Faucet and mineral spring mineralization water purification equipment
By introducing a mineralization water path, filter element, and acquisition module into the faucet, the problem of traditional faucets being unable to mineralize and detect water quality is solved, enabling diversified adjustment and detection of water quality, and improving the functionality and user experience of the faucet.
Patent Information
- Application Number
- CN202423174533.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-20
AI Technical Summary
Existing traditional faucets are limited to safe water use, cannot mineralize water, and cannot monitor water quality parameters in real time, thus failing to meet users' needs for different water qualities.
A faucet was designed, comprising a mineralization water path, a filter element assembly, an acquisition module, and a control valve. It can mineralize water flow and detect pH and TDS values in real time through the acquisition module. Combined with the control valve and display module, it can adjust and display water quality.
It enables mineralization treatment and real-time quality detection of water flow, and can adjust water quality parameters according to user needs, providing a variety of water quality options, thus improving the functionality and user experience of the faucet.
Smart Images

Figure CN223622342U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of faucets, specifically to a faucet and a mineral water purification device. Background Technology
[0002] Currently, with the continuous improvement of people's living standards, the importance attached to drinking water is also increasing. The water that people can drink can be roughly divided into tap water, purified water, and mineral water. Tap water contains impurities, bacteria, and heavy metal pollution. Purified water is acidic and does not help to balance the human body's acid-base balance. As the terminal device for water, the traditional faucet currently used in the market is only limited to safe water use. Utility Model Content
[0003] In view of this, the present invention provides a faucet and a mineral water purification device. The faucet can mineralize the water flowing from the faucet and detect the water quality of the water flowing in the mineralized water path.
[0004] This utility model provides the following technical solution:
[0005] A faucet, comprising:
[0006] A faucet, comprising:
[0007] The main body includes: a mineralized water channel;
[0008] A filter element assembly is disposed on the mineralized water path, and the filter element assembly is used to mineralize the water flow in the mineralized water path;
[0009] An acquisition module is provided on the mineralized water path, and the acquisition module is used to acquire the pH value or TDS value of the mineralized water path.
[0010] Furthermore, the acquisition module includes: a first acquisition unit and a second acquisition unit;
[0011] The filter assembly has an inlet end and an outlet end; the first acquisition unit is disposed at the inlet end, and the first acquisition unit is used to acquire the pH value and / or TDS value of the water flow at the inlet end; the second acquisition unit is disposed at the outlet end, and the second acquisition unit is used to acquire the pH value and / or TDS value of the water flow at the inlet end.
[0012] Furthermore, the main body also includes: a pure water circuit and a control valve;
[0013] The control valve includes: a control valve inlet, a control valve first outlet, and a control valve second outlet. The control valve first outlet is connected to the mineralized water circuit, and the control valve second outlet is connected to the pure water circuit.
[0014] Furthermore, it also includes: a display module;
[0015] The display module is disposed on the main body, and the display module is used to display the pH value and / or TDS value of the first acquisition unit and the second acquisition unit.
[0016] Furthermore, it also includes: a controller;
[0017] The controller is connected to the first acquisition unit, the second acquisition unit, and the control valve. The controller is used to acquire the signal from the acquisition module and output it to the display module.
[0018] Furthermore, the body includes: a main body portion and a connecting portion;
[0019] The main body is rotatably connected to the connecting part, and the connecting part has a receiving cavity, in which the first acquisition unit, the second acquisition unit, and the filter element assembly are all disposed.
[0020] Furthermore, the filter element assembly includes: a housing, a first filter element, and a second filter element;
[0021] Both the first filter element and the second filter element are disposed within the housing, and the first filter element and the second filter element are disposed within the housing along the height direction of the housing; the first filter element and the second filter element are disposed sequentially in the mineralized water path.
[0022] Furthermore, the second filter element includes: a housing, a filter tube, and a water-stopping assembly;
[0023] The filter tube is disposed in the housing, and multiple filter media areas are provided on the outer periphery of the filter tube. Each filter media area is provided with a water inlet hole corresponding to the position of the filter tube. The water inlet hole is disposed through the outer side wall of the filter tube.
[0024] The filter tube has a cavity and a water outlet, and the water-stopping component is movably disposed in the cavity and moves along the axial direction of the filter tube.
[0025] The water-stopping component has multiple preset positions. When the water-stopping component is in a preset position, it connects the water inlet and the water outlet so that the water can pass through the filter material area at the preset position and then be discharged through the water outlet.
[0026] Furthermore, the water-stopping assembly includes: a screw and a water-stopping component;
[0027] The screw is disposed inside the housing, and the axis of the screw is collinear with the axis of the filter tube; wherein, one end of the screw is disposed at the bottom of the housing, and the other end of the screw extends to the outside of the housing;
[0028] The water-stopping element is mounted on the screw and is adapted to the cavity. The screw drives the water-stopping element to move in the cavity along the circumferential direction of the screw.
[0029] This application also provides a mineral spring mineralization water purification device, the mineral spring mineralization water purification device comprising:
[0030] The water purifier and the faucet, wherein the faucet is connected to the water purifier.
[0031] The aforementioned faucet has a mineralization water path in its main body, and a filter element assembly is installed in the mineralization water path. The filter element assembly can mineralize the water flow in the mineralization water path. An acquisition module is also installed in the mineralization water path. The acquisition module can acquire the pH value and / or TDS value of the water flow input into the main body or the pH value and / or TDS value of the water flow output to the faucet. In this way, the acquisition module can detect the water flow quality in the mineralization water path and the efficiency of the filter element assembly in mineralizing the water flow. Attached Figure Description
[0032] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0033] Figure 1 One of the internal structural diagrams of a faucet provided in an embodiment of this utility model;
[0034] Figure 2 One of the structural schematic diagrams of the filter element provided in the embodiment of this utility model;
[0035] Figure 3 A second schematic diagram of the filter element provided in this embodiment of the present utility model;
[0036] Figure 4 A cross-sectional view of the filter element provided in an embodiment of this utility model;
[0037] Figure 5 This is a schematic diagram of the structure of the first filter element provided in an embodiment of the present utility model;
[0038] Figure 6 A second schematic diagram of the internal structure of a faucet provided for an embodiment of this utility model;
[0039] Figure 7 This is a schematic diagram of the structure of the mineral water purification equipment provided in this embodiment of the utility model.
[0040] Explanation of reference numerals in the attached figures:
[0041] 100-Faucet; 10-Body; 11-Mineralized Water Channel; 12-Main Body; 13-Connecting Part; 131-Receiving Cavity; 20-Filter Cartridge Assembly; 21-Inlet; 22-Outlet; 23-Housing; 24-First Filter Cartridge; 241-Outer Shell; 242-Filter Tube; 243-Filter Media Area; 244-Inlet Hole; 245-Cavity; 246-Outlet Hole; 25-Second Filter Cartridge; 26-Water Stop Assembly; 2 61-Screw; 262-Water stop component; 30-Acquisition module; 31-First acquisition unit; 32-Second acquisition unit; 40-Pure water circuit; 50-Control valve; 51-Control valve inlet; 52-Control valve first outlet; 53-Control valve second outlet; 60-Display module; 70-Controller; 200-Mineralized water purification equipment; 210-Water purifier; 220-Mineralized filter element; 230-Purified water filter element. Detailed Implementation
[0042] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0043] The terms "first," "second," etc., in the specification, claims, and accompanying drawings of this utility model are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or apparatus that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or apparatuses.
[0044] In this document, references to "embodiment" or "implementation" mean that a particular feature, structure, or characteristic described in connection with an embodiment or implementation may be included in at least one embodiment of the present invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0045] Currently, with the continuous improvement of people's living standards, the importance attached to drinking water is also increasing. The water that people can drink can be roughly divided into tap water, purified water, and mineral water. Tap water contains impurities, bacteria, and heavy metal pollution. Purified water is acidic and does not help to balance the human body's acid-base balance. As the terminal device for water, the traditional faucet currently used in the market is only limited to safe water use.
[0046] Therefore, this embodiment provides a faucet 100 and a mineral water purification device 200. The faucet 100 can mineralize the water flow in the faucet 100 and detect the water quality of the water flow in the mineralized water path 11.
[0047] Please see Figure 1 A faucet 100, comprising:
[0048] Body 10, the body 10 includes: mineralized water channel 11;
[0049] Filter element assembly 20, the filter element assembly 20 is disposed on the mineralization water channel 11, and the filter element assembly 20 is used to mineralize the water flow in the mineralization water channel 11;
[0050] Acquisition module 30 is installed on the mineralized water channel 11 and is used to acquire the pH value or TDS value of the mineralized water channel 11.
[0051] The aforementioned faucet 100 has a mineralization water path 11 in its main body 10, and a filter element assembly 20 is installed on the mineralization water path 11. The filter element assembly 20 can mineralize the water flow in the mineralization water path 11. An acquisition module 30 is also installed on the mineralization water path 11. The acquisition module 30 can acquire the pH value and / or TDS value of the water flow input into the main body 10 or acquire the pH value and / or TDS value of the water flow output to the faucet 100. In this way, the acquisition module 30 can detect the water flow quality of the mineralization water path 11 and the efficiency of the filter element assembly 20 in mineralizing the water flow.
[0052] Please see Figure 1 In some embodiments, the acquisition module 30 includes: a first acquisition unit 31 and a second acquisition unit 32;
[0053] The filter element assembly 20 has an inlet end 21 and an outlet end 22; the first acquisition unit 31 is disposed at the inlet end 21, and the first acquisition unit 31 is used to acquire the pH value and / or TDS value of the water flow at the inlet end 21; the second acquisition unit 32 is disposed at the outlet end 22, and the second acquisition unit 32 is used to acquire the pH value and / or TDS value of the water flow at the inlet end 21.
[0054] Understandably, the acquisition module includes a first acquisition unit 31 and a second acquisition unit 32. The filter element assembly 20 has an inlet end 21 and an outlet end 22. The first acquisition unit 31 can be set at the inlet end 21, and can detect the pH value or TDS value of the water flow at the inlet end 21. The second acquisition unit 32 can be set at the outlet end 22, and can detect the pH value or TDS value of the water flow at the outlet end 22. In this way, the water quality of the current inlet and outlet water in the faucet 100 can be detected. By acquiring the TDS difference or pH difference between the inlet and outlet water, the control valve 50 can adjust the water flow input to the mineralization water circuit 11 and the water flow input to the regulating water circuit according to the real-time acquired TDS difference or pH difference, so that the output water flow can meet the user's water demand.
[0055] Optionally, both the first acquisition unit 31 and the second acquisition unit 32 are TDS sensors. Measuring the total dissolved solids (TDS) content in water using two TDS sensors allows for more accurate water quality detection. Furthermore, the TDS sensors are simple in design, easy to operate, and can directly output digital signals that can be directly received and used by the display module, reducing the overall system size and complexity. Additionally, the TDS sensors can convert the TDS value into a pH value after simple calculation by the controller 70, thus enabling the acquisition of both pH and TDS values using only the TDS sensors.
[0056] Please see Figures 2 to 4 In some embodiments, the filter element assembly 20 includes: a housing 23, a first filter element 24, and a second filter element 25;
[0057] The first filter element 24 and the second filter element 25 are both disposed inside the housing 23. The first filter element 24 and the second filter element 25 are disposed inside the housing 23 along the height direction of the housing 23. The first filter element 24 and the second filter element 25 are disposed sequentially on the mineralized water channel 11.
[0058] Understandably, the filter assembly 20 includes: a housing 23, a first filter element 24, and a second filter element 25. The first filter element 24 and the second filter element 25 are both disposed within the housing 23 and are sequentially disposed on the mineralization water passage 11. Specifically, the first filter element 24 is used to purify the water flow in the mineralization water passage 11, and the second filter element 25 is used to mineralize the water flow in the mineralization water passage 11. In particular, when the water flow enters the first filter element 24, the first filter element 24 can purify the water flow in the mineralization water passage 11. After being purified by the first filter element 24, the water flow flows into the second filter element 25, whereby the second filter element 25 mineralizes the water flow in the mineralization water passage 11 to output mineralized drinking water. In this way, the mineralization and purification of the water flow in the water passage can be achieved simultaneously through a single faucet 100, thus eliminating the need for equipment such as a water purifier 210 and improving the integration of the faucet 100 and reducing the space occupied in the room.
[0059] Please see Figure 5 In some embodiments, the second filter element 25 includes: a housing 241, a filter tube 242, and a water-stopping component 26;
[0060] The filter tube 242 is disposed in the outer shell 241. Multiple filter media areas 243 are provided on the outer periphery of the filter tube 242. Each filter media area 243 is provided with a water inlet hole 244 corresponding to the position of the filter tube 242. The water inlet hole 244 penetrates the outer side wall of the filter tube 242.
[0061] The filter tube 242 has a cavity 245 and a water outlet 246. The water-stopping component 26 is movably disposed in the cavity and moves along the axial direction of the filter tube 242.
[0062] The water-stopping component 26 has multiple preset positions. When the water-stopping component 26 is in a preset position, the water-stopping component 26 connects the water inlet 244 and the water outlet 246 so that the water can pass through the filter material area 243 at the preset position and then be discharged through the water outlet 246.
[0063] Understandably, a filter tube 242 is installed inside the outer casing 241. Multiple perforations are provided in the middle of the outer casing 241, allowing water to flow into the filter tube 242 through the inlet holes 244. Multiple filter media areas 243 are provided around the outer periphery of the filter tube 242, and an inlet hole 244 is provided at the position of the filter tube 242 corresponding to each filter media area 243. A cavity 245 is provided on the filter tube 242, communicating with the inlet holes 244. Thus, after flowing through the filter media in that area, water can enter the cavity 245 through the inlet holes 244. The filter element is also equipped with a water-stopping component 26, which can be displaced within the cavity 245. When the cavity 245 moves to the corresponding preset position, the water flow can connect the filter media area 243 and the outlet hole 246 at the corresponding position. The water flow can then pass through the filter media area 243 at the corresponding position and enter the cavity 245 through the inlet hole 244, and then be discharged to the outside of the outer shell 241 through the outlet hole 246. In this way, by adjusting the position of the water-stopping component 26, the water path can only flow through the required filter media area 243, thereby enabling the filter element to output the mineralized water flow required by the user.
[0064] Understandably, the water-stop component 26 has multiple preset positions. The preset positions can be set according to the number of filter media areas 243, or according to the required combination or arrangement of minerals. When the water-stop component 26 is in a preset position, it can connect the inlet hole 244 and outlet hole 246 of the required mineral area, so that the water flow can enter the cavity 245 after passing through the filter media area 243 at the corresponding position, and then be discharged through the flow channel formed by the water-stop component 26. This can achieve water mineralization, and can also mineralize the water flow according to the user's needs.
[0065] Please see Figure 5 In some embodiments, the water-stopping component 26 includes: a screw 261 and a water-stopping element 262;
[0066] The screw 261 is disposed inside the housing 241, and the axis of the screw 261 is collinear with the axis of the filter tube 242; wherein, one end of the screw 261 is disposed at the bottom of the housing 241, and the other end of the screw 261 extends to the outside of the housing 241;
[0067] The water-stopping element 262 is disposed on the screw 261, the water-stopping element 262 is adapted to the cavity 245, and the screw 261 drives the water-stopping element 262 to move in the cavity 245 along the circumferential direction of the screw 261.
[0068] Understandably, the water-stopping assembly 26 includes: a screw 261 and a water-stopping element 262; wherein the screw 261 is disposed in the housing 241, one end of the screw 261 is disposed at the bottom of the housing 241, and the other end of the screw 261 extends to the outside of the housing 241, and the water-stopping element 262 is disposed on the screw 261. In order for the screw 261 to better drive the water-stopping element 262 and to better seal the cavity 245 away from the water outlet 246, the axis of the screw 261 is collinear with the axis of the filter tube 242, and the water-stopping element 262... This size is adapted to the cavity 245, which can simultaneously serve the functions of sealing and connecting. Specifically, it can seal the portion of the cavity 245 away from the water outlet 246 and connect the portion of the cavity 245 close to the water outlet 246. The water-stopping element 262 can be driven by the screw 261. Specifically, when the screw 261 extending to the outside of the housing 241 rotates, the water-stopping element 262 can be driven to move along the axial direction of the screw 261, thereby moving the water-stopping element 262 to a preset position and realizing the adjustment of the position of the water-stopping element 262.
[0069] Please see Figure 1 In some embodiments, the body 10 may only include a mineralization water passage 11 and a control valve 50, wherein the control valve 50 is disposed on the mineralization water passage 11.
[0070] In this embodiment, the control valve 50 is mainly used to adjust the water flow rate entering the filter element assembly 20. By adjusting the water flow rate entering the first filter element 24 and the second filter element 25 through the control valve 50, when the water flow rate is larger, the water flow speed is slower when passing through the first filter element 24 and the second filter element 25, so that there is more contact time with the minerals in the second filter element 25. In this way, the water flowing out of the second filter element 25 contains more minerals. Therefore, when the user needs drinking water with a high mineral content, the water flow rate of the control valve 50 can be reduced to meet the customer's needs. When the user needs drinking water with a low mineral content, the water flow rate of the control valve 50 can be increased to meet the customer's needs.
[0071] Please see Figure 6 In some embodiments, the main body 10 further includes: a pure water circuit 40 and a control valve 50;
[0072] The control valve 50 includes: a control valve inlet 51, a control valve first outlet 52, and a control valve second outlet 53. The control valve first outlet 52 is connected to the mineralized water circuit 11, and the control valve second outlet 53 is connected to the pure water circuit 40.
[0073] Understandably, the main body 10 is equipped with a pure water circuit 40 and a control valve 50. The control valve 50 includes a control valve inlet 51, a control valve first outlet 52, and a control valve second outlet 53. The control valve inlet 51 is connected to a water supply circuit, which supplies water to the control valve 50. After the water supply enters the control valve 50, the control valve 50 divides the water supply into two paths: one outputs to the control valve first outlet 52, and the other outputs to the control valve second outlet 53. Furthermore, the mineralization water circuit 11 is connected to the control valve first outlet 52. The filter element assembly 20 installed on the mineralization water circuit 11... The water flow undergoes mineralization; the pure water circuit 40 is connected to the second outlet 53 of the control valve, and the pure water circuit 40 can output the water flow from the water supply circuit; the water flow from the pure water circuit 40 and the mineralization circuit 11 mixes at the outlet or on the water supply circuit, thus achieving different proportions of mineralized water and pure water output. Therefore, when users have different needs for mineralized drinking water, by adjusting the quality or proportion of the water flow output by the faucet 100, the water flow rate output to the pure water circuit 40 and the mineralization circuit 11 can be changed by controlling the valve 50, so that the faucet 100 body 10 can output water flow of different qualities, so that the water flow output by the faucet 100 can meet the user's needs.
[0074] Please see Figure 6 In some embodiments, it also includes: a display module 60;
[0075] The display module 60 is disposed on the main body 10, and the display module 60 is used to display the pH value and / or TDS value of the first acquisition unit 31 and the second acquisition unit 32.
[0076] Understandably, the display module 60 is mounted on the main body 10 and is connected to the first acquisition unit 31 and the second acquisition unit 32. Thus, when the first acquisition unit 31 acquires the pH value and / or TDS value of the water flow at the inlet 21 and the second acquisition unit 32 acquires the pH value and / or TDS value of the water flow at the outlet 22, they can send the relevant data to the display module 60. After processing the relevant data, the display module 60 displays the pH value and / or TDS value of the inlet 21 and the outlet 22 on the display module 60, so that the user can more intuitively observe the pH value and / or TDS value of the current mineralized water path 11.
[0077] Optionally, both the first acquisition unit 31 and the second acquisition unit 32 are TDS sensors. Measuring the total dissolved solids (TDS) content in water using two TDS sensors allows for more accurate water quality detection. Furthermore, the TDS sensors are simple in design, easy to operate, and can directly output digital signals that can be directly received and used by the display module, reducing the overall system size and complexity. The TDS sensors can also convert the TDS value into a pH value after simple calculation by the controller 70, thus enabling the acquisition of both pH and TDS values using only the TDS sensors. Of course, the first acquisition unit 31 and the second acquisition unit 32 in this invention can also acquire other parameters of the current water flow and send the detected data to the display module 60 for display.
[0078] Please see Figure 6 In some implementations, it further includes: a controller 70;
[0079] The controller 70 is connected to the first acquisition unit 31, the second acquisition unit 32, and the control valve 50. The controller 70 is used to acquire the signal from the acquisition module 30 and output it to the display module 60.
[0080] Understandably, the controller 70 is located inside or outside the main body 10. The controller 70 is connected to the first acquisition unit 31, the second acquisition unit 32, and the control valve 50. When the first acquisition unit 31 and the second acquisition unit 32 acquire the pH value and / or TDS value in the current water circuit, they send the data to the controller 70. The controller 70 can then process the acquired data and send it to the display module 60 for display, thus realizing the visualization of the current water quality.
[0081] In some embodiments, the controller 70 can also adjust the inlet flow of the control valve 50 based on the pH value or TDS value obtained by the first acquisition unit 31 and the second acquisition unit 32. For example, when the pH value of the output water flow is high, the water flow rate of the mineralization water path 11 can be reduced and the water flow rate of the pure water path 40 can be increased. In this way, the pH value can be reduced after the water flow in the mineralization water path 11 and the water flow in the pure water path 40 are mixed. When the pH value of the output water flow is low, the water flow rate of the mineralization water path 11 can be increased and the water flow rate of the pure water path 40 can be reduced to increase the pH value.
[0082] In some implementations, the user can also set the pH value of the output water according to their water demand. After the user sets the water demand, the controller 70 can output water according to the pH value or TDS value set by the user. When the second acquisition unit 32 detects that the current water output exceeds or is lower than the user's set value, the controller 70 can adjust the opening of the control valve 50 to change the water inlet ratio of the pure water circuit 40 and the mineralized water circuit 11. This can adjust the pH value of the current water output from the faucet 100 so that the pH value or TDS value of the current water output from the faucet 100 can match the customer's preset value to meet the customer's water demand.
[0083] Please see Figure 1 In some embodiments, the body 10 includes: a main body portion 12 and a connecting portion 13;
[0084] The main body 12 is rotatably connected to the connecting part 13. The connecting part 13 has a receiving cavity 131, and the first acquisition unit 31, the second acquisition unit 32, and the filter element assembly 20 are all disposed in the receiving cavity 131.
[0085] Understandably, the main body 10 includes a connecting portion 13 and a main body 12. The main body 12 is rotatably mounted on the connecting portion 13 and is perpendicular to the connecting portion 13. This perpendicular structural design of the main body 12 and the connecting portion 13 helps improve the stability of the device. This reduces structural offset or tilting, enhances the stability of the faucet 100, and also reduces flow resistance, thereby improving water flow efficiency. It also facilitates the rotation of the faucet 100.
[0086] Understandably, the connecting part 13 has a receiving cavity 131, in which a communication unit, a detection unit, and a controller 70 are disposed. The communication unit can be electrically connected to the detection unit, while the controller 70 can be wirelessly connected to the communication unit. Data is transmitted to the controller 70 through the communication unit via wireless signals. The controller 70 can use related protocols or modules such as Bluetooth and WiFi for signal transmission.
[0087] Please see Figure 7 This utility model also provides a mineral spring mineralization water purification device 200, which includes:
[0088] The water purifier 210 and the faucet 100 are connected to the water purifier 210.
[0089] Understandably, the aforementioned mineral water purification equipment 200 includes a water purifier 210 and a faucet 100. The water purifier 210 is used to purify municipal water supply. The purified water flows into the faucet 100, which can regulate the water flow of the mineral water path 11 and the pure water path 40 through the control valve 50. By adjusting the water flow of different water paths, the water flows in the mineral water path 11 and the pure water path 40 are mixed before being output to the faucet 100, thus achieving the output of water to meet different needs.
[0090] Please see Figure 7 In some embodiments, the mineral water purification equipment 200 includes: a mineralization filter element 220 and a water purification filter element 230;
[0091] The mineralization filter element 220 is connected in series with the water purification filter element 230, and the mineralization filter element 220 is connected to the mineralization water passage 11 and supplies water to the mineralization water passage 11.
[0092] It is understood that the aforementioned water purifier 210 includes a mineralizing filter element 220 and a water purification filter element 230. The water purification filter element 230 is connected to the mineralizing filter element 220. After water is purified by the purification filter element, it flows out and enters the mineralizing filter element 220. The mineralizing filter element 220 performs preliminary mineralization on the water before outputting it to the faucet 100. In this utility model, the terms "embodiment" and "implementation method" mean that a specific feature, structure, or characteristic described in conjunction with the embodiment can be included in at least one embodiment of this utility model. The appearance of these phrases in various positions in the specification does not necessarily refer to the same embodiment, nor are they independent or alternative embodiments mutually exclusive with other embodiments. Those skilled in the art will understand, explicitly and implicitly, that the embodiments described in this utility model can be combined with other embodiments. Furthermore, it should be understood that the features, structures, or characteristics described in the various embodiments of this utility model can be arbitrarily combined to form another embodiment that does not depart from the spirit and scope of the technical solution of this utility model, provided there is no contradiction between them.
[0093] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to the above preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions to the technical solution of this utility model should not depart from the spirit and scope of the technical solution of this utility model.
Claims
1. A faucet, characterized in that, include: The main body includes: a mineralized water channel; A filter element assembly is disposed on the mineralized water path, and the filter element assembly is used to mineralize the water flow in the mineralized water path; An acquisition module is provided on the mineralized water path, and the acquisition module is used to acquire the pH value or TDS value of the mineralized water path.
2. The faucet according to claim 1, characterized in that, The acquisition module includes: a first acquisition unit and a second acquisition unit; The filter assembly has an inlet end and an outlet end; the first acquisition unit is disposed at the inlet end, and the first acquisition unit is used to acquire the pH value and / or TDS value of the water flow at the inlet end; the second acquisition unit is disposed at the outlet end, and the second acquisition unit is used to acquire the pH value and / or TDS value of the water flow at the inlet end.
3. The faucet according to claim 2, characterized in that, The main body also includes: a pure water circuit and a control valve; The control valve includes: a control valve inlet, a control valve first outlet, and a control valve second outlet. The control valve first outlet is connected to the mineralized water circuit, and the control valve second outlet is connected to the pure water circuit.
4. The faucet according to claim 3, characterized in that, Also includes: Display module; The display module is disposed on the main body, and the display module is used to display the pH value and / or TDS value of the first acquisition unit and the second acquisition unit.
5. The faucet according to claim 4, characterized in that, Also includes: Controller; The controller is connected to the first acquisition unit, the second acquisition unit, and the control valve. The controller is used to acquire the signal from the acquisition module and output it to the display module.
6. The faucet according to claim 2, characterized in that, The body includes: a main body and a connecting part; The main body is rotatably connected to the connecting part, and the connecting part has a receiving cavity, in which the first acquisition unit, the second acquisition unit, and the filter element assembly are all disposed.
7. The faucet according to claim 2, characterized in that, The filter assembly includes: a housing, a first filter element, and a second filter element; Both the first filter element and the second filter element are disposed within the housing, and the first filter element and the second filter element are disposed within the housing along the height direction of the housing; the first filter element and the second filter element are disposed sequentially in the mineralized water path.
8. The faucet according to claim 7, characterized in that, The second filter element includes: a housing, a filter tube, and a water-stopping assembly; The filter tube is disposed in the housing, and multiple filter media areas are provided on the outer periphery of the filter tube. Each filter media area is provided with a water inlet hole corresponding to the position of the filter tube. The water inlet hole is disposed through the outer side wall of the filter tube. The filter tube has a cavity and a water outlet, and the water-stopping component is movably disposed in the cavity and moves along the axial direction of the filter tube. The water-stopping component has multiple preset positions. When the water-stopping component is in a preset position, it connects the water inlet and the water outlet so that the water can pass through the filter material area at the preset position and then be discharged through the water outlet.
9. The faucet according to claim 8, characterized in that, The water-stopping assembly includes: a screw and a water-stopping component; The screw is disposed inside the housing, and the axis of the screw is collinear with the axis of the filter tube; wherein, one end of the screw is disposed at the bottom of the housing, and the other end of the screw extends to the outside of the housing; The water-stopping element is mounted on the screw and is adapted to the cavity. The screw drives the water-stopping element to move in the cavity along the circumferential direction of the screw.
10. A mineral spring mineralization and water purification device, characterized in that, The mineral spring mineralization water purification equipment includes: Water purifiers and, The faucet as described in any one of claims 1 to 9, wherein the faucet is connected to the water purifier.