Shell for electrolytic water purification structure device
By combining the electronic control module, electrolysis module, and filtration module, and using water pressure to trigger the Hall sensor to start the electrolysis process, the problem of complex structure, high cost, and insufficient safety of existing electrolytic water purification devices is solved, achieving efficient and intelligent water purification and improved space utilization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DONGGUAN SENKANG ENVIRONMENTAL PROTECTION TECH CO LTD
- Filing Date
- 2025-05-22
- Publication Date
- 2026-05-01
AI Technical Summary
Existing electrolytic water purification devices are complex in structure, high in cost, inconvenient to maintain, and lack sufficient water and electricity safety isolation, making it difficult to meet the demand for efficient and intelligent water purification.
The design incorporates a combination of an electronic control module, an electrolysis module, a filtration module, and a water inlet base. It utilizes water pressure to trigger a Hall sensor to start the electrolysis process, achieving wireless power supply and physical isolation. Combined with a sandwich layout of nested electrolysis cells in the middle layer of the shell, it improves space utilization.
The system achieves intelligent control of the electrolytic water purification process, improves space utilization by 30%, ensures water and electricity safety and structural simplicity, avoids stagnant water areas, and improves water purification efficiency.
Smart Images

Figure CN224185883U_ABST
Abstract
Description
A housing for an electrolytic water purification device Technical Field
[0001] This utility model relates to the field of electrolytic water treatment technology, and in particular to a housing for an electrolytic water purification device. Background Technology
[0002] In the field of water treatment, with the increasing demand for healthy drinking water, traditional water purification methods (such as activated carbon filtration and reverse osmosis) are unable to meet the market's demand for efficient and intelligent water purification devices due to their limitations in dealing with microbial and chemical pollution and the lack of intelligent control. Electrolysis water treatment technology has attracted attention because it does not require the addition of chemical agents and purifies water quality by generating strong oxidizing substances such as ozone.
[0003] However, existing electrolytic water purification devices generally suffer from problems such as complex structure, high cost, inconvenient maintenance, and insufficient water and electricity safety isolation. Summary of the Invention
[0004] The purpose of this utility model is to provide a housing for an electrolytic water purification device in order to solve the technical problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A housing for an electrolytic water purification device includes, from top to bottom, an electronic control module, an electrolysis module, a filtration module, and a water inlet base. The electronic control module includes a circuit board with a spring pin and a Hall sensor. The electrolysis module includes an ozone electrolysis module, a copper nut, and a magnet. The copper nut abuts against the spring pin and is electrically connected to the ozone electrolysis module. The magnet is matched with the Hall sensor. The filtration module includes a filter carbon rod disposed outside the ozone electrolysis module. The water inlet base is sleeved outside the filter carbon rod. A water inlet is fixedly connected to one side of the water inlet base, and several water outlets are opened at the bottom of the water inlet base.
[0007] As a further description of the above technical solution:
[0008] The electronic control module also includes buttons, an upper cover, a battery, and a lower cover. The upper cover is fitted over the lower cover, the buttons are located on the top of the upper cover, the battery is located between the upper and lower covers, and the circuit board is mounted on the lower cover. The battery, buttons, and circuit board are electrically connected.
[0009] As a further description of the above technical solution:
[0010] The electrolysis module also includes a main body, which is fitted over the lower cover. The ozone electrolysis module is fixed to the main body by a copper nut. The top of the main body has a through hole for accommodating a magnet.
[0011] As a further description of the above technical solution:
[0012] The electrolysis module also includes a pressure spring cover and a pressure spring. The pressure spring is fixed in the through hole, the pressure spring cover is fixed on the pressure spring, a magnet is installed between the pressure spring cover and the pressure spring, and a Hall sensor is arranged above the pressure spring cover.
[0013] As a further description of the above technical solution:
[0014] The filter carbon rod is arranged between the water inlet base and the ozone electrolysis module.
[0015] As a further description of the above technical solution:
[0016] The water inlet base is fitted onto the bottom of the main body.
[0017] In summary, due to the adoption of the above technical solution, the beneficial effects of this utility model are:
[0018] 1. In this utility model, the incoming water first passes through a filter carbon rod for preliminary impurity filtration to reduce the impact of large particulate pollutants on the subsequent electrolysis process. Then, it enters the electrolysis cavity and comes into contact with the ozone electrolysis module. Due to the water pressure, the pressure spring is pushed upward, causing the magnet to approach the Hall sensor. The Hall sensor detects the change in the position of the magnet, indicating that there is enough water flow to trigger the start of the electrolysis process, generating ozone to further purify the water. The purified water flows out through the outlet, avoiding stagnant water areas. Combined with the water pressure driving the silicone to trigger the Hall sensor, intelligent control of electrolysis is achieved by the flow of water.
[0019] 2. In this utility model, a sandwich layout of "embedded electrolytic cell in the middle layer of shell" is adopted, and the filter module and the electronic control module are arranged in sequence on the outside, so as to realize efficient use of space and improve the space utilization rate by 30%.
[0020] 3. In this utility model, the electrolysis cavity achieves wireless power supply through copper nuts and spring pins, ensuring sealing and safety. The pressure spring cover structure ensures physical isolation between the water circuit and the circuit, water pressure triggered electrolysis start-up mechanism, and conductive connection without welding points, effectively solving the problems of low efficiency and structural redundancy in traditional products. Attached Figure Description
[0021] Figure 1 shows a first cross-sectional schematic diagram of the housing of an electrolytic water purification device according to an embodiment of the present invention;
[0022] Figure 2 shows a second cross-sectional schematic diagram of the housing of an electrolytic water purification device according to an embodiment of the present invention;
[0023] Figure 3 shows a partial exploded structural diagram of the housing of an electrolytic water purification device according to an embodiment of the present invention.
[0024] Legend:
[0025] 1. Button; 2. Top cover; 3. Battery; 4. Circuit board; 5. Spring pin; 6. Bottom cover; 7. Pressure spring cover; 8. Pressure spring; 9. Main body; 10. Ozone electrolysis module; 11. Copper nut; 12. Filter carbon rod; 13. Water inlet base; 14. Water inlet; 15. Water outlet; 16. Hall sensor; 17. Magnet; 18. Through hole. Detailed Implementation
[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0027] Please refer to Figures 1-3. This utility model provides a technical solution: a housing for an electrolytic water purification device, comprising, from top to bottom, an electronic control module, an electrolysis module, a filtration module, and a water inlet base 13. The electronic control module includes a button 1, an upper cover 2, a battery 3, a circuit board 4, a spring pin 5, a lower cover 6, and a Hall sensor 16. The button 1 is located on top of the upper cover 2, the battery 3 is located between the upper cover 2 and the lower cover 6, the circuit board 4 is mounted on the lower cover 6, and the spring pin 5 and the Hall sensor 16 are located on the circuit board 4. The button 1, battery 3, spring pin 5, Hall sensor 16, and circuit board 4 are electrically connected. When the device is activated by the button 1, the battery 3 provides power to the entire electronic control module. Components such as the spring pin 5 and Hall sensor 16 on the circuit board 4 begin to operate and form an electrical connection with the circuit board 4, thereby realizing the operation and control of the entire device.
[0028] Specifically, as shown in Figures 1-3, the electrolysis module includes a pressure spring cover 7, a pressure spring 8 (such as silicone), a main body 9, an ozone electrolysis module 10, a copper nut 11, and a magnet 17. The main body 9 is fitted over the lower cover 6. The ozone electrolysis module 10 is fixed in the electrolysis cavity inside the main body 9 by the copper nut 11. A through hole 18 is provided at the top of the main body 9, and the pressure spring 8 is fixed in the through hole 18. The pressure spring cover 7 is fixed on the pressure spring 8, and the magnet 17 is installed between the pressure spring cover 7 and the pressure spring 8. Sensor 16 is positioned above the pressure spring cover 7, which not only helps detect water flow to initiate the electrolysis process but also achieves physical isolation between the water circuit and the electrical circuit, improving safety during use. Copper nut 11 abuts against spring pin 5 and is electrically connected to ozone electrolysis module 10, providing power to the ozone electrolysis module 10. Magnet 17 matches Hall sensor 16. Water flowing into the electrolysis chamber is pushed upwards by water pressure, causing the silicone to push magnet 17 against Hall sensor 16, initiating electrolysis. After preliminary filtration, water enters the electrolysis chamber and contacts ozone electrolysis module 10. Due to water pressure, pressure spring 8 (such as silicone) is pushed upwards, causing magnet 17 to approach Hall sensor 16. Hall sensor 16 detects the change in magnet 17's position, indicating sufficient water flow and triggering the electrolysis process, generating ozone for further purification of the water.
[0029] Specifically, as shown in Figures 1-3, the filtration module includes a filter carbon rod 12 arranged outside the ozone electrolysis module 10. The filter carbon rod 12 is arranged between the water inlet base 13 and the ozone electrolysis module 10. The incoming water first passes through the filter carbon rod 12 for preliminary impurity filtration to reduce the impact of large particulate pollutants on the subsequent electrolysis process.
[0030] Specifically, as shown in Figures 1-3, the water inlet base 13 is fitted onto the bottom of the main body 9. A water inlet 14 is fixedly connected to one side of the water inlet base 13. Several water outlets 15 are opened at the bottom of the water inlet base 13 to ensure that the water flow is evenly distributed. The water enters the electrolysis cavity through the water inlet 14 and the filter carbon rod 12, and then comes into contact with the ozone electrolysis module 10.
[0031] Furthermore, the modular arrangement of this device, which improves space utilization by 30%, the water pressure-triggered electrolysis start-up mechanism, and the conductive connection without welding points, effectively solves the problems of low efficiency and structural redundancy of traditional products. Specifically, (1) a sandwich layout of "embedded electrolysis cell in the middle layer of the shell" is adopted, with the filter module and the electrical control module set in sequence on the periphery to achieve efficient space utilization; (2) the electrolysis cavity is powered without wires through the copper nut 11 and the spring pin 5 to ensure sealing and safety; (3) water flow path design: a one-way circulation path of inlet 14 → filter module → electrolysis cavity → outlet 15 to avoid dead water areas, and with the water pressure driven silicone trigger Hall sensor, intelligent control of electrolysis is achieved when water is passed through; (4) the shell adopts an upper and lower split design, including a detachable filter carbon rod 12 and a quick-release electrolysis module, and the pressure spring cover 7 structure ensures physical isolation between the water circuit and the circuit.
[0032] Working principle: In use, the incoming water first passes through the filter carbon rod 12 for preliminary impurity filtration to reduce the impact of large particulate pollutants on the subsequent electrolysis process. Then, it enters the electrolysis chamber and comes into contact with the ozone electrolysis module 10. Due to the water pressure, the pressure spring 8 (such as silicone) is pushed upward, causing the magnet 17 to approach the Hall sensor 16. The Hall sensor 16 detects the change in the position of the magnet 17, which indicates that there is enough water flow to trigger the start of the electrolysis process, generating ozone to further purify the water. The purified water flows out through the outlet 15.
[0033] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A housing for an electrolytic water purification device, characterized in that, The device includes, from top to bottom, an electronic control module, an electrolysis module, a filter module, and a water inlet base (13). The electronic control module includes a circuit board (4), on which spring pins (5) and Hall sensors (16) are arranged. The electrolysis module includes an ozone electrolysis module (10), a copper nut (11), and a magnet (17). The copper nut (11) abuts against the spring pins (5) and is electrically connected to the ozone electrolysis module (10). The magnet (17) matches the Hall sensor (16). The filter module includes a filter carbon rod (12) arranged outside the ozone electrolysis module (10). The water inlet base (13) is fitted outside the filter carbon rod (12). A water inlet (14) is fixedly connected to one side of the water inlet base (13). Several water outlets (15) are opened at the bottom of the water inlet base (13).
2. The housing for an electrolytic water purification device according to claim 1, characterized in that, The electronic control module also includes a button (1), an upper cover (2), a battery (3) and a lower cover (6). The upper cover (2) is fitted on the top of the lower cover (6), the button (1) is located on the top of the upper cover (2), the battery (3) is located between the upper cover (2) and the lower cover (6), and the circuit board (4) is installed on the lower cover (6). The battery (3), the button (1) and the circuit board (4) are electrically connected.
3. The housing for the electrolytic water purifying structural device according to claim 2, wherein The electrolysis module also includes a main body (9), which is fitted over the lower cover (6). The ozone electrolysis module (10) is fixed to the main body (9) by a copper nut (11). The top of the main body (9) has a through hole (18) for accommodating a magnet (17).
4. The housing for the electrolytic water purifying structural device according to claim 3, wherein The electrolysis module also includes a pressure spring cover (7) and a pressure spring (8). The pressure spring (8) is fixed in the through hole (18), the pressure spring cover (7) is fixed on the pressure spring (8), the magnet (17) is installed between the pressure spring cover (7) and the pressure spring (8), and the Hall sensor (16) is arranged above the pressure spring cover (7).
5. The housing for an electrolytic water purification device according to claim 1, characterized in that, The filter carbon rod (12) is arranged between the water inlet base (13) and the ozone electrolysis module (10).
6. The housing for an electrolytic water purifying structural device according to claim 1, wherein The water inlet base (13) is fitted onto the bottom of the main body (9).