Hypochlorous acid water machine
By installing protective, brine mixing, and diversion heating mechanisms, the safety issues of chlorine transportation and storage in brine electrolysis were solved, and the hypochlorous acid generation rate was improved and the concentration adjustment was made more precise.
Patent Information
- Application Number
- CN202511107401.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-08
- Publication Date
- 2025-11-14
AI Technical Summary
In existing technologies, the chlorine gas produced during brine electrolysis needs to be transported and stored, posing risks of leakage and explosion, and the amount of hypochlorous acid generated is not high.
By employing a protective installation mechanism, a brine mixing mechanism, and a diversion and heating mechanism, and through a purified water supply mechanism and a synchronous electrolysis mechanism, the brine is filtered, diluted, mixed, and electrolyzed to generate a sodium hypochlorite solution.
It increases the hypochlorous acid generation rate, avoids the risk of chlorine leakage and explosion, and enhances the accuracy and safety of brine concentration adjustment.
Smart Images

Figure CN120945397A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of brine electrolysis technology, specifically to a hypochlorous acid water treatment machine. Background Technology
[0002] Hypochlorous acid (HClO) is a weakly acidic chlorine-containing compound with strong oxidizing properties. It is easily decomposed and unstable. Hypochlorous acid is one of the active components formed when chlorine (Cl2) dissolves in water, and its chemical formula is HClO. With its small molecular weight and strong penetrating power, it can destroy the cell membranes of microorganisms or the protein structure of viruses, achieving rapid killing. Due to its highly efficient sterilization and disinfection properties, as well as its safe and low-irritant characteristics, it is widely used in environmental sanitation, water treatment, and medical disinfection. Hypochlorous acid is mainly prepared by electrolyzing low-concentration saline solutions.
[0003] Existing methods for electrolyzing brine produce chlorine gas, which requires transportation and storage, posing risks of leakage and explosion. Furthermore, the amount of hypochlorous acid produced is low. Therefore, these methods do not meet current needs. To address this, we propose a hypochlorous acid water treatment system. Summary of the Invention
[0004] The purpose of this invention is to provide a hypochlorous acid water machine to solve the problems mentioned in the background art, such as the generation of chlorine gas during the electrolysis of brine, the need for chlorine gas transportation and storage, the risk of leakage and explosion, and the low generation of hypochlorous acid.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a hypochlorous acid water machine, comprising a protective installation mechanism, a brine mixing mechanism, and a diversion and heating mechanism. The brine mixing mechanism is installed inside the protective installation mechanism, the diversion and heating mechanism is installed in front of the brine mixing mechanism, a purified water supply mechanism is installed on one side of the diversion and heating mechanism, and a synchronous electrolysis mechanism is installed at the upper end of the diversion and heating mechanism. The brine mixing mechanism includes a brine tank, a hopper is fixedly installed at the upper end of the brine tank, a flushing drain pipe is fixedly installed at one corner of the bottom of the brine tank, and a flushing pump is installed on one side of the flushing drain pipe.
[0006] The diversion and heating mechanism includes a brine delivery pump, a brine output pipe is fixedly installed at the input end of the brine delivery pump, a diversion pipe frame is fixedly installed at the output end of the brine delivery pump, two heating plates are installed on the outside of the diversion pipe frame, and two first brine input pipes are fixedly installed at one end of the diversion pipe frame.
[0007] Preferably, the installation and protection mechanism includes a housing, the front end of which is rotatably connected to a door via a hinge, and a wastewater drain outlet, an acid water outlet, an alkaline water outlet, and a water inlet are fixedly installed on one side of the housing from top to bottom, and an installation partition is fixedly installed on the inner side of the housing.
[0008] Preferably, the purified water supply mechanism includes a first tap water delivery pump, a water supply network and a second tap water delivery pump are fixedly installed at the output end of the first tap water delivery pump, a tap water dilution pipe is fixedly installed at the output end of the second tap water delivery pump, a purified water tank is fixedly installed at the bottom end of the water supply network, a wastewater pipe and a pure water electrolysis pipe are fixedly installed at the two output ends of the water supply network respectively, and a pure water rinsing pipe is fixedly installed on one side of the pure water electrolysis pipe.
[0009] Preferably, the synchronous electrolysis mechanism includes a mounting plate, on the front end face of which two electrolysis tanks are fixedly mounted. Two second brine input pipes are fixedly mounted on the lower part of the front end face of each electrolysis tank, and an acid water output end and an alkaline water output end are fixedly mounted on the upper part of the front end face of each electrolysis tank.
[0010] Preferably, the brine tank and the flushing pump are both fixedly connected to the machine casing, the hopper and the flushing drain pipe are connected through the brine tank, and the input end and output end of the flushing pump are respectively connected through the interior of the bottom of the brine tank and the interior of the bottom of the hopper.
[0011] Preferably, the first and second tap water pumps are both fixedly connected to the casing, the purified water tank is fixedly connected to the mounting partition, and the purified water tank is connected to the output end of the first tap water pump, the wastewater pipe, the pure water flushing pipe, the pure water electrolysis pipe, and the input end of the second tap water pump through a water supply network. The interior of the purified water tank is equipped with a filter cotton plate, an adsorbent carbon plate, and an RO reverse osmosis membrane.
[0012] Preferably, the bottom end of the pure water rinsing pipe is connected to the interior of the upper end of the brine tank, the pure water electrolysis pipe is connected to the end of the diversion pipe rack away from the first brine input pipe, and the end of the tap water dilution pipe away from the second tap water delivery pump is connected to the interior of the bottom end of the brine tank.
[0013] Preferably, the rear end of the brine output pipe is internally connected to the bottom of the brine tank, the brine delivery pump is fixedly connected to the casing, the output end of the brine delivery pump is internally connected to the two first brine input pipes through a shunt pipe bracket, the two heating plates are fixedly connected to the mounting partition, the two first brine input pipes are respectively inserted into the inner side of the two heating plates, and the interior of the heating plates is provided with heating resistance wires.
[0014] Preferably, both electrolytic boxes and the mounting partition are fixedly connected by a mounting plate. The electrolytic box is equipped with a cathode and an anode, which are electrically connected. An ion membrane is provided between the cathode and the anode.
[0015] Preferably, the bottom ends of the two electrolysis tanks are connected to the two first brine input pipes through the two second brine input pipes, and the upper ends of the two acid water output ends and the two alkali water output ends are provided with flexible hoses. The two acid water output ends and the acid water outlet and the two alkali water output ends and the alkali water outlet are connected through the flexible hoses.
[0016] Compared with the prior art, the beneficial effects of the present invention are:
[0017] 1. This invention injects tap water into the inner side of the water purification tank through a water supply network for filtration and reverse osmosis to obtain pure water. At the same time, a second tap water delivery pump draws tap water through the water supply network and inputs it into the brine tank through a tap water dilution pipe. This facilitates the mixing of tap water and sodium chloride to form brine inside the brine tank. A flushing pump can draw brine from the brine tank and deliver it to the inner side of the hopper to flush the inner walls of the hopper and brine tank, avoiding sodium chloride residue. It also facilitates the circulation of brine and accelerates the dissolution rate of sodium chloride. Pure water can be input into the inner side of the brine tank through a pure water flushing pipe to adjust the brine concentration.
[0018] 2. This invention guides pure water from the water purification tank to the interior of the distribution pipe frame through a pure water electrolysis pipe, thereby facilitating the mixing of brine and pure water through two first brine input pipes. This allows for more precise adjustment of the brine concentration. The first brine input pipe, through the second brine input pipe, can simultaneously deliver brine to the interior of the bottom of the two electrolysis tanks. Through the electrolysis of the brine by the cathode and anode, and the ion membrane between them blocking the diffusion of anions, sodium hydroxide solution and sodium hypochlorite solution are generated at the cathode and anode respectively, effectively improving the hypochlorous acid generation rate. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0020] Figure 2 This is a schematic cross-sectional view of the overall structure of the present invention;
[0021] Figure 3 This is a schematic diagram of the installation structure of the partition plate of the present invention;
[0022] Figure 4 This is a schematic diagram of the installation structure of the water purification and supply mechanism of the present invention;
[0023] Figure 5 This is a schematic diagram of the water purification and supply mechanism of the present invention;
[0024] Figure 6 This is a schematic diagram of the brine mixing mechanism of the present invention;
[0025] Figure 7This is a schematic diagram of the flow diversion and heating mechanism of the present invention;
[0026] Figure 8 This is a schematic diagram of the synchronous electrolysis mechanism of the present invention.
[0027] In the diagram: 1. Installation of protective mechanism; 101. Machine casing; 102. Box door; 103. Wastewater drain outlet; 104. Acid water outlet; 105. Alkaline water outlet; 106. Water inlet; 107. Installation of partition; 2. Brine mixing mechanism; 201. Hopper; 202. Brine tank; 203. Flushing pump; 204. Flushing drain pipe; 3. Purified water supply mechanism; 301. Clean water tank; 302. First tap water delivery pump; 303. Water supply network; 304. Wastewater pipe; 305. Pure water flushing pipe; 306. Pure water electrolysis pipe; 307. Second tap water delivery pump; 308. Tap water dilution pipe; 4. Diversion and heating mechanism; 401. Brine delivery pump; 402. Brine output pipe; 403. Diversion pipe rack; 404. Heating plate; 405. First brine input pipe; 5. Synchronous electrolysis mechanism; 501. Mounting plate; 502. Electrolysis box; 503. Second brine input pipe; 504. Acid water output end; 505. Alkaline water output end. Detailed Implementation
[0028] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0029] The flushing pump 203 (model IS200-150-400), the first tap water transfer pump 302 (model MDZ-20-180), the second tap water transfer pump 307 (model MDZ-20-180), and the brine transfer pump 401 (model IS200-150-400) mentioned in this invention can all be obtained from the market or through private customization.
[0030] Please see Figures 1 to 4 An embodiment of the present invention provides a hypochlorous acid water machine, comprising a protective mounting mechanism 1, a brine mixing mechanism 2, and a diversion and heating mechanism 4. The brine mixing mechanism 2 is installed inside the protective mounting mechanism 1, the diversion and heating mechanism 4 is installed in front of the brine mixing mechanism 2, a purified water supply mechanism 3 is installed on one side of the diversion and heating mechanism 4, and a synchronous electrolysis mechanism 5 is installed at the upper end of the diversion and heating mechanism 4. The protective mounting mechanism 1 includes a housing 101, and a door 102 is rotatably connected to the front end of the housing 101 via a hinge. A wastewater drain outlet 103, an acid water outlet 104, an alkaline water outlet 105, and a water inlet 106 are fixedly installed on one side of the housing 101 from top to bottom. An installation partition 107 is fixedly installed inside the housing 101, and filtered wastewater can be discharged through the wastewater drain outlet 103.
[0031] Please see Figure 3 , Figure 4 and Figure 6 The brine mixing mechanism 2 includes a brine tank 202, a hopper 201 fixedly installed at the upper end of the brine tank 202, a flushing drain pipe 204 fixedly installed at one end corner of the bottom of the brine tank 202, and a flushing pump 203 installed on one side of the flushing drain pipe 204. The brine tank 202 and the flushing pump 203 are both fixedly connected to the housing 101. The hopper 201 and the flushing drain pipe 204 are connected through the brine tank 202. The input end and the output end of the flushing pump 203 are respectively connected through the interior of the bottom end of the brine tank 202 and the interior of the bottom end of the hopper 201. The flushing pump 203 can extract brine from the brine tank 202 and transport it to the inside of the hopper 201, thereby flushing the inner walls of the hopper 201 and the brine tank 202 to avoid sodium chloride residue. At the same time, it facilitates the circulation and transportation of brine and accelerates the dissolution rate of sodium chloride.
[0032] Please see Figures 3 to 5 The purified water supply mechanism 3 includes a first tap water delivery pump 302. A water supply network 303 and a second tap water delivery pump 307 are fixedly installed at the output end of the first tap water delivery pump 302. A tap water dilution pipe 308 is fixedly installed at the output end of the second tap water delivery pump 307. A purified water tank 301 is fixedly installed at the bottom end of the water supply network 303. The purified water tank 301 is equipped with a filter cotton plate, an adsorbent carbon plate, and an RO reverse osmosis membrane. The purified water tank 301 is fixedly connected to the mounting partition 107. A wastewater pipe 304 and a pure water electrolysis pipe 306 are fixedly installed at the two output ends of the water supply network 303, respectively. A pure water flushing pipe 305 is fixedly installed on one side of the pure water electrolysis pipe 306. The bottom end of the pure water flushing pipe 305 is connected to the brine tank 202. The internal connection of the end is through. The first tap water delivery pump 302 and the second tap water delivery pump 307 are both fixedly connected to the casing 101. The purified water tank 301 is connected to the output end of the first tap water delivery pump 302, the wastewater pipe 304, the pure water flushing pipe 305, the pure water electrolysis pipe 306, and the input end of the second tap water delivery pump 307 through the water supply network 303. The end of the tap water dilution pipe 308 away from the second tap water delivery pump 307 is internally connected to the bottom end of the brine tank 202 through the water supply network 303, so that the water supply network 303 injects tap water into the inside of the purified water tank 301 for filtration and reverse osmosis to obtain pure water. And the pure water can be input into the inside of the brine tank 202 through the pure water flushing pipe 305 to adjust the brine concentration.
[0033] Please see Figure 4 and Figure 7The diversion and heating mechanism 4 includes a brine delivery pump 401. A brine output pipe 402 is fixedly installed at the input end of the brine delivery pump 401, and a diversion pipe bracket 403 is fixedly installed at the output end of the brine delivery pump 401. Two heating plates 404 are installed on the outside of the diversion pipe bracket 403. Two first brine input pipes 405 are fixedly installed at one end of the diversion pipe bracket 403. A pure water electrolysis pipe 306 is connected to the end of the diversion pipe bracket 403 away from the first brine input pipes 405. The rear end of the brine output pipe 402 is connected to the interior of the bottom end of the brine tank 202. The brine delivery pump 401 and the machine... The shell 101 is fixedly connected, and the output end of the brine delivery pump 401 is connected to the two first brine input pipes 405 through the diversion pipe bracket 403. The two heating plates 404 are fixedly connected to the mounting partition 107. The two first brine input pipes 405 are respectively inserted into the inner side of the two heating plates 404. The heating plate 404 is equipped with an electric heating resistance wire. The pure water in the water tank 301 is guided to the inside of the diversion pipe bracket 403 through the pure water electrolysis pipe 306, which facilitates the mixing of brine and pure water by the two first brine input pipes 405, so as to achieve further precise adjustment of the brine concentration.
[0034] Please see Figure 4 and Figure 8 The synchronous electrolysis mechanism 5 includes a mounting plate 501. Two electrolysis tanks 502 are fixedly mounted on the front end face of the mounting plate 501. Both electrolysis tanks 502 and the mounting partition 107 are fixedly connected through the mounting plate 501. A cathode and an anode are fixedly installed inside the electrolysis tank 502. The cathode and anode are electrically connected, and an ion membrane is provided between the cathode and the anode. Two second brine inlet pipes 503 are fixedly installed on the lower part of the front end face of each electrolysis tank 502, and two second brine inlet pipes 503 are fixedly installed on the upper part of the front end face of each electrolysis tank 502. The two electrolysis tanks 502 are equipped with acid water output terminals 504 and alkali water output terminals 505. The bottom ends of the two electrolysis tanks 502 are connected to the two first brine input pipes 405 through the two second brine input pipes 503. The upper ends of the two acid water output terminals 504 and the alkali water output terminals 505 are equipped with flexible hoses. The two acid water output terminals 504 are connected to the acid water outlet 104 and the two alkali water output terminals 505 are connected to the alkali water outlet 105 through the flexible hoses, so as to generate sodium hydroxide solution and sodium hypochlorite solution at the cathode and anode respectively.
[0035] In summary, during the preparation of hypochlorous acid, sodium chloride is injected into the inside of the brine tank 202 through the hopper 201. The power is turned on, and the first tap water delivery pump 302 is started, so that the first tap water delivery pump 302 delivers tap water to the inside of the water supply network 303 through the water inlet 106. The purified water tank 301 is connected to the output end of the first tap water delivery pump 302, the wastewater pipe 304, the pure water rinsing pipe 305, the pure water electrolysis pipe 306, and the input end of the second tap water delivery pump 307 through the water supply network 303, so that the water supply network 303 injects tap water into the inside of the purified water tank 301 for filtration and reverse osmosis to obtain pure water.
[0036] Meanwhile, the second tap water delivery pump 307 draws tap water through the water supply network 303 and inputs it into the brine tank 202 through the tap water dilution pipe 308, thereby facilitating the mixing of tap water and sodium chloride to form brine inside the brine tank 202. The input and output ends of the flushing pump 203 are respectively connected to the inside of the bottom of the brine tank 202 and the inside of the bottom of the hopper 201, so that the flushing pump 203 can draw brine from the brine tank 202 and deliver it to the inside of the hopper 201, thereby flushing the inner walls of the hopper 201 and the brine tank 202 to avoid sodium chloride residue. At the same time, it facilitates the circulation of brine and accelerates the dissolution rate of sodium chloride. During the filtration of tap water in the water purification tank 301, the filtered wastewater is discharged through the wastewater pipe 304 and the wastewater drain outlet 103. Meanwhile, pure water can be input into the inside of the brine tank 202 through the pure water flushing pipe 305 to adjust the brine concentration.
[0037] Start the brine delivery pump 401, which, supported by the housing 101, draws brine through the brine output pipe 402 and distributes it to the inside of the two first brine input pipes 405 through the diversion pipe frame 403. At the same time, pure water in the purified water tank 301 is guided to the inside of the diversion pipe frame 403 through the pure water electrolysis pipe 306, thereby facilitating the mixing of brine and pure water in the two first brine input pipes 405 and achieving further precise adjustment of the brine concentration.
[0038] Heating wires are installed inside the heating plate 404, which heats the brine in the first brine input pipe 405. The first brine input pipe 405 then delivers the brine to the bottom of the two electrolysis tanks 502 through the second brine input pipe 503. The electrolysis tanks 502 are equipped with cathodes and anodes, which electrolyze the brine and the ion membrane between them blocks the diffusion of anions, thereby generating sodium hydroxide solution and sodium hypochlorite solution at the cathode and anode, respectively. The electrolysis tanks 502 can then output sodium hypochlorite solution and sodium hydroxide solution through the acid water output terminal 504 and the alkali water output terminal 505, respectively.
[0039] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A hypochlorous acid water dispenser, comprising a protective mounting mechanism (1), a brine mixing mechanism (2), and a flow-diverting and heating mechanism (4), wherein the brine mixing mechanism (2) is mounted inside the protective mounting mechanism (1), and the flow-diverting and heating mechanism (4) is mounted in front of the brine mixing mechanism (2), characterized in that: A water purification supply mechanism (3) is installed on one side of the diversion heating mechanism (4), a synchronous electrolysis mechanism (5) is installed on the upper end of the diversion heating mechanism (4), the brine mixing mechanism (2) includes a brine tank (202), a hopper (201) is fixedly installed on the upper end of the brine tank (202), a flushing drain pipe (204) is fixedly installed on one end corner of the bottom of the brine tank (202), and a flushing pump (203) is installed on one side of the flushing drain pipe (204). The diversion and heating mechanism (4) includes a brine delivery pump (401), a brine output pipe (402) is fixedly installed at the input end of the brine delivery pump (401), a diversion pipe bracket (403) is fixedly installed at the output end of the brine delivery pump (401), two heating plates (404) are installed on the outside of the diversion pipe bracket (403), and two first brine input pipes (405) are fixedly installed at one end of the diversion pipe bracket (403).
2. The hypochlorous acid water purifier according to claim 1, characterized in that: The installation protection mechanism (1) includes a housing (101). The front end of the housing (101) is rotatably connected to a door (102) via a hinge. A wastewater drain outlet (103), an acid water outlet (104), an alkaline water outlet (105), and a water inlet (106) are fixedly installed on one side of the housing (101) from top to bottom. An installation partition (107) is fixedly installed on the inner side of the housing (101).
3. A hypochlorous acid water purifier according to claim 2, characterized in that: The purified water supply mechanism (3) includes a first tap water delivery pump (302), a water supply network (303) and a second tap water delivery pump (307) are fixedly installed at the output end of the first tap water delivery pump (302), a tap water dilution pipe (308) is fixedly installed at the output end of the second tap water delivery pump (307), a purified water tank (301) is fixedly installed at the bottom end of the water supply network (303), a wastewater pipe (304) and a pure water electrolysis pipe (306) are fixedly installed at the two output ends of the water supply network (303), and a pure water rinsing pipe (305) is fixedly installed on one side of the pure water electrolysis pipe (306).
4. A hypochlorous acid water purifier according to claim 3, characterized in that: The synchronous electrolysis mechanism (5) includes a mounting plate (501). Two electrolysis tanks (502) are fixedly mounted on the front end face of the mounting plate (501). Two second brine input pipes (503) are fixedly mounted on the lower part of the front end face of each electrolysis tank (502). An acid water output end (504) and an alkaline water output end (505) are fixedly mounted on the upper part of the front end face of each electrolysis tank (502).
5. A hypochlorous acid water purifier according to claim 4, characterized in that: The brine tank (202) and the flushing pump (203) are both fixedly connected to the housing (101). The hopper (201) and the flushing drain pipe (204) are connected through the brine tank (202). The input end and the output end of the flushing pump (203) are respectively connected through the interior of the bottom end of the brine tank (202) and the interior of the bottom end of the hopper (201).
6. A hypochlorous acid water purifier according to claim 5, characterized in that: The first tap water delivery pump (302) and the second tap water delivery pump (307) are both fixedly connected to the casing (101). The purified water tank (301) is fixedly connected to the mounting partition (107). The purified water tank (301) is connected to the output end of the first tap water delivery pump (302), the wastewater pipe (304), the pure water flushing pipe (305), the pure water electrolysis pipe (306), and the input end of the second tap water delivery pump (307) through the water supply network (303). The interior of the purified water tank (301) is equipped with a filter cotton plate, an adsorbent carbon plate, and an RO reverse osmosis membrane.
7. A hypochlorous acid water purifier according to claim 6, characterized in that: The bottom end of the pure water flushing pipe (305) is connected to the interior of the upper end of the brine tank (202). The pure water electrolysis pipe (306) is connected to the end of the diversion pipe rack (403) away from the first brine input pipe (405). The end of the tap water dilution pipe (308) away from the second tap water delivery pump (307) is connected to the interior of the bottom end of the brine tank (202).
8. A hypochlorous acid water purifier according to claim 7, characterized in that: The rear end of the brine output pipe (402) is connected to the interior of the bottom of the brine tank (202). The brine delivery pump (401) is fixedly connected to the casing (101). The output end of the brine delivery pump (401) is connected to the two first brine input pipes (405) through the diversion pipe bracket (403). The two heating plates (404) are fixedly connected to the mounting partition (107). The two first brine input pipes (405) are respectively inserted into the inner side of the two heating plates (404). The heating plate (404) is provided with an electric heating resistance wire inside.
9. A hypochlorous acid water purifier according to claim 8, characterized in that: Both electrolytic cells (502) and the mounting partition (107) are fixedly connected by the mounting plate (501). The electrolytic cells (502) are fixedly provided with a cathode and an anode, which are electrically connected. An ion membrane is provided between the cathode and the anode.
10. A hypochlorous acid water purifier according to claim 9, characterized in that: The bottom ends of the two electrolysis tanks (502) and the two first brine input pipes (405) are connected through the two second brine input pipes (503). The upper ends of the two acid water output ends (504) and the alkaline water output ends (505) are all provided with flexible hoses. The two acid water output ends (504) and the acid water outlet (104) and the two alkaline water output ends (505) and the alkaline water outlet (105) are all connected through the flexible hoses.