Water supply assembly and functional water supply device
By setting the water inlet and outlet on the same side at the bottom of the refrigeration liner and combining it with the exhaust port on the top, the problem of low efficiency in manufacturing and installation of cold water containers is solved, and more efficient use and integration of the refrigeration liner are achieved.
Patent Information
- Application Number
- CN202422695817.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-05
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2034-11-05
AI Technical Summary
The water inlet and water outlet of the cold water container of the existing functional water supply device are arranged separately, resulting in low manufacturing and installation efficiency and being unfavorable for integration.
A first water inlet and a first water outlet are provided at the bottom of the refrigeration liner, and an exhaust port is provided at the top. The water inlet and the water outlet are located on the same side. The exhaust port is used to discharge air, thereby improving the effective volume and use effect of the refrigeration liner.
The manufacturing efficiency and installation efficiency of the refrigeration tank are improved, the connection pipeline design is simplified, the integration is enhanced, and daily inspection and maintenance are facilitated.
Smart Images

Figure CN223331931U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water supply, in particular to a water supply component and a functional water supply device. Background Art
[0002] Functional water supply devices are currently popular on the market. This type of functional water supply device can generate and store functional water by itself, and provide functional water to users when they need it. For example, functional water can include sparkling water, oxygen-rich water, hydrogen-rich water, etc. In order to generate functional water, the functional water supply device has a container, which is used to prepare functional water. It can also store the prepared functional water and output the functional water when the user needs it. In addition, in order to generate functional water with a relatively high concentration, the functional water supply device needs to use cold water to prepare functional water. Therefore, the functional water supply device also has a cold water container, which is used to generate and store cold water. When the container that generates functional water needs to be replenished with water to generate more functional water, the cold water container will transport the cold water to the container that generates functional water. Existing cold water containers usually have a water inlet at the top and a water outlet at the bottom. This design allows the water in the cold water container to be completely used up or emptied through the water outlet, avoiding water and impurities remaining in the container. However, since the water inlet and outlet of the cold water container are separately provided, the water inlet and outlet of the cold water container need to be installed from two directions during the manufacturing process, which is not conducive to processing and manufacturing, reduces manufacturing efficiency, and is not conducive to improving the integration of functional water supply devices. In addition, during the installation process, the water inlet and outlet of the cold water container need to be connected from two directions, which increases the installation steps and reduces installation efficiency. Utility Model Content
[0003] In order to overcome the above-mentioned defects of the prior art, the technical problem to be solved by the embodiments of the present invention is to provide a water supply component and a functional water supply device.
[0004] The above-mentioned purpose of the present invention can be achieved by adopting the following technical scheme. The present invention provides a water supply component, including a refrigeration liner for containing water, and a first water inlet, a first water outlet and an exhaust port arranged on the refrigeration liner, the first water inlet and the first water outlet are both arranged at the bottom of the refrigeration liner, one end of the first water inlet is placed on the outside of the refrigeration liner, and the other end of the first water inlet extends into the refrigeration liner, one end of the first water outlet is placed on the outside of the refrigeration liner, and the other end of the first water outlet is connected to the bottom inner wall of the refrigeration liner.
[0005] In a preferred embodiment of the present invention, the exhaust port is provided at the top of the refrigeration liner, and the exhaust port is used to connect the refrigeration liner with the atmospheric environment.
[0006] In a preferred embodiment of the present invention, the other end of the first water inlet is spaced apart from the top inner wall of the refrigeration liner by a preset distance L, where L is ≥ 3 mm.
[0007] In a preferred embodiment of the present invention, the other end of the first water inlet is bent away from the top inner wall of the refrigeration liner.
[0008] In a preferred embodiment of the present invention, a water retaining structure is provided between the other end of the first water inlet and the top inner wall of the refrigeration liner, and the water retaining structure is used to prevent water output through the other end of the first water inlet from directly impacting the top inner wall of the refrigeration liner.
[0009] In a preferred embodiment of the present invention, the water retaining structure includes a water retaining member arranged between the other end of the first water inlet and the top inner wall of the refrigeration liner; or, the water retaining structure includes a water retaining member arranged on the other end of the first water inlet; or, the water retaining structure includes a water retaining member arranged on the top inner wall of the refrigeration liner.
[0010] In a preferred embodiment of the present invention, the first water inlet and the first water outlet are spaced apart and arranged at different positions on the bottom of the refrigeration inner container.
[0011] In a preferred embodiment of the present invention, the water supply assembly further includes a refrigeration unit, and the refrigeration unit is used to refrigerate the water in the refrigeration tank.
[0012] In a preferred embodiment of the present invention, the refrigeration unit includes a heat exchange tube, and at least a portion of the heat exchange tube is coiled and arranged in the refrigeration liner.
[0013] In a preferred embodiment of the present invention, the water supply component also includes a circulating water inlet arranged on the refrigeration liner, the circulating water inlet is arranged at the top of the refrigeration liner, one end of the circulating water inlet is placed on the outside of the refrigeration liner, and the other end of the circulating water inlet is placed in the refrigeration liner, and the circulating water inlet is used to re-input part of the water output through the first water outlet into the refrigeration liner.
[0014] In a preferred embodiment of the present invention, the other end of the circulating water inlet is arranged along a preset direction, and the refrigeration liner includes a first side wall arranged on one side of the circulating water inlet, and the angle between the preset direction and the first side wall is α, 0°<α<90°.
[0015] In a preferred embodiment of the present invention, along the circumference of the refrigeration inner container, the side wall of the refrigeration inner container is arranged in a circular manner to form a cylindrical shape.
[0016] In a preferred embodiment of the present invention, the water supply assembly also includes a functional water tank for containing functional water, and a second water inlet, a second water outlet and an air inlet arranged on the functional water tank, and the functional water tank is connected to the refrigeration inner tank.
[0017] In a preferred embodiment of the present invention, the second water inlet and the air inlet are both arranged at the top of the functional water tank, the second water outlet is arranged at the bottom of the functional water tank, one end of the second water outlet is placed on the outside of the functional water tank, and the other end of the second water outlet is connected to the bottom inner wall of the functional water tank.
[0018] In a preferred embodiment of the present invention, at least part of the functional water tank is embedded in the refrigeration liner.
[0019] The utility model also provides a functional water supply device, comprising the aforementioned water supply component.
[0020] The technical solution of the utility model has the following significant beneficial effects:
[0021] The water supply assembly of the present invention provides a first water inlet and a first water outlet at the bottom of the refrigeration liner. Water can be added to the refrigeration liner through the first water inlet, while the air in the refrigeration liner is discharged through the exhaust port, so that the refrigeration liner can be filled with water, thereby increasing the effective volume of the refrigeration liner. In addition, by providing the first water outlet at the bottom of the refrigeration liner, the water in the refrigeration liner can be used up or emptied through the first water outlet, preventing water and impurities from remaining in the refrigeration liner, thereby improving the use effect of the refrigeration liner.
[0022] Furthermore, by arranging both the first water inlet and the first water outlet at the bottom of the refrigeration liner, the first water inlet and the first water outlet are located on the same side of the refrigeration liner, thereby reducing the manufacturing difficulty of the refrigeration liner and improving manufacturing efficiency. Furthermore, by arranging the first water inlet and the first water outlet on the same side of the refrigeration liner, the design and layout of the external connecting pipes can be simplified, eliminating unnecessary bends, thereby reducing installation difficulty and improving installation efficiency. The overall structure is also more concise and compact, thereby helping to improve integration. Furthermore, it facilitates daily inspection and maintenance, thereby improving maintenance efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0024] The drawings described herein are for illustrative purposes only and are not intended to limit the scope of the present invention in any way. Furthermore, the shapes and proportional dimensions of the components in the drawings are for illustrative purposes only and are intended to facilitate understanding of the present invention. They are not intended to limit the shapes and proportional dimensions of the components of the present invention. Those skilled in the art, guided by the present invention, may select various possible shapes and proportional dimensions to implement the present invention, depending on the specific circumstances.
[0025] Figure 1 This is a schematic diagram of the top three-dimensional structure of an embodiment of the water supply assembly of the utility model;
[0026] Figure 2 This is a schematic diagram of the bottom three-dimensional structure of an embodiment of the water supply assembly of the utility model;
[0027] Figure 3 This is a schematic cross-sectional view of an embodiment of the refrigeration liner of the present invention;
[0028] Figure 4 This is a side structural diagram of an embodiment of the first water inlet of the utility model;
[0029] Figure 5 This is a side structural diagram of an embodiment of the curved pipe portion of the present invention;
[0030] Figure 6 This is a side structural diagram of an embodiment of the water retaining structure of the utility model;
[0031] Figure 7 This is a side structural schematic diagram of another embodiment of the water retaining structure of the utility model;
[0032] Figure 8 This is a side structural schematic diagram of another embodiment of the water retaining structure of the utility model;
[0033] Figure 9 This is a schematic diagram of the three-dimensional structure of an embodiment of the circulating water inlet of the utility model;
[0034] Figure 10 This is a schematic top view of the structure of an embodiment of the circulating water inlet of the utility model;
[0035] Figure 11 This is a schematic cross-sectional view of an embodiment of the functional water tank of the utility model.
[0036] Reference numerals in the above drawings:
[0037] 100, refrigeration liner; 101, top of refrigeration liner; 102, bottom of refrigeration liner; 103, first side wall;
[0038] 110. First water inlet; 111. Bend;
[0039] 120, first water outlet;
[0040] 130, exhaust port;
[0041] 140. Circulating water inlet; 141. One end of the circulating water inlet; 142. The other end of the circulating water inlet;
[0042] 200. Water retaining structure;
[0043] 300, refrigeration unit; 310, heat exchange tube;
[0044] 400, functional water tank;
[0045] 410, second water inlet;
[0046] 420, second water outlet;
[0047] 430. Air intake. DETAILED DESCRIPTION
[0048] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0049] Implementation Method 1
[0050] Please refer to Figures 1 to 11 As shown, a water supply component is provided in an embodiment of the present invention, which includes a refrigeration liner 100 for containing water, and a first water inlet 110, a first water outlet 120 and an exhaust port 130 arranged on the refrigeration liner 100. The first water inlet 110 and the first water outlet 120 are both arranged at the bottom 102 of the refrigeration liner, one end of the first water inlet 110 is placed on the outside of the refrigeration liner 100, and the other end of the first water inlet 110 is extended into the refrigeration liner 100, one end of the first water outlet 120 is placed on the outside of the refrigeration liner 100, and the other end of the first water outlet 120 is connected to the bottom inner wall of the refrigeration liner 100.
[0051] Overall, the water supply assembly provides a first water inlet 110 and a first water outlet 120 at the bottom 102 of the refrigeration liner. Water can be added to the refrigeration liner 100 through the first water inlet 110, while the air in the refrigeration liner 100 is discharged through the exhaust port 130, so that the refrigeration liner 100 can be filled with water, thereby increasing the effective volume of the refrigeration liner 100. Furthermore, by providing the first water outlet 120 at the bottom 102 of the refrigeration liner, the water in the refrigeration liner 100 can be used up or emptied through the first water outlet 120, preventing water and impurities from remaining in the refrigeration liner 100, thereby improving the performance of the refrigeration liner 100.
[0052] Further, such as Figure 2 In the embodiment shown, by arranging both the first water inlet 110 and the first water outlet 120 at the bottom 102 of the refrigeration liner, the first water inlet 110 and the first water outlet 120 are distributed on the same side of the refrigeration liner 100, thereby reducing the manufacturing difficulty of the refrigeration liner 100 and improving the manufacturing efficiency.
[0053] Furthermore, by arranging the first water inlet 110 and the first water outlet 120 on the same side of the refrigeration liner 100, the design and layout of the external connecting pipes can be simplified, unnecessary bends can be reduced, and installation difficulty can be reduced, installation efficiency can be improved, and the overall structure can be more concise and compact, thereby helping to improve integration. Furthermore, by arranging the first water inlet 110 and the first water outlet 120 on the same side of the refrigeration liner 100, daily inspection and maintenance can be facilitated, thereby improving maintenance efficiency.
[0054] In the embodiment of the present invention, the designer can adjust the specific structure of the first water inlet 110 and the first water outlet 120 according to the use requirements, and no specific limitation is made here. Preferably, the first water inlet 110 includes a first pipe body, and the first water outlet 120 includes a second pipe body.
[0055] In the embodiment of the present invention, the designer can adjust the shape and structure of the bottom 102 of the refrigeration liner according to the use requirements, and no specific limitation is imposed here.
[0056] Preferably, Figure 3 In the embodiment shown, the bottom 102 of the refrigeration liner is horizontal, so that after the other end of the first water outlet 120 is connected to the bottom inner wall of the refrigeration liner 100, the first water outlet 120 can be used to use up or drain the water in the refrigeration liner 100, thereby preventing water and impurities from remaining in the refrigeration liner 100.
[0057] Of course, in other feasible embodiments, designers can adjust the shape of the bottom 102 of the refrigeration liner according to usage needs, and this is not a specific limitation. For example, the bottom 102 of the refrigeration liner is curved, and the first water outlet 120 is connected to the lowest point of the bottom inner wall of the refrigeration liner 100. The first water outlet 120 can be used to drain or empty the water in the refrigeration liner 100.
[0058] In the embodiment of the present invention, the designer can adjust the location of the exhaust port 130 according to the use requirements, and no specific limitation is imposed here.
[0059] Preferably, Figure 1 In the illustrated embodiment, the exhaust port 130 is provided at the top 101 of the refrigeration liner, and the exhaust port 130 is used to connect the refrigeration liner 100 with the atmosphere.
[0060] By arranging the exhaust port 130 at the top 101 of the refrigeration liner, while water is supplied to the refrigeration liner 100 through the first water inlet 110, gas in the refrigeration liner 100 can be discharged through the exhaust port 130, thereby not affecting the water supply operation. Furthermore, when water in the refrigeration liner 100 is discharged through the first water outlet 120, gas can enter the refrigeration liner 100 through the exhaust port 130, thereby not affecting the water discharge operation.
[0061] More preferably, a filter structure is provided on the exhaust port 130 to prevent external pollutants from entering the refrigeration liner 100. Designers can adjust the specific structure of the filter structure according to the needs of use, for example, the filter structure includes non-woven fabric or filter element, etc., which is not specifically limited here.
[0062] Since the other end of the first water inlet 110 is arranged vertically, the water output into the refrigeration liner 100 through the other end of the first water inlet 110 can easily directly impact the top 101 of the refrigeration liner, thereby causing noise problems and easily causing the refrigeration liner 100 to vibrate, thereby reducing the service life of the refrigeration liner 100.
[0063] In order to solve the above technical problems, in a feasible implementation of the present utility model, as Figure 4 In the illustrated embodiment, the other end of the first water inlet 110 is spaced apart from the top inner wall of the refrigeration liner 100 by a preset distance L, where L is ≥ 3 mm.
[0064] By controlling the distance between the other end of the first water inlet 110 and the inner wall of the top 101 of the refrigeration liner, it is possible to reduce or avoid the water output into the refrigeration liner 100 through the other end of the first water inlet 110 directly impacting the top wall of the refrigeration liner 100, thereby reducing or eliminating the noise and vibration generated by the impact, and improving the use effect of the refrigeration liner 100.
[0065] The designer can adjust the specific size of the preset distance L according to the use requirements, and no specific numerical value is limited here. Preferably, L ≥ 7 mm.
[0066] In another possible embodiment of the present invention, Figure 5 In the illustrated embodiment, the other end of the first water inlet 110 is bent away from the top inner wall of the refrigeration liner 100 .
[0067] By bending the other end of the first water inlet 110 to form a curved pipe portion 111, the other end of the first water inlet 110 can be set away from the top inner wall of the refrigeration liner 100, so that the water output into the refrigeration liner 100 through the other end of the first water inlet 110 cannot directly impact the top 101 of the refrigeration liner, thereby reducing or eliminating the noise and vibration caused by the impact.
[0068] Designers can adjust the bending method of the other end of the first water inlet 110 according to usage needs, and there is no specific limitation here. Preferably, the other end of the first water inlet 110 is bent approximately 180 degrees, so that the other end of the first water inlet 110 is arranged toward the bottom 102 of the refrigeration liner. Therefore, the water output through the other end of the first water inlet 110 can directly fall into the storage liquid of the refrigeration liner 100, reducing the impact on the refrigeration liner 100.
[0069] In another feasible implementation of the present invention, as Figure 6 、 Figure 7 and Figure 8 In the embodiment shown, a water retaining structure 200 is provided between the other end of the first water inlet 110 and the top inner wall of the refrigeration liner 100 . The water retaining structure 200 is used to prevent water output through the other end of the first water inlet 110 from directly impacting the top inner wall of the refrigeration liner 100 .
[0070] By providing the water retaining structure 200, the water outputted into the refrigeration liner 100 through the other end of the first water inlet 110 is reduced or prevented from directly impacting the top 101 of the refrigeration liner, thereby reducing or eliminating the noise and vibration generated by the impact.
[0071] In one possible embodiment, if Figure 6 In the illustrated embodiment, the water retaining structure 200 includes a water retaining member disposed between the other end of the first water inlet 110 and the top inner wall of the refrigeration liner 100 .
[0072] By arranging the water stop between the other end of the first water inlet 110 and the refrigeration liner 100 , the water stop plate can play a water blocking role and reduce the structural impact of the water stop on the first water inlet 110 and the refrigeration liner 100 .
[0073] The designer may adjust the specific structure of the water retaining member according to the use requirements, and no specific limitation is imposed here. Preferably, the water retaining member includes a water retaining plate provided between the other end of the first water inlet 110 and the top inner wall of the refrigeration liner 100 .
[0074] In another possible embodiment, if Figure 7 In the illustrated embodiment, the water retaining structure 200 includes a water retaining member disposed on the other end of the first water inlet 110 .
[0075] By disposing the water retaining member at the other end of the first water inlet 110, the structural stability between the water retaining member and the first water inlet 110 is improved, so that the water retaining member can better play a water retaining role at the other end of the first water inlet 110. In addition, the water retaining member can be installed on the refrigeration liner 100 together with the first water inlet 110, thereby improving the installation efficiency of the water retaining member.
[0076] The designer may design the specific shape of the water retaining member according to the use requirements, and no specific limitation is made here. Preferably, the water retaining member includes a water retaining plate provided on the other end of the first water inlet 110 .
[0077] In another possible embodiment, Figure 8 In the illustrated embodiment, the water retaining structure 200 includes a water retaining member disposed on the top inner wall of the refrigeration liner 100 .
[0078] By arranging the water stopper on the top inner wall of the refrigeration liner 100 , the water stopper can directly block water, thereby protecting the top 101 of the refrigeration liner.
[0079] The designer can adjust the specific shape and structure of the water retaining member according to the use requirements, and no specific limitation is made here. Preferably, the water retaining member includes a water retaining plate or a water retaining layer on the top inner wall of the refrigeration liner 100.
[0080] In the embodiment of the present utility model, as Figure 2 and Figure 3 In the embodiment shown, the first water inlet 110 and the first water outlet 120 are spaced apart and arranged at different positions on the bottom 102 of the refrigeration container. Designers can adjust the specific positions of the first water inlet 110 and the first water outlet 120 according to the needs of use, and no specific limitation is imposed here.
[0081] By spacing the first water inlet 110 and the first water outlet 120 apart, the length of the water path between the first water inlet 110 and the first water outlet 120 is extended, so that the water entering the refrigeration liner 100 through the first water inlet 110 is fully mixed with the water in the refrigeration liner 100 before being output by the first water outlet 120, thereby improving the water outlet effect of the first water outlet 120.
[0082] Further, such as Figure 3 In the illustrated embodiment, the other end of the first water inlet 110 extends vertically in the refrigeration liner 100 , thereby increasing the distance between the other end of the first water inlet 110 and the first water outlet 120 in the height direction, further increasing the length of the water path.
[0083] In the embodiment of the present utility model, as Figure 3 In the illustrated embodiment, the water supply assembly further includes a refrigeration unit 300 , which is used to refrigerate the water in the refrigeration tank 100 .
[0084] The refrigeration unit 300 cools the water in the refrigeration tank 100 to a relatively low temperature. The water temperature can be a user-defined preferred cold water temperature. Furthermore, the water in the refrigeration tank 100 can be transported to the functional water tank 400 via external piping and a pump.
[0085] Designers can adjust the specific structure of the refrigeration unit 300 according to the needs of use, and no specific restrictions are made here. Figure 3 and Figure 11 In the illustrated embodiment, the refrigeration unit 300 includes a heat exchange tube 310, at least a portion of which is coiled and disposed within the refrigeration liner 100. By disposing at least a portion of the heat exchange tube 310 within the refrigeration liner 100, water stored in the refrigeration liner 100 can directly contact and exchange heat with the heat exchange tube 310, thereby improving the heat exchange effect.
[0086] More preferably, the refrigeration unit 300 can be an evaporator, which can take the form of a heat exchange tube 310. The evaporator is used to pass a low-temperature refrigerant, and the low-temperature refrigerant is used to directly or indirectly exchange heat with the water in the refrigeration liner 100, thereby reducing the temperature of the water in the refrigeration liner 100 to reach the preferred cold water temperature set by the user.
[0087] Furthermore, the refrigeration unit 300 may be part of a refrigeration system, which may further include a compressor, a condenser, and an expander connected in sequence, with an evaporator connected between the compressor inlet and the expander outlet. These components are connected together and operated by the compressor to form a refrigeration cycle pipeline, which is filled with refrigerant.
[0088] In the embodiment of the present utility model, as Figure 1 and Figure 9In the embodiment shown, the water supply assembly also includes a circulating water inlet 140 arranged on the refrigeration liner 100. The circulating water inlet 140 is arranged at the top 101 of the refrigeration liner, one end 141 of the circulating water inlet is placed on the outside of the refrigeration liner 100, and the other end 142 of the circulating water inlet is placed in the refrigeration liner 100. The circulating water inlet 140 is used to re-input part of the water output through the first water outlet 120 into the refrigeration liner 100.
[0089] By setting a circulating water inlet 140 on the refrigeration liner 100, part of the water output through the first water outlet 120 is re-input into the refrigeration liner 100 through the circulating water inlet 140, so that the water in the refrigeration liner 100 can circulate, thereby ensuring that the water temperature in the refrigeration liner 100 is more uniform and avoiding the occurrence of local overcooling problems.
[0090] By circulating the water in the refrigeration liner 100, it is also helpful to reduce the deposition of impurities in the water stored in the refrigeration liner 100, thereby reducing the generation of scale and increasing the service life of the refrigeration liner 100. In addition, by circulating the water in the refrigeration liner 100, it is possible to prevent the water from freezing in the refrigeration liner 100, thereby avoiding damage to the refrigeration liner 100.
[0091] In a feasible implementation of the present invention, if Figure 9 and Figure 10 In the embodiment shown, the other end 142 of the circulating water inlet is arranged along a preset direction, and the refrigeration liner 100 includes a first side wall 103 arranged on one side of the circulating water inlet 140. The angle between the preset direction and the first side wall 103 is α, 0°<α<90°.
[0092] By setting the other end 142 of the circulating water inlet along a preset direction, the water flow output through the other end 142 of the circulating water inlet can impact the first side wall 103 more smoothly along a non-vertical direction. By changing the water flow to a non-vertical direction, the generation of noise and turbulence can be reduced, thereby reducing the vibration caused by the water flow, thereby improving the service stability and life of the refrigeration liner 100.
[0093] Moreover, by setting the other end 142 of the circulating water inlet along a preset direction, the water flow output through the other end 142 of the circulating water inlet can stir the water stored in the refrigeration liner 100, thereby accelerating the mixing efficiency of the water stored in the refrigeration liner 100, and further ensuring that the water temperature in the refrigeration liner 100 is more uniform.
[0094] The designer can adjust the specific size of angle α according to the needs of use, and there is no specific limitation here. The angle α is the angle in the horizontal direction, or the angle α is the angle in the height direction, or the angle α is a composite angle in the horizontal direction and the height direction. Preferably, the angle α is the angle in the horizontal direction.
[0095] In another possible embodiment of the present invention, the sidewalls of the refrigeration liner 100 are circularly arranged along the circumference of the refrigeration liner 100 to form a cylindrical shape. By circularly forming the sidewalls of the refrigeration liner 100 into a cylindrical shape, the cylindrical refrigeration liner 100 has no obvious dead corners, thereby promoting uniform water flow within the refrigeration liner 100, reducing turbulence, noise, and vibration, and improving the stability of the refrigeration liner 100. Furthermore, the cylindrical shape of the refrigeration liner 100 helps reduce the accumulation of sediment, thereby improving the water quality stability within the refrigeration liner 100.
[0096] In the embodiment of the present utility model, as Figure 3 and Figure 11 In the embodiment shown, the water supply assembly further includes a functional water tank 400 for containing functional water, and a second water inlet 410 , a second water outlet 420 and an air inlet 430 provided on the functional water tank 400 , and the functional water tank 400 is connected to the refrigeration liner 100 .
[0097] Specifically, the second water inlet 410 and the air inlet 430 are both arranged at the top of the functional water tank 400, and the second water outlet 420 is arranged at the bottom of the functional water tank 400. One end of the second water outlet 420 is placed on the outside of the functional water tank 400, and the other end of the second water outlet 420 is connected to the bottom inner wall of the functional water tank 400.
[0098] By connecting the functional water tank 400 to the refrigeration liner 100, at least part of the wall surface of the functional water tank 400 and the refrigeration liner 100 can be in contact, so that the functional water tank 400 and the refrigeration liner 100 can exchange heat through the contacting walls. The refrigeration liner 100 can maintain the functional water in the functional water tank 400 at a lower temperature and prevent the functional water from heating up, thereby effectively ensuring that the functional water is at a higher concentration.
[0099] The functional water tank 400 and the refrigeration liner 100 are independent tank bodies, and the refrigeration liner 100 and the functional water tank 400 can be connected, so that the water in the refrigeration liner 100 can be transported to the functional water tank 400.
[0100] Specifically, the refrigeration liner 100 can be connected to the functional water tank 400 through an external pipeline. When the functional water tank 400 needs to be replenished with water, the external pipeline can be connected. A pump device is set on the external pipeline to use the pump device to transport the water in the refrigeration liner 100 to the functional water tank 400.
[0101] Functional gas is delivered to the functional water tank 400 through the air inlet 430. The functional water tank 400 receives water and combines it with the functional gas to produce functional water. Functional water includes at least one of the following: hydrogen-rich water, oxygen-rich water, and sparkling water. Corresponding to the various functional waters mentioned above, the functional gas contained in the functional water tank 400 can be hydrogen, oxygen, and carbon dioxide, respectively.
[0102] In the embodiment of the present utility model, as Figure 3 and Figure 11 In the illustrated embodiment, at least a portion of the functional water tank 400 is embedded in the refrigeration liner 100 .
[0103] Specifically, the refrigeration liner 100 is provided with an embedding portion, which comprises a depression on the refrigeration liner 100. The embedding portion can be shaped identically to the functional water tank 400, so that the outer wall of the functional water tank 400 at the embedding portion circumferentially aligns with the sidewall of the refrigeration liner 100. When manufacturing the water supply assembly, the refrigeration liner 100 and the functional water tank 400 only need to be assembled so that at least a portion of the outer wall of the refrigeration liner 100 contacts the outer wall of the functional water tank 400.
[0104] Of course, in other feasible embodiments, the shape of the embedded portion may be different from the shape of the functional water tank 400. It is only necessary to ensure that the outer wall surface of the functional water tank 400 at the embedded portion is at least partially in contact with the side wall of the refrigeration liner 100 in the circumferential direction.
[0105] Implementation Method 2
[0106] Please refer to Figures 1 to 11 As shown, an embodiment of the present invention provides a functional water supply device, which includes the water supply assembly described in embodiment 1. The specific structure, working principle and beneficial effects of the water supply assembly are the same as those in embodiment 1 and will not be repeated here.
[0107] All articles and references disclosed, including patent applications and publications, are incorporated herein by reference for all purposes. The term "essentially consisting of..." describing a combination should include the identified elements, ingredients, parts or steps and other elements, ingredients, parts or steps that do not substantially affect the basic novel features of the combination. The use of the terms "comprising" or "including" to describe the combination of elements, ingredients, parts or steps herein also contemplates an embodiment that is essentially composed of these elements, ingredients, parts or steps. By using the term "may", it is intended to illustrate that any attribute described that "may" include is optional. Multiple elements, ingredients, parts or steps can be provided by a single integrated element, ingredient, part or step. Alternatively, a single integrated element, ingredient, part or step can be divided into separate multiple elements, ingredients, parts or steps. The disclosure "one" or "an" used to describe an element, ingredient, part or step is not intended to exclude other elements, ingredients, parts or steps.
[0108] Each embodiment in this specification is described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the embodiments can be referred to in detail. The above embodiments are only for illustrating the technical concept and features of the utility model. Their purpose is to enable people familiar with this technology to understand the content of the utility model and implement it accordingly. They are not intended to limit the scope of protection of the utility model. Any equivalent changes or modifications made according to the spirit of the utility model should be included in the scope of protection of the utility model.
Claims
1. A water supply component, characterized in that: It includes a refrigeration liner for containing water, and a first water inlet, a first water outlet and an exhaust port arranged on the refrigeration liner, the first water inlet and the first water outlet are both arranged at the bottom of the refrigeration liner, one end of the first water inlet is placed on the outside of the refrigeration liner, the other end of the first water inlet is extended into the refrigeration liner, one end of the first water outlet is placed on the outside of the refrigeration liner, and the other end of the first water outlet is connected to the bottom inner wall of the refrigeration liner.
2. The water supply assembly according to claim 1, characterized in that The exhaust port is arranged at the top of the refrigeration liner, and the exhaust port is used to connect the refrigeration liner with the atmospheric environment.
3. The water supply assembly according to claim 1, characterized in that The other end of the first water inlet is spaced apart from the top inner wall of the refrigeration liner by a preset distance L, where L is ≥ 3 mm.
4. The water supply assembly according to claim 1, wherein: The other end of the first water inlet is bent away from the top inner wall of the refrigeration liner.
5. The water supply assembly according to claim 1, characterized in that: A water retaining structure is provided between the other end of the first water inlet and the top inner wall of the refrigeration liner, and the water retaining structure is used to prevent water output through the other end of the first water inlet from directly impacting the top inner wall of the refrigeration liner.
6. The water supply assembly according to claim 5, characterized in that: The water retaining structure includes a water retaining member arranged between the other end of the first water inlet and the top inner wall of the refrigeration liner; or, the water retaining structure includes a water retaining member arranged on the other end of the first water inlet; or, the water retaining structure includes a water retaining member arranged on the top inner wall of the refrigeration liner.
7. The water supply assembly according to claim 1, wherein: The first water inlet and the first water outlet are arranged at different positions on the bottom of the refrigeration inner container.
8. The water supply assembly according to claim 1, wherein: The water supply assembly further includes a refrigeration unit, which is used to refrigerate the water in the refrigeration tank.
9. The water supply assembly according to claim 8, characterized in that: The refrigeration unit includes a heat exchange tube, at least part of which is coiled and arranged in the refrigeration liner.
10. The water supply assembly according to claim 1, wherein: The water supply assembly also includes a circulating water inlet arranged on the refrigeration liner, the circulating water inlet is arranged at the top of the refrigeration liner, one end of the circulating water inlet is placed on the outside of the refrigeration liner, and the other end of the circulating water inlet is placed in the refrigeration liner, and the circulating water inlet is used to re-input part of the water output through the first water outlet into the refrigeration liner.
11. The water supply assembly according to claim 10, characterized in that: The other end of the circulating water inlet is arranged along a preset direction, and the refrigeration liner includes a first side wall arranged on one side of the circulating water inlet. The angle between the preset direction and the first side wall is α, 0°<α<90°.
12. The water supply assembly according to claim 10, wherein: Along the circumference of the refrigeration liner, the side wall of the refrigeration liner is arranged in a circular manner to form a cylindrical shape.
13. The water supply assembly according to claim 1, wherein: The water supply assembly further includes a functional water tank for containing functional water, and a second water inlet, a second water outlet and an air inlet arranged on the functional water tank, and the functional water tank is connected to the refrigeration liner.
14. The water supply assembly according to claim 13, wherein: The second water inlet and the air inlet are both arranged at the top of the functional water tank, the second water outlet is arranged at the bottom of the functional water tank, one end of the second water outlet is placed on the outside of the functional water tank, and the other end of the second water outlet is connected to the bottom inner wall of the functional water tank.
15. The water supply assembly according to claim 13, wherein: At least part of the functional water tank is embedded in the refrigeration liner.
16. A functional water supply device, characterized in that: Comprising the water supply assembly according to any one of claims 1 to 15.