A mineralizer, water dispenser and control method
By setting up multiple containment chambers and mineralization sections in the mineralization device, and adjusting the temperature and time through a control module, the problem of poor mineralization effect was solved, achieving the best mineralization effect and water quality uniformity for drinking water.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-09
- Publication Date
- 2026-03-31
AI Technical Summary
Existing mineralization devices have poor mineralization effects, resulting in uneven mineralization of drinking water.
Design a mineralization device comprising multiple receiving chambers and a mineralization section. The temperature and inflow time of drinking water are adjusted by a control module to ensure that each mineral is combined with the appropriate temperature and time to achieve the best mineralization effect.
By combining multiple containment chambers and mineralization sections, the optimal mineralization effect of drinking water is achieved, meeting the needs of different minerals and improving mineralization efficiency and water quality uniformity.
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Figure CN119528313B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of drinking water technology, specifically to a mineralization device, a water dispenser, and a control method. Background Technology
[0002] As people's requirements for healthy drinking water continue to increase, the quality of drinking water has also received widespread attention. Multifunctional drinking water with multiple temperatures and mineral water functions are available. Using mineralization filter cartridges with multiple trace elements, after hot water mineralization, drinking water rich in trace elements for the human body is obtained, which can supplement the trace elements and minerals lacking in normal diet, thereby improving the body's nutritional status.
[0003] In existing technologies, multiple minerals are typically mixed and then combined with water to produce drinking water. However, due to the large variety of minerals, different minerals achieve different effects when combined with water, resulting in poor mineralization of drinking water in existing technologies.
[0004] Therefore, existing technologies need further development. Summary of the Invention
[0005] The purpose of this invention is to overcome the above-mentioned technical deficiencies and provide a mineralization device, a water dispenser, and a control method to solve the technical problem of poor mineralization effect in related technologies.
[0006] To achieve the above-mentioned technical objectives, the present invention adopts the following technical solution: providing a mineralization device, comprising:
[0007] A tank having at least two receiving cavities;
[0008] The filter element has at least two mineralization sections, and the at least two mineralization sections are arranged in a one-to-one correspondence with at least two receiving cavities, so that drinking water entering the receiving cavity flows through the corresponding mineralization section;
[0009] At least two water supply lines are connected to at least two corresponding cavities to supply drinking water into the respective cavities;
[0010] A control module is provided to control the temperature of the drinking water supplied into each of the water supply pipelines.
[0011] Furthermore, the mineralization device also includes:
[0012] A partition, which extends through the interior of the tank, to divide the tank into at least two receiving cavities.
[0013] Furthermore, the filter element has an internal cavity for placing mineralized materials, and the partition passes through the inside of the filter element to divide it into at least two mineralized sections.
[0014] Furthermore, the partition is movably configured to connect or disconnect two adjacent receiving cavities by moving the partition.
[0015] Furthermore, at least two of the receiving cavities are arranged sequentially in the vertical direction.
[0016] Furthermore, the mineralization device also includes at least two water outlet pipes, which are connected to at least two corresponding receiving cavities to lead drinking water from the corresponding receiving cavity out of the tank.
[0017] Furthermore, the mineralization device also includes:
[0018] Solenoid valve, wherein the solenoid valve is disposed on the water supply pipeline; and / or,
[0019] A liquid level sensor is disposed within the receiving cavity.
[0020] A water dispenser includes a mineralization device, wherein the mineralization device is the aforementioned mineralization device.
[0021] Furthermore, the water dispenser includes:
[0022] Water purifiers are used to provide drinking water.
[0023] A heating module, the inlet of which is connected to the water purifier, and the outlet of which is connected to the water supply pipeline of the mineralization device.
[0024] Furthermore, the water dispenser also includes:
[0025] Heat exchanger;
[0026] The first heat exchange pipeline has one end connected to the pipeline between the water purifier and the heating module, and the other end connected to the heat exchanger.
[0027] The second heat exchange pipeline has one end connected to the mineralization device and the other end connected to the heat exchanger.
[0028] Furthermore, the first heat exchange pipeline includes:
[0029] The first pipeline is used to supply drinking water into the heat exchanger;
[0030] The second pipeline is used to lead drinking water out of the heat exchanger.
[0031] Furthermore, the water dispenser includes:
[0032] The first output pipe is connected to the water outlet of the heating module;
[0033] The second output pipe is connected to the heat exchanger;
[0034] The third output pipe is connected to the water purifier.
[0035] A control method applicable to the above-mentioned mineralization device, the control method comprising:
[0036] A temperature corresponding to at least two of the mineralization sections is set according to the mineralization material within each of the at least two mineralization sections.
[0037] Drinking water at the appropriate temperature is supplied to at least two of the aforementioned water supply lines.
[0038] Furthermore, the control method includes:
[0039] Based on the mineralized material within at least two of the mineralized sections, a time corresponding to each of the at least two mineralized sections is set;
[0040] Drinking water is supplied to at least two of the aforementioned water supply lines for a corresponding period of time.
[0041] Furthermore, the mineralization section includes a first mineralization section and a second mineralization section, with the first mineralization section located below the second mineralization section; the receiving cavity includes a first receiving cavity for receiving the first mineralization section and a second receiving cavity for receiving the second mineralization section;
[0042] Wherein, when the temperature corresponding to the first mineralized section is lower than the temperature corresponding to the second mineralized section, the first and second receiving cavities are connected; and / or,
[0043] When the time corresponding to the first mineralization section is higher than the time corresponding to the second mineralization section, the first and second accommodating cavities are connected.
[0044] Beneficial effects:
[0045] The mineralization device of the present invention includes: a tank having at least two receiving cavities; a filter element having at least two mineralization sections disposed therein, the at least two mineralization sections being arranged in a one-to-one correspondence with the at least two receiving cavities, so that drinking water entering the receiving cavity flows through the corresponding mineralization section; at least two water supply pipes being connected to the at least two receiving cavities in a one-to-one correspondence, for introducing drinking water into the corresponding receiving cavity; and a control module for controlling the temperature of the drinking water introduced into each of the water supply pipes. By employing the above configuration, multiple mineralization sections are set up, and different mineralizing materials are placed in different mineralization sections. During the mineralization process of the drinking water in the mineralization device, according to the combination of different minerals with drinking water at different temperatures, each mineralization device can be matched to the most suitable water temperature, thereby achieving the best mineralization effect and solving the technical problem of poor mineralization effect in existing mineralization devices. Attached Figure Description
[0046] Figure 1 This is a schematic diagram of the mineralization device used in an embodiment of the present invention;
[0047] Figure 2 This is a schematic diagram of the structure of the water dispenser used in an embodiment of the present invention;
[0048] Figure 3 This is a schematic diagram of the structure of the mineralization device used in one embodiment of the present invention, where the cavity is divided by a partition.
[0049] Figure 4 This is a schematic diagram of the structure of the mineralization device used in one embodiment of the present invention when the partition opens the receiving cavity;
[0050] Figure 5 This is a schematic diagram of the structure of the mineralization device provided in another embodiment of the present invention when the receiving cavity is separated by a partition;
[0051] Figure 6 This is a schematic diagram of the structure of the mineralization device provided in another embodiment of the present invention when the partition opens the receiving cavity.
[0052] The above figures include the following reference numerals:
[0053] 1. Tank body; 11. Receiving cavity; 111. First receiving cavity; 112. Second receiving cavity; 2. Filter element; 21. Mineralization section; 211. First mineralization section; 212. Second mineralization section; 3. Water supply pipeline; 4. Baffle plate; 41. Guide plate; 5. Water outlet pipeline; 6. Solenoid valve;
[0054] 10. Water purifier; 20. Heating module; 30. Heat exchanger; 31. First heat exchange pipeline; 311. First pipeline; 312. Second pipeline; 32. Second heat exchange pipeline; 40. First output pipeline; 50. Second output pipeline; 60. Third output pipeline. Detailed Implementation
[0055] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of the present application.
[0056] See Figures 1 to 6 According to an embodiment of the present invention, a mineralization device is provided, comprising: a tank 1 having at least two receiving cavities 11; a filter element 2 having at least two mineralization sections 21 disposed therein, the at least two mineralization sections 21 being disposed in a one-to-one correspondence with the at least two receiving cavities 11, so that drinking water entering the receiving cavity 11 flows through the corresponding mineralization section 21; at least two water supply pipes 3 being connected in a one-to-one correspondence with the at least two receiving cavities 11 to supply drinking water into the corresponding receiving cavity 11; and a control module for controlling the temperature of the drinking water supplied into each of the water supply pipes 3.
[0057] By adopting the above configuration, multiple mineralization sections 21 are set up, and different mineralization materials are placed in different mineralization sections 21. During the mineralization process of the mineralization device, the combination of different minerals with drinking water at different temperatures allows each mineralization device to correspond to the most suitable water temperature, thereby achieving the best mineralization effect and solving the technical problem of poor mineralization effect of existing mineralization devices.
[0058] See Figures 1 to 6 In the mineralization device of this embodiment, the mineralization device further includes a partition 4, which is disposed inside the tank 1 to divide it into at least two receiving cavities 11.
[0059] By adopting the above configuration, the internal space of the tank 1 can be divided into different receiving cavities 11, which is simple in structure and low in cost.
[0060] In the mineralization device of this embodiment, the filter element 2 is provided with a placement cavity for placing mineralization materials, and the partition 4 passes through the filter element 2 to divide it into at least two mineralization sections 21.
[0061] With the above configuration, the partition 4 can separate multiple mineralized sections 21 while separating the receiving cavity, thus improving the utilization efficiency of the structure.
[0062] In the mineralization apparatus of this embodiment, see Figures 3 to 6 The partition 4 is movably provided so that by moving the partition 4, two adjacent receiving cavities 11 can be connected or separated.
[0063] With the above configuration, the receiving cavity 11 can be connected by the movable partition 4 when needed, thereby improving the mineralization efficiency.
[0064] Specifically, see Figure 3 , Figure 4 When it is necessary to connect the receiving cavity 11, the partition 4 is moved so that the drinking water above can enter the receiving cavity below.
[0065] In some embodiments, see Figure 5 , Figure 6 A flow guide plate 41 is provided below the partition plate 4. The flow guide plate 41 is provided with a connecting hole. By moving the partition plate 4, the amount of drinking water entering the connecting hole can be controlled, thereby controlling the water flow rate.
[0066] See Figures 3 to 6 In the mineralization device of this embodiment, at least two of the receiving cavities 11 are arranged sequentially in the vertical direction.
[0067] In the mineralization apparatus of this embodiment, see Figures 1 to 6 The mineralization device further includes at least two water outlet pipes 5, which are connected to at least two receiving cavities 11 in a one-to-one correspondence, so as to lead the drinking water in the corresponding receiving cavity 11 out of the tank body 1.
[0068] In this way, the mineralized drinking water in the receiving cavity 11 is led out of the tank 1 through the outlet pipe 5 for drinking.
[0069] In the mineralization apparatus of this embodiment, see Figures 1 to 6 The mineralization device further includes: a solenoid valve 6, which is disposed on the water supply pipeline 3; and / or a liquid level sensor, which is disposed in the receiving cavity.
[0070] Specifically, by setting up solenoid valve 6, the on / off state of each pipeline can be controlled, thereby controlling the flow of drinking water and allowing for the preparation of drinking water combinations.
[0071] By setting up liquid level sensors, the water level in each containment cavity 11 is controlled, thereby controlling the water flow rate in each containment cavity 11, ensuring the mineralization effect and taste.
[0072] The water dispenser in this embodiment is shown in [reference]. Figure 2 It includes a mineralization device, which is the mineralization device described above.
[0073] Specifically, the water dispenser of this embodiment has multiple mineralization sections 21, in which different mineralization materials are placed. During the mineralization process of the mineralization device, the combination of different minerals with drinking water at different temperatures allows each mineralization device to be matched with the most suitable water temperature, thereby achieving the best mineralization effect and solving the technical problem of poor mineralization effect of the mineralization device in the prior art.
[0074] In the water dispenser of this embodiment, see Figure 2 The water dispenser includes: a water purifier 10 for dispensing drinking water; and a heating module 20, the inlet of which is connected to the water purifier 10, and the outlet of which is connected to the water supply pipeline 3 of the mineralization device.
[0075] See Figure 2 In this embodiment of the water dispenser, the water dispenser further includes: a heat exchanger 30; a first heat exchange pipe 31, one end of which is connected to the pipe between the water purifier 10 and the heating module 20, and the other end of which is connected to the heat exchanger 30; and a second heat exchange pipe 32, one end of which is connected to the mineralization device, and the other end of which is connected to the heat exchanger 30.
[0076] Specifically, by setting up the first heat exchange pipeline 31, the drinking water in the water purifier 10 can be mixed with the drinking water in the heat exchanger 30, thereby regulating the water temperature.
[0077] Specifically, by setting up a second heat exchange pipeline 32, the drinking water flowing out of the mineralization device can be mixed with the drinking water in the heat exchanger 30, thereby regulating the water temperature.
[0078] In the water dispenser of this embodiment, see Figure 2 The first heat exchange pipeline 31 includes: a first pipeline 311 for introducing drinking water into the heat exchanger 30; and a second pipeline 312 for leading drinking water out of the heat exchanger 30.
[0079] See Figure 2 In this embodiment of the water dispenser, the water dispenser includes: a first output pipe 40, which is connected to the water outlet of the heating module 20; a second output pipe 50, which is connected to the heat exchanger 30; and a third output pipe 60, which is connected to the water purifier 10.
[0080] In this way, the water dispenser can output drinking water at three different temperatures based on the different water temperatures in different components, which improves heat exchange efficiency and saves energy.
[0081] The control method of this embodiment is applicable to the above-described mineralization device. The control method includes: setting a temperature corresponding to the at least two mineralization sections 21 based on the mineralization materials in the at least two mineralization sections 21; and introducing drinking water at the corresponding temperature into the at least two water supply pipes 3.
[0082] By adopting the above settings, and combining different minerals with drinking water at different temperatures, each mineralization device can be matched to the most suitable water temperature, thereby achieving the best mineralization effect and solving the technical problem of poor mineralization effect of existing mineralization devices.
[0083] In the control method of this embodiment, the control method includes: setting a time corresponding to the at least two mineralization sections 21 based on the mineralization materials in the at least two mineralization sections 21; and introducing drinking water for the corresponding time into the at least two water supply pipelines 3.
[0084] By using the above settings, different minerals are combined with different amounts of drinking water, so that each mineralization device can be matched with the most suitable water temperature, thereby achieving the best mineralization effect.
[0085] In the control method of this embodiment, the mineralization section 21 includes a first mineralization section 211 and a second mineralization section 212, with the first mineralization section 211 located below the second mineralization section 212; the receiving cavity 11 includes a first receiving cavity 111 for receiving the first mineralization section 211 and a second receiving cavity 112 for receiving the second mineralization section 212; wherein, when the temperature corresponding to the first mineralization section 211 is lower than the temperature corresponding to the second mineralization section 212, the first receiving cavity 111 and the second receiving cavity 112 are connected; and / or, when the time corresponding to the first mineralization section 211 is higher than the time corresponding to the second mineralization section 212, the first receiving cavity 111 and the second receiving cavity 112 are connected.
[0086] In this way, by connecting the first receiving cavity 111 and the second receiving cavity 112, drinking water can be injected into multiple receiving cavities 11 through a single pipeline, so that the water is heated while being injected. In this way, the water temperature increases as the water is injected into each receiving cavity 11 from bottom to top, thereby increasing the water supply speed of the water dispenser.
[0087] Similarly, for minerals with different water volume requirements, when the soaking time required at the bottom is longer, the first receiving cavity 111 and the second receiving cavity 112 are connected so that the water flows through each receiving cavity 11 in sequence, first soaking the minerals at the bottom and then soaking the minerals at the top, thereby improving the water supply speed of the water dispenser.
[0088] The mineralization device in this embodiment can extract a variety of trace elements and minerals to obtain drinking water rich in essential macro-elements and trace elements, such as calcium, magnesium, sodium, potassium, strontium, metasilicic acid, and total dissolved solids, meeting the trace element needs of the human body. It can provide room temperature water and warm boiled water; boiled water is produced by a water purifier, pressurized by a booster pump, and directly extracted by a regulating valve and heating module 20.
[0089] Example 1:
[0090] Mineralized room temperature water is produced by water purifier 10. The booster pump increases the water pressure and flow rate. The regulating valve distributes and adjusts the inlet water flow rate of heating module 20 and the flow rate into heat exchanger. Heating module 20 adjusts the outlet water temperature (65-75℃) according to the temperature sensor. The regulating valve distributes and adjusts the inlet water flow rate into the mineralization device and the hot water outlet flow rate. After exchanging heat with the temperature sensor (20-30℃, the regulating valve adjusts the inlet water flow rate), the water is supplied from the second output pipeline 50.
[0091] Example 2:
[0092] Mineralized warm water is produced by water purifier 10, booster pump increases water pressure and flow rate, regulating valve distributes and regulates the inlet flow rate of heating module 20, the flow rate into heat exchanger, heating module 20 adjusts the outlet water temperature (65-75℃) according to temperature sensor, regulating valve distributes and regulates the inlet flow rate into mineralization device, hot water outlet flow rate, heat exchanger 30 adjusts the outlet water flow rate according to temperature sensor (40-50℃, regulating valve adjusts the outlet water flow rate, and at the same time, some 40-50℃ water temperature enters heating module 20, which can also achieve energy saving and consumption reduction), and water outlet.
[0093] Example 3:
[0094] Boiling water is produced by the water purifier 10. The booster pump increases the water pressure and flow rate. The regulating valve distributes and adjusts the inlet water flow of the heating module 20. The heating module 20 adjusts the outlet water temperature (95-100℃) according to the temperature sensor. The regulating valve adjusts directly to the outlet water, and hot water flows out from the first output pipe 40.
[0095] Example 4:
[0096] The mineralization device in this embodiment is capable of regulating drinking water containing calcium, magnesium, sodium, potassium, strontium, and metasilicic acid. The outlet water temperature is controllable from 40-60℃ via the second output pipe 50. Depending on the water extraction function, the input temperature, water level, and extraction time vary. The water level is controlled by a level sensor. For example, when extracting calcium and magnesium, the heating module 20 inputs water at 45-50℃ to the bottom of the mineralization device, with a water level of 30mm, a time of 2 minutes, and a water volume of 500ml. When extracting sodium and potassium, the heating module inputs water at 55-60℃ to the middle of the mineralization device, with a water level of 50mm, a time of 3 minutes, and a water volume of 1000ml. When extracting strontium and metasilicic acid, the heating module inputs water at 65-70℃ to the top of the mineralization device, with a water level of 100mm, a time of 4 minutes, and a water volume of 1500ml.
[0097] Example 5:
[0098] See Figure 1 In this embodiment, there are three mineralization units 21, which are divided into upper, middle and bottom parts, each with a fixed extraction chamber and water storage capacity. The water outlet selects the water intake function, water volume and water temperature (40-65℃), and the corresponding solenoid valve switches on and off. The water concentration of each extraction is guaranteed to be above 0.5mg. The filter element is reminded to be replaced after the life reaches 2000L of water. The filter element can be disassembled and replaced through the mineralization device structure.
[0099] Example 6:
[0100] For extraction of sodium and potassium from drinking water, the heating module inputs water at 45-50℃ into the bottom of the mineralization device, with a water level of 30mm, a time of 2 minutes, and a water volume of 500ml. For extraction of sodium and potassium from drinking water, the heating module inputs water at 55-60℃ into the middle of the mineralization device, with a water level of 50mm, a time of 3 minutes, and a water volume of 1000ml. For extraction of strontium and metasilicic acid from drinking water, the heating module inputs water at 65-70℃ into the upper part of the mineralization device, with a water level of 100mm, a time of 4 minutes, and a water volume of 1500ml.
[0101] The bottom extracts calcium and magnesium for optimal taste; the middle extracts sodium and potassium for optimal taste; and the top extracts strontium and metasilicic acid for optimal taste. The function selects the appropriate mineral water based on the water intake, and the outlet temperature can be set and adjusted to suit different seasons and taste preferences. The water automatically enters the extraction chamber according to the temperature and volume settings.
[0102] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in orders other than those illustrated or described herein. 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 comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.
[0103] Optionally, specific examples in this embodiment can refer to the examples described in the above embodiments, and will not be repeated here.
[0104] The sequence numbers of the embodiments in this application are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments.
[0105] In the above embodiments of this application, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions of other embodiments.
[0106] The above description is only a preferred embodiment of this application. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this application, and these improvements and modifications should also be considered within the scope of protection of this application.
Claims
1. A mineralization device, characterized in that, The mineralization device comprises: a tank body (1) having at least two accommodation cavities (11); a filter core (2) provided with at least two mineralization parts (21) corresponding to the at least two accommodation cavities (11) respectively, so that the drinking water entering the accommodation cavities (11) flows through the corresponding mineralization parts (21); at least two water supply pipelines (3) corresponding to the at least two accommodation cavities (11) respectively, so as to supply drinking water into the corresponding accommodation cavities (11); a control module for controlling the temperature of the drinking water supplied into each water supply pipeline (3); a partition plate (4) provided in the tank body (1) to divide the tank body (1) into the at least two accommodation cavities (11); the partition plate (4) is movably arranged so as to connect or separate two adjacent accommodation cavities (11) by moving the partition plate (4); the control method of the mineralization device comprises: setting the temperature corresponding to the at least two mineralization parts (21) according to the mineralization materials in the at least two mineralization parts (21); supplying drinking water with the corresponding temperature into the at least two water supply pipelines (3); setting the time corresponding to the at least two mineralization parts (21) according to the mineralization materials in the at least two mineralization parts (21); supplying drinking water with the corresponding time into the at least two water supply pipelines (3); the mineralization part (21) comprises a first mineralization part (211) and a second mineralization part (212), and the first mineralization part (211) is located below the second mineralization part (212); the accommodation cavity (11) comprises a first accommodation cavity (111) accommodating the first mineralization part (211) and a second accommodation cavity (112) accommodating the second mineralization part (212); when the temperature corresponding to the first mineralization part (211) is lower than the temperature corresponding to the second mineralization part (212), the first accommodation cavity (111) and the second accommodation cavity (112) are connected; and / or 2. The mineralization device of claim 1, wherein, when the time corresponding to the first mineralization part (211) is higher than the time corresponding to the second mineralization part (212), the first accommodation cavity (111) and the second accommodation cavity (112) are connected.
3. The mineralization device of claim 1, wherein, The filter core (2) is internally provided with a placement cavity for placing mineralization materials, and the partition plate (4) is provided in the filter core (2) to divide the filter core (2) into the at least two mineralization parts (21).
4. The mineralization device of claim 1, wherein, The mineralization device further comprises at least two water outlet pipelines (5) corresponding to the at least two accommodation cavities (11) respectively, so as to lead the drinking water in the corresponding accommodation cavities (11) out of the tank body (1). The mineralization device further comprises: a solenoid valve (6) provided on the water supply pipeline (3); and / or 5. A water dispenser comprising a mineralization device, characterized in that, a liquid level sensor provided in the accommodation cavity.
6. The water dispenser of claim 5, wherein, The mineralization device is the mineralization device according to any one of claims 1 to 4. The drinking water machine comprises: The water purifier (10) is used for outputting drinking water; The heating module (20) is connected with the water purifier (10) at the water inlet, and connected with the water supply pipeline (3) of the mineralization device at the water outlet.
7. The water dispenser of claim 6, wherein, The water dispenser further comprises: A heat exchanger (30); A first heat exchange pipeline (31) is connected with the pipeline between the water purifier (10) and the heating module (20) at one end, and connected with the heat exchanger (30) at the other end; A second heat exchange pipeline (32) is connected with the mineralization device at one end, and connected with the heat exchanger (30) at the other end.
8. The water dispenser of claim 7, wherein, The first heat exchange pipeline (31) comprises: A first pipeline (311) is used for passing the drinking water into the heat exchanger (30); A second pipeline (312) is used for leading the drinking water out of the heat exchanger (30).
9. The water dispenser of claim 8, wherein, The water dispenser comprises: A first output pipeline (40) is connected with the water outlet of the heating module (20); A second output pipeline (50) is connected with the heat exchanger (30); A third output pipeline (60) is connected with the water purifier (10).
Citation Information
Patent Citations
Device capable of adjusting mineral elements in water quality
CN117550702A
Efficient purification water purifier
CN209872643U
Multifunctional mineralized water system
CN215161848U
Mineralization equipment
CN221296419U