Embedded water dispenser
By setting air inlets and exhaust ports in the embedded water dispenser and using the fan to drive the air through the heat dissipation unit, the problem that the heat of the embedded water dispenser cannot be discharged efficiently is solved, and the cooling effect is improved.
Patent Information
- Application Number
- CN202421070126.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-15
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-05-15
AI Technical Summary
The heat generated by the embedded water dispenser during cooling cannot be discharged efficiently, resulting in heat remaining between the water dispenser housing and the cabinet, affecting the refrigeration effect.
An embedded water dispenser is designed, which achieves efficient heat dissipation by setting air inlets and exhaust ports on the housing, and using a fan to drive air through the heat dissipation unit and then discharges from the exhaust ports.
Effectively avoid heat residue between the water dispenser and the cabinet, improving the refrigeration effect of the refrigeration system.
Smart Images

Figure CN223068366U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water supply, in particular to an embedded water dispenser. Background Art
[0002] As a device that can provide drinking water for users, the water dispenser has entered people's daily lives. With the improvement of people's needs, the water dispenser not only needs to provide normal temperature water and hot water, but also needs to be able to supply and output cold water to meet the needs of some users for cold water in hot weather. Therefore, the water dispenser needs to be provided with a refrigeration system inside to refrigerate and cool the water stored inside to form cold water. While the refrigeration system is refrigerating, a large amount of heat will inevitably be generated, and this part of the heat needs to be discharged in time to ensure the refrigeration efficiency.
[0003] On the other hand, in order to improve the neatness and beauty of the house, at present, the water dispenser needs to be made into an embedded type and thus embedded in the cabinet, just like the embedded ovens, microwave ovens, dishwashers, etc. in the kitchen or dining room in the prior art. Once the water dispenser is embedded in the cabinet, when the water dispenser is refrigerating, the large amount of heat generated by it cannot be efficiently discharged in time. Although there is a gap between the side wall of the water dispenser and the side wall of the cabinet, when the heat generated by the water dispenser is discharged to the gap between the side wall of the water dispenser and the side wall of the cabinet, although this part of the heat is discharged from the water dispenser, a part of it will remain in the small gap between the side wall of the water dispenser and the side wall of the cabinet and cannot be completely discharged in a short time, which will have an adverse impact on the refrigeration effect of the water dispenser. Summary of the Utility Model
[0004] In order to overcome the above-mentioned defects of the prior art, the technical problem to be solved by the embodiments of the present utility model is to provide an embedded water dispenser, which can effectively discharge the heat inside the water dispenser housing, and at the same time avoid the adverse impact on the water dispenser caused by the heat discharged remaining in the gap between the housing of the water dispenser and the cabinet.
[0005] The specific technical solution of the embodiments of the present utility model is as follows:
[0006] An embedded water dispenser, the embedded water dispenser includes:
[0007] A housing, the housing includes a front panel, and an air inlet and an air outlet are formed on the housing, and the air outlet is located on the front panel;
[0008] A water storage tank;
[0009] A refrigeration system, the refrigeration system is used to cool the water in the water storage tank, and the refrigeration system includes a heat dissipation unit that needs to dissipate heat;
[0010] A blower, which is used to drive air to flow in from the air inlet, pass through the heat dissipation unit, and then be discharged from the air outlet.
[0011] Preferably, the heat dissipation unit includes at least one of the following: a compressor, a condenser, and the heating end of a thermoelectric cooler.
[0012] Preferably, the blower is a centrifugal blower.
[0013] Preferably, the housing further includes a rear panel, a left panel, a right panel, an upper panel, and a lower panel; the air inlet is located at least at one of the following: the front panel, the rear panel, the left panel, the right panel, the upper panel, and the lower panel.
[0014] Preferably, there are at least two air inlets, one air inlet is located on the left panel, and the other air inlet is located on the right panel.
[0015] Preferably, an air duct communicating the air inlet and the air outlet is formed in the housing; at least part of the heat dissipation unit is arranged in the air duct.
[0016] Preferably, the built-in water dispenser includes: an exhaust duct, the air duct includes a first air duct and a second air duct, the second air duct is formed in the exhaust duct, the inlet of the exhaust duct is communicated with the outlet of the blower, and the outlet of the exhaust duct is communicated with the air outlet; the first air duct communicates the air inlet with the inlet of the blower.
[0017] Preferably, the heat dissipation unit is arranged at the inlet of the blower.
[0018] Preferably, the air outlet is located at the upper part of the front panel;
[0019] The housing includes an upper panel and a rear panel; the blower is arranged near the rear panel; the exhaust duct located downstream of the blower is close to the rear panel and extends towards the upper panel, and after turning, it is close to the upper panel and extends towards the front panel to the air outlet.
[0020] Preferably, the built-in water dispenser has a length direction, a height direction, and a thickness direction;
[0021] The built-in water dispenser includes: a water purification module arranged in the housing. In the length direction, the water purification module and the water storage tank are respectively located on the left and right sides of the housing; in the length direction, the exhaust duct extending towards the front panel to the air outlet is located between the water purification module and the water storage tank.
[0022] Preferably, the refrigeration system includes a compressor, and the compressor and the water storage tank are arranged vertically.
[0023] Preferably, the compressor is located below the water storage tank.
[0024] Preferably, the built-in water dispenser has a length direction, a height direction, and a thickness direction;
[0025] The refrigeration system further includes a condenser. In the thickness direction, the blower is located between the compressor and the condenser.
[0026] Preferably, the built-in water dispenser includes:
[0027] A water outlet pump and a water output mechanism. The water outlet pump is used to drive the water in the water storage tank to be output to the water output mechanism. In the length direction, the water outlet pump is arranged between the water purification module and the water storage tank.
[0028] Preferably, the water output mechanism is located in the middle area of the front panel, and the air outlet is located above the water output mechanism.
[0029] The technical solution of the present utility model has the following remarkable beneficial effects:
[0030] When it is necessary to cool the water in the water storage tank to form cold water, the refrigeration system operates to cool the water in the water storage tank. The temperature of the heat dissipation unit of the refrigeration system rises, and heat dissipation is required. At this time, the blower can be turned on, which drives air to flow in from the air inlet, pass through the heat dissipation unit, and then be discharged from the air outlet. When the air flows through the heat dissipation unit, it exchanges heat with the heat dissipation unit to take away the heat of the heat dissipation unit, and the temperature of the air rises. The heated air is directly discharged from the air outlet on the front panel of the built-in water dispenser. Since the front panel of the built-in water dispenser faces an open area, the discharged hot air can quickly diffuse out and will no longer have an adverse impact on the built-in water dispenser. The built-in water dispenser in this application can achieve efficient heat dissipation of the heat dissipation unit, thereby effectively improving the refrigeration effect of the refrigeration system.
[0031] Referring to the following description and the accompanying drawings, specific embodiments of the present utility model are disclosed in detail, indicating the ways in which the principles of the present utility model can be adopted. It should be understood that the embodiments of the present utility model are not limited in scope thereby. Features described and / or illustrated for one embodiment can be used in the same or similar way in one or more other embodiments, combined with the features in other embodiments, or replace the features in other embodiments. Description of the Drawings
[0032] The attached drawings described herein are for illustrative purposes only and are not intended to limit the scope of the disclosure of the present utility model in any way. Additionally, the shapes and proportional dimensions of the various components in the drawings are only schematic and are used to assist in understanding the present utility model, rather than specifically defining the shapes and proportional dimensions of the various components of the present utility model. Those skilled in the art can, under the teachings of the present utility model, select various possible shapes and proportional dimensions according to specific circumstances to implement the present utility model.
[0033] Figure 1 It is an overall external schematic diagram of the built-in water dispenser in the embodiment of the present utility model;
[0034] Figure 2 It is an overall schematic diagram of the built-in water dispenser from another angle in the embodiment of the present utility model;
[0035] Figure 3 It is a schematic diagram of the built-in water dispenser in the embodiment of the present utility model without showing the upper panel;
[0036] Figure 4 It is a schematic diagram of the built-in water dispenser in the embodiment of the present utility model without showing the upper panel, left panel, right panel, and rear panel;
[0037] Figure 5 It is a left view of some components inside the housing of the built-in water dispenser in the embodiment of the present utility model;
[0038] Figure 6 It is a right view of some components inside the housing of the built-in water dispenser in the embodiment of the present utility model.
[0039] Reference numerals of the above attached drawings:
[0040] 1. Housing; 11. Front panel; 12. Rear panel; 13. Left panel; 14. Right panel; 15. Upper panel; 16. Lower panel; 17. Air inlet; 18. Air outlet; 2. Water storage tank; 3. Heat dissipation unit; 31. Compressor; 32. Condenser; 4. Fan; 5. Exhaust duct; 6. Water purification module; 7. Water outlet pump; 8. Water output mechanism. Detailed implementation manners
[0041] Combined with the accompanying drawings and the description of the specific embodiments of the present utility model, the details of the present utility model can be more clearly understood. However, the specific embodiments of the present utility model described herein are only for the purpose of explaining the present utility model and cannot be construed in any way as a limitation of the present utility model. Under the teaching of the present utility model, those skilled in the art can conceive any possible variations based on the present utility model, and all of these should be regarded as belonging to the scope of the present utility model. It should be noted that when an element is referred to as being "disposed on" another element, it can be directly on the other element or there can also be an intermediate element. When an element is considered to be "connected" to another element, it can be directly connected to the other element or there may be an intermediate element at the same time. The terms "mounted", "connected", and "coupled" should be understood in a broad sense. For example, it can be a mechanical connection or an electrical connection, or it can be the communication inside two elements. It can be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms can be understood according to specific circumstances. The terms "vertical", "horizontal", "upper", "lower", "left", "right" and similar expressions used herein are only for the purpose of illustration and do not represent the only embodiment.
[0042] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this application belongs. The terms used in the specification of this application herein are only for the purpose of describing specific embodiments and are not intended to limit this application. The term "and / or" used herein includes any and all combinations of one or more of the related listed items.
[0043] In order to effectively discharge the heat inside the built-in water dispenser and at the same time avoid the discharged heat remaining in the gap between the housing of the water dispenser and the cabinet, which has an adverse impact on the water dispenser, a built-in water dispenser is proposed in an embodiment of this application. Figure 1 It is an overall external view of the built-in water dispenser in an embodiment of the present utility model. Figure 2 It is an overall view of the built-in water dispenser from another angle in an embodiment of the present utility model. Figure 3 It is a schematic view of the built-in water dispenser in an embodiment of the present utility model without showing the upper panel. Figure 4 It is a schematic view of the built-in water dispenser in an embodiment of the present utility model without showing the upper panel, the left panel 13, the right panel 14 and the rear panel 12. Figure 5 It is a left view of some components inside the housing of the built-in water dispenser in an embodiment of the present utility model. Figure 6 It is a right view of some components inside the housing of the built-in water dispenser in an embodiment of the present utility model, as Figures 1 to 6As shown, the built-in water dispenser may include: a housing 1, the housing 1 includes a front panel 11, an air inlet 17 and an air outlet 18 are formed on the housing 1, and the air outlet 18 is located on the front panel 11; a water storage tank 2; a refrigeration system for cooling the water in the water storage tank 2, the refrigeration system includes a heat dissipation unit 3 that needs to dissipate heat; a fan 4 for driving air to flow in from the air inlet 17, pass through the heat dissipation unit 3, and then be discharged from the air outlet 18.
[0044] When it is necessary to cool the water in the water storage tank 2 to form cold water, the refrigeration system operates to cool the water in the water storage tank 2. The temperature of the heat dissipation unit 3 of the refrigeration system rises and heat dissipation is required. At this time, the fan 4 can be turned on, which drives air to flow in from the air inlet 17, pass through the heat dissipation unit 3, and then be discharged from the air outlet 18. When the air flows through the heat dissipation unit 3, it exchanges heat with the heat dissipation unit 3 to take away the heat of the heat dissipation unit 3, and the temperature of the air rises. The air with the increased temperature is directly discharged from the air outlet 18 located on the front panel 11 of the built-in water dispenser. Since the front panel 11 of the built-in water dispenser faces an open area, the discharged hot air can quickly diffuse out and will no longer have an adverse effect on the built-in water dispenser. The built-in water dispenser in this application can achieve efficient heat dissipation of the heat dissipation unit 3, thereby effectively improving the refrigeration effect of the refrigeration system.
[0045] In order to better understand the built-in water dispenser in this application, the following will further explain and illustrate it. The built-in water dispenser in this application can be installed in the corresponding notch of the cabinet in an embedded installation manner. As Figures 1 to 6 shown, the built-in water dispenser may include: a housing 1, a water storage tank 2, a refrigeration system, and a fan 4. Among them, the housing 1 is used to accommodate at least some other components in the built-in water dispenser, such as the water storage tank 2, the refrigeration system, the fan 4, etc. The housing 1 may include a front panel 11. When the built-in water dispenser is installed in the corresponding notch of the cabinet, the front panel 11 is the panel facing the outside, that is, the panel facing the user when the user uses the built-in water dispenser. As feasible, the housing 1 may further include a rear panel 12, a left side panel 13, a right side panel 14, an upper panel 15 and a lower panel 16. The rear panel 12 is the panel on the side opposite to the front panel 11, and the left side panel 13 and the right side panel 14 are the panels on the opposite sides, facing the left and right respectively. The upper panel 15 and the lower panel 16 are the panels on the opposite sides, facing the upper and lower respectively. Of course, the built-in water dispenser may not have the lower panel 16.
[0046] An air inlet 17 and an air outlet 18 may be formed on the housing 1. The air outlet 18 may be located on the front panel 11. Further, a grille structure may be provided at the air inlet 17 and / or the air outlet 18, so as to prevent foreign objects from entering the interior of the housing 1.
[0047] The water storage tank 2 is used to store water. When the user needs the built-in water dispenser to output water, the water in the water storage tank 2 can be output for the user to use. For example, the water in the water storage tank 2 can be output by gravity or in cooperation with the water pump 7. The water storage tank 2 is arranged inside the housing 1. The refrigeration system can be used to cool the water in the water storage tank 2, so that the water stored in the water storage tank 2 becomes cold water with a temperature lower than the normal temperature. In this way, the water storage tank 2 can output cold water for the user to use to meet the user's demand for cold water. When it is necessary to cool the water in the water storage tank 2 to form cold water, the refrigeration system operates to cool the water in the water storage tank 2, and the temperature of the heat dissipation unit 3 of the refrigeration system rises and heat dissipation is required.
[0048] The refrigeration system can adopt different types of systems. In a feasible implementation manner, the refrigeration system can include a traditional compressor 31, a condenser 32, a throttling element, and an evaporator in the prior art. When the refrigeration system performs refrigeration, the evaporator can be used to cool the water in the water storage tank 2, and the generated heat needs to be exchanged with the air through the condenser 32, so as to dissipate heat into the air. The refrigeration system can include a heat dissipation unit 3 that needs to dissipate heat. In the above implementation manner, the heat dissipation unit 3 at least includes one of the following: the compressor 31, the condenser 32. When the compressor 31 operates, components such as the motor and the frequency converter also generate heat, causing its own temperature to rise, so heat dissipation can also be performed.
[0049] In another feasible implementation manner, the refrigeration system can include a thermoelectric cooler. The thermoelectric cooler has a cooling end and a heating end. The cooling end can be used to cool the water in the water storage tank 2, and the heating end needs to exchange heat with the air, so as to dissipate heat into the air to achieve the purpose of cooling. In the above implementation manner, the heat dissipation unit 3 can include the heating end of the thermoelectric cooler. Of course, the refrigeration system can also adopt other types of systems, as long as it can achieve the purpose of refrigeration. In this application, no limitation is imposed on it.
[0050] The fan 4 is used to drive air to flow in from the air inlet 17, pass through the heat dissipation unit 3, and then be discharged from the air outlet 18. When the air flows through the heat dissipation unit 3, it exchanges heat with the heat dissipation unit 3 to take away the heat of the heat dissipation unit 3, and the temperature of the air rises. The air with the increased temperature can be directly discharged from the air outlet 18 located on the front panel 11 of the built-in water dispenser. Since the front panel 11 of the built-in water dispenser faces an open area, the discharged hot air can quickly diffuse, and will no longer have an adverse impact on the built-in water dispenser. The built-in water dispenser in this application can achieve efficient heat dissipation of the heat dissipation unit 3, thereby effectively improving the refrigeration effect of the refrigeration system.
[0051] As feasible, such as Figures 1 to 3As shown, the air inlet 17 is located at least at one of the following: the front panel 11, the rear panel 12, the left panel 13, the right panel 14, the upper panel 15, and the lower panel 16. When the air inlet 17 is located on other panels except the front panel 11, there is a certain gap between this panel and the wall surface of the notch of the cabinet where the built-in water dispenser is installed, so as to ensure that the outside air can flow into this gap and then flow into the housing 1 through the air inlet 17 of the housing 1. Further, the air inlet 17 can be at least two. One air inlet 17 is located on the left panel 13, and the other air inlet 17 is located on the right panel 14. In this way, sufficient air intake can be ensured, and the gap between the panel and the wall surface of the notch of the cabinet can be relatively small.
[0052] A air duct communicating the air inlet 17 and the air outlet 18 can be formed inside the housing 1. At least part of the heat dissipation unit 3 is arranged in the air duct. Similarly, the fan 4 can also be arranged in this air duct or form part of this air duct. Further, the heat dissipation unit 3 can be arranged at a position where the air flow velocity in the air duct is relatively large, so as to improve the heat dissipation effect of the heat dissipation unit 3.
[0053] As Figures 3 to 6 shown, the built-in water dispenser can include: an exhaust duct 5. The air duct includes a first air duct and a second air duct. The second air duct is formed inside the exhaust duct 5. The inlet of the exhaust duct 5 is communicated with the outlet of the fan 4, and the outlet of the exhaust duct 5 is communicated with the air outlet 18. The first air duct communicates the air inlet 17 with the inlet of the fan 4. In the above way, the air discharged from the outlet of the fan 4 can be all directionally transported to the air outlet 18. As a feasible solution, in order to make the built-in water dispenser smaller in volume, the first air duct can be formed by the gaps between the components inside each housing 1. Of course, in other feasible embodiments, the first air duct can also be formed by an air inlet pipe.
[0054] As a feasible solution, as Figure 5 and Figure 6 shown, the heat dissipation unit 3 can be arranged at the inlet of the fan 4. In this way, the air flow velocity when the air flows through the heat dissipation unit 3 can reach a relatively high level and most of the air can flow through the heat dissipation unit 3, so as to greatly improve the heat dissipation effect of the heat dissipation unit 3. In order to ensure that the fan 4 can have a relatively large suction force, the fan 4 can preferably be a centrifugal fan. In this way, it is also convenient to dock the exhaust duct 5 with the outlet on the housing of the fan 4.
[0055] In order to make the exhaust duct 5 as little as possible interfere with other components accommodated inside the housing 1 during the process of connecting to the air outlet 18, as a feasible solution, as Figure 1 shown, the air outlet 18 is located at the upper part of the front panel 11; the fan 4 is arranged near the rear panel 12; as Figures 4 to 6As shown in the figure, the exhaust duct 5 downstream of the fan 4 is close to the rear panel 12 and extends towards the upper panel 15. After turning, it is close to the upper panel 15 and extends towards the front panel 11 to the air outlet 18. In this way, more space can be provided inside the housing 1 of the built-in water dispenser to accommodate other components.
[0056] As Figure 4 shown, the built-in water dispenser has a length direction X, a height direction Y, and a thickness direction Z. Further, the built-in water dispenser may include: a water purification module 6 disposed inside the housing 1. In the length direction, the water purification module 6 and the water storage tank 2 are respectively located on the left and right sides of the housing 1; in the length direction, the exhaust duct 5 extending towards the front panel 11 to the air outlet 18 is located between the water purification module 6 and the water storage tank 2. After that, in the length direction, there is more space between the water purification module 6 and the water storage tank 2 for the exhaust duct 5 to pass through. The water purification module 6 is used to filter the input water to form purified water, which can be input into the water storage tank 2 or directly output as normal temperature water for users to use, such as output through the water output mechanism 8. In this application, no specific type of the water purification module 6 is limited. Generally speaking, the water purification module 6 has a filter element for filtering water, and the filter element can be one or more according to different functions.
[0057] As a feasible solution, as Figure 1 、 Figure 4 and Figure 5 shown, the built-in water dispenser may include: a water outlet pump 7 and a water output mechanism 8. The water output mechanism 8 is a mechanism such as a faucet or a water outlet switch for users to operate, and users can receive water at the water output mechanism 8. The water outlet pump 7 is used to drive the water in the water storage tank 2 to be output to the water output mechanism 8. In the length direction, the water outlet pump 7 is disposed between the water purification module 6 and the water storage tank 2. Similarly, there is more space between the water purification module 6 and the water storage tank 2 to set the water output mechanism 8. The water output mechanism 8 generally can be located in the middle area of the front panel 11. At this time, the air outlet 18 can be located above the water output mechanism 8. Through the above layout, the volume of the built-in water dispenser can be further reduced.
[0058] As a feasible solution, when the refrigeration system includes a compressor 31, as Figure 4 and Figure 6 shown, the compressor 31 and the water storage tank 2 can be arranged vertically, so as to optimize the layout of the components inside the housing 1, thereby making the volume of the built-in water dispenser smaller. Further, the compressor 31 can be located below the water storage tank 2, so that the entire built-in water dispenser is relatively more stable when the compressor 31 is working.
[0059] When the refrigeration system includes a compressor 31, in the thickness direction, as Figure 5 and Figure 6As shown, the blower 4 can be located between the compressor 31 and the condenser 32. The condenser 32 can be arranged close to the rear panel 12. In this way, not only can the condenser 32 be relatively far away from the water storage tank 2, reducing the adverse effect of the heat dissipated by the condenser 32 on the cold water in the water storage tank 2, but also there can be enough space above the condenser 32 to arrange other components. The radial direction of the blower 4 can be arranged parallel to the rear panel 12, and the extending direction of the outlet of the blower 4 is parallel to the rear panel 12, so as to facilitate connection with the exhaust duct 5. The exhaust duct 5 can first extend along the length direction, then after a bend, extend upward along the height direction towards the upper panel 15, and then, after turning, approach the upper panel 15 and extend towards the front panel 11 to the exhaust opening 18. In other feasible embodiments, the condenser 32 can be located between the compressor 31 and the blower 4, and the blower 4 can be arranged close to the rear panel 12. In this way, an openable maintenance opening can be provided at the rear panel 12, which is opposite to the blower 4, so as to facilitate the repair or cleaning of the blower 4.
[0060] All articles and references disclosed, including patent applications and publications, are incorporated herein by reference for various purposes. The term "consisting essentially of" describing a combination should include the identified elements, components, parts or steps and other elements, components, 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 combinations of elements, components, parts or steps herein also contemplates embodiments consisting essentially of these elements, components, parts or steps. By using the term "may" herein, it is intended that any of the attributes described as "may" include are optional. Multiple elements, components, parts or steps can be provided by a single integrated element, component, part or step. Alternatively, a single integrated element, component, part or step can be divided into separate multiple elements, components, parts or steps. The disclosure of "a" or "an" used to describe an element, component, part or step does not mean to exclude other elements, components, parts or steps.
[0061] The above are only several embodiments of the present utility model. Although the embodiments disclosed in the present utility model are as above, the content is only the embodiments adopted for the convenience of understanding the present utility model and is not used to limit the present utility model. Any person skilled in the technical field to which the present utility model belongs can make any modifications and changes in the form and details of the embodiments without departing from the spirit and scope disclosed by the present utility model. However, the scope of patent protection of the present utility model shall still be subject to the scope defined by the appended claims.
Claims
1. An embedded water dispenser, characterized in that, The embedded water dispenser includes: A housing, the housing includes a front panel, an air inlet and an air outlet are formed on the housing, and the air outlet is located on the front panel; A water storage tank; A refrigeration system for cooling the water in the water storage tank, and the refrigeration system includes a heat dissipation unit that needs to dissipate heat; A fan for driving air to flow in from the air inlet, pass through the heat dissipation unit, and then discharge from the air outlet.
2. The embedded water dispenser according to claim 1, wherein The heat dissipation unit includes at least one of the following: a compressor, a condenser, and the heating end of a semiconductor refrigeration chip.
3. The embedded water dispenser according to claim 1, wherein The fan is a centrifugal fan.
4. The embedded water dispenser according to claim 1, wherein The housing further includes a rear panel, a left side panel, a right side panel, an upper panel, and a lower panel; the air inlet is at least located at one of the following: the front panel, the rear panel, the left side panel, the right side panel, the upper panel, and the lower panel.
5. The embedded water dispenser according to claim 4, wherein There are at least two air inlets, one air inlet is located on the left side panel, and the other air inlet is located on the right side panel.
6. The embedded water dispenser according to claim 5, wherein An air duct communicating the air inlet and the air outlet is formed in the housing; at least part of the heat dissipation unit is arranged in the air duct.
7. The embedded water dispenser according to claim 6, characterized in that, The embedded water dispenser includes: an exhaust duct, the air duct includes a first air duct and a second air duct, the second air duct is formed in the exhaust duct, the inlet of the exhaust duct is communicated with the outlet of the fan, and the outlet of the exhaust duct is communicated with the air outlet; the first air duct communicates the air inlet with the inlet of the fan.
8. The embedded water dispenser according to claim 6, wherein The heat dissipation unit is arranged at the inlet of the fan.
9. The embedded water dispenser according to claim 7, wherein, The air outlet is located at the upper part of the front panel; The housing includes an upper panel and a rear panel; the fan is arranged near the rear panel; the exhaust duct located downstream of the fan is close to the rear panel and extends towards the upper panel, and after turning, it is close to the upper panel and extends towards the front panel to the air outlet.
10. The embedded water dispenser according to claim 9, characterized in that, The embedded water dispenser has a length direction, a height direction, and a thickness direction; The embedded water dispenser includes: a water purification module arranged in the housing. In the length direction, the water purification module and the water storage tank are respectively located on the left and right sides of the housing; in the length direction, the exhaust duct extending towards the front panel to the air outlet is located between the water purification module and the water storage tank.
11. The embedded water dispenser according to claim 1, characterized in that, The refrigeration system includes a compressor, and the compressor and the water storage tank are arranged in a vertical arrangement.
12. The embedded water dispenser according to claim 11, characterized in that, The compressor is located below the water storage tank.
13. The embedded water dispenser according to claim 12, wherein, The embedded water dispenser has a length direction, a height direction, and a thickness direction; The refrigeration system further includes a condenser. In the thickness direction, the fan is located between the compressor and the condenser.
14. The built-in water dispenser according to claim 10, characterized in that, The embedded water dispenser includes: A water outlet pump and a water output mechanism. The water outlet pump is used to drive the water in the water storage tank to be output to the water output mechanism. In the length direction, the water outlet pump is arranged between the water purification module and the water storage tank.
15. The embedded water dispenser according to claim 14, wherein, The water output mechanism is located in the middle area of the front panel, and the air outlet is located above the water output mechanism.