An intelligent device for manufacturing hydrogen-rich water and oxygen-rich water
By using intelligent equipment with hydrogen-oxygen electrolysis cells and mixing cells, the problems of slow electrolysis rate and chlorine side reaction have been solved, enabling the efficient production of hydrogen-rich water and oxygen-rich water for use in aquaculture and crop irrigation, improving growth performance and user safety.
Patent Information
- Application Number
- CN202310674335.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-08
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2043-06-08
AI Technical Summary
Existing hydrogen- and oxygen-enriched water generators suffer from slow electrolysis rates and the generation of chlorine side reactions, resulting in slow production speeds and potential health hazards to users.
The intelligent equipment employs a hydrogen-oxygen electrolysis cell and a hydrogen-oxygen mixing cell to generate hydrogen and oxygen through positive and negative electrodes prepared by hydrogen and oxygen. The electrolysis cell is isolated by a membrane, and the gas emission is controlled by an electrical control valve. The mixture produces hydrogen-rich water or oxygen-rich water for aquaculture and crop irrigation.
It increases the production speed of hydrogen-rich water and oxygen-rich water, avoids chlorine side reactions, enhances user safety, and promotes the growth performance of aquaculture and crops.
Smart Images

Figure CN116655090B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of oxygen-rich water production, in particular to an intelligent device for manufacturing hydrogen-rich water and oxygen-rich water. BACKGROUND
[0002] In the natural state, it is difficult to see natural hydrogen-rich and oxygen-rich water, which is generally obtained by artificial methods. The methods include a simple hydrogen rod that can produce hydrogen water in a water bottle, a method of electrolyzing water to produce hydrogen water, and the like. The hydrogen concentration of the former is relatively low and gradually produces little hydrogen over time. The hydrogen rod needs to be replaced every certain period of time, which is a simple method for carrying out temporarily without conditions or going out.
[0003] The patent application No. CN201810071164.1 discloses a hydrogen-rich and oxygen-rich water manufacturing machine, which is composed of a water filtration and sterilization system, an electrolysis system, and a gas-liquid mixing system. Hydrogen gas generated by electrolysis of water is mixed into the water by the working of a nano gas-liquid mixing pump to increase the amount of hydrogen gas in the water to obtain hydrogen-rich water. Hydrogen gas and oxygen gas generated by electrolysis of water are mixed into the water by the working of a nano gas-liquid mixing pump to increase the amount of hydrogen gas and oxygen gas in the water to manufacture hydrogen-rich and oxygen-rich water.
[0004] The hydrogen-rich and oxygen-rich water manufacturing machine solves the demand for hydrogen-rich and oxygen-rich water production in industrial production, but still has some problems. First, the anode and cathode regions are in a fixed state during water electrolysis, and the ions in the water move slowly, so the electrolysis rate is slow, resulting in a slow manufacturing speed of hydrogen-rich and oxygen-rich water. Second, according to the electrode reaction formula, the anode has a second side reaction in addition to the generation of oxygen and water, i.e., 2Cl-2e=Cl2. Therefore, a certain amount of chlorine gas is generated during the process. If the chlorine gas is not treated, it will cause great harm to the user of hydrogen-rich and oxygen-rich water over a long period of use, and even cause chlorine poisoning in severe cases. SUMMARY
[0005] In order to overcome the shortcomings of the prior art, the present application provides an intelligent device for manufacturing hydrogen-rich water and oxygen-rich water. In order to simplify the structure, reduce the cost, and reduce the energy consumption, the present application fully utilizes the versatility principle and feedback principle, and creatively proposes that the generated hydrogen and oxygen are mixed into the water to form hydrogen-rich water or oxygen-rich water or mixed water containing hydrogen and oxygen. The hydrogen-rich water or oxygen-rich water or mixed water containing hydrogen and oxygen is introduced into the water for aquaculture to increase the intake of hydrogen and oxygen by fish, regulate fish metabolism, and improve the growth performance of fish. Or the generated hydrogen-rich water or oxygen-rich water or mixed water containing hydrogen and oxygen is used in the sprinkling irrigation facilities for crops to irrigate crops and promote the growth and development of crops.
[0006] To solve the above technical problems, the application provides the following technical scheme: an intelligent device for manufacturing hydrogen-rich water and oxygen-rich water, comprising a device box, a hydrogen-oxygen electrolytic cell and a hydrogen-oxygen mixing pool, the hydrogen-oxygen electrolytic cell and the hydrogen-oxygen mixing pool are arranged in the interior of the device box, a power supply control mechanism is arranged on the top of the device box, a cable recycling wheel is connected to the side wall of the device box, a protective piece is connected to the outer wall of the upper end of the device box, a linkage piece is connected to the outer wall of the protective piece and the outer wall of the cable recycling wheel, and the cable recycling wheel rotates to drive the protective piece to move through the linkage piece.
[0007] As a preferred technical scheme of the application, a hydrogen-oxygen preparation anode is arranged on one side of the inner wall bottom of the hydrogen-oxygen electrolytic cell, a hydrogen-oxygen preparation cathode is arranged on the other side of the inner wall bottom of the hydrogen-oxygen electrolytic cell, and an electrolytic cell isolation film is arranged between the hydrogen-oxygen preparation anode and the hydrogen-oxygen preparation cathode.
[0008] As a preferred technical scheme of the application, a hydrogen-oxygen electrolytic cell water source connecting pipe is arranged on one side of the electrolytic cell isolation film, the other end of the hydrogen-oxygen electrolytic cell water source connecting pipe is arranged outside the device box, hydrogen-oxygen electrolytic cell magnets are arranged on both sides of the inner wall of the hydrogen-oxygen electrolytic cell, a hydrogen-oxygen preparation catalyst storage and feeding device is arranged on the top of the hydrogen-oxygen electrolytic cell, material conveying pipes are arranged at both ends of the bottom of the hydrogen-oxygen preparation catalyst storage and feeding device, and electric control valves are arranged outside the two material conveying pipes.
[0009] As a preferred technical scheme of the application, a hydrogen-oxygen mixing production hydrogen-rich oxygen-rich water source connecting pipe is arranged on one side of the interior of the hydrogen-oxygen mixing pool, the other end of the hydrogen-oxygen mixing production hydrogen-rich oxygen-rich water source connecting pipe is arranged outside the device box, a hydrogen-rich or oxygen-rich water outlet connecting pipe is arranged on the other side of the interior of the hydrogen-oxygen mixing pool, the other end of the hydrogen-rich or oxygen-rich water outlet connecting pipe is arranged outside the device box, and a hydrogen-rich oxygen-rich water discharge booster pump is arranged outside the hydrogen-rich or oxygen-rich water outlet connecting pipe.
[0010] As a preferred technical scheme of the application, a hydrogen gas outlet connecting pipe is arranged on one side of the electrolytic cell isolation film, the other end of the hydrogen gas outlet connecting pipe is arranged inside the hydrogen-oxygen mixing pool, an oxygen gas outlet connecting pipe is arranged on the other side of the electrolytic cell isolation film, and the other end of the oxygen gas outlet connecting pipe is arranged inside the hydrogen-oxygen mixing pool.
[0011] As a preferred technical scheme of the present application, the power control mechanism comprises a device operation control button, a hydrogen electrode operation state display one, a WIFI connection controller, a device time control system, a device operation mode selection, a device different operation mode selection, a device control system display screen, a hydrogen electrode operation state display two and a fault alarm display device.
[0012] As a preferred technical scheme of the present application, the bottom surface of the device box is provided with a bottom fixed support column at each corner, the bottom of each of the four bottom fixed support columns is provided with a rectangular anti-skid pad, the bottom of each of the four rectangular anti-skid pads is provided with an anti-skid pattern, one side of the surface of the device box is provided with a fixed visual window, both sides of the bottom inner wall of the device box are provided with a bottom bearing plate, and the hydrogen-oxygen electrolytic cell and the hydrogen-oxygen mixing pool are arranged on the top of the bottom bearing plate.
[0013] As a preferred technical scheme of the present application, the protection piece comprises a slot formed in the outer wall on both sides of the upper end of the device box, a threaded rod rotatably connected in the slot, a nut block movably connected on the threaded rod, a connecting rod fixed on the top end of the nut block, and a protective cover connected with the outer wall of the top end of the connecting rod.
[0014] As a preferred technical scheme of the present application, the linkage comprises two groups of first pulleys fixed on the adjacent cable recovery wheel shaft walls, a first belt and a second belt respectively sleeved on the two groups of first pulleys, and a second pulley connected to the outer wall of the right end of the two groups of second belts.
[0015] As a preferred technical scheme of the present application, the upper end of the second belt is connected with the second pulley at the right end extension of the rear threaded rod, and the upper end of the second pulley is connected with the second pulley at the right end extension of the front threaded rod.
[0016] Compared with the prior art, the present application has the following beneficial effects:
[0017] (1) The hydrogen-oxygen preparation positive electrode and the hydrogen-oxygen preparation negative electrode in the hydrogen-oxygen electrolytic cell generate hydrogen gas from the hydrogen-oxygen preparation negative electrode and oxygen gas from the hydrogen-oxygen preparation positive electrode under the condition of power supply, the water source in the hydrogen-oxygen electrolytic cell is input from the outside to the inside of the hydrogen-oxygen electrolytic cell through the hydrogen-oxygen electrolytic cell water source connecting pipe, the hydrogen gas and the oxygen gas generated by the hydrogen-oxygen electrolytic cell are isolated by the electrolytic cell isolation film, the hydrogen gas is connected to the hydrogen-oxygen mixing pool through the hydrogen gas outlet connecting pipe, and the hydrogen gas outlet connecting pipe is provided with an electric control valve to control the hydrogen gas to be discharged into the air or to the hydrogen-oxygen mixing pool.
[0018] (2) Oxygen is connected to the hydrogen-oxygen mixing pool by an oxygen outlet connecting pipe, an electric control valve is arranged in the hydrogen outlet connecting pipe, the oxygen can be controlled to be discharged into the air or to the hydrogen-oxygen mixing pool, the hydrogen-oxygen mixing pool is connected to the outside by a hydrogen-oxygen mixing production hydrogen-rich oxygen-rich water source connecting pipe to input the mixed water source into the hydrogen-oxygen mixing pool, the hydrogen-rich water or oxygen-rich water or hydrogen-oxygen-rich water produced by mixing is discharged to the outside by a hydrogen-rich or oxygen-rich water outlet connecting pipe, and a hydrogen-rich or oxygen-rich water outlet connecting pipe is installed with a hydrogen-rich or oxygen-rich water outlet connecting pipe
[0019] (3) Power control mechanism, the power control mechanism is operated through the device control system display screen, including the opening, closing, WiFi, alarm, time setting, mode operation of the device, in the case of starting, the normal operation of the positive and negative electrodes is displayed as a green light, and the fault is displayed as a red light, the WiFi connection system can realize the remote operation of the mobile phone, the alarm system is a warning system in the case that the device does not operate normally, the warning E, E, E represents different error causes and processing methods, the time setting is the setting of the running time of the instrument, and the mode selection is the output of the hydrogen-rich water, or the oxygen-rich water, or the mixed water rich in hydrogen and oxygen.
[0020] (4) Protection piece: the protection piece is composed of a slotted thread rod, a nut block, a connecting rod and a protection cover, and mainly functions to protect the power control mechanism from being damaged or disturbed by the outside world, linkage: the linkage is composed of a first pulley, a second pulley, a first belt and a second belt, and mainly functions to transmit the kinetic energy of the cable recovery wheel to the protection piece when the cable recovery wheel rotates, so as to realize the movement and opening and closing of the protection cover; cable recovery wheel: the cable recovery wheel is a key component of the cable recovery device. It moves left or right by rotating, thereby realizing the protection or release of the power control mechanism; the cable recovery device has the beneficial effects of simple operation, convenient cable storage and protection of the power control mechanism, and the components are closely matched to realize an efficient work process. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 is a schematic view of the three-dimensional state of the present application;
[0022] Figure 2 is a schematic view of the structure of the present application;
[0023] Figure 3 is a schematic view of the structure of the present application;
[0024] Figure 4 is a schematic view of the structure of the present application;
[0025] Figure 5 is Figure 3 is a sectional view along the cutting line A-A;
[0026] Figure 6 for Figure 2 for
[0027] Figure 7 for Figure 4 for
[0028] Figure 8 for Figure 5 for
[0029] Figure 9 for Figure 5 for
[0030] Figure 10 for
[0031] Figure 11 for
[0032] Figure 12 for
[0033] Wherein, 1, hydrogen oxygen preparation positive electrode; 2, hydrogen oxygen preparation negative electrode; 3, electrolytic cell isolation film; 4, hydrogen oxygen electrolytic cell; 5, hydrogen gas outlet connecting pipe; 6, hydrogen oxygen electrolytic cell water source connecting pipe; 7, hydrogen oxygen mixed production rich hydrogen rich oxygen water water source connecting pipe; 8, oxygen outlet connecting pipe; 9, hydrogen oxygen mixing pool; 10, equipment box; 11, rich hydrogen or oxygen water outlet connecting pipe; 12, rich hydrogen rich oxygen water discharge booster pump; 13, equipment operation control button; 14, hydrogen electrode operation state display one; 15, WIFI connection controller; 16, equipment time control system; 17, equipment operation mode selection; 18, equipment different operation mode selection; 19, equipment control system display screen; 20, hydrogen oxygen preparation catalyst storage and input device; 21, hydrogen oxygen electrolytic cell magnet; 22, bottom fixed support column; 23, rectangular non-slip pad; 24, fixed visual window; 25, material conveying pipe; 26, electrical control valve; 27, bottom bearing plate; 28, hydrogen electrode operation state display two; 29, fault alarm display device; 30, power control mechanism; 31, cable recycling wheel; 32, linkage; 321, first pulley; 322, first belt; 323, second belt; 324, second pulley; 33, protection piece; 331, slot; 332, threaded rod; 333, nut block; 334, connecting rod; 335, protective cover.
[0034] The accompanying drawings are included to provide a further understanding of the application, and are incorporated in and constitute a part of this specification, illustrate embodiments of the application, and together with the description serve to explain the application, and, together with the description, to explain the application. DETAILED DESCRIPTION
[0035] In order to make the technical means, creative features, purposes and effects of the present application easy to understand, the present application is further described below in combination with specific embodiments, but the following embodiments are only preferred embodiments of the present application, not all. Based on the embodiments in the embodiments, other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present application. In the following examples, the experimental methods are conventional methods, and the materials and reagents used in the following examples are commercially available unless otherwise specified.
[0036] Embodiment:
[0037] Embodiment one
[0038] Referring to Figures 1-10 As shown in the figure, an intelligent device for manufacturing hydrogen-rich water and oxygen-rich water includes a device box 10, further includes a hydrogen-oxygen electrolytic cell 4 and a hydrogen-oxygen mixing pool 9, the hydrogen-oxygen electrolytic cell 4 and the hydrogen-oxygen mixing pool 9 are both arranged in the interior of the device box 10, and the top of the device box 10 is provided with a power control mechanism 30.
[0039] One side of the inner wall bottom of the hydrogen-oxygen electrolytic cell 4 is provided with a hydrogen-oxygen preparation anode 1, the other side of the inner wall bottom of the hydrogen-oxygen electrolytic cell 4 is provided with a hydrogen-oxygen preparation cathode 2, and the hydrogen-oxygen preparation anode 1 and the hydrogen-oxygen preparation cathode 2 are provided with an electrolytic cell isolation film 3.
[0040] One side of the electrolytic cell isolation film 3 is provided with a hydrogen-oxygen electrolytic cell water source connecting pipe 6, the other end of the hydrogen-oxygen electrolytic cell water source connecting pipe 6 is arranged outside the device box 10, and both sides of the inner wall of the hydrogen-oxygen electrolytic cell 4 are provided with hydrogen-oxygen electrolytic cell magnets 21.
[0041] The top of the hydrogen-oxygen electrolytic cell 4 is provided with a hydrogen-oxygen preparation catalyst storage and feeding device 20, both ends of the bottom of the hydrogen-oxygen preparation catalyst storage and feeding device 20 are respectively provided with material conveying pipes 25, and the outside of the two material conveying pipes 25 are both provided with electric control valves 26.
[0042] One side of the interior of the hydrogen-oxygen mixing pool 9 is provided with a hydrogen-oxygen mixing production hydrogen-rich oxygen-rich water source connecting pipe 7, the other end of the hydrogen-oxygen mixing production hydrogen-rich oxygen-rich water source connecting pipe 7 is arranged outside the device box 10.
[0043] The other side of the interior of the hydrogen-oxygen mixing pool 9 is provided with a hydrogen-rich or oxygen-rich water outlet connecting pipe 11, the other end of the hydrogen-rich or oxygen-rich water outlet connecting pipe 11 is arranged outside the device box 10, and the outside of the hydrogen-rich or oxygen-rich water outlet connecting pipe 11 is provided with a hydrogen-rich oxygen-rich water discharge booster pump 12.
[0044] The hydrogen outlet connecting pipe 5 is arranged on one side of the electrolytic cell isolation membrane 3, and the other end of the hydrogen outlet connecting pipe 5 is arranged in the interior of the hydrogen-oxygen mixing pool 9. The oxygen outlet connecting pipe 8 is arranged on the other side of the electrolytic cell isolation membrane 3, and the other end of the oxygen outlet connecting pipe 8 is arranged in the interior of the hydrogen-oxygen mixing pool 9.
[0045] In this embodiment, the hydrogen-oxygen produced by the hydrogen-oxygen electrolytic cell 4 is used to produce hydrogen by the hydrogen-oxygen production negative electrode 2 and oxygen by the hydrogen-oxygen production positive electrode 1 under the condition of power supply.
[0046] The water source in the hydrogen-oxygen electrolytic cell 4 is input into the interior of the hydrogen-oxygen electrolytic cell 4 through the hydrogen-oxygen electrolytic cell 4 water source connecting pipe 6. The hydrogen and oxygen produced by the hydrogen-oxygen electrolytic cell 4 are isolated by the electrolytic cell isolation membrane 3. The hydrogen is connected to the hydrogen-oxygen mixing pool 9 through the hydrogen outlet connecting pipe 5. The hydrogen outlet connecting pipe 5 is provided with an electric control valve 26, which can control the hydrogen to be discharged into the air or to be discharged into the hydrogen-oxygen mixing pool 9.
[0047] The oxygen is connected to the hydrogen-oxygen mixing pool 9 through the oxygen outlet connecting pipe 8. The hydrogen outlet connecting pipe 5 is provided with an electric control valve 26, which can control the oxygen to be discharged into the air or to be discharged into the hydrogen-oxygen mixing pool 9.
[0048] The hydrogen-oxygen mixed water source is input into the hydrogen-oxygen mixing pool 9 through the hydrogen-oxygen mixing water source connecting pipe 7. The mixed hydrogen-rich water or oxygen-rich water or hydrogen-oxygen-rich water is discharged outside through the hydrogen-rich or oxygen-rich water outlet connecting pipe 11. The hydrogen-rich or oxygen-rich water outlet connecting pipe 11 is provided with a hydrogen-rich or oxygen-rich water discharge booster pump 12.
[0049] The use method of the embodiment one is as follows:
[0050] T1, connect the hydrogen-oxygen electrolytic cell and the hydrogen-oxygen mixing pool device;
[0051] T2, turn on the power supply of the power supply control mechanism 30;
[0052] T3, input the water source into the water source connecting pipe in the hydrogen-oxygen electrolytic cell 4, and make the hydrogen-oxygen production positive electrode 1 and the hydrogen-oxygen production negative electrode 2 in the hydrogen-oxygen electrolytic cell 4 work to produce hydrogen and oxygen;
[0053] T4, control the hydrogen and oxygen to be discharged outside or to be discharged into the hydrogen-oxygen mixing pool 9 through the electric control valve 26;
[0054] T5, input the hydrogen-rich and oxygen-rich water source into the hydrogen-oxygen mixing pool 9. After mixing, the hydrogen-rich and oxygen-rich water can be output through the hydrogen-rich or oxygen-rich water outlet connecting pipe 11, and discharged through the booster pump 12.
[0055] Embodiment two
[0056] Reference Figures 1-10As shown, the power control mechanism 30 includes the device operation control button 13, the hydrogen electrode operation state display 14, the WIFI connection controller 15, the device time control system 16, the device operation mode selection 17, the device different operation mode selection 18, the device control system display screen 19, the hydrogen electrode operation state display 28 and the fault alarm display device 29. The device control system display screen 19 is arranged on the top of the device box 10. The top surface of the device control system display screen 19 is respectively provided with the device operation control button 13, the hydrogen electrode operation state display 14, the WIFI connection controller 15, the device time control system 16, the device operation mode selection 17, the device different operation mode selection 18, the hydrogen electrode operation state display 28 and the fault alarm display device 29.
[0057] The bottom of each of the four corners of the device box 10 is provided with a bottom fixed support column 22. The bottom of each of the four bottom fixed support columns 22 is provided with a rectangular anti-skid pad 23. The bottom of each of the four rectangular anti-skid pads 23 is provided with an anti-skid pattern.
[0058] One side of the surface of the device box 10 is provided with a fixed visual window 24. The bottom of the inner wall of the device box 10 is provided with a bottom bearing plate 27 on each side. The hydrogen-oxygen electrolytic cell 4 and the hydrogen-oxygen mixing pool 9 are arranged on the top of the bottom bearing plate 27.
[0059] In this embodiment, the power control mechanism 30 is designed. The power control mechanism 30 is operated through the device control system display screen 19, including the opening and closing of the device, WIFI, alarm, time setting, mode operation.
[0060] In the case of starting, the normal operation of the positive and negative electrodes of the device is displayed as a green light, and the fault is displayed as a red light.
[0061] The WIFI connection system can realize remote operation of the mobile phone. The alarm system is a warning system in the case of abnormal operation of the device. The warnings E1, E2 and E3 represent different error causes and processing methods.
[0062] The time setting is the setting of the running time of the instrument. The mode selection is the output of the hydrogen-rich water, the oxygen-rich water or the mixed water rich in hydrogen and oxygen.
[0063] The use method of the second embodiment is as follows:
[0064] A1, plug in the power supply of the device and press the device operation control button 13 to start;
[0065] A2, operate through the device control system display screen 19, including WIFI, time setting, mode selection, etc.
[0066] A3, when the device is running normally, the hydrogen production electrode operation state display 14 and the hydrogen production electrode operation state display 28 will display a normal green light. If a fault occurs, it displays a red light;
[0067] A4, if remote operation is required, WIFI connection controller 15 can be used for remote operation;
[0068] A5, the device can select different operation modes 18 according to the needs of the output of hydrogen-rich water, or oxygen-rich water, or mixed water containing hydrogen and oxygen;
[0069] A6, if the device fails, the fault alarm display device 29 will give an early warning E1, E2, E3, etc., representing different error causes and processing methods;
[0070] A7, after use, press the device operation control button 13 to turn off the device, and pull out the power plug.
[0071] Example three
[0072] Referring to Figures 1-12 As shown in the device box 10, the side wall is connected with the cable recycling wheel 31, the cable recycling wheel 31 is used for winding and storing the cable used on the device box 10, the outer wall of the device box 10 is connected with the protective piece 33, the outer wall of the protective piece 33 and the outer wall of the cable recycling wheel 31 are connected with the linkage piece 32, wherein the cable recycling wheel 31 rotates through the linkage piece 32 to drive the protective piece 33 to move;
[0073] The protective piece 33 includes a slot 331 opened in the outer wall of the upper end of the device box 10, a threaded rod 332 rotatably connected in the slot 331, the right end of the threaded rod 332 extending through the outer wall of the device box 10, a nut block 333 movably connected on the threaded rod 332, a connecting rod 334 fixed on the top end of the nut block 333, and a protective cover 335 connected with the outer wall of the connecting rod 334;
[0074] The linkage piece 32 includes two groups of first pulleys 321 fixed on the adjacent shaft walls of the cable recycling wheel 31, a first belt 322 and a second belt 323 respectively sleeved on the two groups of first pulleys 321, the first belt 322 and the second belt 323 extending upward in a V shape, a second pulley 324 fixed on the outer wall of the right end of the two groups of second belts 323, the upper end of the second belt 323 connected with the second pulley 324 at the right end extension of the rear threaded rod 332, and the upper end of the second pulley 324 connected with the second pulley 324 at the right end extension of the front threaded rod 332;
[0075] When the staff rotates the cable recovery wheel 31 to store the cable, it means that the equipment box 10 does not need to be used, so at this time the cable recovery wheel 31 rotates to drive the two sets of first pulleys 321 to rotate, and the first pulleys 321 rotate to drive the first belt 322 and the second belt 323 to rotate synchronously, and the first belt 322 and the second belt 323 drive the two sets of second pulleys 324 to rotate synchronously and in the same direction, and the second pulleys 324 drive the two sets of threaded rods 332 to rotate synchronously and in the same direction, and the threads on the two sets of threaded rods 332 are in the same direction, so the two sets of threaded rods 332 drive the two sets of nut blocks 333 to move left, and the nut blocks 333 drive the protective cover 335 to move left through the connecting rod 334, and the protective cover 335 is provided with a cavity with the same size as the power control mechanism 30, so the cavity covers and wraps the power control mechanism 30 during the movement of the protective cover 335, and when the cable recovery wheel 31 rotates to completely store the cable, the protective cover 335 completely covers and hides the power control mechanism 30 for protection, and for the same reason, when the equipment box 10 and the cable need to be used, the cable recovery wheel 31 is reversely rotated to drive the protective cover 335 to move right through the linkage 32, so that the power control mechanism 30 is gradually exposed for operation, until the cable is completely lowered, the protective cover 335 completely exposes the power control mechanism 30, and the power control mechanism 30 can be used.
[0076] Specifically,
[0077] The equipment box 10 is the main part of the cable recovery device, which is connected with the protective member 33 and the linkage 32 to realize functions such as cable storage and operation control.
[0078] The protective member 33 is composed of a slotted 331, a threaded rod 332, a nut block 333, a connecting rod 334 and a protective cover 335, and its main function is to protect the power control mechanism 30 from damage or external interference.
[0079] The linkage 32 is composed of a first pulley 321, a second pulley 324, a first belt 322 and a second belt 323, and its main function is to transmit the kinetic energy of the cable recovery wheel to the protective member 33 to realize the movement and opening and closing of the protective cover 335.
[0080] The cable recovery wheel 31 is the key component of the cable recovery device. It rotates to drive the protective member 33 to move left or right, thereby realizing the protection or protection of the power control mechanism 30.
[0081] In summary, the cable recovery device has the advantages of simple operation, convenient cable storage, protection of the power control mechanism 30, and close cooperation between various components to realize an efficient work process.
[0082] The usage method of Example 3 is as follows:
[0083] S1. When it is necessary to store cables, first place the cable reel on the cable recycling wheel 31 on the side wall of the equipment box 10, and then rotate the cable recycling wheel 31 to wind and store the cables.
[0084] S2. When the cable is fully retracted, the protective cover 335 will automatically cover the power control mechanism 30 for protection.
[0085] S3. If you need to use the equipment housing 10 and the cable, turn the cable retraction wheel 31 in the opposite direction to gradually move the protective cover 335 away until the cable is completely lowered, then it can be used.
[0086] S4. After use, store or place the cable as needed.
[0087] The above descriptions of directions such as "front side", "rear side", "left end", "right end", "upper end", and "lower end" are all in the form of... Figure 2 The view shall prevail.
[0088] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0089] 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 to the foregoing embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. An intelligent device for manufacturing hydrogen-rich water and oxygen-rich water, comprising a device housing (10), characterized in that: It also includes a hydrogen-oxygen electrolysis cell (4) and a hydrogen-oxygen mixing cell (9), both of which are located inside the equipment housing (10). The top of the equipment housing (10) is equipped with a power control mechanism (30). A cable recovery wheel (31) is connected to the side wall of the equipment housing (10). A protective component (33) is connected to the inner wall of the upper end of the equipment housing (10). A linkage component (32) is connected to the outer wall of the protective component (33) and the outer wall of the cable recovery wheel (31). The cable recovery wheel (31) rotates and drives the protective component (33) to move through the linkage component (32). A positive electrode (1) for hydrogen and oxygen preparation is provided on one side of the bottom of the inner wall of the hydrogen-oxygen electrolysis cell (4), and a negative electrode (2) for hydrogen and oxygen preparation is provided on the other side of the bottom of the inner wall of the hydrogen-oxygen electrolysis cell (4). An electrolysis cell isolation membrane (3) is provided between the positive electrode (1) and the negative electrode (2). The electrolytic cell isolation membrane (3) is provided with a hydrogen-oxygen electrolytic cell water source pipe (6) on one side, and the other end of the hydrogen-oxygen electrolytic cell water source pipe (6) is located on the outside of the equipment box (10). Both sides of the inner wall of the hydrogen-oxygen electrolytic cell (4) are provided with hydrogen-oxygen electrolytic cell magnets (21). The top of the hydrogen-oxygen electrolytic cell (4) is provided with a hydrogen-oxygen preparation catalyst storage and input device (20). The bottom ends of the hydrogen-oxygen preparation catalyst storage and input device (20) are respectively provided with material conveying pipes (25). Both of the material conveying pipes (25) are provided with an electric control valve (26) on the outside. One side of the hydrogen-oxygen mixing tank (9) is provided with a hydrogen-oxygen mixing production hydrogen-rich and oxygen-rich water source pipe (7), and the other end of the hydrogen-oxygen mixing production hydrogen-rich and oxygen-rich water source pipe (7) is located on the outside of the equipment box (10). The other side of the hydrogen-oxygen mixing tank (9) is provided with a hydrogen-rich or oxygen-rich water outlet connection pipe (11), and the other end of the hydrogen-rich or oxygen-rich water outlet connection pipe (11) is located on the outside of the equipment box (10). A hydrogen-rich or oxygen-rich water discharge booster pump (12) is provided outside the hydrogen-rich or oxygen-rich water outlet connection pipe (11). The electrolytic cell isolation membrane (3) is provided with a hydrogen outlet connection pipe (5) on one side, and the other end of the hydrogen outlet connection pipe (5) is located inside the hydrogen-oxygen mixing tank (9). The electrolytic cell isolation membrane (3) is provided with an oxygen outlet connection pipe (8) on the other side, and the other end of the oxygen outlet connection pipe (8) is located inside the hydrogen-oxygen mixing tank (9). The power control mechanism (30) includes a device operation control button (13), a hydrogen production electrode operation status display one (14), a WIFI connection controller (15), a device time control system (16), a device operation mode selection (17), a device operation mode selection (18), a device control system display screen (19), a hydrogen production electrode operation status display two (28), and a fault alarm display device (29). The device control system display screen (19) is located on the top of the device housing (10). The top surface of the device control system display screen (19) is respectively provided with the device operation control button (13), the hydrogen production electrode operation status display one (14), the WIFI connection controller (15), the device time control system (16), the device operation mode selection (17), the device operation mode selection (18), the hydrogen production electrode operation status display two (28), and the fault alarm display device (29). The equipment box (10) has four corners of bottom fixed support columns (22), and the bottom of each of the four bottom fixed support columns (22) is provided with a rectangular anti-slip pad (23). The bottom of each of the four rectangular anti-slip pads (23) is provided with anti-slip texture. A fixed viewing window (24) is provided on one side of the surface of the equipment box (10). Bottom bearing plates (27) are provided on both sides of the bottom of the inner wall of the equipment box (10). The hydrogen-oxygen electrolysis cell (4) and the hydrogen-oxygen mixing cell (9) are respectively located on the top of the bottom bearing plate (27). The protective component (33) includes a slot (331) formed in the outer wall of both sides of the upper end of the equipment housing (10), a threaded rod (332) rotatably connected in the slot (331), a nut block (333) movably connected to the threaded rod (332), a connecting rod (334) fixed to the top of the nut block (333), and a protective cover (335) connected to the outer wall of the top of the connecting rod (334). The linkage (32) includes two sets of first pulleys (321) fixed on the shaft wall of the cable recovery wheel (31), a first belt (322) and a second belt (323) respectively sleeved on the two sets of first pulleys (321), and two sets of second pulleys (324). The upper end of the second belt (323) is connected to the second pulley (324) at the right end extension of the threaded rod (332) on the rear side, and the upper end of the first belt (322) is connected to the second pulley (324) at the right end extension of the threaded rod (332) on the front side.
Citation Information
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