Electronic water purification device
Patent Information
- Application Number
- CN202522380585.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-10
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-11-10
AI Technical Summary
本实用新型实施例的电子净水设备中,启动时,水循环系统抽吸水箱内的水体,并使水体循环流动,高能电子发生器工作产生高频电子,空气泵将高频电子轰击外部气体形成的带电气体泵入水循环系统中,通过空气泵和水循环系统协同作用能够促使水体在循环流动的过程中与带电气体高效混合。在此过程中,带电气体中的活性自由基等氧化剂能够与水体中的废物、污染物在水循环系统中进行反应作用,从而能够净化水质,并且,带电气体中注入水中产生的离子及带电粒子能够中和悬浮胶体颗粒表面的负电荷,使其脱稳、聚集,并形成絮状物,从而能够促进水质变清澈,通过水体的循环流动,从而能够对水箱整体的水质进行改善。由此,该电子净水设备通过各个部件之间的配合能够有效地改善水箱内的水质,且整个过程无需添加化学药剂,避免了化学药剂残留在水体带来的危害,从而能够确保水产的正常生长。
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Figure CN224783896U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of aquaculture technology, and more specifically, to an electronic water purification device. Background Technology
[0002] Aquaculture is a production activity involving the artificial breeding, cultivation, and harvesting of aquatic economic plants and animals (such as fish, shrimp, crabs, shellfish, and algae) to ensure the supply of aquatic products and achieve sustainable resource utilization. During aquaculture, animal metabolism generates various wastes, deteriorating water quality, affecting the health and normal growth of aquatic animals, and even causing mortality, thereby reducing aquaculture yield and profitability. Current technologies primarily improve water quality by introducing chemical agents into the water and relying on these agents to produce chemical reactions. However, this method may result in chemical residues remaining in the water, which in turn can negatively impact the normal growth of aquatic animals. Therefore, how to effectively improve water quality and ensure the normal growth of aquatic animals has become an urgent technical problem to be solved. Utility Model Content
[0003] The purpose of this utility model is to provide an electronic water purification device, which solves the technical problem of how to effectively improve water quality and ensure the normal growth of aquatic products.
[0004] To solve the above-mentioned technical problems, the present invention adopts the following technical solution.
[0005] This utility model provides an electronic water purification device, comprising: a water tank and a water circulation system, a high-energy electron generator, and an air pump respectively disposed on the water tank, wherein the water circulation system and the high-energy electron generator are connected through the air pump; the water circulation system is configured to draw water from the water tank and allow the water to flow within the water circulation system and then flow back into the water tank, thereby achieving water circulation; the high-energy electron generator is connected to external air and is used to generate high-frequency electrons, and the high-frequency electrons bombard the air to form charged gas; the air pump is configured to drive external air to contact the high-frequency electrons and allow the formed charged gas to enter the water circulation system from the high-energy electron generator to contact the water flowing within the water circulation system.
[0006] In some embodiments of this application, the water circulation system includes a submersible pump, a circulation pipe, a water circulation pump, and a temperature control device. The submersible pump is located inside the water tank and at the bottom of the water tank. The circulation pipe has an inlet channel, a through channel, and a mixing channel. The inlet channel is connected to the submersible pump and the water circulation pump, respectively. The through channel is connected to the water circulation pump and the mixing channel, respectively. The mixing channel is connected to the air pump and the interior of the water tank, respectively. The temperature control device is located on the flow path of the through channel.
[0007] In some embodiments of this application, the water passage includes a main channel section, a first sub-channel section, and a second sub-channel section. The main channel section is connected to the water circulation pump, and the second sub-channel section is connected to both the first sub-channel section and the mixing channel. The temperature control device includes a first control device and a second control device, which are sequentially arranged on the flow path of the main channel. The inlet of the first control device is connected to the main channel, and its outlet is connected to the first sub-channel. The inlet of the second control device is connected to the main channel, and its outlet is connected to the second sub-channel.
[0008] In some embodiments of this application, the circulation pipe includes a mixing pipe located inside the water tank, and the mixing channel is formed inside the mixing pipe; the electronic water purification device further includes a filter assembly located inside the water tank and below the mixing pipe, the filter assembly being used to receive and filter the water flowing out from the mixing channel and allow the water to flow back into the water tank.
[0009] In some embodiments of this application, the filtration assembly includes a main body and a filter plate. The main body is provided with a filter tank and a water outlet. The filter plate is located in the filter tank and above the water outlet. The mixing pipe is mounted on the main body and located above the filter plate.
[0010] In some embodiments of this application, the circulation pipe includes an inlet pipe and a outlet pipe, wherein the inlet pipe has an inlet channel and the outlet pipe has an outlet channel; the high-energy electron generator, air pump, first control device, second control device, water circulation pump and the outlet pipe are all installed outside the water tank, the inlet pipe is located inside the water tank and passes through the side wall of the water tank to connect with the water circulation pump.
[0011] In some embodiments of this application, the water tank includes a tank body, a cover, and a shield. The top of the tank body has an opening, and the side wall of the tank body has an installation groove located outside the tank body. The cover is used to close or open the opening, and the shield is used to cover the outside of the installation groove. The high-energy electron generator, air pump, first control device, second control device, water circulation pump, and water pipe are all installed on the tank body and located between the installation groove and the shield.
[0012] In some embodiments of this application, the high-energy electron generator and the air pump are arranged side by side in a horizontal direction, and the first control device, the second control device, and the water circulation pump are located below the high-energy electron generator and the air pump, and are arranged side by side in sequence in the horizontal direction.
[0013] In some embodiments of this application, the electronic water purification device further includes a reaction chamber, a first air inlet pipe, and a second air inlet pipe. The reaction chamber is connected to the high-energy electron generator, the first air inlet pipe, and the air pump, respectively, and the second air inlet pipe is connected to the high-energy electron generator.
[0014] In some embodiments of this application, the electronic water purification device is an aquatic temporary holding device.
[0015] As can be seen from the above technical solution, the embodiments of this utility model have at least the following advantages and positive effects: In this embodiment of the electronic water purification device, upon startup, the water circulation system draws water from the tank and circulates it. A high-energy electron generator produces high-frequency electrons, and an air pump pumps the charged gas formed by the high-frequency electrons bombarding external gas into the water circulation system. The synergistic action of the air pump and the water circulation system promotes efficient mixing of the water and charged gas during circulation. During this process, oxidants such as active free radicals in the charged gas react with waste and pollutants in the water, purifying the water. Furthermore, ions and charged particles generated in the injected water neutralize the negative charge on the surface of suspended colloidal particles, causing them to destabilize, aggregate, and form flocculent matter, thus promoting water clarity. Through water circulation, the overall water quality in the tank is improved. Therefore, this electronic water purification device effectively improves the water quality in the tank through the cooperation of its components, and the entire process requires no chemical additives, avoiding the harm caused by residual chemicals in the water and ensuring the normal growth of aquatic products. Attached Figure Description
[0016] The various objectives, features, and advantages of this invention will become more apparent from the following detailed description of preferred embodiments in conjunction with the accompanying drawings. The drawings are merely illustrative illustrations of the invention and are not necessarily drawn to scale. In the drawings, the same reference numerals always denote the same or similar parts. Wherein: Figure 1 This is a schematic diagram of the structure of an electronic water purification device according to an exemplary embodiment.
[0017] Figure 2 yes Figure 1 A schematic diagram of the specific structure after removing the cover and mask.
[0018] Figure 3 yes Figure 2 A structural diagram from another perspective.
[0019] Figure 4 yes Figure 2 A schematic diagram of the greywater circulation system and filtration components.
[0020] Figure 5 yes Figure 4 Front view.
[0021] Figure 6 yes Figure 1 The sectional view in the image.
[0022] Figure 7 This is a trend chart of the test data for this utility model.
[0023] The annotations in the attached figures are explained as follows: 1. Water tank; 11. Tank body; 111. Mounting slot; 12. Cover; 13. Shield; 131. Vent hole; 2. Water circulation system; 21. Submersible pump; 22. Circulation pipe; 221. Mixing pipe; 222. Inlet pipe; 223. Passing pipe; 2231. First section; 2232. Second section; 2233. Third section; 2234. Fourth section; 224. Passing channel; 2241. Main channel section; 2242. First sub-channel section; 2243. Second sub-channel section; 23. Water circulation pump; 24. Temperature control device; 241. First control device; 242. Second control device; 3. High-energy electron generator; 4. Air pump; 5. Filter assembly; 51. Main body; 511. Filter tank; 512. Water outlet; 52. Filter plate. Detailed Implementation
[0024] Although the present invention can be readily embodied in various forms, only some specific embodiments are shown in the accompanying drawings and will be described in detail in this specification. It is understood that this specification should be regarded as an exemplary illustration of the principles of the present invention and is not intended to limit the present invention to what is described herein.
[0025] Therefore, a feature pointed out in this specification is used to describe one feature of one embodiment of the present invention, and does not imply that every embodiment of the present invention must have the described feature. Furthermore, it should be noted that this specification describes many features. Although certain features may be combined to illustrate possible system designs, these features may also be used in other combinations not explicitly stated. Therefore, unless otherwise stated, the described combinations are not intended to be limiting.
[0026] In the embodiments shown in the accompanying drawings, the directional indications (such as up, down, left, right, front, and back) used to explain the structure and movement of the various elements of this invention are relative rather than absolute. These descriptions are appropriate when these elements are in the positions shown in the drawings. If the descriptions of the positions of these elements change, these directional indications also change accordingly.
[0027] Please see Figure 1 and Figure 2 An embodiment of this utility model provides an electronic water purification device, which mainly includes a water tank 1 and a water circulation system 2, a high-energy electron generator 3, and an air pump 4 respectively installed on the water tank 1. The water circulation system 2 and the high-energy electron generator 3 are connected through the air pump 4. The water circulation system 2 is configured to draw water from the water tank 1 and allow the water to flow back into the water tank 1 after flowing within the water circulation system 2, thereby achieving water circulation. The high-energy electron generator 3 is connected to the outside air and is used to generate high-frequency electrons. When the high-frequency electrons bombard the air, they form charged gas. The air pump 4 is configured to drive the outside air to contact the high-frequency electrons and allow the formed charged gas to enter the water circulation system 2 from the high-energy electron generator 3, so as to contact the water flowing within the water circulation system 2.
[0028] In this embodiment of the electronic water purification device, upon startup, the water circulation system 2 draws water from the water tank 1 and circulates the water. The high-energy electron generator 3 generates high-frequency electrons, and the air pump 4 pumps the charged gas formed by the high-frequency electrons bombarding external gas into the water circulation system 2. Through the synergistic action of the air pump 4 and the water circulation system 2, the water and charged gas are efficiently mixed during circulation. During this process, the active free radicals and other oxidants in the charged gas react with waste and pollutants in the water circulation system 2, thereby purifying the water. Furthermore, the ions and charged particles generated in the injected water neutralize the negative charge on the surface of suspended colloidal particles, causing them to destabilize, aggregate, and form flocculent matter, thus promoting water clarity. Through the circulation of the water, the overall water quality of the water tank 1 is improved. Therefore, this electronic water purification device effectively improves the water quality in the water tank 1 through the cooperation of its various components, and the entire process requires no chemical additives, avoiding the harm caused by residual chemicals in the water, thereby ensuring the normal growth of aquatic products.
[0029] It should be noted that a high-energy electron generator includes a high-voltage power supply, an electron gun, and a control circuit. The high-voltage power supply provides the high-voltage electric field required to accelerate electrons in the electron gun. The electron gun, the core component that generates electrons, typically consists of a cathode (filament) and an anode. The cathode emits electrons after heating, while the anode accelerates the electrons through the high-voltage electric field. The control circuit monitors and adjusts the operating parameters of the entire system to ensure the stable operation of the high-energy electron generator.
[0030] It should be noted that the charged gases generated by high-frequency electrons bombarding the external air include free radicals, electrons, ions, and ozone.
[0031] Please see Figures 3 to 5 In a specific embodiment, the water circulation system 2 includes a submersible pump 21, a circulation pipe 22, a water circulation pump 23, and a temperature control device 24. The submersible pump 21 is located inside the water tank 1 and at the bottom of the water tank 1. The circulation pipe 22 has an inlet channel, a flow channel 224, and a mixing channel. The inlet channel is connected to the submersible pump 21 and the water circulation pump 23, respectively. The flow channel 224 is connected to the water circulation pump 23 and the mixing channel, respectively. The mixing channel is connected to the air pump 4 and the interior of the water tank 1, respectively. The temperature control device 24 is located on the flow path of the flow channel 224.
[0032] Submersible pump 21 draws water from the bottom of tank 1 into the inlet channel, where it is pressurized by water circulation pump 23 and then enters the through channel 224. In the through channel 224, temperature control device 24 heats or cools the water to maintain a suitable temperature. The water then enters the mixing channel, reacting with the charged gas delivered by air pump 4. Finally, the treated water returns to tank 1 through the mixing channel. Submersible pump 21, located at the bottom of tank 1, effectively draws water from the bottom, ensuring uniform treatment and purification of the water throughout tank 1. Water circulation pump 23 provides stable power, ensuring circulation speed and preventing stagnation. Through the coordinated operation of submersible pump 21, water circulation pump 23, and circulation pipe 22, the water circulation system 2 can stably perform its functions. Temperature control device 24 allows for adjustment of water temperature, optimizes the reaction efficiency of the charged gas, and ensures that the water in tank 11 is maintained at a suitable temperature, thus promoting normal aquatic growth.
[0033] Please see Figure 6In a specific embodiment, the water passage 224 includes a main passage section 2241, a first sub-passage section 2242, and a second sub-passage section 2243. The main passage section 2241 is connected to the water circulation pump 23, and the second sub-passage section 2243 is connected to both the first sub-passage section 2242 and the mixing passage. The temperature control device 24 includes a first control device 241 and a second control device 242, which are sequentially arranged on the flow path of the main passage. The inlet end of the first control device 241 is connected to the main passage, and the outlet end is connected to the first sub-passage. The inlet end of the second control device 242 is connected to the main passage, and the outlet end is connected to the second sub-passage.
[0034] The water circulation pump 23 pumps water into the main channel. A portion of the water flows from the main channel section 2241 into the first control device 241 for temperature regulation, and then flows into the first sub-channel section 2242. Another portion of the water flows from the main channel section 2241 into the second control device 242 for independent temperature regulation, and then flows into the second sub-channel section 2243. The water that has been regulated by the first control device 241 flows from the first sub-channel section 2242 into the second sub-channel section 2243, and merges with the water that has been regulated by the second control device 242 in the second sub-channel section 2243. The merged water then enters the mixing channel. This further refines the flow mechanism of the water circulation system 2 and has the advantages of compact structure and highly integrated functions.
[0035] It should be noted that dividing the water flow in the main channel into two paths can effectively alleviate pipeline pressure, enhance the adaptability and controllability of the equipment, and the parallel arrangement of the first sub-channel and the second sub-channel, as well as the first control device 241 and the second control device 242, can avoid increasing the fault tolerance of the overall device and improve the stability and service life of the electronic water purification equipment.
[0036] It is conceivable that the first control device 241 and the second control device 242 may perform the same temperature control task or different temperature control tasks, and can be specifically controlled according to the actual use scenario and needs.
[0037] Please see Figures 2 to 5 In a specific embodiment, the circulation pipe 22 includes a mixing pipe 221 located inside the water tank 1, and a mixing channel is formed inside the mixing pipe 221. The electronic water purification device also includes a filter assembly 5, which is located inside the water tank 1 and below the mixing pipe 221. The filter assembly 5 is used to receive and filter the water flowing out from the mixing channel and allow the water to flow back into the water tank 1.
[0038] The filter assembly 5 is located below the mixing pipe 221, which can promptly intercept flocculent matter and other impurities in the water flowing out of the mixing channel, preventing flocculent matter and other impurities from entering the water tank 1, making the water entering the water tank 1 purer, thereby greatly improving the overall purification quality of the electronic water purification equipment, and enabling the treated water to meet higher water quality requirements.
[0039] Please see Figure 3 In a specific embodiment, the filter assembly 5 includes a main body 51 and a filter plate 52. The main body 51 is provided with a filter tank 511 and a water outlet 512. The filter plate 52 is located inside the filter tank 511 and above the water outlet 512. A mixing pipe 221 is mounted on the main body 51 and is located above the filter plate 52. Since the mixing pipe 221 is mounted on the main body 51 and located above the filter plate 52, the water flowing out of the mixing pipe 221 falls directly into the filter tank 511 of the main body 51 of the filter assembly 5, and passes through the filter plate 52 under the action of gravity. The filter plate 52 can filter out flocculent matter and other impurities. Subsequently, the water filtered by the filter plate 52 flows back into the water tank 1 through the water outlet 512 under the action of gravity. The specific structure of the filter assembly 5 and its arrangement with the mixing pipe 221 make the overall structure simple and reliable, with high integration and strong stability.
[0040] Please see Figure 2 and Figure 3 In a specific embodiment, the circulation pipe 22 includes an inlet pipe 222 and a through pipe 223. The inlet pipe 222 has an inlet channel, and the through pipe 223 has a through channel 224. The high-energy electron generator 3, the air pump 4, the first control device 241, the second control device 242, the water circulation pump 23, and the through pipe 223 are all installed outside the water tank 1. The inlet pipe 222 is located inside the water tank 1 and passes through the side wall of the water tank 1 to connect with the water circulation pump 23.
[0041] By mounting most of the components of the high-energy electron generator 3, air pump 4, and water circulation system 2 on the outside of the water tank 1, excessive space is avoided, allowing the tank to store more water and improving its space utilization. This is particularly suitable for locations with limited space and specific water storage requirements. Furthermore, concentrating the components on the outside of the tank reduces installation difficulty and cost. In case of equipment failure, maintenance personnel can easily inspect, repair, and replace each component, improving maintenance efficiency and reducing downtime.
[0042] Please see Figure 3 In this embodiment, both the air pump 4 and the water pipe 223 are connected to the mixing pipe 221 through a straight pipe passing through the side wall of the water tank 1.
[0043] Please see Figures 1 to 3 In a specific embodiment, the water tank 1 includes a tank body 11, a cover 12, and a shield 13. An opening is formed at the top of the tank body 11, and a mounting groove 111 is formed on the side wall of the tank body 11, located outside the tank body 11. The cover 12 is used to close or open the opening, and the shield 13 is used to cover the mounting groove 111. The high-energy electron generator 3, air pump 4, first control device 241, second control device 242, water circulation pump 23, and water pipe 223 are all mounted on the tank body 11 and located between the mounting groove 111 and the shield 13.
[0044] The housing 11 is the basic structure of the entire water tank 1. The cover 12 is used to close or open the opening of the housing 11, ensuring that the operator can add water to the water tank 1 or perform cleaning and maintenance operations from the top opening. It also prevents water from splashing out of the water tank 1 and prevents external debris from entering the water tank 1 during normal operation. The mounting groove 111 provides installation space for the aforementioned components, and the cover 13 covers the mounting groove 111, protecting the components within it. Therefore, by refining and arranging the structure of the water tank 1, the safety and stability of the overall equipment can be improved.
[0045] In this embodiment, the shield 13 is provided with a ventilation hole 131.
[0046] In this embodiment, the mounting slot 111 and the filter assembly 5 are both arranged close to the opening to ensure ease of operation and effective utilization of the internal space of the water tank 1.
[0047] Please see Figures 2 to 5 In a specific embodiment, the high-energy electron generator 3 and the air pump 4 are arranged side by side in the horizontal direction. The first control device 241, the second control device 242 and the water circulation pump 23 are located below the high-energy electron generator 3 and the air pump 4 and are arranged side by side in the horizontal direction, so that the overall structure of the equipment is compact and occupies less space.
[0048] Please see Figure 5 and Figure 6In this embodiment, the water pipe 223 is arranged in a rectangular shape and includes a first section 2231, a second section 2232, a third section 2233, and a fourth section 2234. The first section 2231 and the second section 2232 both extend horizontally and are arranged vertically opposite each other. The third section 2233 and the fourth section 2234 both extend vertically and are arranged horizontally opposite each other. The lower half of the second section 2232 and the third section 2233 forms the main channel section 2241. The third section 2233 is located... Between the first control device 241 and the second control device 242, the lower half of the third segment 2233 is connected to the first control device 241, the second segment 2232 is connected to the second control device 242, the upper half of the third segment 2233 and the first segment 2231 form a first sub-channel segment 2242, and the fourth segment 2234 forms a second sub-channel segment 2243. The fourth segment 2234 extends upward and passes through the side wall of the water tank 1 to connect with the mixing pipe 221, thereby connecting the second sub-channel segment 2243 and the mixing channel. This arrangement has the advantages of compact and reasonable structural layout and optimized water flow path.
[0049] In a specific embodiment, the electronic water purification device further includes a reaction chamber, a first air inlet pipe, and a second air inlet pipe. The reaction chamber is connected to a high-energy electron generator 3, the first air inlet pipe, and an air pump 4, respectively. The second air inlet pipe is connected to the high-energy electron generator 3. The second air inlet pipe is used to provide raw material air for ionization to the high-energy electron generator 3, directly delivering untreated ordinary air to the reaction chamber. In the reaction chamber, the charged gas is pre-mixed with a large amount of ordinary air from the first air inlet pipe. This mixing process directly reduces the ozone concentration in the airflow entering the air pump 4 from the reaction chamber outlet. This makes the initial ozone concentration in the final pumped water controllable and moderate, making the device safer and more reliable. Furthermore, this design increases the bubble effect, further promoting gas-liquid mixing and improving water purification efficiency.
[0050] It should be noted that the reaction chamber, the first air inlet pipe, the second air inlet pipe, and the high-energy electron generator 3 can be either separate designs or an integrated structure.
[0051] In a specific embodiment, the electronic water purification device is an aquatic temporary holding device.
[0052] When temporarily holding fish, good water quality can effectively reduce the chances of fish getting sick, decrease the occurrence of diseases such as gill rot and enteritis caused by water quality deterioration, and improve the survival rate of fish. This electronic water purification equipment, through the rational layout of its components, can ensure stable water circulation within the aquatic holding device. This water circulation is not only related to water quality improvement but also simulates the flow environment of natural water bodies, enhancing the movement ability of aquatic animals, promoting their metabolism, and benefiting their growth and development. Furthermore, it features good water purification effect and low energy consumption, significantly reducing operating costs and improving economic efficiency.
[0053] It should be noted that aquatic holding devices are short-term in nature. The electronic water purification equipment provided in this embodiment is designed to provide rapid water quality improvement and maintenance for short-term, high-density aquatic holding scenarios, such as live seafood holding in restaurants and supermarkets, logistics transportation, and market displays. The typical operating cycle is several hours to several days, requiring periodic partial or complete water changes. Most of the flocculent material generated during equipment operation is intercepted by the filter component 5, which needs to be cleaned regularly to maintain the optimal performance of the equipment.
[0054] In the above examples, the electronic water purification equipment also includes a control system, which is connected to the water circulation system 2, the high-energy electron generator 3, and the air pump 4, respectively.
[0055] To verify that the electronic water purification device of this invention can improve water quality, the following test data will be provided. Specifically, the relevant parameters of the operating experiment are as follows: the submersible pump has a power of 24W, a flow rate of 1000ml / h, and a head of 1.4m. The temperature control range of the first control device 241 and the second control device 242 is 12-27℃. The high-energy electron generator 3 operates at a power of 6W-12W, and the air pump 4 operates at a power of 60W with an air pressure of 12p.
[0056] The results are shown in Table 1: Table 1. Test data of aquaculture ponds
[0057] It should be noted that excessive nitrite and ammonia nitrogen concentrations are important indicators of water quality. Test results show that after the electronic water purification device started operating, the ammonia nitrogen and nitrite levels in water tank 1 no longer increased. Furthermore, after several days of operation, the ammonia nitrogen and nitrite levels in water tank 1 began to decrease and remained stable thereafter. The water gradually transitioned between turbidity, slightly clear, and clear, and subsequently remained clear. Therefore, the test results demonstrate that the electronic water purification device of this invention can effectively improve water quality.
[0058] It should be further noted that the test data is mainly for cases where the electronic water purification equipment is a large-scale device. Similarly, in embodiments where the electronic water purification equipment is used as a temporary aquaculture holding device, similar technical effects can be achieved.
[0059] Although the present invention has been described with reference to several typical embodiments, it should be understood that the terminology used is descriptive and exemplary, and not restrictive. Since the present invention can be embodied in many forms without departing from the spirit or essence of the invention, it should be understood that the above embodiments are not limited to any of the foregoing details, but should be interpreted broadly within the spirit and scope defined by the appended claims. Therefore, all variations and modifications falling within the scope of the claims or their equivalents should be covered by the appended claims.
Claims
1. An electronic water purification device, characterized in that, It includes a water tank and a water circulation system, a high-energy electron generator, and an air pump respectively installed on the water tank, wherein the water circulation system and the high-energy electron generator are connected through the air pump; The water circulation system is configured to draw water from the water tank and allow the water to flow back into the water tank after flowing within the water circulation system, thereby achieving water circulation. The high-energy electron generator is connected to the outside air and is used to generate high-frequency electrons, and the high-frequency electrons form charged gas when they bombard the air. The air pump is configured to drive external air into contact with high-frequency electrons and to cause the resulting charged gas to enter the water circulation system from the high-energy electron generator so as to come into contact with the water flowing in the water circulation system.
2. The electronic water purification device according to claim 1, characterized in that, The water circulation system includes a submersible pump, a circulation pipe, a water circulation pump, and a temperature control device. The submersible pump is located inside the water tank and at the bottom of the water tank. The circulation pipe has an inlet channel, a flow channel, and a mixing channel. The inlet channel is connected to the submersible pump and the water circulation pump, respectively. The flow channel is connected to the water circulation pump and the mixing channel, respectively. The mixing channel is connected to the air pump and the interior of the water tank, respectively. The temperature control device is located on the flow path of the flow channel.
3. The electronic water purification device according to claim 2, characterized in that, The water passage includes a main passage section, a first sub-passage section, and a second sub-passage section. The main passage section is connected to the water circulation pump, and the second sub-passage section is connected to the first sub-passage section and the mixing passage, respectively. The temperature control device includes a first control device and a second control device, which are sequentially arranged on the flow path of the main channel. The inlet of the first control device is connected to the main channel and the outlet is connected to the first sub-channel. The inlet of the second control device is connected to the main channel and the outlet is connected to the second sub-channel.
4. The electronic water purification device according to claim 2, characterized in that, The circulation pipeline includes a mixing pipeline located inside the water tank, and the mixing channel is formed inside the mixing pipeline; The electronic water purification device also includes a filter assembly, which is located inside the water tank and below the mixing pipe. The filter assembly is used to receive and filter the water flowing out of the mixing channel and allow the water to flow back into the water tank.
5. The electronic water purification device according to claim 4, characterized in that, The filter assembly includes a main body and a filter plate. The main body is provided with a filter tank and a water outlet. The filter plate is located in the filter tank and above the water outlet. The mixing pipe is mounted on the main body and located above the filter plate.
6. The electronic water purification device according to claim 3, characterized in that, The circulation pipeline includes an inlet pipe and a outlet pipe, wherein the inlet pipe has an inlet channel and the outlet pipe has an outlet channel. The high-energy electron generator, air pump, first control device, second control device, water circulation pump, and water pipe are all installed outside the water tank. The water inlet pipe is located inside the water tank and passes through the side wall of the water tank to connect with the water circulation pump.
7. The electronic water purification device according to claim 6, characterized in that, The water tank includes a tank body, a cover, and a shield. The top of the tank body has an opening, and the side wall of the tank body has an installation groove located outside the tank body. The cover is used to close or open the opening, and the shield is used to cover the outside of the installation groove. The high-energy electron generator, air pump, first control device, second control device, water circulation pump, and water pipe are all installed on the housing and located between the mounting slot and the shield.
8. The electronic water purification device according to claim 7, characterized in that, The high-energy electron generator and the air pump are arranged side by side in the horizontal direction. The first control device, the second control device, and the water circulation pump are located below the high-energy electron generator and the air pump, and are arranged side by side in sequence in the horizontal direction.
9. The electronic water purification device according to claim 1, characterized in that, It also includes a reaction chamber, a first air inlet pipe and a second air inlet pipe. The reaction chamber is connected to the high-energy electron generator, the first air inlet pipe and the air pump, respectively, and the second air inlet pipe is connected to the high-energy electron generator.
10. The electronic water purification device according to any one of claims 1-9, characterized in that, The electronic water purification equipment is a temporary holding device for aquatic products.