Intelligent connector fast configuration system for power cabinet

By combining the design of magnetic levitation rails and intelligent locking mechanisms, the problems of high friction, short lifespan, and low efficiency of power cabinet connectors are solved, enabling fast and reliable connector operation, which is suitable for data center power dispatching.

CN120999351BActive Publication Date: 2026-03-24江苏电博仕能源装备有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-10-24
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

The existing power cabinet connectors have high friction when manually pushed and pulled, which easily causes wear and tear, has a limited service life, low configuration efficiency, and is time-consuming.

Method used

The design employs a synergistic approach of magnetic levitation guide rail and intelligent latch, combined with ball bearing guide and trapezoidal locking block, to automate the entire connector insertion and removal process. The repulsive force between permanent magnet and levitation magnet drives the slide rail to slide without friction, while electromagnet controls the automatic opening and closing of the latch. Combined with the buffer design of rubber pads and springs, reliable contact of the guide pin and rapid power-off are ensured.

Benefits of technology

It achieves connector insertion time ≤3 seconds, extraction time ≤2 seconds, efficiency improvement of 300%, lifespan extended to 500,000 cycles, provides multiple safety guarantees and intelligent adaptive control, and is suitable for high-frequency maintenance scenarios.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an intelligent connector quick configuration system for a power cabinet, which comprises a power cabinet body, a front cover fixedly installed on the front side of the power cabinet body, four adaptive holes formed in the front cover, four guide rail structures fixedly installed on the inner walls of the two sides of the power cabinet body, and eight guide rail structures arranged in one-to-one correspondence; four power connectors matched with the four adaptive holes, slide rail structures fixedly arranged on the two sides of the four power connectors and matched with the corresponding guide rail structures; a partition plate fixedly installed in the power cabinet body, four matching holes formed in the partition plate, four notches formed in the two sides of the partition plate, and lock catch structures slidably installed in the eight notches; and four groups of conductive structures installed on the rear inner walls of the power cabinet body. The device upgrades the power cabinet connection operation into an intelligent process of "plug and use", improves the operation efficiency, reduces the push-pull friction and prolongs the service life.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of intelligent connector, in particular to a power cabinet intelligent connector rapid configuration system. BACKGROUND

[0002] The intelligent power distribution cabinet is also a precision power distribution cabinet, which is a power distribution cabinet for collecting all energy data at the end of the data center room energy. It provides high-precision measurement data for the terminal energy monitoring system, and reflects the real-time power quality data through the display unit. And upload to the background environment control system through digital communication. In order to achieve real-time monitoring of the entire power distribution system and effective management of operation quality. Help users optimize network data center, strengthen energy management, improve server rack operation efficiency, and realize all-round green IDC to provide reliable protection.

[0003] In the intelligent manufacturing equipment, power cabinet connectors are needed, and the connectors in the prior art are mainly mechanically guided and positioned: relying on precise guide rails / insert pins, the machining tolerance requirement is ±0.1mm, and the specific operation process is: step 1: mechanical locking (bolt / lever), step 2: manual power-on (switching), step 3: protocol configuration (jumper / wiper), static protocol binding: connector protocol and physical interface are strongly associated.

[0004] The power cabinet connector in the prior art has large friction when connecting power, which is easy to cause wear and tear, has limited service life, low configuration efficiency, relies on manual power connection, and takes a long time. SUMMARY

[0005] In order to overcome the defects of the power cabinet connector in the prior art, such as large friction when connecting power, easy to cause wear and tear, limited service life, low configuration efficiency, relying on manual power connection, and taking a long time, the present application provides a solution.

[0006] To solve the above technical problems, the present application provides the following technical scheme:

[0007] The power cabinet intelligent connector rapid configuration system comprises:

[0008] The power cabinet body is fixedly installed with a front cover on the front side, four adaptive holes are formed in the front cover, four guide rail structures are fixedly installed on the inner walls of the two sides of the power cabinet body, and the eight guide rail structures are one-to-one correspondingly arranged;

[0009] Four power connectors are adapted to the four adaptive holes, and slide rail structures are fixedly arranged on the two sides of the four power connectors and adapted to the corresponding guide rail structures;

[0010] A partition plate is fixedly installed in the interior of the power cabinet body, four matching holes are formed in the partition plate, four notches are formed in the two sides of the partition plate, and lock catch structures are slidingly installed in the eight notches.

[0011] Four groups of conductive structures are installed on the inner wall of the rear side of the power cabinet body and correspond to the four matching holes.

[0012] Preferably, the power connector comprises a distribution box, a cover plate is fixedly installed on the outside of the distribution box, a power connection display is arranged on the front surface of the cover plate, finger grooves are arranged on the top and bottom of the cover plate, a plurality of power connection guide holes are arranged on the inner side of the distribution box, and lock grooves are arranged on both sides of the distribution box.

[0013] The power connection display is an LED indicator light that displays a power-on state (red / green double colors), and integrates a current sensor that flashes and alarms when overloaded.

[0014] Preferably, the slide rail structure comprises a slide rail, the slide rail is fixedly installed on the side surface of the distribution box, permanent magnets are fixedly installed on the inner wall of the top and bottom of the slide rail, and a plurality of rolling balls are embedded in the inner wall of the slide rail.

[0015] Preferably, the guide rail structure comprises a guide rail, the guide rail is fixedly installed on the side wall of the power cabinet body, suspension magnets are fixedly installed on the top and bottom of the guide rail, an arc-shaped groove is arranged on the inner side of the guide rail, the slide rail is slidingly installed on the outer side of the guide rail, the rolling balls are slidingly connected with the inner wall of the arc-shaped groove, the permanent magnets are opposite to the magnetic poles of the adjacent suspension magnets, repulsion is formed between the two, and the guide rail and the slide rail are suspended and slidingly connected.

[0016] Preferably, the lock catch structure comprises a sliding plate, sliding openings are arranged on the top and bottom of the sliding plate, sliding balls are embedded in the inner walls of the two sliding openings, a cylindrical magnet is fixedly installed on the inner side of the sliding plate, a trapezoidal extrusion block and a trapezoidal lock block are fixedly installed on the inner side of the sliding plate, the sliding openings are slidingly connected with the inner walls of the notches, rolling ball grooves are arranged on the top and bottom inner walls of the notches, and the sliding balls are slidingly connected with the inner walls of the corresponding rolling ball grooves; the sliding plate is slidingly connected with the inner walls of the notches through the two sliding openings, the sliding balls are slidingly connected with the inner walls of the rolling ball grooves, and the friction of the sliding plate is reduced.

[0017] Preferably, four groups of fixed blocks are fixedly installed on the inner side of the partition plate in a symmetrical manner, each group of fixed blocks comprises two fixed blocks and is arranged in a symmetrical manner, an electromagnet is fixedly installed on the outer side of the fixed block, and the electromagnet is matched with the corresponding cylindrical magnet.

[0018] The electromagnet controls the opening and closing state of the lock catch, double-coil redundant driving is adopted, and the lock catch is automatically unlocked when power is off (spring backup).

[0019] Preferably, the trapezoidal lock block is in a trapezoidal structure and is matched with the lock groove.

[0020] Preferably, the conductive structure includes four sliding rods, each of which is fixedly installed on the rear inner wall of the power cabinet body, and the same insulating plate is slidably installed on each of the four sliding rods, the inner side of the insulating plate is fixedly installed with a rubber pad, a plurality of guide pins are fixedly arranged on the rubber pad, the guide pins are matched with corresponding electrically-conductive guide holes, the guide pins are silver-plated to ensure that the contact resistance is less than 0.5 mΩ, and the rubber pad is matched with the matching hole to play a buffering and damping role.

[0021] Preferably, the insulating plate is provided with an arc surface on each side, and a spring is sleeved on the outer side of each of the four sliding rods, one end of the spring is fixedly installed with the insulating plate, and the other end of the spring is fixedly installed with the inner wall of the power cabinet body, and the trapezoidal extrusion block is matched with the arc surface.

[0022] The spring provides a guide pin spring force to ensure power-off separation, and the spring force coefficient is 15 N / mm, and the service life is greater than 500,000 times.

[0023] Preferably, four sensors are fixedly installed on the inner walls of the two sides of the power cabinet body, and the sensors and the corresponding guide rail structures are located on the same horizontal axis; and the sensors are used for positioning the position of the power distribution box.

[0024] Compared with the prior art, the application can achieve the following beneficial effects:

[0025] 1. The system realizes the full-process automation of connector plugging through the cooperative design of the magnetic suspension guide rail and the intelligent lock buckle. When inserted, the repulsive force of the permanent magnet and the suspension magnet drives the sliding rail to slide on the guide rail with zero friction, and the precise guidance of the ball reduces the insertion time to ≤3 seconds; when pulled out, the electromagnetic iron triggers the lock buckle to release instantaneously, the spring pushes the guide pin to reset automatically, and the power-off operation only needs ≤2 seconds, which is 300% higher than the traditional manual operation efficiency, and is suitable for high-frequency maintenance scenes (such as data center power scheduling).

[0026] 2. Super long service life and maintenance-free operation

[0027] The magnetic suspension technology completely eliminates mechanical wear, and the key moving parts adopt a triple anti-wear design:

[0028] Ball guidance: the hard alloy ball (HRC62) embedded in the sliding rail cooperates with the arc-shaped groove of the guide rail, and can withstand >100,000 times of insertion and extraction;

[0029] Magnetic locking: the inclined surface self-centering structure of the trapezoidal lock block and the lock groove avoids rigid collision, and the locking force is accurately controllable (5-20 N adjustable);

[0030] Sealing protection: the rubber pad and the matching hole form an IP54-level dustproof barrier to block the invasion of pollutants.

[0031] 3. Multiple safety protection mechanisms

[0032] Arc suppression: Silver-coated needle treatment ensures contact resistance <0.5 mΩ, reducing heat generation from the source; the cushioning design of the rubber pad (absorbing 90% of the impact energy) prevents plugging sparks;

[0033] Fault isolation: The partition plate uses V0-grade flame-retardant materials to physically isolate the high-voltage area from the operating area;

[0034] Intelligent protection: The power display monitors the current in real time, triggering an LED red light alarm when overloaded, and cutting off the circuit within 0.1 seconds through the controller;

[0035] Power failure emergency: The electromagnet is equipped with a mechanical spring backup that automatically unlocks when the power fails, eliminating the risk of equipment jamming.

[0036] 4. Intelligent adaptive control

[0037] Precise positioning: Dual-redundant Hall sensors detect the power distribution box position in real time (accuracy ±0.5 mm), with an error rate <0.01%;

[0038] Dynamic adjustment: Electromagnet current automatically compensates for temperature and humidity (formula: I = 0.5A + 0.01·ΔT - 0.005·RH), ensuring lock reliability in environments from -40°C to 85°C;

[0039] Remote operation and maintenance: IoT module uploads data such as plug-in times and load current to the cloud platform, AI algorithm predicts component life (accuracy >90%), and triggers maintenance work orders in advance.

[0040] 5. Wide environmental adaptability

[0041] Extreme working conditions: The suspended magnet uses 150°C-resistant neodymium iron boron material, with a magnetic force decay rate <5% (100°C test);

[0042] In summary, the invention upgrades the power cabinet connection operation to an intelligent process of "plug and use", improving operation efficiency, reducing push-pull friction, and extending service life. BRIEF DESCRIPTION OF DRAWINGS

[0043] Figure 1 is a front view structural diagram of the invention;

[0044] Figure 2 is a side view structural diagram of the invention;

[0045] Figure 3 is a structural diagram of the power connector, lock structure, partition plate, and related parts of the invention;

[0046] Figure 4 is a rear view structural diagram of the power connector, lock structure, partition plate, and related parts of the invention;

[0047] Figure 5 Structure diagram of the power connector, slide rail structure and related parts of the present application;

[0048] Figure 6 Rear view structure diagram of the power connector, slide rail structure and related parts of the present application;

[0049] Figure 7 Structure diagram of the lock structure and related parts of the present application;

[0050] Figure 8 Structure diagram of the conductive structure and related parts of the present application;

[0051] Figure 9 Rear view structure diagram of the conductive structure and related parts of the present application;

[0052] Figure 10 Three-dimensional structure diagram of the partition plate of the present application;

[0053] Figure 11 Structure diagram of the power cabinet body and guide rail structure of the present application;

[0054] Figure 12 Structure diagram of the guide rail structure of the present application;

[0055] Figure 13 Three-dimensional structure diagram of the front cover of the present application.

[0056] Wherein: 1, power cabinet body; 11, front cover; 111, adaptive hole; 12, controller;

[0057] 2, power connector; 21, power display; 22, finger groove; 23, cover plate; 24, power distribution box; 25, lock slot; 26, power guide hole;

[0058] 3, slide rail structure; 31, slide rail; 32, permanent magnet; 33, ball;

[0059] 4, lock structure; 41, slide plate; 42, sliding port; 43, slide ball; 44, trapezoidal extrusion block; 45, trapezoidal lock block; 46, cylindrical magnet;

[0060] 5, conductive structure; 51, insulating plate; 511, arc surface; 52, rubber pad; 53, guide pin; 54, slide rod; 55, spring;

[0061] 6, partition plate; 61, matching hole; 62, fixed block; 63, electromagnet; 64, notch; 65, ball groove;

[0062] 7, guide rail structure; 71, guide rail; 72, arc slot; 73, suspended magnet; 8, sensor. DETAILED DESCRIPTION

[0063] In order to make the technical means, creative features, purposes and effects of the present application easy to understand, the present application is further described below in combination with specific embodiments, but the following embodiments are only preferred embodiments of the present application, not all. Based on the embodiments in the embodiments, other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present application. In the following examples, the experimental methods are conventional methods, and the materials and reagents used in the following examples are commercially available unless otherwise specified. Example 1

[0064] As shown in Figures 1-13 , the present application provides a power cabinet intelligent connector rapid configuration system, which comprises a power cabinet body 1, four power connectors 2, four groups of conductive structures 5 and a partition plate 6. The front side of the power cabinet body 1 is fixedly installed with a front cover 11, four adaptive holes 111 are formed in the front cover 11, four guide rail structures 7 are fixedly installed on the inner walls of the two sides of the power cabinet body 1, the eight guide rail structures 7 are one-to-one corresponding, the four power connectors 2 are adapted to the four adaptive holes 111, slide rail structures 3 are fixedly arranged on the two sides of the four power connectors 2, the slide rail structures 3 are adapted to the corresponding guide rail structures 7, the partition plate 6 is fixedly installed in the interior of the power cabinet body 1, four matching holes 61 are formed in the partition plate 6, four notches 64 are formed in the two sides of the partition plate 6, lock catch structures 4 are slidingly installed in the eight notches 64, and the four groups of conductive structures 5 are installed on the rear inner walls of the power cabinet body 1 and are one-to-one corresponding to the four matching holes 61.

[0065] As shown in Figures 1-6 , in the present embodiment, the power connector 2 comprises a power distribution box 24, a cover plate 23 is fixedly installed outside the power distribution box 24, a power connection display 21 is arranged on the front surface of the cover plate 23, finger grooves 22 are formed in the top and bottom of the cover plate 23, a plurality of power connection holes 26 are arranged on the inner side of the power distribution box 24, and lock grooves 25 are formed in the two sides of the power distribution box 24.

[0066] As shown in Figure 5 , Figure 6 , in the present embodiment, the slide rail structure 3 comprises a slide rail 31, the slide rail 31 is fixedly installed on the side surface of the power distribution box 24, permanent magnets 32 are fixedly installed on the top inner wall and the bottom inner wall of the slide rail 31, and a plurality of ball bearings 33 are embedded in the inner wall of the slide rail 31.

[0067] As shown in Figure 11 , Figure 12As shown, in this embodiment, the guide rail structure 7 includes a guide rail 71 fixedly installed on the side wall of the power cabinet body 1, the top and bottom of the guide rail 71 are fixedly installed with suspension magnets 73, the inner side of the guide rail 71 is provided with an arc-shaped groove 72, the slide rail 31 is slidingly installed on the outer side of the guide rail 71, the ball 33 is slidingly connected with the inner wall of the arc-shaped groove 72, the permanent magnet 32 is opposite to the magnetic pole of the close suspension magnet 73, and repulsion is formed between the two, so that the guide rail 71 and the slide rail 31 are suspended and slid.

[0068] Specifically, the repulsion generated by the opposite magnetic poles of the permanent magnet 32 and the suspension magnet 73 realizes the non-contact suspended sliding of the guide rail 71 and the slide rail 31, and reduces mechanical friction. The permanent magnet 32 and the suspension magnet 73 form a repulsion field, eliminate physical contact, and are arranged in opposite poles (N-S opposite), the magnetic flux density is 0.4T, and the suspension gap is 0.5±0.1mm.

[0069] The friction coefficient is reduced to ≤0.005 (the traditional guide rail friction coefficient is usually 0.1-0.3), and the support data is the measured value of the magnetic suspension bearing technology.

[0070] The sliding noise is ≤30dB (A weighted), and the traditional system is >60dB.

[0071] Response speed: insertion / extraction time <1 second (traditional plug-in system >3 seconds), which is derived from the low resistance design of the ball 33 and the arc-shaped groove 72.

[0072] As shown in the figure, Figure 7 In this embodiment, the lock catch structure 4 includes a sliding plate 41, the top and bottom of the sliding plate 41 are provided with sliding openings 42, the inner walls of the two sliding openings 42 are inlaid with sliding balls 43, the inner side of the sliding plate 41 is fixedly installed with a cylindrical magnet 46, the inner side of the sliding plate 41 is fixedly installed with a trapezoidal extrusion block 44 and a trapezoidal lock block 45, the sliding openings 42 are slidingly connected with the inner walls of the notches 64, the top inner wall and the bottom inner wall of the notches 64 are provided with ball grooves 65, and the sliding balls 43 are slidingly connected with the inner walls of the corresponding ball grooves 65; the sliding plate 41 is slidingly connected with the inner walls of the notches 64 through the two sliding openings 42, the sliding balls 43 are slidingly connected with the inner walls of the ball grooves 65, the friction of the sliding plate 41 is reduced, and the trapezoidal lock block 45 is a trapezoidal structure and is matched with the lock groove 25.

[0073] Specifically, the cylindrical magnet 46 responds to the magnetic force of the electromagnet 63 to pull the bidirectional magnetic pole design, supports the adsorption / repulsion action, and the magnetic induction intensity is 0.3T.

[0074] As shown in the figure, Figure 10 In this embodiment, the inner side of the partition plate 6 is symmetrically fixedly installed with four groups of fixed blocks 62, each group of fixed blocks 62 is two and is symmetrically arranged, the outer side of the fixed block 62 is fixedly installed with an electromagnet 63, and the electromagnet 63 is matched with the corresponding cylindrical magnet 46.

[0075] As shown in Figure 8 , Figure 9 In this embodiment, the conductive structure 5 includes four sliding rods 54, which are fixedly installed on the rear inner wall of the power cabinet body 1. The same insulating plate 51 is slidingly installed on each of the four sliding rods 54. The rubber pad 52 is fixedly installed on the inner side of the insulating plate 51. A plurality of guide pins 53 are fixedly arranged on the rubber pad 52. The guide pins 53 are matched with the corresponding power connection guide holes 26. The rubber pad 52 is matched with the matching hole 61. The rubber pad 52 plays a buffering and damping role. The arc surfaces 511 are arranged on both sides of the insulating plate 51. The springs 55 are sleeved on the outer sides of the four sliding rods 54. One end of each spring 55 is fixedly installed on the insulating plate 51. The other end of each spring 55 is fixedly installed on the inner wall of the power cabinet body 1. The trapezoidal extrusion block 44 is matched with the arc surface 511.

[0076] Specifically, the cylindrical magnet 46 is controlled to move the lock catch structure 4 by the electromagnet 63, so as to realize automatic locking and unlocking of the connector. In combination with the geometric matching of the trapezoidal lock block 45 and the lock groove 25, high-precision positioning is ensured.

[0077] Locking / unlocking response time <100ms (measured when the electromagnet coil current is 0.5A).

[0078] Locking force adjustable range 5-20N (adjusted by current), supporting data: electromagnet attraction force formula F = (B²A) / (2μ0), where B is the magnetic induction intensity (design value 0.5T), A is the magnetic pole area (about 10cm²).

[0079] Reliability: plug-in life >10,000 times (wear-resistant design of sliding ball 43 and ball groove 65, friction coefficient <0.02).

[0080] More specifically, the insulating plate 51 is integrated with the rubber pad 52. The soft insertion of the guide pin 53 is realized by extruding the arc surface 511 through the trapezoidal extrusion block 44, so as to reduce the impact.

[0081] Buffering efficiency: the rubber pad 52 absorbs 90% of the impact energy (Shore hardness 50A, compression rate 50%), and the impact force of rigid insertion is reduced by 70%.

[0082] Contact reliability: the alignment accuracy of the guide pin and the power connection guide hole is ±0.2mm (the pre-tightening force of the spring 55 is designed to be 10N), so as to ensure that the contact resistance is less than 1mΩ.

[0083] Quick connection: the time from insertion to completion of electrical connection is less than 2 seconds (spring return speed 0.5m / s).

[0084] As shown in Figure 11As shown, in this embodiment, four sensors 8 are fixedly installed on the inner walls of both sides of the power cabinet body 1, and the sensors 8 and the corresponding guide rail structures 7 are located on the same horizontal axis; and the sensors 8 are used to position the power distribution box 24.

[0085] Specifically, the sensors 8 monitor the position of the power distribution box in real time, trigger the action of the electromagnets, and realize the full-automatic process of "insertion-locking-conduction".

[0086] Working mode: when in use, the power supply and the controller 12 are turned on, the power connector 2 is inserted from the adaptive hole 111, and the two sliding rails 31 slide on the outer sides of the two guide rails 71. Since the permanent magnets 32 and the adjacent suspended magnets 73 have opposite magnetic poles, repulsion is formed between them, so that the guide rails 71 and the sliding rails 31 are suspended and slide, reducing the friction. The rolling balls 33 are in sliding connection with the inner walls of the arc-shaped grooves 72, and the rolling balls 33 can be limited when they move to the ends of the arc-shaped grooves 72. When the sensors 8 sense that the power distribution box 24 moves to the end, the two electromagnets 63 are automatically controlled to be electrified, the coils on the outer sides of the electromagnets 63 are electrified, the current flows in the positive direction, the electromagnets 63 generate magnetic attraction to the corresponding cylindrical magnets 46, the two cylindrical magnets 46 approach each other, the cylindrical magnets 46 drive the corresponding sliding plates 41 to move, the sliding plates 41 are in sliding connection with the inner walls of the two sliding openings 42 and the notches 64, the sliding balls 43 slide with the inner walls of the rolling ball grooves 65, and the friction of the sliding plates 41 is reduced. The sliding plates 41 drive the trapezoidal lock blocks 45 to enter the lock grooves 25, so that the power distribution box 24 can be locked. The sliding plates 41 extrude the arc-shaped surfaces 511 through the trapezoidal extrusion blocks 44, the two sides of the insulating plates 51 are simultaneously extruded, the insulating plates 51 push the rubber pads 52 to move, the rubber pads 52 drive the guide needles 53 to insert into the power connection guide holes 26, and the rubber pads 52 can quickly respond to realize intelligent automatic and rapid connection. The direction of the current of the coils on the outer sides of the two electromagnets 63 is reversed, so that the electromagnets 63 generate opposite magnetic poles at the positions close to the cylindrical magnets 46, the two cylindrical magnets 46 move away from each other, the two sliding plates 41 drive the two trapezoidal lock blocks 45 to move away from the two lock grooves 25, the insulating plates 51 drive the guide needles 53 to move away from the power connection guide holes 26 through the elastic force of the springs 55, and the connector is quickly disconnected. Embodiment two

[0087] This embodiment is further optimized on the basis of embodiment one, and the same parts as the foregoing technical solutions will not be described here. In order to better realize the present application, the following setting mode is particularly adopted: in this embodiment, the electromagnets 63 are provided with built-in temperature and humidity sensors, and the driving current is automatically adjusted (compensation formula: I=K1·ΔT + K2·RH, ΔT is the temperature difference, and RH is the humidity).

[0088] Specifically, the temperature and humidity sensor automatically adjusts the electromagnet current to compensate for the change in magnetic force.

[0089] Reason: to improve the stability in harsh environments (e.g. outdoor, high humidity); to support higher voltage classes (e.g. from 1 kV to 10 kV).

[0090] Parameter target: operating temperature range -40°C to +85°C; extended current carrying capability from 200 A to 500 A.

[0091] While embodiments of the application have been shown and described, it is to be understood that the embodiments described are merely divergences of the principles and spirit of the application and that numerous modifications, changes, substitutions, and alterations can be undertaken by one skilled in the art without departing from the principles and spirit of the application, which is defined by the claims as appended hereto and their equivalents.

Claims

1. A rapid configuration system for intelligent connectors in power distribution cabinets, characterized in that: include: The power cabinet (1) has a front cover (11) fixedly installed on the front side. The front cover (11) has four adapter holes (111). The inner walls on both sides of the power cabinet (1) are fixedly installed with four guide rail structures (7). The eight guide rail structures (7) are set one-to-one. Four power connectors (2) are adapted to four adapter holes (111). Slide rail structures (3) are fixedly installed on both sides of the four power connectors (2). The slide rail structures (3) are adapted to the corresponding guide rail structures (7). The partition plate (6) is fixedly installed inside the power cabinet (1). The partition plate (6) has four mating holes (61) and four notches (64) on both sides. Each of the eight notches (64) has a locking structure (4) slidably installed inside. Four sets of conductive structures (5) are installed on the inner rear wall of the power cabinet (1), corresponding one-to-one with the four mating holes (61).

2. The intelligent connector rapid configuration system for power cabinets according to claim 1, characterized in that: The power connector (2) includes a power distribution box (24), a cover plate (23) is fixedly installed on the outside of the power distribution box (24), a power connection indicator (21) is provided on the front of the cover plate (23), finger grooves (22) are provided on the top and bottom of the cover plate (23), multiple power connection holes (26) are provided on the inside of the power distribution box (24), and locking grooves (25) are provided on both sides of the power distribution box (24).

3. The power cabinet intelligent connector rapid configuration system according to claim 1, characterized in that: The slide rail structure (3) includes a slide rail (31), which is fixedly installed on the side of the power distribution box (24). Permanent magnets (32) are fixedly installed on the top inner wall and bottom inner wall of the slide rail (31), and multiple balls (33) are embedded in the inner wall of the slide rail (31).

4. The power cabinet intelligent connector rapid configuration system according to claim 3, characterized in that: The guide rail structure (7) includes a guide rail (71), which is fixedly installed on the side wall of the power cabinet (1). Suspended magnets (73) are fixedly installed on the top and bottom of the guide rail (71). An arc groove (72) is opened on the inner side of the guide rail (71). A slide rail (31) is slidably installed on the outer side of the guide rail (71). A ball (33) is slidably connected to the inner wall of the arc groove (72). The permanent magnet (32) and the adjacent suspended magnet (73) have opposite magnetic poles, and a repulsive force is formed between them, so that the guide rail (71) and the slide rail (31) are suspended and slide.

5. The intelligent connector rapid configuration system for power cabinets according to claim 1, characterized in that: The locking structure (4) includes a sliding plate (41), with sliding openings (42) at the top and bottom of the sliding plate (41). Sliding balls (43) are embedded in the inner walls of the two sliding openings (42). A cylindrical magnet (46) is fixedly installed on the inner side of the sliding plate (41). A trapezoidal extrusion block (44) and a trapezoidal locking block (45) are fixedly installed on the inner side of the sliding plate (41). The sliding openings (42) are slidably connected to the inner walls of the notches (64). Ball grooves (65) are opened on the top and bottom inner walls of the notches (64). The sliding balls (43) are slidably connected to the inner walls of the corresponding ball grooves (65).

6. The power cabinet intelligent connector rapid configuration system according to claim 5, characterized in that: Four sets of fixing blocks (62) are symmetrically fixedly installed on the inner side of the partition plate (6). Each set of fixing blocks (62) consists of two blocks and is symmetrically arranged. An electromagnet (63) is fixedly installed on the outer side of the fixing block (62). The electromagnet (63) cooperates with the corresponding cylindrical magnet (46).

7. The intelligent connector rapid configuration system for power cabinets according to claim 5, characterized in that: The trapezoidal locking block (45) has a trapezoidal structure and is adapted to the locking groove (25).

8. The intelligent connector rapid configuration system for power cabinets according to claim 2, characterized in that: The conductive structure (5) includes four slide rods (54), all of which are fixedly installed on the rear inner wall of the power cabinet (1). The same insulating plate (51) is slidably installed on each of the four slide rods (54). A rubber pad (52) is fixedly installed on the inner side of the insulating plate (51). Multiple guide pins (53) are fixedly installed on the rubber pad (52). The guide pins (53) are adapted to the corresponding electrical connection holes (26), and the rubber pad (52) is adapted to the mating hole (61).

9. The power cabinet intelligent connector rapid configuration system according to claim 8, characterized in that: Both sides of the insulating plate (51) are provided with arc-shaped surfaces (511), and the four sliding rods (54) are all fitted with springs (55). One end of the spring (55) is fixedly installed with the insulating plate (51), and the other end of the spring (55) is fixedly installed with the inner wall of the power cabinet (1). The trapezoidal extrusion block (44) is adapted to the arc-shaped surface (511).

10. The power cabinet intelligent connector rapid configuration system according to claim 9, characterized in that: Four sensors (8) are fixedly installed on the inner walls of both sides of the power cabinet (1). The sensors (8) and the corresponding guide rail structure (7) are located on the same horizontal axis.

Citation Information

Patent Citations

  • High-speed connector

    CN120073383A

  • Power supply cabinet in power system

    CN222381113U