An electrochemical scale and mist inhibition energy-saving intelligent control device
By designing an active cleaning heat dissipation tank structure in the electrochemical scale inhibition and defogging energy-saving device, and using a cleaning sponge to remove impurities, the problem of poor heat dissipation effect and cleaning difficulty caused by impurities entering the heat dissipation tank is solved, achieving efficient heat dissipation performance maintenance and cost reduction.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- XINJIANG DAWEI TECHNOLOGY CO LTD
- Filing Date
- 2025-07-01
- Publication Date
- 2026-05-29
AI Technical Summary
The heat dissipation tank design of existing electrochemical scale inhibition and defogging energy-saving devices has the problems that impurities can easily enter, affecting the heat dissipation effect and potentially causing short circuit faults. In addition, the cleaning method is cumbersome and costly.
An active cleaning heat sink structure is designed. By setting a cleaning sponge on the protective mesh, impurities are removed by physical friction. Modular disassembly and rapid cleaning are achieved, reducing maintenance difficulty and cost.
Effectively keeping the heat dissipation slots unobstructed reduces maintenance complexity and costs, and improves equipment stability and lifespan.
Smart Images

Figure CN224294041U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of power engineering technology, and in particular to an electrochemical scale inhibition, defogging, energy-saving intelligent control device. Background Technology
[0002] Electrochemical scale inhibition, defogging, and energy-saving intelligent control devices, used for water treatment and environmental optimization, achieve scale inhibition in circulating water systems, defogging in industrial production processes, and intelligent control of overall energy consumption through electrochemical action. They are widely used in power, chemical, and construction industries. In practical applications, this device typically requires the following structure:
[0003] 1. The electrode system, as the core component, consists of a cathode and an anode made of metal plates of special materials. It is used to generate an electric field and initiate an electrochemical reaction to remove calcium and magnesium ions from the water and prevent scaling.
[0004] 2. The reaction tank is made of corrosion-resistant material and is used to hold the water to be treated, providing space for the electrochemical reaction;
[0005] 3. The power supply system is responsible for providing a stable DC voltage and current to the electrodes, and the parameters can be adjusted according to water quality and treatment requirements;
[0006] 4. The intelligent control system integrates sensors, controllers, and actuators to monitor parameters such as water quality, water quantity, and water temperature in real time, and automatically adjusts the operating status of the device.
[0007] 5. The heat dissipation system, through structures such as heat dissipation slots, ensures that the internal electronic components and electrode system operate at a suitable temperature, avoiding performance degradation due to overheating.
[0008] Currently, various equipment and methods are employed in the industry to ensure the stable operation of this device. Some devices improve scale inhibition and demisting efficiency by optimizing electrode materials and power control algorithms; others improve the intelligent control system to enhance adaptability to complex operating conditions; and still others innovate the structure of the reaction tank to improve the uniformity of water flow treatment.
[0009] However, the above-described implementation methods still have the following problems. Regarding heat dissipation maintenance, most devices use fixed protective nets or no protective design for their heat dissipation channels. On the one hand, external dust, fibers, and other impurities can easily enter the device through the heat dissipation channels, accumulating on the surfaces of electrodes and electronic components. This not only affects heat dissipation but may also cause short circuits and other malfunctions. On the other hand, existing heat dissipation channel cleaning methods mostly involve manually disassembling the protective net and then using tools for deep cleaning. This operation is cumbersome and easily damages the internal structure, resulting in low cleaning efficiency and high costs. Furthermore, even if some devices are equipped with cleaning components, these components are usually fixed structures, making them difficult to disassemble for cleaning or replacement. After long-term use, the cleaning effect decreases significantly, failing to continuously ensure the unobstructed flow of the heat dissipation channels. This application proposes a solution to this problem: designing an electrochemical scale inhibition, defogging, and energy-saving intelligent control device that actively cleans the heat dissipation channel structure and enables rapid cleaning and reuse. This device can effectively remove impurities from the heat dissipation channels, maintain good heat dissipation performance, reduce maintenance difficulty and costs, and improve the stability and service life of the equipment. Utility Model Content
[0010] To address the shortcomings of existing technologies, this utility model provides an electrochemical scale inhibition, defogging, energy-saving, and intelligent control device. This solves the problem that most devices use fixed protective nets or no protective design for their heat dissipation tanks. On the one hand, external dust, fibers, and other impurities can easily enter the device through the heat dissipation tank and accumulate on the surface of electrodes and electronic components, which not only affects the heat dissipation effect but may also cause short circuits and other malfunctions. On the other hand, existing heat dissipation tank cleaning methods mostly involve manually disassembling the protective net and then using tools for in-depth cleaning, which is cumbersome, easily damages the internal structure, and has low cleaning efficiency and high cost.
[0011] To achieve the above objectives, this utility model provides the following technical solution:
[0012] An electrochemical scale inhibition, defogging, and energy-saving intelligent control device includes an intelligent control box. Protective nets are provided on both the left and right sides of the intelligent control box. Connecting plates are installed within each of the two protective nets. Two limiting plates are movably engaged within each of the two connecting plates. Two return springs are fixedly connected to the opposing surfaces of the two pairs of limiting plates. A set of cleaning sponges is provided on the opposing surfaces of the two connecting plates. A set of heat dissipation grooves is opened on both the left and right sides of the intelligent control box. Push blocks are fixedly connected to the opposing back surfaces of the two pairs of limiting plates. Two screws are provided on the surface of each of the two protective nets. The two sets of heat dissipation grooves are movably engaged with the two sets of cleaning sponges, respectively.
[0013] Preferably, the intelligent control box has slots on both the left and right sides, and the two slots are respectively engaged with the two protective nets. The front surfaces of the two connecting plates are each provided with a rectangular groove, and a fixing plate is fixedly connected in each of the two rectangular grooves.
[0014] Preferably, the two pairs of limiting plates are respectively engaged with the two rectangular slots, the two pairs of return springs are respectively fixedly connected to the two fixed plates, and the inner walls of the two protective nets are each provided with two limiting slots, and the two pairs of limiting plates are respectively engaged with the two pairs of limiting slots.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] 1. When the protective net needs to be disassembled, turn the two screws to open the limit fixing between the protective net and the intelligent control box. Then slide the protective net downward to disassemble it. During the sliding process, the connecting plate set on the protective net will move. A set of cleaning sponges on the surface of the connecting plate will clean a set of heat dissipation slots during the downward movement. When the device is running, the heat dissipation slots are prone to absorbing dust, fibers or scale particles in the air. When the protective net slides down, the cleaning sponge can wipe the inner wall of the heat dissipation slots at the same time, removing the attached impurities through physical friction, maintaining the heat dissipation channel unobstructed, and reducing maintenance complexity.
[0017] 2. After the protective net is disassembled, the cleaning sponge needs to be cleaned. By pulling the push block, the fixed limit plate is moved together, compressing the two pairs of return springs. At this time, the two limit plates will disengage from the two limit grooves opened on the inner wall of the protective net, opening the limit. The connecting plate can then be disassembled. The overall modular and easy-to-disassemble design allows maintenance personnel to directly remove the cleaning sponge and quickly remove impurities by washing or patting. It can be reused without complicated tools, reducing consumable costs. Attached Figure Description
[0018] The above description is only an overview of the technical solution of this utility model. In order to better understand the technical means of this utility model and to implement it in accordance with the contents of the specification, the preferred embodiments of this utility model are described in detail below with reference to the accompanying drawings.
[0019] Figure 1 This is an overall structural diagram of the present invention;
[0020] Figure 2 This is an exploded view of the overall structure of this utility model;
[0021] Figure 3 This is a structural diagram of the protective netting of this utility model;
[0022] Figure 4 This is a structural diagram of the connecting plate of this utility model.
[0023] Legend: 1. Intelligent control box; 2. Protective net; 3. Connecting plate; 4. Card slot; 5. Heat dissipation slot; 6. Cleaning sponge; 8. Screw; 9. Rectangular slot; 10. Limiting plate; 11. Push block; 12. Fixing plate; 13. Return spring; 14. Limiting slot. Detailed Implementation
[0024] This application provides an electrochemical scale inhibition, defogging, energy-saving intelligent control device, which effectively solves the problem that most devices use fixed protective nets or no protective design for their heat sinks. On the one hand, external dust, fibers, and other impurities can easily enter the device through the heat sink and accumulate on the surface of electrodes and electronic components, which not only affects the heat dissipation effect but may also cause short circuits and other faults. On the other hand, existing heat sink cleaning methods mostly involve manually disassembling the protective net and using tools for in-depth cleaning, which is cumbersome, easily damages the internal structure, and has low cleaning efficiency and high cost. This application designs an electrochemical scale inhibition, defogging, energy-saving intelligent control device that actively cleans the heat sink structure and enables rapid cleaning and reuse. This device can effectively remove impurities in the heat sink, maintain good heat dissipation performance, reduce maintenance difficulty and cost, and improve the stability and service life of the equipment. Example
[0025] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the technical solution in this application effectively solves the problem that most devices use fixed protective nets or no protective design for their heat sinks. On the one hand, external dust, fibers, and other impurities can easily enter the device through the heat sink and accumulate on the surface of electrodes and electronic components, which not only affects the heat dissipation effect but may also cause short circuits and other faults. On the other hand, existing heat sink cleaning methods mostly involve manually disassembling the protective net and then using tools to clean it deeply, which is cumbersome, easily damages the internal structure, and has low cleaning efficiency and high cost. The overall approach is as follows:
[0026] To address the problems existing in the prior art, this utility model provides an electrochemical scale inhibition, defogging, energy-saving, and intelligent control device, comprising an intelligent control box 1. Protective nets 2 are provided on both the left and right sides of the intelligent control box 1. Connecting plates 3 are installed within each of the two protective nets 2. Two limiting plates 10 are movably engaged within each of the two connecting plates 3. Two return springs 13 are fixedly connected to the opposing surfaces of the two pairs of limiting plates 10. A set of cleaning sponges 6 is provided on the opposing surfaces of each of the two connecting plates 3. A set of heat dissipation grooves 5 are opened on both the left and right sides of the intelligent control box 1. Push blocks 11 are fixedly connected to the opposing back surfaces of the two pairs of limiting plates 10. Two screws 8 are provided on the surface of each of the two protective nets 2. The two sets of heat dissipation grooves 5 are movably engaged with the two sets of cleaning sponges 6 respectively. The intelligent control box 1 is equipped with an intelligent control system that can monitor parameters such as water quality, water quantity, and water temperature, as well as the operating status of the equipment in real time. Based on this monitoring data, the intelligent control system automatically adjusts the electrochemical treatment... The voltage, current, and processing time parameters are adjusted to achieve optimal scale inhibition and defogging effects while minimizing energy consumption and achieving energy saving. The intelligent control box 1 has a set of heat dissipation slots 5 on both sides for heat dissipation, and is protected by connecting plates 3. When the protective net 2 needs to be disassembled, the two screws 8 are turned to open the limiting fixation between the protective net 2 and the intelligent control box 1. The protective net 2 is then slid downwards for disassembly. During the sliding process, the connecting plate 3 on the protective net 2 will move. A set of cleaning sponges 6 on the surface of the connecting plate 3 will clean the heat dissipation slots 5 as it moves downwards. When the device is running, the heat dissipation slots 5 easily absorb dust, fibers, or scale particles from the air. As the protective net 2 slides down, the cleaning sponges 6 can simultaneously wipe the inner wall of the heat dissipation slots 5, removing adhering impurities through physical friction, maintaining unobstructed heat dissipation channels, and reducing maintenance complexity.
[0027] The intelligent control box 1 has slots 4 on both the left and right sides, which are respectively engaged with the two protective nets 2. The front surfaces of the two connecting plates 3 are each provided with rectangular slots 9, and fixed plates 12 are fixedly connected inside the two rectangular slots 9. Two pairs of limiting plates 10 are respectively engaged with the two rectangular slots 9. Two pairs of return springs 13 are respectively fixedly connected to the two fixed plates 12. The inner walls of the two protective nets 2 are provided with two limiting slots 14, and the two pairs of limiting plates 10 are respectively engaged with the two pairs of limiting slots 14. After the protective nets 2 are disassembled, the cleaning sponge 6 needs to be cleaned. By pulling the push block 11, the fixed limiting plates 10 are moved together, compressing the two pairs of return springs 13. At this time, the two limiting plates 10 will disengage from the two limiting slots 14 on the inner walls of the protective nets 2, and the limiting will be opened. The connecting plates 3 can then be disassembled. The overall modular and easy-to-disassemble design allows maintenance personnel to directly remove the cleaning sponge 6 and quickly remove impurities by washing or patting. It can be reused without complicated tools, reducing consumable costs.
[0028] Among them, the intelligent control box 1 is equipped with an intelligent control system that can monitor water quality, water quantity and other parameters and equipment operating status in real time, and automatically adjust electrochemical treatment parameters to achieve the best scale inhibition and defogging effect and reduce energy consumption.
[0029] Protective net 2: Installed on the left and right sides of the intelligent control box 1, it is used to block dust, fibers and other impurities from entering the device, so as to avoid affecting the heat dissipation effect or causing short circuit faults;
[0030] Connecting plate 3: Located inside the protective net 2, its surface cleaning sponge 6 can clean the heat dissipation groove 5 when the protective net 2 is slidably disassembled, maintaining unobstructed heat dissipation channels and reducing maintenance complexity;
[0031] Slot 4: Located on the left and right sides of the intelligent control box 1, it is movable and engages with the protective net 2 to fix the protective net 2 and ensure that the protective net 2 is installed stably;
[0032] Heat dissipation slots 5: Located on the left and right sides of the intelligent control box 1, they are used for heat dissipation of the device to ensure that the internal electronic components and electrode system operate at a suitable temperature;
[0033] Cleaning sponge 6: Placed on the opposite side of the connecting plate 3, it wipes the inner wall of the heat dissipation groove 5 when the protective net 2 slides down, removes attached impurities, and keeps the heat dissipation channel unobstructed;
[0034] Screw 8: Located on the surface of the protective net 2, used to fix the protective net 2 and the intelligent control box 1. When disassembling, turning screw 8 can open the limit fixation, making it easy to disassemble the protective net 2.
[0035] Rectangular groove 9: It is formed through the front surface of the connecting plate 3 and is used to install the limiting plate 10 and the fixing plate 12, providing space for the movement of the limiting plate 10;
[0036] Limiting plate 10: It is movable and snapped into the connecting plate 3, and snapped into the limiting groove 14 on the inner wall of the protective net 2. It is used to fix the connecting plate 3. When disassembling, pulling the push block 11 can make the limiting plate 10 disengage from the limiting groove 14.
[0037] Push block 11: Fixed on the back of the limiting plate 10, used to pull the limiting plate 10 to move, compress the reset spring 13, so that the limiting plate 10 is disengaged from the limiting groove 14, making it easy to disassemble the connecting plate 3.
[0038] Fixed plate 12: Fixed in rectangular groove 9, used to connect reset spring 13, provide support for reset spring 13, so that reset spring 13 can generate reset force when limit plate 10 moves;
[0039] Reset spring 13: connects the limiting plate 10 and the fixing plate 12, and generates a reset force when the limiting plate 10 moves, so that the limiting plate 10 can automatically reset and maintain the snap-fit state with the limiting groove 14.
[0040] Limiting groove 14: It is formed on the inner wall of the protective net 2 and is movably engaged with the limiting plate 10 to fix the connecting plate 3 and ensure that the connecting plate 3 is installed stably.
[0041] Working principle:
[0042] The intelligent control box 1 is equipped with an intelligent control system that can monitor parameters such as water quality, water quantity, and water temperature, as well as the operating status of the equipment in real time. Based on this monitoring data, the intelligent control system automatically adjusts parameters such as voltage, current, and treatment time of the electrochemical treatment to achieve the best scale inhibition and defogging effect, while minimizing energy consumption to achieve energy saving. The intelligent control box 1 has a set of heat dissipation slots 5 on both the left and right sides for heat dissipation, and is protected by connecting plates 3. When it is necessary to disassemble the protective net 2, turn the two screws 8 to open the limiting fixation between the protective net 2 and the intelligent control box 1. At this time, slide the protective net 2 downwards to disassemble it. During the sliding process, the connecting plate 3 on it will move. A set of cleaning sponges 6 on the surface of the connecting plate 3 will clean the heat dissipation slots 5 during the downward movement. During cleaning, the heat dissipation slot 5 easily absorbs dust, fibers, or scale particles from the air when the protective net 2 slides down. The cleaning sponge 6 can simultaneously wipe the inner wall of the heat dissipation slot 5, removing the attached impurities through physical friction, maintaining unobstructed heat dissipation channels, and reducing maintenance complexity. After the protective net 2 is disassembled, the cleaning sponge 6 needs to be cleaned. By pulling the push block 11 relative to each other, the fixed limit plate 10 is moved together, compressing the two pairs of return springs 13. At this time, the two limit plates 10 will disengage from the two limit grooves 14 opened on the inner wall of the protective net 2, opening the limit, and the connecting plate 3 can be disassembled. The overall modular and easy-to-disassemble design allows maintenance personnel to directly remove the cleaning sponge 6 and quickly remove impurities by washing or patting. It can be reused without complicated tools, reducing consumable costs.
[0043] Finally, it should be noted that the above embodiments are merely examples for clearly illustrating the present invention and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. An electrochemical scale inhibition, defogging, energy-saving intelligent control device, comprising an intelligent control box (1), characterized in that, The intelligent control box (1) is provided with protective nets (2) on both the left and right sides. Each of the two protective nets (2) is provided with a connecting plate (3). Each of the two connecting plates (3) is movably connected with two limiting plates (10). Each pair of limiting plates (10) is fixedly connected with two return springs (13) on opposite sides. Among them, a set of cleaning sponges (6) are provided on the opposite sides of the two connecting plates (3), a set of heat dissipation grooves (5) are provided on the left and right sides of the intelligent control box (1), a push block (11) is fixedly connected to the opposite back of the two pairs of limiting plates (10), and two screws (8) are provided on the surface of the two protective nets (2).
2. The electrochemical scale inhibition, defogging, energy-saving intelligent control device as described in claim 1, characterized in that: The two sets of heat dissipation slots (5) are respectively connected to the two sets of cleaning sponges (6).
3. The electrochemical scale inhibition, defogging, energy-saving intelligent control device as described in claim 1, characterized in that: The intelligent control box (1) has card slots (4) on both the left and right sides; Among them, the two slots (4) are respectively engaged with the two protective nets (2).
4. The electrochemical scale inhibition, defogging, energy-saving intelligent control device as described in claim 1, characterized in that: Both connecting plates (3) have rectangular slots (9) through their front surfaces; In this case, a fixing plate (12) is fixedly connected to each of the two rectangular grooves (9).
5. The electrochemical scale inhibition, defogging, energy-saving intelligent control device as described in claim 4, characterized in that: The two pairs of limiting plates (10) are respectively engaged with the two rectangular slots (9); Among them, the two pairs of reset springs (13) are fixedly connected to the two fixing plates (12) respectively.
6. The electrochemical scale inhibition, defogging, energy-saving intelligent control device as described in claim 1, characterized in that: Two limiting grooves (14) are provided on the inner walls of both protective nets (2); Among them, the two pairs of limiting plates (10) are respectively engaged with the two pairs of limiting grooves (14).