Water purifying and drinking machine assembly
By designing heat dissipation parts and thermal conductivity components in the beverage cleaner assembly, the problem of poor heat dissipation in a limited space is solved, and more efficient heat dissipation is achieved, extending service life and improving performance stability.
Patent Information
- Application Number
- CN202510239126.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-06-06
AI Technical Summary
When the beverage purifier is running in a limited space installation cavity, the heat cannot be dissipated in time, resulting in an increase in the internal temperature, accelerating the aging of electronic components, reducing performance stability, and affecting service life.
A beverage purifier assembly is designed, including a housing, a water purification module, a heat dissipation member and a thermal conduction assembly. The heat dissipation member discharges the airflow in the accommodating chamber to the installation chamber, and the thermal conduction assembly leads the airflow in the installation chamber to the front or side of the housing, jointly improving the heat dissipation efficiency.
Through synergistic heat dissipation parts and thermally conductive components, heat in the accommodating chamber and installation chamber is effectively dissipated, internal temperature is controlled, electronic components are slowed down, performance stability is improved, and service life is extended.
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Figure CN120093143A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of household electrical appliances, and in particular to a water purifier assembly. Background Art
[0002] In the related art, water purifiers are often installed in a limited space installation cavity. When in operation, the heating elements, refrigeration system and electronic components of the water purifier will generate heat. Due to the small space of the installation cavity, the heat cannot be dissipated in time, resulting in heat accumulation in the installation cavity and inside the water purifier, which will increase the temperature inside the water purifier, accelerate the aging of electronic components, reduce the performance stability of the water purifier, and thus affect the service life of the water purifier. Therefore, how to improve the heat dissipation efficiency of the water purifier has become a technical problem to be solved in this application. Summary of the invention
[0003] The present application aims to solve at least one of the technical problems existing in the prior art. To this end, one purpose of the present application is to provide a water purifier assembly, which can improve the heat dissipation efficiency of the water purifier and increase the service life of the water purifier.
[0004] According to the embodiment of the present application, the water purifier assembly includes: a shell, the shell is suitable for being embedded in the installation cavity and a accommodating cavity is formed inside the shell; a water purification module, the water purification module is accommodated in the accommodating cavity, the water purification module is provided with a water purification inlet and a water purification outlet, the water purification inlet is connected to a water source, and the water purification module is used to filter the medium passing through the water purification module; a heat sink, the heat sink is arranged on the shell, the heat sink is provided with a heat dissipation outlet open toward the installation cavity, and the heat sink is used to discharge the airflow inside the accommodating cavity to the installation cavity; a heat conduction component, at least a part of the heat conduction component is accommodated in the accommodating cavity, and a heat conduction channel is formed inside the heat conduction component, one end of the heat conduction channel is open toward the installation cavity, and the other end of the heat conduction channel is open toward the front or side of the shell.
[0005] According to the water purifier assembly of the embodiment of the present application, through the synergistic effect of the heat sink and the heat conductive component, the heat sink first discharges the airflow in the accommodating cavity to the mounting cavity, and then transports the airflow in the mounting cavity from the mounting cavity to the front and rear of the shell through the heat conductive component. The two cooperate to quickly dissipate the heat in the accommodating cavity and the mounting cavity to avoid accumulation. The internal temperature of the water purifier is effectively controlled, the aging rate of electronic components is slowed down, the performance stability is improved, and the service life is naturally extended, thereby achieving the effect of improving the heat dissipation efficiency of the water purifier, preventing heat accumulation, and increasing the service life of the water purifier.
[0006] According to some embodiments of the present application, the water purifier assembly further includes: a functional module, which is accommodated in the accommodating cavity, the functional module is connected to the purified water outlet, and the functional module is used to heat, cool and / or make ice for the filtered medium.
[0007] According to the water purifier assembly of some embodiments of the present application, the functional module includes: an evaporator and a condenser, the evaporator and the condenser are connected to each other through a refrigerant flow path, and the heat sink and the condenser are arranged opposite to each other in the front-to-back direction of the shell.
[0008] According to some embodiments of the present application, the water purifier assembly further includes: a water tank, which is arranged between the water purification outlet and the functional module, and is used to store the medium passing through the water purification module and guide it to the functional module; wherein the water tank is located between the functional module and the water purification module, and the water tank and at least part of the water purification module are spaced apart to form a heat-conducting gap, and at least part of the heat-conducting assembly is accommodated in the heat-conducting gap.
[0009] According to some embodiments of the water purifier assembly of the present application, the heat-conducting assembly includes: a heat-conducting shell, the heat-conducting channel is formed inside the heat-conducting shell, and at least a portion of the heat-conducting shell is accommodated in the heat-conducting gap, one end of the heat-conducting shell is provided with a heat-conducting inlet open toward the installation cavity, and the other end of the heat-conducting shell is provided with a heat-conducting outlet open toward the front or side of the shell; a heat-conducting fan, the heat-conducting fan is arranged in the heat-conducting shell, and the heat-conducting fan is arranged in the heat-conducting channel or at the heat-conducting inlet.
[0010] According to some embodiments of the water purifier assembly of the present application, the rear end face of the water tank and the rear side wall of the shell are spaced apart, one end of the heat-conducting shell extends between the rear end face of the water tank and the rear side wall of the shell, and the rear side wall of the shell is provided with a heat-conducting hole connected to the heat-conducting channel.
[0011] According to some embodiments of the water purifier assembly of the present application, the heat-conducting shell includes: a first channel section, the first channel section is arranged between the rear end face of the water tank and the rear side wall of the shell, the first channel section extends parallel to the rear end face of the water tank, and the first channel section is provided with the heat-conducting inlet; a second channel section, the second channel section extends in the front-to-rear direction of the shell, one end of the second channel section is connected to the first channel section, and the other end of the second channel section is provided with a heat-conducting outlet.
[0012] According to some embodiments of the water purifier assembly of the present application, the heat-conducting fan is fixed to the rear side wall of the shell and connected to the heat-conducting inlet of the first channel section, at least a portion of the heat-conducting fan is opposite to the heat-conducting hole in the front-to-back direction of the shell, and the rotating axis of the heat-conducting fan extends in the front-to-back direction of the shell.
[0013] According to the beverage purifier assembly of some embodiments of the present application, the other end of the second channel section is open in the height direction of the shell.
[0014] According to some embodiments of the water purifier assembly of the present application, a water receiving space is formed on the front side of the shell, the other end of the second channel section extends to the top of the water receiving space, and the other end of the second channel section is open at the bottom and discharges air to the water receiving space.
[0015] According to some embodiments of the beverage purifier assembly of the present application, the heat dissipation outlet and one end of the heat conduction channel are formed on the rear end surface of the shell, and one end of the heat conduction channel is higher than the heat dissipation outlet in the height direction of the shell.
[0016] Additional aspects and advantages of the present application will be given in part in the description below, and in part will become apparent from the description below, or will be learned through the practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The above and / or additional aspects and advantages of the present application will become apparent and easily understood from the description of the embodiments in conjunction with the following drawings, in which:
[0018] Figure 1 is a schematic structural diagram of a water purifier assembly according to an embodiment of the present application;
[0019] Figure 2 is a schematic diagram of the internal rear view structure of the water purifier assembly of an embodiment of the present application;
[0020] Figure 3 is a bottom view structural schematic diagram of a water purifier assembly according to an embodiment of the present application;
[0021] Figure 4 is a schematic diagram of the rear view structure of the water purifier assembly of an embodiment of the present application;
[0022] Figure 5 It is a schematic diagram of the internal structure of the water purifier assembly of an embodiment of the present application.
[0023] Reference numerals:
[0024] 100. Drinking machine components;
[0025] 1. Shell; 11. Accommodating cavity; 12. Heat-conducting gap; 13. Heat-conducting hole; 14. Water receiving space;
[0026] 2. Water purification module;
[0027] 3. Heat dissipation element; 31. Heat dissipation outlet;
[0028] 4. Thermal conductive components;
[0029] 41, heat-conducting housing; 411, heat-conducting channel; 412, first channel section; 413, second channel section; 414, heat-conducting inlet; 415, heat-conducting outlet;
[0030] 42. Heat conduction fan;
[0031] 5. Functional module; 51. Evaporator; 52. Condenser;
[0032] 6. Water tank. DETAILED DESCRIPTION
[0033] The embodiments of the present application are described in detail below, and examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application, and cannot be understood as limiting the present application.
[0034] Reference below Figure 1-Figure 5 A beverage purifier assembly 100 according to an embodiment of the present application is described.
[0035] According to the embodiment of the water purifier assembly 100 of the present application, it includes a shell 1, a water purification module 2, a heat sink 3 and a heat conductive component 4. The shell 1 is suitable for being embedded in the installation cavity and a accommodating cavity 11 is formed inside the shell 1. The water purification module 2 is accommodated in the accommodating cavity 11. The water purification module 2 is provided with a water purification inlet and a water purification outlet. The water purification module 2 is used to filter the medium passing through the water purification module 2. The heat sink 3 is arranged on the shell 1. The heat sink 3 is provided with a heat dissipation outlet 31 open toward the installation cavity. The heat sink 3 is used to discharge the airflow inside the accommodating cavity 11 to the installation cavity. At least a part of the heat conductive component 4 is accommodated in the accommodating cavity 11, and a heat conductive channel 411 is formed inside the heat conductive component 4. One end of the heat conductive channel 411 is open toward the installation cavity, and the other end of the heat conductive channel 411 is open toward the front or side of the shell 1.
[0036] In the related art, water purifiers are often installed in a limited space installation cavity. During operation, the heating elements, refrigeration system and electronic components of the water purifier will generate heat. Due to the small installation cavity space, the heat cannot be dissipated in time, resulting in heat accumulation in the installation cavity and inside the water purifier, which will increase the internal temperature of the water purifier, accelerate the aging of electronic components, reduce the performance stability of the water purifier, and thus affect the service life of the water purifier.
[0037] According to the beverage purifier assembly 100 of the embodiment of the present application, the heat sink 3 is installed on the shell 1, and the heat dissipation outlet 31 of the heat sink 3 is open toward the installation cavity. The operation of the beverage purifier assembly 100 causes the temperature in the accommodating cavity 11 to rise, and the heat sink 3 draws out the hot air in the accommodating cavity 11 and discharges it into the installation cavity, thereby realizing the continuous renewal of the air in the accommodating cavity 11 and effectively reducing the temperature in the accommodating cavity 11. The heat conducting component 4 is partially arranged in the accommodating cavity 11, and the heat conducting channel 411 inside the heat conducting component 4 is open toward the installation cavity at one end, and is open toward the front or side of the shell 1 at the other end. The heat conducting component 4 will guide the gas in the installation cavity to the front or side of the shell 1, so that the heat can be dissipated to the external environment, thereby avoiding the accumulation of heat in the installation cavity. Since the other end of the heat conducting channel 411 is connected to the outside world, the temperature of the cold air outside is relatively low. According to the second law of thermodynamics, heat will spontaneously transfer from the high-temperature installation cavity area to the low-temperature external environment.
[0038] The heat sink 3 and the heat conducting component 4 work together. The heat sink 3 is responsible for extracting the hot air in the accommodating chamber 11 to maintain a low-temperature circulation in the chamber. The heat conducting component 4 discharges the gas in the installation chamber to the front or side of the shell 1 to achieve heat dissipation. The two cooperate with each other to ensure the effective discharge of heat inside the water purifier assembly 100, so that the accommodating chamber 11 is maintained at a suitable temperature. Under the heat dissipation mechanism, the aging speed of the water purifier assembly 100 is significantly slowed down, and the performance stability of the water purifier assembly 100 is greatly improved, thereby extending the service life of the water purifier assembly 100, providing a strong guarantee for the stable and reliable operation of the water purifier assembly 100.
[0039] According to some embodiments of the present application, the water purifier assembly 100 further includes a functional module 5, which is accommodated in the accommodating chamber 11 and is connected to the purified water outlet. The functional module 5 is used to heat, cool and / or make ice for the filtered medium.
[0040] The purified water then flows into the functional module 5, which integrates at least one of the functions of heating, cooling and ice making, meets the diverse drinking water needs in different seasons and scenarios, and improves the user experience.
[0041] According to some embodiments of the water purifier assembly 100 of the present application, the functional module 5 includes: an evaporator 51 and a condenser 52, the evaporator 51 and the condenser 52 are connected to each other through a refrigerant flow path, and the heat sink 3 and the condenser 52 are arranged opposite to each other in the front-to-back direction of the shell 1.
[0042] It can be understood that the refrigeration function of the water purifier depends on the refrigeration cycle system formed by the connection of the evaporator 51 and the condenser 52 through the refrigerant flow path. In this cycle, the refrigerant is in a low-pressure state in the evaporator 51, and the refrigerant absorbs the surrounding heat. This heat comes from the water or air flowing near the evaporator 51, thereby realizing the refrigeration or ice making of the water, and the refrigerant is converted from liquid to gas. At this time, the refrigerant carries a large amount of heat absorbed from the inside of the water purifier. The gaseous refrigerant is transported to the condenser 52 through the refrigerant flow path. In the condenser 52, the refrigerant is compressed into a high-pressure state. The high-pressure gaseous refrigerant releases heat to the surrounding environment and recondenses into a liquid state, completing a refrigeration cycle. This cycle repeats itself to achieve continuous refrigeration. The heat sink 3 is arranged opposite to the condenser 52 in the front-to-back direction of the shell 1. When the high-pressure gaseous refrigerant in the condenser 52 releases heat to the surrounding environment, since the heat sink 3 is opposite to the condenser 52, the heat sink 3 3 can capture the heat emitted by the condenser 52 more efficiently and transfer the heat emitted by the condenser 52 to the installation cavity. The heat sink 3 and the condenser 52 are arranged opposite to each other, which is conducive to enhancing the air convection effect. When the condenser 52 dissipates heat, the surrounding air rises due to the heat, and the heat sink 3 quickly draws out the heated air to accelerate the flow of air. After the hot air is drawn out, the surrounding cold air will replenish it, forming continuous air convection, which can improve the heat dissipation efficiency of the condenser 52. Faster air flow means that more heat can be taken away in time.
[0043] According to some embodiments of the present application, the water purifier assembly 100 further includes a water tank 6, which is arranged between the water purification outlet and the functional module 5, and is used to store the medium passing through the water purification module 2 and guide it to the functional module 5; wherein the water tank 6 is located between the functional module 5 and the water purification module 2, and the water tank 6 and at least part of the water purification module 2 are spaced apart to form a thermal conductive gap 12, and at least part of the thermal conductive assembly 4 is accommodated in the thermal conductive gap 12.
[0044] The water storage tank 6 is arranged between the water purification outlet and the functional module 5 to store water filtered by the water purification module 2. When the functional module 5 needs water for heating, cooling or ice making operations, the water storage tank 6 can quickly supply water to ensure the stable operation of the functional module 5. The water stored in the water storage tank 6 can also ensure a continuous supply of water, avoiding the situation of waiting time being too long or insufficient water supply. The water storage tank 6 is arranged between the energy module and the water purification module 2, and is spaced apart from at least part of the water purification module 2 to form a heat conduction gap 12. At least part of the heat conduction component 4 is accommodated in the heat conduction gap 12, making full use of the free space between the components to make the structure more compact. The entire component layout achieves spatial overlap, so that the water purifier component 100 can accommodate multiple functional modules 5 in a limited installation cavity, realize multiple functions such as water purification, water storage, heating, cooling, etc., while ensuring the normal operation of each component, fully demonstrating the significant advantage of the water purifier component 100 in space saving.
[0045] According to some embodiments of the water purifier assembly 100 of the present application, the heat-conducting assembly 4 includes a heat-conducting shell 41 and a heat-conducting fan 42. A heat-conducting channel 411 is formed inside the heat-conducting shell 41, and at least a portion of the heat-conducting shell 41 is accommodated in the heat-conducting gap 12. A heat-conducting inlet 414 open to the installation cavity is provided at one end of the heat-conducting shell 41, and a heat-conducting outlet 415 open to the front or side of the shell 1 is provided at the other end of the heat-conducting shell 41. The heat-conducting fan 42 is disposed in the heat-conducting shell 41, and the heat-conducting fan 42 is disposed in the heat-conducting channel 411 or at the heat-conducting inlet 414.
[0046] A heat-conducting channel 411 is formed inside the heat-conducting shell 41, and at least part of it is contained in the heat-conducting gap 12, making full use of the idle space between the internal components of the water purifier, making the overall structure more compact and reasonable. A heat-conducting inlet 414 is provided at one end of the heat-conducting shell 41, which is open to the installation cavity, and a heat-conducting outlet 415 is provided at the other end, which is open to the front or side of the shell 1, to construct a smooth heat conduction route. When the water purifier is in operation, the heat generated by each component causes the air temperature in the installation cavity to rise, the heat sink 3 conducts the heat to the installation cavity, and the heat-conducting component 4 conducts the heat in the installation cavity to the outside, and the heat-conducting shell 41 can directly absorb the heat emitted by the surrounding components, and then transfer the heat to the air in the heat-conducting channel 411 through heat conduction. The heat-conducting fan 42 is arranged on the heat-conducting shell 41, and the position can be in the heat-conducting channel 411 or at the heat-conducting inlet 414. If it is located at the heat conduction inlet 414, the fan will actively and quickly draw the hot air in the installation cavity into the heat conduction channel 411; if it is in the heat conduction channel 411, the fan will accelerate the flow speed of the air in the channel. The heat conduction fan 42 can greatly enhance the heat dissipation effect without occupying too much extra space. It can give full play to the maximum efficiency in a limited space and effectively push the hot air from the installation cavity through the heat conduction channel 411 to the front or side of the shell 1, thereby greatly improving the heat dissipation efficiency of the water purifier and ensuring the stable operation of the water purifier.
[0047] According to some embodiments of the water purifier assembly 100 of the present application, the rear end face of the water tank 6 is spaced apart from the rear side wall of the shell 1, one end of the heat-conducting shell 41 extends between the rear end face of the water tank 6 and the rear side wall of the shell 1, and the rear side wall of the shell 1 is provided with a heat-conducting hole 13 connected to the heat-conducting channel 411.
[0048] The rear end face of the water tank 6 is spaced apart from the rear side wall of the shell 1, and one end of the heat-conducting shell 41 extends between the rear end face of the water tank 6 and the rear side wall of the shell 1. The heat-conducting shell 41 extends to this area without occupying additional internal space of the water purifier, but fully utilizes the idle gap between the water tank 6 and the rear side wall of the shell 1, further optimizing the spatial layout. Looking at the heat-conducting hole 13 connected to the heat-conducting channel 411 arranged on the rear side wall of the shell 1, when the hot air in the installation cavity enters the heat-conducting channel 411 through the heat-conducting inlet 414 and the heat-conducting hole 13 on the shell 1, under the action of the heat-conducting fan 42, the hot air quickly flows through the heat-conducting channel 411 and is discharged to the outside of the water purifier. The connecting design of the heat-conducting hole 13 and the heat-conducting channel 411 tightly combines the entire heat-conducting component 4 with the shell 1 structure, so that the heat dissipation path inside the water purifier is complete and efficient, and the maximum heat dissipation effect is achieved in a limited space, which effectively ensures the stable operation of the water purifier and extends the service life of the equipment.
[0049] According to some embodiments of the water purifier assembly 100 of the present application, the heat-conducting shell 41 includes a first channel section 412 and a second channel section 413. The first channel section 412 is arranged between the rear end surface of the water tank 6 and the rear side wall of the shell 1. The first channel section 412 extends parallel to the rear end surface of the water tank 6. A heat-conducting inlet 414 is arranged on the first channel section 412. The second channel section 413 extends in the front-to-back direction of the shell 1. One end of the second channel section 413 is connected to the first channel section 412, and the other end of the second channel section 413 is provided with a heat-conducting outlet 415.
[0050] The first channel section 412 is arranged between the rear end face of the water tank 6 and the rear side wall of the shell 1, and extends parallel to the rear end face of the water tank 6. The narrow space inside the water purifier is utilized to make the entire component structure more compact. The second channel section 413 extends in the front-to-back direction of the shell 1, one end is connected to the first channel section 412, and the other end is provided with a heat conduction outlet 415, constructing a coherent heat dissipation path. When the hot air enters the first channel section 412 through the heat conduction inlet 414, it will follow the channel into the second channel section 413. In this process, the hot air flows in the heat conduction channel 411 and is discharged to the outside of the water purifier through the heat conduction outlet 415 of the second channel section 413, avoiding the problem of space waste or heat dissipation obstruction caused by unreasonable heat dissipation channel design, ensuring that heat can be efficiently discharged from the installation cavity, thereby improving the heat dissipation performance of the water purifier and ensuring its stable operation.
[0051] According to some embodiments of the beverage purifier assembly 100 of the present application, the heat-conducting fan 42 is fixed to the rear side wall of the shell 1 and connected to the heat-conducting inlet 414 of the first channel section 412, at least a portion of the heat-conducting fan 42 is opposite to the heat-conducting hole 13 in the front-to-back direction of the shell 1, and the rotating axis of the heat-conducting fan 42 extends in the front-to-back direction of the shell 1.
[0052] The heat-conducting fan 42 is fixed to the rear side wall of the shell 1 and connected to the heat-conducting inlet 414 of the first channel section 412, ensuring that the heat-conducting fan 42 can act on the intake of hot air. When the water purifier generates heat during operation, the heat sink 3 guides the hot air out of the accommodating cavity 11, and the hot air gathers in the installation cavity. The connection between the heat-conducting fan 42 and the heat-conducting inlet 414 can efficiently inhale the hot air into the first channel section 412. The active suction of the heat-conducting fan 42 greatly speeds up the speed at which the hot air enters the heat-conducting channel 411. At the same time, at least part of the heat-conducting fan 42 is directly opposite to the heat-conducting hole 13 in the front-to-back direction of the shell 1, and its rotation axis extends in the front-to-back direction of the shell 1, so that the airflow generated by the heat-conducting fan 42 when rotating can pass through the heat-conducting channel 411 along the front-to-back direction. From the perspective of fluid mechanics, the fan rotation The airflow generated by the rotation can effectively promote the hot air to flow in the first channel section 412 and the second channel section 413. After being sucked in by the fan, the hot air will quickly flow through the first channel section 412 and enter the second channel section 413 under the promotion of the fan, and finally be discharged to the outside of the water purifier. The direction of the airflow is stable and consistent with the direction of the heat dissipation channel, avoiding the problem of reduced heat dissipation efficiency caused by airflow turbulence. Moreover, the direction of the fan's rotating shaft is set to match the direction of the entire heat dissipation airflow, further optimizing the flow of the airflow, so that the hot air can be discharged quickly and efficiently, thereby significantly improving the heat dissipation performance of the water purifier and ensuring that the equipment operates in a stable temperature environment.
[0053] According to the beverage purifier assembly 100 of some embodiments of the present application, the other end of the second channel section 413 is open in the height direction of the shell 1.
[0054] The second channel section 413 is open in the height direction. When the hot air is discharged, it will be mixed and diffused with the surrounding air, and no concentrated hot air will be blown directly, which reduces the interference to the user and makes the user feel more comfortable when moving around the water purifier. In addition, the hot air is dispersed in the height direction, which can more evenly exchange heat with the surrounding air, making the temperature field around the water purifier more evenly distributed, avoiding local overheating, improving the user's comfort when using the water purifier, and optimizing the overall user experience.
[0055] According to some embodiments of the water purifier assembly 100 of the present application, a water receiving space 14 is formed on the front side of the shell 1, the other end of the second channel section 413 extends to the top of the water receiving space 14, and the other end of the second channel section 413 is open at the bottom and discharges air to the water receiving space 14.
[0056] From the perspective of heat dissipation, the water receiving space 14 is relatively open, and the air outlet from the second channel section 413 to the water receiving space 14 can expand the heat dissipation area. After the hot air is discharged from the bottom opening of the second channel section 413, it is fully mixed with the surrounding air in the water receiving space 14 to accelerate the heat exchange process. A larger heat dissipation space and more complete air mixing are conducive to the rapid dissipation of heat, thereby further improving the heat dissipation efficiency of the water purifier and ensuring that the internal components are always at a suitable working temperature.
[0057] From the user experience point of view, hot air is prevented from blowing directly onto the user. When the user receives water in the water receiving space 14, the hot air is discharged downward from the top of the water receiving space 14, and gradually mixes with the surrounding air during the descent process, the temperature is reduced, the wind speed is slowed down, and the user is not blown directly, which greatly improves the user's comfort when receiving water. Moreover, the flow of hot air in the water receiving space 14 helps to maintain the dynamic circulation of air in the space, reduce the accumulation of odor, keep the air in the water receiving area fresh, provide users with a better use environment, and comprehensively improve the user's experience when using the water purifier.
[0058] According to some embodiments of the beverage purifier assembly 100 of the present application, the rear end surface of the shell 1 is provided with a heat dissipation outlet 31 and one end of a heat conduction channel 411 , and one end of the heat conduction channel 411 is higher than the heat dissipation outlet 31 in the height direction of the shell 1 .
[0059] It should be noted that the density of hot air is smaller than that of cold air. After the water purifier generates heat during operation, the hot air will rise due to buoyancy, and the heat dissipation outlet 31 will lead the hot air out of the accommodating cavity 11. One end of the heat conduction channel 411 is set on the rear end face of the shell 1, and is higher than the heat dissipation outlet 31 in the height direction of the shell 1. When the components inside the water purifier are working and generating heat, the hot air gathers in the installation cavity and moves upward. At this time, one end of the heat conduction channel 411 located at a higher position can preferentially and efficiently capture the rising hot air and introduce the hot air into the heat conduction channel 411. The hot air flows in the heat conduction channel 411 to dissipate heat, avoiding the disordered accumulation and poor circulation of hot air in the installation cavity. The heat dissipation efficiency is greatly improved.
[0060] It should be noted that a mounting cavity for accommodating the shell 1 is formed on the furniture piece. The furniture piece may be a cabinet, a wall, etc. The mounting cavity formed on the furniture piece is used to accommodate the shell 1.
[0061] In the description of the present application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the referred device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on the present application.
[0062] In the description of this application, "first feature" or "second feature" may include one or more of the features.
[0063] In the description of the present application, “plurality” means two or more.
[0064] In the description of the present application, a first feature being “on” or “under” a second feature may include that the first and second features are directly in contact with each other, or may include that the first and second features are not in direct contact with each other but are in contact with each other via another feature therebetween.
[0065] In the description of the present application, “above”, “over” and “above” a first feature to a second feature includes the first feature being directly above and obliquely above the second feature, or simply means that the first feature is horizontally higher than the second feature.
[0066] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "illustrative embodiments", "examples", "specific examples", or "some examples" means that the specific features, structures, materials, or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In this specification, the schematic representation of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described may be combined in any one or more embodiments or examples in a suitable manner.
[0067] Although the embodiments of the present application have been shown and described, those skilled in the art will appreciate that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present application, and that the scope of the present application is defined by the claims and their equivalents.
Claims
1. A water purifier assembly, characterized in that: include: A housing, wherein the housing is adapted to be embedded in the installation cavity and an accommodating cavity is formed inside the housing; A water purification module, the water purification module is accommodated in the accommodating chamber, the water purification module is provided with a water purification inlet and a water purification outlet, the water purification inlet is connected to a water source, and the water purification module is used to filter the medium passing through the water purification module; A heat sink, the heat sink is disposed on the housing, the heat sink is provided with a heat dissipation outlet open toward the installation cavity, and the heat sink is used to discharge the airflow inside the accommodating cavity to the installation cavity; A heat-conducting component, at least part of which is accommodated in the accommodating cavity, and a heat-conducting channel is formed inside the heat-conducting component, one end of which is open toward the installation cavity, and the other end of which is open toward the front or side of the shell.
2. A water purifier assembly according to claim 1, characterized in that: Also includes: A functional module is housed in the accommodating chamber, the functional module is communicated with the purified water outlet, and the functional module is used to heat, cool and / or make ice for the filtered medium.
3. A water purifier assembly according to claim 2, characterized in that: The functional modules include: The evaporator and the condenser are connected to each other through a refrigerant flow path, and the heat sink and the condenser are arranged opposite to each other in the front-rear direction of the shell.
4. A water purifier assembly according to claim 2, characterized in that: Also includes: A water storage tank, the water storage tank is arranged between the water purification outlet and the functional module, the water storage tank is used to store the medium passing through the water purification module and guide it to the functional module; in The water storage tank is located between the functional module and the water purification module. The water storage tank and at least a portion of the water purification module are spaced apart to form a heat conduction gap. At least a portion of the heat conduction component is accommodated in the heat conduction gap.
5. A water purifier assembly according to claim 4, characterized in that: The heat conducting component comprises: A heat-conducting housing, wherein the heat-conducting channel is formed inside the heat-conducting housing, and at least a portion of the heat-conducting housing is accommodated in the heat-conducting gap, one end of the heat-conducting housing is provided with a heat-conducting inlet open toward the mounting cavity, and the other end of the heat-conducting housing is provided with a heat-conducting outlet open toward the front or side of the housing; A heat-conducting fan is disposed in the heat-conducting housing, and the heat-conducting fan is disposed in the heat-conducting channel or at the heat-conducting inlet.
6. A water purifier assembly according to claim 5, characterized in that: The rear end surface of the water storage tank is spaced apart from the rear side wall of the shell, one end of the heat-conducting shell extends between the rear end surface of the water storage tank and the rear side wall of the shell, and the rear side wall of the shell is provided with a heat-conducting hole connected to the heat-conducting channel.
7. A water purifier assembly according to claim 6, characterized in that: The heat-conducting housing comprises: A first channel section, the first channel section is arranged between the rear end surface of the water storage tank and the rear side wall of the shell, the first channel section extends parallel to the rear end surface of the water storage tank, and the first channel section is provided with the heat conduction inlet; The second channel section extends in the front-rear direction of the shell, one end of the second channel section is connected with the first channel section, and the other end of the second channel section is provided with a heat conduction outlet.
8. A water purifier assembly according to claim 7, characterized in that: The heat-conducting fan is fixed to the rear side wall of the shell and connected to the heat-conducting inlet of the first channel section. At least a portion of the heat-conducting fan is opposite to the heat-conducting hole in the front-to-back direction of the shell, and the rotating axis of the heat-conducting fan extends in the front-to-back direction of the shell.
9. A beverage purifier assembly according to claim 7, characterized in that: The other end of the second channel section is open in the height direction of the housing.
10. A beverage purifier assembly according to claim 9, characterized in that: A water receiving space is formed on the front side of the shell, the other end of the second channel section extends to the top of the water receiving space, and the other end of the second channel section has an open bottom and discharges air to the water receiving space.
11. A beverage purifier assembly according to claim 1, characterized in that: The heat dissipation outlet and one end of the heat conduction channel are formed on the rear end surface of the shell, and the one end of the heat conduction channel is higher than the heat dissipation outlet in the height direction of the shell.