Air conditioner range hood

By designing a spray assembly in the air conditioner range hood, the problem of uneven heat dissipation of the condenser is solved, achieving uniform cooling of the condenser fins and maintaining heat exchange performance, thus extending the service life of the range hood fan.

CN224175285UActive Publication Date: 2026-04-28GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GREE ELECTRIC APPLIANCE INC OF ZHUHAI
Filing Date
2025-04-30
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

The heat dissipation effect of the condenser in the air conditioner range hood is uneven, especially the heat dissipation effect at the top of the condenser fins is poor.

Method used

A spray assembly was designed, including a water collector, a water distribution structure, and a water pump. The water pump drives the condensate to be sprayed evenly onto the condenser fins, and the water extends to the upper part of the condenser through the water flow channel of the water distribution structure. The spray nozzles face the upper side of the condenser to ensure uniform contact of the condensate.

Benefits of technology

This achieves more uniform heat dissipation from the condenser without affecting its heat exchange performance, thus extending the service life of the range hood fan.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of household appliances, and discloses an air-conditioning range hood, which comprises an air-conditioning component, a range hood cover and a range hood cover, the range hood assembly is arranged below the air conditioner assembly, and a partition plate is arranged between the air conditioner assembly and the range hood assembly; the spraying assembly comprises a water collector, a water distribution structure and a water pump; the water collector is arranged on the partition plate and used for collecting condensate water on the partition plate. The water distribution structure is arranged on one side of the condenser, a water flow channel is formed in the water distribution structure, the water flow channel extends to the upper portion of the condenser in the vertical direction, and a plurality of water spraying openings are formed in the side, facing the condenser, of the water flow channel at intervals; the water pump is communicated with the water distribution structure. The air conditioner range hood can fully dissipate heat of the upper portion of the condenser, the heat dissipation effect is more uniform, and the heat exchange performance of the condenser cannot be affected.
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Description

Technical Field

[0001] This utility model relates to the field of household appliance technology, specifically to an air conditioner range hood. Background Technology

[0002] An air-conditioning range hood mainly consists of an air conditioning unit and a range hood unit. The air conditioning unit regulates the kitchen temperature by venting cool air into the kitchen. The range hood unit absorbs cooking fumes and exhausts them outdoors. The air conditioning unit contains an evaporator and a condenser. The evaporator exchanges heat with the condenser to regulate the temperature. During heat exchange, the condenser generates a large amount of hot air, which is then exhausted to the range hood unit and, under its influence, is expelled outdoors along with the cooking fumes. The evaporator produces a significant amount of condensate during operation.

[0003] In related technologies, some air conditioning range hoods have a water pump motor inside the air conditioning component. The water pump motor drives the water pump impeller to rotate, so as to throw the condensate onto the condenser fins for heat dissipation. However, since the water pump motor is located at the location where the condensate accumulates, that is, at the bottom of the fins, the condensate thrown out by the water pump impeller is concentrated in the part of the condenser that is closer to the water pump impeller, resulting in uneven heat dissipation, especially poor cooling effect on the top of the condenser fins. Utility Model Content

[0004] In view of this, the present invention provides an air conditioning range hood to solve the problem in the related technology that the heat dissipation effect of the air conditioning range hood on the condenser is uneven, especially the heat dissipation effect on the top fins of the condenser is poor.

[0005] This utility model provides an air conditioning range hood, comprising:

[0006] Air conditioning components, including evaporators and condensers;

[0007] The range hood assembly is located below the air conditioning assembly, and a partition is provided between the air conditioning assembly and the range hood assembly;

[0008] The spray assembly includes a water collector, a water distribution structure, and a water pump; the water collector is located on the partition plate and is used to collect condensate on the partition plate; the water distribution structure is located on one side of the condenser, and a water flow channel is formed inside the water distribution structure. The water flow channel extends vertically to the upper part of the condenser, and multiple water spray nozzles are spaced apart on the side of the water flow channel facing the condenser; the water pump is connected to the water distribution structure.

[0009] Beneficial effects: During use, the air conditioning unit of this utility model includes an evaporator and a condenser. The evaporator can exchange heat with the condenser, and by discharging cold air into the kitchen, it regulates the kitchen temperature, generating a large amount of condensate in the process. The condenser fins heat up during the heat exchange process.

[0010] The water collector of the spray assembly can collect the condensate generated by the evaporator during operation. The water pump can drive the water in the water collection tank to move upward and flow into the water flow channel. The condensate is then evenly sprayed onto the fins of the entire condenser through the spray nozzle. At this time, the condensate absorbs heat and its temperature rises, evaporating from liquid water mist into gaseous water mist, thereby fully cooling the fins of the condenser.

[0011] The vaporized condensate mist flows with the high-temperature airflow from the condenser to the range hood's fan housing, and is then discharged outdoors along with the cooking fumes produced by the range hood components.

[0012] Based on this, the water flow channel of the water distribution structure extends to the upper part of the condenser, so the water spray nozzle can spray water towards the upper side of the condenser, ensuring that the upper part of the condenser can also be in full contact with the condensate, thus ensuring uniform heat dissipation of the condenser.

[0013] Furthermore, since the spray assembly is located on one side of the condenser, it does not occupy the space in the middle of the condenser, thus avoiding any impact on the heat exchange performance of the condenser.

[0014] Therefore, the air conditioner range hood of this invention can fully dissipate heat from the upper part of the condenser, resulting in a more uniform heat dissipation effect without affecting the heat exchange performance of the condenser.

[0015] In one alternative embodiment, a recessed water collection trough is formed on the partition, and a water collector is disposed in the water collection trough and connected to the water collection trough.

[0016] Beneficial effects: With this setup, the condensate generated during the operation of the evaporator can be collected in the water collection tank, and the water collector of the spray assembly is located in the water collection tank to obtain the water in the water collection tank.

[0017] In one alternative implementation, the water distribution structure includes:

[0018] The water spray pipe extends vertically, and the water flow channel is formed inside the water spray pipe.

[0019] In one optional embodiment, the partition is provided with a partition air inlet and a partition air outlet, and the air conditioning assembly also includes a condenser fan, which is located on the side of the condenser away from the spray assembly, the air inlet of the condenser fan is oriented towards the condenser, and the air outlet of the condenser fan is connected to the partition air inlet.

[0020] The range hood assembly includes a range hood fan, and the air outlet of the range hood fan is connected to the air outlet of the partition.

[0021] Beneficial effects: With this setup, the airflow can pass through the condenser under the action of the condenser fan. The hot air generated after heat exchange with the condenser can pass through the air outlet of the condenser fan and the air inlet of the baffle plate under the action of the condenser fan, and is discharged into the range hood fan cabinet. Finally, under the action of the range hood fan, it is discharged outdoors along with the cooking fumes.

[0022] In one optional embodiment, the air conditioner range hood further includes a water guide plate disposed on the partition, comprising:

[0023] Water receiving section, located below the evaporator, is used to collect the condensate from the evaporator;

[0024] The water guide section connects to the water receiving section at one end and extends into the water collection tank at the other end. Along the direction from the evaporator to the condenser, the water guide plate slopes downward.

[0025] Beneficial effect: With this configuration, the condensate produced by the evaporator during operation can fall onto the water receiving section and enter the water collection tank under the guidance of the water guiding section, thereby supplying water to the spray assembly through the condensate produced by the evaporator.

[0026] In one alternative implementation, the baffle air inlet and the smoke hood fan are spaced apart along a specified direction.

[0027] Beneficial effects: This configuration prevents hot air from the condenser from blowing directly onto the range hood fan, and also prevents water vapor in the airflow from the condenser from directly contacting the range hood fan, thus preventing corrosion. This helps extend the service life of the range hood fan and provides more space for the condenser to exhaust air, avoiding increased air resistance in the condenser fan.

[0028] In one alternative embodiment, along the direction from the evaporator to the condenser, the water guide section includes a first section and a second section connected in sequence, with the second section connected to the first section on the side near the baffle air inlet.

[0029] In one alternative embodiment, the air conditioner range hood further includes a baffle connected to one side edge of the baffle air inlet and at least partially obstructing the range hood fan.

[0030] Beneficial effects: By setting it up in this way, the baffle can prevent the hot air blown out by the condenser fan from blowing directly onto the range hood fan, and prevent the water vapor in the airflow blown out by the condenser fan from coming into direct contact with the range hood fan, causing the range hood fan to rust, thus helping to extend the service life of the range hood fan.

[0031] In one alternative implementation, the air conditioner range hood further includes:

[0032] A drain pipe is connected to the water collector, and a drain valve is installed on the drain pipe.

[0033] Beneficial effect: When there is a large amount of condensate in the collector and the surface temperature of the condenser is not high, the drain valve can be switched to the open state, thereby draining the condensate in the collector to the outside.

[0034] In one alternative embodiment, the air conditioning component further includes:

[0035] A water level sensor, located inside the water collector of the device, is used to detect the water level inside the water collector.

[0036] A temperature sensor is attached to the surface of the condenser to detect the surface temperature of the condenser. Attached Figure Description

[0037] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0038] Figure 1 This is a schematic diagram of an air conditioner range hood according to an embodiment of the present utility model;

[0039] Figure 2 for Figure 1 The spray assembly of the air conditioner range hood shown;

[0040] Figure 3 for Figure 1 The side view of the air conditioner range hood shown;

[0041] Figure 4 This is a top view of the partition and water guide plate of the air conditioner range hood according to an embodiment of the present utility model;

[0042] Figure 5 This is an enlarged view of the water collector of the air conditioner range hood according to an embodiment of the present utility model;

[0043] Figure 6 This is a partial enlarged view of the partition of the air conditioner range hood according to an embodiment of the present utility model;

[0044] Figure 7 This is a partial enlarged view of the partition of the air conditioner range hood according to an embodiment of the present utility model from another angle;

[0045] Figure 8 This is a schematic diagram of another type of air conditioner range hood according to an embodiment of the present utility model;

[0046] Figure 9 This is a flowchart illustrating the operation of the air conditioner range hood according to an embodiment of the present invention.

[0047] Explanation of reference numerals in the attached figures:

[0048] 1. Air conditioning components; 101. Evaporator; 102. Condenser; 1021. Condenser inlet pipe; 1022. Condenser outlet pipe; 103. Condenser fan; 1031. Condenser impeller; 1032. Condenser volute; 104. Evaporator fan; 1041. Evaporator impeller; 1042. Evaporator volute;

[0049] 2. Range hood components; 201. Range hood fan; 2011. Range hood impeller; 2012. Range hood volute;

[0050] 3. Partition; 301. Water collection tank; 302. Partition air inlet; 303. Partition air outlet;

[0051] 4. Sprinkler assembly; 401. Water collector; 4011. Drain pipe; 4012. Drain valve;

[0052] 402. Water distribution structure; 4021. Water flow channel; 4022. Spray nozzle;

[0053] 5. Water guide plate; 501. Water receiving section; 502. Water guiding section; 5021. First section; 5022. Second section;

[0054] 6. Baffle;

[0055] 7. Sealed structure. Detailed Implementation

[0056] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0057] The following is combined Figures 1 to 9 The following describes embodiments of the present invention.

[0058] According to an embodiment of the present invention, an air conditioning range hood is provided, including an air conditioning component 1, a range hood component 2, and a spray component 4.

[0059] The air conditioning assembly 1 includes an evaporator 101 and a condenser 102. The range hood assembly 2 is located below the air conditioning assembly 1, and a partition 3 is provided between the air conditioning assembly 1 and the range hood assembly 2. The spray assembly 4 includes a water collector 401, a water distribution structure 402, and a water pump. The water collector 401 is located on the partition 3 and is used to collect condensate on the partition 3. The water distribution structure 402 is located on one side of the condenser 102, and a water flow channel 4021 is formed within the water distribution structure 402. Vertically, the water flow channel 4021 extends to the upper part of the condenser 102, and multiple spray nozzles 4022 are spaced apart on the side of the water flow channel 4021 facing the condenser 102. The water pump is connected to the water distribution structure 402.

[0060] like Figure 1 As shown, during use, the air conditioning unit 1 of this utility model includes an evaporator 101 and a condenser 102. The evaporator 101 can exchange heat with the condenser 102, thereby regulating the temperature of the kitchen by discharging cold air into the kitchen, and generating a large amount of condensate in the process. The fins of the condenser 102 increase in temperature during the heat exchange process.

[0061] The water collector 401 of the spray assembly 4 can collect the condensate generated by the evaporator 101 during operation. The water pump can drive the water in the water collection tank 301 to move upward and flow into the water flow channel 4021. The condensate is then evenly sprayed onto the fins of the entire condenser 102 through the spray nozzle 4022. At this time, the condensate absorbs heat and its temperature rises, evaporating from liquid water mist into gaseous water mist, thereby fully cooling the fins of the condenser 102.

[0062] The vaporized condensate mist flows with the high-temperature airflow of the condenser 102 to the range hood fan housing, and is discharged outdoors along with the cooking fumes under the action of the range hood component 2.

[0063] Based on this, the water flow channel 4021 of the water distribution structure 402 extends to the upper part of the condenser 102, so the water nozzle 4022 can spray water towards the upper side of the condenser 102, ensuring that the upper part of the condenser 102 can also be in full contact with the condensate, thus ensuring uniform heat dissipation of the condenser 102.

[0064] Furthermore, since the spray assembly 4 is located on one side of the condenser 102, it will not occupy the space in the middle of the condenser 102, thus avoiding the setting of the spray assembly 4 from affecting the heat exchange performance of the condenser 102.

[0065] Therefore, the air conditioner range hood of this invention can fully dissipate heat from the upper part of the condenser 102, resulting in a more uniform heat dissipation effect without affecting the heat exchange performance of the condenser 102.

[0066] In one embodiment, the spray nozzles 4022 are evenly distributed on the water flow channel 4021 to ensure uniform cooling of the condenser 102.

[0067] In one embodiment, a recessed water collection trough 301 is formed on the partition 3, and a water collector 401 is disposed in the water collection trough 301 and connected to the water collection trough 301.

[0068] With this configuration, the condensate generated during the operation of the evaporator can be collected in the water collection tank. The water collector 401 of the spray assembly 4 is located in the water collection tank and can collect the water in the water collection tank 301.

[0069] In one embodiment, the partition 3 is made of metal, and both the condenser 102 and the evaporator 101 are disposed on the partition 3.

[0070] As an alternative implementation, the partition 3 may also be made of plastic, ceramic or other non-metallic materials.

[0071] In one embodiment, the condenser 102 has a condenser inlet pipe 1021 and a condenser outlet pipe 1022.

[0072] The water collector 401 is preferably, but not limited to, a water tank with an open bottom. When the water tank is placed in the water collection trough 301, the water in the water collection trough 301 can enter the water tank.

[0073] The water collection tank 301 can be integrally formed on the partition 3.

[0074] As an alternative implementation, in one embodiment not shown in the accompanying drawings, the water collection tank 301 and the partition 3 are separate structures, with the water collection tank 301 connected to one side of the partition 3.

[0075] At this time, the connection between the water collection tank 301 and the partition plate 3 is preferably, but not limited to, a bolted connection or a welded connection.

[0076] The water pump can be located between the water collection tank 301 and the water collector 401, or it can be connected between the water collector 401 and the water distribution structure 402.

[0077] In a preferred embodiment, water pumps are provided between the water collection tank 301 and the water collector 401, and between the water collector 401 and the water distribution structure 402.

[0078] A water pump located between the water collection tank 301 and the water collector 401 can drive the water in the water collection tank 301 into the water collector 401.

[0079] A water pump located between the water collector 401 and the water distribution structure 402 can drive the water in the water collector 401 into the water distribution structure 402, and spray it evenly onto the condenser 102 through the spray nozzle 4022.

[0080] In one embodiment, such as Figure 2 and Figure 3 As shown, the water distribution structure 402 includes a water spray pipe. The water spray pipe extends vertically, and a water flow channel 4021 is formed inside the water spray pipe.

[0081] Each water spray pipe may be equipped with one or more rows of water spray nozzles 4022 evenly distributed in the vertical direction.

[0082] like Figure 2 and Figure 3 As shown, each spray pipe is equipped with one or two rows of spray nozzles 4022, which can achieve uniform heat dissipation of the condenser 102 with fewer spray components 4, thus helping to reduce the manufacturing cost of the air conditioner range hood.

[0083] As an alternative implementation, in an embodiment not shown in the accompanying drawings, the water distribution structure 402 may also be selected as a serpentine water spray pipe.

[0084] In one embodiment, there are multiple spray components 4, which are spaced apart along a specified direction.

[0085] In one embodiment, the partition 3 is provided with a partition air inlet 302 and a partition air outlet 303. The air conditioning assembly 1 also includes a condenser fan 103, which is located on the side of the condenser 102 away from the spray assembly 4. The air inlet of the condenser fan 103 is set towards the condenser 102, and the air outlet of the condenser fan 103 is connected to the partition air inlet 302.

[0086] The range hood assembly 2 includes a range hood fan 201. The air outlet of the range hood fan 201 is connected to the air outlet 303 of the partition.

[0087] With this configuration, the airflow can pass through the condenser 102 under the action of the condenser fan 103. The hot air generated after heat exchange with the condenser 102 can pass through the air outlet of the condenser fan 103 and the air inlet 302 of the baffle plate under the action of the condenser fan 103, and be discharged into the range hood fan cabinet. Finally, under the action of the range hood fan 201, it is discharged outdoors along with the cooking fumes.

[0088] In one embodiment, the condenser fan 103 includes a condenser impeller 1031 and a condenser volute 1032. The condenser impeller 1031 is disposed inside the condenser volute 1032, and the air inlet and outlet of the condenser fan 103 are disposed inside the condenser volute 1032. The air outlet of the condenser volute 1032 is connected to the baffle air inlet 302 by a sealing structure 7, which can prevent the condensate generated during the operation of the evaporator 101 from entering the flue gas assembly 2 through the baffle air inlet 302.

[0089] In one embodiment, the range hood fan 201 includes a range hood impeller 2011 and a range hood volute 2012. The range hood impeller 2011 is disposed inside the range hood volute 2012, and the air inlet and air outlet of the range hood fan 201 are disposed on the range hood volute 2012.

[0090] In one embodiment, such as Figure 1 , Figure 4 and Figure 6 As shown, the air conditioner range hood also includes a water guide plate 5, which is disposed on the partition plate 3 and includes a water receiving section 501 and a water guiding section 502.

[0091] The water receiving section 501 is located below the evaporator 101 and is used to collect the condensate from the evaporator 101. One end of the water guiding section 502 is connected to the water receiving section 501, and the other end extends into the water collection tank 301.

[0092] With this configuration, the condensate generated by the evaporator 101 during operation can fall onto the water receiving section 501 and enter the water collection tank 301 under the guiding action of the water guiding section 502, thereby supplying water to the spray assembly 4 through the condensate generated by the evaporator 101.

[0093] In a preferred embodiment, a water guide groove is formed on the water guide plate 5. The water guide groove can prevent water on the water guide plate 5 from overflowing onto the partition plate 3 and causing it to fall into the range hood fan 201 through the partition plate air outlet 303.

[0094] As a variable implementation method, in such Figure 8 In the embodiment shown, a water guide groove is directly formed on the partition 3. The bottom wall of the water guide groove slopes downward in the direction from the evaporator 101 to the condenser 102, so that the partition 3 itself can guide the condensate generated by the evaporator 101 during operation into the water collection tank 301.

[0095] In a preferred embodiment, the partition air inlet 302 and the smoke hood fan 201 are spaced apart along a specified direction.

[0096] This design prevents the hot air blown out by the condenser fan 103 from blowing directly onto the range hood fan 201, and prevents water vapor in the airflow blown out by the condenser fan 103 from directly contacting the range hood fan 201, thus preventing corrosion of the range hood fan 201. It also helps to extend the service life of the range hood fan 201 and provides more space for the condenser fan 103 to discharge air, avoiding increasing the wind resistance of the condenser fan 103.

[0097] As a possible implementation, in an embodiment not shown in the accompanying drawings, the partition air inlet 302 and the smoke hood fan 201 are located at the same position along a specified direction.

[0098] In one embodiment, along the direction from the evaporator 101 to the condenser 102, the water guide section 502 includes a first section 5021 and a second section 5022 connected in sequence, with the second section 5022 connected to the first section 5021 on the side near the baffle air inlet 302.

[0099] Adjusting the positional relationship between the first section 5021 and the second section 5022 based on the positions of the partition air inlet 302 and the partition air outlet 303 makes the structure of the water guide section 502 more reasonable.

[0100] In one embodiment, the air conditioner range hood further includes a baffle 6, which is connected to the partition 3 at one side edge of the partition air inlet 302 and at least partially blocks the range hood fan 201.

[0101] With this configuration, the baffle 6 can prevent the hot air blown out by the condenser fan 103 from blowing directly onto the range hood fan 201, and prevent the water vapor in the airflow blown out by the condenser fan 103 from directly contacting the range hood fan 201, causing the range hood fan 201 to rust, thus helping to extend the service life of the range hood fan 201.

[0102] In one embodiment, the baffle 6 is made of a metallic material.

[0103] As an alternative implementation, in one embodiment not shown in the accompanying drawings, the baffle 6 may also be made of plastic, ceramic, or rubber.

[0104] In one embodiment, such as Figure 1 As shown, the water guide plate 5 is inclined downward along the direction from the evaporator 101 to the condenser 102.

[0105] With this configuration, the condensate generated by the evaporator 101 during operation can be directed by gravity to enter the water collection tank 301 along the guide plate 5.

[0106] In one embodiment, the air conditioner range hood further includes a drain pipe 4011. The drain pipe 4011 is connected to a water collector 401, and a drain valve 4012 is provided on the drain pipe 4011.

[0107] When there is a large amount of condensate in the collector 401 and the surface temperature of the condenser 102 is not high, the drain valve 4012 can be switched to the open state to discharge the condensate in the collector 401 to the outside.

[0108] In one embodiment, the air conditioning assembly 1 further includes an evaporator fan 104 disposed on the side of the evaporator 101 away from the condenser 102, which is capable of blowing air toward the evaporator 101.

[0109] High-pressure liquid is injected into the evaporator 101 after passing through a filter and a throttling mechanism. It evaporates under corresponding low pressure, absorbing heat from the surrounding environment. Simultaneously, the evaporator fan 104 continuously draws air into the fins of the evaporator 101 for heat exchange, and then sends the cooled air into the room, controlling the kitchen temperature to a suitable range and thus improving the cooking environment. This continuous circulation of indoor air achieves the purpose of cooling and lowering the temperature.

[0110] In one embodiment, the air conditioner range hood also includes a temperature sensor, a water level detector, and a controller.

[0111] The temperature sensor is located on the surface of the condenser 102 and is used to detect the temperature of the surface of the condenser 102.

[0112] A water level detector is installed inside the water collector to detect the water level inside the water collector 401.

[0113] The controller communicates with the temperature sensor, water level detector, water pump, and drain valve 4012. The controller is installed on the water pump side and is used for data processing, command transmission, and control system settings.

[0114] The following describes the usage process of the air conditioner range hood according to this utility model embodiment:

[0115] First, the temperature sensor periodically collects the surface temperature signal of the condenser 102 and sends the relevant data to the controller; the controller determines whether the surface temperature of the condenser 102 is higher than the system-set limit value; if the surface temperature of the condenser 102 is higher than the limit value, the system continues to collect the condensate volume signal periodically collected by the water level detector to determine whether the condensate volume in the water collector 401 is higher than the limit value.

[0116] If the surface temperature of condenser 102 is higher than the limit value and the condensate volume is higher than the limit value, it indicates that the surface temperature of condenser 102 is too high and the condensate volume is too high. The controller sends a start signal to the water pump, and the spray assembly 4 starts working. If the surface temperature of condenser 102 is higher than the limit value but the condensate volume is lower than the limit value, it indicates that the surface temperature of condenser 102 is too high but the condensate volume is too low. The controller sends a signal, the water pump built into the water collector 401 starts working to ensure that the condensate volume is not lower than the limit value, and the spray assembly 4 starts working at the same time.

[0117] If the surface temperature of condenser 102 is below the limit value, the system continues to collect the condensate volume signal periodically from the water level detector to determine if the condensate volume is above the limit value. If the surface temperature of condenser 102 is below the limit value but the condensate volume is above the limit value, it indicates that the surface temperature of condenser 102 is not high but the condensate volume is too high. The controller sends a start signal to the water pump, switching the drain valve 4012 to the open state. When the water volume and condensate volume are less than the limit value, the drain pipe 4011 stops draining, and the spray assembly 4 is in standby mode. If the surface temperature of condenser 102 is below the limit value but the condensate volume is also below the limit value, it indicates that the surface temperature of condenser 102 is not high and the condensate volume is too low. The controller does not send a signal, and the spray assembly 4 is in the closed state.

[0118] Although embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations all fall within the scope defined by the appended claims.

Claims

1. An air conditioning range hood, characterized in that, include: An air conditioning assembly (1) includes an evaporator (101) and a condenser (102); A range hood assembly (2) is located below the air conditioning assembly (1), and a partition (3) is provided between the air conditioning assembly (1) and the range hood assembly (2); The spray assembly (4) includes a water collector (401), a water distribution structure (402), and a water pump; the water collector (401) is disposed on the partition (3) and is used to collect condensate on the partition (3); the water distribution structure (402) is disposed on one side of the condenser (102), and a water flow channel (4021) is formed in the water distribution structure (402). The water flow channel (4021) extends vertically to the upper part of the condenser (102), and a plurality of water spray nozzles (4022) are spaced apart on the side of the water flow channel (4021) facing the condenser (102); the water pump is connected to the water distribution structure (402).

2. The air conditioner range hood according to claim 1, characterized in that, A recessed water collection trough (301) is formed on the partition (3), and the water collector (401) is located in the water collection trough (301) and is connected to the water collection trough (301).

3. The air conditioner range hood according to claim 2, characterized in that, The water distribution structure (402) includes: A water spray pipe extends vertically, and the water flow channel (4021) is formed inside the water spray pipe.

4. The air conditioner range hood according to claim 2 or 3, characterized in that, The partition (3) is provided with a partition air inlet (302) and a partition air outlet (303). The air conditioning assembly (1) also includes a condenser fan (103). The condenser fan (103) is located on the side of the condenser (102) away from the spray assembly (4). The air inlet of the condenser fan (103) is facing the condenser (102). The air outlet of the condenser fan (103) is connected to the partition air inlet (302). The range hood assembly (2) includes a range hood fan (201), the air outlet of which is connected to the air outlet (303) of the partition.

5. The air conditioner range hood according to claim 4, characterized in that, It also includes a water guide plate (5), which is disposed on the partition plate (3) and includes: A water receiving section (501) is provided below the evaporator (101) for receiving the condensate from the evaporator (101); The water guide section (502) is connected at one end to the water receiving section (501) and extends to the water collection tank (301) at the other end. The water guide plate (5) is inclined downward along the direction from the evaporator (101) to the condenser (102).

6. The air conditioner range hood according to claim 5, characterized in that, Along a specified direction, the partition air inlet (302) and the smoke machine fan (201) are spaced apart.

7. The air conditioner range hood according to claim 6, characterized in that, Along the direction from the evaporator (101) to the condenser (102), the water guide section (502) includes a first section (5021) and a second section (5022) connected in sequence, wherein the second section (5022) is connected to the first section (5021) on the side near the baffle air inlet (302).

8. The air conditioner range hood according to claim 5, characterized in that, It also includes a baffle (6) connected to the partition (3) on one side edge of the partition air inlet (302) and at least partially blocking the smoke hood fan (201).

9. The air-conditioning range hood according to any one of claims 1 to 3, characterized in that, Also includes: A drain pipe (4011) is connected to the water collector (401), and a drain valve (4012) is provided on the drain pipe (4011).

10. The air-conditioning range hood according to any one of claims 1 to 3, characterized in that, The air conditioning component (1) also includes: A water level detector is installed inside the water collector to detect the water level inside the water collector. A temperature sensor is connected to the surface of the condenser to detect the surface temperature of the condenser.