Transformer convenient to assemble

The linkage design of the docking seat and rotating claw solves the problem of unstable transformer assembly, realizes a fast and stable assembly process, and improves efficiency and safety.

CN120998636APending Publication Date: 2025-11-21CHONGQING BANGXING ELECTRIC CO LTD
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Patent Information

Application Number
CN202511136297.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-14
Publication Date
2025-11-21

AI Technical Summary

Technical Problem

The existing transformers cannot be stably installed by relying on clamps and slots during the assembly process. They are prone to loosening and shaking, resulting in low assembly efficiency.

Method used

The design incorporates components such as docking seats, mounting plates, linkage units, and rotating claws. Through the cooperation of the linkage unit and rotating claws, the high-voltage terminals and the fan can be quickly docked and reinforced, ensuring assembly stability.

Benefits of technology

This improved the assembly efficiency and stability of the transformer, reduced the risk of loosening and shaking, shortened the construction time, and lowered safety risks and labor and material costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of transformers, in particular to a transformer convenient to assemble, which comprises a transformer body, two butt joint seats, two mounting plates, a plurality of high-voltage terminals, a fan and two mounting assemblies, and each mounting assembly comprises a fixed push block, two linkage units, two transverse movable rods, two jacking inclined blocks and two rotary hook claws. The butt joint seat is provided with a butt joint groove, the linkage unit enables the transverse movable rod to transversely stretch out towards the two sides of the mounting plate, the rotary hook claw stretches out of the butt joint seat, meanwhile, due to movement of the transverse movable rod, the rotary hook claw is finally in contact with the jacking inclined block, and the jacking inclined block activates the rotary hook claw to enable the rotary hook claw to rotate downwards and finally grasp the outer side of the butt joint seat. Therefore, when the high-voltage terminal and the fan are installed, only the installation plate and the butt joint seat need to be aligned and attached, the outer side of the butt joint seat can be grabbed by rotating the hook claw, then reinforcement and limiting are carried out while butt joint is completed, the assembling efficiency is improved, and the assembling stability is guaranteed.
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Description

Technical Field

[0001] This invention relates to the field of transformer technology, and more particularly to a transformer that is easy to assemble. Background Technology

[0002] As a key component in power systems for voltage regulation and efficient power transmission and distribution, transformers operate based on the phenomenon of electromagnetic induction. Through electromagnetic coupling between the primary and secondary coils, they achieve voltage transformation. In practical applications, ease of assembly is crucial for transformers, effectively shortening construction time and reducing safety risks and manpower and material costs that may arise from prolonged construction.

[0003] In the aforementioned prior art, quick assembly is usually achieved by setting a clip or slot on the transformer. However, relying solely on clips or slots cannot achieve stable installation, and the transformer is prone to loosening and shaking. In order to improve stability, it is unavoidable to add the process of rotating bolts, which reduces the efficiency of transformer assembly. Therefore, it is impossible to ensure both the stability of transformer assembly and the efficiency of assembly. Summary of the Invention

[0004] The purpose of this invention is to provide a transformer that is easy to assemble, solving the problem that in the prior art, fast assembly is usually achieved by setting blocks or slots on the transformer, but relying solely on blocks or slots cannot achieve stable installation and is prone to loosening and shaking. In order to improve stability, it is unavoidable to add the process of rotating bolts, which reduces the efficiency of transformer assembly. Therefore, it is impossible to ensure both the stability of transformer assembly and the efficiency of assembly.

[0005] To achieve the above objectives, the present invention provides a transformer that is easy to assemble, comprising a transformer body, two docking seats, two mounting plates, multiple high-voltage terminals, a fan, and two mounting components. The two docking seats are symmetrically arranged at both ends of the transformer body, and the multiple high-voltage terminals and the fan are respectively arranged on the corresponding mounting plates. The mounting assembly includes a fixed push block, two linkage units, two transverse movable rods, two jacking inclined blocks, and two rotating claws. The docking seat has a docking slot, the fixed push block is disposed inside the docking slot, the mounting plate is adapted to the docking slot, the two linkage units are symmetrically disposed inside the mounting plate, the two transverse movable rods are respectively disposed on the corresponding linkage units, the two jacking inclined blocks are sequentially disposed on one side of the docking seat, and the two rotating claws are rotatably connected to the corresponding transverse movable rods.

[0006] The linkage unit includes a housing, a lifting plate, two lifting linkage rods, and two lifting return springs. The housing is fixedly connected to the mounting plate and located on one side of the mounting plate. The mounting plate has a docking groove, two docking compartments, and multiple linkage slide grooves. The two lifting linkage rods are slidably connected to their corresponding linkage slide grooves. One end of each of the two lifting linkage rods is fixedly connected to the lifting plate, which is located above the fixed push block. The other ends of each of the two lifting linkage rods are located inside the docking compartments. The two ends of each of the two lifting return springs are movably connected to the corresponding lifting linkage rod and the inner wall of the docking compartment, respectively.

[0007] The linkage unit further includes a transverse inclined plate, two transverse rebound springs, and a hook locking mechanism. The other end of the lifting linkage rod is in contact with the inclined surface of the transverse inclined plate. The transverse inclined plate is located inside the docking compartment and the outer shell. The transverse movable rod is slidably connected to the outer shell. One end of the transverse movable rod is fixedly connected to the transverse inclined plate, and the other end of the transverse movable rod is rotatably connected to the rotating hook. The hook locking mechanism is located at the other end of the transverse movable rod. The two ends of the two transverse rebound springs are respectively movably connected to the inner wall of the outer shell and the transverse inclined plate.

[0008] The hook locking mechanism includes a hook locking frame, a hook locking block, and a hook locking return spring. The hook locking frame is slidably connected to the transverse movable rod and is sleeved on the outside of the transverse movable rod. The hook locking block is disposed on one side of the hook locking frame. The rotating hook has a locking groove. The two ends of the hook locking return spring are movably connected to the hook locking frame and one side of the transverse movable rod, respectively.

[0009] The hook locking mechanism further includes a hook locking telescopic rod and two torsion springs. The two ends of the hook locking telescopic rod are fixedly connected to the hook locking frame and the transverse movable rod, respectively. The hook locking rebound spring is sleeved on the outside of the hook locking telescopic rod.

[0010] The installation assembly further includes two claw reinforcement units, which are respectively disposed inside the corresponding claw and the docking seat; The hook reinforcement unit includes a movable inclined block, a hook reinforcement mechanism, and a movable inclined block release mechanism. The docking seat also has an expansion groove. The movable inclined block is slidably connected to the expansion groove. The hook reinforcement mechanism is disposed inside the expansion groove and connected to the movable inclined block. The movable inclined block release mechanism is disposed on the rotating hook.

[0011] The hook reinforcement mechanism includes multiple hook limiting rods, a connecting plate, a first lever, a sliding plate, and a sliding plate limiting component. The rotating hook has multiple limiting holes. One end of each of the multiple hook limiting rods passes through the expansion groove and is adapted to the corresponding limiting hole. The other end of each of the multiple hook limiting rods is fixedly connected to the connecting plate. The docking seat also has a first lever slide groove. The first lever is slidably connected to the first lever slide groove. One end of the first lever is fixedly connected to the connecting plate. One end of the sliding plate is fixedly connected to the connecting plate. The sliding plate limiting component is located above the movable inclined block.

[0012] The sliding plate limiting component includes a sliding plate limiting block, a lifting frame, and a lifting frame return spring. The lifting frame is fixedly connected to the movable inclined block and is sleeved on the outside of the sliding plate. The sliding plate limiting block is disposed on the inner wall of the lifting frame. The sliding plate has two limiting grooves, and the sliding plate limiting block and the limiting grooves are mutually adapted. The two ends of the lifting frame return spring are respectively movably connected to the inner wall of the expansion groove and the lifting frame.

[0013] The sliding plate limiting component further includes a sliding plate ejection spring and a buffer damping rod. The two ends of the sliding plate ejection spring are movably connected to the other end of the sliding plate and the inner sidewall of the expansion groove, respectively. The two ends of the buffer damping rod are fixedly connected to the other end of the sliding plate and the inner sidewall of the expansion groove, respectively. The sliding plate ejection spring is sleeved on the outside of the buffer damping rod.

[0014] The movable inclined block release mechanism includes a release slider, a release slider return spring, and a second lever. The rotating pawl has a release groove and a second lever groove. The release slider is slidably connected to the release groove. The two ends of the release slider return spring are movably connected to the inner walls of the release slider and the release groove, respectively. The second lever is slidably connected to the second lever groove. One end of the second lever is fixedly connected to the release slider. The release slider and the movable inclined block abut against each other.

[0015] This invention provides a transformer that is easy to assemble. When assembling the high-voltage terminal and the fan with the transformer body, the operator moves the mounting plate to fit it with the docking slot. Simultaneously, the fixed push block is inserted into the mounting plate, which drives two linkage units. The linkage units cause the lateral movable rod to extend laterally to both sides of the mounting plate, allowing the rotating claw to extend beyond the docking seat. Due to the movement of the lateral movable rod, it eventually contacts the jacking inclined block, which activates the rotating claw, causing it to rotate downwards and ultimately grip the outside of the docking seat. Thus, when installing the high-voltage terminal and the fan, it is only necessary to align and fit the mounting plate and the docking seat. The rotating claw can then grip the outside of the docking seat, thereby completing the docking while simultaneously reinforcing and limiting its position. This improves assembly efficiency and ensures assembly stability. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.

[0017] Figure 1 This is a schematic diagram of the easily assembled transformer of the present invention.

[0018] Figure 2 This is a bottom view of the transformer of the present invention, which is easy to assemble.

[0019] Figure 3 This is a cross-sectional view of the transformer of the present invention, which is easy to assemble.

[0020] Figure 4 This is the invention Figure 1 Enlarged view of the local structure at point A.

[0021] Figure 5 This is the invention Figure 2 Enlarged view of the local structure at point B.

[0022] Figure 6 This is the invention Figure 3 Enlarged view of the local structure at point C.

[0023] Figure 7 This is a cross-sectional view of the docking seat of the present invention.

[0024] Figure 8 This is a diagram of the internal structure of the expansion slot of the present invention.

[0025] 1-Transformer body, 2-Matching seat, 3-Mounting plate, 4-High voltage terminal, 5-Fan, 6-Fixed push block, 7-Horizontal movable rod, 8-Pushing inclined block, 9-Rotating hook, 10-Matching slot, 11-Shell, 12-Lifting plate, 13-Lifting linkage rod, 14-Lifting return spring, 15-Matching groove, 16-Matching compartment, 17-Linkage slide, 18-Horizontal inclined plate, 19-Horizontal return spring, 20-Hook locking frame, 21-Hook locking block, 22-Hook locking return spring, 23-Locking groove, 2 4-Claw locking telescopic rod, 25-Torsion spring, 26-Modible inclined block, 27-Expansion groove, 28-Claw limiting rod, 29-Connecting plate, 30-First lever, 31-Sliding plate, 32-Limiting hole, 33-First lever groove, 34-Sliding plate limiting block, 35-Lifting frame, 36-Lifting frame return spring, 37-Limiting groove, 38-Sliding plate pop-out spring, 39-Buffer damping rod, 40-Release slider, 41-Release slider return spring, 42-Second lever, 43-Release groove, 44-Second lever groove. Detailed Implementation

[0026] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.

[0027] This invention provides a transformer that is easy to assemble, comprising a transformer body 1, two docking seats 2, two mounting plates 3, multiple high-voltage terminals 4, a fan 5, and two mounting components. Each mounting component includes a fixed push block 6, two linkage units, two transverse movable rods 7, two jacking inclined blocks 8, and two rotating claws 9. The docking seats 2 have docking slots 10. Each linkage unit includes a housing 11, a lifting plate 12, two lifting linkage rods 13, and two lifting return springs 14. The linkage unit also includes a transverse inclined plate 18, two transverse return springs 19, and a claw locking mechanism. The claw locking mechanism includes a claw locking frame 20, a claw locking block 21, and a claw locking return spring 22. The claw locking mechanism also includes a claw locking mechanism. The mounting assembly includes a telescopic rod 24 and two torsion springs 25. It also includes two claw reinforcement units, each comprising a movable inclined block 26, a claw reinforcement mechanism, and a movable inclined block release mechanism. The docking seat 2 further includes an expansion slot 27. The claw reinforcement mechanism includes multiple claw limiting rods 28, a connecting plate 29, a first lever 30, a sliding plate 31, and a sliding plate limiting component. The rotating claw 9 has multiple limiting holes 32. The sliding plate limiting component includes a sliding plate limiting block 34, a lifting frame 35, and a lifting frame return spring 36. The sliding plate limiting component also includes a sliding plate ejection spring 38 and a buffer damping rod 39. The movable inclined block release mechanism includes a release slider 40, a release slider return spring 41, and a second lever 42.

[0028] Please refer to Figures 1 to 3 Two docking seats 2 are symmetrically arranged at both ends of the transformer body 1. Multiple high-voltage terminals 4 and the fan 5 are respectively arranged on the corresponding mounting plates 3. The docking seat 2 has a docking slot 10. The fixed push block 6 is arranged inside the docking slot 10. The mounting plate 3 is adapted to the docking slot 10. Two linkage units are symmetrically arranged inside the mounting plate 3. Two transverse movable rods 7 are respectively arranged on the corresponding linkage units. Two jacking inclined blocks 8 are arranged sequentially on one side of the docking seat 2. Two rotating claws 9 are rotatably connected to the corresponding transverse movable rods 7. When the high-voltage terminal 4 and the fan 5 need to be connected and assembled with the transformer body 1: the operator moves the mounting plate 3 to fit the mounting plate 3 with the docking slot 10, and at the same time the fixed push block 6 is inserted into the mounting plate 3. Thus, the fixed push block 6 drives the two linkage units to operate. The linkage units cause the transverse movable rod 7 to extend laterally to both sides of the mounting plate 3, so that the rotating claw 9 extends out of the docking seat 2. At the same time, due to the movement of the transverse movable rod 7, it finally contacts the jacking inclined block 8. The jacking inclined block 8 activates the rotating claw 9, causing it to rotate downward and finally grab the outside of the docking seat 2. In addition, the mounting plate 3 of this application can not only install the high-voltage terminal 4 and the fan 5, but also expand to install other transformer-related accessories and equipment, thereby realizing the rapid assembly of the transformer.

[0029] Secondly, please refer to Figures 3 to 7The outer shell 11 is fixedly connected to the mounting plate 3 and is located on one side of the mounting plate 3. The mounting plate 3 has a docking groove 15, two docking chambers 16 and multiple linkage slide grooves 17. The two lifting linkage rods 13 are slidably connected to the corresponding linkage slide grooves 17. One end of each of the two lifting linkage rods 13 is fixedly connected to the lifting plate 12. The lifting plate 12 is located above the fixed push block 6. The other ends of each of the two lifting linkage rods 13 are located inside the docking chambers 16. The two ends of each of the two lifting rebound springs 14 are movably connected to the corresponding lifting linkage rods 13 and the inner walls of the docking chambers 16. The outer casing 11 is used to support the transverse movable rod 7 and the transverse inclined plate 18. When the mounting plate 3 enters the docking slot 10, the fixed push block 6 also inserts into the docking groove 15, thereby pushing the lifting plate 12 to move. The lifting plate 12 drives the lifting linkage rod 13 to slide in the linkage slide groove 17, thereby pushing the subsequent transverse inclined plate 18 to move. When disassembling, the fixed push block 6 disengages from the docking groove 15. At this time, the lifting return spring 14 rebounds, driving the lifting linkage rod 13 and the lifting plate 12 to reset.

[0030] Please also see Figures 3 to 7 The other end of the lifting linkage rod 13 is in contact with the inclined surface of the transverse inclined plate 18. The transverse inclined plate 18 is located inside the docking chamber 16 and the outer shell 11. The transverse movable rod 7 is slidably connected to the outer shell 11. One end of the transverse movable rod 7 is fixedly connected to the transverse inclined plate 18. The other end of the transverse movable rod 7 is rotatably connected to the rotating claw 9. The claw locking mechanism is located at the other end of the transverse movable rod 7. The two ends of the two transverse rebound springs 19 are respectively movably connected to the inner wall of the outer shell 11 and the transverse inclined plate 18. When the lifting linkage rod 13 slides, it contacts the inclined surface of the transverse inclined plate 18, thereby pushing it to slide within the outer casing 11. This ultimately drives the transverse movable rod 7 to slide towards both sides of the mounting plate 3. When the transverse movable rod 7 slides, it contacts the hook locking mechanism. As the rotating hook 9 moves to the outside of the docking seat 2, the limiting position of the rotating hook 9 is released, causing the rotating hook 9 to rotate downward and grab the outside of the docking seat 2. Furthermore, when the mounting plate 3 and the docking seat 2 separate, the transverse rebound spring 19 rebounds, causing the transverse movable rod 7 and the rotating hook 9 to retract, thereby reducing the space occupied and facilitating storage and movement.

[0031] Additionally, please see Figures 3 to 6The hook locking frame 20 is slidably connected to the transverse movable rod 7. The hook locking frame 20 is sleeved on the outside of the transverse movable rod 7. The hook locking block 21 is disposed on one side of the hook locking frame 20. The rotating hook 9 has a locking groove 23. The two ends of the hook locking rebound spring 22 are movably connected to the hook locking frame 20 and one side of the transverse movable rod 7, respectively. When the lateral movable rod 7 moves laterally to the outside of the mounting plate 3, the hook locking frame 20 first contacts the inclined surface of the jacking block 8, and then the hook locking frame 20 is pushed upward and slides, causing the hook locking block 21 to disengage from the locking groove 23. At this time, under the action of the torsion spring 25, the rotating hook 9 rotates downward and grabs the outside of the docking seat 2. When it is necessary to store it, the operator manually rotates the rotating hook 9 to reset it, and then pushes the lateral movable rod 7 to retract back to the outer shell 11, so that the hook locking block 21 is realigned with the locking groove 23. At this time, the hook locking frame 20 also leaves the jacking block 8, and then the hook locking return spring 22 rebounds, causing the hook locking frame 20 and the hook locking block 21 to rebound. The hook locking block 21 enters the locking groove 23 to limit the rotation hook 9.

[0032] Then, please see Figure 4 The two ends of the hook locking telescopic rod 24 are fixedly connected to the hook locking frame 20 and the transverse movable rod 7, respectively, and the hook locking rebound spring 22 is sleeved on the outside of the hook locking telescopic rod 24. When the hook locking frame 20 slides up and down, the hook locking telescopic rod 24 extends and retracts accordingly to maintain stability.

[0033] Please see again. Figures 6 to 8 Two hook-claw reinforcement units are respectively disposed inside the corresponding hook and the docking seat 2; the docking seat 2 also has an expansion groove 27, the movable inclined block 26 is slidably connected to the expansion groove 27, the hook-claw reinforcement mechanism is disposed inside the expansion groove 27 and connected to the movable inclined block 26, and the movable inclined block release mechanism is disposed on the rotating hook 9. After the rotating hook 9 grips the outside of the docking seat 2, it will push the movable inclined block 26 to slide, so that the movable inclined block 26 enters the expansion groove 27, thereby causing the hook-claw reinforcement mechanism and the movable inclined block release mechanism to operate, thereby reinforcing the rotating hook 9 and further improving the docking stability of the mounting plate 3 and the docking seat 2.

[0034] And please see Figures 6 to 8The rotating claw 9 has multiple limiting holes 32, and one end of each of the multiple claw limiting rods 28 passes through the expansion groove 27 and is adapted to the corresponding limiting hole 32. The other end of each of the multiple claw limiting rods 28 is fixedly connected to the connecting plate 29. The docking seat 2 also has a first lever slide groove 33. The first lever 30 is slidably connected to the first lever slide groove 33. One end of the first lever 30 is fixedly connected to the connecting plate 29. One end of the sliding plate 31 is fixedly connected to the connecting plate 29. The sliding plate limiting component is disposed above the movable inclined block 26. After the rotating claw 9 drives the movable inclined block 26 to slide, the sliding plate limiting component releases its restriction on the sliding plate 31. At this time, the sliding plate 31 slides, driving the connecting plate 29 to move, so that the multiple claw limiting rods 28 enter the multiple limiting holes 32, thereby limiting and reinforcing the rotating claw 9. In addition, when it is necessary to release the reinforcement, the first lever 30 is moved to slide in the first lever groove 33, thereby driving the connecting plate 29 and the multiple claw limiting rods 28 to move, so that the claw limiting rods 28 can disengage from the limiting holes 32.

[0035] Therefore, please refer to Figures 6 to 8 The lifting frame 35 is fixedly connected to the movable inclined block 26. The lifting frame 35 is sleeved on the outside of the sliding plate 31. The sliding plate limiting block 34 is disposed on the inner wall of the lifting frame 35. The sliding plate 31 has two limiting grooves 37. The sliding plate limiting block 34 is adapted to the limiting grooves 37. The two ends of the lifting frame return spring 36 are respectively movably connected to the inner wall of the expansion groove 27 and the lifting frame 35. When the movable inclined block 26 is pushed, it drives the lifting frame 35 to slide in the expansion groove 27, thereby driving the sliding plate limiting block 34 to disengage from the limiting groove 37. In addition, after the rotating claw 9 is removed, the lifting block return spring can drive the lifting frame 35 to reset, thereby driving the sliding plate limiting block 34 to re-enter the limiting groove 37 to limit the sliding plate 31.

[0036] Furthermore, please refer to Figures 6 to 8The two ends of the sliding plate ejection spring 38 are movably connected to the other end of the sliding plate 31 and the inner wall of the expansion groove 27, respectively. The two ends of the buffer damping rod 39 are fixedly connected to the other end of the sliding plate 31 and the inner wall of the expansion groove 27, respectively. The sliding plate ejection spring 38 is sleeved on the outside of the buffer damping rod 39. When the sliding plate limiting block 34 disengages from the limiting groove 37, the sliding plate ejection spring 38 drives the sliding plate 31 to move, and finally drives the hook limiting rod 28 into the limiting hole 32. At the same time, the buffer damping rod 39 slows down the rebound speed to prevent the hook limiting rod 28 from ejecting before the rotating hook 9 fully grips the docking seat 2.

[0037] Finally, please see Figures 6 to 8 The rotating claw 9 has a release groove 43 and a second lever groove 44. The release slider 40 is slidably connected to the release groove 43. The two ends of the release slider return spring 41 are movably connected to the inner walls of the release slider 40 and the release groove 43, respectively. The second lever 42 is slidably connected to the second lever groove 44. One end of the second lever 42 is fixedly connected to the release slider 40. The release slider 40 and the movable inclined block 26 abut against each other. After the claw limiting rod 28 reinforces the rotating claw 9, the operator can also move the second lever 42 to slide in the second lever groove 44, causing the release slider 40 to slide in the release groove 43. The release slider 40 moves away from one end of the movable inclined block 26, and then the movable inclined block 26 rebounds, driving the sliding plate limiting block 34 into another limiting groove 37, thereby limiting the sliding plate 31 again and improving the stability of the claw limiting rod 28 in the limiting hole 32. Simultaneously, after releasing the second lever 42, the force of the release slider reset spring 41 is less than the force of the movable inclined block 26, which is insufficient to push the movable inclined block 26 into the expansion groove 27, thus preventing the movable inclined block 26 from loosening; when the rotating claw 9 moves away, the release slider reset spring 41 can drive the release slider 40 to reset, so that when the rotating claw 9 grabs the outside of the docking seat 2 next time, it will push the movable inclined block 26 to retract again.

[0038] When using the easily assembled transformer of this embodiment, it is necessary to assemble the high-voltage terminal 4 and the fan 5 with the transformer body 1: the operator moves the mounting plate 3, and when the mounting plate 3 enters the docking slot 10, the fixed push block 6 also inserts into the docking groove 15, thereby pushing the lifting plate 12 to move. The lifting plate 12 drives the lifting linkage rod 13 to slide in the linkage slide groove 17. The lifting linkage rod 13 contacts the inclined surface of the transverse inclined plate 18, thereby pushing it to slide in the outer shell 11, and finally driving the transverse movable rod 7 to slide to both sides of the mounting plate 3; when the transverse movable rod 7 slides, the hook locking frame 20... First, the hook 9 contacts the inclined surface of the jacking block 8, and then the hook locking frame 20 is pushed upward and slides, causing the hook locking block 21 to disengage from the locking groove 23. At this time, under the action of the torsion spring 25, the rotating hook 9 rotates downward and grabs the outside of the docking seat 2 to complete the reinforcement. After the rotating hook 9 grabs the outside of the docking seat 2, it pushes the movable jacking block 26 to slide into the expansion groove 27, thereby making the hook reinforcement mechanism and the movable jacking block release mechanism operate. The hook limit rod 28 enters the limit hole 32 to reinforce the rotating hook 9, preventing it from loosening after grabbing the docking seat 2, and further improving the stability of the transformer assembly. With the above structural design, when installing the high-voltage terminal 4 and the fan 5, it is only necessary to align and fit the mounting plate 3 and the docking seat 2 together. The rotating claw 9 can then grasp the outer side of the docking seat 2, thereby completing the docking while reinforcing and limiting the position. This improves assembly efficiency and ensures assembly stability.

[0039] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.

Claims

1. A transformer that is easy to assemble, comprising a transformer body, two mating seats, two mounting plates, multiple high-voltage terminals, and a fan, wherein the two mating seats are symmetrically arranged at both ends of the transformer body, and the multiple high-voltage terminals and the fan are respectively arranged on the corresponding mounting plates, characterized in that, It also includes two installation components; The mounting assembly includes a fixed push block, two linkage units, two transverse movable rods, two jacking inclined blocks, and two rotating claws. The docking seat has a docking slot, the fixed push block is disposed inside the docking slot, the mounting plate is adapted to the docking slot, the two linkage units are symmetrically disposed inside the mounting plate, the two transverse movable rods are respectively disposed on the corresponding linkage units, the two jacking inclined blocks are sequentially disposed on one side of the docking seat, and the two rotating claws are rotatably connected to the corresponding transverse movable rods.

2. The easily assembled transformer as described in claim 1, characterized in that, The linkage unit includes a housing, a lifting plate, two lifting linkage rods, and two lifting return springs. The housing is fixedly connected to the mounting plate and located on one side of the mounting plate. The mounting plate has a docking groove, two docking compartments, and multiple linkage slide grooves. The two lifting linkage rods are slidably connected to their corresponding linkage slide grooves. One end of each of the two lifting linkage rods is fixedly connected to the lifting plate, which is located above the fixed push block. The other ends of each of the two lifting linkage rods are located inside the docking compartments. The two ends of each of the two lifting return springs are movably connected to the corresponding lifting linkage rod and the inner wall of the docking compartment, respectively.

3. The easily assembled transformer as described in claim 2, characterized in that, The linkage unit also includes a transverse inclined plate, two transverse rebound springs, and a hook locking mechanism. The other end of the lifting linkage rod is in contact with the inclined surface of the transverse inclined plate. The transverse inclined plate is located inside the docking compartment and the outer shell. The transverse movable rod is slidably connected to the outer shell. One end of the transverse movable rod is fixedly connected to the transverse inclined plate, and the other end of the transverse movable rod is rotatably connected to the rotating hook. The hook locking mechanism is located at the other end of the transverse movable rod. The two ends of the two transverse rebound springs are respectively movably connected to the inner wall of the outer shell and the transverse inclined plate.

4. The easily assembled transformer as described in claim 3, characterized in that, The hook locking mechanism includes a hook locking frame, a hook locking block, and a hook locking return spring. The hook locking frame is slidably connected to the transverse movable rod and is sleeved on the outside of the transverse movable rod. The hook locking block is disposed on one side of the hook locking frame. The rotating hook has a locking groove. The two ends of the hook locking return spring are movably connected to the hook locking frame and one side of the transverse movable rod, respectively.

5. The easily assembled transformer as described in claim 4, characterized in that, The hook locking mechanism also includes a hook locking telescopic rod and two torsion springs. The two ends of the hook locking telescopic rod are fixedly connected to the hook locking frame and the transverse movable rod, respectively. The hook locking rebound spring is sleeved on the outside of the hook locking telescopic rod.

6. The easily assembled transformer as described in claim 5, characterized in that, The mounting assembly also includes two hook reinforcement units, which are respectively disposed inside the corresponding hook and the docking seat; The hook reinforcement unit includes a movable inclined block, a hook reinforcement mechanism, and a movable inclined block release mechanism. The docking seat also has an expansion groove. The movable inclined block is slidably connected to the expansion groove. The hook reinforcement mechanism is disposed inside the expansion groove and connected to the movable inclined block. The movable inclined block release mechanism is disposed on the rotating hook.

7. The easily assembled transformer as described in claim 6, characterized in that, The hook reinforcement mechanism includes multiple hook limiting rods, a connecting plate, a first lever, a sliding plate, and a sliding plate limiting component. The rotating hook has multiple limiting holes. One end of each of the multiple hook limiting rods passes through the expansion groove and is adapted to the corresponding limiting hole. The other end of each of the multiple hook limiting rods is fixedly connected to the connecting plate. The docking seat also has a first lever slide groove. The first lever is slidably connected to the first lever slide groove. One end of the first lever is fixedly connected to the connecting plate. One end of the sliding plate is fixedly connected to the connecting plate. The sliding plate limiting component is disposed above the movable inclined block.

8. The easily assembled transformer as described in claim 7, characterized in that, The sliding plate limiting component includes a sliding plate limiting block, a lifting frame, and a lifting frame return spring. The lifting frame is fixedly connected to the movable inclined block and is sleeved on the outside of the sliding plate. The sliding plate limiting block is disposed on the inner wall of the lifting frame. The sliding plate has two limiting grooves, and the sliding plate limiting block and the limiting grooves are mutually adapted. The two ends of the lifting frame return spring are respectively movably connected to the inner wall of the expansion groove and the lifting frame.

9. The easily assembled transformer as described in claim 8, characterized in that, The sliding plate limiting component also includes a sliding plate ejection spring and a buffer damping rod. The two ends of the sliding plate ejection spring are movably connected to the other end of the sliding plate and the inner sidewall of the expansion groove, respectively. The two ends of the buffer damping rod are fixedly connected to the other end of the sliding plate and the inner sidewall of the expansion groove, respectively. The sliding plate ejection spring is sleeved on the outside of the buffer damping rod.

10. The easily assembled transformer as described in claim 9, characterized in that, The movable inclined block release mechanism includes a release slider, a release slider return spring, and a second lever. The rotating pawl has a release groove and a second lever groove. The release slider is slidably connected to the release groove. The two ends of the release slider return spring are movably connected to the inner walls of the release slider and the release groove, respectively. The second lever is slidably connected to the second lever groove. One end of the second lever is fixedly connected to the release slider. The release slider and the movable inclined block abut against each other.