Embedded water purifier
By rationally arranging the room temperature water, hot water, and cold water components of the water purifier, and equipping it with heat dissipation components and centrifugal fans, the performance degradation and space waste caused by heat accumulation in embedded water purifiers are solved, achieving higher space utilization and heat conversion efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2026-03-24
AI Technical Summary
Existing built-in water purifiers suffer from heat buildup due to their compact structure, which affects component performance and lifespan, and also results in low space utilization.
The room temperature water unit, hot water unit, and cold water unit are arranged in a reasonable manner, combined with heat dissipation components, and a centrifugal fan is used to expel high temperature gas through the heat dissipation channel to avoid heat accumulation.
It improves space utilization, extends the performance and lifespan of components, and enhances heat conversion efficiency.
Smart Images

Figure CN224023364U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of pure drinking water equipment, especially relates to a built-in water purifier. BACKGROUND
[0002] The built-in water purifier can be embedded into a wall, a kitchen counter or a cabinet, can effectively save space, and appearance is beautiful, meets the design concept of modern building and home.
[0003] The existing built-in water purifier needs to add a partition and a water storage tank inside, and the whole drinking water machine is divided into two areas, in addition, a corresponding tank body needs to be added in each functional component, which undoubtedly occupies a certain space, and due to the inability to integrate parts, the loose connection structure leads to low space utilization of the drinking water machine, and the space cannot be effectively saved.
[0004] In view of the above defects, the prior art arranges the parts reasonably to make the overall structure compact and improve the space utilization, but due to the compact structure, a large amount of heat is generated during the operation of the parts, the internal heat continues to rise, although a part of the heat can be slowly discharged through the shell, but most of the heat will remain inside, thereby affecting the use performance and service life of the parts. UTILITY MODEL CONTENTS
[0005] The utility model discloses a kind of built-in water purifiers, it is by the normal temperature water component, hot water component and cold water component Reasonably set, make overall structure compact, improve the space utilization, and by being arranged in heat dissipation component, effectively the high-temperature gas in inside is discharged outside through heat dissipation hole, avoid the problem that heat accumulation affects the use performance and service life of each component, also can improve heat utilization and heat conversion rate.
[0006] To solve the above technical problems, the utility model solves by the following technical schemes:
[0007] A kind of built-in water purifier, including shell, normal temperature water component and cold water component are respectively equipped with in the shell two ends, the normal temperature water component side is connected with hot water component, the shell outer end is connected with water outlet component, the output end of normal temperature water component, hot water component and cold water component is connected with water outlet component, heat dissipation component is connected in the shell, the heat dissipation component includes the heat dissipation passage with the one end of water outlet component connection, centrifugal fan is equipped in the heat dissipation passage inner end with electrically connected electric control part.
[0008] Preferably, one end of the heat dissipation channel connected to the centrifugal fan extends into the housing, and the other end of the heat dissipation channel is connected to the outside of the water outlet assembly, with the air inlet of the centrifugal fan located at the top of the housing.
[0009] More preferably, the heat dissipation channel includes a bottom shell and a cover plate. The bottom shell has an inclined air guide groove in the middle and an air outlet duct that communicates with and is connected to the air guide groove at the lower end of the bottom shell. The bottom shell has fastening holes on both sides and the cover plate has fastening teeth on both sides that engage with the fastening holes.
[0010] More preferably, the water outlet assembly includes a recessed water outlet frame, a water outlet head in the middle of the water outlet frame, a room temperature water outlet, a hot water outlet and a cold water outlet connected to the water outlet head, an air outlet in the middle of the water outlet frame connected to the air outlet duct, and a display screen and a switch on the upper part of the water outlet frame.
[0011] More preferably, the ambient temperature water assembly includes a water circuit component connected to the raw water at one end, a filter element connected to the other end of the water circuit component, an ambient temperature water tank located below the filter element, a booster pump and an electronic control component connected to the side of the filter element, an adapter located at the top of the filter element, and an ambient temperature water pump connected to the ambient temperature water tank located below the electronic control component.
[0012] More preferably, the hot water assembly includes an instant heating element connected to one side of the electrical control component, with one end communicating with the water circuit component and the other end connected to the water outlet assembly.
[0013] More preferably, the cold water assembly includes a support frame, a cold tank is provided at the upper end of the support frame, a compressor is provided at the lower end of the support frame, a condenser is provided at the rear end of the support frame, one end of the condenser is connected to the cold tank and the other end is connected to the compressor, and a cold water pump is also provided on the support frame, one end of which is connected to the cold tank and the other end of which is connected to the water outlet assembly.
[0014] More preferably, an inner shell is provided between the water passage component and the water outlet frame inside the housing. The upper part of the inner shell is provided with a filter element mounting cavity, and the lower part of the inner shell is provided with a room temperature water tank mounting cavity. An mounting plate is connected between the filter element mounting cavity and the room temperature water tank mounting cavity. The booster pump is located on the rear side of the mounting plate, and the electrical control components, the room temperature water pump, and the instant heating element are all located on the front side of the mounting plate.
[0015] The beneficial effects of this utility model are as follows: It includes a housing, with a room temperature water component and a cold water component respectively located at both ends inside the housing. A hot water component is connected to one side of the room temperature water component. A water outlet component is connected to the outer end of the housing. The output ends of the room temperature water component, hot water component, and cold water component are connected to the water outlet component. A heat dissipation component is connected inside the housing. The heat dissipation component includes a heat dissipation channel connected at one end to the water outlet component. A centrifugal fan electrically connected to the electrical control components is located at the inner end of the heat dissipation channel. By rationally arranging the room temperature water component, hot water component, and cold water component, the overall structure is compact, improving space utilization. Furthermore, by setting a heat dissipation component inside, the high-temperature gas inside can be effectively discharged to the outside through heat dissipation holes, avoiding heat accumulation that affects the performance and lifespan of various components, and also improving the heat conversion rate. Attached Figure Description
[0016] Fig. 1 This is a schematic diagram of the structure of this utility model.
[0017] Fig. 2 This is an exploded structural diagram of the present invention.
[0018] Fig. 3 This is a schematic diagram of the heat dissipation component of this utility model. Detailed Implementation
[0019] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments.
[0020] like Figs. 1-3 As shown, an embedded water purifier includes a housing 1. A room temperature water component 2 and a cold water component 3 are respectively located at both ends inside the housing 1. A hot water component 4 is connected to one side of the room temperature water component 2. A water outlet component 5 is connected to the outer end of the housing 1. The output ends of the room temperature water component 2, hot water component 4, and cold water component 3 are connected to the water outlet component 5. A heat dissipation component 6 is connected inside the housing 1. The heat dissipation component 6 includes a heat dissipation channel 61 connected at one end to the water outlet component 5. A centrifugal fan 62 electrically connected to an electronic control component 25 is located inside the heat dissipation channel 61. By rationally arranging the room temperature water component 2, hot water component 4, and cold water component 3, the overall structure is compact, improving space utilization. Furthermore, by setting the heat dissipation component 6 internally, high-temperature gases inside can be effectively discharged to the outside through heat dissipation holes, avoiding heat accumulation that could affect the performance and lifespan of various components, and also improving heat conversion efficiency.
[0021] In this embodiment, one end of the heat dissipation channel 61 connected to the centrifugal fan 62 extends into the housing 1, and the other end of the heat dissipation channel 61 is connected to the outside of the water outlet assembly 5. The air inlet 63 of the centrifugal fan 62 is located at the top of the housing 1. The water outlet assembly 5 includes a recessed water outlet frame 51, with a water outlet head 52 in the middle of the water outlet frame 51. The water outlet head 52 is connected to a room temperature water outlet, a hot water outlet, and a cold water outlet. The water outlet frame 51 also has an air outlet 53 connected to the air outlet duct 67 in the middle. The upper part of the water outlet frame 51 has a display screen 54 and a switch electrically connected to the electrical control component 25. The heat dissipation channel 61 includes a bottom shell 64 and a cover plate 65. The bottom shell 64 has an inclined air guide groove 66 in the middle, and the lower end of the bottom shell 64 has a connection to the... The air outlet 67 is connected to the air guide 66. The bottom shell 64 is provided with fastening holes 68 on both sides. The cover plate 65 is provided with fastening teeth 69 on both sides that engage with the fastening holes 68. The fastening teeth 69 and the fastening holes 68 are connected to facilitate the installation and removal of the cover plate 65 and the bottom shell 64. During heat dissipation, the centrifugal fan 62 draws in the heat inside the shell 1 and sends it into the heat dissipation channel 61. Then, it is quickly guided into the air outlet 67 through the air guide 66 and output from the air outlet 53. This allows the heat inside the shell 1 to be dissipated in time. In addition, since the air inlet 63 of the centrifugal fan 62 is located at the top of the shell 1, after the heat inside the shell 1 is dissipated, the air inlet 63 of the centrifugal fan 62 can draw in ambient temperature air from outside the shell 1 for conversion, thereby improving the heat conversion rate.
[0022] In this embodiment, the ambient temperature water assembly 2 includes a water circuit component 21 connected to the raw water at one end, a filter element 22 connected to the other end of the water circuit component 21, an ambient temperature water tank 23 located below the filter element 22, a booster pump 24 and an electronic control component 25 connected to the side of the filter element 22, an adapter 26 located at the top of the filter element 22, and an ambient temperature water pump 27 connected to the ambient temperature water tank 23 located below the electronic control component 25. When producing ambient temperature water, the raw water is pumped into the water circuit component 21, and then sent into the filter element 22 for filtration by the booster pump 24. After flowing back into the water circuit component 21, the ambient temperature water solenoid valve is opened to send the ambient temperature water to the outlet head 52 and output it through the ambient temperature water outlet.
[0023] In this embodiment, the hot water assembly 4 includes an instant heating element 41 connected to one side of the electronic control component 25, with one end communicating with the water circuit component 21 and the other end connected to the water outlet assembly 5. When producing hot water, the room temperature water in the room temperature water tank 23 is transported to the instant heating element 41 for heating by the room temperature water pump 27, and then sent to the water circuit component 21. The hot water solenoid valve is opened to send the hot water to the hot water outlet of the water outlet head 52 for output.
[0024] In this embodiment, the cold water assembly 3 includes a support frame, a cold tank 31 is provided at the upper end of the support frame, a compressor 32 is provided below the support frame, and a condenser 33 is provided at the rear end of the support frame. One end of the condenser 33 is connected to the cold tank 31 and the other end is connected to the compressor 32. A cold water pump 34 is also provided on the support frame, with one end connected to the cold tank 31 and the other end connected to the water outlet assembly 5. When cooling water, the cold water pump 34 delivers the room temperature water in the room temperature water tank 23 to the cold tank 31. Then, the compressor 32 and the condenser 33 cool the room temperature water into cold water, which is then sent to the water circuit assembly 21. The cold water solenoid valve is opened to send the cold water to the cold water outlet of the water outlet head 52 for output.
[0025] In this embodiment, an inner shell 11 is provided between the water passage component 21 and the water outlet frame 51 inside the housing 1. The upper part of the inner shell 11 is provided with a filter element 22 mounting cavity, and the lower part of the inner shell 11 is provided with a room temperature water tank 23 mounting cavity. A mounting plate is connected between the filter element 22 mounting cavity and the room temperature water tank 23 mounting cavity. The booster pump 24 is located on the rear side of the mounting plate, and the electrical control component 25, the room temperature water pump 27, and the instant heating element 41 are all located on the front side of the mounting plate. By installing the filter element 22 in the filter element 22 mounting cavity, and the slide rail provided in the filter element 22 mounting cavity, the filter element 22 is slidably installed in the front. By installing the filter element 22, the room temperature water tank 23, the booster pump 24, the electrical control component 25, the room temperature water pump 27, and the instant heating element 41 all in the inner shell 11, the installation is reasonable and the structure is compact.
[0026] The above description is only a preferred embodiment of this utility model. For those skilled in the art, there will be changes in the specific implementation method and application scope based on the idea of this utility model. The content of this specification should not be construed as a limitation of this utility model.
Claims
1. An embedded water purifier, characterized in that: The device includes a housing, with a room temperature water component and a cold water component respectively located at both ends inside the housing. A hot water component is connected to one side of the room temperature water component. A water outlet component is connected to the outer end of the housing. The output ends of the room temperature water component, the hot water component, and the cold water component are connected to the water outlet component. A heat dissipation component is connected inside the housing. The heat dissipation component includes a heat dissipation channel with one end connected to the water outlet component. A centrifugal fan electrically connected to an electrical control component is located at the inner end of the heat dissipation channel.
2. The embedded water purifier according to claim 1, characterized in that: One end of the heat dissipation channel connected to the centrifugal fan extends into the housing, and the other end of the heat dissipation channel is connected to the outside of the water outlet assembly. The air inlet of the centrifugal fan is located at the top of the housing.
3. An embedded water purifier according to claim 2, characterized in that: The heat dissipation channel includes a bottom shell and a cover plate. The bottom shell has an inclined air guide groove in the middle and an air outlet duct that communicates with and is connected to the air guide groove at the lower end of the bottom shell. The bottom shell has fastening holes on both sides and the cover plate has fastening teeth on both sides that engage with the fastening holes.
4. An embedded water purifier according to claim 3, characterized in that: The water outlet assembly includes a recessed water outlet frame, a water outlet head in the middle of the water outlet frame, a normal temperature water outlet, a hot water outlet and a cold water outlet connected to the water outlet head, an air outlet in the middle of the water outlet frame connected to the air outlet duct, and a display screen and a switch on the upper part of the water outlet frame.
5. An embedded water purifier according to claim 4, characterized in that: The ambient temperature water assembly includes a water circuit component connected to the raw water at one end, a filter element connected to the other end of the water circuit component, an ambient temperature water tank located below the filter element, a booster pump and an electrical control component connected to the side of the filter element, an adapter located at the top of the filter element, and an ambient temperature water pump connected to the ambient temperature water tank located below the electrical control component.
6. An embedded water purifier according to claim 5, characterized in that: The hot water assembly includes an instant heating element connected to one side of the electrical control component, with one end communicating with the water circuit component and the other end connected to the water outlet assembly.
7. An embedded water purifier according to claim 6, characterized in that: The chilled water assembly includes a support frame, a chilled tank is provided at the upper end of the support frame, a compressor is provided below the support frame, a condenser is provided at the rear end of the support frame, one end of the condenser is connected to the chilled tank and the other end is connected to the compressor, and a chilled water pump is also provided on the support frame, one end of which is connected to the chilled tank and the other end of which is connected to the water outlet assembly.
8. An embedded water purifier according to claim 6, characterized in that: An inner shell is provided between the water passage components and the water outlet frame inside the housing. The upper part of the inner shell is provided with a filter element mounting cavity, and the lower part of the inner shell is provided with a room temperature water tank mounting cavity. A mounting plate is connected between the filter element mounting cavity and the room temperature water tank mounting cavity. The booster pump is located on the rear side of the mounting plate, and the electrical control components, the room temperature water pump, and the instant heating element are all located on the front side of the mounting plate.