Pipeline structure and water production equipment
By using the design of water circuit board and hydrogen mixing pump in the water production equipment, the integrated setting of drinking water and hydrogen-rich water effluent is achieved, solving the problem of large equipment size, and achieving a more compact structure and lower cost.
Patent Information
- Application Number
- CN202421923686.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-08-08
AI Technical Summary
In the existing hydrogen-rich water-making equipment, the drinking water effluent and the hydrogen-rich water effluent pass through independent pipeline structures, resulting in a large overall volume of the equipment and occupying more space.
The design of the water circuit board and the hydrogen mixing pump is adopted to mix the effluent of the purification module and the hydrogen-rich module with hydrogen gas, and a hydrogen-rich water is formed through the hydrogen mixing pump, and the total water outlet is shared to reduce pipelines and joints, so as to achieve an integrated setting of drinking water and hydrogen-rich water effluent.
The pipelines and joints are reduced, the structure is more compact, the overall volume of the water-making equipment is reduced, and the cost is reduced, while the integrated supply of drinking water and hydrogen-rich water is achieved.
Smart Images

Figure CN223163968U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of water production, and particularly to a pipeline structure and a water production device. Background Art
[0002] With the improvement of people's requirements for the quality of drinking water, the technology of water production devices has been continuously developed to provide purer and healthier water quality. As a water treatment device, a hydrogen-rich water production device decomposes water molecules into hydrogen and oxygen through electrolysis technology, thereby dissolving a high concentration of hydrogen molecules in water to produce hydrogen-rich water. This kind of water is considered to have health benefits such as antioxidant, anti-inflammatory, and beauty care, while maintaining the purity and safety of water. Hydrogen-rich water production devices are usually equipped with an intelligent control system, which can conveniently monitor the water quality and the status of the device, and is an ideal choice for consumers pursuing a healthy lifestyle.
[0003] Currently, in households, the production of drinking water and hydrogen-rich water is achieved through a hydrogen-rich water production device. The drinking water outlet and the hydrogen-rich water outlet are respectively realized through an independent pipeline structure, which occupies a large space and results in a relatively large overall volume of the water production device. Summary of the Utility Model
[0004] Embodiments of this application provide a pipeline structure and a water production device to solve the problem of large space occupation in the related art. The technical solutions are as follows:
[0005] In a first aspect, embodiments of this application provide a pipeline structure, including:
[0006] A water circuit board, which has a first water inlet flow channel, a second water inlet flow channel, and a total water outlet. The water inlet end of the first water inlet flow channel is used to connect the water outlet of the purification module and the hydrogen outlet of the hydrogen-rich module. The water inlet end of the second water inlet flow channel is used to communicate with the water outlet of the purification module. The water outlet end of the second water inlet flow channel is connected to the total water outlet, and the total water outlet is used to communicate with a water-using device;
[0007] A hydrogen mixing pump, which is arranged on the water circuit board. The water inlet of the hydrogen mixing pump is connected to the water outlet end of the first water inlet flow channel, and the water outlet of the hydrogen mixing pump is connected to the total water outlet. The hydrogen mixing pump is used to mix the water output by the purification module and the hydrogen output by the hydrogen-rich module.
[0008] In an embodiment, the water circuit board further has a hydrogen mixing flow channel. The water inlet end of the hydrogen mixing flow channel is connected to the water outlet of the hydrogen mixing pump, and the water outlet end of the hydrogen mixing flow channel is connected to the total water outlet. The hydrogen mixing flow channel is used to mix the water and hydrogen output by the hydrogen mixing pump.
[0009] In an embodiment, the pipeline structure further includes:
[0010] Three-way joint, the water inlet of the three-way joint is used to communicate with the water outlet of the purification module, and the first water outlet of the three-way joint is communicated with the water inlet end of the first water inlet flow channel;
[0011] Valve, the valve is arranged on the water circuit board, the water inlet of the valve is communicated with the second water outlet of the three-way joint, the water outlet of the valve is communicated with the water inlet end of the second water inlet flow channel, and the valve is used to control the on-off of the second water outlet of the three-way joint.
[0012] In one embodiment, the pipeline structure further includes:
[0013] Injector, the first inlet of the injector is communicated with the first water outlet of the three-way joint, the second inlet of the injector is used to communicate with the hydrogen outlet of the hydrogen-rich module, the outlet of the injector is communicated with the water inlet end of the first water inlet flow channel, and the injector is used to accelerate and mix the water output by the purification module and the hydrogen output by the hydrogen-rich module.
[0014] In one embodiment, the pipeline structure further includes:
[0015] Connecting pipe, the inlet of the connecting pipe is used to communicate with the hydrogen outlet of the hydrogen-rich module, and the outlet of the connecting pipe is communicated with the second inlet of the injector;
[0016] Check valve, the check valve is arranged on the connecting pipe, and the check valve is communicated with the connecting pipe.
[0017] In one embodiment, the water circuit board further has a third water inlet flow channel and a fourth water inlet flow channel, the water inlet end of the third water inlet flow channel is communicated with the second water outlet of the three-way joint, the water outlet end of the third water inlet flow channel is communicated with the water inlet end of the fourth water inlet flow channel, and the water outlet end of the fourth water inlet flow channel is communicated with the water inlet of the valve.
[0018] In a second aspect, an embodiment of the present application provides a water production device, including:
[0019] Purification module, the water inlet of the purification module is used to communicate with the water supply device, and the purification module is used to filter and purify the water input by the water supply device;
[0020] Hydrogen-rich module, the water inlet of the hydrogen-rich module is communicated with the water outlet of the purification module, and the hydrogen-rich module is used to electrolyze the water input by the purification module to generate hydrogen and oxygen;
[0021] The above pipeline structure, the water inlet end of the first water inlet flow channel communicates with the water outlet of the purification module and the hydrogen outlet of the hydrogen-rich module, and the water inlet end of the second water inlet flow channel is communicated with the water outlet of the purification module;
[0022] A water-using device, which is communicated with the total water outlet.
[0023] In one embodiment, the hydrogen-rich module includes:
[0024] A pure water tank, the water inlet of which is communicated with the water outlet of the purification module;
[0025] An electrolytic cell, the water inlet of which is communicated with the water outlet of the pure water tank. The electrolytic cell is used for electrolyzing to generate hydrogen and oxygen, and the electrolytic cell has the hydrogen outlet.
[0026] In one embodiment, the water circuit board is arranged on the pure water tank.
[0027] In one embodiment, the water inlet of the pure water tank, the water outlet of the pure water tank and the pipeline structure are all located on the same outer side surface of the pure water tank.
[0028] In one embodiment, the water-using device includes:
[0029] A kettle, which is communicated with the total water outlet;
[0030] A pure water kettle, which is communicated with the water outlet of the purification module.
[0031] The advantages or beneficial effects in the above technical solutions at least include:
[0032] The pipeline structure of the present utility model includes a water circuit board and a hydrogen mixing pump arranged on the water circuit board. The water circuit board has a first water inlet flow channel, a second water inlet flow channel and a total water outlet. The water inlet end of the first water inlet flow channel is communicated with the water outlet of the purification module and the hydrogen outlet of the hydrogen-rich module. The hydrogen mixing pump can mix the water output by the purification module and the hydrogen output by the hydrogen-rich module to form hydrogen-rich water. The water inlet of the hydrogen mixing pump is communicated with the water outlet end of the first water inlet flow channel, and the water outlet of the hydrogen mixing pump is communicated with the total water outlet, so that the total water outlet can output hydrogen-rich water. The water inlet end of the second water inlet flow channel is communicated with the water outlet of the purification module, and the water outlet end of the second water inlet flow channel is communicated with the total water outlet, so that the total water outlet can output drinking water. The water-using device is communicated with the total water outlet, so that the hydrogen-rich water and the drinking water output from the total water outlet can be output to the water-using device for drinking. Among them, by arranging the first water inlet flow channel, the second water inlet flow channel and the total water outlet on the water circuit board, the hydrogen-rich water outlet water circuit and the drinking water outlet water circuit are integrally arranged. There is no need to set up two sets of pipeline structures, reducing pipelines and joints, making the structure more compact and occupying less space. Furthermore, the overall volume of the water treatment equipment applying this pipeline structure can be reduced. At the same time, due to the reduction of pipelines and joints, the structure is simplified, and the cost can also be reduced.
[0033] The above summary is only for the purpose of the specification and is not intended to be limiting in any way. In addition to the illustrative aspects, embodiments, and features described above, further aspects, embodiments, and features of the present application will be readily apparent by reference to the accompanying drawings and the following detailed description. Description of the Drawings
[0034] In the drawings, unless otherwise specified, the same reference numerals throughout the several views denote the same or similar components or elements. These drawings are not necessarily drawn to scale. It should be understood that these drawings only depict some embodiments disclosed in the present application and should not be regarded as limiting the scope of the present application.
[0035] Figure 1 It is a schematic three-dimensional structure view of the pipeline structure of the present utility model from the first perspective;
[0036] Figure 2 It is a schematic three-dimensional structure view of the pipeline structure of the present utility model from the second perspective;
[0037] Figure 3 It is a schematic three-dimensional structure view of the water circuit board in the present utility model;
[0038] Figure 4 It is a sectional view of the water circuit board in the present utility model;
[0039] Figure 5 It is a schematic three-dimensional structure view of the water production equipment of the present utility model;
[0040] Figure 6 It is a schematic internal structure view of the water production equipment of the present utility model from the first perspective;
[0041] Figure 7 It is a schematic internal structure view of the water production equipment of the present utility model from the second perspective.
[0042] Reference Numerals
[0043] 1. Water circuit board; 11. First water inlet flow channel; 12. Second water inlet flow channel; 13. Total water outlet; 14. Hydrogen mixing flow channel; 141. Water inlet end of the hydrogen mixing flow channel; 142. Water outlet end of the hydrogen mixing flow channel; 15. Third water inlet flow channel; 16. Fourth water inlet flow channel; 2. Hydrogen mixing pump; 3. Three-way joint; 4. Valve; 5. Injector; 6. Connecting pipe; 7. Check valve; 8. Purification module; 81. RO filter element; 82. Mineralization filter element; 9. Hydrogen-rich module; 91. Pure water tank; 92. Electrolytic cell; 10. Water using device; 101. Kettle; 102. Pure water kettle; 20. Refrigeration module; 201. Cold water tank; 202. Refrigeration component; 30. Raw water tank; 40. Booster pump. Detailed Embodiments
[0044] In the following, only some exemplary embodiments are simply described. As those skilled in the art can recognize, the described embodiments can be modified in various different ways without departing from the spirit or scope of the present application. Therefore, the drawings and the description are considered to be exemplary in nature rather than restrictive.
[0045] See Figures 1-4 , which shows a pipeline structure of a preferred embodiment of the present utility model, including:
[0046] A water circuit board 1, the water circuit board 1 has a first water inlet flow channel 11, a second water inlet flow channel 12 and a total water outlet 13. The water inlet end of the first water inlet flow channel 11 is used to connect the water outlet of the purification module 8 and the hydrogen outlet of the hydrogen-rich module 9. The water inlet end of the second water inlet flow channel 12 is used to communicate with the water outlet of the purification module 8. The water outlet end of the second water inlet flow channel 12 is communicated with the total water outlet 13. The total water outlet 13 is used to communicate with the water-using device 10;
[0047] A hydrogen mixing pump 2, the hydrogen mixing pump 2 is arranged on the water circuit board 1. The water inlet of the hydrogen mixing pump 2 is communicated with the water outlet end of the first water inlet flow channel 11. The water outlet of the hydrogen mixing pump 2 is communicated with the total water outlet 13. The hydrogen mixing pump 2 is used to mix the water output by the purification module 8 and the hydrogen output by the hydrogen-rich module 9.
[0048] The pipeline structure of the present utility model includes a water circuit board 1 and a hydrogen mixing pump 2 arranged on the water circuit board 1. The water circuit board 1 has a first water inlet flow channel 11, a second water inlet flow channel 12 and a total water outlet 13. The water inlet end of the first water inlet flow channel 11 is connected to the water outlet of the purification module 8 and the hydrogen outlet of the hydrogen-rich module 9. The hydrogen mixing pump 2 can mix the water output by the purification module 8 and the hydrogen output by the hydrogen-rich module 9 to form hydrogen-rich water. The water inlet of the hydrogen mixing pump 2 is communicated with the water outlet end of the first water inlet flow channel 11. The water outlet of the hydrogen mixing pump 2 is communicated with the total water outlet 13, so that the total water outlet 13 can output hydrogen-rich water. The water inlet end of the second water inlet flow channel 12 is communicated with the water outlet of the purification module 8. The water outlet end of the second water inlet flow channel 12 is communicated with the total water outlet 13, so that the total water outlet 13 can output drinking water. The water-using device 10 is communicated with the total water outlet 13, so that both the hydrogen-rich water and the drinking water output by the total water outlet 13 can be output to the water-using device 10 for drinking. Among them, by setting the first water inlet flow channel 11, the second water inlet flow channel 12 and the total water outlet 13 on the water circuit board 1, the integration of the hydrogen-rich water outlet water circuit and the drinking water outlet water circuit is realized. There is no need to set two sets of pipeline structures, reducing pipelines and joints, making the structure more compact and occupying less space. Furthermore, the overall volume of the water-making equipment applying this pipeline structure can be reduced. At the same time, due to the reduction of pipelines and joints, the structure is simplified, and the cost can also be reduced.
[0049] See Figure 4, in one embodiment, the waterway plate 1 further has a hydrogen mixing channel 14. The water inlet end 141 of the hydrogen mixing channel is communicated with the water outlet of the hydrogen mixing pump 2, and the water outlet end 142 of the hydrogen mixing channel is communicated with the total water outlet 13. The hydrogen mixing channel 14 is used to mix the water and hydrogen output by the hydrogen mixing pump 2, so that the purified water output by the purification module 8 and the hydrogen output by the hydrogen-rich module 9 can be fully mixed in the hydrogen mixing channel 14, and the mixing is more uniform and efficient.
[0050] See Figures 1-2 , in one embodiment, the pipeline structure further includes:
[0051] A tee joint 3. The water inlet of the tee joint 3 is used to be communicated with the water outlet of the purification module 8, and the first water outlet of the tee joint 3 is communicated with the water inlet end of the first water flow channel 11;
[0052] A valve 4. The valve 4 is arranged on the waterway plate 1. The water inlet of the valve 4 is communicated with the second water outlet of the tee joint 3, and the water outlet of the valve 4 is communicated with the water inlet end of the second water flow channel 12. The valve 4 is used to control the on-off of the second water outlet of the tee joint 3. In this way, by using the tee joint 3 to bring together the water inlet ends of the first water flow channel 11 and the second water flow channel 12, communicating the water inlet of the tee joint 3 with the water outlet of the purification module 8, and controlling the on-off of the second water outlet of the tee joint 3 through the valve 4, it can be realized that the purified water output by the purification module 8 is conveyed to the first water flow channel 11 or the second water flow channel 12, so as to output hydrogen-rich water or drinking water. Only one pipeline needs to be set to communicate the water inlet of the tee joint 3 with the water outlet of the purification module 8. Compared with the scheme of respectively setting one pipeline to communicate the water inlet end of the first water flow channel 11 with the water outlet of the purification module 8 and setting one pipeline to communicate the water inlet end of the second water flow channel 12 with the water outlet of the purification module 8, the number of pipelines and joints used is reduced, and further, the structure can be simplified, which is more conducive to the compact setting of the pipeline structure, occupies less space, and at the same time, the cost can be further reduced.
[0053] See Figures 1-2 , in one embodiment, the pipeline structure further includes:
[0054] An ejector 5. The first inlet of the ejector 5 is communicated with the first water outlet of the tee joint 3, the second inlet of the ejector 5 is used to be communicated with the hydrogen outlet of the hydrogen-rich module 9, and the outlet of the ejector 5 is communicated with the water inlet end of the first water flow channel 11. The ejector 5 is used to accelerate and mix the water output by the purification module 8 and the hydrogen output by the hydrogen-rich module 9. In this way, the ejector 5 can be used to preliminarily mix the water output by the purification module 8 and the hydrogen output by the hydrogen-rich module 9, then further mix through the hydrogen mixing pump 2, and finally further mix through the hydrogen mixing channel 14. The step-by-step mixing method can form hydrogen-rich water with more uniform and sufficient mixing, and can improve the water production efficiency of hydrogen-rich water.
[0055] See Figures 1-2 , in one embodiment, the pipeline structure further includes:
[0056] A connecting pipe 6, the inlet of the connecting pipe 6 is used to communicate with the hydrogen outlet of the hydrogen-rich module 9, and the outlet of the connecting pipe 6 is communicated with the second inlet of the ejector 5;
[0057] A check valve 7, the check valve 7 is arranged on the connecting pipe 6 and is communicated with the connecting pipe 6. The setting of the check valve 7 can prevent the water in the ejector 5 from flowing back to the hydrogen-rich module 9, playing a role in protecting the hydrogen-rich module 9.
[0058] See Figure 3 , in one embodiment, the water circuit board 1 further has a third water inlet channel 15 and a fourth water inlet channel 16. The water inlet end of the third water inlet channel 15 is communicated with the second water outlet of the tee joint 3, the water outlet end of the third water inlet channel 15 is communicated with the water inlet end of the fourth water inlet channel 16, and the water outlet end of the fourth water inlet channel 16 is communicated with the water inlet of the valve 4. In this way, by connecting the second water outlet of the tee joint 3 and the water inlet end of the third water inlet channel 15, the tee joint 3 can be reliably fixed on the water circuit board 1. By connecting the water inlet of the valve 4 and the water outlet end of the fourth water inlet channel 16, and connecting the water outlet of the valve 4 and the water inlet end of the second water inlet channel 12, the valve 4 can be reliably fixed on the water circuit board 1. Thus, the tee joint 3 and the valve 4 are respectively fixed on the water circuit board 1, which can improve the connection stability of the tee joint 3 and the valve 4, and the structural reliability is higher.
[0059] See Figures 5-7 , showing a water-making device according to a preferred embodiment of the present invention, including:
[0060] A purification module 8, the water inlet of the purification module 8 is used to communicate with a water supply device, and the purification module 8 is used to filter and purify the water input by the water supply device;
[0061] A hydrogen-rich module 9, the water inlet of the hydrogen-rich module 9 is communicated with the water outlet of the purification module 8, and the hydrogen-rich module 9 is used to electrolyze the water input by the purification module 8 to generate hydrogen and oxygen;
[0062] For the above pipeline structure, the water inlet end of the first water inlet channel 11 is communicated with the water outlet of the purification module 8 and the hydrogen outlet of the hydrogen-rich module 9, and the water inlet end of the second water inlet channel 12 is communicated with the water outlet of the purification module 8;
[0063] A control device, the control device is communicated with the purification module 8, the hydrogen-rich module 9, and the pipeline structure;
[0064] A water-using device 10, the water-using device 10 is used to communicate with the total water outlet 13 under the control of the control device.
[0065] The water production equipment of the present utility model includes a purification module 8, a hydrogen-rich module 9, a pipeline structure, and a water-using device 10. Among them, the purification module 8 can filter and purify the water input by the water supply device, and the hydrogen-rich module 9 can electrolyze the water input by the purification module 8 to generate hydrogen and oxygen. The hydrogen mixing pump 2 can mix the water purified by the purification module 8 and the hydrogen output by the hydrogen-rich module 9 to form hydrogen-rich water. The water-using device 10 is connected to the total water outlet 13, so that the drinking water output by the purification module 8 can be transported to the water-using device 10 for drinking, and the hydrogen-rich water output by the hydrogen mixing pump 2 can be transported to the water-using device 10 for drinking, realizing the integrated setting of the drinking water supply function and the hydrogen-rich water supply function. At the same time, due to the adoption of the above pipeline structure, it is also possible to realize the integrated setting of the hydrogen-rich water outlet waterway and the drinking water outlet waterway, without setting two sets of pipeline structures, reducing pipelines and joints, making the structure more compact and occupying less space, and thus being able to reduce the overall volume of the water production equipment. In addition, due to the reduction of pipelines and joints, the structure is simplified, and the cost can also be reduced.
[0066] In one embodiment, the water supply device can be a tap for tap water or other water supply equipment such as mineral water.
[0067] In one embodiment, the purification module 8 can be a filter or a filtering device composed of multiple filter elements, etc., which can filter and purify the water output by the water supply device.
[0068] In one embodiment, the hydrogen-rich module 9 can be an electrolytic cell 92 or a combined structure of an electrolytic cell 92 and a pure water tank 91.
[0069] In one embodiment, the control device can be a valve 4 or a solenoid valve with multi-way switching output, etc., which can realize the control switching function, or it can be a device that can realize intelligent control.
[0070] In one embodiment, the control device includes a voice wake-up module to be able to control the opening and closing of the water production equipment of the present utility model through voice.
[0071] In one embodiment, the control device includes a touch screen to facilitate controlling the opening and closing of the water production equipment of the present utility model by manipulating the touch screen.
[0072] In one embodiment, the water-using device 10 can be any one or two of a kettle 101, a health kettle, an ordinary water storage kettle, a water outlet pipe, a water outlet faucet, etc.
[0073] See Figure 6 , in one embodiment, the hydrogen-rich module 9 includes:
[0074] A pure water tank 91, the water inlet of the pure water tank 91 is connected to the water outlet of the purification module 8;
[0075] The electrolytic cell 92 has an inlet connected to the outlet of the pure water tank 91. The electrolytic cell 92 is used for electrolyzing to generate hydrogen and oxygen, and the electrolytic cell 92 has a hydrogen outlet. Since the hydrogen-rich module 9 has a pure water tank 91, the pure water tank 91 can store water. When preparing hydrogen and oxygen, under the control of the control device, the water in the pure water tank 91 can be pumped into the electrolytic cell 92, and there is no need to start the purification module 8, which can improve the preparation efficiency of hydrogen and oxygen.
[0076] See Figures 1-2 , in one embodiment, the water circuit board 1 is provided on the pure water tank 91 to improve the space utilization rate of the pure water tank 91, make the internal structure of the water production equipment more compact, and is conducive to further reducing the overall volume of the water production equipment.
[0077] See Figures 1-2 , in one embodiment, the inlet of the pure water tank 91, the outlet of the pure water tank 91, and the pipeline structure are all located on the same outer side surface of the pure water tank 91, realizing the centralized setting of the inlet of the pure water tank 91, the outlet of the pure water tank 91, and the pipeline structure, so as to improve the space utilization rate of the same outer side surface of the pure water tank 91, with a more compact structure, and is conducive to further reducing the overall volume of the water production equipment.
[0078] In one embodiment, the hydrogen-rich module 9 further includes:
[0079] A resin filter element (not shown in the figure), the inlet of the resin filter element is connected to the outlet of the purification module 8, and the outlet of the resin filter element is connected to the inlet of the pure water tank 91. The resin filter element is used to remove heavy metals, filter impurities, and soften hard water, which can further improve the water quality. Since the hydrogen-rich module 9 is provided with a resin filter element, the purified water output by the purification module 8 can be filtered and purified again, further improving the water quality, ensuring the water quality required for the operation of the electrolytic cell, thus ensuring the working performance of the electrolytic cell, and then obtaining cleaner hydrogen, thereby further improving the cleanliness of the hydrogen-rich water.
[0080] In one embodiment, the resin filter element is arranged in the inner cavity of the pure water tank 91 to accommodate the resin filter element in the pure water tank 91, improve the space utilization rate of the pure water tank 91, avoid the resin filter element being arranged outside the pure water tank 91 resulting in excessive space occupation of the hydrogen-rich module 9, make the structure of the hydrogen-rich module 9 more compact, reduce the occupied space, and is more conducive to the miniaturization setting of this water production equipment.
[0081] In one embodiment, the hydrogen-rich module 9 further includes:
[0082] The first water level detection device (not shown in the figure) is connected to the control device. The first water level detection device is provided on the pure water tank 91 and is used to detect the water level of the pure water tank 91. The control device is used to control the start of the purification module 8 according to the low water level detection information of the first water level detection device, so that the purification module 8 replenishes water to the pure water tank 91. The control device is also used to control the shutdown of the purification module 8 according to the high water level detection information of the first water level detection device, so that the purification module 8 stops replenishing water to the pure water tank 91, realizing automatic water replenishment of the pure water tank 91 and making it more convenient to use.
[0083] In one embodiment, the first water level detection device can be a float type liquid level gauge, which is provided on the pure water tank 91, or other types of liquid level gauges of a communicating vessel, and the communicating vessel is provided outside the pure water tank 91.
[0084] See Figures 6-7 , in one embodiment, the water using device 10 includes:
[0085] A kettle 101, which is connected to the total water outlet 13. The setting of the kettle 101 can heat water, and thus can provide hot water, making the functions of this water making device more diverse;
[0086] A pure water kettle 102, which is connected to the water outlet of the purification module 8. The setting of the pure water kettle 102 can store purified water. Before water making, the purified water output by the purification module 8 can be stored in the pure water kettle 102 in advance, which can improve the water making efficiency. At the same time, by using the kettle 101 and the pure water kettle 102 to hold different types of water respectively, different usage requirements of users can be immediately met, making it more convenient to use.
[0087] In one embodiment, the above-mentioned kettle 101 is a health care kettle, and the functions of the health care kettle are more diverse, which can further enrich the functions of this water making device and make it more convenient to use.
[0088] In one embodiment, a first water pump is provided on the connecting pipeline between the water outlet of the pure water kettle 102 and the water inlet end of the first water inlet flow channel 11. The first water pump is located on the side close to the pure water kettle 102 and is connected to the control device. The first water pump is used to pump the water in the pure water kettle 102 to the hydrogen mixing pump 2.
[0089] In one embodiment, this water making device further includes:
[0090] The second water level detection device is connected to the control device. The second water level detection device is used to detect the water level of the pure water kettle 102. The control device is used to control the start of the purification module 8 according to the low water level detection information of the second water level detection device, so that the purification module 8 replenishes water to the pure water kettle 102. The control device is also used to control the closing of the purification module 8 according to the high water level detection information of the second water level detection device, so that the purification module 8 stops replenishing water to the pure water kettle 102, realizing automatic replenishment of the pure water kettle 102 and making it more convenient to use.
[0091] In one embodiment, the second water level detection device can be a float type liquid level gauge or other types of liquid level gauges such as a communicating vessel.
[0092] In one embodiment, the water making device further includes:
[0093] The refrigeration module 20, the refrigeration module 20 is connected to the control device. The water inlet of the refrigeration module 20 is connected to the water outlet of the purification module 8. The water outlet of the refrigeration module 20 is connected to the water inlet of the three-way joint 3. The refrigeration module 20 is used to cool the water purified by the purification module 8;
[0094] The hydrogen mixing pump 2 is also used to mix the cold water output by the refrigeration module 20 and the hydrogen output by the hydrogen-rich module 9 to form hydrogen-rich cold water. In this way, under the control of the control device, the cold water output by the refrigeration module 20 can be transported to the water using device 10 through the valve 4, or the cold water output by the refrigeration module 20 can be transported to the hydrogen mixing pump 2 through the ejector 5, and then the hydrogen-rich cold water is transported to the water using device 10 through the hydrogen mixing pump 2, so that the water making device also has the functions of cold water supply and hydrogen-rich cold water supply, making the functions more diverse.
[0095] See Figure 6 In one embodiment, the refrigeration module 20 includes:
[0096] The cold water tank 201, the water inlet of the cold water tank 201 is connected to the water outlet of the purification module 8, and the water outlet of the cold water tank 201 is connected to the water inlet of the three-way joint 3;
[0097] The refrigeration component 202, the refrigeration component 202 is used to cool the water in the inner cavity of the cold water tank 201. Since the refrigeration module 20 has the cold water tank 201, the cold water tank 201 can play a role in storing water. The cold water tank 201 can be replenished with water before refrigeration, and after the cold water tank 201 is filled with water, the refrigeration component 202 is started to cool the water in the cold water tank 201. Compared with the refrigeration method of making water and cooling at the same time, it can improve the refrigeration efficiency.
[0098] In one embodiment, the refrigeration module 20 further includes:
[0099] The third water level detection device is connected to the control device. The third water level detection device is used to detect the water level of the cold water tank 201. The control device is used to control the purification module 8 to start according to the low water level detection information of the third water level detection device, so that the purification module 8 replenishes water to the cold water tank 201. The control device is also used to control the purification module 8 to close according to the high water level detection information of the third water level detection device, so that the purification module 8 stops replenishing water to the cold water tank 201, realizing automatic replenishment of the cold water tank 201 and making it more convenient to use.
[0100] In one embodiment, the third water level detection device can be a float type liquid level gauge, and the float type liquid level gauge is arranged on the cold water tank 201, or it can be other types of liquid level gauges of a communicating vessel, and the communicating vessel is arranged outside the cold water tank 201.
[0101] In one embodiment, a second water pump is arranged on the connecting pipeline between the water outlet of the cold water tank 201 and the kettle 101. The second water pump is located on the side close to the cold water tank 201. The second water pump is connected to the control device, and the second water pump is used to pump the water in the cold water tank 201 to the kettle 101.
[0102] In one embodiment, the refrigeration component 202 includes:
[0103] A thermoelectric cooler, and the thermoelectric cooler is arranged outside the cold water tank 201;
[0104] A heat conduction sheet, and the heat conduction sheet is arranged at the cold end of the thermoelectric cooler. The heat conduction sheet is arranged in the inner cavity of the cold water tank 201. In this way, by starting the thermoelectric cooler, the temperature of the cold end is reduced, and the temperature of the cold end is efficiently transmitted to the water in the cold water tank 201 through the heat conduction sheet, thereby realizing the cooling of the water in the cold water tank 201. The refrigeration component 202 composed of the thermoelectric cooler and the heat conduction sheet has a compact structure and occupies less space, and can make the overall structure of the refrigeration module 20 more compact, so as to be more conducive to the miniaturization setting of this water making equipment.
[0105] In one embodiment, the refrigeration component 202 can also be a cooling device composed of a compressor, a condenser, an evaporator and an expansion valve.
[0106] See Figure 6 In one embodiment, the purification module 8 includes:
[0107] An RO filter element 81. The water inlet of the RO filter element 81 is used to communicate with the water supply device. The RO filter element 81 is used to filter out almost all impurities in the water (including harmful organic substances and heavy metal ions, etc.), and only allows water molecules to pass through, so as to obtain high-quality drinking water;
[0108] The mineralization filter element 82, the water inlet of the mineralization filter element 82 is connected to the water outlet of the RO filter element 81, and the water outlet of the mineralization filter element 82 is connected to the water inlet of the hydrogen-rich module 9, the water inlet of the refrigeration module 20, and the water inlet of the three-way joint. The mineralization filter element 82 is used to mineralize the water output by the RO filter element 81 to obtain mineralized water, and the mineralized water helps to improve physical fitness, prevent diseases and fight cancer, delay aging and other effects.
[0109] In one embodiment, the water treatment device further includes:
[0110] The raw water tank 30, the water inlet of the raw water tank 30 is used to be connected to the water supply device under the control of the control device, and the water outlet of the raw water tank 30 is connected to the water inlet of the purification module 8, so as to store water by using the raw water tank 30 and improve the water production efficiency.
[0111] In one embodiment, the water treatment device further includes:
[0112] The booster pump 40, the booster pump 40 is connected to the control device, the water inlet of the booster pump 40 is connected to the water outlet of the raw water tank 30, and the water outlet of the booster pump 40 is connected to the water inlet of the RO filter element 81, so that the water liquid in the raw water tank 30 can be conveyed to the RO filter element 81 under the action of the booster pump 40.
[0113] In the description of this specification, the description with reference to terms such as "one embodiment", "some embodiments", "example", "specific example", or "some examples" means that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. In addition, without contradiction, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of different embodiments or examples.
[0114] In addition, the terms "first" and "second" are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one of the features. In the description of the present application, "a plurality" means two or more, unless otherwise specifically defined.
[0115] The above is only the specific implementation manner of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art can easily think of various changes or substitutions within the technical scope disclosed in the present application, and these should all be covered by the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. Pipeline structure, characterized in that, Comprising: A waterway board, the waterway board having a first water inlet channel, a second water inlet channel, and a total water outlet. The water inlet end of the first water inlet channel is used to connect the water outlet of the purification module and the hydrogen outlet of the hydrogen-rich module. The water inlet end of the second water inlet channel is used to communicate with the water outlet of the purification module. The water outlet end of the second water inlet channel is communicated with the total water outlet, and the total water outlet is used to communicate with a water-using device; A hydrogen mixing pump, the hydrogen mixing pump being arranged on the waterway board. The water inlet of the hydrogen mixing pump is communicated with the water outlet end of the first water inlet channel, and the water outlet of the hydrogen mixing pump is communicated with the total water outlet. The hydrogen mixing pump is used to mix the water output by the purification module and the hydrogen output by the hydrogen-rich module.
2. The pipeline structure according to claim 1, characterized in that, The waterway board further has a hydrogen mixing channel. The water inlet end of the hydrogen mixing channel is communicated with the water outlet of the hydrogen mixing pump, and the water outlet end of the hydrogen mixing channel is communicated with the total water outlet. The hydrogen mixing channel is used to mix the water and hydrogen output by the hydrogen mixing pump.
3. The pipeline structure according to claim 1, wherein The pipeline structure further includes: A tee joint, the water inlet of the tee joint being used to communicate with the water outlet of the purification module, and the first water outlet of the tee joint being communicated with the water inlet end of the first water inlet channel; A valve, the valve being arranged on the waterway board. The water inlet of the valve is communicated with the second water outlet of the tee joint, and the water outlet of the valve is communicated with the water inlet end of the second water inlet channel. The valve is used to control the on-off of the second water outlet of the tee joint.
4. The pipeline structure according to claim 3, characterized in that, The pipeline structure further includes: An ejector, the first inlet of the ejector being communicated with the first water outlet of the tee joint, the second inlet of the ejector being used to communicate with the hydrogen outlet of the hydrogen-rich module, and the outlet of the ejector being communicated with the water inlet end of the first water inlet channel. The ejector is used to accelerate and mix the water output by the purification module and the hydrogen output by the hydrogen-rich module.
5. The pipeline structure according to claim 4, characterized in that, The pipeline structure further includes: A connecting pipe, the inlet of the connecting pipe being used to communicate with the hydrogen outlet of the hydrogen-rich module, and the outlet of the connecting pipe being communicated with the second inlet of the ejector; A check valve, the check valve being arranged on the connecting pipe and being communicated with the connecting pipe.
6. The pipeline structure according to claim 3, wherein, The waterway board further has a third water inlet channel and a fourth water inlet channel. The water inlet end of the third water inlet channel is communicated with the second water outlet of the tee joint, the water outlet end of the third water inlet channel is communicated with the water inlet end of the fourth water inlet channel, and the water outlet end of the fourth water inlet channel is communicated with the water inlet of the valve.
7. Water production equipment, characterized in that Comprising: A purification module, the water inlet of the purification module being used to communicate with a water supply device, and the purification module being used to filter and purify the water input by the water supply device; A hydrogen-rich module, the water inlet of the hydrogen-rich module being communicated with the water outlet of the purification module, and the hydrogen-rich module being used to electrolyze the water input by the purification module to generate hydrogen and oxygen; The pipeline structure according to any one of claims 1-6, the water inlet end of the first water inlet channel communicating the water outlet of the purification module and the hydrogen outlet of the hydrogen-rich module, and the water inlet end of the second water inlet channel communicating with the water outlet of the purification module; A water-using device, the water-using device being communicated with the total water outlet.
8. The water production device according to claim 7, wherein, The hydrogen-rich module includes: A pure water tank, the water inlet of the pure water tank is communicated with the water outlet of the purification module; An electrolytic cell, the water inlet of the electrolytic cell is communicated with the water outlet of the pure water tank, the electrolytic cell is used for electrolyzing to generate hydrogen and oxygen, and the electrolytic cell has the hydrogen outlet.
9. The water production device according to claim 8, characterized in that, The water circuit board is arranged on the pure water tank.
10. The water production device according to claim 9, characterized in that, The water inlet of the pure water tank, the water outlet of the pure water tank and the pipeline structure are all located on the same outer side surface of the pure water tank.