Electrolyzed water sterilization device and method

By designing a multi-chamber structure and intelligent control system, the problem of poor electrolytic sterilization effect is solved, and an efficient and automated electrolytic sterilization process is achieved.

CN120229797AActive Publication Date: 2025-07-01KUNSHAN TYREK INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202510664672.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-22
Publication Date
2025-07-01
Estimated Expiration
2045-05-22

AI Technical Summary

Technical Problem

The problem of poor sterilization effect in existing electrolytic water sterilization devices is that the electrolytic water sterilization process is too short.

Method used

An electrolytic water sterilization device including a water inlet cavity, an adsorption cavity, a measurement cavity, an electrolytic cavity and an outlet cavity is designed to absorb impurities through an activated carbon rod, a flow sensor monitors the flow rate, and a floating rod and a fan plate control the opening and closing of the sterilization port and the outflow hole to ensure sufficient electrolytic sterilization time and automatically manage the water flow.

Benefits of technology

It improves the electrolytic sterilization effect, prevents water from staying in the device for too long, improves the degree of automation, and ensures the efficient progress of the electrolytic sterilization process.

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Abstract

The invention discloses an electrolyzed water sterilization device and method, and belongs to the technical field of electrolyzed water, the electrolyzed water sterilization device comprises a main body mechanism for feeding and discharging water, and the main body mechanism is provided with a filtering mechanism for filtering water and a sterilization mechanism for performing electrolytic sterilization on the water; the box body is composed of the water inlet cavity, the adsorption cavity, the measurement cavity, the electrolysis cavity and the water outlet cavity, so that water is adsorbed and then subjected to electrolytic sterilization on a large scale, enough time is provided for electrolytic sterilization, and the electrolytic sterilization effect is improved; when the water quantity in the water outlet cavity is large, external water enters the water inlet cavity and then is temporarily stored in the water outlet cavity, after the water in the water outlet cavity is used, water sterilization is started, and the water is prevented from staying in the device for a long time; after the water level in the measuring cavity rises, disinfectant fluid in the electrolysis cavity is discharged, water in the measuring cavity enters the electrolysis cavity to be electrolyzed and sterilized, the water discharging and feeding process of the electrolysis cavity is automatically conducted, and the automation degree is high.
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Description

Technical Field

[0001] The present invention relates to the technical field of electrolyzed water, and particularly relates to an electrolyzed water sterilization device and method. Background Art

[0002] Electrolyzed water sterilization mainly destroys the microbial structure through the active substances generated during the electrolysis process to achieve efficient and rapid sterilization effects. When electrolyzing pure water, hydroxyl radicals, hydrogen peroxide, ozone, etc. are generated at the anode, which have strong oxidizing properties. They can penetrate the microbial cell wall, oxidize and damage its enzyme system and DNA, thereby achieving the sterilization effect, and attack the DNA and RNA of microorganisms, resulting in base breakage or cross-linking and loss of replication ability. It is effective against bacteria, viruses, fungi, and even spores, and decomposes into water and inorganic salts without toxic residues. In the existing electrolyzed water sterilization devices, the electrolysis process may be too short, resulting in poor sterilization effects. Summary of the Invention

[0003] In view of the above technical problems, the technical solution adopted by the present invention is: an electrolyzed water sterilization device, including a main body mechanism for water inlet and outlet. The main body mechanism includes a box body, and a filtering mechanism for filtering water and a sterilization mechanism for electrolyzing and sterilizing water are arranged on the main body mechanism. The box body is composed of a water inlet chamber, an adsorption chamber, a measurement chamber, an electrolysis chamber, and a water outlet chamber.

[0004] Further, the main body mechanism includes an upper shell fixedly installed on the box body and a water intake pipe. A water pump is fixedly installed on the water intake pipe, and the water pump is located in the water outlet chamber. An external water inlet pipe is communicated with the water inlet chamber.

[0005] Further, an outer rotating rod is rotatably installed on the box body. A front magnetic block and a rear magnetic block are fixedly installed on the outer rotating rod. The weight of the rear magnetic block is greater than that of the front magnetic block. A front vertical rail is fixedly installed in the water inlet chamber, and a rear vertical rail is fixedly installed in the water outlet chamber. A front suction block is slidably installed on the front vertical rail, and a rear suction block is slidably installed on the rear vertical rail. The front magnetic block adsorbs with the front suction block, and the rear suction block adsorbs with the rear magnetic block. A water inlet hole is provided on the partition between the water inlet chamber and the adsorption chamber.

[0006] Water enters the water inlet chamber from the outside. As the water enters, the pressure in the water inlet chamber increases. When the water level in the water outlet chamber is low, due to the weight of the rear magnetic block being greater than that of the front magnetic block, the outer rotating rod will rotate, the front magnetic block will rise, thereby driving the front suction block to slide upward along the front vertical rail, so that the front suction block no longer blocks the water inlet hole, and the water in the water inlet chamber enters the adsorption chamber through the water inlet hole. The disinfected water in the water outlet chamber can be taken out and used through the water pump and the water intake pipe.

[0007] Furthermore, the filtering mechanism comprises an adsorption frame placed in the adsorption chamber, a plurality of activated carbon rods are arranged below the adsorption frame, a water supply hole is arranged on the partition between the adsorption chamber and the measuring chamber, and the adsorption frame is detachable.

[0008] Furthermore, a flow module is provided in the measuring chamber, and the flow module includes a rotor rotatably installed in the measuring chamber, and a flow sensor is fixedly installed on the partition between the measuring chamber and the electrolysis chamber, and the rotation speed of the rotor is monitored by the flow sensor.

[0009] When the water inlet is opened, water is squeezed into the adsorption chamber from the water inlet chamber, and the impurities in the water are adsorbed by the activated carbon rod. Then the water enters the impeller through the upper water hole. The water flow drives the impeller to rotate. The flow sensor monitors the speed of the impeller, records the flow rate, and the water enters the measuring chamber.

[0010] Furthermore, the sterilization mechanism includes an electrolysis rack placed in the electrolysis chamber, electrodes and ion detectors are fixedly installed below the electrolysis rack, and the electrolysis rack is detachable.

[0011] Furthermore, a sterilization port is provided on the partition between the measuring chamber and the electrolysis chamber, and an outflow hole is provided on the partition between the electrolysis chamber and the water outlet chamber.

[0012] Furthermore, a floating rod is rotatably installed in the measuring chamber, a rotating shaft is fixedly installed on the floating rod, the rotating shaft is rotatably installed with the electrolysis chamber, a lifting rod and a floating ball are fixedly installed on the floating rod, an upper rotating rod is rotatably installed on the lifting rod, a lower rotating rod is slidably installed on the upper rotating rod, a spring is arranged between the upper rotating rod and the lower rotating rod, a vertical frame is fixedly installed in the measuring chamber, a magnet is arranged on the top of the vertical frame, a switch plate is slidably installed on the vertical frame, the switch plate is rotatably installed with the lower rotating rod, a fan-shaped plate is fixedly installed on the rotating shaft, an opening groove is arranged on the fan-shaped plate, when the switch plate is staggered with the sterilization port, water enters the electrolysis chamber from the measuring chamber, and when the opening groove is located at the outflow hole, water enters the water outlet chamber from the electrolysis chamber.

[0013] As water enters the measuring chamber and the water level in the measuring chamber rises, the float ball will rise, thereby driving the float rod, shaft, lifting rod and fan-shaped plate to rotate counterclockwise. After the fan-shaped plate rotates a short distance, the opening slot begins to align with the outflow hole, and the water disinfected in the electrolysis chamber is discharged into the water outlet chamber. At this time, the switch plate is adsorbed by the magnet on the top of the stand, and the switch plate will not move temporarily. The spring between the upper rotating rod and the lower rotating rod is compressed. At this time, the sterilization port remains closed. As the float rod continues to rotate, the opening slot and the outflow hole are staggered, and the upper rotating rod begins to push the lower rotating rod and the switch plate down, causing the switch plate to leave the sterilization port, and the water in the measuring chamber enters the electrolysis chamber. The water in the electrolysis chamber is electrolyzed and sterilized through the electrodes, and the ion concentration in the electrolysis chamber is monitored by the ion detector. Subsequently, the water level in the measuring chamber begins to drop, causing the float rod to begin to rotate clockwise, thereby driving the upper rotating rod and the fan-shaped plate to rotate clockwise. When the fan-shaped plate just When the movement starts, the spring between the upper rotating rod and the lower rotating rod is reset. At this time, the switch plate does not move. Then the upper rotating rod begins to pull the lower rotating rod, thereby pulling the switch plate up. When the switch plate reaches the adsorption range of the magnet of the stand, the magnet on the stand quickly adsorbs the switch plate, so that the switch plate closes the sterilization port. Since the switch plate is quickly adsorbed to the magnet of the stand, and the spring between the upper rotating rod and the lower rotating rod has been reset at this time, the rapid movement of the switch plate will drive the upper rotating rod and the lower rotating rod to rise rapidly. At this time, the fan-shaped plate rotates rapidly, and the open groove passes through the outflow hole quickly. The water in the electrolysis chamber will not flow out in large quantities, and the float ball is reset. When the water level in the chamber rises next time, the float ball rises again, thereby driving the floating rotating rod, the rotating shaft, the lifting rod and the fan-shaped plate to rotate counterclockwise. After the fan-shaped plate rotates a short distance, the open groove begins to align with the outflow hole, and the water disinfected in the electrolysis chamber is discharged into the water outlet chamber, and this reciprocating cycle is repeated.

[0014] A sterilization method for an electrolytic water sterilization device comprises the following steps: (1) water enters a water inlet chamber, (2) water enters an adsorption chamber and is adsorbed by an activated carbon rod for impurities, (3) water enters a measuring chamber and the flow of water is counted, (4) the water flow is accumulated and enters an electrolysis chamber; (5) water is electrolyzed and sterilized in the electrolysis chamber (1014); and (6) water enters a water outlet chamber for storage and use.

[0015] The beneficial effects of the present invention compared with the prior art are as follows: (1) The box body provided in the present invention is composed of a water inlet chamber, an adsorption chamber, a measurement chamber, an electrolysis chamber and a water outlet chamber, so that the water is electrolyzed and sterilized in large quantities after adsorption, and sufficient time is provided for electrolysis sterilization, improving the electrolysis sterilization effect; (2) When the amount of water in the water outlet chamber of the present invention is large, it will cause external water to enter the water inlet chamber and be temporarily stored therein. After the water in the water outlet chamber is used, the sterilization of the water will start, preventing the water from staying in the device for too long; (3) After the water level in the measurement chamber provided in the present invention rises, the disinfected water in the electrolysis chamber is discharged, and the water in the measurement chamber enters the electrolysis chamber for electrolysis sterilization, making the drainage and water inlet process of the electrolysis chamber automatic and having a high degree of automation. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic diagram of the overall structure of the present invention.

[0017] Figure 2 is a schematic diagram of the overall structure of the present invention (internal).

[0018] Figure 3 is a schematic diagram of the main body structure of the present invention Figure 1 .

[0019] Figure 4 is a schematic diagram of the main body structure of the present invention Figure 2 .

[0020] Figure 5 is a schematic diagram of the main body structure of the present invention Figure 3 .

[0021] Figure 6 is a schematic diagram of the filtering mechanism structure of the present invention.

[0022] Figure 7 is a schematic diagram of the sterilization mechanism structure of the present invention Figure 1 .

[0023] Figure 8 is a schematic diagram of the sterilization mechanism structure of the present invention Figure 2 .

[0024] Figure 9 is a schematic diagram of the sterilization mechanism structure of the present invention Figure 3 .

[0025] Figure 10 is a schematic diagram of the sterilization mechanism structure of the present invention Figure 4 .

[0026] Attached drawing reference numerals: 101 - box body; 102 - water intake pipe; 103 - upper shell; 104 - outer rotating rod; 105 - front magnetic block; 106 - rear magnetic block; 107 - front suction block; 108 - front vertical rail; 109 - rear vertical rail; 110 - rear suction block; 111 - water pump; 112 - water inlet hole; 1011 - water inlet cavity; 1012 - adsorption cavity; 1013 - measurement cavity; 1014 - electrolysis cavity; 1015 - water outlet cavity; 201 - adsorption rack; 202 - activated carbon rod; 203 - upper water hole; 204 - runner; 205 - flow sensor; 301 - electrolysis rack; 302 - electrode; 303 - ion detector; 304 - floating rotating rod; 305 - rotating shaft; 306 - lifting rod; 307 - upper rotating rod; 308 - lower rotating rod; 309 - vertical rack; 310 - switch board; 311 - sterilization port; 312 - sector plate; 313 - opening groove; 314 - outflow hole; 315 - floating ball. Detailed implementation manners

[0027] The following further describes the detailed implementation manners of the present invention with reference to the attached drawings.

[0028] Example: Refer to Figures 1 - 10 , an electrolyzed water sterilization device, including a main body mechanism for water inlet and outlet, the main body mechanism includes a box body 101, a filtering mechanism for filtering water and a sterilization mechanism for electrolyzing and sterilizing water are arranged on the main body mechanism; The box body 101 is composed of a water inlet cavity 1011, an adsorption cavity 1012, a measurement cavity 1013, an electrolysis cavity 1014 and a water outlet cavity 1015.

[0029] As Figures 3 - 5 shown, the main body mechanism includes an upper shell 103 and a water intake pipe 102 fixedly installed on the box body 101, a water pump 111 is fixedly installed on the water intake pipe 102, the water pump 111 is located in the water outlet cavity 1015, and an external water inlet pipe is communicated with the water inlet cavity 1011.

[0030] As Figures 3 - 5 shown, an outer rotating rod 104 is rotatably installed on the box body 101, a front magnetic block 105 and a rear magnetic block 106 are fixedly installed on the outer rotating rod 104, the weight of the rear magnetic block 106 is greater than that of the front magnetic block 105, a front vertical rail 108 is fixedly installed in the water inlet cavity 1011, a rear vertical rail 109 is fixedly installed in the water outlet cavity 1015, a front suction block 107 is slidably installed on the front vertical rail 108, a rear suction block 110 is slidably installed on the rear vertical rail 109, the front magnetic block 105 adsorbs with the front suction block 107, the rear suction block 110 adsorbs with the rear magnetic block 106, and a water inlet hole 112 is arranged on the partition between the water inlet cavity 1011 and the adsorption cavity 1012.

[0031] Water enters the water inlet chamber 1011 from the outside. As the water enters, the pressure in the water inlet chamber 1011 increases. When the water level in the water outlet chamber 1015 is relatively low, since the weight of the rear magnet 106 is greater than the weight of the front magnet 105, the outer rotating rod 104 will rotate, the front magnet 105 will rise, thereby driving the front suction block 107 to slide upward along the front vertical rail 108, so that the front suction block 107 no longer blocks the water inlet hole 112. The water in the water inlet chamber 1011 enters the adsorption chamber 1012 through the water inlet hole 112. The disinfected water in the water outlet chamber 1015 can be taken out and used through the water pump 111 and the water intake pipe 102.

[0032] As Figure 6 shown, the filtering mechanism includes an adsorption rack 201 placed in the adsorption chamber 1012. A number of activated carbon rods 202 are arranged below the adsorption rack 201. A water inlet hole 203 is arranged on the partition between the adsorption chamber 1012 and the measurement chamber 1013. The adsorption rack 201 is detachable.

[0033] As Figure 6 shown, a flow module is arranged in the measurement chamber 1013. The flow module includes a runner 204 rotatably installed in the measurement chamber 1013. A flow sensor 205 is fixedly installed on the partition between the measurement chamber 1013 and the electrolysis chamber 1014. The runner 204 drives the flow sensor 205 to rotate through a belt drive.

[0034] After the water inlet hole 112 is opened, the water is squeezed from the water inlet chamber 1011 into the adsorption chamber 1012. The impurities in the water are adsorbed by the activated carbon rods 202. Then the water enters the runner 204 through the water inlet hole 203. The water flow drives the runner 204 to rotate, thereby driving the flow sensor 205 to rotate through a belt drive to record the flow rate, and the water enters the measurement chamber 1013.

[0035] As Figures 7 - 10 shown, the sterilization mechanism includes an electrolysis rack 301 placed in the electrolysis chamber 1014. An electrode 302 and an ion detector 303 are fixedly installed below the electrolysis rack 301. The electrolysis rack 301 is detachable.

[0036] As Figures 7 - 10 shown, a sterilization port 311 is arranged on the partition between the measurement chamber 1013 and the electrolysis chamber 1014. An outflow hole 314 is arranged on the partition between the electrolysis chamber 1014 and the water outlet chamber 1015.

[0037] As Figures 7 - 10As shown in the figure, a floating rotating rod 304 is rotatably installed in the measurement cavity 1013. A rotating shaft 305 is fixedly installed on the floating rotating rod 304. The rotating shaft 305 is rotatably installed in the electrolysis cavity 1014. A lifting rod 306 and a floating ball 315 are fixedly installed on the floating rotating rod 304. An upper rotating rod 307 is rotatably installed on the lifting rod 306. A lower rotating rod 308 is slidably installed on the upper rotating rod 307. A spring is arranged between the upper rotating rod 307 and the lower rotating rod 308. A vertical frame 309 is fixedly installed in the measurement cavity 1013. A magnet is arranged at the top of the vertical frame 309. A switch plate 310 is slidably installed on the vertical frame 309. The switch plate 310 is rotatably installed with the lower rotating rod 308. A sector plate 312 is fixedly installed on the rotating shaft 305. An opening groove 313 is arranged on the sector plate 312. When the switch plate 310 is staggered from the sterilization port 311, water enters the electrolysis cavity 1014 from the measurement cavity 1013. When the opening groove 313 is located at the outflow hole 314, water enters the water outlet cavity 1015 from the electrolysis cavity 1014.

[0038] As water enters the measuring chamber 1013, the water level in the measuring chamber 1013 rises, which drives the float 315 to rise, thereby driving the float rod 304, the rotating shaft 305, the lifting rod 306 and the fan-shaped plate 312 to rotate counterclockwise. After the fan-shaped plate 312 rotates a short distance, the opening groove 313 begins to align with the outflow hole 314, and the disinfected water in the electrolysis chamber 1014 is discharged into the water outlet chamber 1015. At this time, the switch plate 310 is attracted by the magnet on the top of the stand 309, and the switch plate 310 will not move temporarily. The spring between the upper rotating rod 307 and the lower rotating rod 308 is compressed. At this time, the sterilization port 311 remains closed. As the floating rod 304 continues to rotate, the opening slot 313 is offset from the outflow hole 314, and the upper rotating rod 307 begins to push the lower rotating rod 308 and the switch plate 310 downward, so that the switch plate 310 leaves the sterilization port 311, and the water in the measuring chamber 1013 enters the electrolytic chamber 1014, and the water in the electrolytic chamber 1014 is electrolyzed and sterilized through the electrode 302, and the ion concentration in the electrolytic chamber 1014 is monitored through the ion detector 303, and then the water level in the measuring chamber 1013 begins to drop, causing the floating rod 304 to start rotating clockwise, thereby driving the upper rotating rod 307 and the fan-shaped plate 312 to rotate clockwise, and the fan-shaped plate When the switch plate 310 starts to rotate, the spring between the upper rotating rod 307 and the lower rotating rod 308 is reset. At this time, the switch plate 310 does not move. Then the upper rotating rod 307 starts to pull the lower rotating rod 308, thereby pulling the switch plate 310 up. When the switch plate 310 reaches the adsorption range of the magnet of the stand 309, the magnet on the stand 309 quickly adsorbs the switch plate 310, so that the switch plate 310 closes the sterilization port 311. Since the switch plate 310 is quickly adsorbed to the magnet of the stand 309, and the spring between the upper rotating rod 307 and the lower rotating rod 308 has been reset at this time, the quick adsorption of the switch plate 310 The rapid motion will drive the upper rotating rod 307 and the lower rotating rod 308 to rise rapidly. At this time, the fan-shaped plate 312 rotates rapidly, and the open groove 313 passes through the outflow hole 314 rapidly. The water in the electrolysis chamber 1014 will not flow out in large quantities, and the float 315 will reset. When the water level in the measurement chamber 1013 rises next time, the float 315 will rise again, thereby driving the floating rotating rod 304, the rotating shaft 305, the lifting rod 306 and the fan-shaped plate 312 to rotate counterclockwise. After the fan-shaped plate 312 rotates a short distance, the open groove 313 begins to align with the outflow hole 314, and the water in the electrolysis chamber 1014 that has been disinfected is discharged into the water outlet chamber 1015, and this cycle repeats.

[0039] A sterilization method for an electrolytic water sterilization device comprises the following steps: (1) water enters a water inlet chamber 1011; (2) water enters an adsorption chamber 1012 and is adsorbed by an activated carbon rod for impurities; (3) water enters a measuring chamber 1013 and the flow of water is counted; (4) the water flow is accumulated and enters an electrolysis chamber 1014; (5) water is electrolyzed and sterilized in the electrolysis chamber 1014; and (6) water enters a water outlet chamber 1015 for storage and use.

[0040] The working principle of an electrolyzed water sterilization device disclosed by the present invention is as follows: Water enters the water inlet chamber 1011 from the outside. As the water enters, the pressure in the water inlet chamber 1011 increases. When the water level in the water outlet chamber 1015 is relatively low, since the weight of the rear magnet 106 is greater than the weight of the front magnet 105, the outer rotating rod 104 will rotate, the front magnet 105 will rise, thereby driving the front suction block 107 to slide upward along the front vertical rail 108, so that the front suction block 107 no longer blocks the water inlet hole 112, and the water in the water inlet chamber 1011 enters the adsorption chamber 1012 through the water inlet hole 112. The disinfected water in the water outlet chamber 1015 can be taken out and used through the water pump 111 and the water intake pipe 102. When the water inlet hole 112 is opened, the water is squeezed from the water inlet chamber 1011 into the adsorption chamber 1012, and the impurities in the water are adsorbed by the activated carbon rod 202. Subsequently, the water enters the runner 204 through the upper water hole 203. The water flow drives the runner 204 to rotate, and the flow rate is monitored by the flow sensor 205 to record the flow rate, and the water enters the measurement chamber 1013.When the water level in the measurement chamber 1013 rises, it will drive the floating ball 315 to rise, thereby driving the floating rotating rod 304, the rotating shaft 305, the lifting rod 306 and the sector plate 312 to rotate counterclockwise. After the sector plate 312 rotates a small distance, the opening groove 313 starts to align with the outflow hole 314, and the disinfected water in the electrolysis chamber 1014 is discharged into the water outlet chamber 1015. At this time, the switch plate 310 is adsorbed by the magnet at the top of the vertical frame 309, and the switch plate 310 will not move temporarily. The spring between the upper rotating rod 307 and the lower rotating rod 308 is compressed. At this time, the sterilization port 311 remains closed. As the floating rotating rod 304 continues to rotate, the opening groove 313 and the outflow hole 314 are misaligned, and the upper rotating rod 307 starts to push the lower rotating rod 308 and the switch plate 310 to descend, so that the switch plate 310 leaves the sterilization port 311. The water in the measurement chamber 1013 enters the electrolysis chamber 1014, and the water in the electrolysis chamber 1014 is electrolyzed and sterilized through the electrode 302. The ion concentration in the electrolysis chamber 1014 is monitored by the ion detector 303. Subsequently, the water level in the measurement chamber 1013 starts to drop, causing the floating rotating rod 304 to start rotating clockwise, thereby driving the upper rotating rod 307 and the sector plate 312 to rotate clockwise. When the sector plate 312 just starts to rotate, the spring between the upper rotating rod 307 and the lower rotating rod 308 resets. At this time, the switch plate 310 does not move. Subsequently, the upper rotating rod 307 starts to pull the lower rotating rod 308, thereby pulling the switch plate 310 to rise. When the switch plate 310 reaches the adsorption range of the magnet on the vertical frame 309, the magnet on the vertical frame 309 quickly adsorbs the switch plate 310, so that the switch plate 310 closes the sterilization port 311. Since the switch plate 310 is quickly adsorbed to the magnet on the vertical frame 309, and the spring between the upper rotating rod 307 and the lower rotating rod 308 has been reset at this time, the rapid movement of the switch plate 310 at this time will drive the upper rotating rod 307 and the lower rotating rod 308 to rise rapidly. At this time, the sector plate 312 rotates rapidly, and the opening groove 313 quickly passes by the outflow hole 314, and the water in the electrolysis chamber 1014 will not flow out in large quantities. The floating ball 315 resets. When the water level in the measurement chamber 1013 rises next time, the floating ball 315 rises again, thereby driving the floating rotating rod 304, the rotating shaft 305, the lifting rod 306 and the sector plate 312 to rotate counterclockwise. After the sector plate 312 rotates a small distance, the opening groove 313 starts to align with the outflow hole 314, and the disinfected water in the electrolysis chamber 1014 is discharged into the water outlet chamber 1015, and so on.

[0041] The above is only the preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope of the present invention, according to the technical solution of the present invention and its inventive concept, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. An electrolyzed water sterilization device, comprising a main body mechanism for water inlet and outlet, characterized in that: The main body mechanism includes a box body (101), and a filtering mechanism for filtering water and a sterilizing mechanism for electrolytically sterilizing water are arranged on the main body mechanism; The box body (101) is composed of a water inlet chamber (1011), an adsorption chamber (1012), a measurement chamber (1013), an electrolysis chamber (1014) and a water outlet chamber (1015).

2. The electrolyzed water sterilization device according to claim 1, wherein: The main body mechanism includes an upper shell (103) and a water intake pipe (102) fixedly installed on the box body (101). A water pump (111) is fixedly installed on the water intake pipe (102). The water pump (111) is located in the water outlet chamber (1015), and an external water inlet pipe is communicated with the water inlet chamber (1011).

3. The electrolyzed water sterilization device according to claim 2, characterized in that: An outer rotating rod (104) is rotatably installed on the box body (101). A front magnetic block (105) and a rear magnetic block (106) are fixedly installed on the outer rotating rod (104). The weight of the rear magnetic block (106) is greater than that of the front magnetic block (105). A front vertical rail (108) is fixedly installed in the water inlet chamber (1011), and a rear vertical rail (109) is fixedly installed in the water outlet chamber (1015). A front suction block (107) is slidably installed on the front vertical rail (108), and a rear suction block (110) is slidably installed on the rear vertical rail (109). The front magnetic block (105) adsorbs with the front suction block (107), and the rear suction block (110) adsorbs with the rear magnetic block (106). A water inlet hole (112) is arranged on the partition between the water inlet chamber (1011) and the adsorption chamber (1012).

4. The electrolyzed water sterilization device according to claim 1, wherein: The filtering mechanism includes an adsorption rack (201) placed in the adsorption chamber (1012). An activated carbon rod (202) is arranged below the adsorption rack (201). A water upper hole (203) is arranged on the partition between the adsorption chamber (1012) and the measurement chamber (1013). The adsorption rack (201) is detachable.

5. The electrolyzed water sterilization device according to claim 4, characterized in that: A flow module is arranged in the measurement chamber (1013). The flow module includes a runner (204) rotatably installed in the measurement chamber (1013). A flow sensor (205) is fixedly installed on the partition between the measurement chamber (1013) and the electrolysis chamber (1014). The rotation speed of the runner (204) is monitored by the flow sensor (205).

6. The sterilization mechanism of the electrolyzed water sterilization device according to claim 1, characterized in that: The sterilization mechanism includes an electrolysis rack (301) placed in the electrolysis chamber (1014). An electrode (302) and an ion detector (303) are fixedly installed below the electrolysis rack (301). The electrolysis rack (301) is detachable. A sterilization port (311) is provided on the partition between the measurement chamber (1013) and the electrolysis chamber (1014). An outflow hole (314) is provided on the partition between the electrolysis chamber (1014) and the water outlet chamber (1015). A floating rotating rod (304) is rotatably installed in the measurement chamber (1013). A rotating shaft (305) is fixedly installed on the floating rotating rod (304). The rotating shaft (305) is rotatably installed with the electrolysis chamber (1014). A lifting rod (306) and a floating ball (315) are fixedly installed on the floating rotating rod (304). An upper rotating rod (307) is rotatably installed on the lifting rod (306). A lower rotating rod (308) is slidably installed on the upper rotating rod (307). A spring is provided between the upper rotating rod (307) and the lower rotating rod (308). A vertical rack (309) is fixedly installed in the measurement chamber (1013). A magnet is provided at the top of the vertical rack (309). A switch plate (310) is slidably installed on the vertical rack (309). The switch plate (310) is rotatably installed with the lower rotating rod (308). A sector plate (312) is fixedly installed on the rotating shaft (305). An opening slot (313) is provided on the sector plate (312). When the switch plate (310) is staggered from the sterilization port (311), water enters the electrolysis chamber (1014) from the measurement chamber (1013). When the opening slot (313) is located at the outflow hole (314), water enters the water outlet chamber (1015) from the electrolysis chamber (1014).

7. The sterilization method of an electrolyzed water sterilization device according to claim 1, characterized in that: It includes the following steps: (1) Water enters the water inlet chamber (1011); (2) Water enters the adsorption chamber (1012) and impurities are adsorbed through the activated carbon rod; (3) Water enters the measurement chamber (1013) to count the water flow; (4) After the water flow accumulates, it enters the electrolysis chamber (1014); (5) Water is electrolyzed and sterilized in the electrolysis chamber (1014); (6) Water enters the water outlet chamber (1015) for storage and use.

Citation Information

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