A novel water assisted cooling air conditioner

CN224694665UActive Publication Date: 2026-08-28GUANGDONG ICE ENERGY TECH CO LTD
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Patent Information

Application Number
CN202522072589.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-25
Publication Date
2026-08-28
Estimated Expiration
2035-09-25

AI Technical Summary

Technical Problem

[0003]然而将水直接喷淋的方式,水珠的表面积有限,蒸发效率有限,不能很大程度地利用水的蒸发潜热,从而不能对冷凝器整体进行有效降温,导致降温效果不好,并且喷淋时水珠高速撞击散热器会产生噪音,降低了使用体验

Benefits of technology

[0021]综上所述,本实用新型的新型水辅助冷却空调器,不仅能够对散热器实现有效降温,还能够避免产生噪音,提高用户使用体验。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a novel water auxiliary cooling air conditioner, include: shell body, refrigerating plant and auxiliary cooling device, and refrigerating plant and auxiliary cooling device are housed in the shell body, and refrigerating plant includes: cold air subassembly, hot air subassembly and compressor, and cold air subassembly includes: First volute, evaporimeter and condensing fan, hot air subassembly includes: Second volute, radiator and heat dissipation fan, and radiator is connected with evaporimeter through compressor, auxiliary cooling device includes water distribution subassembly and water absorption body, and water distribution subassembly is used to provide the liquid required for water absorption body to evaporate, and water absorption body cooperates with radiator. The utility model discloses a novel water auxiliary cooling air conditioner, not only can realize effective cooling to radiator, can also avoid producing noise, improve user experience.
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Description

Technical Field

[0001] This utility model relates to the field of air conditioner technology, and in particular to a novel water-assisted cooling air conditioner. Background Technology

[0002] Traditional portable air conditioners have an evaporator and a condenser. When the refrigerant condenses in the condenser, it releases a large amount of heat, causing the condenser temperature to rise and heating the surrounding air. Because the air heated by the condenser is quite hot, an exhaust duct is needed to expel the hot air outdoors. However, this duct runs through walls or windows, restricting the air conditioner's mobility. Furthermore, when the condenser temperature is too high, it hinders energy efficiency, reduces the lifespan of the air conditioner, and may even cause it to shut down. To solve this problem, existing portable air conditioners typically cool the condenser by spraying water onto it, utilizing the heat absorption property of water evaporation.

[0003] However, spraying water directly results in limited surface area and evaporation efficiency of the water droplets, which cannot fully utilize the latent heat of vaporization of water. Consequently, it cannot effectively cool the condenser as a whole, leading to poor cooling performance. Furthermore, the high-speed impact of water droplets on the radiator during spraying generates noise, reducing the user experience.

[0004] Therefore, how to design a new type of water-assisted cooling air conditioner that can not only effectively cool the radiator but also avoid noise and improve the user experience is a technical problem that designers and developers need to solve. Utility Model Content

[0005] In view of the shortcomings of the existing technology, this utility model provides a new type of water-assisted cooling air conditioner, which can not only effectively cool the radiator, but also avoid noise generation and improve the user experience.

[0006] The objective of this utility model is achieved through the following technical solution:

[0007] A novel water-assisted cooling air conditioner includes: a housing, a refrigeration unit, and an auxiliary cooling unit, wherein the refrigeration unit and the auxiliary cooling unit are housed within the housing, and the refrigeration unit includes: a cold air assembly, a hot air assembly, and a compressor.

[0008] The cooling air assembly includes: a first volute, an evaporator, and a condenser fan. The first volute has a first air inlet and a first air outlet. The condenser fan is disposed inside the first volute and is used to drive air flow. The evaporator is disposed at the first air inlet or the first air outlet.

[0009] The hot air assembly includes: a second volute, a radiator, and a cooling fan. The second volute has a second air inlet and a second air outlet. The cooling fan is disposed inside the second volute and is used to drive airflow. The radiator is disposed at the second air inlet or the second air outlet. The radiator is connected to the evaporator through the compressor.

[0010] The auxiliary cooling device includes a water distribution component and a water absorption body. The water distribution component is used to provide the water absorption body with the liquid required for evaporation. The water absorption body cooperates with the radiator.

[0011] In one embodiment, there are multiple radiators, with a gap between two adjacent radiators, and the water-absorbing body is disposed between two adjacent radiators;

[0012] The absorbent is made of a material with internal capillary channels or a loose, porous material.

[0013] In one embodiment, the water distribution assembly includes a water support tank and a water pump, the water pump being used to periodically replenish liquid into the water support tank, and the water suction body extending at least partially into the water support tank.

[0014] In one embodiment, the water distribution assembly includes a water spray element and a water pump, the water pump being connected to the water spray element and providing liquid sprayed onto the water absorber.

[0015] In one embodiment, the water distribution assembly includes a water collection tank and a water pump. The water collection tank is located below the evaporator and is used to collect condensate generated by the evaporator during the refrigeration process. The water pump is used to transfer the condensate to the water suction body.

[0016] In one embodiment, the radiator includes a heat dissipation tube and a plurality of fins, the plurality of fins being sleeved on the heat dissipation tube, and the water absorber being disposed between two adjacent fins.

[0017] In one embodiment, the auxiliary cooling device includes a water tank, and the water distribution assembly includes a water receiving tray located below the evaporator. The water receiving tray is used to receive the condensate generated by the evaporator during the cooling process and to guide the condensate into the water tank.

[0018] In one embodiment, the absorbent body includes a frame with a snap-fit ​​structure, and the absorbent body is detachably disposed between two adjacent radiators via the snap-fit ​​structure.

[0019] In one embodiment, the outer casing has a cold air inlet corresponding to the first air inlet, a hot air inlet corresponding to the second air inlet, a cold air outlet corresponding to the first air outlet, and a hot air outlet corresponding to the second air outlet.

[0020] In one embodiment, a control component is included, which includes a control motherboard and an operation panel. The control motherboard is electrically connected to the cooling device, the auxiliary cooling device, and the operation panel, respectively. The operation panel is disposed on the outer casing.

[0021] In summary, the novel water-assisted cooling air conditioner of this invention can not only effectively cool the radiator, but also avoid noise generation and improve the user experience. Attached Figure Description

[0022] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the embodiments will be briefly described below.

[0023] Figure 1 This is a schematic diagram of the structure of the novel water-assisted cooling air conditioner of this utility model;

[0024] Figure 2 for Figure 1 A plan sectional view of the novel water-assisted cooling air conditioner shown;

[0025] Figure 3 for Figure 1 An exploded view of the novel water-assisted cooling air conditioner is shown below;

[0026] Figure 4 for Figure 1 The diagram shows the structure of the new water-assisted cooling air conditioner after removing the outer casing.

[0027] Figure 5 for Figure 1 An exploded view (I) of the new water-assisted cooling air conditioner after removing the outer casing;

[0028] Figure 6 for Figure 1 The exploded view (II) of the new water-assisted cooling air conditioner after removing the outer casing;

[0029] Figure 7 for Figure 1 The diagram shown is a partial exploded view of the novel water-assisted cooling air conditioner.

[0030] Figure 8 This is a schematic diagram of the structure of the radiator and water absorber of this utility model.

[0031] The above figures include the following reference numerals:

[0032] 10. New type of water-assisted cooling air conditioner; 100. Outer casing; 110. Cold air inlet; 120. Hot air inlet; 130. Cold air outlet; 140. Hot air outlet; 150. Casters; 200. Refrigeration unit; 210. Cold air assembly; 211. First volute; 2111. First air inlet; 2112. First air outlet; 212. Evaporator; 213. Condenser fan; 220. Hot air assembly; 221. Second volute; 2211 2212 Second air inlet; 222 Second air outlet; 223 Radiator; 224 Cooling fan; 230 Compressor; 300 Auxiliary cooling device; 310 Water distribution assembly; 311 Water support tank; 312 Water pump; 313 Water spraying component; 314 Water collection tank; 315 Water receiving tray; 320 Water suction body; 330 Water tank; 400 Control assembly; 410 Control main board; 420 Operation panel; 430 Protective housing. Detailed Implementation

[0033] To facilitate understanding of this utility model, a more comprehensive description will be provided below with reference to the accompanying drawings. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification. It should be noted that the structures, proportions, sizes, etc., depicted in the accompanying drawings are merely for illustrative purposes to aid those skilled in the art and are not intended to limit the implementation conditions of this utility model. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in proportions, or adjustments to size, without affecting the effects and objectives achieved by this utility model, should still fall within the scope of the technical content disclosed in this utility model. Furthermore, the terms "upper," "lower," "left," "right," and "middle," etc., used in this specification are merely for clarity of description and are not intended to limit the scope of implementation of this utility model. Changes or adjustments to their relative relationships are also considered within the scope of implementation of this utility model without substantial changes to the technical content.

[0034] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0035] This utility model provides a novel water-assisted cooling air conditioner 10, designed to not only effectively cool the radiator 222 but also avoid noise generation, thereby improving the user experience. Figure 1 and Figure 4As shown, the novel water-assisted cooling air conditioner 10 includes: an outer casing 100, a refrigeration unit 200, and an auxiliary cooling device 300. The refrigeration unit 200 and the auxiliary cooling device 300 are housed within the outer casing 100. The refrigeration unit 200 includes: a cold air assembly 210, a hot air assembly 220, and a compressor 230.

[0036] Among them, such as Figure 2 , Figure 4 , Figure 5 and Figure 6 As shown, the cooling air assembly 210 includes: a first volute 211, an evaporator 212, and a condenser fan 213. The first volute 211 has a first air inlet 2111 and a first air outlet 2112. The condenser fan 213 is disposed inside the first volute 211 and is used to drive airflow. The evaporator 212 is disposed at the first air inlet 2111 or the first air outlet 2112.

[0037] During operation, the evaporator 212 acts as a heat absorption device, absorbing heat from the surrounding air through the evaporation of liquid refrigerant, thereby lowering the ambient air temperature and achieving cooling. Room temperature air, driven by the condenser fan 213, passes through the evaporator 212, forming cold air under the cooling effect of the evaporator 212. This cold air then passes through the first air inlet 2111 and the first air outlet 2112 sequentially before being discharged to the outside. Alternatively, room temperature air, driven by the condenser fan 213, passes through the first air inlet 2111 and the first air outlet 2112 sequentially, and then the room temperature air discharged through the first air outlet 2112 passes through the evaporator 212, forming cold air under the cooling effect of the evaporator 212 before being discharged to the outside.

[0038] The hot air assembly 220 includes: a second volute 221, a radiator 222, and a cooling fan 223. The second volute 221 has a second air inlet 2211 and a second air outlet 2212. The cooling fan 223 is disposed inside the second volute 221 and is used to drive airflow. The radiator 222 is disposed at the second air inlet 2211 or the second air outlet 2212.

[0039] During operation, the radiator 222 acts as a heat dissipation device, releasing internal heat to the outside air through the condensation of gaseous refrigerant, thereby raising the surrounding air temperature and achieving heat dissipation. Room temperature air, driven by the cooling fan 223, passes through the radiator 222, forming hot air under the cooling effect of the radiator 222. This hot air then passes through the second air inlet 2211 and the second air outlet 2212 sequentially before being discharged to the outside. Alternatively, room temperature air, driven by the cooling fan 223, passes through the second air inlet 2211 and the second air outlet 2212 sequentially, and then the room temperature air discharged through the second air outlet 2212 passes through the radiator 222, forming hot air under the cooling effect of the radiator 222 before being discharged to the outside. The radiator 222 is connected to the evaporator 212 via the compressor 230. The compressor 230 provides power for the refrigerant circulation.

[0040] For ease of explanation and understanding, the following description will use the example of setting the evaporator 212 at the first air inlet 2111 and the radiator 222 at the second air inlet 2211.

[0041] like Figure 2 and Figure 4 As shown, the auxiliary cooling device 300 includes a water distribution assembly 310 and a water absorber 320. The water distribution assembly 310 provides the water absorber 320 with the liquid required for evaporation. The water absorber 320 cooperates with the radiator 222. The evaporation of the liquid on the water absorber 320 absorbs heat, thereby cooling the radiator 222. The liquid required for evaporation can be water. Water has a high evaporation potential, can carry away more heat during evaporation, and is safe and pollution-free. The following description will use water as the example of the liquid required for evaporation.

[0042] The absorbent 320 is made of a material with internal capillary channels or a loose, porous material. In this case, the absorbent 320 can actively and quickly draw water into the material through capillary action, and effectively store the water inside the absorbent 320 through its large surface area and complex spatial structure, thereby achieving efficient absorption and preventing leakage, while also maintaining good air permeability and avoiding obstruction of gas flow.

[0043] The working principle of the novel water-assisted cooling air conditioner 10 of this utility model will be explained below in conjunction with the above structure. (Refer to...) Figures 1 to 6 As shown:

[0044] When in use, the user starts the new water-assisted cooling air conditioner 10, and the condenser fan 213, the radiator fan 223, and the water distribution assembly 310 operate. Driven by the condenser fan 213, some room temperature air passes through the evaporator 212 and undergoes heat exchange to form cold air, thus providing cool air to the user; driven by the radiator fan 223, some room temperature air passes through the radiator 222 and undergoes heat exchange to form hot air.

[0045] As the hot air assembly 220 continues to operate, the temperature on the radiator 222 will continuously accumulate, causing the radiator 222 to become excessively hot. This is detrimental to the energy-saving operation of the air conditioner, hinders its service life, and may even lead to shutdown. The water distribution assembly 310 of this invention utilizes the heat absorption property of liquid evaporation to cool the radiator 222. Specifically, the water distribution assembly 310 provides water to the water intake body 320, which is attached to the radiator 222 and stores the water inside. As the water evaporates, some of the heat from the radiator 222 is carried away, thus achieving cooling. In this way, the temperature of the air blown out by the radiator 222 will not be excessively high.

[0046] It should be noted that, compared with the prior art, the novel water-assisted cooling air conditioner 10 of this utility model has the following advantages:

[0047] Firstly, the water is evenly dispersed inside the water-absorbing body 320, which greatly increases the surface area of ​​water in contact with air, improves the evaporation efficiency of water, and makes full use of the latent heat of vaporization of water, thereby effectively cooling the radiator 222.

[0048] Secondly, by setting up a water-absorbing body 320 and having the water distribution component 310 supply water to the water-absorbing body 320, the problem of noise generated by high-speed water droplets hitting the radiator 222 during spraying operation in the prior art is effectively avoided, thus improving the user experience.

[0049] Third, the water vapor formed after the water inside the absorbent body 320 evaporates will be discharged to the outside along with the hot air, thereby increasing the indoor air humidity, effectively improving the problem of dry indoor air, and improving the user experience.

[0050] Japanese utility model patent JP3243784U, entitled "Air Conditioning System," discloses an air conditioner comprising a compressor, an evaporator, and a condenser connected to each other; a drain pan disposed on one side of the evaporator to receive condensate from the evaporator; a water distribution shell; and a water tank. A water distribution component and a water distribution module are disposed on one side of the water distribution shell. The water distribution component forms a water flow channel within the water distribution shell. Condensate enters a pleated absorbent body of the water distribution component to absorb the condensate flowing out of the pleated absorbent body. The water tank is placed on the bottom side of the pleated absorbent body to receive the condensate. The system includes the condensate flowing out of the pleated absorbent body, the water tank disposed on one side of the pleated absorbent body, at least one fan having a condenser, and an absorbent body located between the at least one fan and the pleated absorbent body. This utility model can handle the condensate produced by the air conditioner evaporator, preventing leakage and problems, and efficiently evaporating it back into the environment. However, this air conditioning system places the pleated water absorber after the condenser, meaning that the air passes through the condenser first and then the pleated water absorber. In this case, the latent heat of vaporization of water is not fully used to cool the condenser, but is partially discharged to the outside with the airflow, thus failing to make full use of the latent heat of water.

[0051] Compared with the prior art, this utility model has been specially designed to avoid this situation, thereby solving the above-mentioned problem. Specifically,

[0052] like Figure 2 , Figure 7 and Figure 8 As shown, there are multiple radiators 222, with gaps between adjacent radiators 222, and a water-absorbing body 320 is disposed between adjacent radiators 222. Both surfaces of the water-absorbing body 320 can be in close contact with the radiators 222, and the air passing through the radiators 222 will pass through the water-absorbing body 320, ensuring the evaporation efficiency of the liquid on the water-absorbing body 320.

[0053] It should be emphasized that, compared with the prior art, the water absorber 320 of this utility model, through the above-mentioned special design, makes full use of the latent heat of vaporization of water, effectively ensuring the cooling effect of the water absorber 320 on the radiator 222.

[0054] During operation, the water absorber 320 needs the water distribution component 310 to replenish the liquid required for evaporation. The water distribution component 310 can have multiple water supply methods. Three different water supply methods are listed below for reference.

[0055] Method 1:

[0056] like Figure 5 As shown, the water distribution assembly 310 includes a water tank 311 and a water pump 312. The water pump 312 is used to periodically replenish the liquid in the water tank 311. The water absorber 320 absorbs the liquid for evaporation from the water tank 311. The water absorber 320 extends at least partially into the water tank 311.

[0057] Understandably, after the water inside the water-absorbing body 320 evaporates, the water-absorbing body 320 will spontaneously absorb water from the supporting water tank 311, thus keeping the water-absorbing body 320 in a moist state, ensuring the cooling effect on the radiator 222, and its simple structure makes it less prone to damage. The water pump 312 is set to operate alternately between starting and stopping under normal working conditions, thereby periodically replenishing water to the supporting water tank 311, extending the service life of the water pump 312 while ensuring there is always water in the supporting water tank 311. A sensing device (not shown) can be installed in the supporting water tank 311. When the sensing device detects that the water level in the supporting water tank 311 is low, it can control the operation of the water pump 312, thereby preventing water from overflowing from the supporting water tank 311, causing resource waste or short circuits due to moisture in the internal electrical components of the air conditioner.

[0058] Method 2:

[0059] like Figure 5 and Figure 6 As shown, the water distribution assembly 310 includes a water spraying element 313 and a water pump 312. The water pump 312 is used to transfer the evaporated liquid to the water spraying element 313, and the water spraying element 313 is used to spray the liquid onto the water absorber 320. In this way, water can be supplied to the water absorber 320 quickly, shortening the time required for the water absorber 320 to change from dry to wet, and the water spraying element 313 can achieve uniform water spraying, ensuring the stability of cooling.

[0060] The water spraying component 313 has multiple through holes (not shown), through which water is sprayed onto the water suction body 320. When there is sufficient water, the water spraying component 313 may have one or more slits (not shown), in which case water can also be sprayed evenly onto the water suction body 320. Similar to the embodiment where the water distribution assembly 310 includes a water support tank 311, the water pump 312 is also configured to operate alternately between starting and stopping. A sensing device may be installed near the water suction body 320, which can control the water pump 312 to operate when it senses that the water suction body 320 is dry.

[0061] In Method 1 and Method 2, such as Figure 6As shown, the auxiliary cooling device 300 includes a water tank 330, and the water distribution assembly 310 includes a water receiving tray 315. The water receiving tray 315 is located below the evaporator 212 and is used to receive the condensate flowing from the evaporator 212. The condensate generated by the evaporator 212 during the cooling process is then channeled into the water tank 330. At this time, the water pump 312 transfers the water in the water tank 330 to the water support trough 311 or the water spray component 313. Users only need to replenish the water tank 330 periodically, improving the user experience. Simultaneously, the water receiving tray 315 prevents short circuits caused by moisture in the internal electrical components of the air conditioner, ensuring safe and stable operation of the equipment. It also prevents condensate from dripping onto the outside, soaking floors and walls, causing damage to decorations or bacterial growth. Furthermore, channeling the condensate into the water tank 330 allows for its recycling and reuse, eliminating the need for users to empty it, further improving the user experience.

[0062] Method 3:

[0063] like Figure 5 As shown, the water distribution assembly 310 includes a water collection tank 314 and a water pump 312. The water collection tank 314 is located below the evaporator 212 and is used to collect the condensate generated by the evaporator 212 during the cooling process. The water pump 312 is used to transfer the condensate to the suction body 320. This eliminates the need for manual water replenishment, improving the user experience. Specifically, the water distribution assembly 310 includes a spray element. The water pump 312 transfers water to the spray element, which transforms the water into small droplets and sprays them onto the suction body 320. This ensures that even with a small volume of water, the water can be evenly sprayed onto the suction body 320, thus guaranteeing the cooling effect.

[0064] Furthermore, the absorber 320 is prone to accumulating dust after prolonged use, requiring regular rinsing and cleaning. To facilitate user disassembly and assembly of the absorber 320, in other embodiments, the absorber 320 includes a frame (not shown), with a snap-fit ​​structure on the frame. The absorber 320 is detachably mounted between two adjacent radiators 222 via the snap-fit ​​structure. This facilitates user disassembly and assembly of the absorber 320, making it easy to clean or replace. The frame also provides support for the absorber 320, preventing deformation during use and thus avoiding compression of the internal capillary channels or pores due to deformation, which could affect the water absorption effect.

[0065] Besides the method described above where the water absorber 320 is placed between two adjacent radiators 222, the water absorber 320 can also be embedded within the radiator 222. Specifically, in an embodiment not shown, the radiator 222 includes heat dissipation pipes and multiple fins, with the fins sleeved on the heat dissipation pipes and the water absorber 320 placed between two adjacent fins. Thus, by providing multiple fins, the surface area of ​​the radiator 222 is increased, improving its heat dissipation effect. Furthermore, placing the water absorber 320 between adjacent fins increases the number of water absorbers 320, thereby increasing their surface area and accelerating water evaporation, ensuring a cooling effect. Understandably, the method of replenishing water to the water absorber 320 described in the embodiment where the water absorber 320 is placed between two adjacent radiators 222 can also be applied to this embodiment; for simplicity, it will not be elaborated further.

[0066] In some embodiments, such as Figure 3 , Figure 5 and Figure 6 As shown, the outer casing 100 has a cold air inlet 110 corresponding to the first air inlet 2111, a hot air inlet 120 corresponding to the second air inlet 2211, a cold air outlet 130 corresponding to the first air outlet 2112, and a hot air outlet 140 corresponding to the second air outlet 2212. Under the action of the condenser fan 213, outside air enters the interior of the outer casing 100 through the cold air inlet 110, passes through the evaporator 212 and forms cold air under the cooling effect of the evaporator 212, then enters the first volute 211 through the first air inlet 2111 and flows out through the first air outlet 2112, and is then discharged to the outside through the cold air outlet 130; under the action of the heat dissipation fan 223, outside air enters the interior of the outer casing 100 through the hot air inlet 120, passes through the radiator 222 and the water absorber 320 and forms hot air under the combined action of the radiator 222 and the water absorber 320, then enters the second volute 221 through the second air inlet 2211 and flows out through the second air outlet 2212, and is then discharged to the outside through the hot air outlet 140, thereby regulating the temperature of the external environment.

[0067] In some embodiments, such as Figure 1 and Figure 2As shown, the novel water-assisted cooling air conditioner 10 includes a control component 400, which includes a control main board 410 and an operation panel 420. The control main board 410 is electrically connected to the refrigeration unit 200, the auxiliary cooling device 300, and the operation panel 420, respectively. The operation panel 420 is located on the outer casing 100. Users can control the operation of the auxiliary cooling device 300 and the refrigeration unit 200 by using the operation panel 420, thereby controlling the operation of the novel water-assisted cooling air conditioner 10 and improving the user experience. Specifically, the operation panel 420 is equipped with buttons (not shown) for the auxiliary cooling device 300 and the refrigeration unit 200, which can be mechanical buttons or touch buttons.

[0068] Furthermore, such as Figure 2 , Figure 5 and Figure 6 As shown, the control component 400 may also include a protective housing 430, in which the control motherboard 410 is housed. The protective housing 430 protects the control motherboard 410 from moisture damage, thus preventing the control motherboard 410 from being damaged and affecting its service life.

[0069] Preferably, such as Figure 1 and Figure 2 As shown, the bottom of the outer casing 100 is provided with casters 150, which are used to move the outer casing 100. In this way, the user can easily move the outer casing 100, thereby facilitating the user to move the new water-assisted cooling air conditioner 10 to any position the user wants to place it, and making it convenient for the user to adjust the position of the new water-assisted cooling air conditioner 10.

[0070] In summary, the novel water-assisted cooling air conditioner 10 of this utility model can not only effectively cool the radiator 222, but also avoid noise generation and improve the user experience.

[0071] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.

Claims

1. A novel water-assisted cooling air conditioner, characterized in that, include: The device comprises an outer casing, a refrigeration unit, and an auxiliary cooling unit, wherein the refrigeration unit and the auxiliary cooling unit are housed within the outer casing. The refrigeration unit includes a cold air assembly, a hot air assembly, and a compressor. The cooling air assembly includes: a first volute, an evaporator, and a condenser fan. The first volute has a first air inlet and a first air outlet. The condenser fan is disposed inside the first volute and is used to drive air flow. The evaporator is disposed at the first air inlet or the first air outlet. The hot air assembly includes: a second volute, a radiator, and a cooling fan. The second volute has a second air inlet and a second air outlet. The cooling fan is disposed inside the second volute and is used to drive airflow. The radiator is disposed at the second air inlet or the second air outlet. The radiator is connected to the evaporator through the compressor. The auxiliary cooling device includes a water distribution component and a water absorption body. The water distribution component is used to provide the water absorption body with the liquid required for evaporation. The water absorption body cooperates with the radiator.

2. The novel water-assisted cooling air conditioner according to claim 1, characterized in that, The number of radiators is multiple, and there is a gap between two adjacent radiators. The water-absorbing body is located between two adjacent radiators. The absorbent is made of a material with internal capillary channels or a loose, porous material.

3. The novel water-assisted cooling air conditioner according to claim 2, characterized in that, The water distribution assembly includes a water tank and a water pump, the water pump being used to periodically replenish liquid into the water tank, and the water suction body extending at least partially into the water tank.

4. The novel water-assisted cooling air conditioner according to claim 2, characterized in that, The water distribution assembly includes a water spray element and a water pump, the water pump being connected to the water spray element and providing liquid sprayed onto the water absorber.

5. The novel water-assisted cooling air conditioner according to claim 2, characterized in that, The water distribution assembly includes a water collection tank and a water pump. The water collection tank is located below the evaporator and is used to collect the condensate generated by the evaporator during the refrigeration process. The water pump is used to transfer the condensate to the water absorption body.

6. The novel water-assisted cooling air conditioner according to claim 1, characterized in that, The radiator includes a heat dissipation tube and multiple fins, with the multiple fins sleeved on the heat dissipation tube and the water absorber disposed between two adjacent fins.

7. The novel water-assisted cooling air conditioner according to claim 3 or 4, characterized in that, The auxiliary cooling device includes a water tank, and the water distribution assembly includes a water receiving tray located below the evaporator. The water receiving tray is used to receive the condensate generated by the evaporator during the cooling process and to guide the condensate into the water tank.

8. The novel water-assisted cooling air conditioner according to claim 2, characterized in that, The absorbent body includes a frame, and the frame is provided with a snap-fit ​​structure. The absorbent body can be detachably disposed between two adjacent radiators through the snap-fit ​​structure.

9. The novel water-assisted cooling air conditioner according to claim 1, characterized in that, The outer casing has a cold air inlet corresponding to the first air inlet, a hot air inlet corresponding to the second air inlet, a cold air outlet corresponding to the first air outlet, and a hot air outlet corresponding to the second air outlet.

10. The novel water-assisted cooling air conditioner according to claim 1, characterized in that, The device includes a control component, which includes a control motherboard and an operation panel. The control motherboard is electrically connected to the refrigeration device, the auxiliary cooling device, and the operation panel, respectively. The operation panel is located on the outer casing.

Citation Information

Patent Citations

  • Air conditioning system

    JP3243784U