Rapid installation structure for environment monitoring module in wind power box transformer substation
By using a rectangular mounting frame and positioning column in combination with the wind turbine transformer, the problems of angle and wiring errors during the installation of the environmental monitoring module were solved, achieving an efficient and safe installation process and extending the service life of the equipment.
Patent Information
- Application Number
- CN202511789064.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-01
- Publication Date
- 2026-02-24
AI Technical Summary
The installation of existing environmental monitoring modules in wind power transformers carries the risk of incorrect frame installation angles and wiring errors, which can lead to short circuits and damage to electrical interfaces, reducing installation safety and efficiency.
The system employs a combination of a rectangular mounting frame and positioning square and round columns. The position and angle of the monitoring unit are limited by the mounting and locking components to ensure installation accuracy. Buffer sleeves and buffer pads are used to reduce the impact of vibration.
This improves the installation safety and efficiency of the environmental monitoring module, avoids incorrect angles in the installation frame, and extends the service life of the monitoring unit.
Smart Images

Figure CN121566282A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of environmental monitoring module installation technology, and in particular to a rapid installation structure for environmental monitoring modules in wind power transformer substations. Background Technology
[0002] The environmental monitoring module in a wind power transformer substation is mainly used to track key parameters of the internal and surrounding environment of the substation in real time, ensuring stable equipment operation and preventing safety hazards. Its main functions include real-time environmental monitoring, anomaly warning and handling, fault early warning mechanisms, remote operation and maintenance support, and efficiency optimization.
[0003] In existing technologies, environmental monitoring modules are often manufactured as circuit boards, with a circuit board as the main body and several functional monitoring modules set on the circuit board. In this way, on the one hand, the number of environmental monitoring modules can be added or removed at any time according to actual functional requirements, and on the other hand, it is convenient for unified maintenance of environmental monitoring modules.
[0004] During installation, a custom-made frame is required to seal the monitoring modules, confining the circuit boards within the frame, and covering the top of the frame with caps for each module. However, since each module has different functions, corresponding wires need to be connected. Incorrect wiring poses a risk of short circuits in the monitoring modules. To facilitate frame installation, screws are typically used to mount the frame into the wind turbine transformer. This requires through holes to be made in the frame. However, these through holes are often round and lack clear markings, leading to the risk of incorrect frame installation angles. If wiring errors cause short circuits, electrical interfaces can be easily damaged, reducing the installation safety of the environmental monitoring modules. Summary of the Invention
[0005] To improve the installation safety of environmental monitoring modules, this application provides a rapid installation structure for environmental monitoring modules in wind power transformer substations.
[0006] This application provides a rapid installation structure for environmental monitoring modules in wind power transformer substations, using the following technical solution: A rapid installation structure for an environmental monitoring module in a wind power transformer includes a monitoring unit, a mounting frame, and a housing. Several monitoring units are placed within the mounting frame. The mounting frame is equipped with mounting components that restrict the movement of the monitoring units. The mounting frame is rectangular, and each corner is connected to an extension plate. The side wall of the housing is provided with two positioning square posts and two positioning cylinders, each corresponding to one of the extension plates. One extension plate has a positioning circular hole, and the other extension plate has a positioning square hole. The positioning circular hole matches the positioning cylinder, and the positioning square hole matches the positioning square post. The side wall of the housing is equipped with a locking component for locking the mounting frame.
[0007] By adopting the above technical solution, during installation, the monitoring unit is placed inside the mounting frame and restrained by the mounting components. Then, an extension plate is fitted onto the positioning cylinder and positioning square post. Finally, a locking component restricts the movement of the mounting frame, thus achieving the installation of the monitoring unit inside the enclosure. The cooperation of the positioning square post and positioning cylinder limits the installation position and angle of the mounting frame. Compared to existing technologies, this avoids incorrect angle installation of the mounting frame, ensures the accuracy of the monitoring unit installation, improves the installation safety of the environmental monitoring module, and indirectly improves the installation efficiency of the environmental monitoring module.
[0008] Optionally, the mounting assembly includes limiting blocks, pressure frames, support plates, and limiting plates. Two limiting blocks are connected to each side of the mounting frame. The pressure frame includes a pressure plate and side plates. Several pressure plates are distributed along the length of the mounting frame and are positioned between two adjacent monitoring units. One side plate is positioned on each of the two opposite side walls of the mounting frame and is connected to several pressure plates. The side plate is located between two limiting blocks. Several support plates are connected to each of the two opposite side walls of the mounting frame. The support plate is L-shaped and has a clearance groove. One side of the limiting plate is connected to the top wall of the clearance groove, and the other side is located inside the support plate. When limiting, the side plate is located between the bottom wall of the support plate and the limiting plate.
[0009] By adopting the above technical solution, during installation, the monitoring units are placed sequentially into the mounting frame, and then the pressure frame is placed at the top of the mounting frame, so that the side plate is located between the two limiting blocks. At this time, the pressure plate is attached between the two monitoring units until the side plate enters the support plate. During this process, the side plate applies pressure to the limiting plate, the limiting plate deforms and completely enters the clearance groove until the side plate touches the bottom wall of the support plate. The limiting plate then returns to its original shape and touches the top wall of the side plate, thereby limiting the movement of the pressure frame and achieving the effect of installing the monitoring units.
[0010] Optionally, the limiting plate is connected to connecting posts, and a control lever is connected between several of the connecting posts.
[0011] By adopting the above technical solution, when unlocking the monitoring unit, the control lever is moved, and the limiting plate is moved through the connecting column and enters the clearance groove. At this time, the pressure frame can be disengaged, thus achieving the effect of unlocking the monitoring unit.
[0012] Optionally, the locking assembly includes a flip plate, a fixed post, a rotating shaft, and a rotating rod. Two rotating shafts are rotatably connected to both ends of the mounting frame. One side of the flip plate is rotatably connected to the rotating shaft. The length of the flip plate is less than the length of the rotating shaft. One flip plate has a limiting groove, and the other flip plate has a limiting square hole. The fixed post is connected to the side wall of the flip plate, and a baffle is connected to the side wall of the fixed post. One end of the rotating rod has a waist-shaped groove, and the other end has an arc-shaped groove, located near the positioning cylinder. The arc-shaped groove is centered on the end of the waist-shaped groove near the positioning cylinder. The waist-shaped groove slides with one of the fixed posts, and the arc-shaped groove is fitted onto the other fixed post. Both the positioning cylinder and the positioning square post have limiting annular grooves on their surfaces. A movement limiting assembly is provided between the rotating rod and the fixed post to restrict the movement of the rotating rod.
[0013] By adopting the above technical solution, when locking the mounting frame, the extension plate is placed between the positioning cylinder and the positioning square column. Then, the flip plate is flipped and moved so that one flip plate is embedded in the limiting ring groove of the positioning cylinder and the other flip plate is embedded in the limiting ring groove of the positioning square column. Then, the rotating rod is flipped so that the arc groove is placed on the fixed column. Finally, the movement of the rotating rod is restricted by the limiting component, thus achieving the locking effect of the mounting frame.
[0014] Optionally, the displacement limiting assembly includes a limiting bolt, a push block, and an anti-loosening washer. The push block is slidably fitted in the waist-shaped groove and fits against the fixed post. The limiting bolt is threaded onto one end of the rotating rod and is rotatably connected to the push block. The anti-loosening washer is sleeved on the limiting bolt and abuts against the end of the rotating rod.
[0015] By adopting the above technical solution, when restricting the movement of the rotating rod, rotating the restricting bolt causes the push block to move until the push block presses against the fixed column and applies pressure to the anti-loosening washer, reducing the possibility of the restricting bolt being loosened by vibration and achieving the effect of restricting the movement of the rotating rod.
[0016] Optionally, the locking assembly includes a pressure cap, a fixing block, a connecting hook plate, and a fixing hook block. One fixing block is connected to each of the two extension plates. The top wall of each fixing block has an abutting slope. The two fixing blocks are arranged opposite each other, with the reference direction from bottom to top, and the distance between the two fixing blocks gradually decreases. The connecting hook plate is connected to the side wall of the housing and is located between the positioning cylinder and the positioning square column. The pressure cap is rotatably connected to one side of the mounting frame. Both ends of the pressure cap have pressure-applying slopes that fit against the abutting slopes. The connecting hook plate is connected to the other side of the pressure cap and engages with the fixing hook block. The pressure cap is provided with an unlocking component for unlocking the connecting hook plate.
[0017] By adopting the above technical solution, when locking the mounting frame, the extension plate is placed on the positioning cylinder and the positioning square column, and then the pressure cover is flipped over. During this process, the connecting hook plate abuts against the fixed hook block and deforms until the pressure slope is attached to the abutting slope. The connecting hook plate passes through the fixed hook block and is engaged with the fixed hook block, thereby restricting the rotation of the pressure cover and achieving the effect of locking the mounting frame.
[0018] Optionally, the unlocking element is a toggle plate, and the cover has a toggle groove. The unlocking element passes through the toggle groove and extends to the outside.
[0019] By adopting the above technical solution, when unlocking the installation frame, the unlocking component is pressed towards the fixed hook block, causing the connecting hook plate to deform and detach from the fixed hook block. Then, the cover can be flipped in the opposite direction to unlock the installation frame.
[0020] Optionally, a buffer sleeve is connected to the inner wall of the mounting frame, the monitoring unit is in close contact with the buffer sleeve, and a buffer pad is connected to the bottom wall of the extension plate.
[0021] By adopting the above technical solutions, the internal components of the housing and the environmental monitoring module are all affected during wind power generation. The installation of buffer pads reduces the vibration impact on the mounting frame. The installation of buffer sleeves reduces the vibration impact on the monitoring unit, extending its service life.
[0022] In summary, this application includes at least one of the following beneficial technical effects: 1. During installation, the monitoring unit is placed inside the mounting frame and secured using mounting components. An extension plate is then fitted onto the positioning cylinder and square post. Finally, a locking component restricts the movement of the mounting frame, thus installing the monitoring unit inside the enclosure. The cooperation of the positioning square post and the positioning cylinder defines the installation position and angle of the mounting frame. Compared to existing technologies, this avoids incorrect angle installation of the mounting frame, ensuring the accuracy of the monitoring unit's installation, improving the installation safety of the environmental monitoring module, and indirectly increasing the installation efficiency of the environmental monitoring module. 2. During installation, the monitoring units are placed into the mounting frame one by one, and then the pressure frame is placed on top of the mounting frame so that the side plate is located between the two limiting blocks. At this time, the pressure plate is pressed between the two monitoring units until the side plate enters the support plate. During this process, the side plate presses on the limiting plate, the limiting plate deforms and completely enters the clearance groove until the side plate touches the bottom wall of the support plate. The limiting plate returns to its original shape and touches the top wall of the side plate, thereby limiting the movement of the pressure frame and achieving the effect of installing the monitoring units. 3. When locking the mounting frame, the extension plate is placed between the positioning cylinder and the positioning square column. Then, the flip plate is flipped and moved so that one flip plate is embedded in the limiting ring groove of the positioning cylinder and the other flip plate is embedded in the limiting ring groove of the positioning square column. Then, the rotating rod is flipped so that the arc groove is placed on the fixed column. Finally, the movement of the rotating rod is restricted by the limiting component, thus achieving the locking effect of the mounting frame. 4. When locking the mounting frame, the extension plate is placed on the positioning cylinder and the positioning square column, and then the pressure cover is flipped over. During this process, the connecting hook plate is deformed by contacting the fixed hook block until the pressure slope is in contact with the fixed slope. The connecting hook plate passes through the fixed hook block and is engaged with the fixed hook block, thereby restricting the rotation of the pressure cover and achieving the effect of locking the mounting frame. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall installation structure of the environmental monitoring module in Embodiment 1 of this application.
[0024] Figure 2 This is an exploded view used to illustrate the structure of the installation components in Embodiment 1 of this application.
[0025] Figure 3 This is a cross-sectional view used to illustrate the structure of the installation component in Embodiment 1 of this application.
[0026] Figure 4 This is an exploded view of the locking assembly structure used in Embodiment 1 of this application.
[0027] Figure 5 This is a schematic diagram of the locking component and the displacement limiting component in Embodiment 1 of this application.
[0028] Figure 6 This is a schematic diagram of the overall installation structure of the environmental monitoring module in Embodiment 2 of this application.
[0029] Figure 7 This is an exploded view of Embodiment 2 of this application, used to illustrate the structure of the locking assembly.
[0030] Figure 8 This is a cross-sectional view used to illustrate the structure of the locking assembly in Embodiment 2 of this application.
[0031] Explanation of reference numerals in the attached drawings: 1. Monitoring unit; 2. Mounting frame; 21. Extension plate; 22. Buffer sleeve; 23. Buffer pad; 3. Housing; 31. Positioning cylinder; 32. Positioning square column; 4. Mounting assembly; 41. Limiting block; 42. Pressure frame; 421. Pressure plate; 422. Side plate; 43. Support plate; 44. Limiting plate; 441. Connecting column; 442. Control lever; 5. Locking assembly; 51. Flip plate; 52. Fixing column; 53. Rotating shaft; 54. Rotating rod; 541. Waist-shaped groove; 542. Arc-shaped groove; 55. Pressure cover; 56. Fixing block; 57. Connecting hook plate; 571. Unlocking component; 58. Fixing hook block; 6. Movement limiting assembly; 61. Limiting bolt; 62. Push block; 63. Anti-loosening washer. Detailed Implementation
[0032] The following is in conjunction with the appendix Figures 1-8 This application will be described in further detail.
[0033] Embodiment 1 of this application discloses a rapid installation structure for an environmental monitoring module in a wind power transformer. (Refer to...) Figure 1 and Figure 2 The rapid installation structure for environmental monitoring modules in wind power transformer substations includes a monitoring unit 1, a mounting frame 2, and a housing 3. The monitoring unit 1 is arranged in a rectangular block shape. The mounting frame 2 is a rectangular frame with openings in the top and bottom walls, and a surrounding plate is fixedly connected to the bottom wall of the mounting frame 2. Two extension plates 21 are fixedly connected to both ends of the mounting frame 2, and the extension plates 21 correspond one-to-one with the corners of the mounting blocks. Several monitoring units 1 are placed inside the mounting frame 2; this embodiment uses five units as an example.
[0034] Reference Figure 2 A buffer sleeve 22 is fixedly connected to the inner wall of the mounting frame 2, and a buffer pad 23 is fixedly connected to the bottom wall of the extension plate 21. Both the buffer sleeve 22 and the buffer pad 23 are rubber pads. The buffer sleeve 22 is used to buffer the vibration of the monitoring unit 1, and the buffer pad 23 is used to buffer the vibration of the mounting frame 2. The monitoring unit 1 is in contact with the buffer sleeve 22.
[0035] Reference Figure 2 and Figure 3The mounting frame 2 is equipped with a mounting assembly 4, which includes a limiting block 41, a pressure frame 42, a support plate 43, and a limiting plate 44. Two limiting blocks 41 are fixedly connected to each of the two side walls of the mounting frame 2. The pressure frame 42 includes a pressure plate 421 and a side plate 422. Several pressure plates 421 are provided at the top of the mounting frame 2 and distributed along the length of the mounting frame 2, with the pressure plates 421 fitting between two adjacent monitoring units 1. One side plate 422 is provided on each of the opposite side walls of the mounting frame 2 and fixedly connected to the end of the pressure plate 421, fitting between two limiting blocks 41. The support plate 43 is L-shaped, and several are fixedly connected to each of the opposite side walls of the mounting frame 2; in this embodiment, three are used as an example. A clearance groove is provided on the side wall of the support plate 43. One end of the limiting plate 44 is fixedly connected to the top wall of the clearance groove, and the other end is located inside the support plate 43. Normally, the limiting plate 44 is tilted.
[0036] Reference Figure 3 A connecting post 441 is fixedly connected to the limiting plate 44, and a control lever 442 is fixedly connected between the three connecting posts 441.
[0037] During installation, the monitoring unit 1 is placed in the mounting frame 2, and then the pressure frame 42 is placed on the mounting frame 2. The pressure plate 421 is attached between the two monitoring units 1, and the side plate 422 enters the support plate 43. During this process, the side plate 422 applies pressure to the limiting plate 44, the limiting plate 44 deforms and enters the clearance groove until the side plate 422 is attached to the inner bottom wall of the support plate 43. The limiting plate 44 returns to its original position and abuts against the top wall of the side plate 422, thereby restricting the movement of the side plate 422 and realizing the installation of the monitoring unit 1. When unlocking, the control lever 442 is moved to deform the limiting plate 44 and enter the clearance groove, so that the pressure frame 42 can be removed.
[0038] Reference Figure 1 and Figure 4 Box 3 is a prefabricated substation for wind power generation. This embodiment mainly shows the installation structure of monitoring unit 1, so only a part of the inner wall of box 3 is shown in the attached drawings. Positioning cylinders 31 and positioning square columns 32 are fixedly connected to the inner wall of box 3, with two of each type. Two extension plates 21 have positioning circular holes, and the other two extension plates 21 have positioning square holes. The positioning circular holes are fitted onto the positioning cylinders 31, and the positioning square holes are fitted onto the positioning square columns 32.
[0039] Reference Figure 4 and Figure 5The mounting frame 2 is equipped with a locking assembly 5, which includes a flip plate 51, a fixing post 52, a rotating shaft 53, and a rotating rod 54. Two rotating shafts 53 are rotatably connected to both ends of the mounting frame 2, and each rotating shaft 53 corresponds to one of the extension plates 21. One side of the flip plate 51 is rotatably connected to the rotating shaft 53. Two of the flip plates 51 have limiting grooves, and the other two flip plates 51 have limiting square holes. The length of the flip plate 51 is less than the length of the rotating shaft 53. The surfaces of the positioning cylinder 31 and the positioning square post 32 both have limiting annular grooves.
[0040] Reference Figure 4 and Figure 5 The fixing post 52 is fixedly connected to the side wall of the flip plate 51, and a baffle is fixedly connected to the end of the fixing post 52. One end of the rotating rod 54 has a waist-shaped groove 541, and the other end has an arc-shaped groove 542. The waist-shaped groove 541 is fitted onto one of the fixing posts 52 and is close to the limiting square hole. The arc-shaped groove 542 is fitted onto the other fixing post 52, with the end of the waist-shaped groove 541 near the positioning cylinder 31 as its center.
[0041] Reference Figure 4 and Figure 5 A limiting assembly 6 is provided on the rotating rod 54. The limiting assembly 6 includes a limiting bolt 61, a push block 62, and an anti-loosening washer 63. The limiting bolt 61 passes through one end of the rotating rod 54 and is threadedly engaged with the rotating rod 54. The push block 62 is slidably engaged in the slot 541 and abuts against the fixing post 52. The push block 62 is rotatably connected to the limiting bolt 61. The anti-loosening washer 63 is sleeved on the limiting bolt 61 and abuts against the end of the rotating rod 54.
[0042] When locking, the extension plate 21 is fitted onto the positioning cylinder 31 and the positioning square post 32. Then, the flip plate 51 is rotated to fit the extension plate 21. The two flip plates 51 are then moved relative to each other, so that one flip plate 51 is embedded in the limiting ring groove of the positioning cylinder 31 and the other flip plate 51 is cut into the limiting ring groove of the positioning square post 32. The rotating rod 54 is moved and rotated so that the limiting groove is fitted onto the fixed post 52. Finally, the limiting bolt 61 is rotated so that the push block 62 moves until it presses against the fixed post 52 to limit the movement of the rotating rod 54, thus achieving the effect of locking the mounting frame 2.
[0043] The implementation principle of the rapid installation structure for an environmental monitoring module in a wind power transformer according to Embodiment 1 of this application is as follows: During installation, the monitoring unit 1 is placed in the installation frame 2, and then the pressure frame 42 is placed on top of the installation frame 2. The side plate 422 enters the support plate 43. During this process, the side plate 422 applies pressure to the limiting plate 44, the limiting plate 44 deforms and enters the clearance groove until the side plate 422 touches the bottom wall of the support plate 43. The limiting plate 44 returns to its original state and touches the top wall of the side plate 422 to limit the monitoring unit 1. Then, the installation frame 2 is fitted onto the positioning cylinder 31 and the positioning square column 32. The flip plate 51 is rotated until the extension plate 21 is flipped. The two flip plates 51 are moved relative to each other. The rotating rod 54 is moved and rotated until the limiting groove is fitted onto the fixed column 52. The limiting bolt 61 is rotated and the push block 62 moves until it is pressed against the fixed column 52 to limit the movement of the rotating rod 54, thus realizing the installation of the installation frame 2.
[0044] The cooperation of the positioning square column 32 and the positioning round column 31 limits the installation position and angle of the mounting frame 2. Compared with the existing technology, it avoids the phenomenon of incorrect installation angle of the mounting frame 2, ensures the installation accuracy of the monitoring unit 1, improves the installation safety of the environmental monitoring module, and also indirectly improves the installation efficiency of the environmental monitoring module.
[0045] Example 2: The difference between this example and Example 1 is that the structure of the locking component 5 is different.
[0046] Reference Figure 6 , Figure 7 and Figure 8 The locking assembly 5 includes a pressure cap 55, a fixing block 56, a connecting hook plate 57, and a fixing hook block 58. One fixing block 56 is fixedly connected to each of the two extension plates 21. The top of each fixing block 56 has an abutting slope. The two fixing blocks 56 are positioned opposite each other, with the distance between them gradually decreasing from the top of the extension plate 21 to the top of the fixing block 56. The fixing hook block 58 is fixedly connected to the inner wall of the housing 3 and is located between the positioning cylinder 31 and the positioning square column 32.
[0047] Reference Figure 7 and Figure 8 The pressure cap 55 is hinged to both ends of the mounting frame 2, and both ends of the pressure cap 55 are provided with pressure-applying slopes. The connecting hook plate 57 is fixedly connected to the pressure cap 55 and engages with the fixing hook block 58. The pressure cap 55 has a toggle groove, and the connecting hook plate 57 is provided with an unlocking component 571. The unlocking component 571 is a toggle plate that passes through the toggle groove and extends to the outside.
[0048] During installation, the mounting frame 2 is fitted onto the positioning cylinder 31 and the positioning square column 32 via the extension plate 21. The pressure cover 55 is flipped until the connecting hook plate 57 and the fixing hook block 58 are engaged and the inclined surface is pressed against the inclined surface. During unlocking, the unlocking part 571 is moved to the position of the fixing hook block 58 to deform the connecting hook plate 57 so as to disengage from the fixing hook block 58, thereby unlocking the mounting frame 2.
[0049] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A rapid installation structure for an environmental monitoring module in a wind power transformer substation, comprising a monitoring unit (1), a mounting frame (2), and a housing (3), characterized in that: Several monitoring units (1) are placed in the mounting frame (2). The mounting frame (2) is provided with a mounting component (4) that restricts the movement of the monitoring unit (1). The mounting frame (2) is a rectangular frame, and an extension plate (21) is connected to each corner. The side wall of the box (3) is provided with a positioning square post (32) and a positioning cylinder (31). There are two positioning square posts (32) and two positioning cylinders (31), which correspond one-to-one with the extension plate (21). One extension plate (21) has a positioning round hole, and the other extension plate (21) has a positioning square hole. The positioning round hole matches the positioning cylinder (31), and the positioning square hole matches the positioning square post (32). The side wall of the box (3) is provided with a locking component (5) for locking the mounting frame (2).
2. The rapid installation structure for the environmental monitoring module in a wind power transformer according to claim 1, characterized in that: The mounting assembly (4) includes a limiting block (41), a pressure frame (42), a support plate (43), and a limiting plate (44). The limiting block (41) is connected to two blocks on each side of the mounting frame (2). The pressure frame (42) includes a pressure plate (421) and a side plate (422). Several pressure plates (421) are distributed along the length of the mounting frame (2). The pressure plates (421) are located between two adjacent monitoring units (1). The side plates (422) are located on two opposite side walls of the mounting frame (2). Each of the above is provided with one plate and connected to several of the pressure plates (421). The side plate (422) is located between two of the limiting blocks (41). Several of the support plates (43) are connected to the opposite side walls of the mounting frame (2). The support plates (43) are L-shaped and have clearance grooves. One side of the limiting plate (44) is connected to the top wall of the clearance groove, and the other side is located inside the support plate (43). When restricted, the side plate (422) is located between the bottom wall of the support plate (43) and the limiting plate (44).
3. The rapid installation structure for the environmental monitoring module in a wind power transformer according to claim 2, characterized in that: The limiting plate (44) is connected to a connecting post (441), and a control lever (442) is connected between several of the connecting posts (441).
4. The rapid installation structure for the environmental monitoring module in a wind power transformer according to claim 1, characterized in that: The locking assembly (5) includes a flip plate (51), a fixing post (52), a rotating shaft (53), and a rotating rod (54). Two rotating shafts (53) are rotatably connected to both ends of the mounting frame (2). One side of the flip plate (51) is rotatably connected to the rotating shaft (53). The length of the flip plate (51) is less than the length of the rotating shaft (53). One flip plate (51) has a limiting groove, and the other flip plate (51) has a limiting square hole. The fixing post (52) is connected to the side wall of the flip plate (51), and a baffle is connected to the side wall of the fixing post (52). The rotating rod (54) is... One end has a waist-shaped groove (541), and the other end has an arc-shaped groove (542) close to the positioning cylinder (31). The arc-shaped groove (542) is set with the end of the waist-shaped groove (541) close to the positioning cylinder (31) as the center. The waist-shaped groove (541) slides with one of the fixed columns (52). The arc-shaped groove (542) is sleeved on the other fixed column (52). The surfaces of the positioning cylinder (31) and the positioning square column (32) are both provided with limiting ring grooves. A limiting component (6) is provided between the rotating rod (54) and the fixed column (52) to limit the movement of the rotating rod (54).
5. The rapid installation structure for the environmental monitoring module in a wind power transformer according to claim 4, characterized in that: The limiting component (6) includes a limiting bolt (61), a push block (62), and an anti-loosening washer (63). The push block (62) is slidably fitted in the waist-shaped groove (541) and fits against the fixing post (52). The limiting bolt (61) is threadedly fitted to one end of the rotating rod (54) and is rotatably connected to the push block (62). The anti-loosening washer (63) is sleeved on the limiting bolt (61) and abuts against the end of the rotating rod (54).
6. The rapid installation structure for an environmental monitoring module in a wind power transformer according to claim 1, characterized in that: The locking assembly (5) includes a pressure cap (55), a fixing block (56), a connecting hook plate (57), and a fixing hook block (58). The fixing block (56) is connected to each of the two extension plates (21). The top wall of the fixing block (56) is provided with an abutting slope. The two fixing blocks (56) are arranged opposite each other, with the reference direction from bottom to top. The distance between the two fixing blocks (56) gradually decreases. The connecting hook plate (57) is connected to the side wall of the housing (3). The pressure cap (55) is rotatably connected to one side of the mounting frame (2) and is located between the positioning cylinder (31) and the positioning square column (32). Both ends of the pressure cap (55) are provided with pressure-applying slopes, which are in contact with the contact slopes. The connecting hook plate (57) is connected to the other side of the pressure cap (55) and engages with the fixing hook block (58). The pressure cap (55) is provided with an unlocking part (571) for unlocking the connecting hook plate (57).
7. The rapid installation structure for an environmental monitoring module in a wind power transformer according to claim 6, characterized in that: The unlocking component (571) is a toggle plate, and the cover (55) has a toggle groove. The unlocking component (571) passes through the toggle groove and extends to the outside.
8. The rapid installation structure for an environmental monitoring module in a wind power transformer according to claim 1, characterized in that: A buffer sleeve (22) is connected to the inner wall of the mounting frame (2), the monitoring unit (1) is in close contact with the buffer sleeve (22), and a buffer pad (23) is connected to the bottom wall of the extension plate (21).