A high-efficiency and low-cost intelligent electrical dehumidification device

By using heating blocks to heat and dry the desiccant and an automatic filling mechanism, the problem of reduced moisture absorption efficiency of the desiccant is solved, enabling the recycling of the desiccant and efficient dehumidification of electrical equipment. This reduces maintenance costs and improves the safety and efficiency of power grid operation and its level of intelligence.

CN116951915BActive Publication Date: 2025-10-28JIANGSU HNDER ELECTRIC
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Patent Information

Application Number
CN202310916960.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-25
Publication Date
2025-10-28
Estimated Expiration
2043-07-25

AI Technical Summary

Technical Problem

In existing high-efficiency, low-cost intelligent electrical dehumidification devices, the desiccant changes color due to moisture absorption, reducing its moisture absorption efficiency. It requires manual replacement, increasing maintenance costs and posing operational risks. Furthermore, it may lead to a deterioration in the insulation performance of electrical equipment.

Method used

The desiccant is heated and dried by a heating block, and the moisture is discharged through the exhaust pipe, realizing the recycling of the desiccant. The heating process is controlled by a weighing sensor and a controller to ensure the dehumidification efficiency of the desiccant. The automatic filling and replacement of the desiccant is achieved by a transmission mechanism and an electric push rod, avoiding manual intervention.

Benefits of technology

It enables the recycling of desiccants, reduces replacement frequency, lowers maintenance costs, improves the insulation performance of electrical equipment and the safe operation efficiency of the power grid, optimizes the resource allocation of power companies, and enhances the level of automation and intelligence.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of electrical dehumidification technology, and more particularly to a high-efficiency, low-cost intelligent electrical dehumidification device. The invention discloses a high-efficiency, low-cost intelligent electrical dehumidification device, comprising an electrical box and a power box arranged vertically. The electrical box is connected to the power box via a transmission mechanism. The outer wall of the transmission mechanism is equipped with several dehumidification boxes. The power box contains a dehumidification box, a feeding box, and a second electric push rod. The telescopic end of the second electric push rod is connected to the feeding box via a Z-shaped plate. The desiccant of this invention recovers its dehumidification efficiency after drying, enabling the desiccant to be recycled. This allows the relative humidity in the electrical box to be consistently controlled within a reasonable range, eliminating the need for desiccant replacement for extended periods. This will generate significant economic benefits for power companies, improve the efficiency of power grid operation, optimize the allocation of personnel and resources within power grid companies, and enhance the automation and intelligent technology level of power production.
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Description

Technical Field

[0001] This invention relates to the field of electrical dehumidification technology, specifically to a high-efficiency, low-cost intelligent electrical dehumidification device. Background Technology

[0002] Electrical boxes house numerous electrical devices. Excessive humidity inside the electrical box can damage the insulation of these devices, cause corrosion, and lead to malfunctions or failures to operate, resulting in reduced equipment performance, shorter lifespan, and safety hazards. Dehumidification is necessary to reduce the adverse effects of humidity on electrical equipment. Common dehumidification methods include desiccant dehumidification, ventilation dehumidification, heating dehumidification, and semiconductor condensation dehumidification. Ventilation dehumidification is not very effective for relatively enclosed electrical boxes. Heating dehumidification suffers from drawbacks such as localized overheating of electrical equipment and low efficiency under certain operating conditions. Semiconductor condensation dehumidification is expensive, while desiccant dehumidification is relatively inexpensive.

[0003] Typically, after unattended electrical equipment has been running for several months, the desiccant in existing high-efficiency, low-cost intelligent electrical dehumidification devices will change color due to moisture absorption, and the desiccant's moisture absorption efficiency will decrease. At this time, in order to ensure the moisture absorption performance of the desiccant, it is necessary to replace it manually, which increases the maintenance costs of power companies. Furthermore, if the desiccant is not replaced in time, the insulation performance of the electrical equipment may deteriorate, posing a significant operational risk. Summary of the Invention

[0004] The purpose of this invention is to provide a high-efficiency, low-cost intelligent electrical dehumidification device to solve the problems mentioned in the background art. In existing high-efficiency, low-cost intelligent electrical dehumidification devices, the desiccant discolors due to moisture absorption, resulting in reduced moisture absorption efficiency. To ensure the desiccant's moisture absorption performance, manual replacement is required, increasing maintenance costs for power companies. Furthermore, untimely desiccant replacement may lead to poor insulation performance of electrical equipment, posing a significant operational risk. This solution allows all or part of the desiccant in the dehumidification box to be poured onto a shelf. A heating block heats and dries the desiccant on the shelf, and the generated moisture is discharged to the outside through an exhaust pipe, thus dehumidifying and drying the desiccant and achieving desiccant recycling. After the moisture in the desiccant evaporates, its weight decreases. When the weighing sensor detects that the weight is lower than the control system's set value, the controller stops the heating block. This allows the dehumidification box to... Completely placed inside the feeding box, the desiccant is filled into the dehumidification box. Electric push rod one retracts, causing the long end of the L-shaped plate to move forward. The long end of the L-shaped plate passes through opening three and contacts door panel three, pushing door panel three forward. Door panel three and the torsion spring rotate, and the long end of the L-shaped plate continues to move forward. After the long end of the L-shaped plate contacts the first baffle, it drives the first baffle and the box cover to move forward, closing the first dehumidification box and completing the filling. Electric push rod one extends and resets. Electric push rod two then causes the long end of the L-shaped plate to disengage from the first baffle and the feeding box to move backward and reset. This process is repeated for several dehumidification boxes. After drying, the desiccant's dehumidification efficiency is restored, allowing the relative humidity in the electrical box to be consistently controlled within a reasonable range. This eliminates the need to replace the desiccant for a considerable period, resulting in significant economic benefits for power companies. It improves the safety and efficiency of power grid operation, optimizes the allocation of personnel and resources within power grid companies, and enhances the automation and intelligent technology level of power production.

[0005] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a high-efficiency and low-cost intelligent electrical dehumidification device, comprising an electrical box and a power box arranged vertically, the electrical box being connected to the power box via a transmission mechanism, the outer wall of the transmission mechanism being provided with several dehumidification boxes, the power box containing a dehumidification box, a feeding box, and an electric push rod II, the telescopic end of the electric push rod II being connected to the feeding box via a Z-shaped plate, the feeding box being located on the right side wall of the dehumidification box, a heating block being provided at the top of the dehumidification box, a dehumidification pipe communicating with the dehumidification box being provided on the outer wall of the power box, a humidity sensor and a controller being provided at the bottom of the electrical box, a dehumidification mechanism being provided on the inner wall of the dehumidification box, and several conveying holes for communicating with the power box being provided at the bottom of the electrical box;

[0006] The bottom of the dehumidifier box has a series of interconnected sliding holes, sliding grooves, and reset grooves from front to back. The rear end of the inner wall of the dehumidifier box has a sliding hole, the front end of the inner wall of the dehumidifier box has a reset groove, the middle of the inner wall of the dehumidifier box has a sliding groove, and a box cover is slidably mounted on the inner wall of the sliding groove. The bottom end of the box cover away from the sliding hole has a baffle, which extends to the outside of the reset groove. Both the baffle and the box cover are slidably connected to the dehumidifier box. The top of the power box has a multi-section electric push rod and an electric push rod 1. The telescopic end of the multi-section electric push rod is connected to a push plate, and the telescopic end of the electric push rod 1 is fixed with an L-shaped plate. The dehumidifier box is filled with desiccant, and both the surface of the dehumidifier box and the box cover have several through holes.

[0007] In a preferred embodiment: the transmission mechanism includes belt rollers and belts, and the top of the electrical box and the power box are rotatably provided with a plurality of belt rollers, which are rotatably connected to each other by a plurality of belts. Two belts are connected by a dehumidification box, which is disposed on the outer surface of the belts. The power box is provided with a motor, and the output shaft of the motor is fixedly connected to one of the belt rollers.

[0008] In a preferred embodiment: the dehumidification mechanism includes an opening 1, an opening 2, a door panel 1, a spring, a door panel 2, a shelf, a motor 2, a shelf, a weighing sensor, an opening 3, and a door panel 3. The top of the dehumidification box has an opening 1, and the bottom of the dehumidification box has an opening 2. The door panel 1 is rotatably mounted on the inner wall of the opening 1 and is connected to the dehumidification box by a spring. The inner wall of the opening 2 has a door panel rotatably mounted on it. The inner wall of the dehumidification box has a shelf rotatably mounted on it. The outer wall of the dehumidification box has a motor 2, and the output shaft of the motor 2 is fixedly connected to the shelf. The inner wall of the dehumidification box has a shelf inside the opening 2 and is movably connected to the shelf. The top of the shelf has a weighing sensor.

[0009] In a preferred embodiment: the inner wall of the feeding box is provided with an opening three near the Z-shaped plate, and a door panel three is rotatably connected to the inner wall of the feeding box via a rotating shaft two. A torsion spring is provided between the door panel three and the feeding box, and the torsion spring is sleeved on the outer wall of the rotating shaft two. The door panel three is adapted to the opening three, and the long end of the L-shaped plate is adapted to the opening three, and the two are movably connected. The long end of the L-shaped plate is adapted to the length of the dehumidification box, which facilitates closing the dehumidification box.

[0010] In a preferred embodiment: the belt roller is located between the multi-section electric push rod and the first electric push rod, and the push plate and the L-shaped plate are both movably connected to the baffle, driving the baffle to move.

[0011] In a preferred embodiment: the dehumidification box is adapted to the conveying hole, the telescopic ends of the multi-section electric push rod and the telescopic ends of the first electric push rod are oriented opposite to each other, and the controller is electrically connected to the control system to realize remote control.

[0012] In a preferred embodiment: two belts are symmetrically arranged, and the belts pass through the inside of the conveying hole to facilitate belt rotation.

[0013] In a preferred embodiment: the bottom of the dehumidification box is fixedly connected to the bottom of the electric push rod 2 via a base, the push plate is located below the opening 1, the opening 1 is located below the conveying hole on the left side, and the opening 1 and the conveying hole cooperate with each other.

[0014] In a preferred embodiment: there are several springs, and two conveying holes are symmetrically arranged, with the two conveying holes cooperating.

[0015] In a preferred embodiment: the feeding box is movably connected to the dehumidification box, and the long end of the L-shaped plate is movably connected to the baffle to support the baffle.

[0016] Compared with the prior art, the beneficial effects achieved by the present invention are:

[0017] This invention involves pouring all or part of the desiccant from the dehumidifier box onto a shelf. A heating block heats and dries the desiccant on the shelf, and the resulting moisture is discharged to the outside through an exhaust pipe, thus dehumidifying and drying the desiccant and enabling its recycling. After the moisture in the desiccant evaporates, its weight decreases. When a weighing sensor detects that the weight is lower than the control system's set value, the controller stops the heating block. The dehumidifier box can be completely placed inside the loading box. When the desiccant is filled into the dehumidifier box, the electric push rod retracts, moving the long end of the L-shaped plate forward. The long end of the L-shaped plate passes through opening three and contacts door panel three, pushing door panel three forward. Door panel three and the torsion spring rotate, and the long end of the L-shaped plate... Continuing to move forward, the long end of the L-shaped plate contacts the first baffle, causing the first baffle and the box cover to move forward, closing and filling the first dehumidifier box. Electric push rod one extends and resets, while electric push rod two moves the long end of the L-shaped plate away from the first baffle and the feeding box backward to reset. This process is repeated for several dehumidifier boxes. The dehumidification efficiency of the dried desiccant is restored, ensuring that the relative humidity in the electrical box is always controlled within a reasonable range. This allows for a relatively long period without the need to replace the desiccant, resulting in significant economic benefits for power companies, improving the safety and efficiency of power grid operation, optimizing the allocation of personnel and resources, and enhancing the automation and intelligent technology level of power production. Attached Figure Description

[0018] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:

[0019] Figure 1 This is a schematic diagram of the overall front view structure of the present invention;

[0020] Figure 2 This is a partial front view structural schematic diagram of the present invention;

[0021] Figure 3 This is a schematic diagram of the dehumidification box in this invention;

[0022] Figure 4 This is a bottom view of the L-shaped plate structure in this invention;

[0023] Figure 5 This is a bottom view schematic diagram of the multi-section electric actuator in this invention;

[0024] Figure 6 This is a top view of the overall structure of the invention;

[0025] Figure 7 This is the present invention. Figure 6 Schematic diagram of the structure at point AA;

[0026] Figure 8 This is a partial structural schematic diagram of the present invention from the rear view;

[0027] Figure 9 This is the present invention. Figure 1 A magnified view of a section at point A in the middle;

[0028] Figure 10 This is a schematic diagram of the Z-shaped plate in this invention;

[0029] Figure 11 This is the present invention. Figure 10 A partial enlarged view of point B in the middle;

[0030] In the diagram: 1. Electrical box; 2. Power box; 3. Dehumidifier box; 4. Dehumidifier chamber; 5. Feeding box; 6. Electric push rod II; 7. Z-shaped plate; 8. Heating block; 9. Exhaust pipe; 10. Humidity sensor; 11. Controller; 12. Conveying hole; 13. Sliding hole; 14. Sliding groove; 15. Reset groove; 16. Box cover; 17. Baffle; 18. Multi-section electric push rod; 19. Electric push rod I; 20. Push plate; 21. L-shaped plate; 23. Belt roller; 24. Belt; 25. Motor I; 26. Door panel I; 27. Spring; 28. Door panel II; 29. ​​Shelf; 30. Motor II; 31. Shelf; 32. Weighing sensor; 33. Door panel III; 34. Torsion spring; 35. Opening III. Detailed Implementation

[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0032] Please see Figure 1-Figure 5 This invention provides a technical solution: a high-efficiency, low-cost intelligent electric dehumidifier, comprising an electrical box 1 and a power box 2 arranged vertically. The electrical box 1 is connected to the power box 2 via a transmission mechanism. The outer wall of the transmission mechanism is provided with several dehumidification boxes 3. The power box 2 contains a dehumidification box 4, a feeding box 5, and an electric push rod 6. The telescopic end of the electric push rod 6 is connected to the feeding box 5 via a Z-shaped plate 7. The feeding box 5 is located on the right side wall of the dehumidification box 4. A heating block 8 is provided at the top of the dehumidification box 4. A dehumidification pipe 9 communicating with the dehumidification box 4 is provided on the outer wall of the power box 2. A humidity sensor 10 and a controller 11 are provided at the bottom of the electrical box 1. A dehumidification mechanism is provided on the inner wall of the dehumidification box 4. Several conveying holes 12 for communicating with the power box 2 are provided at the bottom of the electrical box 1. The bottom of the dehumidification boxes 3 extends from front to back. The dehumidifier box 3 is provided with a sliding hole 13, a sliding groove 14, and a reset groove 15 connected in sequence. The rear end of the inner wall of the dehumidifier box 3 is provided with a sliding hole 13, the front end of the inner wall of the dehumidifier box 3 is provided with a reset groove 15, the middle of the inner wall of the dehumidifier box 3 is provided with a sliding groove 14, and a box cover 16 is slidably provided on the inner wall of the sliding groove 14. The bottom end of the box cover 16 away from the sliding hole 13 is provided with a baffle 17, which extends to the outside of the reset groove 15. Both the baffle 17 and the box cover 16 are slidably connected to the dehumidifier box 3. The top of the power box 2 is provided with a multi-section electric push rod 18 and an electric push rod 19. The telescopic end of the multi-section electric push rod 18 is connected to a push plate 20, and the telescopic end of the electric push rod 19 is fixedly provided with an L-shaped plate 21. The dehumidifier box 3 is filled with a desiccant, and both the surface of the dehumidifier box 3 and the box cover 16 are provided with several through holes.

[0033] See Figures 5-11The dehumidification mechanism includes an opening 1, an opening 2, a door panel 1 26, a spring 27, a door panel 28, a shelf 29, a motor 20, a shelf 31, a weighing sensor 32, an opening 35, and a door panel 33. The dehumidification box 4 has an opening 1 at its top and an opening 2 at its bottom. A door panel 1 26 is rotatably mounted on the inner wall of the opening 1, and the door panel 1 26 is connected to the dehumidification box 4 via a spring 27. A door panel 28 is rotatably mounted on the inner wall of the opening 2. A shelf 29 is rotatably mounted on the inner wall of the dehumidification box 4. A motor 20 is mounted on the outer wall of the dehumidification box 4, and the output shaft of the motor 20 is fixedly connected to the shelf 29. The inner wall of the dehumidification box 4... A shelf 31 is provided on the inner side of the second opening. The shelf 29 is movably connected to the shelf. A weighing sensor 32 is provided on the top of the shelf 29. An opening 35 is provided on the inner wall of the feeding box 5 near the Z-shaped plate 7. A door panel 33 is rotatably connected to the inner wall of the feeding box 5 through a pivot 2. A torsion spring 34 is provided between the door panel 33 and the feeding box 5. The torsion spring 34 is sleeved on the outer wall of the pivot 2. The door panel 33 is adapted to the opening 35. The long end of the L-shaped plate 21 is adapted to the opening 35 and the two are movably connected. The long end of the L-shaped plate 21 is adapted to the length of the dehumidification box 3, which facilitates the closing of the dehumidification box 3.

[0034] Specifically, the dehumidification box 3 is adapted to the conveying hole 12, the telescopic ends of the multi-section electric push rod 18 and the telescopic ends of the electric push rod 19 face each other, the controller 11 is electrically connected to the control system to realize remote control, the bottom of the dehumidification box 4 is fixedly connected to the bottom of the electric push rod 6 through the base, the push plate 20 is located below the opening 1, the opening 1 is located below the conveying hole 12 on the left side, the opening 1 and the conveying hole 12 cooperate, several springs 27 are provided, two conveying holes 12 are symmetrically arranged, the two conveying holes 12 cooperate, the feeding box 5 is movably connected to the dehumidification box 3, and the long end of the L-shaped plate 21 is movably connected to the baffle 17 to support the baffle 17.

[0035] The specific implementation method is as follows: During use, the controller 11 performs real-time dynamic control, or the humidity sensor 10 detects that the humidity data in the air inside the electrical box 1 exceeds the allowable range, and the controller 11 starts to control it. The transmission mechanism drives the dehumidification box 3 to rotate counterclockwise inside the electrical box 1. When the first dehumidification box 3 passes through the left conveying hole 12, the box cover 16 and the baffle 17 are located at the bottom of the dehumidification box 3. After the bottom of the first baffle 17 coincides with the top of the push plate 20, the transmission mechanism stops running, the multi-section electric push rod 18 retracts and drives the push plate 20 to move backward, and the push plate 20 drives the baffle 17. Moving backward, the baffle 17 causes the cover 16 to move backward along the slide groove 14 and slide hole 13, opening the dehumidifier box 3. The desiccant in the dehumidifier box 3 falls onto the door panel 26. Under the gravity of the desiccant, the door panel 26 rotates downward, opening the first opening. The desiccant falls through the first opening onto the shelf 29 inside the dehumidifier box 4. After there is no desiccant on the upper surface of the door panel 26, the spring force of the spring 27 causes the door panel 26 to rotate upward and reset, closing the first opening. The transmission mechanism drives the dehumidifier box 3 to continue moving. After the first dehumidifier box 3 disengages from the first opening, the multi-section electric push rod 18 extends and drives the push... Plate 20 moves forward to reset, and the first dehumidifier box 3 moves above the loading box 5. At this time, the first baffle 17 and the long end of the L-shaped plate 21 form a 90-degree angle, and the long end of the L-shaped plate 21 can be projected onto the baffle 17. The electric push rod 19 retracts, driving the L-shaped plate 21 to move forward. The L-shaped plate 21 pushes the first baffle 17 forward along the slide groove 14 and slide hole 13, so that the first dehumidifier box 3 closes. The electric push rod 19 extends, driving the L-shaped plate 21 to move backward to reset. The above steps are repeated to pour all or part of the desiccant in the dehumidifier box 3 onto the placement plate 29. Heating block 8 heats and dries the desiccant on the shelf 29. The generated water vapor is discharged to the outside through the exhaust pipe 9, thereby dehumidifying and drying the desiccant. After the water in the desiccant evaporates, the weight of the desiccant will decrease. After the weighing sensor 32 detects that the weight is lower than the set value of the control system, the controller 11 controls the heating block 8 to stop heating. Next, the desiccant needs to be refilled. The transmission mechanism drives the first dehumidification box 3 to move to the conveying hole 12 again and opens the first dehumidification box 3 again. After opening, the first dehumidification box 3 moves to the top of the loading box 5 again, and the transmission mechanism stops running.The output shaft of motor 2 (30) drives the shelf 29 to rotate clockwise. After the right end of the shelf 29 contacts the shelf 31, it stops rotating and tilts to the right. The desiccant rolls down along the shelf 29 and accumulates at the door panel 28. The gravity of the accumulated desiccant causes the door panel 28 to rotate to the right, opening the second opening. The desiccant falls through the opening into the loading box 5. After the loading box 5 is mostly filled with desiccant, the output shaft of motor 2 (30) rotates in the opposite direction, causing the shelf 29 to return to its horizontal position. The left side of the door panel 28 is no longer filled with desiccant. The desiccant is removed, and the door panel 28 rotates in the opposite direction and resets under its own weight, closing the opening. At this time, the electric push rod 19 extends, causing the loading box 5 to move upward. The loading box 5 gradually approaches the first dehumidification box 3 until it is completely wrapped around the first dehumidification box 3. During this process, the desiccant in the loading box 5 enters the first dehumidification box 3, and the first dehumidification box 3 is completely placed inside the loading box 5. After the first dehumidification box 3 is filled with desiccant, the electric push rod 19 retracts, causing the long end of the L-shaped plate 21 to move forward. The long end of the L-shaped plate 21 passes through the opening 35 and contacts the door panel 33, pushing the door panel 33 forward. The door panel 33 and the torsion spring 34 rotate, and the long end of the L-shaped plate 21 continues to move forward. After the long end of the L-shaped plate 21 contacts the first baffle 17, it drives the first baffle 17 and the box cover 16 to move forward, so that the first dehumidification box 3 closes and is filled. The electric push rod 19 extends and resets, and the electric push rod 26 drives the long end of the L-shaped plate 21 to disengage from the first baffle 17 and the feeding box 5 to move backward and reset. Under the action of its own elasticity, the door panel 33 rotates in the opposite direction to reset, and the opening 35 closes and resets. This process sequentially fills several dehumidification boxes 3, restoring the dehumidification efficiency of the dried desiccant. This ensures that the relative humidity in the electrical box 1 is always controlled within a reasonable range, eliminating the need for desiccant replacement for extended periods. This will generate significant economic benefits for power companies, improve the safety and efficiency of power grid operation, optimize the allocation of personnel and resources within power grid companies, and enhance the automation and intelligent technology level of power production.

[0036] Please see Figures 1-8This invention provides a technical solution: a high-efficiency, low-cost intelligent electric dehumidification device. The transmission mechanism includes belt rollers 23 and belts 24. Several belt rollers 23 are rotatably mounted on the top of both the electrical box 1 and the power box 2. The several belt rollers 23 are rotatably connected to each other by several belts 24. Two belts 24 are connected by a dehumidification box 3, which is disposed on the outer surface of the belts 24. A motor 25 is provided inside the power box 2. The output shaft of the motor 25 is fixedly connected to one of the belt rollers 23. The belt roller 23 is located between the multi-section electric push rod 18 and the electric push rod 19. The push plate 20 and the L-shaped plate 21 are movably connected to the baffle 17, driving the baffle 17 to move. Two belts 24 are symmetrically arranged and pass through the inside of the conveying hole 12 to facilitate the rotation of the belts 24.

[0037] The specific implementation method is as follows: When in use, the output shaft of motor 25 drives the belt roller 23 on its outer wall to rotate counterclockwise. The belt 24 drives several belt rollers 23 to rotate counterclockwise synchronously. The belt rollers 23 support the belt 24. The belt 24 drives the dehumidification box 3 to rotate counterclockwise inside the electrical box 1. The dehumidification box 3 moves downward through the left conveying hole 12 and moves upward through the right conveying hole 12.

[0038] Working principle of the invention:

[0039] In this invention, all or part of the desiccant in the dehumidification box 3 is poured onto the shelf 29. The heating block 8 operates to heat and dry the desiccant on the shelf 29. The generated water vapor is discharged to the outside through the exhaust pipe 9, thereby dehumidifying and drying the desiccant and realizing the recycling of the desiccant. After the water in the desiccant evaporates, the weight of the desiccant will decrease. After the weighing sensor 32 detects that the weight is lower than the set value of the control system, the controller 11 controls the heating block 8 to stop heating. This allows the dehumidification box 3 to be completely placed in the loading box 5. The desiccant is filled into the dehumidification box 3. The electric push rod 19 retracts, driving the long end of the L-shaped plate 21 forward. The long end of the L-shaped plate 21 passes through the opening 35 and contacts the door panel 33, pushing the door panel 33 forward. The door panel 33 and the torsion spring 34 rotate. The long end of the L-shaped plate 21 continues to move forward. After the long end of the L-shaped plate 21 contacts the first baffle 17, it drives the first baffle 17 and the box cover 16 to move forward, so that the first dehumidification box 3 is closed and filled. The electric push rod 19 extends and resets, and the electric push rod 26 drives the long end of the L-shaped plate 21 to disengage from the first baffle 17 and the feeding box 5 to move backward and reset. Several dehumidification boxes 3 are filled in sequence. The dehumidification efficiency of the dried desiccant is restored, and the relative humidity in the electrical box 1 can always be controlled within a reasonable range. It can be achieved that the desiccant does not need to be replaced for a long time. This will generate significant economic benefits for power companies, improve the safe operation efficiency of the power grid, optimize the allocation of personnel and materials of power grid companies, and improve the automation and intelligent technology level of power production.

[0040] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A high-efficiency, low-cost intelligent electrical dehumidification device, characterized in that: The device includes an electrical box (1) and a power box (2) arranged vertically. The electrical box (1) is connected to the power box (2) through a transmission mechanism. The outer wall of the transmission mechanism is provided with several dehumidification boxes (3). The power box (2) is provided with a dehumidification box (4), a feeding box (5) and an electric push rod (6) inside. The telescopic end of the electric push rod (6) is connected to the feeding box (5) through a Z-shaped plate (7). The feeding box (5) is located on the right side wall of the dehumidification box (4). The top of the dehumidification box (4) is provided with a heating block (8). The outer wall of the power box (2) is provided with a dehumidification pipe (9) that communicates with the dehumidification box (4). The bottom of the electrical box (1) is provided with a humidity sensor (10) and a controller (11). The inner wall of the dehumidification box (4) is provided with a dehumidification mechanism. The bottom of the electrical box (1) is provided with several conveying holes (12) for communicating with the power box (2). The bottom of the dehumidifier box (3) is provided with a sliding hole (13), a sliding groove (14), and a reset groove (15) connected from front to back. The rear end of the inner wall of the dehumidifier box (3) is provided with a sliding hole (13), the front end of the inner wall of the dehumidifier box (3) is provided with a reset groove (15), the middle part of the inner wall of the dehumidifier box (3) is provided with a sliding groove (14), and a box cover (16) is slidably provided on the inner wall of the sliding groove (14). A baffle (17) is provided at the bottom end of the box cover (16) away from the sliding hole (13), and the baffle (17) extends to the... Outside the reset groove (15), the baffle (17) and the box cover (16) are slidably connected to the dehumidification box (3). The top of the power box (2) is provided with a multi-section electric push rod (18) and an electric push rod one (19). The telescopic end of the multi-section electric push rod (18) is connected to a push plate (20). The telescopic end of the electric push rod one (19) is fixedly provided with an L-shaped plate (21). The dehumidification box (3) is filled with a desiccant. The surfaces of the dehumidification box (3) and the box cover (16) are provided with several through holes.

2. The high-efficiency, low-cost intelligent electrical dehumidifier according to claim 1, characterized in that: The transmission mechanism includes belt rollers (23) and belts (24). The top of the electrical box (1) and the power box (2) are rotatably provided with several belt rollers (23). The several belt rollers (23) are rotatably connected to each other by several belts (24). The two belts (24) are connected by the dehumidification box (3). The dehumidification box (3) is set on the outer surface of the belts (24). The power box (2) is provided with a motor (25). The output shaft of the motor (25) is fixedly connected to one of the belt rollers (23).

3. The high-efficiency, low-cost intelligent electrical dehumidifier according to claim 1, characterized in that: The dehumidification mechanism includes an opening 1, an opening 2, a door panel 1 (26), a spring (27), a door panel 2 (28), a shelf (29), a motor 2 (30), a shelf (31), a weighing sensor (32), an opening 3 (35), and a door panel 3 (33). The top of the dehumidification box (4) is provided with an opening 1, and the bottom of the dehumidification box (4) is provided with an opening 2. The door panel 1 (26) is rotatably installed on the inner wall of the opening 1. The door panel 1 (26) is connected to the dehumidification box by the spring (27). (4) Connection: The inner wall of the second opening is provided with a door panel (28), the inner wall of the dehumidification box (4) is provided with a shelf (29), the outer wall of the dehumidification box (4) is provided with a motor (30), the output shaft of the motor (30) is fixedly connected to the shelf (29), the inner wall of the dehumidification box (4) is provided with a shelf (31) on the inner side of the second opening, the shelf (29) is movably connected to the shelf, and the top of the shelf (29) is provided with a weighing sensor (32).

4. The high-efficiency, low-cost intelligent electrical dehumidification device according to claim 3, characterized in that: The inner wall of the feeding box (5) is provided with an opening three (35) near the Z-shaped plate (7). The inner wall of the feeding box (5) is rotatably connected to a door panel three (33) via a rotating shaft two. A torsion spring (34) is provided between the door panel three (33) and the feeding box (5). The torsion spring (34) is sleeved on the outer wall of the rotating shaft two. The door panel three (33) is adapted to the opening three (35). The long end of the L-shaped plate (21) is adapted to the opening three (35), and the two are movably connected. The long end of the L-shaped plate (21) is adapted to the length of the dehumidification box (3).

5. The high-efficiency, low-cost intelligent electrical dehumidification device according to claim 2, characterized in that: The belt roller (23) is located between the multi-section electric push rod (18) and the electric push rod (19), and the push plate (20) and the L-shaped plate (21) are both movably connected to the baffle (17).

6. The high-efficiency, low-cost intelligent electrical dehumidification device according to claim 5, characterized in that: The dehumidification box (3) is adapted to the conveying hole (12), the telescopic ends of the multi-section electric push rod (18) and the telescopic ends of the electric push rod (19) are oriented opposite to each other, and the controller (11) is electrically connected to the control system.

7. The high-efficiency, low-cost intelligent electrical dehumidification device according to claim 6, characterized in that: Two belts (24) are symmetrically arranged, and the belts (24) pass through the inside of the conveying hole (12).

8. The high-efficiency, low-cost intelligent electrical dehumidification device according to claim 3, characterized in that: The bottom of the dehumidification box (4) is fixedly connected to the bottom of the electric push rod (6) via a base. The push plate (20) is located below the opening, which is located below the conveying hole (12) on the left side.

9. The high-efficiency, low-cost intelligent electrical dehumidification device according to claim 3, characterized in that: The spring (27) is provided in several parts, and the conveying hole (12) is symmetrically arranged in two parts.

10. The high-efficiency, low-cost intelligent electrical dehumidifier according to claim 1, characterized in that: The feeding box (5) is movably connected to the dehumidification box (3), and the long end of the L-shaped plate (21) is movably connected to the baffle (17).

Citation Information

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