Humidification assembly and humidifier

By optimizing the structural design of the humidification component, including the arc-shaped air inlet channel and the air inlet grille, the problem of airflow kinetic energy loss is solved, efficient humidification of the humidifier is achieved, water droplet splashing is reduced, and the user experience is improved.

CN223307038UActive Publication Date: 2025-09-05GUANGDONG MIDEA CONSUMER ELECTRICS MFG CO LTD
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Patent Information

Application Number
CN202422316189.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-09-05
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

In existing humidifiers, after the airflow enters the air inlet channel, it flows along the inner wall of the channel, resulting in kinetic energy loss, which affects the driving efficiency of the airflow on the water mist and further affects the humidification effect.

Method used

A humidification assembly is designed, including a shell, an atomizing component, a cover and a mist guide pipe. By setting up arc-shaped air inlet channel side walls and an air inlet grille, the airflow path is optimized and the airflow collision loss is reduced. The interior of the mist guide pipe is divided into an air inlet channel and a mist inlet channel by a partition, thereby improving the efficiency of the airflow driving the water mist.

Benefits of technology

It improves the flow efficiency of the air flow and the flow rate of the water mist, improves the humidification efficiency and humidification effect of the humidifier, reduces the splashing of water droplets, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a humidification assembly and a humidifier, the humidification assembly comprises a shell, an atomization part, a cover body and a mist guide pipe, and the shell comprises an air inlet pipe and an atomization cavity; the atomizing part is arranged in the atomizing cavity; the cover body covers the atomization cavity, and the cover body is provided with a mist outlet; the mist guide pipe is arranged in the atomization cavity and comprises a partition plate, the partition plate divides the interior of the mist guide pipe into an air inlet channel and a mist inlet channel, the partition plate is provided with an air inlet, the air inlet channel is communicated with the mist inlet channel through the air inlet, the mist inlet end of the mist inlet channel is communicated with the atomization cavity, and the mist outlet end of the mist inlet channel is communicated with the mist outlet. The air inlet pipe is communicated with the air inlet channel; the first side wall of the air inlet channel extends in an arc shape from the side close to the air inlet pipe to the side close to the air inlet. Collision loss of the first side wall on airflow can be reduced, the influence of the first side wall on the airflow velocity is reduced, and the flowing efficiency of the airflow is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of humidifiers, and in particular to a humidifying component and a humidifier. Background Art

[0002] At present, in the relevant technology, the humidifier can deliver water mist to the surrounding environment through the mist outlet of the humidifying component, thereby achieving the purpose of humidification. The mist guide pipe of the humidifying component is provided with an air inlet channel and a mist guide channel. The water mist generated by the atomizing component will flow out of the humidifying component through the mist guide channel. The air inlet channel is provided with an air inlet. The air flow enters the air inlet channel from the air inlet and flows into the mist guide channel, and then the air flow drives the water mist to flow rapidly. However, since the air flow flows along the inner wall of the channel after entering the air inlet channel, the air flow will flow through the corners of the channel, which will cause kinetic energy loss of the air flow, affect the driving efficiency of the air flow on the water mist, and thus affect the humidification effect of the humidifier. Utility Model Content

[0003] The utility model aims to solve at least one of the technical problems existing in the prior art or related technologies.

[0004] To this end, a first aspect of the present invention provides a humidifying component.

[0005] A second aspect of the present invention provides a humidifier.

[0006] In view of this, the first aspect of the present invention provides a humidification component, including a shell, an atomizing component, a cover body and a mist guide pipe, the shell including an air inlet pipe and an atomizing chamber; the atomizing component is arranged in the atomizing chamber; the cover body covers the atomizing chamber, and the cover body has a mist outlet; the mist guide pipe is arranged in the atomizing chamber, the mist guide pipe includes a partition, the partition separates the interior of the mist guide pipe into an air inlet channel and a mist inlet channel, the partition is provided with an air inlet, the air inlet channel is connected with the mist inlet channel through the air inlet, the mist inlet end of the mist inlet channel is connected with the atomizing chamber, the mist outlet end of the mist inlet channel is connected with the mist outlet, and the air inlet pipe is connected with the air inlet channel; wherein, the first side wall of the air inlet channel extends in an arc shape from a side close to the air inlet pipe to a side close to the air inlet.

[0007] The present application provides a humidifying component that can generate water mist, thereby increasing the humidity of the surrounding environment and improving the user experience. The humidifying component also includes a shell, an atomizing component, a cover body and a mist guide pipe, wherein the shell includes an air inlet pipe and an atomizing chamber. The provision of the atomizing chamber can improve the sealing inside the humidifying component, making it easier for the humidifying component to evenly spray the water mist into the surrounding environment. The provision of the air inlet pipe can facilitate the diversion of the airflow, thereby facilitating the flow of water mist, improving the flow efficiency of the water mist, and thereby improving the humidification efficiency of the humidifying component. The atomizing component is arranged in the atomizing chamber; the cover body is arranged on the atomizing chamber, and the cover body has a mist outlet, which can improve the cleanliness of the atomizing chamber and avoid pollution. The mist guide pipe is arranged in the atomizing chamber. When the humidifying assembly is working, the atomizing component in the atomizing chamber generates water mist, which enters the mist guide pipe along the mist inlet end of the mist guide pipe, and the water mist flows out of the humidifying assembly through the mist outlet along the mist guide pipe. By setting the mist guide pipe, the mist generated by the atomizing component can be guided, so that the mist generated by the atomizing component can stably flow out of the humidifying assembly along the mist guide pipe, thereby improving the transmission efficiency of the mist and thus improving the humidification efficiency. Among them, the mist guide pipe includes a partition, which separates the interior of the mist guide pipe into an air inlet channel and a mist inlet channel. The partition is provided with an air inlet. The air inlet channel is connected to the mist inlet channel through the air inlet. The mist inlet end of the mist inlet channel is connected to the atomizing chamber, and the mist outlet end of the mist inlet channel is connected to the mist outlet. The air inlet pipe is connected to the air inlet channel; the air flow flowing out of the air inlet pipe can enter the air inlet channel, and the air flow will enter the mist inlet channel along the air inlet channel. The flowing air flow will drive the water mist in the mist inlet channel to flow, thereby increasing the flow rate of the water mist and further improving the humidification efficiency of the humidifying assembly. By setting the first side wall of the air intake channel to extend in an arc shape from the side close to the air intake pipe to the side close to the air intake port, the arc-shaped first side wall can guide the airflow blown from the air intake pipe to the air intake port. At the same time, the arc-shaped extension design reduces wind resistance while also avoiding the direction of the airflow flowing out of the air intake pipe being perpendicular to the extension direction of the first side wall, which can reduce the collision loss of the first side wall on the airflow, reduce the influence of the first side wall on the airflow velocity, improve the flow efficiency of the airflow, and further improve the driving efficiency of the airflow on the water mist.

[0008] In addition, the humidifying component in the above technical solution provided by the present invention may also have the following additional technical features:

[0009] In some technical solutions of the present invention, optionally, the mist guide pipe further includes an air intake grille, which is arranged at the air inlet.

[0010] In this technical solution, the mist guide pipe also includes an air intake grille, which is disposed at the air inlet. Providing an air intake grille at the air inlet can reduce the air intake area of ​​the air inlet. When air flows from the air inlet pipe to the air inlet, the reduced air intake area of ​​the air inlet can increase the gas flow rate, further improving the efficiency of the air flow in driving the water mist, and thus enhancing the humidification efficiency of the humidification component. Furthermore, when air flows through the air inlet from the air inlet channel, it enters the channel with a larger cross-sectional area from the channel with a smaller cross-sectional area, which can increase the wind force at the air inlet, improve the air flow's effect on driving the water mist, facilitate the driving of the water mist into the surrounding environment of the humidification component, and improve the humidification efficiency.

[0011] In some technical solutions of the present invention, optionally, the air intake grille includes a plurality of blocking parts, the plurality of blocking parts are arranged in parallel from the first side wall to the partition, and a first gap is provided between two adjacent blocking parts among the plurality of blocking parts.

[0012] In this technical solution, the air intake grille includes a plurality of blocking portions, each arranged in parallel from the first sidewall to the partition, with a first gap between adjacent ones of the plurality of blocking portions. The provision of the blocking portions divides the air intake into a plurality of first gaps, thereby reducing the air guide area of ​​the air intake grille, increasing the airflow velocity, and further enhancing the airflow's effect on driving the water mist, facilitating the driving of the water mist into the surrounding environment of the humidification component and improving humidification efficiency.

[0013] In some technical solutions of the present invention, optionally, the air intake pipe extends into the air intake channel, and the air outlet of the air intake pipe faces the first side wall.

[0014] In this technical solution, the intake duct extends into the intake channel, with its outlet facing the first sidewall. Since the first sidewall extends in an arcuate shape, arranging the outlet facing the first sidewall can reduce the impact of the intake channel inner wall on the airflow flowing out of the outlet, reduce collision damage caused by the intake channel inner wall on the airflow, and increase the airflow velocity.

[0015] In some technical solutions of the present invention, optionally, a liquid discharge port is provided on the bottom wall of the atomizing chamber; the shell further comprises a boss, the boss is arranged around the liquid discharge port, and the side of the boss away from the bottom wall of the atomizing chamber is a first side of the boss; the mist guide pipe further comprises a tube body and a mist shield, the mist shield is connected to the tube body, extends toward the atomizing component, and is arranged around the atomizing component, and the side of the mist shield close to the atomizing component is the first side of the mist shield; wherein the first side of the mist shield is closer to the bottom wall of the atomizing chamber than the first side of the boss.

[0016] and a nozzle which is located on the top of the nozzle and which is located on the bottom of the nozzle and which is connected to the nozzle of the nozzle, so that the nozzle can be turned off and the nozzle can be turned off. The atomizing component can atomize water to produce water mist. When the liquid water in the atomizing chamber reaches a preset water level, the normal operation of the atomizing component can be guaranteed. The side wall of the boss can block the liquid in the atomizing chamber. When the liquid water level is higher than the vertical height of the boss, the liquid will flow into the area enclosed by the boss, and then the excess liquid in the atomizing chamber will flow out of the atomizing chamber along the drain port. After flowing out of the atomizing chamber, the liquid returns to the water tank, realizing the recovery of the liquid. By setting the boss, the water level in the atomizing chamber will not cross the boss until it exceeds the preset water level, and then flow back to the water tank through the drain port. The boss ensures that the water level in the atomizing chamber can be maintained at a certain height, and also avoids reducing the atomizing effect of the atomizing component due to the small amount of water in the atomizing chamber, thereby ensuring the humidification effect of the humidifying component, realizing the control of the water level in the atomizing chamber, ensuring the normal operation of the atomizing component, and improving the stability of the humidifying component during operation.

[0017] In some technical solutions of the present invention, optionally, a second gap is provided between the first side of the mist shield and the bottom wall of the atomization chamber.

[0018] In this technical solution, a second gap is provided between the first side of the mist shield and the bottom wall of the atomizing chamber, so that the liquid in the atomizing chamber can be guided out of the atomizing chamber through the second gap, thereby ensuring the circulation of the liquid and preventing the accumulation of liquid from affecting the flow of the mist.

[0019] In some technical solutions of the present invention, optionally, the mist inlet channel includes a first channel, a second channel and a third channel, the first channel is connected to the atomization chamber, the second channel is connected to the first channel, the third channel is connected to the second channel, and is connected to the mist outlet; wherein, the first channel and the second channel have different extension directions, and the second channel and the third channel have different extension directions.

[0020] In this technical solution, the mist inlet channel includes a first channel, a second channel, and a third channel. The first channel is connected to the atomizing chamber, the second channel is connected to the first channel, and the third channel is connected to the second channel and the mist outlet. The first channel and the second channel extend in different directions, and the second channel and the third channel extend in different directions. The water mist can be guided out of the atomizing chamber through the first channel, thereby improving the flow efficiency of the water mist, avoiding the water mist vortexing in the atomizing chamber, and facilitating the connection between the atomizing chamber and the surrounding environment. The second channel is connected to the first channel, and the third channel is connected to the second channel and the mist outlet. By setting three interconnected channels, it is easy to guide the flow of water mist, improve the humidification efficiency of the humidifying component, and extend the distance between the mist outlet and the atomizing component, thereby extending the splashing distance of the water droplets generated by the atomizing component and reducing the probability of water droplets splashing out of the mist outlet. By reducing the number of water droplets splashed by the humidifying component, the humidifying component is prevented from affecting the surrounding environment, thereby improving the user experience. Among them, by setting the extension directions of the first channel and the second channel to be different, and the extension directions of the second channel and the third channel to be different, the first channel, the second channel and the third channel can be folded and arranged, thereby blocking the water droplets splashing from the atomizing component and reducing the probability of water droplets splashing out of the mist outlet.

[0021] Specifically, the first channel, the second channel and the third channel are arranged in a folded manner, and the water droplets splashed from the atomizing component will splash along the first channel to the wall of the second channel, thereby reducing the probability of water droplets splashing out of the mist outlet. By setting the third channel, the splashing of water droplets can be further avoided, thereby improving the reliability of the humidification component.

[0022] In some technical solutions of the present invention, optionally, the mist outlet is arranged opposite to the third channel, and the mist outlet is staggered with the second channel.

[0023] In this technical solution, the mist outlet is arranged opposite the third channel, facilitating the spraying of mist out of the outlet. Furthermore, the mist outlet is staggered from the second channel to prevent water droplets from directly splashing out of the mist guide tube from the mist outlet after passing through the second channel. This also extends the splash distance of water droplets generated by the atomizing component, reducing the probability of water droplets splashing out of the mist outlet. By reducing the number of water droplets splashed by the humidification component, the impact of the humidification component on the surrounding environment is avoided. Specifically, the staggered angle between the mist outlet and the second channel can be designed based on the operating parameters of the humidification component.

[0024] In some technical solutions of the present invention, optionally, the tube body includes a first plate, a second plate and a guide portion, the first plate is provided with a mist inlet, the mist inlet is opposite to the atomization component, the second plate is located on the side of the first plate away from the atomization component, and a first channel is provided between the second plate and the first plate, the guide portion is conical and is provided on the second plate, and the tip of the guide portion is opposite to the mist inlet.

[0025] In this technical solution, the tube body includes a first plate, a second plate and a guide portion. The first plate is provided with a mist inlet, which is opposite to the atomizing component and can directional guide the water mist, divert the water mist in the atomizing chamber, and ensure that the water mist generated by the atomizing component can stably flow out of the atomizing chamber along the mist inlet. The second plate is located on the side of the first plate away from the atomizing component, and a first channel is provided between the second plate and the first plate. The guide portion is conical and is provided on the second plate, and the tip of the guide portion is opposite to the mist inlet. It can be achieved that after the water droplets entering the first channel from the mist inlet come into contact with the guide portion, they are rebounded onto the side walls around the first channel, preventing the water droplets from falling directly from the mist inlet back into the atomizing chamber, thereby reducing the sound of water droplets, and also preventing the backflow of water droplets from affecting the generation of water mist in the atomizing chamber, thereby improving the practicality and stability of the humidification component.

[0026] In some technical solutions of the present invention, optionally, the air inlet is arranged on a side of the partition close to the mist inlet, and the air outlet direction of the air inlet is toward the mist inlet.

[0027] In this technical solution, the air inlet is arranged on the side of the partition close to the mist inlet, and the air outlet direction of the air inlet is toward the mist inlet, which can improve the driving efficiency of the airflow outflowing from the air inlet on the water mist and reduce the collision loss of the airflow.

[0028] In some technical solutions of the present invention, optionally, the mist guide pipe also includes a third plate, a fourth plate and a water retaining portion, the third plate is connected to the first plate and extends along the height direction of the humidification component, the fourth plate is connected to the second plate and is arranged parallel to the third plate, and a second channel is provided between the fourth plate and the third plate, the water retaining portion is connected to the second plate, is located on the side of the second plate close to the fourth plate, and extends toward the first plate.

[0029] In this technical solution, the mist guide pipe also includes a third plate, a fourth plate and a water retaining portion. The third plate is connected to the first plate and extends in the height direction of the humidifying assembly, which can guide the flow of water mist in the height direction of the humidifying assembly. The fourth plate is connected to the second plate and arranged in parallel with the third plate. A second channel is provided between the fourth plate and the third plate. By providing the third and fourth plates, the installation structure of the second channel can be simplified, which facilitates the flow of water mist in the mist guide pipe. The water retaining portion is connected to the second plate, located on the side of the second plate close to the fourth plate, and extends toward the first plate. It can block splashing water droplets in the mist guide pipe and prevent water droplets from flying directly out of the mist outlet. Since the third plate and the fourth plate are respectively connected to the first plate and the second plate and extend in the height direction of the humidifying assembly, a bending structure can be formed in the mist guide pipe to block splashing water droplets and reduce the probability of water droplets directly splashing out of the humidifying assembly. Furthermore, adding a water retaining portion at the first bend of the mist guide pipe can block a small amount of liquid splashed out of the first channel.

[0030] In some technical solutions of the present invention, optionally, the mist guide pipe further includes a fifth plate, the fifth plate is connected to a side of the third plate away from the first plate, and a third channel is defined between the fifth plate and the cover body.

[0031] In this technical solution, the mist guide tube also includes a fifth plate, which is connected to the side of the third plate away from the first plate, and a third channel is defined between the fifth plate and the cover. This facilitates guiding the water mist out of the humidification component, improving the conduction efficiency of the water mist. Through the coordination of the third channel and the second channel, the distance between the atomizing component and the mist outlet can be extended, thereby extending the splash distance of the water droplets generated by the atomizing component, reducing the probability of water droplets splashing out of the mist outlet, and by reducing the number of water droplets splashing from the humidification component, the impact of the humidification component on the surrounding environment is avoided, thereby improving the user experience.

[0032] In some technical solutions of the present invention, optionally, the first plate is provided with a first water hole, and the first water hole is located on a side of the first plate close to the mist shield.

[0033] In this technical solution, the first plate is provided with a first water hole, and the first water hole is located on the side of the first plate close to the mist shield. The first plate is provided with a first water hole, and the first water hole is located on the side of the first plate close to the mist shield. When the atomizing component is working, the atomizing component oscillates and produces splashing water droplets, and the water droplets move in the mist guide pipe. The water droplets will contact the inner wall of the mist guide pipe, thereby realizing the reflux of the water droplets. By providing the first water hole on the first plate, it can be achieved that when the mist guide pipe is drained, the liquid can flow from the first plate to the mist shield, and then be drained to the atomizing chamber through the mist shield, thereby avoiding water droplets directly dripping into the atomizing chamber, and further reducing the sound of water droplets. By providing the first water hole to guide the water droplets, the influence of the reflux of water droplets on the water mist can be avoided, thereby improving the humidification efficiency of the humidifying component.

[0034] In some technical solutions of the present invention, optionally, the cover body is provided with a water injection port, which is communicated with the atomization chamber.

[0035] In this technical solution, the cover is provided with a water inlet, which is connected to the atomizing chamber. The cover is provided with a water inlet, which is connected to the atomizing chamber. Liquid water can be replenished through the water inlet, thereby improving the humidification efficiency of the humidifying component and facilitating user use.

[0036] A second aspect of the present invention provides a humidifier, comprising a water tank and a humidifying component as described in any one of the above technical solutions, wherein the humidifying component is arranged on the water tank.

[0037] The present application provides a humidifier comprising a water tank and a humidifying assembly according to any of the above technical solutions. Therefore, the humidifier has all the beneficial effects of the humidifier according to any of the above technical solutions. The humidifying assembly is disposed on the water tank, which improves stability and prevents the humidifier from shaking. Furthermore, the water tank can recycle liquid returned from the humidifying assembly, enabling liquid reuse.

[0038] In some technical solutions of the present invention, optionally, a drain port is provided on the bottom wall of the atomization chamber; the shell further includes a boss, which is arranged around the drain port, and water in the atomization chamber that exceeds the boss enters the area enclosed by the boss and flows back to the water tank from the drain port; and / or the atomization component is an ultrasonic atomization sheet.

[0039] In this technical solution, the bottom wall of the atomizing chamber is provided with a drain outlet; the shell also includes a boss, which is arranged around the drain outlet. Water in the atomizing chamber that exceeds the boss enters the area surrounded by the boss and flows back to the water tank from the drain outlet. Since the atomizing component can atomize water to generate water mist, when the liquid water in the atomizing chamber reaches a preset water level, the normal operation of the atomizing component can be ensured. The side wall of the boss can block the liquid in the atomizing chamber. When the liquid level is higher than the vertical height of the boss, the liquid will flow into the drain outlet surrounded by the boss, and then the excess liquid in the atomizing chamber will flow out of the atomizing chamber along the drain outlet and flow back to the water tank. At the same time, the boss is provided to ensure that the water level in the atomizing chamber can be maintained at a certain height, and to avoid reducing the atomizing effect of the atomizing component due to the small amount of water in the atomizing chamber, thereby ensuring the humidification effect of the humidifying component, realizing the control of the water level in the atomizing chamber, ensuring the normal operation of the atomizing component, and improving the stability of the humidifying component during operation.

[0040] The atomizing element can be configured as an ultrasonic atomizer, which can reduce its energy consumption and improve the humidifier's practicality. It can also reduce noise and extend the humidifier's lifespan. When the atomizing element is configured as an ultrasonic atomizer, the preset water level in the atomizing chamber ensures the proper operation of the ultrasonic atomizer.

[0041] Additional aspects and advantages of the present invention will be given in part in the following description and will become apparent from the following description or learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0042] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments in conjunction with the following drawings, in which:

[0043] Figure 1 shows one of the cross-sectional views of a humidifying assembly according to one embodiment of the present invention;

[0044] Figure 2A second cross-sectional view of a humidifying assembly according to an embodiment of the present invention is shown;

[0045] Figure 3 One of the structural schematic diagrams of a humidifying assembly according to an embodiment of the present utility model is shown;

[0046] Figure 4 A third cross-sectional view of a humidifying assembly according to an embodiment of the present invention is shown;

[0047] Figure 5 The second structural diagram of the humidifying assembly according to one embodiment of the present utility model is shown;

[0048] Figure 6 The third structural diagram of the humidification assembly according to one embodiment of the present invention is shown;

[0049] Figure 7 A fourth cross-sectional view of a humidifying assembly according to an embodiment of the present invention is shown;

[0050] Figure 8 Shows one of the structural schematic diagrams of a humidifier according to an embodiment of the present utility model;

[0051] Figure 9 The second structural schematic diagram of a humidifier according to an embodiment of the present utility model is shown.

[0052] in, Figures 1 to 9 The corresponding relationship between the reference numerals and component names is as follows:

[0053] 100 humidification assembly, 110 shell, 112 air inlet pipe, 113 air outlet, 114 atomizing chamber, 116 drain port, 118 boss, 120 atomizing component, 122 cover, 124 mist outlet, 126 water inlet, 130 mist guide pipe, 132 partition, 134 air inlet channel, 136 mist inlet channel, 138 air inlet, 140 first side wall, 142 air inlet grille, 144 blocking portion, 146 first gap, 150 tube body, 152 mist baffle, 154 first plate, 156 second plate, 158 guide portion, 160 second gap, 162 mist inlet, 164 third plate, 166 fourth plate, 168 fifth plate, 170 first channel, 172 second channel, 174 third channel, 176 water baffle, 180 first water hole, 200 humidifier, 210 water tank. DETAILED DESCRIPTION

[0054] In order to more clearly understand the above-mentioned objectives, features and advantages of the present invention, the present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that the embodiments of the present application and the features therein can be combined with each other without conflict.

[0055] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.

[0056] Refer to the following Figures 1 to 9 A humidifying assembly and a humidifier according to some embodiments of the present invention are described.

[0057] like Figure 1 and Figure 2 As shown, in an embodiment of the present invention, a humidifying assembly 100 is provided, comprising a housing 110, an atomizing component 120, a cover 122 and a mist guide pipe 130, wherein the housing 110 comprises an air inlet pipe 112 and an atomizing chamber 114; the atomizing component 120 is disposed in the atomizing chamber 114; the cover 122 is disposed in the atomizing chamber 114, and the cover 122 has a mist outlet 124; the mist guide pipe 130 is disposed in the atomizing chamber 114, and the mist guide pipe 130 comprises a partition 132, which divides the mist guide pipe 130 into two parts. An air inlet channel 134 and a mist inlet channel 136 are separated internally, and the partition 132 is provided with an air inlet port 138. The air inlet channel 134 is connected to the mist inlet channel 136 through the air inlet port 138. The mist inlet end of the mist inlet channel 136 is connected to the atomization chamber 114, and the mist outlet end of the mist inlet channel 136 is connected to the mist outlet 124. The air inlet pipe 112 is connected to the air inlet channel 134; wherein, the first side wall 140 of the air inlet channel 134 extends in an arc shape from a side close to the air inlet pipe 112 to a side close to the air inlet port 138.

[0058] The humidifying component 100 provided in the present application can generate water mist, thereby increasing the humidity of the surrounding environment and enhancing the user's experience. The humidifying component 100 also includes a housing 110, an atomizing component 120, a cover 122 and a mist guide pipe 130, wherein the housing 110 includes an air inlet pipe 112 and an atomizing chamber 114. The provision of the atomizing chamber 114 can improve the sealing inside the humidifying component 100, making it easier for the humidifying component 100 to evenly spray the water mist into the surrounding environment. The provision of the air inlet pipe 112 can facilitate the diversion of the airflow, thereby facilitating the flow of water mist, improving the flow efficiency of the water mist, and thereby improving the humidification efficiency of the humidifying component 100. The atomizing component 120 is arranged in the atomizing chamber 114; the cover 122 is provided on the atomizing chamber 114, and the cover 122 has a mist outlet 124, which can improve the cleanliness of the atomizing chamber 114 and avoid pollution. The mist guide pipe 130 is arranged in the atomizing chamber 114. When the humidifying assembly 100 is working, the atomizing component 120 in the atomizing chamber 114 will generate water mist. The water mist enters the mist guide pipe 130 along the mist inlet end of the mist guide pipe 130, and the water mist flows out of the humidifying assembly 100 from the mist outlet 124 along the mist guide pipe 130. By setting the mist guide pipe 130, the mist generated by the atomizing component 120 can be guided, so that the mist generated by the atomizing component 120 can stably flow out of the humidifying assembly 100 along the mist guide pipe 130, thereby improving the transmission efficiency of the mist and thus improving the humidification efficiency. Among them, the mist guide pipe 130 includes a partition 132, which separates the interior of the mist guide pipe 130 into an air inlet channel 134 and a mist inlet channel 136. The partition 132 is provided with an air inlet port 138. The air inlet channel 134 is connected to the mist inlet channel 136 through the air inlet port 138. The mist inlet end of the mist inlet channel 136 is connected to the atomization chamber 114, and the mist outlet end of the mist inlet channel 136 is connected to the mist outlet 124. The air inlet pipe 112 is connected to the air inlet channel 134; the air flow flowing out of the air inlet pipe 112 can enter the air inlet channel 134, and the air flow will enter the mist inlet channel 136 along the air inlet channel 134. The flowing air flow will drive the water mist in the mist inlet channel 136 to flow, thereby increasing the flow rate of the water mist and further improving the humidification efficiency of the humidification component 100. By setting the first side wall 140 of the air intake channel 134 to extend in an arc shape from the side close to the air intake pipe 112 to the side close to the air intake port 138, the arc-shaped first side wall 140 can guide the airflow blown from the air intake pipe 112 to the air intake port 138. At the same time, the arc-shaped extension design reduces wind resistance while also avoiding the direction of the airflow flowing out of the air intake pipe 112 being perpendicular to the extension direction of the first side wall 140. It can reduce the collision loss of the first side wall 140 on the airflow, reduce the influence of the first side wall 140 on the airflow velocity, improve the flow efficiency of the airflow, and further improve the driving efficiency of the airflow on the water mist.

[0059] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0060] The mist guide duct 130 further includes an air intake grille 142 , which is disposed at the air intake port 138 .

[0061] In this embodiment, the mist guide 130 further includes an air intake grille 142, which is disposed at the air inlet 138. Providing the air intake grille 142 at the air inlet 138 can reduce the air intake area of ​​the air inlet 138. When the air flows from the air inlet 112 toward the air inlet 138, the reduced air intake area of ​​the air inlet 138 can accelerate the gas flow rate, further improving the air flow's driving efficiency on the water mist, and thus improving the humidification efficiency of the humidification assembly 100. Furthermore, when the air flows from the air inlet channel 134 through the air inlet 138, the air flows from the channel with a larger cross-sectional area to the channel with a smaller cross-sectional area, which can increase the wind force at the air inlet 138, improve the air flow's driving effect on the water mist, facilitate driving the water mist into the surrounding environment of the humidification assembly 100, and improve the humidification efficiency.

[0062] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0063] The air intake grille includes a plurality of blocking portions 144 . The blocking portions 144 are arranged in parallel from the first side wall 140 to the partition plate 132 . A first gap 146 is defined between two adjacent blocking portions 144 .

[0064] In this embodiment, the air intake grille includes a plurality of blocking portions 144, each of which is arranged in parallel from the first sidewall 140 to the partition 132. A first gap 146 is defined between adjacent blocking portions 144. The provision of the blocking portions 144 divides the air inlet 138 into a plurality of first gaps 146, thereby reducing the air guide area of ​​the air intake grille, increasing the airflow velocity, and further enhancing the airflow's effect on driving the water mist, thereby facilitating the driving of the water mist into the surrounding environment of the humidification assembly 100 and improving humidification efficiency.

[0065] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0066] like Figure 1 and Figure 3 As shown, the air inlet pipe 112 extends into the air inlet passage 134 , and the air outlet 113 of the air inlet pipe 112 faces the first side wall 140 .

[0067] In this embodiment, the air inlet pipe 112 extends into the air inlet passage 134, and the air outlet 113 of the air inlet pipe 112 faces the first side wall 140. Since the first side wall 140 extends in an arc shape, the air outlet 113 is arranged to face the first side wall 140. This can reduce the impact of the inner wall of the air inlet passage 134 on the airflow flowing out of the air outlet 113, reduce the collision loss of the inner wall of the air inlet passage 134 on the airflow, and increase the flow rate of the airflow.

[0068] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0069] like Figure 1 、 Figure 2 and Figure 4 As shown, the bottom wall of the atomizing chamber 114 is provided with a liquid discharge port 116; the shell 110 also includes a boss 118, which is arranged around the liquid discharge port 116, and the side of the boss 118 away from the bottom wall of the atomizing chamber 114 is the first side of the boss 118; the mist guide pipe 130 also includes a tube body 150 and a mist shield plate 152, the mist shield plate 152 is connected to the tube body 150, extends toward the atomizing component 120, and is arranged around the atomizing component 120, and the side of the mist shield plate 152 close to the atomizing component 120 is the first side of the mist shield plate 152; wherein, the first side of the mist shield plate 152 is closer to the bottom wall of the atomizing chamber 114 than the first side of the boss 118.

[0070] In this embodiment, the bottom wall of the atomizing chamber 114 is provided with a drain port 116 for draining the liquid to prevent the accumulation of liquid from affecting the flow of the water mist; the housing 110 also includes a boss 118, which is arranged around the drain port 116. The boss 118 protruding from the drain port 116 can block the water flow and the water mist, and also facilitate the flow of the liquid into the drain port 116. The side of the boss 118 away from the bottom wall of the atomizing chamber 114 is the first side of the boss 118; the mist guide pipe 130 also includes a tube body 150 and a mist shield plate 152. The mist shield plate 152 is connected to the tube body 150, extends toward the atomizing component 120, and surrounds the atomizing component 120. The arrangement of component 120 can gather the water mist generated by the atomizing component 120 to prevent the water mist from diffusing in the atomizing chamber 114, thereby facilitating the flow of the water mist. The side of the mist shield 152 close to the atomizing component 120 is the first side of the mist shield 152; wherein, the first side of the mist shield 152 is closer to the bottom wall of the atomizing chamber 114 than the first side of the boss 118, and the side of the mist shield 152 close to the atomizing component 120 can be sealed by liquid. Since the water mist will be blocked by the liquid, the water mist can be prevented from flowing out of the mist guide pipe 130 through the liquid surface, thereby improving the sealing of the atomizing chamber 114 and thereby improving the mist guiding efficiency.

[0071] The atomizing component 120 can atomize water to produce water mist. When the liquid in the atomizing chamber 114 reaches a preset water level, the atomizing component 120 can be guaranteed to operate normally. The sidewalls of the boss 118 can block the liquid in the atomizing chamber 114. When the liquid level is higher than the vertical height of the boss 118, the liquid will flow into the area enclosed by the boss 118, and then the excess liquid in the atomizing chamber 114 will flow out of the atomizing chamber 114 through the drain port 116. After flowing out of the atomizing chamber 114, the liquid returns to the water tank 210, realizing liquid recovery. By providing the boss 118, the water level in the atomizing chamber 114 will not exceed the boss 118 until it exceeds a preset water level, and then flow back to the water tank 210 through the drain port 116. The boss 118 ensures that the water level in the atomizing chamber 114 can be maintained at a certain height, avoiding the atomization effect of the atomizing component 120 from being reduced due to the small amount of water in the atomizing chamber 114, thereby ensuring the humidification effect of the humidifying assembly 100, realizing the control of the water level in the atomizing chamber 114, ensuring the normal operation of the atomizing component 120, and improving the stability of the humidifying assembly 100 during operation.

[0072] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0073] A second gap 160 is defined between the first side of the mist shielding plate 152 and the bottom wall of the atomizing chamber 114 .

[0074] In this embodiment, a second gap 160 is defined between the first side of the mist shield 152 and the bottom wall of the atomizing chamber 114. Liquid in the atomizing chamber 114 can flow out of the atomizing chamber 114 through the second gap 160, ensuring liquid circulation and preventing liquid accumulation from affecting the flow of mist.

[0075] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0076] The mist inlet channel 136 includes a first channel 170, a second channel 172 and a third channel 174. The first channel 170 is connected to the atomization chamber 114, the second channel 172 is connected to the first channel 170, and the third channel 174 is connected to the second channel 172 and is connected to the mist outlet 124; wherein, the first channel 170 and the second channel 172 extend in different directions, and the second channel 172 and the third channel 174 extend in different directions.

[0077] In this embodiment, the mist inlet channel 136 includes a first channel 170, a second channel 172 and a third channel 174. The first channel 170 is connected to the atomization chamber 114, the second channel 172 is connected to the first channel 170, and the third channel 174 is connected to the second channel 172 and is connected to the mist outlet 124; wherein, the first channel 170 and the second channel 172 have different extension directions, and the second channel 172 and the third channel 174 have different extension directions. The water mist can be guided out of the atomizing chamber 114 through the first channel 170, thereby improving the flow efficiency of the water mist, preventing the water mist from swirling in the atomizing chamber 114, and facilitating the connection between the atomizing chamber 114 and the surrounding environment. The second channel 172 is connected to the first channel 170, and the third channel 174 is connected to the second channel 172, and is connected to the mist outlet 124. By setting up three interconnected channels, it is convenient to guide the flow of water mist, improve the humidification efficiency of the humidifying component 100, and extend the distance between the mist outlet 124 and the atomizing component 120, thereby extending the splashing distance of the water droplets generated by the atomizing component 120, reducing the probability of water droplets splashing out of the mist outlet 124, and by reducing the number of water droplets splashed by the humidifying component 100, the humidifying component 100 is prevented from affecting the surrounding environment, thereby improving the user experience. Among them, by setting the extension directions of the first channel 170 and the second channel 172 to be different, and the extension directions of the second channel 172 and the third channel 174 to be different, the first channel 170, the second channel 172 and the third channel 174 can be folded and arranged, thereby blocking the water droplets splashing from the atomization component 120 and reducing the probability of water droplets splashing out of the mist outlet 124.

[0078] Specifically, the first channel 170, the second channel 172 and the third channel 174 are arranged in a folded manner, and the water droplets splashed from the atomizing component 120 will splash along the first channel 170 to the wall of the second channel 172, thereby reducing the probability of water droplets splashing out of the mist outlet 124. By setting the third channel 174, the splashing of water droplets can be further avoided, thereby improving the reliability of the humidifying component 100.

[0079] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0080] like Figure 5 and Figure 6 As shown, the mist outlet 124 is arranged opposite to the third channel 174 , and the mist outlet 124 is arranged staggered with the second channel 172 .

[0081] In this embodiment, the mist outlet 124 is arranged relative to the third channel 174 to facilitate the spraying of water mist out of the mist outlet 124. The mist outlet 124 is staggered with the second channel 172 to prevent water droplets from directly splashing out of the mist guide tube 130 from the mist outlet 124 after passing through the second channel 172. It can also extend the splash distance of water droplets generated by the atomizing component 120, reduce the probability of water droplets splashing out of the mist outlet 124, and avoid the impact of the humidification component 100 on the surrounding environment by reducing the number of water droplets splashed by the humidification component 100. Specifically, the staggered angle between the mist outlet 124 and the second channel 172 can be designed according to the operating parameters of the humidification component 100.

[0082] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0083] The tube body 150 includes a first plate 154, a second plate 156 and a guide portion 158. The first plate 154 is provided with a mist inlet 162, which is opposite to the atomizing component 120. The second plate 156 is located on the side of the first plate 154 away from the atomizing component 120. A first channel 170 is provided between the second plate 156 and the first plate 154. The guide portion 158 is conical and is provided on the second plate 156. The tip of the guide portion 158 is opposite to the mist inlet 162.

[0084] In this embodiment, the tube body 150 includes a first plate 154, a second plate 156, and a guide portion 158. The first plate 154 is provided with a mist inlet 162, which is opposite to the atomizing component 120 and can directional guide the water mist, dredge the water mist in the atomizing chamber 114, and ensure that the water mist generated by the atomizing component 120 can stably flow out of the atomizing chamber 114 along the mist inlet 162. The second plate 156 is located on the side of the first plate 154 away from the atomizing component 120. A first channel 170 is defined between the second plate 156 and the first plate 154. The guide portion 158 is conical and is provided on the second plate 156. The tip of the guide portion 158 is opposite to the mist inlet 162. It can be achieved that after the water droplets entering the first channel 170 from the mist inlet 162 come into contact with the guide portion 158, they are bounced back to the side walls around the first channel 170, preventing the water droplets from directly falling back into the atomization chamber 114 from the mist inlet 162, thereby reducing the sound of water droplets, and also preventing the backflow of water droplets from affecting the generation of water mist in the atomization chamber 114, thereby improving the practicality and stability of the humidification component 100.

[0085] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0086] The air inlet 138 is disposed on a side of the partition 132 close to the mist inlet 162 , and the air outlet direction of the air inlet 138 is toward the mist inlet 162 .

[0087] In this embodiment, the air inlet 138 is arranged on the side of the partition 132 close to the mist inlet 162, and the air outlet direction of the air inlet 138 is toward the mist inlet 162, which can improve the driving efficiency of the air flow flowing out of the air inlet 138 on the water mist and reduce the collision loss of the air flow.

[0088] like Figure 1 As shown, the air outlet direction of the air inlet 138 is the direction indicated by arrow S1.

[0089] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0090] The mist guide pipe 130 also includes a third plate 164, a fourth plate 166 and a water retaining portion 176. The third plate 164 is connected to the first plate 154 and extends along the height direction of the humidification assembly 100. The fourth plate 166 is connected to the second plate 156 and is arranged parallel to the third plate 164. A second channel 172 is provided between the fourth plate 166 and the third plate 164. The water retaining portion 176 is connected to the second plate 156 and is located on the side of the second plate 156 close to the fourth plate 166, and extends toward the first plate 154.

[0091] In this embodiment, the mist guide 130 further includes a third plate 164, a fourth plate 166, and a water retaining portion 176. The third plate 164 is connected to the first plate 154 and extends along the height of the humidifying assembly 100, thereby guiding the flow of water mist along the height of the humidifying assembly 100. The fourth plate 166 is connected to the second plate 156 and arranged in parallel with the third plate 164. A second channel 172 is defined between the fourth plate 166 and the third plate 164. The provision of the third and fourth plates 164, 166, simplifies the installation structure of the second channel 172, facilitating the flow of water mist within the mist guide 130. The water retaining portion 176 is connected to the second plate 156, located on the side of the second plate 156 close to the fourth plate 166, and extends toward the first plate 154. This serves to block splashing water droplets within the mist guide 130, preventing them from directly exiting the mist outlet 124. Because the third plate 164 and the fourth plate 166 are connected to the first plate 154 and the second plate 156, respectively, and extend along the height direction of the humidifying assembly 100, a bend structure can be formed in the mist guide tube 130 to block splashing water droplets and reduce the probability of water droplets directly splashing out of the humidifying assembly 100. Furthermore, a water retaining portion 176 is added at the first bend of the mist guide tube 130 to block a small amount of liquid splashed from the first channel 170.

[0092] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0093] The mist guide tube 130 further includes a fifth plate 168 . The fifth plate 168 is connected to a side of the third plate 164 away from the first plate 154 . A third channel 174 is defined between the fifth plate 168 and the cover 122 .

[0094] In this embodiment, the mist guide tube 130 also includes a fifth plate 168, which is connected to the side of the third plate 164 away from the first plate 154, and a third channel 174 is provided between the fifth plate 168 and the cover 122. This facilitates guiding the water mist out of the humidifying component 100 and improves the conduction efficiency of the water mist. Through the cooperation of the third channel 174 and the second channel 172, the distance between the atomizing component 120 and the mist outlet 124 can also be extended, thereby extending the splash distance of the water droplets generated by the atomizing component 120, reducing the probability of water droplets splashing out of the mist outlet 124, and by reducing the number of water droplets splashed by the humidifying component 100, the humidifying component 100 is prevented from affecting the surrounding environment, thereby improving the user experience.

[0095] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0096] The first plate 154 is provided with a first water hole 180 . The first water hole 180 is located on a side of the first plate 154 close to the mist shielding plate 152 .

[0097] In this embodiment, the first plate 154 is provided with a first water hole 180, which is located on a side of the first plate 154 near the mist shield 152. When the atomizing component 120 is in operation, the atomizing component 120 oscillates and produces splashing water droplets. The water droplets move within the mist guide tube 130 and contact the inner wall of the mist guide tube 130, thereby achieving water droplet backflow. By providing the first water hole 180 on the first plate 154, when the mist guide tube 130 is draining, liquid can flow from the first plate 154 to the mist shield 152, and then be drained into the atomizing chamber 114 through the mist shield 152, preventing water droplets from directly dripping into the atomizing chamber 114 and further reducing the sound of water droplets. By providing the first water hole 180 to guide the water droplets, the influence of the backflow of the water droplets on the water mist can be avoided, thereby improving the humidification efficiency of the humidification component 100.

[0098] This embodiment provides a humidifying assembly 100. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0099] like Figure 7 As shown, the cover 122 is provided with a water injection port 126 , which is communicated with the atomization chamber 114 .

[0100] In this embodiment, the cover 122 is provided with a water inlet 126, which is in communication with the atomizing chamber 114. The cover 122 is provided with a water inlet 126, which is in communication with the atomizing chamber 114. Liquid water can be replenished through the water inlet 126, thereby improving the humidification efficiency of the humidifying assembly 100 and facilitating user use.

[0101] In an embodiment of the present invention, a humidifier 200 is provided, including a water tank 210 and a humidifying assembly 100 as described in any one of the above embodiments, wherein the humidifying assembly 100 is disposed on the water tank 210 .

[0102] like Figure 8 and Figure 9 As shown, the present application provides a humidifier 200, comprising a water tank 210 and a humidifying assembly 100 as in any of the above-mentioned embodiments. Therefore, the humidifier 200 has all the beneficial effects of the humidifier 200 as in any of the above-mentioned embodiments. The humidifying assembly 100 is disposed on the water tank 210, which can improve stability and prevent the humidifier 200 from shaking. At the same time, the water tank 210 can recover the liquid refluxed from the humidifying assembly 100, thereby realizing the reuse of the liquid.

[0103] This embodiment provides a humidifier 200. In addition to the technical features of the above embodiments, this embodiment further includes the following technical features.

[0104] The bottom wall of the atomizing chamber 114 is provided with a drain port 116; the shell further includes a boss 118, which is arranged around the drain port 116. Water in the atomizing chamber 114 that exceeds the boss 118 enters the area enclosed by the boss 118 and flows back to the water tank 210 from the drain port 116; and / or the atomizing component 120 is an ultrasonic atomizing sheet.

[0105] In this technical solution, a drain port 116 is provided on the bottom wall of the atomizing chamber 114; the shell further includes a boss 118, which is arranged around the drain port 116. Water in the atomizing chamber 114 that exceeds the boss 118 enters the area enclosed by the boss 118 and flows back to the water tank 210 from the drain port 116. Since the atomizing component 120 can atomize water to generate water mist, when the liquid in the atomizing chamber 114 reaches a preset water level, the normal operation of the atomizing component 120 can be ensured, and the side wall of the boss 118 can block the liquid in the atomizing chamber 114. When the liquid level is higher than the vertical height of the boss 118, the liquid will flow into the drain port 116 enclosed by the boss 118, and then the excess liquid in the atomizing chamber 114 will flow out of the atomizing chamber 114 along the drain port 116. After flowing out of the atomizing chamber 114, the liquid returns to the water tank 210, thereby realizing liquid recovery. At the same time, by providing the boss 118, the water level in the atomizing chamber 114 will not exceed the boss 118 until it exceeds the preset water level, and then flow back to the water tank 210 through the drain port 116. The boss 118 ensures that the water level in the atomizing chamber 114 can be maintained at a certain height, avoiding the reduction of the atomizing effect of the atomizing component 120 due to the small amount of water in the atomizing chamber 114, thereby ensuring the humidification effect of the humidifying assembly 100, realizing the control of the water level in the atomizing chamber 114, ensuring the normal operation of the atomizing component 120, and improving the stability of the humidifying assembly 100 during operation.

[0106] The atomizing component 120 can be configured as an ultrasonic atomizing plate, which can reduce the operating energy consumption of the atomizing component 120 and improve the practicality of the humidifier 200. At the same time, the use of an ultrasonic atomizing plate can also reduce noise and extend the service life of the humidifier 200. When the atomizing component 120 is configured as an ultrasonic atomizing plate, the preset water level in the atomizing chamber 114 is the water level that can ensure the normal operation of the ultrasonic atomizing plate.

[0107] The height of the boss 118 protruding from the bottom wall of the atomizing chamber 114 can be set to a preset water level.

[0108] Specifically, the height direction of the humidifying assembly 100 is direction A.

[0109] Specifically, a fan may be provided at the air inlet 138 to increase the velocity of the air flow, thereby further improving the driving efficiency of the gas on the water mist.

[0110] Specifically, by providing a mist guide 130 and locating the mist outlet 124 and the atomizing component 120 on either side of the atomizing chamber 114, it is possible to prevent the projections of the mist outlet 124 and the atomizing component 120 from overlapping in the height direction of the humidifying assembly 100, thereby preventing the mist outlet 124 and the atomizing component 120 from being directly opposite each other, further reducing the probability of water droplets splashing from the mist outlet 124 into the surrounding environment. While reducing liquid splashing, it can also prevent the impact of splashing liquid on electrical facilities, thereby improving the safety of the device during use.

[0111] Furthermore, the mist outlet 124 and the atomizing component 120 are respectively located on both sides of the atomizing chamber 114 . It can also be arranged that the atomizing component 120 and the mist outlet 124 are respectively located on both sides of the center line of the humidifying assembly 100 .

[0112] Furthermore, the atomization chamber 114 can improve the airtightness within the humidification assembly 100 , further improving the atomization efficiency while also providing installation space for the atomization component 120 .

[0113] The cover body 122 has a mist outlet 124, and the mist guide pipe 130 is arranged in the atomizing chamber 114. The mist inlet end of the mist guide pipe 130 is connected to the atomizing chamber 114, and the mist outlet end of the mist guide pipe 130 is connected to the mist outlet 124. When the humidifying assembly 100 is working, the atomizing component 120 in the atomizing chamber 114 will generate water mist, and the water mist enters the mist guide pipe 130 along the mist inlet end of the mist guide pipe 130, and the water mist flows out of the humidifying assembly 100 from the mist outlet 124 along the mist guide pipe 130. By setting the mist guide pipe 130, the mist generated by the atomizing component 120 can be guided, so that the mist generated by the atomizing component 120 can stably flow out of the humidifying assembly 100 along the mist guide pipe 130, thereby improving the transmission efficiency of the mist and thus improving the humidification efficiency. Among them, in the width direction of the humidifying component 100, by arranging the mist outlet 124 and the atomizing component 120 on both sides of the atomizing chamber 114 respectively, the distance between the atomizing component 120 and the mist outlet 124 can be extended, and then the splashing distance of the water droplets generated by the atomizing component 120 can be extended, and the probability of water droplets splashing out of the mist outlet 124 can be reduced. By reducing the number of water droplets splashed by the humidifying component 100, the impact of the humidifying component 100 on the surrounding environment is avoided, and the user experience is improved.

[0114] Specifically, if Figure 1 As shown, the gas flowing out of the air intake pipe 112 will pass through the air intake channel 134 and flow along the direction of F1. The gas will enter the mist inlet channel 136, thereby increasing the flow rate of the airflow, playing a role in driving the water mist. The gas drives the water mist to flow along the directions of F2 and F3, which can reduce wind resistance and also avoid the airflow direction flowing out of the air intake pipe 112 being perpendicular to the extension direction of the first side wall 140, which can reduce the collision loss of the first side wall 140 on the airflow, reduce the influence of the first side wall 140 on the airflow velocity, improve the flow efficiency of the airflow, and further improve the driving efficiency of the airflow on the water mist.

[0115] In the claims, specification and drawings of the present invention, the term "plurality" refers to two or more. Unless otherwise expressly defined, the orientation or positional relationship indicated by the terms "upper" and "lower" is based on the orientation or positional relationship shown in the drawings. It is only for the purpose of more conveniently describing the present invention and making the description process simpler. It is not intended to indicate or imply that the device or element referred to must have the specific orientation described, be constructed and operated in a specific orientation. Therefore, these descriptions cannot be understood as limiting the present invention. The terms "connect", "install", "fix" and the like should be understood in a broad sense. For example, "connection" can be a fixed connection between multiple objects, or a detachable connection between multiple objects, or an integral connection; it can be a direct connection between multiple objects, or an indirect connection between multiple objects through an intermediate medium. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood based on the specific circumstances of the above data.

[0116] In the claims, specification, and drawings of the present invention, the terms "one embodiment," "some embodiments," "a specific embodiment," and the like mean that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In the claims, specification, and drawings of the present invention, schematic representations of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0117] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that the present invention is susceptible to various modifications and variations. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.

Claims

1. A humidifying component, characterized in that: include: A housing, comprising an air inlet pipe and an atomization chamber; an atomizing component, the atomizing component being disposed in the atomizing chamber; A cover body, the cover body is arranged to cover the atomization chamber, and the cover body has a mist outlet; A mist guide pipe, the mist guide pipe is arranged in the atomization chamber, the mist guide pipe includes a partition, the partition separates the interior of the mist guide pipe into an air inlet channel and a mist inlet channel, the partition is provided with an air inlet, the air inlet channel is connected to the mist inlet channel through the air inlet, the mist inlet end of the mist inlet channel is connected to the atomization chamber, the mist outlet end of the mist inlet channel is connected to the mist outlet, and the air inlet pipe is connected to the air inlet channel; The first side wall of the air intake passage extends in an arc shape from a side close to the air intake pipe to a side close to the air intake port.

2. The humidifying assembly according to claim 1, characterized in that The mist guide pipe also includes: An air intake grille is arranged at the air intake.

3. The humidifying assembly according to claim 2, characterized in that The air intake grille comprises: There are multiple blocking parts, and the blocking parts are arranged in parallel from the first side wall to the partition. There is a first gap between two adjacent blocking parts in the blocking parts.

4. The humidifying assembly according to claim 1, characterized in that The air intake pipe extends into the air intake channel, and an air outlet of the air intake pipe faces the first side wall.

5. The humidifying assembly according to claim 1, characterized in that The bottom wall of the atomizing chamber is provided with a liquid discharge port; The housing further includes a boss, which is arranged around the liquid discharge port, and a side of the boss away from the bottom wall of the atomization chamber is a first side of the boss; The mist guide pipe further includes a pipe body and a mist shield, wherein the mist shield is connected to the pipe body, extends toward the atomizing component, and is arranged around the atomizing component, wherein a side of the mist shield close to the atomizing component is a first side of the mist shield; Wherein, the first side of the mist shield is closer to the bottom wall of the atomization chamber than the first side of the boss.

6. The humidifying assembly according to claim 5, characterized in that A second gap is defined between the first side of the mist shield and the bottom wall of the atomizing chamber.

7. The humidifying assembly according to claim 5, characterized in that The mist inlet channel comprises: a first channel, the first channel being in communication with the atomization chamber; a second channel, the second channel being in communication with the first channel; a third channel, the third channel being in communication with the second channel and the mist outlet; The first channel and the second channel extend in different directions, and the second channel and the third channel extend in different directions.

8. The humidifying assembly according to claim 7, characterized in that The mist outlet is arranged opposite to the third channel, and the mist outlet is staggered with the second channel.

9. The humidifying assembly according to claim 7, characterized in that: The tube body comprises: a first plate, the first plate being provided with a mist inlet, the mist inlet being opposite to the atomizing component; a second plate, the second plate being located on a side of the first plate away from the atomizing component, the first channel being defined between the second plate and the first plate; The guide portion is conical and is arranged on the second plate, and the tip of the guide portion is opposite to the mist inlet.

10. The humidifying assembly according to claim 9, characterized in that The air inlet is arranged on a side of the partition close to the mist inlet, and the air outlet direction of the air inlet is toward the mist inlet.

11. The humidifying assembly according to claim 9, characterized in that The mist guide pipe also includes: a third plate connected to the first plate and extending along a height direction of the humidifying assembly; a fourth plate, the fourth plate being connected to the second plate and arranged in parallel with the third plate, with the second channel being defined between the fourth plate and the third plate; The water retaining portion is connected to the second plate, is located on a side of the second plate close to the fourth plate, and extends toward the first plate.

12. The humidifying assembly according to claim 11, characterized in that The mist guide pipe also includes: A fifth plate is connected to a side of the third plate away from the first plate, and the third channel is defined between the fifth plate and the cover.

13. The humidifying assembly according to claim 9, characterized in that The first plate is provided with a first water hole, and the first water hole is located on a side of the first plate close to the mist shielding plate.

14. The humidifying assembly according to any one of claims 1 to 13, characterized in that The cover body is provided with a water injection port, and the water injection port is communicated with the atomization chamber.

15. A humidifier, characterized in that: include: water tank; The humidifying assembly according to any one of claims 1 to 14, wherein the humidifying assembly is arranged on the water tank.

16. The humidifier according to claim 15, characterized in that The bottom wall of the atomizing chamber is provided with a liquid discharge port; The housing further comprises a boss, which is arranged around the liquid discharge port, so that water in the atomization chamber that exceeds the boss enters the area enclosed by the boss and flows back to the water tank from the liquid discharge port; and / or The atomizing component is an ultrasonic atomizing sheet.