A hydrogen-rich water machine water treatment device

By designing a water treatment device for hydrogen-rich water machine including a reaction chamber, treatment cylinder, water storage frame, electrolysis system and stirring arm, the problem of reducing hydrogen concentration in the existing hydrogen-rich water machine and wasted during the preparation process is solved, and the continuous and stable preparation of hydrogen-rich water is achieved.

CN119161050BActive Publication Date: 2025-05-30GUANGZHOU EHM GRP LTD
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Patent Information

Application Number
CN202411437969.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-05-30
Estimated Expiration
2044-10-15

AI Technical Summary

Technical Problem

When the existing hydrogen-rich water machine prepares hydrogen-rich water, the hydrogen concentration will decrease over time, resulting in frequent replenishment of water and hydrogen, and it is easy to cause hydrogen waste and insufficient hydrogen content in hydrogen-rich water during the preparation process.

Method used

A hydrogen-rich water machine water treatment device is designed, including a reaction chamber, a treatment cylinder, a water storage frame, an electrolysis system and a stirring arm. By automatically controlling the movement of the water outlet baffle and a water stop ball, the automatic replenishment of tap water and the continuous preparation of hydrogen-rich water are realized. The combination of the stirring arm and the scraper is used to improve the solubility of hydrogen in water.

Benefits of technology

Continuous preparation of hydrogen-rich water is achieved, avoiding the problems of hydrogen waste and insufficient hydrogen content, and ensuring the stable supply of hydrogen in hydrogen-rich water.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the technical field of water treatment, and specifically relates to a water treatment device for a hydrogen-rich water machine, which includes a machine body. The machine body includes a reaction chamber opened inside the machine body. A water outlet pipe is provided on the side wall of the reaction chamber, and one end of the water outlet pipe is connected with a suction pipe. By setting the treatment cylinder and the connection port, when preparing hydrogen-rich water, pour the raw tap water into the interior of the water storage frame. The hydrogen content electrolyzed from the water entering the reaction chamber will match the water content in the treatment cylinder. Subsequently, the water immersion sensor will automatically sense the water content, thereby driving the water outlet baffle and the water stop ball to move automatically and stop the transfer of water. After the hydrogen-rich water is prepared, pull out the prepared hydrogen-rich water pipe. Subsequently, when the hydrogen-rich water content in the treatment cylinder is insufficient, the water immersion sensor will drive the water outlet baffle and the water stop ball to move, thereby automatically replenishing water, and the treated water left over from the previous preparation of hydrogen-rich water does not need to be discharged, thus ensuring the continuity during the preparation of hydrogen-rich water.
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Description

Technical Field

[0001] The present invention belongs to the technical field of water treatment, and specifically relates to a water treatment device for a hydrogen-rich water machine. Background Art

[0002] Hydrogen-rich water, also known as hydrogen water, is a type of water containing a certain concentration of hydrogen. It mainly dissolves more hydrogen molecules in water through electrolysis or other methods. Existing hydrogen-rich water is generally prepared by a hydrogen-rich water machine, which converts ordinary water into hydrogen-rich water through electrolysis technology.

[0003] A patent application with the publication number CN217285457U discloses a hydrogen-rich water machine, including a machine main body. A bottom plate is provided at the bottom of the machine main body. A water tank is clamped on one side of the machine main body, and a water valve is installed at the bottom of one side of the machine main body. During the process of filling water, as the amount of water in the cup increases, the pressure exerted by the cup on the clamping plate gradually increases, and the switch will be pressed. The circuit where the switch is located is in an energized state, and the electromagnet generates magnetic force. The iron block at the bottom of the pressure rod is attracted by the magnetic force and bends the pressure rod downward to make the water valve in a closed state, avoiding over-water intake and causing an electrical accident.

[0004] The above solution still has some problems in actual application. When preparing hydrogen-rich water with the above hydrogen-rich water machine, due to the nature of hydrogen-rich water itself, the hydrogen concentration in the water will gradually decrease over time. To ensure that enough hydrogen concentration can be obtained when drinking, it needs to be drunk as soon as possible after preparation. Therefore, some household hydrogen-rich water machines will only prepare the amount of water needed for current drinking when preparing hydrogen-rich water. And when preparing hydrogen-rich water, hydrogen needs to be injected into the water. So during the process of preparing hydrogen, it is necessary to prepare the water required for mixing hydrogen in advance. At this time, two separate water storage devices and water treatment devices are needed. And if water is not timely introduced into the water storage frame when hydrogen is introduced into the water storage frame that needs to be dissolved, or the water content is insufficient, it will not only cause waste of hydrogen, but also make the hydrogen content in the subsequent hydrogen-rich water insufficient, ultimately resulting in the hydrogen-rich water being unable to provide enough hydrogen for human absorption and utilization.

[0005] Therefore, the present invention provides a water treatment device for a hydrogen-rich water machine. Summary of the Invention

[0006] In order to make up for the deficiencies of the prior art and solve at least one of the technical problems proposed in the background art.

[0007] The technical solution adopted by the present invention to solve its technical problems is as follows: A water treatment device for a hydrogen-rich water machine according to the present invention includes a machine body. The machine body includes a reaction chamber opened inside the machine body. A water outlet pipe is provided on the side wall of the reaction chamber. One end of the water outlet pipe is connected with a suction pipe. A treatment structure is provided at one end of the machine body close to the suction pipe. The treatment structure includes: a water storage frame provided at the upper end inside the machine body; a water outlet baffle slidably connected to the lower end of the water storage frame; an electrolysis system including a positive electrode plate and a negative electrode plate. The positive electrode plate is provided at the bottom of the reaction chamber, and the negative electrode plate is provided at one end of the bottom of the reaction chamber close to the positive electrode plate; a first guiding cover provided at the upper end of the positive electrode plate; a second guiding cover provided at the upper end of the negative electrode plate; a treatment cylinder provided at the upper end inside the second guiding cover, and one end of the suction pipe extends into the treatment cylinder; a ventilation pipe provided on the side wall of the treatment cylinder, and one end of the ventilation pipe extends to the bottom of the treatment cylinder, and the other end of the ventilation pipe extends into the second guiding cover; a connection port provided at the upper end of the treatment cylinder, and one end of the connection port communicates with the water storage frame; a stirring arm rotatably connected inside the treatment cylinder.

[0008] Preferably, the machine body further includes a small pump provided in the middle of the suction pipe. The treatment structure further includes: a filter screen provided inside the water storage frame; an ultraviolet lamp tube provided at the bottom of the water storage frame; an exhaust pipe provided at the upper end of the first guiding cover, and one end of the exhaust pipe extends to the outside of the machine body; a water stop ball slidably connected inside the treatment cylinder, and the water stop ball contacts the inner wall of the connection port after moving.

[0009] Preferably, one end of the water stop ball is connected with a push rod. One end of the push rod is provided with a driving motor for controlling the movement of the push rod. A water immersion sensor is provided at one end of the treatment cylinder close to the driving motor, and the water immersion sensor communicates with the driving motor.

[0010] Preferably, the moving speed of the water stop ball is less than the speed of the suction pipe sucking hydrogen-rich water.

[0011] Preferably, a sliding plate is provided inside the treatment cylinder, and the water immersion sensor slides on the surface of the sliding plate.

[0012] Preferably, the water storage frame is slidably connected inside the reaction chamber. A sealing rubber block is provided at one end of the connection port close to the water storage frame.

[0013] Preferably, a rotating shaft is provided at the upper end of the body, and a flip cover is rotatably connected to the arc surface of the rotating shaft.

[0014] Preferably, a guiding block is provided at the upper inner end of the second guiding cover, and the higher end of the guiding block is close to the ventilation pipe.

[0015] Preferably, a connecting arm is provided at the upper end of the stirring arm, a scraping plate is provided at one end of the connecting arm, and the scraping plate is in contact with the inner wall of the treatment cylinder.

[0016] Preferably, an adjusting spring is provided between the connecting arm and the scraping plate.

[0017] The beneficial effects of the present invention are as follows:

[0018] 1. For the hydrogen-rich water machine water treatment device of the present invention, by providing a treatment cylinder and a connection port, when preparing hydrogen-rich water, only the raw tap water needs to be poured into the inside of the water storage frame, and then through the movement of the water outlet baffle and the water stop ball, the tap water located inside the water storage frame can be respectively introduced into the reaction chamber and the inside of the treatment cylinder, and the hydrogen content electrolyzed from the water entering the reaction chamber matches the water content in the treatment cylinder. Subsequently, the water immersion sensor will automatically sense the water content, thereby driving the water outlet baffle and the water stop ball to move automatically, stopping the transfer of water, and at this time, the positive electrode plate, the negative electrode plate and the stirring arm are started to prepare hydrogen-rich water. After the preparation is completed, starting the small pump can extract the prepared hydrogen-rich water from the water outlet pipe. Subsequently, when the hydrogen-rich water content in the treatment cylinder is insufficient, the water immersion sensor will drive the water outlet baffle and the water stop ball to move, thereby automatically replenishing water, and the treated water left over from the previous preparation of hydrogen-rich water does not need to be discharged, thus ensuring the continuity during the preparation of hydrogen-rich water.

[0019] 2. For the hydrogen-rich water machine water treatment device of the present invention, by providing a scraping plate, when hydrogen and tap water are dissolved, the stirring arm will drive the scraping plate to move through the connecting arm, thereby scraping the inner wall of the treatment cylinder, and the adjusting spring at one end of the scraping plate can also adjust the movement of the scraping plate, thereby having a certain protective effect on the inner wall of the treatment cylinder. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The present invention will be further described below with reference to the accompanying drawings.

[0021] Figure 1 is a perspective view of Embodiment 1 of the present invention;

[0022] Figure 2 is an internal view of Embodiment 1 of the present invention;

[0023] Figure 3 is a partial view of the treatment structure of the present invention;

[0024] Figure 4 is Figure 3 Partial enlarged view of part A in the figure;

[0025] Figure 5 is the connection diagram of the scraper and the adjusting spring of the present invention;

[0026] Figure 6 is the side view of the treatment structure of the present invention;

[0027] Figure 7 is the position diagram of the second guide cover and the treatment cylinder of the present invention;

[0028] Figure 8 is the connection diagram of the water storage frame and the treatment cylinder of the present invention;

[0029] Figure 9 is the position diagram of the water stop ball and the connection port of the present invention;

[0030] In the figure: 1, the body; 11, the reaction chamber; 12, the water outlet pipe; 13, the extraction pipe; 14, the small pump; 2, the treatment structure; 201, the water storage frame; 202, the filter screen; 203, the ultraviolet lamp tube; 204, the water outlet baffle; 205, the positive electrode plate; 206, the negative electrode plate; 207, the first guide cover; 208, the second guide cover; 209, the treatment cylinder; 210, the stirring arm; 211, the connecting arm; 212, the scraper; 213, the adjusting spring; 214, the exhaust pipe; 215, the ventilation pipe; 216, the connection port; 217, the guide block; 218, the sealing rubber block; 219, the water stop ball; 220, the push rod; 221, the water immersion sensor; 222, the drive motor; 223, the sliding plate; 3, the flip cover; 31, the rotating shaft. Specific embodiments

[0031] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments.

[0032] Embodiment 1

[0033] As Figures 1 to 9As shown in the figure, a water treatment device for a hydrogen-rich water machine according to an embodiment of the present invention includes a machine body 1. The machine body 1 includes a reaction chamber 11 opened inside the machine body 1. A water outlet pipe 12 is provided on the side wall of the reaction chamber 11. One end of the water outlet pipe 12 is connected with a extraction pipe 13. A treatment structure 2 is provided at one end of the machine body 1 close to the extraction pipe 13. The treatment structure 2 includes: a water storage frame 201, which is arranged at the upper end inside the machine body 1; a water outlet baffle 204, which is slidably connected to the lower end of the water storage frame 201; an electrolysis system, which includes a positive electrode plate 205 and a negative electrode plate 206. The positive electrode plate 205 is arranged at the bottom of the reaction chamber 11, and the negative electrode plate 206 is arranged at one end of the bottom of the reaction chamber 11 close to the positive electrode plate 205; a first guiding cover 207, which is arranged at the upper end of the positive electrode plate 205; a second guiding cover 208, which is arranged at the upper end of the negative electrode plate 206; a treatment cylinder 209, which is arranged at the upper end inside the second guiding cover 208, and one end of the extraction pipe 13 extends into the treatment cylinder 209; a ventilation pipe 215, which is arranged on the side wall of the treatment cylinder 209, and one end of the ventilation pipe 215 extends to the bottom of the treatment cylinder 209, and the other end of the ventilation pipe 215 extends into the second guiding cover 208; a connection port 216, which is arranged at the upper end of the treatment cylinder 209, and one end of the connection port 216 is communicated with the water storage frame 201; a stirring arm 210, which is rotatably connected inside the treatment cylinder 209.

[0034] Specifically, for a water treatment device of a hydrogen-rich water machine in this solution, when preparing hydrogen-rich water, first pour the raw tap water used to prepare hydrogen-rich water into the interior of the water storage frame 201, and this tap water needs to be filtered to remove impurities and harmful substances therein, such as suspended solids, residual chlorine, heavy metal ions, etc. During the process of the tap water being introduced, at this time, the connection part between the water storage frame 201 and the connection port 216 is in a closed state, so the tap water will be temporarily stored in the interior of the water storage frame 201. Subsequently, start the water outlet baffle 204 and the connection port 216, and the tap water will enter the interior of the reaction chamber 11 and the treatment cylinder 209 respectively. According to the opening size of the water outlet baffle 204, it is possible to make the hydrogen content electrolyzed from the water entering the reaction chamber 11 match the water content in the treatment cylinder 209. Subsequently, start the water outlet baffle 204 and the connection port 216 again, and the transfer of tap water will be stopped. Subsequently, start the positive electrode plate 205 and the negative electrode plate 206. The lower parts of the first guiding cover 207 and the second guiding cover 208 are ion diaphragms. This design allows ions to pass through but not molecules, so that the hydrogen and oxygen generated subsequently will not mix. After starting the electrolysis system, the electrolysis system will form an electric field that controls the positive electrode plate 205 and the negative electrode plate 206. In this electric field, the positive electrode plate 205 is positively charged and the negative electrode plate 206 is negatively charged. Water molecules undergo an electrolysis reaction under the action of the electric field and are decomposed into hydrogen ions and hydroxide ions, thereby forming hydrogen and oxygen. The hydrogen generated by the negative electrode plate 206 will gradually form bubbles and rise to the water surface as the bubbles increase, and finally break away from the water. Subsequently, after the hydrogen breaks away, it will be located inside the second guiding cover 208 and enter the interior of the ventilation pipe 215, and finally move to the bottom of the treatment cylinder 209. Since the interior of the treatment cylinder 209 already contains tap water at this time, the hydrogen will directly enter the water. At this time, start the stirring arm 210 to stir. Stirring can make the hydrogen molecules and water molecules contact more fully, thereby increasing the solubility of hydrogen in the water. During the stirring process, the hydrogen molecules are forced to disperse between the water molecules to form an aqueous solution containing hydrogen, also known as hydrogen-rich water. Subsequently, start the water outlet pipe 12, and the water outlet pipe 12 can extract the hydrogen-rich water through the extraction pipe 13 extending into the interior of the treatment cylinder 209. After extraction, start the water outlet baffle 204 and the connection port 216 again to replenish water again, and the water remaining in the reaction chamber 11 from the previous preparation of hydrogen-rich water does not need to be discharged, so as to ensure the continuity of hydrogen-rich water preparation, and the tap water in the reaction chamber 11 will also be utilized to the maximum extent.

[0035] Such as Figures 1 to 8As shown, the body 1 further includes a small pump 14, and the small pump 14 is provided in the middle of the extraction pipe 13; the treatment structure 2 further includes: a filter screen 202, and the filter screen 202 is provided inside the water storage frame 201; an ultraviolet lamp tube 203, and the ultraviolet lamp tube 203 is provided at the bottom of the water storage frame 201; an exhaust pipe 214, and the exhaust pipe 214 is provided at the upper end of the first guide cover 207, and one end of the exhaust pipe 214 extends to the outside of the body 1; a water stop ball 219, and the water stop ball 219 is slidably connected inside the treatment cylinder 209, and the water stop ball 219 contacts the inner wall of the connection port 216 after moving.

[0036] Specifically, when tap water is introduced into the inside of the water storage frame 201, the filter screen 202 will first remove impurities such as suspended matter, residual chlorine and heavy metal ions in the tap water. Subsequently, the ultraviolet lamp tube 203 is started, and the short-wave ultraviolet rays emitted by the ultraviolet lamp tube 203 irradiate the microorganisms in the water, causing damage to the cell structure in the DNA of the microorganisms, thereby achieving the effect of killing the microorganisms. At this time, the tap water can be used for the preparation of hydrogen-rich water. When it is necessary to transfer the tap water to the inside of the treatment cylinder 209, the water stop ball 219 is started, and the water stop ball 219 will move in a direction away from the connection port 216, and finally open the channel between the treatment cylinder 209 and the water storage frame 201, so that the tap water can be transferred.

[0037] As Figure 9 shown, one end of the water stop ball 219 is connected to a push rod 220, one end of the push rod 220 is provided with a driving motor 222, and the driving motor 222 is used to control the movement of the push rod 220. A water immersion sensor 221 is provided at one end of the treatment cylinder 209 close to the driving motor 222, and the water immersion sensor 221 is connected to the driving motor 222.

[0038] Specifically, by setting the water immersion sensor 221, when the tap water just starts to enter the inside of the treatment cylinder 209, when the water immersion sensor 221 is in a normal state at this time, the insulating layer between the electrode and the circuit will prevent the flow of current. When the tap water level exceeds a certain threshold and submerges the water immersion sensor 221, the liquid contacts the electrode, forming a conductive path, and the current inside the water immersion sensor 221 will start to flow. The water immersion sensor 221 will send a signal to the driving motor 222, causing the driving motor 222 to start. The driving motor 222 will drive the water stop ball 219 to move through the push rod 220, and finally realize the automatic addition and stop of the tap water in the treatment cylinder 209.

[0039] As Figures 1 to 9 shown, the moving speed of the water stop ball 219 is less than the extraction speed of the hydrogen-rich water by the extraction pipe 13.

[0040] Specifically, after the hydrogen-rich water is extracted by the extraction pipe 13, the hydrogen-rich water at this time will become less and less until it no longer submerges the water immersion sensor 221. When the hydrogen-rich water moves below the water immersion sensor 221, the water immersion sensor 221 will no longer send a signal to the drive motor 222. At this time, the push rod 220 will also drive the water stop ball 219 to move back to its original position, thereby opening the connection port 216. By setting the moving speed of the water stop ball 219 to be less than the extraction speed of the hydrogen-rich water by the extraction pipe 13, the hydrogen-rich water can be completely extracted before the connection port 216 is opened, so as to facilitate the subsequent re-introduction of tap water.

[0041] As Figure 9 shown, a slide plate 223 is provided inside the processing cylinder 209, and the water immersion sensor 221 slides on the surface of the slide plate 223.

[0042] Specifically, by setting the slide plate 223, before introducing tap water into the processing cylinder 209, the position of the water immersion sensor 221 on the surface of the slide plate 223 can be adjusted, so as to adjust the content of water added to the processing cylinder 209 each time. Subsequently, in cooperation with the opening size of the water outlet baffle 204, the content of hydrogen-rich water prepared each time can be adjusted.

[0043] As Figure 9 shown, the water storage frame 201 is slidably connected inside the reaction chamber 11, and a sealing rubber block 218 is provided at one end of the connection port 216 close to the water storage frame 201.

[0044] Specifically, by setting the water storage frame 201 to be detachable, when it is necessary to clean the water storage frame 201, only the water storage frame 201 needs to be pulled out. And a sealing rubber block 218 is provided at one end of the connection port 216 close to the water storage frame 201. When the water storage frame 201 moves, the sealing rubber block 218 will contact the water outlet of the water storage frame 201. Through the deformation and fitting of the sealing rubber block 218, the water storage frame 201 and the processing cylinder 209 can be automatically connected when the water storage frame 201 is installed in the reaction chamber 11.

[0045] Embodiment 2

[0046] As Figures 1 to 6 shown, compared with Embodiment 1, another implementation manner of the present invention is that a rotating shaft 31 is provided at the upper end of the machine body 1, and a flip cover 3 is rotatably connected to the arc surface of the rotating shaft 31.

[0047] Specifically, by providing the flip cover 3 on the top of the machine body 1, the seal inside the machine body 1 can be maintained when the hydrogen-rich water treatment is not carried out, and this operation can also be performed with one hand, which is very convenient.

[0048] As Figure 7As shown, a guiding block 217 is provided at the upper end inside the second guiding cover 208, and the higher end of the guiding block 217 is close to the ventilation pipe 215.

[0049] Specifically, by providing the guiding block 217, when hydrogen enters the inside of the second guiding cover 208, the hydrogen will come into contact with the guiding block 217, and after the contact, the hydrogen will move towards the higher end and finally move into the ventilation pipe 215, thus avoiding the phenomenon that some hydrogen accumulates at the upper end of the second guiding cover 208.

[0050] As Figures 1 to 5 shown, a connecting arm 211 is provided at the upper end of the stirring arm 210, a scraping plate 212 is provided at one end of the connecting arm 211, and the scraping plate 212 is in contact with the inner wall of the processing cylinder 209.

[0051] Specifically, by providing the scraping plate 212 at the upper end of the stirring arm 210, when the stirring arm 210 rotates, the scraping plate 212 will also be driven, so that the hydrogen bubbles adhering to the inner wall of the processing cylinder 209 can be scraped off.

[0052] As Figures 4 to 5 shown, an adjusting spring 213 is provided between the connecting arm 211 and the scraping plate 212.

[0053] Specifically, by providing the adjusting spring 213 between the connecting arm 211 and the scraping plate 212, when the scraping plate 212 scrapes the inner wall of the processing cylinder 209, the adjusting spring 213 can adjust the movement and contact of the scraping plate 212, thus having a certain protective effect on the inner wall of the processing cylinder 209.

[0054] Working principle: When preparing hydrogen-rich water, first open the flip cover 3, and then pour the raw material tap water for preparing hydrogen-rich water into the interior of the water storage frame 201. At this time, the filter screen 202 will first remove impurities such as suspended matter, residual chlorine, and heavy metal ions in the tap water. Then, start the ultraviolet lamp tube 203. The short-wave ultraviolet rays emitted by the ultraviolet lamp tube 203 irradiate the microorganisms in the water, causing damage to the cell structure in the DNA of the microorganisms, thereby achieving the effect of killing the microorganisms. At this time, the tap water can be used for the preparation of hydrogen-rich water. During the process of tap water inflow, the connection part between the water storage frame 201 and the connection port 216 is in a closed state, so the tap water will be temporarily stored in the interior of the water storage frame 201. Then, start the water outlet baffle 204 and the water stop ball 219, and the tap water will enter the interior of the reaction chamber 11 and the treatment cylinder 209 respectively. When the tap water just starts to enter the interior of the treatment cylinder 209, when the water immersion sensor 221 is in a normal state, the insulating layer between the electrode and the circuit will prevent the flow of current. When the tap water level exceeds a certain threshold and submerges the water immersion sensor 221, the liquid contacts the electrode, forming a conductive path, and the current inside the water immersion sensor 221 will start to flow. The water immersion sensor 221 will send a signal to the drive motor 222, causing the drive motor 222 to start. The drive motor 222 will drive the water stop ball 219 to move through the push rod 220, ultimately realizing the automatic addition and stop of tap water in the treatment cylinder 209. Then, according to the opening size of the water outlet baffle 204, the hydrogen content electrolyzed from the water entering the reaction chamber 11 can be made to match the water content in the treatment cylinder 209. Then, start the water outlet baffle 204 and the connection port 216 again, and the transfer of tap water will stop. Then, start the positive electrode plate 205 and the negative electrode plate 206. The lower ends of the first guiding cover 207 and the second guiding cover 208 are ion diaphragms. This design allows ions to pass through but molecules cannot pass through, so the subsequently generated hydrogen and oxygen will not mix. After starting the positive electrode plate 205 and the negative electrode plate 206, the water molecules undergo an electrolysis reaction under the action of the electrodes, being decomposed into hydrogen ions and hydroxide ions, and then hydrogen and oxygen are formed. The hydrogen generated by the negative electrode plate 206 will gradually form bubbles and rise to the water surface as the bubbles grow, and finally break away from the water. Then, after the hydrogen breaks away, it will be located inside the second guiding cover 208 and enter the interior of the ventilation pipe 215, and finally move to the bottom of the treatment cylinder 209. Since the interior of the treatment cylinder 209 already contains tap water at this time, the hydrogen will directly enter the water. At this time, start the stirring arm 210 for stirring. Stirring can make the hydrogen molecules and water molecules contact more fully, thereby increasing the solubility of hydrogen in the water. During the stirring process, the hydrogen molecules are forced to disperse between the water molecules, forming an aqueous solution containing hydrogen, also known as hydrogen-rich water. Then, start the water outlet pipe 12, and the water outlet pipe 12 can pump out the hydrogen-rich water through the extraction pipe 13 extending into the interior of the treatment cylinder 209. After pumping out,The water immersion sensor 221 will no longer send signals to the drive motor 222. At this time, the push rod 220 will also drive the water stop ball 219 to move back to its original position, thereby opening the connection port 216. By setting the moving speed of the water stop ball 219 to be less than the speed at which the extraction tube 13 extracts hydrogen-rich water, the hydrogen-rich water can be completely extracted before the connection port 216 is opened, so as to allow the subsequent re-introduction of tap water. Then, by starting the water outlet baffle 204 and the connection port 216 again, water replenishment can be carried out again. Moreover, the water left in the reaction chamber 11 from the previous preparation of hydrogen-rich water does not need to be discharged, thereby ensuring the continuity of hydrogen-rich water preparation, and the tap water inside the reaction chamber 11 will also be utilized to the maximum extent.

[0055] The foregoing has shown and described the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only used to illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. A hydrogen-rich water machine water treatment device, characterized in that: The machine body comprises a reaction chamber opened inside the machine body, a water outlet pipe is arranged on the side wall of the reaction chamber, one end of the water outlet pipe is connected to an extraction pipe, and a processing structure is arranged inside the machine body at one end close to the extraction pipe; The processing structure includes: A water storage frame, the water storage frame being arranged at the inner upper end of the machine body; A water outlet baffle, the water outlet baffle being slidably connected to the lower end of the water storage frame; An electrolysis system, the electrolysis system comprising a positive electrode sheet and a negative electrode sheet, the positive electrode sheet being arranged at the bottom of the reaction chamber, and the negative electrode sheet being arranged at one end of the bottom of the reaction chamber close to the positive electrode sheet; A first guide cover, wherein the first guide cover is arranged at the upper end of the positive electrode sheet; a second guide cover, the second guide cover being arranged at the upper end of the negative electrode sheet; a treatment cylinder, the treatment cylinder being arranged at the inner upper end of the second guide cover, and one end of the extraction tube extending into the interior of the treatment cylinder; A vent pipe, wherein the vent pipe is arranged on the side wall of the treatment cylinder, one end of the vent pipe extends to the bottom of the treatment cylinder, and the other end of the vent pipe extends to the interior of the second guide cover; A connecting port, the connecting port being arranged at the upper end of the treatment cylinder, and one end of the connecting port being connected to the water storage frame; a stirring arm, the stirring arm being rotatably connected to the interior of the treatment cylinder; A water stop ball, the water stop ball is slidably connected to the inside of the treatment cylinder, and the water stop ball contacts the inner wall of the connection port after moving; One end of the water stop ball is connected to a push rod, one end of the push rod is provided with a drive motor, and the drive motor is used to control the movement of the push rod, and an end of the treatment cylinder close to the drive motor is provided with a water immersion sensor, and the water immersion sensor is connected to the drive motor; The moving speed of the water-stopping ball is less than the speed at which the extraction pipe extracts hydrogen-rich water; The outlet pipe extracts the hydrogen-rich water through the extraction tube that extends into the inside of the treatment tube. When the hydrogen-rich water moves to the bottom of the water immersion sensor, the water immersion sensor will no longer send a signal to the drive motor. At this time, the push rod will also drive the water stop ball to move to its original position, thereby opening the connection port. By setting the moving speed of the water stop ball to be lower than the speed at which the extraction tube extracts the hydrogen-rich water, the hydrogen-rich water can be completely extracted before the connection port is opened, so that tap water can be passed in again later.

2. A hydrogen-rich water machine water treatment device according to claim 1, characterized in that: The machine body further comprises a small pump, which is arranged in the middle of the extraction pipe; the processing structure further comprises: A filter screen, the filter screen being arranged inside the water storage frame; An ultraviolet lamp tube, wherein the ultraviolet lamp tube is arranged at the bottom of the water storage frame; An exhaust pipe is arranged at the upper end of the first guide cover, and one end of the exhaust pipe extends to the outside of the machine body.

3. A hydrogen-rich water machine water treatment device according to claim 1, characterized in that: A slide plate is provided inside the processing cylinder, and the water immersion sensor slides on the surface of the slide plate.

4. A hydrogen-rich water machine water treatment device according to claim 2, characterized in that: The water storage frame is slidably connected to the interior of the reaction chamber, and a sealing rubber block is provided at one end of the connection port close to the water storage frame.

5. A hydrogen-rich water machine water treatment device according to claim 2, characterized in that: A rotating shaft is arranged at the upper end of the machine body, and a flip cover is rotatably connected to the circular arc surface of the rotating shaft.

6. A hydrogen-rich water machine water treatment device according to claim 1, characterized in that: A guide block is provided at the inner upper end of the second guide cover, and a higher end of the guide block is close to the ventilation pipe.

7. A hydrogen-rich water machine water treatment device according to claim 3, characterized in that: A connecting arm is arranged at the upper end of the stirring arm, a scraper is arranged at one end of the connecting arm, and the scraper is in contact with the inner wall of the processing cylinder.

8. A hydrogen-rich water machine water treatment device according to claim 7, characterized in that: An adjusting spring is arranged between the connecting arm and the scraper.

Citation Information

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