Humidification assembly and air conditioner
The humidification assembly, consisting of a fan, atomizing chamber, and pump, solves the problems of short lifespan, high cost, and high energy consumption in existing air conditioner humidification solutions, providing a simple, low-cost, and efficient air conditioner humidification solution.
Patent Information
- Application Number
- CN202410508036.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-04-25
- Publication Date
- 2025-10-28
AI Technical Summary
Existing air conditioner humidification solutions suffer from problems such as short lifespan, high cost, high energy consumption, and poor humidification effect, making them difficult to widely apply across various air conditioner models.
The humidification component consists of a fan, an atomizing chamber, and a pump. Humidification is achieved by spraying water atomization and blowing water mist with the fan. The pump reuses the water resources in the atomizing chamber, and the atomizing wheel enhances the atomization effect.
It has achieved a simple, low-cost, low-energy-consumption, and high-humidification solution for air conditioners, which is suitable for a variety of air conditioner models.
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Figure CN120845841A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to air conditioning equipment technology, and more specifically, to a humidification component and an air conditioner. Background Technology
[0002] When an air conditioner is heating, the relative humidity of the indoor air decreases, resulting in a poor user experience. Therefore, humidifying the indoor air becomes necessary when the air conditioner is heating. Existing humidification solutions for air conditioners include ultrasonic humidification, wet film humidification, steam humidification, and waterless humidification.
[0003] Ultrasonic humidification solution: Ultrasonic vibrating plates are easily affected by scale and other factors, resulting in short lifespan and easy damage. This solution is only partially used in portable humidifiers and not in air conditioners.
[0004] Wet membrane humidification solution: Wet membranes have problems such as short lifespan, easy growth of bacteria, need to be replaced regularly, and high purchase cost. This solution is only partially used in machines such as cabinet air conditioners that can be easily replaced, and is not used in machines such as duct air conditioners that require climbing to operate.
[0005] Steam humidification solutions have several drawbacks: high power consumption, loud boiling noise, secondary heating of air by high-temperature steam leading to poor user comfort, rapid condensation of high-temperature steam during humidification through pipes resulting in poor air delivery distance and effectiveness, high manufacturing costs, and high operating costs. This solution is only partially used in central humidifiers and not in air conditioners.
[0006] Waterless humidification solutions include structures such as rotary moisture absorption (using MOF (porous crystalline material) membrane to extract moisture from the outside), heating dehumidification, and fan-driven moisture delivery. These solutions suffer from problems such as system complexity, high cost, and low humidification capacity. Furthermore, when the outdoor humidity is low, the MOF membrane cannot effectively extract moisture from the outside. Summary of the Invention
[0007] This invention provides a humidification component that has the advantages of simple structure, low manufacturing cost, low energy consumption, and good humidification effect.
[0008] This invention also provides an air conditioner.
[0009] The humidification component provided in this embodiment of the invention includes: a fan; and an atomizing cavity, which is provided with a first spray port and a mist outlet. The first spray port is configured to spray water into the atomizing cavity and atomize the sprayed water into a jet spray to form water mist. The fan is configured to generate a first air blast to blow the water mist from the mist outlet into the room based on its operation.
[0010] In some exemplary embodiments, the humidification assembly further includes: a pump body, the inlet of which is connected to the interior of the atomizing chamber, the outlet of which is connected to the inlet end of the first spray port, the outlet end of the first spray port facing the interior of the atomizing chamber, and the pump body being configured to supply water accumulated in the atomizing chamber to the first spray port based on operation.
[0011] In some exemplary embodiments, the humidification assembly further includes: an atomizing rotor disposed within the atomizing cavity, the outlet end of the first spray nozzle facing the atomizing rotor, the atomizing rotor being configured to atomize the water sprayed onto it by operation to form a water mist.
[0012] In some exemplary embodiments, the humidification assembly further includes a rotary drive device, wherein the fan, the atomizing wheel, and the pump body are all connected to the rotary drive device for transmission, and the rotary drive device is configured to drive the fan, the atomizing wheel, and the pump body to operate.
[0013] In some exemplary embodiments, the rotary drive device includes a drive motor, the rotation shaft of the drive motor is vertically arranged, and the impeller of the fan, the atomizing wheel and the impeller of the pump body are all located on the rotation shaft of the drive motor.
[0014] In some exemplary embodiments, the atomizing cavity is further provided with a connection port, both the connection port and the first injection port are located on the peripheral wall of the atomizing cavity, the pump body is located inside the atomizing cavity, the inlet of the pump body is located at the inner bottom of the atomizing cavity, the outlet of the pump body is connected to the end of the connection port facing the inside of the atomizing cavity, the inlet end of the first injection port faces the outside of the atomizing cavity, and the end of the connection port facing the outside of the atomizing cavity is connected to the inlet end of the first injection port.
[0015] In some exemplary embodiments, the atomizing cavity is further provided with a second spray port, the inlet end of the second spray port is configured to be connected to a water supply device, and the outlet end of the second spray port faces the interior of the atomizing cavity and is configured to atomize the sprayed water into a water mist.
[0016] In some exemplary embodiments, the humidification assembly further includes: an intermittent water supply device located outside the atomizing chamber, the outlet of the intermittent water supply device being connected to the inlet end of the second spray nozzle, and the water supply device including the intermittent water supply device.
[0017] In some exemplary embodiments, the air inlet of the fan is connected to the atomizing cavity through the mist outlet, and the air outlet of the fan is located outside the atomizing cavity.
[0018] In some exemplary embodiments, the air inlet and the air outlet of the fan are both connected to the outside of the atomizing cavity, and the air outlet of the fan faces the axis of the mist outlet on one side of the axis of the mist outlet.
[0019] The air conditioner provided in this embodiment of the invention includes a main body with an indoor heat exchange duct and a humidification component as described in any of the above embodiments. The humidification component is disposed on the main body, and the fan is configured to blow water mist from the mist outlet along the indoor heat exchange duct into the room through the first air bundle.
[0020] The humidification component provided in this embodiment of the invention sprays water into the atomization chamber from the first spray nozzle. The water sprayed from the first spray nozzle is atomized into a jet spray and forms water mist in the atomization chamber. The first air jet formed by the operation of the fan blows the water mist from the mist outlet into the room, thereby humidifying the indoor air. This solution is not only simple in structure, low in manufacturing cost, low in energy consumption, and has a good humidification effect, but it is also easy to apply to air conditioners.
[0021] Other features and advantages of the invention will be set forth in the following description, and will be apparent in part from the description, or may be learned by practicing the invention. The objects and other advantages of the invention may be realized and obtained by means of the structures particularly pointed out in the description and the drawings. Attached Figure Description
[0022] The accompanying drawings are used to provide a further understanding of the technical solution of the present invention and constitute a part of the specification. Together with the embodiments of the present application, they are used to explain the technical solution of the present invention and do not constitute a limitation on the technical solution of the present invention.
[0023] Figure 1 This is a schematic cross-sectional view of the main structure of a humidification component provided in some embodiments of this application;
[0024] Figure 2 This is a front view cross-sectional schematic diagram of a humidification component provided in some other embodiments of this application;
[0025] Figure 3 This is a top view of the humidification assembly provided in some embodiments of this application.
[0026] The correspondence between the reference numerals and the component names is as follows:
[0027] 100 Fan, 110 Volute, 120 Impeller, 200 Atomizing Chamber, 210 First Injection Port, 220 Atomizing Port, 230 Connecting Port, 240 Second Injection Port, 250 Water Collection Tank, 300 Atomizing Rotary Wheel, 400 Rotary Drive Device, 500 Pump Body, 510 Flow Collector, 520 Impeller. Detailed Implementation
[0028] To make the purpose, technical solutions and advantages of the present invention more clearly understood, the embodiments of the present invention will be described in detail below with reference to the accompanying drawings. It should be noted that, unless there is a conflict, the embodiments and features in the embodiments of the present application can be combined with each other in any manner.
[0029] The humidification components provided in the embodiments of the present invention, such as Figures 1 to 3 As shown, it includes: a fan 100; and an atomizing chamber 200. The atomizing chamber 200 is provided with a first spray port 210 and a mist outlet 220. The first spray port 210 is configured to spray water into the atomizing chamber 200 and atomize the sprayed water into a jet spray to form water mist. The fan 100 is configured to form a first air stream based on its operation. The first air stream is used to blow the water mist from the mist outlet 220 into the room.
[0030] The humidification component sprays water into the atomizing chamber 200 from the first spray port 210. The water sprayed from the first spray port 210 is atomized into a jet spray and forms water mist in the atomizing chamber 200. The first air jet formed by the operation of the fan 100 blows the water mist from the mist outlet 220 into the room, thereby humidifying the indoor air. This solution is not only simple in structure, low in manufacturing cost, low in energy consumption, and has a good humidification effect, but it is also easy to apply to air conditioners or other air handling equipment (such as heaters).
[0031] A portion of the water ejected from the first nozzle 210 is atomized into a water mist, which is used to humidify the room. The remaining portion of the water ejected from the first nozzle 210 falls into the atomizing chamber 200, eventually collecting and depositing at the bottom of the chamber. Further, as... Figure 1 and Figure 2 As shown, the humidification assembly also includes a pump body 500, the inlet of which is connected to the interior of the atomizing chamber 200, and the outlet of which is connected to the inlet of the first spray port 210. The outlet of the first spray port 210 faces the interior of the atomizing chamber 200. The pump body 500 is configured to supply water accumulated in the atomizing chamber 200 to the first spray port 210 based on its operation. That is, this scheme uses the pump body 500 to reuse the water in the atomizing chamber 200 and re-form water mist through the first spray port 210, making full use of the water resources in the atomizing chamber 200.
[0032] In some examples, such as Figures 1 to 3 As shown, the humidification component also includes an atomizing rotor 300, which is located inside the atomizing chamber 200. The outlet end of the first spray nozzle 210 faces the atomizing rotor 300. The atomizing rotor 300 is configured to break and atomize the water sprayed onto it to form water mist based on its operation. This scheme can increase the amount of water mist generated in the atomizing chamber 200, so that the humidification effect of the humidification component on the indoor air is better when it is in operation.
[0033] In some examples, such as Figure 1 and Figure 2 As shown, the humidification assembly also includes: a rotary drive device 400, a fan 100, an atomizing wheel 300 and a pump body 500, all of which are connected to the rotary drive device 400 for transmission. The rotary drive device 400 is configured to drive the fan 100, the atomizing wheel 300 and the pump body 500 to operate.
[0034] Alternatively, the fan 100, atomizing impeller 300, and pump body 500 can be driven by the same rotary drive device 400. For example, the rotary drive device 400 includes a drive motor with its rotating shaft vertically positioned. The impeller 120 of the fan 100, the atomizing impeller 300, and the impeller 520 of the pump body 500 are coaxially arranged in a vertical direction, all located on the rotating shaft of the drive motor. The drive motor drives the impeller 120 of the fan 100, the atomizing impeller 300, and the impeller 520 of the pump body 500. The components can rotate synchronously, which is a simple and low-cost solution. Alternatively, the fan 100, atomizing wheel 300, and pump body 500 can be driven by multiple rotary drive devices 400, such as the impeller 120 of the fan 100, the atomizing wheel 300, and the impeller 520 of the pump body 500 being driven by three rotary drive devices 400 in a one-to-one correspondence. All of the above can achieve the purpose of this application, and their purpose has not departed from the design concept of this invention. They will not be elaborated here, and all should fall within the protection scope of this application.
[0035] In one embodiment, such as Figures 1 to 3 As shown, the atomizing chamber 200 is also provided with a connection port 230. Both the connection port 230 and the first injection port 210 are located on the peripheral wall of the atomizing chamber 200. The pump body 500 is located inside the atomizing chamber 200. The inlet of the pump body 500 is located at the inner bottom of the atomizing chamber 200. The outlet of the pump body 500 is connected to the end of the connection port 230 facing the inside of the atomizing chamber 200. The inlet end of the first injection port 210 faces the outside of the atomizing chamber 200. The end of the connection port 230 facing the outside of the atomizing chamber 200 is connected to the inlet end of the first injection port 210. When the pump body 500 is running, the water deposited at the bottom of the atomizing chamber 200 is sprayed back into the atomizing chamber 200 from the pump body 500 through the connection port 230 and the first spray port 210. Part of the water sprayed from the first spray port 210 is atomized into water mist, and the other part of the water sprayed from the first spray port 210 is sprayed into the rotating atomizing wheel 300 in the form of a jet. The atomizing wheel 300 breaks and atomizes part of the water sprayed onto it to form water mist, while the other part falls to the bottom of the atomizing chamber 200 in the form of splashing water droplets for collection and deposition. This scheme produces a larger amount of water mist, so the humidification effect on the indoor air is better when the humidifying component is running.
[0036] In some examples, such as Figure 3 As shown, the cavity wall of the atomizing chamber 200 is also provided with a second spray port 240. The inlet end of the second spray port 240 is configured to be connected to the water supply device, and the outlet end of the second spray port 240 faces the interior of the atomizing chamber 200 and is configured to atomize the sprayed water into a water mist within the atomizing chamber 200. When there is no water accumulated in the atomizing chamber 200 or the amount of water accumulated in the atomizing chamber 200 is insufficient, water is supplied to the atomizing chamber 200 from the second spray port 240 through the water supply device. During the process of water being sprayed into the atomizing chamber 200 through the second spray port 240, part of the water is atomized into a water mist within the atomizing chamber 200, and the other part of the water falls into the atomizing chamber 200, eventually collecting and depositing at the bottom of the atomizing chamber 200.
[0037] Furthermore, such as Figure 3 As shown, the outlet end of the second spray nozzle 240 is also configured to face the atomizing rotor 300. When the atomizing rotor 300 is in operation, another part of the water sprayed from the second spray nozzle 240 falls onto the atomizing rotor 300 in the form of a jet. Part of the water is broken and atomized to form water mist, while the other part falls to the bottom of the atomizing cavity 200 in the form of splashing water droplets for collection and deposition. This can further increase the amount of water mist generated in the atomizing cavity 200 during this process, and further improve the humidification effect of the humidifying component on the indoor air during operation.
[0038] In some embodiments, the humidification assembly further includes an intermittent water supply device (not shown in the figure), located outside the atomizing chamber 200, with its outlet connected to the inlet of the second jet port 240. The water supply device includes the intermittent water supply device. This intermittent water supply device can be configured as an intermittently operating water pump, such as connecting the inlet of the second jet port 240 to a storage tank via a water pump; or it can be configured as an intermittently operating electrically controlled switch valve, such as connecting the inlet of the second jet port 240 to tap water via an electrically controlled switch valve; or it can be configured as a continuous water supply device, such as a tap water pipe with a switch valve. All of these can achieve the purpose of this application, and their intent does not depart from the design concept of this invention. They will not be elaborated further here, and all should fall within the protection scope of this application.
[0039] In one embodiment, both the first injection port 210 and the second injection port 240 are configured as microporous structures. This scheme has a simple structure and good jet spray atomization effect.
[0040] In some examples, such as Figure 1 As shown, the air inlet of the fan 100 is connected to the atomizing chamber 200 through the mist outlet 220, and the air outlet of the fan 100 is located outside the atomizing chamber 200.
[0041] Water is supplied into the atomizing chamber 200 through the second spray nozzle 240. During the process of water being sprayed into the atomizing chamber 200 through the second spray nozzle 240, a portion of the water undergoes jet atomization (first-stage atomization), while the remaining water impacts the high-speed rotating atomizing wheel 300, resulting in some water undergoing fragmentation atomization (second-stage atomization). The rest falls to the bottom of the atomizing chamber 200 for collection and deposition. After a set time, the second spray nozzle 240 stops supplying water. The water deposited at the bottom of the atomizing chamber 200 is then sprayed back into the atomizing chamber 200 through the first spray nozzle 210 by the operating water pump. During the process of water being sprayed into the atomizing chamber 200 through the first spray nozzle 210, a portion of the water undergoes jet atomization (first-stage atomization), while the remaining water impacts the high-speed rotating atomizing wheel 300, resulting in some water undergoing fragmentation atomization (second-stage atomization), and the rest falling back to the bottom of the atomizing chamber 200 for collection and deposition. This process continues, constantly atomizing the remaining water in the atomizing chamber 200 until all the water is consumed. Then, the fan 100 operates, and the water mist enters the fan 100 from the mist outlet 220, and is then blown into the room from the fan 100's outlet. Repeating this process continuously humidifies the indoor air.
[0042] The fan 100 is configured as a centrifugal fan with a volute 110 and an impeller 120. The volute 110 of the centrifugal fan is located on the outer top of the atomizing chamber 200, and the mist outlet 220 is located on the top wall of the atomizing chamber 200 and communicates with the air inlet of the volute 110 of the centrifugal fan. The air outlet of the volute 110 of the centrifugal fan is connected to the interior. The pump body 500 includes a collector shroud 510 and an impeller 520 disposed within the collector shroud 510. The inlet and outlet of the pump body 500 are both located on the collector shroud 510.
[0043] Furthermore, such as Figure 1 As shown, the bottom of the atomizing chamber 200 is provided with a downwardly recessed water collection tank 250, and the inlet of the pump body 500 is located in the water collection tank 250.
[0044] The humidification component of this solution is applied to the air conditioner. The centrifugal fan can be located on the outside of the indoor heat exchange duct (the indoor heat exchange duct of the main body of the air conditioner). The air outlet of the centrifugal fan volute 110 is connected to the indoor heat exchange duct.
[0045] In other examples, such as Figure 2 As shown, the air inlet and air outlet of the fan 100 are both connected to the outside of the atomizing chamber 200, and the air outlet of the fan 100 is on one side of the axis of the mist outlet 220 and faces the axis of the mist outlet 220.
[0046] Water is supplied into the atomizing chamber 200 through the second spray nozzle 240. During the process of water being sprayed into the atomizing chamber 200 through the second spray nozzle 240, a portion of the water undergoes jet atomization (first-stage atomization), while the remaining water impacts the high-speed rotating atomizing wheel 300, resulting in some water undergoing fragmentation atomization (second-stage atomization), and the rest falls to the bottom of the atomizing chamber 200 for collection and deposition. After a set time, the second spray nozzle 240 stops supplying water. The water deposited at the bottom of the atomizing chamber 200 is then sprayed back into the atomizing chamber 200 through the first spray nozzle 210 by the operating water pump. During the process of water being sprayed into the atomizing chamber 200 through the first spray nozzle 210, a portion of the water... A jet spray atomization (first-stage atomization) occurs. The remaining water impacts the high-speed rotating atomizing wheel 300, with some undergoing broken atomization (second-stage atomization), while the rest falls back to the bottom of the atomizing chamber 200 for collection and deposition. This process continues, constantly atomizing the remaining water in the atomizing chamber 200 until all the water is consumed. The fan 100 operates, forming the first airflow. As this airflow from the fan 100's outlet passes through the mist outlet 220 and is blown into the room, a negative pressure is created at the mist outlet 220. Under this negative pressure, the water mist flows out of the mist outlet 220 and is transported into the room along with the first airflow. Repeating this process continuously humidifies the indoor air.
[0047] The fan 100 is configured as a centrifugal fan with a volute 110 and an impeller 120. The volute 110 of the centrifugal fan is located on the outer top of the atomizing chamber 200. The air inlet of the volute 110 is located on the upper end wall of the volute 110 (the upper end wall of the volute 110 is the end wall of the volute 110 that is away from the top wall of the atomizing chamber 200). The air outlet of the volute 110 is located on the peripheral wall of the volute 110 and is arranged horizontally. The mist outlet 220 is located on the top wall of the atomizing chamber 200 and is arranged upward. The axis of the mist outlet 220 is perpendicular to the axis of the air outlet of the centrifugal fan volute 110. The pump body 500 includes a collector shroud 510 and an impeller 520 disposed within the collector shroud 510. The inlet and outlet of the pump body 500 are both located on the collector shroud 510.
[0048] Furthermore, such as Figure 2 As shown, the bottom of the atomizing chamber 200 is provided with a downwardly recessed water collection tank 250, and the inlet of the pump body 500 is located in the water collection tank 250.
[0049] The humidification component of this solution is applied to an air conditioner. The centrifugal fan can be installed inside the indoor heat exchange duct (the indoor heat exchange duct of the main body of the air conditioner). The atomizing chamber 200 is located on the outside of the indoor heat exchange duct, and the mist outlet 220 is located on the side wall of the indoor heat exchange duct and is connected to the inside of the indoor heat exchange duct.
[0050] The air conditioner provided by the embodiment of the present invention (not shown in the figure) includes a main body having an indoor heat exchange air duct and the humidifying component described in any of the above embodiments. The humidifying component is provided in the main body, and the fan 100 is arranged to blow the water mist from the mist outlet 220 along the indoor heat exchange air duct into the room through the first air beam.
[0051] This air conditioner has all the advantages of the humidifying component proposed in any of the above embodiments, which will not be elaborated here.
[0052] Among them, the air conditioner includes split air conditioners, integrated air conditioners, air duct machines, central air conditioners, etc.
[0053] To sum up, the humidifying component provided by the embodiment of the present invention sprays water into the atomization cavity from the first spray port. The water sprayed from the first spray port undergoes jet spray atomization to form water mist in the atomization cavity. The first air beam formed by the operation of the fan blows the water mist from the mist outlet into the room, realizing the humidification of the indoor air. This solution not only has a simple structure, low manufacturing cost, low energy consumption, and good humidification effect, but is also very easy to be applied to air conditioners.
[0054] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by terms such as "upper", "lower", "one side", "the other side", "one end", "the other end", "edge", "opposite", "four corners", "perimeter", "the structure of the character 'kou'" is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the structure referred to has a specific orientation, is constructed and operated in a specific orientation, and therefore cannot be understood as a limitation to the present invention.
[0055] In the description of the embodiments of the present invention, unless otherwise clearly specified and limited, the terms "connection", "direct connection", "indirect connection", "fixed connection", "installation", "assembly" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; the terms "installation", "connection", "fixed connection" can be directly connected, or indirectly connected through an intermediate medium, and can be the internal communication of two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0056] Although the disclosed embodiments of the present invention are as above, the content described is only the embodiments adopted for the convenience of understanding the present invention, and is not used to limit the present invention. Any person skilled in the art within the scope of the present invention can make any modifications and changes in the form and details of the implementation without departing from the spirit and scope disclosed by the present invention. However, the patent protection scope of the present invention shall still be defined by the appended claims.
Claims
1. A humidification component, characterized in that, include: Fan; and The atomizing chamber is provided with a first spray port and a mist outlet. The first spray port is configured to spray water into the atomizing chamber and atomize the sprayed water into a water mist. The fan is configured to generate a first air blast to blow the water mist from the mist outlet into the room based on its operation.
2. The humidification component according to claim 1, characterized in that, Also includes: The pump body has an inlet connected to the interior of the atomizing chamber and an outlet connected to the inlet of the first spray port. The outlet of the first spray port faces the interior of the atomizing chamber. The pump body is configured to supply water accumulated in the atomizing chamber to the first spray port based on operation.
3. The humidification component according to claim 2, characterized in that, Also includes: An atomizing rotor is disposed within the atomizing chamber, with the outlet end of the first spray nozzle facing the atomizing rotor. The atomizing rotor is configured to break and atomize the water sprayed onto it to form a water mist based on its operation.
4. The humidification component according to claim 3, characterized in that, Also includes: A rotary drive device is provided, wherein the fan, the atomizing wheel, and the pump body are all connected to the rotary drive device for transmission, and the rotary drive device is configured to drive the fan, the atomizing wheel, and the pump body to operate.
5. The humidification component according to claim 4, characterized in that, The rotary drive device includes a drive motor, the rotation shaft of the drive motor is vertically arranged, and the impeller of the fan, the atomizing wheel and the impeller of the pump body are all located on the rotation shaft of the drive motor.
6. The humidification component according to claim 2, characterized in that, The atomizing chamber is also provided with a connection port. The connection port and the first injection port are both located on the peripheral wall of the atomizing chamber. The pump body is located inside the atomizing chamber. The inlet of the pump body is located at the inner bottom of the atomizing chamber. The outlet of the pump body is connected to the end of the connection port facing the inside of the atomizing chamber. The inlet end of the first injection port faces the outside of the atomizing chamber. The end of the connection port facing the outside of the atomizing chamber is connected to the inlet end of the first injection port.
7. The humidification component according to any one of claims 1 to 6, characterized in that, The atomizing chamber is also provided with a second spray port. The inlet end of the second spray port is configured to be connected to the water supply device, and the outlet end of the second spray port faces the interior of the atomizing chamber and is configured to atomize the sprayed water into a water mist.
8. The humidification component according to claim 7, characterized in that, Also includes: An intermittent water supply device is located outside the atomizing chamber. The outlet of the intermittent water supply device is connected to the inlet end of the second jet nozzle. The water supply device includes the intermittent water supply device.
9. The humidification component according to any one of claims 1 to 6, characterized in that, The air inlet of the fan is connected to the atomizing chamber through the mist outlet, and the air outlet of the fan is located outside the atomizing chamber; or The air inlet and air outlet of the fan are both connected to the outside of the atomizing cavity, and the air outlet of the fan faces the axis of the mist outlet on one side of the axis of the mist outlet.
10. An air conditioner, characterized in that, The device includes a main body with an indoor heat exchange duct and a humidification component as described in any one of claims 1 to 9, the humidification component being disposed on the main body, and the fan being configured to blow water mist from the mist outlet along the indoor heat exchange duct into the room via the first air stream.