, ensuring the stability and safety of the switchboard 4 during the process of moving into the cabinet 1.

[0053] In the embodiment, as shown in Figure 3 and Figure 4 , the fixed frame 2 is vertically arranged and has a U-shaped structure, including upper and lower support beams 22 and 23 arranged opposite to the top and bottom of the cabinet 1. The upper and lower support beams 22 and 23 are arranged along the second direction, and the slide rails 21 are arranged on the upper and lower support beams 22 and 23. The sliding frame 3 has a U-shaped structure and is arranged inside the fixed frame 2. The sliding frame 3 includes two slide seats 31 arranged in parallel, and the two slide seats 31 are respectively connected with the two slide rails 21 in a sliding manner. The connecting seats 42 are arranged on the upper and lower sides of the switchboard 4, and the transmission assembly 5 is arranged opposite to the two connecting seats 42. The limiting slide grooves 212 are formed on the upper and lower support beams 22 and 23.

[0054] The fixed frame 2 adopts a U-shaped structure to realize fixed connection with three inner walls in the cabinet, ensuring the stability of the connection with the cabinet 1. The sliding frame 3 is connected with the fixed frame 2 in a sliding manner through the slide seats 31 at the upper and lower ends, also ensuring the stability of the connection between the sliding frame 3 and the fixed frame 2 and the stability of the sliding process. The two transmission assemblies 5 arranged opposite not only facilitate the driving of the switchboard 4 to be flipped by pulling the handle 32 arranged on the slide seat 31, but also can provide locking force for the open and withdrawn states of the switchboard 4.

[0055] In the embodiment, as shown in Figure 6 and Figure 7As shown, the sliding seat 31 is electrically connected with the sliding rail 21, and the sliding rail 21 is provided with a conductive rail 211; the sliding seat 31 is electrically connected with the connecting seat 42 through the support shaft 41, and the connecting seat 42 is provided with a plurality of conductive sheets 421 in parallel along the width direction of the connecting seat 42; the support shaft 41 comprises a plurality of conductive shaft sleeves 411 arranged at different diameters in the inner circle of the support shaft 41, and the plurality of conductive shaft sleeves 411 are arranged correspondingly with the plurality of conductive sheets 421.

[0056] Further, the connecting seat 42 is arranged along the second direction and is fixedly connected with the switchboard 4 through the bolt 43, and the conductive sheets 421 are arranged at the front end of the connecting seat 42 corresponding to the support shaft 41. During the relative rotation between the connecting seat 42 and the support, the plurality of conductive sheets 421 arranged in parallel are always electrically connected with the conductive shaft sleeves 411 of the corresponding radius, ensuring that the power supply is not interrupted during rotation.

[0057] The sliding seat 31 and the sliding rail 21 are electrically connected through the conductive rail 211, and the sliding seat 31 is electrically connected with the connecting seat 42 on the switchboard 4 through the support shaft 41, ensuring that the switchboard 4 always maintains power supply during movement, avoiding the problem of power interruption of the switchboard 4 caused by movement and rotation. The inner circle of the support shaft 41 is provided with a plurality of conductive shaft sleeves 411, which are arranged correspondingly with the conductive sheets 421 on the connecting seat 42. The accurate and stable transmission of power is ensured, and the reliability and durability of the connection are improved.

[0058] In the embodiment, as shown, Figure 8 A handle 32 is arranged on the sliding seat 31, and a conductive switch 33 is arranged in the handle 32. The conductive switch 33 comprises a fixed shaft 331 and a movable sleeve 332 sleeved on the outer circle of the fixed shaft 331. The movable sleeve 332 is screwed with the fixed shaft 331 and moves along the length direction of the fixed shaft 331 during rotation. A plurality of conductive blocks 331a are arranged in the length direction of the fixed shaft 331 at intervals, and a plurality of conductive rings 332a are arranged in the inner circle of the movable sleeve 332 corresponding to the conductive blocks 331a.

[0059] In the specific implementation process, when the switchboard 4 needs to be powered off for maintenance, the movable sleeve 332 on the handle 32 is rotated to move the movable sleeve 332 relative to the fixed shaft 331 in the length direction of the fixed shaft 331. During the movement, the conductive rings 332a in the inner circle of the movable sleeve 332 gradually separate from the conductive blocks 331a on the fixed shaft 331, completing the power-off operation of the switchboard 4.

[0060] In the embodiment, as shown, Figure 9As shown, the slide 31 is provided with a movable clamping seat 34, and the movable clamping seat 34 is provided with a pin 341, and the fixed frame 2 is provided with a clamping groove 24 corresponding to the pin 341. When the maintenance of the switchboard 4 is completed, the movable frame is driven to move back into the cabinet 1, and the movable clamping seat 34 on the slide 31 is adjusted, so that the pin 341 on the movable clamping seat 34 is clamped with the clamping groove 24 on the fixed frame 2, the fixed connection between the movable frame and the fixed frame 2 is realized, and the connection stability and safety of the movable frame in the cabinet 1 are ensured.

[0061] 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 to illustrate the principles of the present application, and various changes and improvements can be made without departing from the spirit and scope of the present application, and all these changes and improvements fall within the scope of the present application. The scope of protection of the present application is defined by the appended claims and their equivalents.

Claims

1. An intelligent precision data center power strip head cabinet, characterized in that, The utility model relates to a cabinet, including cabinet body and set up fixed frame, sliding frame and switch board in it, the switch board is rotatoryly connected with the sliding frame, and is connected with the fixed frame through the sliding frame and sliding, The fixed frame is provided with a plurality of along the first direction and parallel in the cabinet body, the first direction is parallel with the cabinet width direction, the sliding rail is provided on the fixed frame along the second direction, the sliding rail is horizontally arranged and is perpendicular to the first direction, the sliding frame is connected with the sliding rail through the sliding seat, and the switch board is rotatoryly connected with the sliding seat through the support shaft, The switch board is connected with the fixed frame through the transmission assembly, the transmission assembly includes the transmission shaft and drive lever that are arranged vertically, the transmission shaft is vertically arranged and is fixedly connected with one end of the drive lever, the other end of the drive lever is hinged with the switch board, the transmission shaft is rotatoryly connected with the sliding block, the limiting sliding slot is formed on the fixed frame along the second direction, and the sliding block is slidably connected with the limiting sliding slot, The connecting seat is rotatoryly connected with the sliding seat through the support shaft on the edge of the switch board close to the sliding seat side, The drive lever is arranged on one side of the length of the connecting seat, and the front end of the drive lever is hinged with the connecting seat, and the hinge point of the drive lever and the connecting seat is located between the front end of the connecting seat and the support shaft, The elastic sheet is arranged between the transmission shaft and the sliding block, and the transmission shaft is driven to rotate in the opposite direction when the elastic sheet is bent by less than or more than 180 degrees, The sliding seat is electrically connected with the sliding rail, and the conductive guide rail is arranged in the sliding rail, The sliding seat is electrically connected with the connecting seat through the support shaft, and a plurality of conductive sheets are arranged on the connecting seat along the width direction of the connecting seat, The support shaft includes a plurality of conductive shaft sleeves with different diameters arranged in the inner ring of the support shaft, and a plurality of the conductive shaft sleeves are correspondingly arranged with a plurality of the conductive sheets, A handle is arranged on the sliding seat, and a conductive switch is arranged in the handle, The conductive switch includes a fixed shaft and a movable sleeve arranged on the outer ring of the fixed shaft, the movable sleeve is screwed with the fixed shaft and moves along the length direction of the fixed shaft during rotation, A plurality of conductive blocks are arranged on the fixed shaft along the length direction of the fixed shaft, and a plurality of conductive rings are arranged in the inner ring of the movable sleeve corresponding to the conductive blocks.

2. The intelligent-precision data center power strip head enclosure of claim 1, wherein, The elastic sheet drives the transmission shaft to rotate and is transmitted to the hinge point of the connecting seat through the drive lever, a stop block is arranged at the front end of the connecting seat close to the hinge point, and an inclined surface is arranged on the stop block towards the drive lever; When the elastic sheet is bent by more than 180 degrees, the connecting seat is driven to rotate towards the side where the drive lever is arranged and is pressed tightly with the drive lever; When the elastic sheet is bent by less than 180 degrees, the connecting seat is driven to rotate towards the side away from the drive lever, so that the included angle between the connecting seat and the drive lever is increased.

3. The intelligent-precision data center power strip head enclosure of claim 1, wherein, The fixed frame is vertically arranged and has a U-shaped structure, including upper and lower support beams arranged opposite to the top and bottom of the cabinet body, the upper and lower support beams are arranged along the second direction, and the sliding rails are arranged on the upper and lower support beams, The sliding frame is in a U-shaped structure and is arranged inside the fixed frame, the sliding frame comprises two sliding seats arranged in parallel, and the two sliding seats are respectively connected with the two sliding rails in a sliding mode.

4. The intelligent-precision data center power strip header cabinet of claim 3, wherein, The connecting seats are arranged on the upper and lower sides of the switchboard, the transmission assembly is arranged with two connecting seats in a corresponding mode, and the limiting sliding grooves are arranged on the upper and lower support beams.

5. The intelligent-precision data center power strip header cabinet of claim 1, wherein, The connecting seat is arranged along a second direction and is fixedly connected with the switchboard through bolts, and the conductive sheet is arranged at the front end of the connecting seat corresponding to the support shaft.

6. The intelligent-precision data center power strip header cabinet of claim 3, wherein, The movable clamping seat is arranged on the sliding seat, the latch is arranged on the movable clamping seat, and the clamping groove is arranged on the fixed frame corresponding to the latch.

Citation Information

Patent Citations

  • Mobile power distribution cabinet convenient to overhaul

    CN118943911A

  • Drawing-and-rotating power distribution control plate device

    CN202210632U