A portable intelligent transformer outlet cabinet and a use method thereof
By introducing a cooling box and stabilizing components into the outgoing cabinet, the problems of overheating and shaking of electronic components caused by vibration were solved, achieving efficient cooling and stability, and improving the service life and operational reliability of electronic components.
Patent Information
- Application Number
- CN202510258870.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2045-03-05
AI Technical Summary
In existing outgoing line cabinets, slight vibrations during operation can cause internal parts to collide, affecting lifespan and stability.
A convenient and intelligent transformer output cabinet was designed, which adopts a cooling box, a portable installation mechanism, a stabilizing component and a heat dissipation component. The electronic components are stably fixed and cooled through structures such as lifting plates, square shells and round rods, and the circulation efficiency of coolant is improved by using condensers and elastic tubes.
It effectively prevents electronic components from overheating and shaking, improves working efficiency and stability, saves on coolant usage costs, and enhances the heat dissipation and operational stability of electronic components.
Smart Images

Figure CN120855115B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of outgoing line cabinet technology, specifically to a convenient and intelligent transformer outgoing line cabinet and its usage method. Background Technology
[0002] An incoming line cabinet is a switchgear that receives power from an external source. Generally, it receives 10kV power from the power grid, and the 10kV power is transmitted to the 10kV busbar through the switchgear. This switchgear is the incoming line cabinet. In substations with voltage levels of 35-110kV and above, the incoming line cabinet refers to the transformer low-voltage (10kV) switchgear. That is, the first cabinet connected from the low-voltage side of the transformer to the initial terminal of the 10kV busbar is called the incoming line cabinet, also known as the transformer low-voltage incoming line cabinet.
[0003] Modern outgoing line cabinets typically use clamp-on mounting for electronic components. When these components experience slight vibrations during operation, they may undergo continuous minor collisions, potentially affecting their internal parts and reducing their lifespan. Summary of the Invention
[0004] The purpose of this invention is to provide a convenient and intelligent transformer outgoing switch and its usage method to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution:
[0006] This invention relates to a convenient and intelligent transformer outgoing switch and its usage method. The switch includes an outgoing switch with a door rotatably connected to one side. A cooling box is fixedly connected to the bottom of the inner wall of the switch. It also includes a portable installation mechanism, comprising a lifting plate slidably connected to the inner wall of the cooling box. Round rods are fixedly connected to the top two sides of the lifting plate, and first springs are fixedly connected to the bottom two sides of the lifting plate. The bottoms of the first springs are fixedly connected to the bottom of the inner wall of the cooling box. A square shell is fixedly connected to the top of the round rods. A loading assembly is provided on the inner wall of the cooling box.
[0007] Furthermore, the loading assembly includes a condenser fixedly connected to the bottom of the inner wall of the cooling box, an elastic tube connected to one side of the outer wall of the cooling box, one end of the elastic tube connected to one side of the outer wall of the square shell, a square plate slidably connected to the inner wall of the square shell, a bearing frame fixedly connected to the top of the square plate, and one end of the bearing frame penetrating the square shell and extending to the outside of the square shell.
[0008] Furthermore, several round holes are opened on the bottom outer wall of the supporting shell frame, and three second springs are fixedly connected to the top of the square plate. The top of the second springs is fixedly connected to the top of the inner wall of the square shell, and a fixing plate is fixedly connected to one side of the square shell.
[0009] Further, the top of the cooling box is provided with a stabilizing assembly, the stabilizing assembly comprises a rotating plate rotatably connected to one side of the top of the cooling box, one end of the rotating plate is rotatably connected with a sliding block, the bottom of the square shell is provided with a sliding groove, and the top outer wall of the sliding block is slidably connected to the inner wall of the sliding groove.
[0010] Further, one side of the sliding block is fixedly connected with a bent rod, one end of the bent rod away from the sliding block is fixedly connected with a pressing rod, the top of the bearing shell frame is provided with a strip-shaped groove, the inner wall of the strip-shaped groove is slidably connected with a push plate, and one side of the pressing rod is in contact with one side of the push plate.
[0011] Further, one side of the push plate is provided with a heat dissipation assembly, the heat dissipation assembly comprises two first rotating rods rotatably connected to one side of the push plate, one end of the first rotating rod away from the push plate is rotatably connected with a concave shell, and the outer wall of one side of the concave shell is fixedly connected with a strip-shaped plate.
[0012] Further, the inner wall of the concave shell close to the first rotating rod is rotatably connected with a second rotating rod, the two concave shells are fixedly connected with a reset spring, one end of the second rotating rod away from the concave shell is rotatably connected with a lifting block, the side of the fixed plate close to the square shell is provided with a limiting groove, and the outer wall of one end of the lifting block is slidably connected to the inner wall of the limiting groove.
[0013] Further, the inner wall of the strip-shaped plate is provided with an auxiliary assembly, the auxiliary assembly comprises two square blocks slidably connected to the inner wall of the strip-shaped plate, one end of the square block is rotatably connected with a rotating strip, the rotating strip is provided with four, and one end of the rotating strip away from the square block is rotatably connected with a limiting rod.
[0014] Further, the bottom outer wall of the limiting rod is slidably connected to the inner wall of the strip-shaped groove, the bottom of the square block is fixedly connected with a connecting rod, and one side of the connecting rod is fixedly connected with a rubber rod.
[0015] A use method of a portable intelligent transformer outlet cabinet, comprising the following steps:
[0016] Step one: cool electronic components;
[0017] Step two: improve the cooling effect;
[0018] Step three: stabilize electronic components;
[0019] Step four: improve the accuracy of placing electronic components.
[0020] The present application has the following beneficial effects:
[0021] (1) In this invention, the condenser is started, and the condenser cools the coolant inside the cooling box. Then the cabinet door is opened, and the electronic components are placed on the top of the support frame. The weight of the electronic components themselves causes the support frame to descend. The support frame drives the square plate to descend, the square plate drives the square shell to descend, the square shell drives the round rod to descend, and the round rod drives the lifting plate to descend. During the descent of the lifting plate, the coolant inside the cooling box is squeezed and enters the interior of the elastic tube. The coolant enters the interior of the square shell through the elastic tube. Due to the setting of the round hole, the coolant enters the interior of the round hole through the square shell and enters the interior of the support frame through the round hole. This cools the electronic components on the top of the support frame, prevents the electronic components from overheating during operation, and improves the working efficiency of the electronic components. Since the square plate drives the support frame to slide inside the square shell, when the electronic components vibrate during operation, the support frame can move up and down along the inner wall of the square shell, preventing slight shaking when the electronic components vibrate and improving the stability of the electronic components during operation.
[0022] (2) In this invention, when the square plate moves slightly up and down inside the square shell, the square plate can expand and shrink the space at the top of the square shell, so that the coolant inside the cooling box flows inside the space at the top of the square shell, preventing the coolant from being stagnant and improving the cooling effect of the coolant on the electronic components. When the electronic components are disassembled, there is no pressure above the support frame. Due to the elastic deformation of the first spring, the lifting plate moves upward along the inside of the cooling box. At this time, the coolant that has entered the support frame will flow back into the cooling box. The cooling setting of the condenser will cool the flowing coolant, which facilitates the reuse of the coolant and saves working costs.
[0023] (3) In this invention, as the square shell descends, the square shell gradually approaches the top of the cooling box. Due to the setting of the sliding groove, the rotating plate at the top of the cooling box will drive the slider to slide along the inner wall of the sliding groove. The slider drives the bent rod to move, and the bent rod drives the extrusion rod to move. During the movement of the extrusion rod, it will contact the side wall of the push plate, causing the push plate to be extruded. The push plate slides along the inner wall of the strip groove. During the movement of the push plate, it will contact the electronic components at the top of the supporting shell, causing the electronic components to be extruded and the push plate to move closer to the fixed plate. When one end of the electronic component contacts the fixed plate, the electronic component can be clamped and fixed, further preventing the electronic component from shaking when the top of the supporting shell is working, and improving the working stability of the electronic component.
[0024] (4) In this invention, as the push plate and the fixed plate gradually approach each other, the push plate drives the first rotating rod to move, the first rotating rod drives the concave shell to move, the concave shell drives the second rotating rod to move, and the second rotating rod drives the lifting block to move. Due to the reaction force of the limiting groove, the two concave shells move away from each other. The concave shell drives the strip plate to move, and during the movement of the strip plate, it comes into contact with the outer wall of the electronic component, squeezing the electronic component and causing the two electronic components to move away from each other. This prevents heat accumulation when the electronic components are working close together, thus improving the heat dissipation effect of the electronic components during operation. Due to the setting of the limiting groove, when... When the supporting shell frame moves the electronic components slightly up and down, the lifting block can slide on the inner wall of the limiting groove to prevent jamming during operation and improve the stability of the device. When the two strip plates gradually move away from each other, they are limited by the limiting rod. The limiting rod drives the rotating bar to move, and the rotating bar drives the block to move along the inner wall of the strip plate. The block drives the connecting rod to move, and the connecting rod drives the rubber rod to move. During the movement of the rubber rod, it will contact the side wall of the electronic component and push the electronic component slightly, so that the electronic component and the strip plate are more stably attached, which makes it easier for the electronic component to be clamped by the push plate and the fixed plate in subsequent movements.
[0025] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0026] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0027] Figure 1 This is a top view of the overall structure of the present invention;
[0028] Figure 2 This is a cross-sectional view of the cooling box of the present invention;
[0029] Figure 3 This is a schematic diagram of the side structure of the fixing plate of the present invention;
[0030] Figure 4 This is a schematic diagram of the square shell structure of the present invention from a bottom view;
[0031] Figure 5 This is a top view of the load-bearing frame structure of the present invention;
[0032] Figure 6 This is a bottom view of the connecting rod structure of the present invention;
[0033] Figure 7 For the present invention Figure 3 Enlarged view of A in the middle;
[0034] Figure 8 For the present invention Figure 5 Enlarged view of B in the middle;
[0035] Figure 9 For the present invention Figure 6 Enlarged view of C;
[0036] Figure 10 This is a schematic diagram of the method flow of the present invention.
[0037] The attached diagram lists the components represented by each number as follows:
[0038] In the diagram: 1. Outgoing line cabinet; 2. Cabinet door; 3. Cooling box; 4. Portable mounting mechanism; 41. Lifting plate; 42. First spring; 43. Round rod; 44. Square shell; 45. Loading assembly; 46. Stabilizing assembly; 47. Heat dissipation assembly; 48. Auxiliary assembly; 451. Condenser; 452. Elastic tube; 453. Square plate; 454. Bearing frame; 455. Round hole; 456. Second spring; 457. Fixing plate; 461 462. Rotating plate; 463. Sliding block; 464. Slide groove; 465. Bending rod; 466. Extrusion rod; 467. Push plate; 471. First rotating rod; 472. Concave shell; 473. Strip plate; 474. Second rotating rod; 475. Return spring; 476. Lifting block; 477. Limiting groove; 481. Square block; 482. Rotating bar; 483. Limiting rod; 484. Connecting rod; 485. Rubber rod; 467. Strip groove. Detailed Implementation
[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0040] Example 1, please refer to Figure 1 - Figure 10 As shown, the present invention is a convenient intelligent transformer outgoing switch and its usage method, including an outgoing switch 1, a switch door 2 rotatably connected to one side of the outgoing switch 1, a cooling box 3 fixedly connected to the bottom of the inner wall of the outgoing switch 1, and also includes;
[0041] The portable installation mechanism 4 includes a lifting plate 41 that is slidably connected to the inner wall of the cooling box 3. Round rods 43 are fixedly connected to the top two sides of the lifting plate 41, and first springs 42 are fixedly connected to the bottom two sides of the lifting plate 41. The bottom of the first springs 42 is fixedly connected to the bottom of the inner wall of the cooling box 3. A square shell 44 is fixedly connected to the top of the round rods 43. A loading assembly 45 is provided on the inner wall of the cooling box 3.
[0042] The loading assembly 45 includes a condenser 451 fixedly connected to the bottom of the inner wall of the cooling tank 3. An elastic tube 452 is connected to one side of the outer wall of the cooling tank 3. One end of the elastic tube 452 is connected to one side of the outer wall of the square shell 44. A square plate 453 is slidably connected to the inner wall of the square shell 44. When the square plate 453 moves slightly up and down inside the square shell 44, it can expand and contract the space at the top of the square shell 44, thereby allowing the coolant inside the cooling tank 3 to flow within the space at the top of the square shell 44 and preventing the coolant from remaining stagnant. The cooling effect of the coolant on electronic components is improved. A support frame 454 is fixedly connected to the top of the square plate 453. One end of the support frame 454 passes through the square shell 44 and extends to the outside of the square shell 44. Since the square plate 453 drives the support frame 454 to slide inside the square shell 44, when the electronic components vibrate during operation, the support frame 454 can move up and down along the inner wall of the square shell 44 to prevent slight shaking when the electronic components vibrate, thus improving the stability of the electronic components during operation.
[0043] The bottom outer wall of the support frame 454 has several round holes 455. The condenser 451 is activated to cool the coolant inside the cooling tank 3. Then, the cabinet door 2 is opened, and the electronic components are placed on top of the support frame 454. The weight of the electronic components causes the support frame 454 to descend, which in turn lowers the square plate 453. The square plate 453 then lowers the square shell 44, which in turn lowers the round rod 43. The round rod 43 then lowers the lifting plate 41. During the descent of the lifting plate 41, the coolant inside the cooling tank 3 is squeezed, and the squeezed coolant enters the elastic tube 452. The coolant then enters the square shell 44 through the elastic tube 452. Due to the round holes 455, the coolant passes through the square shell 44 and into the round holes 455. The hole 455 enters the interior of the support frame 454 to cool the electronic components on top of the support frame 454, preventing overheating and improving their efficiency. Three second springs 456 are fixedly connected to the top of the square plate 453, and the tops of the second springs 456 are fixedly connected to the top of the inner wall of the square shell 44. A fixing plate 457 is fixedly connected to one side of the square shell 44. When the electronic components are disassembled, there is no pressure on the top of the support frame 454. Due to the elastic deformation of the first spring 42, the lifting plate 41 moves upward along the interior of the cooling box 3. At this time, the coolant that has entered the support frame 454 will flow back into the interior of the cooling box 3. The condenser 451 cools the flowing coolant, facilitating the reuse of the coolant and saving operating costs.
[0044] In Example 2, a stabilizing component 46 is provided on the top of the cooling box 3. The stabilizing component 46 includes a rotating plate 461 rotatably connected to one side of the top of the cooling box 3. A slider 462 is rotatably connected to one end of the rotating plate 461. A groove 463 is provided at the bottom of the square shell 44. The outer wall of the top end of the slider 462 is slidably connected to the inner wall of the groove 463.
[0045] A bent rod 464 is fixedly connected to one side of the slider 462. A pressing rod 465 is fixedly connected to the end of the bent rod 464 away from the slider 462. A strip groove 467 is opened on the top of the supporting shell 454. A push plate 466 is slidably connected to the inner wall of the strip groove 467. One side of the pressing rod 465 contacts one side of the push plate 466. When the square shell 44 descends, the square shell 44 gradually approaches the top of the cooling box 3. Due to the setting of the slide groove 463, the rotating plate 461 on the top of the cooling box 3 will drive the slider 462 to slide along the inner wall of the slide groove 463. The slider 462 drives the bent rod 464 to move. 4. The extrusion rod 465 is moved. During the movement of the extrusion rod 465, it will contact the side wall of the push plate 466, causing the push plate 466 to be extruded. The push plate 466 slides along the inner wall of the strip groove 467. During the movement of the push plate 466, it will contact the electronic components on the top of the support frame 454, causing the electronic components to be extruded and pushed towards the fixed plate 457. When one end of the electronic component contacts the fixed plate 457, the electronic component can be clamped and fixed, further preventing the electronic component support frame 454 from shaking during operation and improving the working stability of the electronic component.
[0046] A heat dissipation assembly 47 is provided on one side of the push plate 466. The heat dissipation assembly 47 includes two first rotating rods 471 rotatably connected to one side of the push plate 466. A concave shell 472 is rotatably connected to the end of the first rotating rod 471 away from the push plate 466. A strip plate 473 is fixedly connected to one side of the outer wall of the concave shell 472.
[0047] A second rotating rod 474 is rotatably connected to the inner wall of the concave shell 472 near the first rotating rod 471. A return spring 475 is fixedly connected between the two concave shells 472. A lifting block 476 is rotatably connected to the end of the second rotating rod 474 away from the concave shell 472. A limit groove 477 is formed on the side of the fixed plate 457 near the square shell 44. The outer wall of one end of the lifting block 476 is slidably connected to the inner wall of the limit groove 477. As the push plate 466 gradually approaches the fixed plate 457, the push plate 466 drives the first rotating rod 471 to move, and the first rotating rod 471 drives the concave shell 472 to move. The concave shell 472 moves, which in turn drives the second rotating rod 474 to move. The second rotating rod 474 then drives the lifting block 476 to move. Under the reaction force of the limiting groove 477, the two concave shells 472 move away from each other. The concave shell 472 drives the strip plate 473 to move. During the movement of the strip plate 473, it will come into contact with the outer wall of the electronic component and squeeze the electronic component, causing the two electronic components to move away from each other. This prevents the electronic components from accumulating heat when they are working together, and indirectly improves the heat dissipation effect of the electronic components during operation.
[0048] The inner wall of the strip plate 473 is provided with an auxiliary component 48. The auxiliary component 48 includes two blocks 481 that are slidably connected to both ends of the inner wall of the strip plate 473. One end of the block 481 is rotatably connected to a rotating bar 482. There are four rotating bars 482. The end of the rotating bar 482 away from the block 481 is rotatably connected to a limit rod 483.
[0049] The bottom outer wall of the limiting rod 483 is slidably connected to the inner wall of the strip groove 467. The bottom of the block 481 is fixedly connected to the connecting rod 484, and a rubber rod 485 is fixedly connected to one side of the connecting rod 484. Due to the setting of the limiting groove 477, when the supporting shell 454 drives the electronic components to move up and down slightly, the lifting block 476 can slide on the inner wall of the limiting groove 477 to prevent jamming during device operation and improve the stability of device operation. When the two strip plates 473 gradually move away from each other, they are limited by the limiting rod 483. The limiting rod 483 drives the rotating bar 482 to move, the rotating bar 482 drives the block 481 to move along the inner wall of the strip plate 473, the block 481 drives the connecting rod 484 to move, the connecting rod 484 drives the rubber rod 485 to move, the rubber rod 485 will contact the side wall of the electronic component during the movement, and push the electronic component slightly, so that the electronic component and the strip plate 473 are more stable, which makes it easier for the electronic component to be clamped by the push plate 466 and the fixing plate 457 in subsequent movements.
[0050] A convenient and intelligent transformer outgoing line cabinet usage method includes the following steps:
[0051] Step 1: Cooling electronic components;
[0052] Step 2: Improve cooling effect;
[0053] Step 3: Stabilize electronic components;
[0054] Step 4: Improve the accuracy of electronic component placement.
[0055] In use, the condenser 451 is started, and it cools the coolant inside the cooling tank 3. Then, the cabinet door 2 is opened, and the electronic components are placed on top of the support frame 454. The weight of the electronic components causes the support frame 454 to descend, which in turn lowers the square plate 453. The square plate 453 then lowers the square shell 44, which in turn lowers the round rod 43. The round rod 43 then lowers the lifting plate 41. During the descent of the lifting plate 41, the coolant inside the cooling tank 3 is compressed and forced into the elastic tube 452. The coolant then flows through the elastic tube 452 into the square shell 44, where it is subjected to... The circular hole 455 allows coolant to enter the interior of the square shell 44 through the circular hole 455 and then into the interior of the support frame 454. This coolant cools the electronic components on top of the support frame 454, preventing overheating and improving their efficiency. Since the square plate 453 drives the support frame 454 to slide inside the square shell 44, when the electronic components vibrate during operation, the support frame 454 can move up and down along the inner wall of the square shell 44, preventing slight shaking and improving the stability of the electronic components during operation.
[0056] When the square plate 453 moves slightly up and down inside the square shell 44, it can expand and shrink the space at the top of the square shell 44, allowing the coolant inside the cooling box 3 to flow in the space at the top of the square shell 44, preventing the coolant from being stagnant and improving the cooling effect of the coolant on the electronic components. After the electronic components are disassembled, there is no pressure above the support frame 454. Due to the elastic deformation of the first spring 42, the lifting plate 41 moves upward along the inside of the cooling box 3. At this time, the coolant that has entered the support frame 454 will flow back into the cooling box 3. The cooling setting of the condenser 451 will cool the flowing coolant, facilitating the reuse of the coolant and saving operating costs.
[0057] As the square shell 44 descends, it gradually approaches the top of the cooling box 3. Due to the setting of the slide groove 463, the rotating plate 461 on the top of the cooling box 3 will drive the slider 462 to slide along the inner wall of the slide groove 463. The slider 462 drives the bent rod 464 to move, and the bent rod 464 drives the pressing rod 465 to move. During the movement of the pressing rod 465, it will contact the side wall of the push plate 466, causing the push plate 466 to be pressed. The push plate 466 slides along the inner wall of the strip groove 467. During the movement of the push plate 466, it will contact the electronic components on the top of the supporting shell 454, causing the electronic components to be pressed and pushed towards the fixed plate 457. When one end of the electronic component contacts the fixed plate 457, the electronic component can be clamped and fixed, further preventing the electronic component from shaking when the top of the supporting shell 454 is working, and improving the working stability of the electronic component.
[0058] As the push plate 466 and the fixed plate 457 gradually approach each other, the push plate 466 drives the first rotating rod 471 to move, the first rotating rod 471 drives the concave shell 472 to move, the concave shell 472 drives the second rotating rod 474 to move, and the second rotating rod 474 drives the lifting block 476 to move. Due to the reaction force of the limiting groove 477, the two concave shells 472 move away from each other. The concave shell 472 drives the strip plate 473 to move. During the movement of the strip plate 473, it will contact the outer wall of the electronic component, squeezing the electronic component and causing the two electronic components to move away from each other. This prevents heat accumulation when the electronic components are working close together, thus improving the heat dissipation effect of the electronic components during operation. Due to the setting of the limiting groove 477, when the supporting shell 454... When the electronic component is moved slightly up and down, the lifting block 476 can slide on the inner wall of the limiting groove 477 to prevent jamming during operation and improve the stability of the device. When the two strip plates 473 gradually move away from each other, they are limited by the limiting rod 483. The limiting rod 483 drives the rotating bar 482 to move. The rotating bar 482 drives the block 481 to move along the inner wall of the strip plate 473. The block 481 drives the connecting rod 484 to move. The connecting rod 484 drives the rubber rod 485 to move. During the movement of the rubber rod 485, it will contact the side wall of the electronic component and push the electronic component slightly, so that the electronic component and the strip plate 473 are more stably attached, which makes it easier for the electronic component to be clamped by the push plate 466 and the fixing plate 457 in subsequent movements.
[0059] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.
Claims
1. A convenient and intelligent transformer outgoing line cabinet, characterized in that: Including outgoing line cabinet (1), one side of outgoing line cabinet (1) is rotatably connected with cabinet door (2), the inner wall bottom of outgoing line cabinet (1) is fixedly connected with cooling box (3), further including; Portable mounting mechanism (4), the portable mounting mechanism (4) includes the lifting plate (41) of sliding connection in the inner wall of cooling box (3), the top both sides of lifting plate (41) are fixedly connected with round bar (43), the bottom both sides of lifting plate (41) are fixedly connected with first spring (42), the bottom of first spring (42) is fixedly connected in the inner wall bottom of cooling box (3), the top of round bar (43) is fixedly connected with square shell (44), the inner wall of cooling box (3) is provided with loading assembly (45); The loading assembly (45) includes the condenser (451) of fixedly connected in the inner wall bottom of cooling box (3), the outer wall of cooling box (3) one side is communicated with elastic tube (452), one end of elastic tube (452) is communicated in the outer wall one side of square shell (44), the inner wall of square shell (44) is slidably connected with square plate (453), the top of square plate (453) is fixedly connected with bearing shell frame (454), one end of bearing shell frame (454) penetrates square shell (44) and extends to the outside of square shell (44); The bottom end outer wall of bearing shell frame (454) is respectively provided with a plurality of round holes (455), the top of square plate (453) is respectively fixedly connected with three second springs (456), the top of second spring (456) is fixedly connected in the inner wall top of square shell (44), one side of square shell (44) is fixedly connected with fixed plate (457).
2. The portable intelligent transformer outlet cabinet according to claim 1, characterized in that: The top of cooling box (3) is provided with stabilizing assembly (46), the stabilizing assembly (46) includes the rotating plate (461) of rotatably connected in the top one side of cooling box (3), one end of rotating plate (461) is rotatably connected with sliding block (462), the bottom of square shell (44) is provided with sliding slot (463), the top end outer wall of sliding block (462) is slidably connected in the inner wall of sliding slot (463).
3. The portable intelligent transformer outlet cabinet according to claim 2, characterized in that: One side of sliding block (462) is fixedly connected with bent rod (464), one end of bent rod (464) away from sliding block (462) is fixedly connected with extrusion rod (465), the top of bearing shell frame (454) is provided with strip-shaped groove (467), the inner wall of strip-shaped groove (467) is slidably connected with push plate (466), one side of extrusion rod (465) is in contact with the one side of push plate (466) arranged.
4. The portable intelligent transformer outlet cabinet according to claim 3, characterized in that: One side of push plate (466) is provided with heat dissipation assembly (47), the heat dissipation assembly (47) includes the two first rotating rods (471) of rotatably connected in one side of push plate (466), one end of first rotating rod (471) away from push plate (466) is rotatably connected with concave shell (472), the outer wall one side of concave shell (472) is fixedly connected with strip-shaped plate (473).
5. The portable intelligent transformer outlet cabinet according to claim 4, characterized in that: The concave shell (472) is rotationally connected with the second rotating rod (474) near the inner wall side of the first rotating rod (471), two concave shells (472) are fixedly connected with the reset spring (475), one end of the second rotating rod (474) away from the concave shell (472) is rotationally connected with the lifting block (476), the fixed plate (457) is provided with the limiting groove (477) near the side of the square shell (44), and one end of the lifting block (476) is slidably connected to the inner wall of the limiting groove (477).
6. The portable intelligent transformer outlet cabinet according to claim 5, characterized in that: The inner wall of the strip-shaped plate (473) is provided with an auxiliary assembly (48), the auxiliary assembly (48) comprises two blocks (481) slidably connected to the inner wall of the strip-shaped plate (473) at both ends, one end of the block (481) is rotationally connected with a rotating rod (482), the rotating rod (482) is provided with four, and one end of the rotating rod (482) away from the block (481) is rotationally connected with a limiting rod (483).
7. The portable intelligent transformer outlet cabinet according to claim 6, characterized in that: The bottom end of the limiting rod (483) is slidably connected to the inner wall of the strip-shaped groove (467), the bottom of the block (481) is fixedly connected with a connecting rod (484), and one side of the connecting rod (484) is fixedly connected with a rubber rod (485).
Citation Information
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