Micro-acid electrolyzed water generating device for cultivation

By introducing a scraper structure and lifting components into the water electrolysis generator, the problem of cumbersome cleaning of existing devices has been solved, enabling rapid and efficient cleaning of impurities in the electrolytic cell and simplifying the operation process.

CN223547793UActive Publication Date: 2025-11-14SICHUAN JIANYUAN TIANDI ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202422785605.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-15
Publication Date
2025-11-14
Estimated Expiration
2034-11-15

AI Technical Summary

Technical Problem

Existing water electrolysis generators require disassembling the electrode plates during cleaning, which is a cumbersome process and results in low efficiency in removing impurities.

Method used

Design a micro-acid electrolyzed water generator for aquaculture. The device uses a scraper structure that slides in the electrolysis chamber. The scraper contacts the inner wall of the electrolysis chamber and the outer surface of the electrode plate. The scraper is driven to rise and fall by a lifting component to clean impurities in the electrolysis cell.

Benefits of technology

It enables rapid and efficient cleaning of impurities in the electrolytic cell without affecting the electrolysis process, simplifying the cleaning steps and improving cleaning efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a slightly acidic electrolyzed water generating device for cultivation, and relates to the technical field of electrolyzed water production. The device comprises an electrolysis tank with an opening in the top, an ionic membrane and two electrode plates are arranged in the electrolysis tank, the ionic membrane is used for dividing the electrolysis tank into two electrolysis chambers communicated with each other, and the two electrode plates are located in the two electrolysis chambers respectively; the two scraping plates are movably inserted into the two electrolysis chambers respectively, the outer side walls of the scraping plates are in lap joint with the inner walls of the electrolysis chambers, penetrating grooves are formed in the scraping plates in a penetrating mode, and the electrode plates movably penetrate through the penetrating grooves; the scrapers are slidably arranged in the two electrolysis chambers correspondingly, the scrapers serve as the inner bottom walls of the electrolysis chambers, normal electrolysis of water is not affected, after electrolysis is completed, most impurities are accumulated on the scrapers, the scrapers take out the impurities under the action of the lifting pieces, and meanwhile when the scrapers ascend and descend, the scrapers are prevented from falling off. And a small part of impurities attached to the side wall of the electrolysis tank and the outer surface of the electrode plate can be scraped and brushed away and are taken out of the electrolysis tank together, so that the impurity cleaning efficiency is high, and the practicability is improved.
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Description

Technical Field

[0001] This application relates to the field of water electrolysis production technology, specifically to a micro-acid water electrolysis generator for aquaculture. Background Technology

[0002] Aquaculture refers to the cultivation and reproduction of animals. It includes several categories such as pig farming, poultry farming, aquaculture, and special aquaculture. In the process of aquaculture, slightly acidic electrolyzed water is required. Slightly acidic electrolyzed water can not only adjust the pH of the water, helping to reduce the concentration of harmful substances such as ammonia nitrogen and nitrite in the water, and improve the water quality environment to enhance the growth environment of aquatic animals, but also has a bactericidal and disinfecting effect, which can effectively prevent the occurrence of bacterial, viral, and parasitic diseases in aquaculture.

[0003] In existing water electrolysis devices, impurities are generated in the electrolysis cell during water electrolysis. Most of the impurities are on the bottom wall of the electrolysis cell, while a small portion adheres to the side wall and electrode plates. Traditional cleaning involves disassembling the electrode plates and then cleaning the electrolysis cell and electrode plates. This process is cumbersome and slow in removing impurities. Therefore, this application proposes a slightly acidic water electrolysis device for aquaculture. Summary of the Invention

[0004] The purpose of this application is to provide a micro-acid electrolyzed water generator for aquaculture in order to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this application specifically adopts the following technical solution:

[0006] A micro-acid electrolyzed water generator for aquaculture includes:

[0007] An electrolytic box with an open top is equipped with an ion membrane and two electrode plates. The ion membrane is used to divide the electrolytic box into two interconnected electrolytic chambers, and the two electrode plates are located in the two electrolytic chambers respectively.

[0008] Two scrapers are movably inserted into two electrolysis chambers, with the outer wall of the scraper overlapping the inner wall of the electrolysis chamber. A through groove is opened through the scraper, and the electrode plate moves through the through groove.

[0009] The lifting component includes two lead screws rotatably mounted on one side of the electrolysis tank. Each of the two lead screws is threaded with a connecting rod. The free ends of the two connecting rods are respectively connected to two scrapers. The electrolysis tank is equipped with a driving component for driving the two lead screws to rotate synchronously.

[0010] Furthermore, the top of the scraper is provided with a groove that surrounds the through groove.

[0011] Furthermore, the inner bottom wall of the groove is arrayed with several perforation holes.

[0012] Furthermore, the outer wall of the scraper is provided with a first rubber edge strip, and the inner wall of the groove is provided with a second rubber edge strip.

[0013] Furthermore, a groove is provided on one side of the inner wall of the electrolysis tank, and the connecting rod is slidably inserted into the groove. A receiving groove is provided at the end of the connecting rod near the scraper, and an extension rod is slidably inserted into the receiving groove.

[0014] Furthermore, the connecting rod has a slot, the scraper has a plug that engages with the slot, and the connecting rod has a locking element for locking the plug.

[0015] Furthermore, the locking component includes a through-hole formed in the insert block, a locking groove formed on one side of the inner wall of the slot, a rod with its end engaged with the through-hole passing through one side of the inner wall of the locking groove, a limiting plate fixed on the rod and located in the locking groove, and a limiting spring sleeved on the rod between the limiting plate and the inner wall of the locking groove.

[0016] Furthermore, the driving component includes a guide rod rotatably mounted on the electrolysis tank, two lead screws being connected to the guide rod via a bevel gear assembly, and one end of the guide rod being connected to a motor mounted on the electrolysis tank.

[0017] The beneficial effects of this application are as follows:

[0018] In this application, scrapers are slidably installed in two electrolysis chambers. The scrapers serve as the inner bottom walls of the electrolysis chambers and do not affect the normal electrolysis of water. After electrolysis is completed, most impurities accumulate on the scrapers. The scrapers carry the impurities out under the action of the lifting components. At the same time, when the scrapers are raised and lowered, they will scrape off a small portion of the impurities attached to the inner wall of the electrolysis tank and the outer surface of the electrode plates and carry them out of the electrolysis tank together. This makes the cleaning efficiency of impurities fast, thereby improving practicality. Attached Figure Description

[0019] Figure 1 This is a three-dimensional structural diagram of this application;

[0020] Figure 2 This is another perspective of the three-dimensional structure of this application;

[0021] Figure 3 This is a three-dimensional structural sectional view of this application;

[0022] Figure 4 This is yet another three-dimensional structural sectional view of this application;

[0023] Figure 5 This is an exploded view of part of the three-dimensional structure of this application;

[0024] Figure 6 This is a three-dimensional structural diagram of the connecting rod in this application;

[0025] Figure 7 This is a three-dimensional sectional view of the connecting rod structure of this application;

[0026] Figure 8 This application Figure 2 Enlarged view of point A in the middle;

[0027] Figure 9 This application Figure 4 Enlarged view at point B in the middle;

[0028] Figure 10 This application Figure 7 Enlarged view at point C;

[0029] Reference numerals: 1. Electrolysis box; 2. Ion exchange membrane; 3. Electrode plate; 4. Scraper; 5. Through groove; 6. Lifting component; 7. Groove; 8. Drainage hole; 9. First rubber strip; 10. Second rubber strip; 11. Slide groove; 12. Receiving groove; 13. Extension rod; 14. Slot; 15. Insertion block; 16. Locking component; 601. Lead screw; 602. Connecting rod; 603. Driving component; 6031. Guide rod; 6032. Bevel gear assembly; 6033. Motor; 1601. Insertion hole; 1602. Locking groove; 1603. Insertion rod; 1604. Limiting plate; 1605. Limiting spring. Detailed Implementation

[0030] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings.

[0031] like Figures 1-10 As shown in one embodiment of this application, a micro-acid electrolyzed water generator for aquaculture includes:

[0032] An electrolysis tank 1 with an open top is provided with an ion exchange membrane 2 and two electrode plates 3. The ion exchange membrane 2 is used to divide the electrolysis tank 1 into two interconnected electrolysis chambers. The two electrode plates 3 are located in the two electrolysis chambers respectively. Water is added to the electrolysis tank 1, and the two electrode plates 3 are energized to electrolyze the water. Preferably, one electrode plate 3 is the anode and the other electrode plate 3 is the cathode. After the two electrode plates 3 electrolyze the water, it is exchanged through the ion exchange membrane 2. The acidic potential water and alkaline potential water produced after electrolysis are exchanged to the two electrolysis chambers respectively, thereby obtaining electrolyzed water with different properties.

[0033] Two scrapers 4 are movably inserted into two electrolysis chambers respectively. The outer wall of the scraper 4 overlaps with the inner wall of the electrolysis chamber. A through groove 5 is opened through the scraper 4, and the electrode plate 3 moves through the through groove 5. Preferably, the bottom of the scraper 4 overlaps with the inner bottom wall of the electrolysis tank 1. The scraper 4 serves as the inner bottom wall of the electrolysis chamber, and the outer wall of the electrode plate 3 abuts against the inner wall of the through groove 5. During water electrolysis, the scraper 4 is located at the bottom. During the electrolysis process, most of the impurities generated by electrolysis accumulate on the scraper 4, and a small amount of impurities will adhere to the surface of the electrode plate 3 and the side wall of the electrolysis tank 1. After electrolysis is completed, the scraper 4 is moved upward. The outer wall of the scraper 4 scrapes the inner side wall of the electrolysis tank 1, and the inner wall of the through groove 5 scrapes the outer surface of the electrode plate 3, thereby scraping the impurities off the scraper 4. As the scraper 4 moves upward, the impurities are removed from the electrolysis tank 1.

[0034] The lifting component 6 includes two lead screws 601 rotatably mounted on one side of the electrolysis tank 1. Each lead screw 601 is threaded with a connecting rod 602. The free ends of the two connecting rods 602 are respectively connected to two scrapers 4. The electrolysis tank 1 is provided with a driving component 603 for driving the two lead screws 601 to rotate synchronously. Preferably, the connecting rod 602 is U-shaped, with its two open ends connected to the scraper 4 and the lead screw 601 respectively. When it is necessary to lift and scrape impurities, the driving component 603 drives the two lead screws 601 to rotate synchronously. Since one end of the connecting rod 602 is connected to the scraper 4, and the scraper 4 is slidably inserted into the electrolysis tank 1, the electrolysis tank 1 slides and limits the scraper 4. Under the cooperation of the sliding limit and the thread, the lead screw 601 rotates, thereby driving the scraper 4 to lift and lower smoothly. During the lifting and lowering process, the scraper 4 scrapes and cleans the impurities attached to the electrode plate 3 and the inner wall of the electrolysis tank 1.

[0035] In this design, scrapers 4 are slidably installed in the two electrolysis chambers. Scrapers 4 serve as the inner bottom wall of the electrolysis chambers and do not affect the normal electrolysis of water. After electrolysis is completed, most impurities accumulate on scrapers 4. Under the action of the lifting component 6, scrapers 4 carry away the impurities. At the same time, when scrapers 4 are raised and lowered, they will scrape off a small portion of the impurities attached to the inner wall of the electrolysis tank 1 and the outer surface of the electrode plate 3, and carry them out of the electrolysis tank 1 together. This makes the cleaning efficiency of impurities fast, thereby improving practicality.

[0036] like Figure 5 As shown, in some embodiments, the top of the scraper 4 is provided with a groove 7, which surrounds the through groove 5. Since most impurities accumulate on the top of the scraper 4 during the electrolysis process, by providing a groove 7 on the top of the scraper 4, the groove 7 is used to receive the accumulated impurities, so that the scraper 4 can more smoothly scrape the inner wall of the electrolysis tank 1 and the outer surface of the electrode plate 3 when it moves upward, and effectively remove the impurities, thereby improving its practicality.

[0037] like Figure 5As shown, in some embodiments, the inner bottom wall of the groove 7 is arrayed with several water seepage holes 8. By opening water seepage holes 8 in the inner bottom wall of the groove 7, even if water or electrolyte remains in the electrolysis tank 1, the scraper 4 can still be adjusted to lift and lower to clean impurities. This ensures that when the scraper 4 lifts up and carries out impurities, it will not carry out too much water or electrolyte. This allows for periodic cleaning without stopping the machine during the electrolysis process, thereby improving practicality.

[0038] like Figure 5 As shown, in some embodiments, the outer wall of the scraper 4 is provided with a first rubber strip 9, and the inner wall of the groove 5 is provided with a second rubber strip 10. By providing the first rubber strip 9 and the second rubber strip 10, the outer wall of the scraper 4 can effectively contact the inner wall of the electrolysis tank 1 or the inner wall of the groove 5 can effectively contact the outer wall of the electrode plate 3. This ensures that the electrode plate 3 and the electrolysis tank 1 will not be scratched or damaged, and also ensures effective contact to effectively scrape off impurities, thereby improving practicality.

[0039] like Figure 4 and Figure 10 As shown, in some embodiments, a groove 11 is provided on one side of the inner wall of the electrolysis tank 1. The connecting rod 602 is slidably inserted into the groove 11. A receiving groove 12 is provided at one end of the connecting rod 602 near the scraper 4. An extension rod 13 is slidably inserted into the receiving groove 12. Preferably, a limiting block is constructed at one end of the extension rod 13 located in the receiving groove 12, so that the extension rod 13 cannot completely detach from the receiving groove 12. The extension rod 13 slides in cooperation with the groove 11. Since the scraper 4 is slidably inserted in the electrolysis chamber, the electrolysis chamber guides the lifting and lowering of the scraper 4. When the scraper 4 is lifted and lowered, the extension rod 13 slides out from the receiving groove 12. The extension rod 13 slides in cooperation with the groove 11. The extension rod 13 can then vertically limit the scraper 4, so that the scraper 4 can be completely removed from the electrolysis tank 1, and the inner wall of the electrolysis tank 1 can be effectively scraped and cleaned.

[0040] like Figure 9 As shown, in some embodiments, a slot 14 is provided on the connecting rod 602, and a plug 15 is constructed on the scraper 4 to engage with the slot 14. A locking member 16 is provided on the connecting rod 602 to lock the plug 15. By providing a slot 14 on the connecting rod 602, constructing a plug 15 on the scraper 4 to engage with the slot 14, and providing a locking member 16 to lock and fix it, the scraper 4 and the connecting rod 602 are detachably connected. After the scraper 4 has scraped and moved out of the electrolysis tank 1, the scraper 4 can be removed and separated from the connecting rod 602, so as to more conveniently clean the scraped impurities, thereby improving practicality.

[0041] like Figure 9As shown, in some embodiments, the locking member 16 includes a through hole 1601 extending through the insert block 15, a locking groove 1602 formed on one side of the inner wall of the slot 14, and a rod 1603 movably passing through one side of the inner wall of the locking groove 1602, the end of which is inserted into the through hole 1601. A limiting plate 1604 is fixed on the rod 1603 and located within the locking groove 1602. A limiting spring 1605 sleeved on the rod 1603 is installed between the limiting plate 1604 and the inner wall of the locking groove 1602. When locking the scraper 4, first pull... Insert rod 1603, thereby causing limit plate 1604 to slide along lock groove 1602 and squeeze limit spring 1605. Then hold scraper 4 and insert block 15 into slot 14. Then loosen insert rod 1603. Under the elastic force of limit spring 1605, insert rod 1603 is inserted into insertion hole 1601, thereby locking block 15 and fixing scraper 4. When it is necessary to release the fixation, simply pull insert rod 1603 to disengage from insertion hole 1601. The locking or unlocking method is relatively simple and convenient.

[0042] like Figure 8 As shown, in some embodiments, the driving component 603 includes a guide rod 6031 rotatably mounted on the electrolysis tank 1. Two lead screws 601 are connected to the guide rod 6031 via a bevel gear assembly 6032. The bevel gear assembly 6032 includes two bevel gears, which are respectively fixed on the guide rod 6031 and the lead screw 601, and their teeth mesh. One end of the guide rod 6031 is connected to a motor 6033 mounted on the electrolysis tank 1. The motor 6033 performs work, and its output shaft drives the guide rod 6031 to rotate. Under the transmission of the two bevel gear assemblies 6032, the two lead screws 601 rotate synchronously, thereby enabling the two scrapers 4 to scrape and clean the two electrolysis chambers respectively, thus improving the cleaning efficiency.

[0043] The above description of the disclosed embodiments enables those skilled in the art to make or use this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A slightly acidic electrolytic water generator for aquaculture, characterized in that, include: An electrolytic box (1) with an open top is provided with an ion membrane (2) and two electrode plates (3). The ion membrane (2) is used to divide the electrolytic box (1) into two interconnected electrolytic chambers, and the two electrode plates (3) are located in the two electrolytic chambers respectively. Two scrapers (4) are respectively movably inserted into two electrolysis chambers. The outer wall of the scraper (4) overlaps with the inner wall of the electrolysis chamber. A through groove (5) is opened through the scraper (4), and the electrode plate (3) movably passes through the through groove (5). The lifting component (6) includes two lead screws (601) rotatably disposed on one side of the electrolysis tank (1). Each of the two lead screws (601) is threaded with a connecting rod (602). The free ends of the two connecting rods (602) are respectively connected to two scrapers (4). The electrolysis tank (1) is provided with a driving component (603) for driving the two lead screws (601) to rotate synchronously.

2. The aquaculture micro-acid electrolytic water generator according to claim 1, characterized in that, The top of the scraper (4) is provided with a groove (7), which surrounds the through groove (5).

3. The aquaculture micro-acid electrolytic water generator according to claim 2, characterized in that, The inner bottom wall of the groove (7) is provided with a number of seepage holes (8).

4. The aquaculture micro-acid electrolytic water generator according to claim 1, characterized in that, The outer wall of the scraper (4) is provided with a first rubber strip (9), and the inner wall of the groove (5) is provided with a second rubber strip (10).

5. The aquaculture micro-acid electrolytic water generator according to claim 1, characterized in that, A sliding groove (11) is provided on one side of the inner wall of the electrolysis tank (1), and a connecting rod (602) is slidably inserted in the sliding groove (11). A receiving groove (12) is provided at one end of the connecting rod (602) near the scraper (4), and an extension rod (13) is slidably inserted in the receiving groove (12).

6. The aquaculture micro-acid electrolytic water generator according to claim 1, characterized in that, The connecting rod (602) has a slot (14), the scraper (4) has a plug (15) that is inserted into the slot (14), and the connecting rod (602) has a locking member (16) for locking the plug (15).

7. The aquaculture micro-acid electrolytic water generator according to claim 6, characterized in that, The locking member (16) includes a through hole (1601) that is opened through the insert (15). A locking groove (1602) is provided on one side of the inner wall of the slot (14). A rod (1603) with its end inserted into the through hole (1601) is movably passed through one side of the inner wall of the locking groove (1602). A limiting plate (1604) is fixed on the rod (1603) and located in the locking groove (1602). A limiting spring (1605) sleeved on the rod (1603) is installed between the limiting plate (1604) and the inner wall of the locking groove (1602).

8. The aquaculture micro-acid electrolytic water generator according to claim 1, characterized in that, The driving component (603) includes a guide rod (6031) rotatably mounted on the electrolysis tank (1). Two lead screws (601) are connected to the guide rod (6031) via a bevel gear assembly (6032). One end of the guide rod (6031) is connected to a motor (6033) mounted on the electrolysis tank (1).