Complete machine system of hydrogen-rich water machine
By designing the hydrogen-rich water machine system, using the partition chamber and quantitative addition mechanism, the problem of uneven mixing of water flow and solution is solved, the uniformity of pH and alkalinity and the increase of hydrogen content is achieved, the risk of heavy metal pollution is reduced, and the service life of the direct drinking water station is extended.
Patent Information
- Application Number
- CN202510630356.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-08-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When traditional direct drinking water stations add solutions to the water storage tank or add solutions to the flowing water stream, the water flow and the solution are mixed unevenly, causing local pH and alkalinity of drinking water and may increase the risk of heavy metal contamination.
A hydrogen-rich water machine complete system is designed, including a water storage tank, an addition mechanism and a positioning mechanism. Through the compartment design and quantitative injection of baking soda solution or hydrogen, ensuring uniform mixing of water flow in different compartments, and the oscillation and quantitative addition of the water flow in the compartment is achieved using the driving mechanism and positioning components.
It improves the uniformity of the water flow pH and hydrogen content, reduces the risk of heavy metal pollution, extends the service life of direct drinking water stations, and reduces pipeline corrosion through the oxidation resistance of hydrogen-rich water.
Smart Images

Figure CN120483361A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of community water stations, and in particular to a complete hydrogen-rich water machine system. Background Art
[0002] Community water stations are also called direct drinking water stations. Direct drinking water stations refer to integrated water purification and water supply equipment placed in urban communities or rural areas, enterprises and institutions. Traditional tap water may contain heavy metals such as lead, mercury, and cadmium, which lead to heavy metal pollution in tap water, thus causing tap water pollution. These heavy metal substances may come from pipe corrosion or water source pollution. Some community families may not have tap water purification equipment such as water purifiers installed. Community water stations purify tap water to reduce water pollution and supply it to people. Some direct drinking water stations not only contain traditional filtration systems to filter tap water and reduce water pollution, but are also equipped with hydrogen production equipment and physical hydrogen mixing devices, which can mix hydrogen into drinking water to prepare drinking water into hydrogen-rich water. The pH value of drinking water can also be adjusted by adding solutions to the water.
[0003] Direct drinking water stations are generally equipped with water tanks to store purified water. Community water stations usually use pipes to transport the water inside the water tanks to the drain outlets. By adjusting the pH of the water inside the water tanks, pipe corrosion and scale formation can be reduced. When adjusting the pH of drinking water, the solution can be directly added to the water tank to adjust the pH of the drinking water, or the solution can be added to the water flow during transportation. However, adding solution directly to the water tank or adding solution to the flowing water may cause uneven mixing of the water flow and solution, resulting in uneven pH of the drinking water, which is more inconvenient. Summary of the Invention
[0004] The purpose of the present invention is to provide a hydrogen-rich water machine system to solve the problems raised in the above background technology.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] A hydrogen-rich water machine system, comprising:
[0007] The machine body comprises a water tank for storing oxygen-enriched water, an adding mechanism for adding solution and hydrogen, two positioning mechanisms and a driving mechanism for fixing the adding mechanism, the water tank is located inside the machine body, the adding mechanism is located above the water tank, the adding mechanism comprises a box body, and the top surface of the box body is fixedly connected to a water inlet pipe, and the bottom surface is fixedly connected to a water outlet pipe, a bag body is provided inside the box body, and the two ends of the bag body are fixedly connected to one end of the water inlet pipe and one end of the water outlet pipe respectively, a plurality of rubber tubes are fixedly bonded to one side of the bag body, and the box body is provided with a plurality of rubber tubes. A fixing plate is fixedly connected to the bottom surface, and a plurality of circular holes are opened on one side of the fixing plate. A T-tube is fixedly sleeved inside any circular hole. A connecting shell is fixedly connected between two adjacent T-tubes, and a T-block is slidably sleeved inside the multiple connecting shells. A conveying pipe is fixedly connected to the bottom surface of any connecting shell. The multiple T-tubes correspond one-to-one to the multiple rubber tubes. One end of any T-tube is fixedly plugged into one end of the corresponding rubber tube. Two positioning mechanisms are respectively located at the top and bottom ends of the box body, and the driving mechanism is located at one side of the box body.
[0008] Furthermore, both ends of one side of the fixed plate are rotatably connected to drive wheels, and a drive belt is rotatably sleeved between the outer side walls of the two drive wheels, one side of the drive belt is fixedly connected to a magnet, and an iron layer is attached to the top of any T-block, and the other side of the fixed plate is fixedly connected to a motor box, and a servo motor is arranged inside the motor box, and the motor shaft of the servo motor is fixedly connected to the axle of the adjacent drive wheel.
[0009] Furthermore, a return spring is fixedly connected between the top surface of any T-shaped block and the inner top surface of the adjacent connecting shell.
[0010] Furthermore, the positioning mechanism includes:
[0011] Two plates, the two plates are respectively located at the top and bottom ends of the box body, a plurality of positioning components are provided on the adjacent side of the two plates, and the multiple positioning components on the two plates are staggered, and a plurality of rectangular grooves for the entry and exit of the positioning components are provided on the top and bottom surfaces of the box body, the positioning component includes two vertically arranged rods, and a rotating rod is provided between the two rods, one end of the rotating rod is rotatably connected to the outer side wall of one rod body, and the other end passes through the outer side wall of the other rod body, the two rod bodies are matched with two brackets, and the two ends of the same rod body are fixedly connected to the two brackets respectively.
[0012] Furthermore, a support plate is provided on one side of any rotating rod, and two slides are provided in combination with each rotating rod. A sliding hole is opened in the center of the top surface of each slide, and the inner side wall of the sliding hole on each slide is slidably connected to the outer side wall of the adjacent rotating rod. A plurality of support rods are provided between each slide and the adjacent support plate, and one end of each support rod is rotatably connected to the side wall of the adjacent slide, and the other end is rotatably connected to the side wall of the adjacent support plate. A power box is provided at the other end of each rotating rod, and a power motor is provided inside each power box, and each power box is fixedly connected to the adjacent plate body, and the motor shaft of each power motor is fixedly connected to the other end of the adjacent rotating rod.
[0013] Furthermore, two ring bodies are fixedly sleeved on the outer side wall of any rotating rod, adjacent sides of the two ring bodies on any rotating rod are fixedly connected with a protrusion, the two ring bodies on any rotating rod are respectively abutted against two adjacent slides, two fixing rings are fixedly sleeved on the outer side wall of any rotating rod, the two fixing rings on any rotating rod are located between the two adjacent slides, and a pressure spring is fixedly connected between the two fixing rings on any rotating rod and the adjacent slides.
[0014] Furthermore, the driving mechanism includes:
[0015] A connecting plate, the connecting plate is located inside the box body, and multiple driving components are provided on one side of the connecting plate, and the multiple driving components correspond one-to-one to the multiple positioning components on the two positioning mechanisms. The driving component includes a sliding rod, and a connecting hole is opened on the outer wall of the sliding rod, and the sliding rod is matched with a pull rope. The middle part of the pull rope is fixedly connected to the inner wall of the connecting hole, and the two ends of the pull rope are respectively fixedly connected to the two slides on the corresponding positioning components. One end of the sliding rod passes through one side of the connecting plate and one side of the box body, and one end of the sliding rod is located outside the box body.
[0016] Furthermore, the other end of any sliding rod is fixedly sleeved with a main bevel gear, the outer side wall of any rotating rod is fixedly sleeved with a slave bevel gear, the outer side wall of any sliding rod is fixedly sleeved with a collar, and a plurality of rebound springs are fixedly connected between any collar and an inner wall of the connecting plate.
[0017] Furthermore, one side of the box body is rotatably connected to two guide wheels, and a transmission belt is rotatably sleeved between the outer sides of the two guide wheels, the outer side wall of the transmission belt is fixedly connected to a stop block, one side of the box body is fixedly connected to a drive box through a connecting frame, and a drive motor is provided inside the drive box, and the motor shaft of the drive motor is fixedly connected to the adjacent guide wheel shaft.
[0018] Furthermore, two brackets are provided below the box body, and one end of each bracket is fixedly connected to an inner wall of the body, and two short sides of the bottom surface of the box body are slidably connected to the two brackets respectively.
[0019] Compared with the prior art, the present invention has the following beneficial effects:
[0020] 1. By connecting the adding mechanism to the water storage tank and the filtration system in the body, and the adding mechanism is divided into different compartments by two positioning mechanisms, the two positioning mechanisms cooperate with the adding mechanism, so that the filtered water flow can enter the adding mechanism and flow through different compartments in sequence before flowing into the water storage tank, and the water flows in different compartments are not easily mixed, and the water flow inside the compartment can be quantitatively injected with baking soda solution or hydrogen by the adding mechanism multiple times when the compartment is changed, thereby improving the improvement effect of the pH value of the water flow, reducing the probability of heavy metal water pollution causing harm to the human body, and increasing the hydrogen content in the water flow to form hydrogen-rich water, and the two positioning mechanisms can beat the water flow inside the compartment to make the water flow inside the compartment oscillate, thereby improving the mixing effect of the water flow with hydrogen and baking soda solution.
[0021] 2. Connect the water inlet pipe and the water outlet pipe to the two ends of the bag body, and fix the two ends of the bag body to the top surface and the inner bottom surface of the box body respectively, and then slide the two plates toward each other, so that a rod on the multiple positioning components squeezes the bag body against the top surface or the inner bottom surface of the box body, so that the bag body forms a wave shape, so that the bag body naturally forms multiple compartments, and then insert the T-tube into the rubber tube, so that each compartment is connected with the adjacent T-tube, and then the water inlet pipe injects the filtered water into the compartment, so that the water flow in the compartment is blocked by the T-block inside the adjacent connecting shell and is not easily mixed. When the water flow in a single compartment needs to be replaced, the water in the adjacent compartment of the compartment to be replaced can be discharged to the subsequent compartment first to empty the compartment, and then the adjacent positioning component cooperates with the adjacent driving component to discharge the water inside the compartment to be replaced to the empty compartment, so that the water flow inside the compartment is not easily mixed;
[0022] 3. When the water flow inside the compartment is replaced, the driving motor is started to drive the resistance block to move to the adjacent sliding rod through the guide wheel and the transmission belt, and then the resistance block is pushed against the sliding rod to move, so that the adjacent main bevel gear and the slave bevel gear are meshed, and then the power motor is started to drive the adjacent rotating rod to rotate, so that the rotating rod drives the adjacent sliding rod to rotate through the main bevel gear and the sub-bevel gear, so that the sliding rod reel rope drives the two adjacent slides to move, so that the two slides push against the resistance plate to squeeze the compartment through the support rod, and at the same time, the servo motor is started to drive the magnet to move to the adjacent connecting shell through the driving wheel and the driving ring belt, so that the magnet absorbs the adjacent T-block to move upward, so that the two adjacent T-tubes of the connecting shell are unblocked, and then baking soda solution or hydrogen is injected through the metering pump or air pump, so that the water flow in the compartment to be replaced will be mixed with the baking soda solution or hydrogen when it enters the empty compartment, and a smaller flow cross-section is formed through the channel formed by the connecting shell, thereby improving the mixing effect of the water flow and the baking soda solution or hydrogen;
[0023] 4. When there is no need to change the water flow inside the compartment, the power motor can be started to drive the adjacent rotating rod to rotate, so that the protrusion on the rotating rod ring body intermittently contacts the adjacent sliding plate to move, and then the sliding plate is driven to reset by the adjacent pressing spring, so that the contact plate reciprocates and contacts the adjacent compartment and then resets. The contact between the contact plate and the compartment will cause it to deform, and then after the contact plate is reset, the compartment will recover, so that the water flow in the compartment will naturally oscillate due to the reciprocating deformation of the compartment, thereby improving the mixing effect of the water flow inside the compartment with the baking soda solution and hydrogen. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0025] Figure 2 This is a schematic diagram of the positional relationship between the water storage tank and the adding mechanism in the present invention;
[0026] Figure 3 This is a schematic diagram of the bag structure of the present invention;
[0027] Figure 4 This is a schematic diagram of the positional relationship between the T-tube and the connecting shell in the present invention;
[0028] Figure 5 This is a schematic diagram of the structure of the T-tube and T-block in the present invention;
[0029] Figure 6 It is a schematic diagram of the positioning mechanism structure of the present invention;
[0030] Figure 7 Schematic diagram of the support structure of the present invention;
[0031] Figure 8 This is an exploded view of the positioning component structure in the present invention;
[0032] Figure 9 It is a schematic diagram of the driving mechanism structure of the present invention;
[0033] Figure 10 It is a schematic diagram of the positional relationship between the drive assembly and the rotating rod in the present invention.
[0034] In the figure: 100, body; 200, water tank; 300, adding mechanism; 310, box body; 320, bracket; 330, bag body; 331, rubber tube; 340, fixing plate; 341, driving wheel; 342, driving belt; 343, magnet; 344, motor box; 350, T-shaped tube; 360, connecting shell; 361, conveying pipe; 362, T-shaped block; 400, positioning mechanism; 410, plate; 411, Bracket; 420, rod body; 421, rotating rod; 422, pressure spring; 423, slave bevel gear; 424, ring body; 430, pressure plate; 440, slide plate; 441, support rod; 450, power box; 500, driving mechanism; 510, connecting plate; 520, sliding rod; 521, pull rope; 522, main bevel gear; 523, sleeve; 530, guide wheel; 531, transmission belt; 532, pressure block; 540, driving box. DETAILED DESCRIPTION
[0035] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0036] See also Figures 1-10 In an embodiment of the present invention, a hydrogen-rich water machine system includes:
[0037] The machine body 100, a water tank 200 for storing oxygen-enriched water, an adding mechanism 300 for adding solution and hydrogen, two positioning mechanisms 400 and a driving mechanism 500 for fixing the adding mechanism 300, the water tank 200 is located inside the machine body 100, the adding mechanism 300 is located above the water tank 200, the adding mechanism 300 includes a box body 310, and the top surface of the box body 310 is fixedly connected to the water inlet pipe, and the bottom surface is fixedly connected to the water outlet pipe, a bag body 330 is provided inside the box body 310, and the two ends of the bag body 330 are fixedly connected to one end of the water inlet pipe and one end of the water outlet pipe respectively, and a plurality of rubber tubes 331 are fixedly bonded to one side of the bag body 330, and the box body 310 is provided with a plurality of rubber tubes 331. A fixing plate 340 is fixedly connected to the bottom surface, and a plurality of circular holes are opened on one side of the fixing plate 340. A T-tube 350 is fixedly sleeved inside any circular hole. A connecting shell 360 is fixedly connected between two adjacent T-tubes 350, and a T-block 362 is slidably sleeved inside the multiple connecting shells 360. A conveying pipe 361 is fixedly connected to the bottom surface of any connecting shell 360. The multiple T-tubes 350 correspond one-to-one to the multiple rubber tubes 331. One end of any T-tube 350 is fixedly plugged into one end of the corresponding rubber tube 331. The two positioning mechanisms 400 are respectively located at the top and bottom ends of the box body 310, and the driving mechanism 500 is located at one side of the box body 310.
[0038] Specifically, the water inlet pipe is connected to the filtering system inside the body 100, so that the water filtered by the filtering system of the body 100 can flow into the water inlet pipe, the water outlet pipe is connected to the water storage tank 200, and an electric control valve can be installed at the outlet of the water outlet pipe to control the opening and closing of the outlet of the water outlet pipe. The bag body 330 is made of plastic material. When in use, the bag body 330 is formed into a wave shape by two positioning mechanisms 400, and the bending parts of the bag body 330 are all pressed against the top surface and the inner bottom surface of the box body 310 by the positioning mechanisms 400, so that the bending parts of the bag body 330 itself are pressed tightly and closed, so that the bag body 330 part between the top surface and the inner bottom surface of the box body 310 forms a large number of compartments, and the bottom of each compartment is provided with a rubber tube 331, and the interior of the compartment is connected to the corresponding The adjacent rubber tubes 331 are connected to each other, and the water inlet pipe and the water outlet pipe are fixed to the two ends of the bag body 330 respectively through connectors. Adhesive stickers can be pre-installed on the two ends of the bag body 330, and the two ends of the bag body 330 are attached to the top and bottom surfaces of the box body 310 with adhesive stickers, and one end of all T-tubes 350 is inserted into the adjacent rubber tubes 331. The opposite ends of the T-tubes 350 at both ends of all T-tubes 350 can be manually installed with rubber plugs to prevent water from flowing out. Then, the filtering system of the body 100 can inject the filtered water into the compartment inside the bag body 330, and the water flow can be transported between two adjacent compartments through the T-tube 350 and the connecting shell 360, so that the water flow passes through multiple compartments in sequence until it is discharged into the water storage tank 200 by the outlet pipe. 60, the T-block 362 inside naturally blocks the communication between the two adjacent T-tubes 350 in the initial state, and separates the water flow in the two adjacent compartments. Then, the water flow in the compartment closest to the outlet pipe can be discharged into the water storage tank 200 through the outlet pipe, and then the T-block 362 in the adjacent connecting shell 360 is slid up so that the T-block 362 no longer blocks the communication between the two adjacent T-tubes 350. Then, the water flow in the adjacent compartment of the compartment is discharged into the compartment through the adjacent T-tube 350 and the connecting shell 360, so that the water flow between different compartments is not easily mixed together. The delivery pipe 361 on each connecting shell 360 can be connected to a metering pump or an air pump. The air pump is connected to a gas tank storing hydrogen, and the metering pump is connected to a container storing baking soda solution. The user can press It is necessary to connect the delivery pipe 361 on one part of the connecting shell 360 to the metering pump through a multi-way connector, and connect the delivery pipe 361 on the other part of the connecting shell 360 to the air pump through a multi-way connector. When the water flow between two adjacent compartments is transported through the connecting shell 360, the air pump or the metering pump can be started to inject baking soda solution or hydrogen into the water flow flowing through the connecting shell 360, so that the water flow forms hydrogen-rich water and improves the pH value of the water flow. In addition, the internal space of the connecting shell 360 is small, so that the flow cross-section of the water flow is small when flowing through the connecting shell 360, which facilitates the mixing of baking soda solution, hydrogen and water flow. By making the water flow flow through multiple compartments in sequence and undergoing multiple hydrogen injections and baking soda solution injections, the improvement effect on the pH value of drinking water is improved, and the hydrogen content in the water is increased.The metering pump, air pump, gas tank for storing hydrogen, container for storing baking soda solution, electronically controlled valve, adhesive tape, etc. are all existing technologies and will not be elaborated here. When the pH value of the water flow is improved by the solution, it can reduce pipe corrosion and scale formation, thereby reducing the pollution and corrosion of the pipe by the water flow, thereby reducing water pollution caused by solid waste or heavy metals inside the pipe, so that the water flow is not easily contaminated by solid waste passing through the pipe when it is discharged from the water station. If metal pipes are used, it is also not easily contaminated by heavy metals generated by corrosion of the metal pipes, thereby extending the service life of the direct drinking water station. When the water flow forms hydrogen-rich water, the hydrogen-rich water has antioxidant properties and can neutralize the oxidizing substances in the water, reducing oxidation corrosion on the pipe, thereby increasing the service life of the direct drinking water station.
[0039] Example 1
[0040] like Figure 4-Figure 5 As shown, in this embodiment, both ends of one side of the fixed plate 340 are rotatably connected to the driving wheels 341, and a driving belt 342 is rotatably sleeved between the outer side walls of the two driving wheels 341, and a magnet 343 is fixedly connected to one side of the driving belt 342. An iron layer is attached to the top of any T-block 362, and a motor box 344 is fixedly connected to the other side of the fixed plate 340. A servo motor is arranged inside the motor box 344, and the motor shaft of the servo motor is fixedly connected to the wheel axle of the adjacent driving wheel 341, and a reset spring is fixedly connected between the top surface of any T-block 362 and the inner top surface of the adjacent connecting shell 360.
[0041] In this embodiment, the driving wheel 341 is a synchronous pulley and the driving belt 342 is a synchronous toothed belt. By starting the servo motor, the driving wheel 341 is used to drive the driving belt 342 to rotate, so that the driving belt 342 can drive the magnet 343 to move to the top of the connecting shell 360 at different positions. When the magnet 343 moves above any connecting shell 360, it can adsorb the T-block 362 in the adjacent connecting shell 360 and move it upward, so that the moved T-block 362 no longer blocks the communication between the two adjacent T-tubes 350. When the magnet 343 leaves the connecting shell 360, the T-block 362 will naturally slide down due to its own weight and re-block the inside of the adjacent connecting shell 360, and the reset spring can assist the T-block 362 to slide down, so that the T-block 362 can complete the reset.
[0042] like Figure 2 and Figure 6-Figure 8 As shown, in this embodiment, the positioning mechanism 400 includes:
[0043] Two plates 410 are respectively located at the top and bottom ends of the box body 310. A plurality of positioning components are provided on the adjacent side of the two plates 410, and the plurality of positioning components on the two plates 410 are arranged in a staggered manner. A plurality of rectangular slots for the positioning components to enter and exit are provided on both the top and bottom surfaces of the box body 310. The positioning component includes two vertically arranged rods 420, and a rotating rod 421 is provided between the two rods 420. One end of the rotating rod 421 is rotatably connected to the outer wall of one rod 420. The other end passes through the outer wall of another rod body 420, and the two rod bodies 420 are equipped with two brackets 411. The two ends of the same rod body 420 are fixedly connected to the two brackets 411 respectively. A stop plate 430 is provided on one side of any rotating rod 421. Any rotating rod 421 is equipped with two slides 440. A sliding hole is opened in the center of the top surface of any slide 440. The inner wall of the sliding hole on any slide 440 is slidably sleeved with the outer wall of the adjacent rotating rod 421. Any slide 440 is connected to the adjacent stop plate There are multiple support rods 441 between 430, one end of any support rod 441 is rotatably connected to the side wall of the adjacent slide 440, and the other end is rotatably connected to the side wall of the adjacent plate 430, and a power box 450 is provided at the other end of any rotating rod 421, and a power motor is provided inside any power box 450, and any power box 450 is fixedly connected to the adjacent plate body 410, and the motor shaft of any power motor is fixedly connected to the other end of the adjacent rotating rod 421, and the outer wall of any rotating rod 421 is Two ring bodies 424 are fixedly sleeved, and adjacent sides of the two ring bodies 424 on any rotating rod 421 are fixedly connected with a protrusion. The two ring bodies 424 on any rotating rod 421 are respectively abutted against two adjacent slides 440. Two fixing rings are fixedly sleeved on the outer side wall of any rotating rod 421. The two fixing rings on any rotating rod 421 are located between the two adjacent slides 440. A pressure spring 422 is fixedly connected between the two fixing rings on any rotating rod 421 and the adjacent slides 440.
[0044] In specific implementation, when installing or replacing the bag body 330, the two plates 410 can be pulled apart to separate the multiple positioning components on the two plates 410 from the interior of the box body 310. Then, after fixing the two ends of the bag body 330, the two plates 410 can be slid toward each other to move the positioning components back into the interior of the box body 310, and a rod 420 on the positioning component can be used to press the bag body 330 against the inner wall of the box body 310, so that the bend of the bag body 330 can be automatically opened due to the friction of the adjacent rods 420. The plate 410 is sealed and easy to be manually disassembled and assembled by the user. There are mounting holes at both ends of the plate 410. The user can fix the plate 410 to the box body 310 by passing the bolts, screws and other connecting parts through the mounting holes. After the bag body 330 and the plate 410 are installed, there is a positioning component on one side of each compartment, and the compartments are all in contact with the abutment plate 430 on the positioning component on one side of themselves, and the compartment close to the water inlet pipe is in contact with one end inside the box body 310, and then By starting the power motor adjacent to the positioning assembly and causing the power motor to drive the adjacent rotating rod 421 to rotate, the rotating rod 421 can drive the two adjacent ring bodies 424, so that the protrusions on the ring body 424 intermittently contact the adjacent slide plate 440 to slide, and when the slide plate 440 slides, it contacts the adjacent push plate 430 through the adjacent support rod 441 and moves away from each other. When the protrusion is separated from the slide plate 440, the slide plate 440 can be pulled back by the adjacent push spring 422 to reset the adjacent push plate 430, so that when there is water flow inside any compartment, it is subjected to the reciprocating pressure of the adjacent push plate 430, so that the bag body 330 forming the compartment is deformed by the push plate 430 and then recovers, thereby driving the water flow in the compartment to oscillate, thereby improving the mixing effect of hydrogen, baking soda solution and water flow, thereby turning the water flow into hydrogen-rich water with a relatively rich hydrogen content, and improving the pH value of the water flow, thereby reducing the corrosion and pollution of the water flow into the pipeline, reducing water pollution caused by solid waste or heavy metals inside the pipeline, and improving the service life of the water station.
[0045] like Figure 2 and Figure 9-10 As shown, in this embodiment, the driving mechanism 500 includes:
[0046] The connecting plate 510 is located inside the box body 310. A plurality of drive components are provided on one side of the connecting plate 510, and the plurality of drive components correspond one to one with the plurality of positioning components on the two positioning mechanisms 400. The drive component includes a slide rod 520. A connecting hole is provided on the outer wall of the slide rod 520, and a pull rope 521 is provided in conjunction with the slide rod 520. The middle part of the pull rope 521 is fixedly sleeved with the inner wall of the connecting hole, and the two ends of the pull rope 521 are respectively fixedly connected to the two slide plates 440 on the corresponding positioning components. One end of the slide rod 520 passes through one side of the connecting plate 510 and one side of the box body 310, and one end of the slide rod 520 is located outside the box body 310. The other end of either slide rod 520 The main bevel gear 522 is fixedly connected to them, and the outer wall of any rotating rod 421 is fixedly connected to the slave bevel gear 423, and the outer wall of any sliding rod 520 is fixedly connected to a ring 523. A plurality of rebound springs are fixedly connected between any ring 523 and an inner wall of the connecting plate 510. One side of the box body 310 is rotatably connected to two guide wheels 530, and a transmission belt 531 is rotatably connected between the outer walls of the two guide wheels 530. The outer wall of the transmission belt 531 is fixedly connected to a block 532. One side of the box body 310 is fixedly connected to a drive box 540 through a connecting frame, and a drive motor is provided inside the drive box 540, and the motor shaft of the drive motor is fixedly connected to the wheel axle of the adjacent guide wheel 530.
[0047] In a specific implementation, the guide wheel 530 is a synchronous pulley, the transmission belt 531 is a synchronous toothed belt, the connecting plate 510 is U-shaped, and there are screws at both ends of the connecting plate 510. Bolt holes can be opened on one side of the box body 310. The screws are passed through the bolt holes and screwed together with the nuts to fix the connecting plate 510 on the box body 310. The rings 523 on the multiple slide bars 520 are all in contact with the inner wall of the box body 310 in the initial state, and the multiple main bevel gears 522 are not engaged with the adjacent slave bevel gears 423. By starting the driving motor, the guide wheel 530 is used to drive the transmission belt 531 to rotate, so that the transmission belt 531 can drive the block 532 to resist any one of the slide bars 520 to slide. The adjacent main bevel gear 522 is meshed with the adjacent slave bevel gear 423, so that when the rotating rod 421 is driven to rotate by the power motor, the adjacent slide rod 520 can be driven to rotate through the main bevel gear 522 and the slave bevel gear 423, so that the slide rod 520 rotates to reel in the pull rope 521, and the pull rope 521 drives the two adjacent slides 440 to move toward each other a certain distance, so that the slides 440 contact the abutment plate 430 through the support rod 441 to squeeze the adjacent compartments. At this time, the servo motor is started to drive the magnet 343 to move above the adjacent connecting shell 360, so that the two adjacent T-tubes 350 of the connecting shell 360 are connected, so that the water flow inside the compartment is squeezed and transferred to the inside of the adjacent compartment.
[0048] Example 2
[0049] On the basis of the first embodiment, the bracket 320 is provided to facilitate the user to replace the bag body 330 .
[0050] like Figure 2-Figure 3 As shown, in this embodiment, two brackets 320 are provided below the box body 310 , and one end of the two brackets 320 is fixedly connected to an inner wall of the body 100 , and the two short sides of the bottom surface of the box body 310 are slidably connected to the two brackets 320 respectively.
[0051] In specific implementation, when the bag body 330 needs to be replaced, a moving wheel is provided on the bracket 320. When the user needs to replace the bag body 330, the box body 310 can be slid through the bracket 320 to expose the box body 310 and the two plates 410 to the outside of the body 100, thereby facilitating the user to pull the plate 410 to move and install the bag body 330.
[0052] 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 embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
[0053] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
Claims
1. A hydrogen-rich water machine system, characterized in that: include: Body (100); A water storage tank (200) is located inside the machine body (100); The adding mechanism (300) is located above the water storage tank (200). The adding mechanism (300) includes a box body (310), and the top surface of the box body (310) is fixedly connected to a water inlet pipe, and the bottom surface is fixedly connected to a water outlet pipe. A bag body (330) is provided inside the box body (310), and the two ends of the bag body (330) are respectively fixedly connected to one end of the water inlet pipe and one end of the water outlet pipe. A plurality of rubber tubes (331) are fixedly bonded to one side of the bag body (330). A fixing plate (340) is fixedly connected to the bottom surface of the box body (310), and the fixing plate (340) is fixedly connected to the bottom surface of the box body (310). A plurality of circular holes are provided on one side of the plate (340), a T-shaped tube (350) is fixedly sleeved inside any circular hole, a connecting shell (360) is fixedly connected between two adjacent T-shaped tubes (350), and a T-shaped block (362) is slidably sleeved inside the plurality of connecting shells (360), a delivery tube (361) is fixedly connected to the bottom surface of any connecting shell (360), the plurality of T-shaped tubes (350) correspond one to one with the plurality of rubber tubes (331), and one end of any T-shaped tube (350) is fixedly plugged into one end of the corresponding rubber tube (331); Two positioning mechanisms (400) are respectively located at the top and bottom ends of the box body (310); The driving mechanism (500) is located at one side of the box body (310).
2. The hydrogen-rich water machine system according to claim 1, characterized in that: Two brackets (320) are provided below the box body (310), and one end of each of the two brackets (320) is fixedly connected to an inner wall of the machine body (100), and two short sides of the bottom surface of the box body (310) are respectively slidably connected to the two brackets (320).
3. The hydrogen-rich water machine system according to claim 1, characterized in that: Both ends of one side of the fixed plate (340) are rotatably connected to driving wheels (341), and a driving belt (342) is rotatably sleeved between the outer side walls of the two driving wheels (341), one side of the driving belt (342) is fixedly connected to a magnet (343), and the top of each T-shaped block (362) is attached with an iron layer, and the other side of the fixed plate (340) is fixedly connected to a motor box (344), and a servo motor is provided inside the motor box (344), and the motor shaft of the servo motor is fixedly connected to the wheel shaft of the adjacent driving wheel (341).
4. The hydrogen-rich water machine system according to claim 3, characterized in that: A return spring is fixedly connected between the top surface of any T-shaped block (362) and the inner top surface of the adjacent connecting shell (360).
5. The hydrogen-rich water machine system according to claim 1, characterized in that: The positioning mechanism (400) comprises: Two plates (410) are respectively located at the top and bottom ends of the box body (310), and a plurality of positioning components are provided on adjacent sides of the two plates (410), and the plurality of positioning components on the two plates (410) are arranged in a staggered manner, and a plurality of rectangular grooves are provided on both the top and bottom surfaces of the box body (310); The positioning assembly comprises two vertically arranged rod bodies (420), and a rotating rod (421) is provided between the two rod bodies (420). One end of the rotating rod (421) is rotatably connected to the outer wall of one rod body (420), and the other end passes through the outer wall of the other rod body (420). The two rod bodies (420) are matched with two brackets (411), and the two ends of the same rod body (420) are fixedly connected to the two brackets (411) respectively.
6. The hydrogen-rich water machine system according to claim 5, characterized in that: A support plate (430) is provided on one side of each rotating rod (421), and each rotating rod (421) is equipped with two slide plates (440). A sliding hole is opened in the center of the top surface of each slide plate (440), and the inner side wall of the sliding hole on each slide plate (440) is slidably sleeved with the outer side wall of the adjacent rotating rod (421). A plurality of support rods (441) are provided between each slide plate (440) and the adjacent support plate (430), and one end of each support rod (441) is rotatably connected to the side wall of the adjacent slide plate (440), and the other end is rotatably connected to the side wall of the adjacent support plate (430). A power box (450) is provided at the other end of each rotating rod (421), and a power motor is provided inside each power box (450), and each power box (450) is fixedly connected to the adjacent plate body (410). The motor shaft of each power motor is fixedly connected to the other end of the adjacent rotating rod (421).
7. The hydrogen-rich water machine system according to claim 6, characterized in that: Two ring bodies (424) are fixedly sleeved on the outer side wall of any rotating rod (421), and adjacent sides of the two ring bodies (424) on any rotating rod (421) are fixedly connected with a protrusion. The two ring bodies (424) on any rotating rod (421) are respectively abutted against two adjacent slides (440). Two fixing rings are fixedly sleeved on the outer side wall of any rotating rod (421), and the two fixing rings on any rotating rod (421) are located between the two adjacent slides (440). A pressure spring (422) is fixedly connected between the two fixing rings on any rotating rod (421) and the adjacent slides (440).
8. The hydrogen-rich water machine system according to claim 7, characterized in that: The driving mechanism (500) comprises: A connecting plate (510) is located inside the box body (310), and a plurality of driving components are provided on one side of the connecting plate (510), and the plurality of driving components correspond one-to-one to the plurality of positioning components on the two positioning mechanisms (400); The driving assembly includes a slide rod (520), the outer wall of the slide rod (520) is provided with a connection hole, and the slide rod (520) is equipped with a pull rope (521), the middle part of the pull rope (521) is fixedly connected to the inner wall of the connection hole, and the two ends of the pull rope (521) are respectively fixedly connected to the two slide plates (440) on the corresponding positioning assembly, one end of the slide rod (520) passes through one side of the connecting plate (510) and one side of the box body (310), and one end of the slide rod (520) is located outside the box body (310).
9. The hydrogen-rich water machine system according to claim 8, characterized in that: The other end of each slide bar (520) is fixedly sleeved with a main bevel gear (522), the outer side wall of each rotating rod (421) is fixedly sleeved with a slave bevel gear (423), the outer side wall of each slide bar (520) is fixedly sleeved with a collar (523), and a plurality of rebound springs are fixedly connected between each collar (523) and an inner wall of the connecting plate (510).
10. The hydrogen-rich water machine system according to claim 9, characterized in that: One side of the box body (310) is rotatably connected to two guide wheels (530), and a transmission belt (531) is rotatably sleeved between the outer side walls of the two guide wheels (530), and a stop block (532) is fixedly connected to the outer side wall of the transmission belt (531). One side of the box body (310) is fixedly connected to a drive box (540) via a connecting frame, and a drive motor is provided inside the drive box (540), and the motor shaft of the drive motor is fixedly connected to the wheel shaft of the adjacent guide wheel (530).