A waterproof and intelligent reactor

Through the cooperation of the servo motor-driven wipe strips and collection components, the water film and water vapor on the outer surface of the reactor main body are automatically adsorbed and removed. Combined with the design of the barrier grid plate and heat dissipation frame, the water film problem caused by the temperature difference of the existing waterproof reactor in rainy days is solved, and the safety and service life are improved.

CN119008168BActive Publication Date: 2025-05-30CHANGCHUN VOCATIONAL INST OF TECH

Patent Information

Application Number
CN202411297968.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-18
Publication Date
2025-05-30
Estimated Expiration
2044-09-18

AI Technical Summary

Technical Problem

The existing waterproof reactors form water film on the surface due to temperature difference during rainy days, which affects the safety and service life of the reactor.

Method used

A waterproof intelligent reactor is designed, which uses a servo motor-driven wiper strip to automatically adsorb and remove water film and water vapor on the outer surface of the reactor main body, and automatically collects and discharges moisture through the collection component, and achieves intermittent sealing and heat dissipation effects through the coupling.

Benefits of technology

It effectively reduces the water film and water vapor on the outer surface of the reactor main body, avoids leakage, improves the safety and reliability of the reactor used in rainy days, and extends the service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a waterproof intelligent reactor, specifically relating to the technical field of reactors, which includes a waterproof box and a reactor main body installed inside the waterproof box. One side of the waterproof box is hinged with a box door. On both sides above the waterproof box, heat dissipation openings are symmetrically provided, and heat dissipation grids are arranged on the heat dissipation openings. A moving disk is fixedly connected to the output shaft of the servo motor. A cylinder is fixedly connected to the surface of the moving disk away from the servo motor, and the cylinder is located at an eccentric position of the moving disk. The servo motor drives the wiping strip to reciprocate up and down in contact with the outer surface of the reactor main body, so as to automatically adsorb and remove the water film or water vapor on the outer surface of the reactor main body. Thereby, the water film or water vapor formed on the outer surface of the reactor main body due to temperature difference is reduced, and the situation of surface leakage of the reactor main body during operation caused by the aggregation of the water film or water vapor is avoided, and further the safety of the reactor main body during outdoor rainy-day operation is ensured.
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Description

Technical Field

[0001] The present invention provides a waterproof intelligent reactor, which specifically relates to the technical field of reactors. Background Art

[0002] Reactors are mainly used to limit short-circuit current, and are also used in filters in series or parallel with capacitors to limit high-order harmonics in the power grid.

[0003] The utility model with the patent publication number CN219143911U discloses a waterproof reactor. It is convenient to assemble the top plate and multiple waterproof side plates with screws through the columns fixed on the bottom plate, which provides convenience for disassembly. At the same time, it can block rainwater, facilitating the replacement of damaged internal components without damaging the structure and enabling repeated use, reducing the use cost. The waterproof rubber strip can reduce the gap between the waterproof side plate and the column and the top plate, reducing rainwater penetration and improving waterproof performance; the heat dissipation windows opened on the waterproof side plate facilitate the circulation of internal air, can dissipate the heat generated by the reactor body to the outside, reduce the temperature, ensure the stable use of the reactor body, and extend the service life. The slider slidably installed on the slide bar drives the waterproof baffle to rotate vertically on the hinge block through the connecting rod sleeved on the cylinder, which can adjust the heat dissipation area of the heat dissipation window and can also block rain, preventing rainwater from entering the inner side of the waterproof side plate through the heat dissipation window and improving waterproof performance;

[0004] Generally speaking, the above-mentioned waterproof reactor sets a protective box around the reactor body. Although it can achieve the waterproof effect, it only uses the set protective box for waterproofing. When the reactor body is working, heat will be generated, so there will be a temperature difference between the inside and outside of the protective box, especially on rainy days, the temperature difference will be larger. In addition, most existing reactors, in order to ensure their waterproof performance, generally install the reactor outside in a relatively closed box body. There will be heat dissipation openings on the box body and a box door for convenient installation and maintenance of the reactor by personnel. In this way, external moisture will inevitably enter the box body on rainy days, and heat will be generated when the reactor is operating. Under the action of the temperature difference, a water film will form on the surface of the reactor, which will affect the safety of the reactor operation in the long run.

[0005] Therefore, the present invention proposes a waterproof intelligent reactor to make up for and improve the deficiencies of the existing technology. Summary of the Invention

[0006] Aiming at the defects existing in the prior art, the present invention provides a waterproof intelligent reactor, which can effectively solve the technical problems raised in the background art.

[0007] To achieve the above objectives, the present invention is realized through the following technical solutions:

[0008] The present invention discloses a waterproof intelligent reactor, which includes a waterproof box and a reactor main body installed inside the waterproof box. One side of the waterproof box is hinged with a box door. On both sides above the waterproof box, heat dissipation openings are symmetrically provided, and heat dissipation grids are arranged on the heat dissipation openings. The top of the waterproof box is fixedly provided with a top plate. A protection processing mechanism is arranged inside the waterproof box. A collection assembly is arranged below the inside of the waterproof box. An alternating blocking mechanism and a matching assembly are arranged on the heat dissipation grid;

[0009] The protection processing mechanism includes a servo motor fixedly installed inside the waterproof box. A moving disk is fixedly connected to the output shaft of the servo motor. A cylinder is fixedly connected to the surface of the moving disk away from the servo motor. The cylinder is located at an eccentric position of the moving disk. Two slotted plates are fixedly connected to one side of the waterproof box close to the moving disk. A slotted moving plate is slidably connected between the two slotted plates. The middle part of the slotted moving plate is slidably matched with the cylinder. A bottom rod is fixedly connected to the bottom of the slotted moving plate. One end of the bottom rod away from the slotted moving plate is fixedly connected to a main frame plate. A sub-frame plate is detachably connected to one side of the main frame plate close to the box door. The main frame plate and the sub-frame plate are initially located above the periphery of the reactor main body. A magnetic frame is detachably connected to the bottom of the main frame plate and the sub-frame plate together. There are three magnetic frames in total. A wiping strip is fixedly connected to the bottom surface of each magnetic frame. The shape of the wiping strip is adapted to the shape of the reactor main body, and the wiping strip can be attached to the outer surface of the reactor main body after moving down.

[0010] Preferably, the top surface of the top plate is an inclined surface, and a non-sticking layer is evenly coated on the inclined surface.

[0011] Preferably, tenons are symmetrically arranged at both ends of the sub-frame plate close to the main frame plate. Mortise grooves are opened at the positions of the main frame plate corresponding to the tenons. The mortise grooves are inserted and matched with the tenons.

[0012] Preferably, the magnetic frames are magnetically attracted to the bottom surfaces of the main frame plate and the sub-frame plate. The wiping strip is made of soft water-absorbing sponge material.

[0013] Preferably, the collection assembly includes a main collection bin fixedly connected to the inner bottom surface of the waterproof box. A secondary collection bin is detachably connected to one side of the main collection bin close to the box door. The positions of the main collection bin and the secondary collection bin correspond to the positions of the wiping strips. Water collecting grooves are arranged at the parts of the top surfaces of the main collection bin and the secondary collection bin corresponding to the bottoms of the wiping strips. A collecting pipe is fixedly communicated with the water collecting groove of the main collection bin on the side away from the secondary collection bin. One end of the collecting pipe away from the main collection bin is fixedly communicated with a discharge pipe. The end of the discharge pipe away from the collecting pipe extends to the outside of the waterproof box.

[0014] Preferably, two cabin holes are symmetrically formed at both ends of the main collection bin close to the secondary collection bin, and cabin blocks are provided at positions corresponding to the cabin holes on the secondary collection bin.

[0015] Preferably, the alternating blocking mechanism includes a top rod fixedly connected to the top surface of the moving plate with a groove. A heat dissipation frame is fixedly connected inside the waterproof box at a position corresponding to the heat dissipation grille. There are two heat dissipation frames in total, which correspond one by one to the heat dissipation grilles provided on both sides of the waterproof box. A blocking grille plate is slidably connected to one side of the heat dissipation frame close to the top rod. Springs are uniformly fixedly connected between one side of the blocking grille plate and the inner surface of the heat dissipation frame. A horizontal shaft is fixedly connected to one side of the blocking grille plate close to the top rod. A wedge block is fixedly connected to the end of the horizontal shaft away from the blocking grille plate. The bottom surface of the wedge block is an inclined surface, and the inclined surface is in abutting fit with the upper end of the top rod. A cross plate is fixedly connected between the upper parts of the blocking grille plates.

[0016] Preferably, a drainage bin is fixedly connected to the bottom of the heat dissipation frame. The drainage bin is vertically through, with the upper part corresponding to the bottom of the heat dissipation frame and the lower part extending to the outside of the waterproof box.

[0017] Preferably, the matching component includes side plates symmetrically and fixedly connected to one side of the heat dissipation frame close to the servo motor. There are four side plates in total. A rotating shaft is rotatably connected to one side of each side plate close to the blocking grille plate. A fan blade is fixedly connected to the rotating shaft. A transmission component for driving the fan blade to rotate is provided between the rotating shaft and the output shaft of the servo motor. There are four rotating shafts in total, and two linkage rods are provided between the four rotating shafts.

[0018] Preferably, the transmission component includes two upper synchronous pulleys and two lower synchronous pulleys, and a synchronous belt drivingly connecting the upper and lower synchronous pulleys. The two upper synchronous pulleys are respectively fixedly connected to two rotating shafts on one side close to the servo motor, and the two lower synchronous pulleys are fixedly connected to the output shaft of the servo motor.

[0019] Advantages of the present invention:

[0020] When the reactor is used outdoors on rainy days, the wiping strip is driven by the servo motor to reciprocate up and down in contact with the outer surface of the reactor body, so that the water film or water vapor on the outer surface of the reactor body can be automatically adsorbed and removed. Thereby, the water film or water vapor formed on the outer surface of the reactor body due to temperature difference is reduced, and the situation of surface leakage during the operation of the reactor body caused by the aggregation of the water film or water vapor is avoided, and further the safety of the reactor body during outdoor rainy-day operation is ensured;

[0021] Through the cooperation of the main collection bin, the auxiliary collection bin, and the collection pipe, the water adsorbed by the wiping strip can be automatically collected and promptly discharged, which not only ensures that the wiping strip has good water absorption performance but also promptly discharges the water from the inside of the waterproof box, avoiding excessive humidity inside the waterproof box and preventing phenomena such as moisture, mildew, and rust on the reactor body and other electrical components;

[0022] The personnel can manually disassemble the auxiliary collection bin from the main collection bin and then cooperate with the disassembly of the auxiliary frame plate from the main frame plate as described above, so as to ensure that the space on the side of the waterproof box close to the box door is unobstructed, facilitating the installation of the reactor body inside the waterproof box by the personnel in the early stage, and also facilitating the maintenance or replacement of the reactor body by the personnel in the later stage, improving the practicality and convenience of the waterproof reactor;

[0023] Through the cooperation of the barrier grid plate and the heat dissipation frame, the effect of intermittently blocking the heat dissipation grid can be achieved, making the heat dissipation grid in an intermittently open and closed state, reducing the entry of external rainwater into the waterproof box through the heat dissipation grid when it rains, thereby reducing the probability of damage to the reactor body caused by rainwater entering the waterproof box. When the weather is sunny, the barrier grid plate and the heat dissipation frame will not block the heat dissipation grid, and thus will not affect the normal heat dissipation effect of the reactor body;

[0024] During the process of the rectangular heat dissipation openings on the heat dissipation frame and the barrier grid plate being misaligned and switched, it is inevitable that some rainwater will still pass through the heat dissipation grid. At this time, under the double blockage of the heat dissipation frame and the spring, only part of the rainwater will fall into the drainage bin along the trend and be discharged from the inside of the waterproof box through the drainage bin, further reducing the probability of rainwater entering the waterproof box;

[0025] Through the continuous rotation of the fan blades, the heat generated during the operation of the reactor body is promptly discharged to the outside of the waterproof box, reducing the heat accumulation inside the upper part of the waterproof box and ensuring the comprehensive heat dissipation effect when the reactor body operates inside the waterproof box. Description of the Drawings

[0026] Figure 1 It is the front perspective structure diagram of the present invention;

[0027] Figure 2 It is the front view structure diagram of the waterproof box of the present invention;

[0028] Figure 3 It is the partial perspective structure diagram of relevant components in the sectional state of the waterproof box and the moving disk of the present invention;

[0029] Figure 4 It is the partial perspective structure diagram of relevant components in the separated state of the magnetic frame, the wiping strip, and the main frame plate of the present invention;

[0030] Figure 5It is a partial three-dimensional structural diagram of the tenon, tenon groove, cabin hole and cabin block of the present invention in a separated state;

[0031] Figure 6 It is a partial three-dimensional structural diagram of the relevant components of the collecting pipe of the present invention;

[0032] Figure 7 It is a partial three-dimensional structural diagram of the relevant parts of the top rod of the present invention;

[0033] Figure 8 It is a partial three-dimensional structural diagram of the wedge-shaped block and related parts of the present invention;

[0034] Figure 9 It is a three-dimensional structural diagram of the relevant components when the barrier grid plate and the heat dissipation frame of the present invention are separated;

[0035] Figure 10 This is a structural diagram of the related components of the barrier grid of the present invention;

[0036] Figure 11 It is a partial three-dimensional structural diagram of the relevant components of the drainage chamber of the present invention in a cut-away state;

[0037] Figure 12 It is a partial three-dimensional structural diagram of the relevant components at the horizontal plate of the present invention;

[0038] Figure 13 It is a partial three-dimensional structural diagram of the relevant parts at the side panel of the present invention.

[0039] The numbers in the figure represent:

[0040] 1. Waterproof box; 11. Top plate; 12. Box door; 13. Heat dissipation grille; 14. Reactor body;

[0041] 21. servo motor; 22. moving plate; 23. cylinder; 24. slotted plate; 25. moving plate with slot; 26. bottom bar; 27. main frame plate; 2701. auxiliary frame plate; 2702. tenon; 2703. tenon groove; 28. magnetic frame; 29. ​​wiping strip;

[0042] 31. Collection main chamber; 3101. Collection auxiliary chamber; 3102. Chamber hole; 3103. Chamber block; 32. Collection pipe; 34. Discharge pipe;

[0043] 41. ejector rod; 42. heat dissipation frame; 43. drainage chamber; 44. barrier grid; 4401. horizontal plate; 45. spring; 46. horizontal axis; 47. wedge block;

[0044] 51. Side panel; 52. Rotating shaft; 53. Fan blades; 54. Transmission components; 55. Linkage rod. DETAILED DESCRIPTION

[0045] Example 1: Figures 1 to 5As shown in the figure, a waterproof intelligent reactor includes a waterproof box 1 and a reactor main body 14 installed inside the waterproof box 1. One side of the waterproof box 1 is hinged with a box door 12. On both sides above the waterproof box 1, heat dissipation openings are symmetrically provided, and heat dissipation grids 13 are arranged on the heat dissipation openings. The top of the waterproof box 1 is fixedly provided with a top plate 11. The top surface of the top plate 11 is an inclined surface, and a non-stick layer, specifically a Teflon coating, is evenly coated on the inclined surface. This coating is used to reduce the adhesion of rainwater and impurities to the inclined surface of the top plate 11. At the same time, by using the inclined surface of the top plate 11, it plays a role of guiding and draining water above the waterproof box 1.

[0046] A protection and treatment mechanism is arranged inside the waterproof box 1. The protection and treatment mechanism includes a servo motor 21 fixedly installed inside the waterproof box 1. The servo motor 21 can be controlled to start and stop by an external controller, and at the same time, the controller is connected to an external rain drop sensor. A moving disk 22 is fixedly connected to the output shaft of the servo motor 21. On the surface of the moving disk 22 away from the servo motor 21, a cylinder 23 is fixedly connected. The cylinder 23 is located at an eccentric position of the moving disk 22. On one side of the waterproof box 1 close to the moving disk 22, two slotted plates 24 are fixedly connected. A slotted moving plate 25 is slidably connected between the two slotted plates 24. The middle part of the slotted moving plate 25 is slidably matched with the cylinder 23. Specifically, a strip-shaped hole is provided in the middle part of the slotted moving plate 25, and the cylinder 23 is located in the strip-shaped hole and can slide in the strip-shaped hole. A bottom rod 26 is fixedly connected to the bottom of the slotted moving plate 25. One end of the bottom rod 26 away from the slotted moving plate 25 is fixedly connected to a main frame plate 27. A sub-frame plate 2701 is detachably connected to one side of the main frame plate 27 close to the box door 12. At both ends of the side of the sub-frame plate 2701 close to the main frame plate 27, tenons 2702 are symmetrically provided. At the position of the main frame plate 27 corresponding to the tenons 2702, mortise grooves 2703 are provided. The mortise grooves 2703 are in plug-in fit with the tenons 2702. When in use, personnel can manually separate or assemble the sub-frame plate 2701 and the main frame plate 27. The main frame plate 27 and the sub-frame plate 2701 are initially located above the periphery of the reactor main body 14. A magnetic frame 28 is detachably connected to the bottom of the main frame plate 27 and the sub-frame plate 2701 together. A total of three magnetic frames 28 are provided. A wiping strip 29 with an adsorption function is fixedly connected to the bottom surface of each magnetic frame 28. The magnetic frame 28 is in magnetic attraction fit with the bottom surfaces of the main frame plate 27 and the sub-frame plate 2701. The wiping strip 29 is made of soft water-absorbing sponge material. When in use, it is convenient for personnel to manually separate the magnetic frame 28 and the wiping strip 29 from the bottom surfaces of the main frame plate 27 and the sub-frame plate 2701, and conveniently replace the wiping strip 29, improving the convenience of operation. The outer shape of the wiping strip 29 is adapted to the outer shape of the reactor main body 14, and after the wiping strip 29 moves down, it can be attached to the outer surface of the reactor main body 14.

[0047] When the reactor is in use: When it rains, the external sensor that can detect rain detects the rain, and then the external controller controls the servo motor 21 to start, driving the moving plate 22 and the cylinder 23 to rotate. As the cylinder 23 rotates, the cylinder 23 will slide relatively in the middle of the grooved moving plate 25. When the cylinder 23 rotates with the moving plate 22 to the lower side, it will drive the grooved moving plate 25 to slide downward along the track of the slotted plate 24, and then drive the main frame plate 27, the sub-frame plate 2701, the magnetic frame 28, and the wiping strip 29 to move downward synchronously through the bottom rod 26. During the downward movement of the wiping strip 29, it will move downward along the outer wall of the reactor body 14, wiping and adsorbing the water film or water vapor formed on the outer surface of the reactor body 14. When the moving plate 22 drives the cylinder 23 to rotate upward, it will drive the grooved moving plate 25 to move upward and reset along the track of the slotted plate 24. During this process, the wiping strip 29 will also move upward synchronously, so as to wipe and adsorb the water film and water vapor on the surface of the reactor body 14 again. Repeating this cycle, the outer surface of the reactor body 14 can be continuously wiped and adsorbed.

[0048] By starting the servo motor 21 to drive the wiping strip 29 to reciprocate up and down along the outer surface of the reactor body 14, the water film or water vapor on the outer surface of the reactor body 14 can be automatically adsorbed and removed. Thus, the water film or water vapor formed on the outer surface of the reactor body 14 due to temperature difference is reduced, and the situation of surface leakage during the operation of the reactor body 14 caused by the accumulation of the water film or water vapor is avoided, thereby ensuring the safety of the reactor body 14 during outdoor rainy-day operations.

[0049] Example 2: On the basis of the above Example 1, please refer to Figure 5 And Figure 6, a collection component is provided below the interior of the waterproof box 1. The collection component includes a main collection bin 31 fixedly connected to the bottom surface inside the waterproof box 1. A secondary collection bin 3101 is detachably connected to one side of the main collection bin 31 close to the door 12. Two ends of the main collection bin 31 close to the secondary collection bin 3101 are symmetrically provided with hatch holes 3102. At the positions corresponding to the hatch holes 3102 on the secondary collection bin 3101, there are hatch blocks 3103. Initially, the main collection bin 31 and the secondary collection bin 3101 are in a connected state, and a rubber sealing strip is provided on the surface of the side where they are in contact with each other to ensure the sealing performance when they are connected and prevent water leakage. During use, the user manually detaches the secondary collection bin 3101 from the main collection bin 31, and then detaches the secondary frame plate 2701 from the main frame plate 27, so as to ensure that the space on the side of the waterproof box 1 close to the door 12 is unobstructed, facilitating the user to install the reactor main body 14 inside the waterproof box 1 in the early stage, and also facilitating the user to repair or replace the reactor main body 14 in the later stage, improving the practicability and convenience of the waterproof reactor. The positions of the main collection bin 31 and the secondary collection bin 3101 correspond to the position of the wiping strip 29. The final position after the wiping strip 29 moves down will be in extrusion contact with the inner surfaces of the main collection bin 31 and the secondary collection bin 3101. At the positions on the top surfaces of the main collection bin 31 and the secondary collection bin 3101 corresponding to the bottom of the wiping strip 29, there are water collection troughs. Specifically, as Figure 4 and Figure 5 shown, it is used for the wiping strip 29 to smoothly enter the water collection troughs inside the secondary collection bin 3101 and the main collection bin 31 for extrusion cooperation. One side of the water collection trough of the main collection bin 31 far from the secondary collection bin 3101 is fixedly communicated with a collection pipe 32. One end of the collection pipe 32 far from the main collection bin 31 is fixedly communicated with a discharge pipe 34. One end of the discharge pipe 34 far from the collection pipe 32 extends to the outside of the waterproof box 1.

[0050] When the reactor is in use: At the same time, in the above-mentioned Embodiment 1, during the downward movement of the wiping strip 29, when it moves into the interiors of the main collection bin 31 and the secondary collection bin 3101, at this time, the main collection bin 31 and the secondary collection bin 3101 are in extrusion cooperation with the wiping strip 29, so as to squeeze out the water adsorbed by the wiping strip 29 during the downward movement. The squeezed water then falls into the main collection bin 31 and the secondary collection bin 3101 for collection and treatment, and then is timely discharged outwards from the main collection bin 31 and the secondary collection bin 3101 through the collection pipe 32 and the discharge pipe 34 to avoid excessive humidity inside the waterproof box 1.

[0051] Therefore, through the cooperation of the main collection bin 31, the secondary collection bin 3101 and the collection pipe 32, the water wiped and adsorbed by the wiping strip 29 can be automatically collected and timely discharged, not only ensuring that the wiping strip 29 has good water absorption performance, but also timely discharging the water from the interior of the waterproof box 1, avoiding phenomena such as moisture, mildew, and rust on the reactor main body 14 caused by excessive humidity inside the waterproof box 1.

[0052] Embodiment 3: On the basis of the above Embodiment 1 and Embodiment 2, please refer to Figures 7 to 12 , an alternating blocking mechanism is provided on the heat dissipation grid 13. The alternating blocking mechanism includes a top rod 41 fixedly connected to the top surface of the grooved moving plate 25. A heat dissipation frame 42 is fixedly connected at a position inside the waterproof box 1 corresponding to the heat dissipation grid 13. A plurality of rectangular heat dissipation openings are evenly formed in the heat dissipation frame 42. As Figure 11 shown, a drainage bin 43 is fixedly connected to the bottom of the heat dissipation frame 42. The drainage bin 43 penetrates up and down, and corresponds to the bottom of the heat dissipation frame 42 above and extends to the outside of the waterproof box 1 below. Two heat dissipation frames 42 are provided, and correspond to the heat dissipation grids 13 provided on both sides of the waterproof box 1 one by one. A blocking grid plate 44 is slidably connected to one side of the heat dissipation frame 42 close to the top rod 41. A plurality of rectangular heat dissipation openings are also evenly formed in the blocking grid plate 44. As Figure 7 shown, the bottom of the blocking grid plate 44 is slidably matched with the bottom of the heat dissipation frame 42 to allow the blocking grid plate 44 to perform a horizontal displacement. A spring 45 is evenly fixedly connected between one side of the blocking grid plate 44 and the inner surface of the heat dissipation frame 42. A cross shaft 46 is fixedly connected to one side of the blocking grid plate 44 close to the top rod 41. A wedge block 47 is fixedly connected to the end of the cross shaft 46 away from the blocking grid plate 44. The bottom surface of the wedge block 47 is an inclined surface, and the inclined surface is in abutting cooperation with the upper end of the top rod 41. Specifically, as Figures 7 to 10 shown, the part of the upper end of the top rod 41 abutting against the inclined surface is a hemispherical surface. Initially, the hemispherical surface of the top rod 41 abuts against the highest point of the inclined surface. In this state, the spring 45 is in a stretched state. At this time, the rectangular heat dissipation openings between the blocking grid plate 44 and the heat dissipation frame 42 are in a coincident state and will not block the rectangular heat dissipation openings of the heat dissipation frame 42. Therefore, the heat dissipation frame 42 and the heat dissipation grid 13 can allow air to circulate between the inside of the waterproof box 1 and the external environment. Two blocking grid plates 44 are provided and correspond to the heat dissipation grids 13 one by one. A cross plate 4401 is fixedly connected between the upper parts of the two blocking grid plates 44. When one of the blocking grid plates 44 close to the servo motor 21 performs a horizontal displacement, the other blocking grid plate 44 moves synchronously under the action of the cross plate 4401.

[0053] When the reactor is in use: When the reactor is used outdoors on rainy days, under the action of crosswind, some rainwater will pass through the heat dissipation grid 13 and enter the waterproof box 1. After the grooved moving plate 25 moves downward in the above-mentioned Embodiment 1, the ejector rod 41 is driven to move downward synchronously. As the ejector rod 41 moves downward, at this time, the wedge block 47 is no longer blocked by the ejector rod 41. At this time, the spring 45 that was initially in a stretched state will rebound, thereby driving the barrier grid plate 44 to horizontally displace in the direction close to the spring 45. At this time, the rectangular heat dissipation openings on the barrier grid plate 44 will be horizontally misaligned with the rectangular heat dissipation openings on the heat dissipation frame 42, so as to use the barrier grid plate 44 to block the rectangular heat dissipation openings on the heat dissipation frame 42, and indirectly block the heat dissipation grid 13, so as to temporarily prevent the air circulation between the inside of the waterproof box 1 and the external environment. When the grooved moving plate 25 moves upward and resets, the upper end of the ejector rod 41 will be in extrusion fit with the inclined surface of the bottom surface of the wedge block 47, so as to drive the barrier grid plate 44 to displace and reset in the reverse direction through the wedge block 47. During the process, the spring 45 is in a stretched state. At this time, the rectangular heat dissipation openings on the barrier grid plate 44 correspond to the rectangular heat dissipation openings on the heat dissipation frame 42 again, that is, the rectangular heat dissipation openings of the two are no longer misaligned. At this time, the air inside the waterproof box 1 and the external environment circulates normally.

[0054] Thereby, through the cooperation of the barrier grid plate 44 and the heat dissipation frame 42, the effect of intermittently blocking the heat dissipation grid 13 can be achieved, so that the heat dissipation grid 13 is in an intermittent open and closed state, so as to reduce the entry of external rainwater into the waterproof box 1 through the heat dissipation grid 13 when it rains, thereby reducing the damage to the reactor main body 14 caused by rainwater entering the waterproof box 1. When it is sunny, the barrier grid plate 44 and the heat dissipation frame 42 will not block the heat dissipation grid 13, so it will not affect the normal heat dissipation effect of the reactor main body 14.

[0055] At the same time, if there is still rainwater passing through the heat dissipation grid 13 during the process of misalignment switching of the rectangular heat dissipation openings on the heat dissipation frame 42 and the barrier grid plate 44, the amount of this rainwater is very small, and it will fall into the drainage bin 43 along the trend and be discharged from the inside of the waterproof box 1 through the drainage bin 43 along the trend, thereby further reducing the probability of rainwater entering the waterproof box 1.

[0056] Embodiment 4: On the basis of Embodiments 1 to 3, as Figure 12 、 Figure 13 shown, a matching component is further provided on the heat dissipation grid 13. The matching component includes side plates 51 symmetrically and fixedly connected to the inner side of the heat dissipation frame 42. There are four side plates 51 in total. A rotating shaft 52 is rotatably connected to one side of each side plate 51 close to the barrier grid plate 44. A fan blade 53 is fixedly connected to the rotating shaft 52. A transmission component 54 for driving the fan blade 53 to rotate is provided between the rotating shaft 52 and the output shaft of the servo motor 21, as Figure 13As shown, the transmission component 54 includes two upper synchronous pulleys and two lower synchronous pulleys, as well as a synchronous belt that is drivingly connected between the upper and lower synchronous pulleys. The two upper synchronous pulleys are respectively fixedly connected to two rotating shafts 52 on the side close to the servo motor 21, and the two lower synchronous pulleys are fixedly connected to the output shaft of the servo motor 21. Two linkage rods 55 are arranged between the four rotating shafts 52. The two linkage rods 55 are respectively fixedly connected between two rotating shafts 52 on the same axis for realizing the synchronous rotation of the four fan blades 53.

[0057] When the reactor is in use: At the same time, in the above-mentioned Embodiment 1, during the process of the servo motor 21 starting to rotate the output shaft, it will also drive the two lower synchronous pulleys to rotate synchronously. The two lower synchronous pulleys drive the two upper synchronous pulleys to rotate synchronously through two synchronous belts, thereby driving the two rotating shafts 52 and the fan blades 53 to rotate synchronously. Then, through the linkage rods 55, the other two fan blades 53 are also driven to rotate synchronously. In this way, through the continuous rotation of the four fan blades 53 corresponding to the heat dissipation grille 13, the air circulation during the operation of the reactor main body 14 in the waterproof box 1 is promoted.

[0058] Thereby, during the process of the above-mentioned heat dissipation frame 42 and the barrier grille 44 being switched in a staggered manner, through the continuous rotation of the fan blades 53, the heat generated during the operation of the reactor main body 14 is timely discharged to the outside of the waterproof box 1, reducing the heat accumulation inside the upper part of the waterproof box 1 and ensuring the comprehensive heat dissipation effect during the operation of the reactor main body 14 inside the waterproof box 1.

[0059] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements will not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A waterproof intelligent reactor, comprising a waterproof box (1) and a reactor body (14) installed inside the waterproof box (1), wherein a box door (12) is hingedly connected to one side of the waterproof box (1), heat dissipation openings are symmetrically provided on both sides of the top of the waterproof box (1), and heat dissipation grilles (13) are provided on the heat dissipation openings, and a top plate (11) is fixedly provided on the top of the waterproof box (1), characterized in that: A protective processing mechanism is provided inside the waterproof box (1), a collecting component is provided at the lower part of the waterproof box (1), and an alternating blocking mechanism and a matching component are provided on the heat dissipation grille (13); The protective treatment mechanism comprises a servo motor (21) fixedly mounted inside the waterproof box (1); a moving disk (22) is fixedly connected to the output shaft of the servo motor (21); a cylinder (23) is fixedly connected to the surface of the moving disk (22) on the side away from the servo motor (21); the cylinder (23) is located at an eccentric position of the moving disk (22); two slotted plates (24) are fixedly connected to the side of the waterproof box (1) close to the moving disk (22); a slotted moving plate (25) is slidably connected between the two slotted plates (24); the middle part of the slotted moving plate (25) is slidably matched with the cylinder (23); a bottom rod (26) is fixedly connected to the bottom of the slotted moving plate (25); the bottom rod (26) is far away from the servo motor (21); A main frame plate (27) is fixedly connected to one end of the grooved movable plate (25); a side of the main frame plate (27) close to the box door (12) is detachably connected to a secondary frame plate (2701); the main frame plate (27) and the secondary frame plate (2701) are initially located above the periphery of the reactor body (14); the bottoms of the main frame plate (27) and the secondary frame plate (2701) are detachably connected to a magnetic frame (28); a total of three magnetic frames (28) are provided; a wiping strip (29) is fixedly connected to the bottom surface of each magnetic frame (28); the shape of the wiping strip (29) matches the shape of the reactor body (14); and the wiping strip (29) can fit the outer surface of the reactor body (14) after being moved downward; The collecting assembly comprises a collecting main bin (31) fixedly connected to the inner bottom surface of the waterproof box (1); a collecting sub-bin (3101) is detachably connected to a side of the collecting main bin (31) close to the box door (12); the positions of the collecting main bin (31) and the collecting sub-bin (3101) correspond to the positions of the wiping strip (29); a water collecting trough is arranged at a position corresponding to the bottom of the wiping strip (29) on the top surface of the collecting main bin (31) and the collecting sub-bin (3101); a collecting pipe (32) is fixedly connected to the side of the water collecting trough of the collecting main bin (31) away from the collecting sub-bin (3101); an end of the collecting pipe (32) away from the collecting main bin (31) is fixedly connected to a discharge pipe (34); an end of the discharge pipe (34) away from the collecting pipe (32) extends to the outside of the waterproof box (1); The alternating blocking mechanism comprises a top rod (41) fixedly connected to the top surface of the grooved movable plate (25); a heat dissipation frame (42) is fixedly connected to a position corresponding to the heat dissipation grille (13) inside the waterproof box (1); two heat dissipation frames (42) are provided in total, and correspond one to one with the heat dissipation grilles (13) provided on both sides of the waterproof box (1); a blocking grille (44) is slidably connected to a side of the heat dissipation frame (42) close to the top rod (41); a spring (45) is evenly fixedly connected between one side of the blocking grille (44) and the inner surface of the heat dissipation frame (42); a transverse axis (46) is fixedly connected to a side of the blocking grille (44) close to the top rod (41); a wedge block (47) is fixedly connected to one end of the transverse axis (46) away from the blocking grille (44); the bottom surface of the wedge block (47) is an inclined surface, and the inclined surface abuts against the upper end of the top rod (41); and a transverse plate (4401) is fixedly connected between the tops of the blocking grilles (44).

2. The waterproof intelligent reactor according to claim 1, characterized in that: The top surface of the top plate (11) is an inclined surface, and the surface of the inclined surface is evenly coated with a non-stick layer.

3. The waterproof intelligent reactor according to claim 1, characterized in that: Tenons (2702) are symmetrically arranged at two ends of the secondary frame plate (2701) on one side close to the main frame plate (27), and tenon grooves (2703) are arranged at positions of the main frame plate (27) corresponding to the tenons (2702), and the tenon grooves (2703) are plugged into and matched with the tenons (2702).

4. The waterproof intelligent reactor according to claim 1, characterized in that: The magnetic frame (28) is magnetically matched with the bottom surfaces of the main frame plate (27) and the auxiliary frame plate (2701), and the wiping strip (29) is made of a soft water-absorbing sponge material.

5. The waterproof intelligent reactor according to claim 1, characterized in that: The two ends of the main collecting bin (31) close to the side of the auxiliary collecting bin (3101) are symmetrically provided with chamber holes (3102), and the positions of the auxiliary collecting bin (3101) corresponding to the chamber holes (3102) are provided with chamber blocks (3103).

6. The waterproof intelligent reactor according to claim 1, characterized in that: The bottom of the heat dissipation frame (42) is fixedly connected to a drainage bin (43), the drainage bin (43) is connected vertically, the upper portion corresponds to the bottom of the heat dissipation frame (42), and the lower portion extends to the outside of the waterproof box (1).

7. The waterproof intelligent reactor according to claim 1, characterized in that: The mating component comprises a side plate (51) symmetrically fixedly connected to a side of the heat dissipation frame (42) close to the servo motor (21), wherein four side plates (51) are provided, and a rotating shaft (52) is rotatably connected to a side of each side plate (51) close to the barrier grid (44), and a fan blade (53) is fixedly connected to the rotating shaft (52), and a transmission component (54) for driving the fan blade (53) to rotate is provided between the rotating shaft (52) and the output shaft of the servo motor (21), and four rotating shafts (52) are provided, and two linkage rods (55) are provided between the four rotating shafts (52).

8. The waterproof intelligent reactor according to claim 7, characterized in that: The transmission component (54) comprises two upper synchronous wheels and two lower synchronous wheels, and a synchronous belt drivingly connected between the upper and lower synchronous wheels, the two upper synchronous wheels are respectively fixedly connected to two rotating shafts (52) on one side close to the servo motor (21), and the two lower synchronous wheels are fixedly connected to the output shaft of the servo motor (21).

Citation Information

Patent Citations

  • Waterproof reactor

    CN219143911U

  • Protective device of electric reactor

    CN219267413U

Cited By

  • Safety high-voltage reactor

    CN121483812A