An atomizing device

By setting spacers and optimizing the atomization path in the atomizing device, the problems of uneven atomization particles and noise were solved, achieving a more uniform aroma diffusion effect and reducing noise.

CN122273704APending Publication Date: 2026-06-26GUANGZHOU CHIYANG SCENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
GUANGZHOU CHIYANG SCENT TECH CO LTD
Filing Date
2026-05-26
Publication Date
2026-06-26

AI Technical Summary

Technical Problem

Existing atomizing devices tend to produce large atomized particles during the atomization process, resulting in uneven aroma diffusion and easy condensation, and also generating noise when operating at high power.

Method used

By incorporating spacers in the atomizing device, the atomized particles are impacted and dispersed using the impactor. Combined with the design of inclined and transition surfaces, the impact and flow paths of the atomized particles are optimized, reducing the ejection of large particles and extending the ejection distance.

Benefits of technology

While preventing increased noise, the atomized particles are made smaller, the aroma diffusion effect is improved, and noise is reduced, avoiding the agglomeration of large particles and equipment contamination.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention provides an atomizing device, relating to the technical field of aromatherapy atomizing equipment. The atomizing device includes a mounting body, an atomizing body, a gas supply device, a liquid storage bottle, and a suction tube. The mounting body is connected to the liquid storage bottle, and the atomizing body is connected to the suction tube extending into the liquid storage bottle. The gas supply device supplies gas to the atomizing body. A chamber is formed within the mounting body, and a spacer is provided within the chamber, dividing the chamber into a first chamber and a second chamber. One end of the spacer has an impact portion, and the other end has a first mist outlet. The air outlet of the atomizing body points towards the impact portion. This invention, while preventing increased noise, utilizes a spacer so that the atomized particles impact the impact portion of the spacer, reducing the size of the atomized particles and extending the spray distance, further reducing the size of the atomized particles exiting the atomizing device.
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Description

Technical Field

[0001] This invention relates to the field of aromatherapy atomization equipment technology, specifically to an atomization device. Background Technology

[0002] With the advancement of technology and the improvement of the economic environment, people have developed various demands for the quality of their living spaces. In order to improve the surrounding smells or change the atmosphere and mood, various fragrance products with air-fragrant functions have appeared on the consumer market. Among them, atomizing devices have become one of the mainstream fragrance products because they can achieve uniform diffusion and long-lasting fragrance by atomizing essential oils, and are easy to operate and suitable for various scenarios.

[0003] The core working principle of existing atomizing devices is to atomize liquid aromatherapy essential oils through internal atomizing components and release them into the air. However, during the atomization process, there are often unsatisfactory atomization effects, such as the generation of large atomized particles. These large atomized particles cannot be fully dispersed in the air, making it difficult to achieve a uniform aroma diffusion effect. They are also prone to condensing into droplets and adhering to the atomizing device's outlet. Long-term accumulation not only wastes essential oils but also easily breeds bacteria, contaminating the equipment and affecting the aroma diffusion effect and hygiene safety in subsequent use.

[0004] In some applications, increasing the power of the air pump or the airflow intensity in the atomizing device can achieve the goal of smaller atomized particles. However, while this approach can reduce the size of atomized particles to some extent, it also inevitably brings a significant drawback: the air pump generates considerable noise when operating at high power.

[0005] Based on the above problems, existing atomizing devices need to be improved. Summary of the Invention

[0006] To address the aforementioned deficiencies in the prior art, this invention provides an atomizing device that, while preventing increased noise, incorporates a spacer. The atomized particles collide with the impact portion of the spacer, causing the particles to disperse and become smaller. Simultaneously, the spray distance is extended, further reducing the size of the atomized particles exiting the atomizing device and achieving a uniform aroma diffusion effect.

[0007] To achieve the objective of this invention, the present invention provides an atomizing device, comprising an installation body, an atomizing body, a gas supply device, a liquid storage bottle, and a suction tube. The atomizing body is disposed within the installation body, the installation body is connected to the liquid storage bottle, the atomizing body is connected to the suction tube extending into the liquid storage bottle, and the gas supply device is used to supply gas to the atomizing body.

[0008] The mounting body has a chamber, and a spacer is provided in the chamber to divide the chamber into a first chamber and a second chamber. The atomizing body is located in the second chamber. One end of the spacer has an impact part, and the other end has a first mist outlet. The bottom of the impact part has an inclined surface. The first mist outlet is away from the impact part, and the air outlet of the atomizing body points towards the impact part.

[0009] The liquid in the storage bottle is guided to the atomizing body through the suction tube for atomization. The atomized particles are sprayed into the second chamber and collide with the bottom of the impact part. After the impact, the atomized particles move along the inclined surface to the first mist outlet and are discharged from the first mist outlet into the first chamber.

[0010] Preferably, the angle α between the axis of the atomizing body's air outlet and the vertical line of the spacer is 10°-70°.

[0011] Preferably, the atomized particles ejected by the atomizing body move along the bottom of the inclined surface from the top of the inclined surface, and then are discharged from the first mist outlet into the first chamber.

[0012] Preferably, the bottom of the spacer is further provided with a transition surface, and the inclined surface is inclined along the direction of the transition surface;

[0013] The angle β between the inclined surface and the transition surface is 3°-12°.

[0014] Preferably, the angle θ between the axis of the air outlet of the atomizing body and the inclined surface is 40°-60°.

[0015] Preferably, the spacer includes a bottom component and a wall surrounding the outer periphery of the bottom component, and the impact portion is located on the lower surface of the bottom component;

[0016] The lower surface of the bottom component is also provided with a transition surface, the inclined surface is inclined along the direction of the transition surface, and the first mist outlet is opened on the bottom component and connected to the transition surface;

[0017] After the atomized particles are sprayed into the second chamber and come into contact with the inclined surface, the atomized particles move along the inclined direction of the inclined surface to the first mist outlet on the transition surface, and the atomized particles are discharged from the first mist outlet into the first chamber.

[0018] Preferably, the impact portion is recessed along the direction of the first chamber or protrudes along the direction of the second chamber.

[0019] Preferably, the atomizing body includes an atomizing core and an atomizing seat. The atomizing seat is provided with a connecting column, an air guiding column, a liquid suction column and a liquid return hole. The connecting column is connected to the air guiding column, and the atomizing core is fixed on the air guiding column and the liquid suction column.

[0020] The suction tube is inserted into the bottom of the atomizing seat and connected to the interior of the atomizing seat. The liquid in the storage bottle enters the suction column through the suction tube. After passing through the connecting column and the air guiding column, the gas is discharged from the air outlet of the atomizing core, thus atomizing the liquid in the liquid outlet of the atomizing core.

[0021] Preferably, the mounting body is provided with an air inlet pipe, and the connecting column is connected to the air inlet pipe through a guide. After passing through the air inlet pipe, the guide and the connecting column, the gas is discharged from the air outlet of the atomizing core to atomize the liquid in the liquid outlet of the atomizing core.

[0022] The spacer has a protruding post at its bottom, which is inserted into the top of the guide.

[0023] Preferably, the device also includes a housing, the mounting body is connected to the housing, and the gas supply device is located inside the bottom of the housing;

[0024] The installation body is provided with a connector, and a gas supply pipeline is formed inside the connector. The gas supply device is connected to the gas supply pipeline through a gas transmission pipe.

[0025] The bottom of the suction tube is equipped with a fragrance filter;

[0026] The mounting body includes a housing and a cover connected to the housing. The cover is provided with a second mist outlet, and the second mist outlet has a protruding step portion formed downwards.

[0027] The beneficial effects of this invention are as follows:

[0028] To prevent increased noise, a spacer is installed. The atomized particles collide with the impact part of the spacer, causing the particles to be dispersed and made smaller. At the same time, the spray distance is extended, which further reduces the size of the atomized particles that exit the atomizing device, achieving a uniform aroma diffusion effect. Attached Figure Description

[0029] The above and other objects, features, and advantages of the present invention will become clearer through a more detailed description of the preferred embodiments illustrated in the accompanying drawings. The same reference numerals denote the same parts throughout the drawings, and the drawings are not intentionally drawn to scale with actual dimensions; the focus is on illustrating the gist of this application.

[0030] Figure 1 This is a three-dimensional view of the atomizing device;

[0031] Figure 2 This is a side view of the atomizing device;

[0032] Figure 3 for Figure 2 Sectional view of AA;

[0033] Figure 4 This is a schematic diagram of the atomizing device without a cover.

[0034] Figure 5 This is a structural schematic diagram of the spacer;

[0035] Figure 6 This is a schematic diagram of the atomizing body.

[0036] Figure 7 This is a schematic diagram of the atomizing base.

[0037] Figure 8 This is a schematic diagram of the structure of the suction tube and the fragrance filter;

[0038] Figure 9 This is a schematic diagram of the included angle α;

[0039] Figure 10 This is a schematic diagram of the included angle β;

[0040] Figure 11 This is a schematic diagram of the structure with included angle θ.

[0041] Attached image labels:

[0042] Mounting body 100, chamber 110, first chamber 111, second chamber 112, boss 120, protrusion 121, air inlet pipe 130, connector 140, air supply pipe 141, shell 150, cover 160, second mist outlet 161, step 162;

[0043] Atomizing body 200, atomizing core 210, atomizing base 220, connecting column 221, air guide column 222, liquid suction column 223, liquid return hole 224;

[0044] Guide component 300;

[0045] Spacer 400, impact part 410, inclined surface 411, transition surface 412, notch 420, first mist outlet 430, protrusion 440, bottom part 450, wall surface 460;

[0046] Liquid storage bottle 500;

[0047] 600 suction tube, 610 fragrance filter;

[0048] Gas supply device 700, gas pipeline 710;

[0049] 800 for the outer casing. Detailed Implementation

[0050] To facilitate understanding of the present invention, a more comprehensive description of the present invention will be given below with reference to the accompanying drawings.

[0051] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to and integrated with the other component, or there may be an intervening component present. The terms "mounted," "one end," "the other end," and similar expressions used in this document are for illustrative purposes only.

[0052] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this applies. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0053] The following is combined Figures 1 to 11 The embodiments of the present invention will be described below. It should be understood that the following description is merely an illustrative embodiment of the present invention and does not constitute any limitation on the present invention.

[0054] like Figure 1-11 As shown, an atomizing device includes a housing 800, a mounting body 100, an atomizing body 200, a gas supply device 700, a liquid storage bottle 500, and a suction tube 600. The mounting body 100 is connected to the housing 800. The gas supply device 700 is located inside the bottom of the housing 800. The atomizing body 200 is located inside the mounting body 100. The mounting body 100 is threadedly connected to the liquid storage bottle 500. The atomizing body 200 is connected to the suction tube 600, which extends into the liquid storage bottle 500. In this application, the gas supply device 700 is an air pump, used to supply gas to the atomizing body 200. The mounting body 100 is provided with a connector 140, within which a gas supply pipe 141 is formed. The gas supply device 700 is connected to the gas supply pipe 141 via a gas delivery pipe 710.

[0055] The mounting body 100 has a chamber 110, and a spacer 400 is provided in the chamber 110. The spacer 400 divides the chamber 110 into a first chamber 111 and a second chamber 112. By providing an additional chamber 110 (i.e., the second chamber 112), not only can the essential oil be prevented from leaking when the atomizing device is tilted, but also the atomized particles passing through the second chamber 112 will first collide with the bottom of the spacer 400, making the atomized particles smaller. This effectively filters out larger atomized particles, resulting in smaller sprayed atomized particles.

[0056] In this application, the atomizing body 200 is located in the second chamber 112. One end of the spacer 400 is formed with an impact part 410 and the other end is provided with a first mist outlet 430. The bottom of the impact part 410 is formed with an inclined surface 411. The first mist outlet 430 is away from the impact part 410, and the air outlet of the atomizing body 200 points towards the impact part 410.

[0057] The liquid in the storage bottle 500 is guided to the atomizing body 200 through the suction tube 600 for atomization. The atomized particles are sprayed into the second chamber 112 and collide with the bottom of the impact part 410. After the impact, the atomized particles move along the inclined surface of the impact part 410 to the first mist outlet 430, and are discharged from the first mist outlet 430 into the first chamber 111. To prevent increased noise, a spacer 400 is provided. The atomized particles collide with the impact part 410 of the spacer 400, causing the atomized particles to be dispersed and made smaller. At the same time, the first mist outlet 430 is moved away from the impact part 410, and the spray distance is extended, which further reduces the size of the atomized particles sprayed outside the atomizing device, achieving a uniform aroma diffusion effect.

[0058] The impact portion 410 is recessed along the direction of the first chamber 111 or protrudes along the direction of the second chamber 112. This recessed or protruding configuration increases the contact area with the atomized particles, enhancing the impact and breaking effect of the atomized particles, further dispersing large atomized liquid particles, resulting in finer atomized particles and improving the uniformity of aromatherapy diffusion. In this embodiment, a recessed configuration is used.

[0059] The surface of the spacer 400 is inclined along one end of the impact part 410 to one end of the first mist outlet 430 so that the subsequent large atomized particles flow back into the liquid storage bottle 500 under their own gravity, reducing the discharge of large atomized particles from the first mist outlet 430.

[0060] The atomizing body 200 includes an atomizing core 210 and an atomizing base 220. The atomizing base 220 is provided with a connecting column 221, an air guide column 222, and a liquid suction column 223. The connecting column 221 is connected to the air guide column 222. The atomizing core 210 is fixed on the air guide column 222 and the liquid suction column 223. The liquid suction tube 600 is inserted into the bottom of the atomizing base 220 and is connected to the inside of the atomizing base 220. The liquid in the storage bottle 500 enters the liquid suction column 223 through the liquid suction tube 600. After passing through the connecting column 221 and the air guide column 222, the gas is discharged from the air outlet of the atomizing core 210, thus atomizing the liquid in the liquid outlet of the atomizing core 210.

[0061] The mounting body 100 is equipped with an air inlet pipe 130. The connecting column 221 is connected to the air inlet pipe 130 via a guide 300. After passing through the air inlet pipe 130, the guide 300, and the connecting column 221, the gas is discharged from the outlet of the atomizing core 210, atomizing the liquid at the liquid outlet of the atomizing core 210. The guide 300 is used to limit the gas flow path and prevent the gas in the air inlet pipe 130 from not flowing well to the air guide column 222, thereby ensuring the subsequent atomization effect.

[0062] The atomizing base 220 is equipped with a return port 224. Due to external factors such as device tilting, some essential oil may spill into the chamber 110. In this case, the return port 224 serves to create a directional return channel for the essential oil leaking from the storage bottle 500, guiding the essential oil that might otherwise remain in the chamber 110 back into the storage bottle 500, preventing unnecessary loss of essential oil. Furthermore, if essential oil remains in the chamber 110 for a long time, it may mix with impurities in the air, oxidize, and deteriorate, forming a viscous residue that, over time, can affect the use of the device. Therefore, by providing the return port 224, leaked essential oil can be promptly guided back to the storage bottle 500, fundamentally preventing the above-mentioned problems and ensuring that the chamber 110 remains clean, guaranteeing the normal operation of the atomizing device. At the same time, the return port 224 also allows larger atomized essential oil particles to fall back into the storage bottle 500.

[0063] The inner wall of the chamber 110 is provided with an annular boss 120, and the spacer 400 is provided on the boss 120. In this embodiment, the boss 120 is provided with a protrusion 121, and the spacer 400 is provided with a notch 420. The notch 420 of the spacer 400 is connected to the protrusion 121 so that the spacer 400 is fixed on the boss 120. The cooperation between the protrusion 121 and the notch 420 of the spacer 400 makes the spacer 400 fixed on the boss 120 by a snap-fit ​​method, which has a good fixing effect. Moreover, the cooperation between the protrusion 121 and the notch 420 of the spacer 400 also makes it easy for the user to distinguish the installation position.

[0064] In a preferred embodiment, the spacer 400 has a protrusion 440 at its bottom, which is inserted into the top of the guide 300. This can further prevent the spacer 400 from shifting position on the boss 120. Combined with the engaging structure of the protrusion 121 and the notch 420, double fixation is achieved, which further improves the stability of the overall structure and reduces the probability of the spacer 400 loosening after long-term use.

[0065] The angle α between the axis of the air outlet of the atomizing body 200 and the vertical line of the spacer 400 is 10°-70°; that is, the angle between the axis of the air outlet of the atomizing core 210 and the vertical line of the spacer 400 is 10°-70°. In a preferred embodiment, 30°-50° is selected. This angle range allows the atomized essential oil particles to more accurately impact the impact part 410 of the spacer 400, which not only allows large essential oil particles to be fully broken and atomized, improving the overall fineness of the mist, but also avoids excessive loss of atomization kinetic energy caused by direct vertical impact of the airflow, ensuring smooth mist output and improving aromatherapy diffusion efficiency.

[0066] The atomized particles ejected from the atomizing body 200 move along the bottom of the inclined surface 411 from the top. The atomized particles are then discharged from the first mist outlet 430 into the first chamber 111. The inclined surface can guide the flow of atomized particles and prevent particles from accumulating on the surface of the spacer. At the same time, in conjunction with the tilt angle of the atomizing core air outlet, the impact and breaking effect of large essential oil particles is further optimized. Large essential oil particles that are not completely atomized flow down the inclined surface 411 under the action of gravity and flow back to the atomizing base area.

[0067] The spacer 400 also has a transition surface 412 at the bottom. The inclined surface 411 is inclined along the direction of the transition surface 412. The included angle β between the inclined surface 411 and the transition surface 412 is 3°-12°. This angle range can guide the large particles of essential oil to flow back smoothly and avoid the situation of liquid accumulation on the wall. At the same time, it will not cause the overall structure to occupy too much chamber space due to the excessive inclination angle, ensuring that the atomized particles have enough discharge space and maintaining a stable mist output.

[0068] The angle θ between the axis of the air outlet of the atomizing body 200 and the inclined surface 411 is 40°-60°. This angle range can further optimize the impact effect of the atomized airflow, so that the essential oil forms more uniform and delicate small particles after impact, and also reduce kinetic energy loss and avoid obstruction of mist output.

[0069] The spacer 400 includes a bottom part 450 and a wall surface 460 surrounding the outer periphery of the bottom part 450. The impact part 410 is located on the lower surface of the bottom part 450. The lower surface of the bottom part 450 is also provided with a transition surface 412. The inclined surface 411 is inclined along the direction of the transition surface 412. The first mist outlet 430 is opened on the bottom part 450 and communicates with the transition surface 412. After the atomized particles are sprayed into the second chamber 112 and come into contact with the inclined surface 411, the atomized particles move along the inclined direction of the inclined surface 411 to the first mist outlet 430 on the transition surface 412. The atomized particles are discharged from the first mist outlet 430 into the first chamber 111.

[0070] The bottom of the suction tube 600 is equipped with a fragrance filter 610, which has multiple filter holes to filter impurities in the essential oil. Essential oils may contain plant residues, tiny sediments, or impurities introduced during blending. If these particles enter the atomizing core 210, they can easily clog the micropores, resulting in reduced mist output or no mist at all. Therefore, filtering out impurities not only prevents clogging and ensures a uniform and stable mist output, but also effectively protects the core components, making the atomizing device more durable. Furthermore, after the impurities are filtered out, the atomized essential oil molecules can better reproduce the original flavor of the fragrance.

[0071] The mounting body 100 includes a housing 150 and a cover 160 connected to the housing 150. The housing 150 and the cover 160 are connected by threads, which facilitates the subsequent opening of the cover 160 to repair and replace the components inside the housing 150. The cover 160 is provided with a second mist outlet 161 for discharging atomized particles.

[0072] The second mist outlet 161 has a protruding step 162 formed downwards, which serves to prevent oil leakage. Specifically, when the atomizing device is tilted, the essential oil in the storage bottle 500 flows from the inflow chamber 110 to the second mist outlet 161. Because of the step 162, which has a certain height, the liquid in the chamber 110 needs to accumulate to a certain height before it can flow out from the second mist outlet 161, thus preventing liquid leakage and serving as a leak-proof function.

[0073] In this application, the spacer 400 can be understood as a sound-absorbing cover. The air outlet of the atomizing core 210 first impacts the atomized particles against the impact portion 410 of the spacer 400, reducing the flow speed of the atomized particles. At the same time, the atomized particles are dispersed, making them smaller and filtering out larger particles. This reduces the number of large atomized particles dripping near the second mist outlet 161 of the atomizing device, ensuring a uniform aroma diffusion effect. Furthermore, compared to existing atomizing devices that generate noise by spraying atomized particles at high pressure and high speed, this also reduces the noise generated by these devices. This application incorporates a spacer 400 that divides the chamber 110 into two atomizing chambers. The atomized particles in the second chamber 112 first impact the impact portion 410 of the spacer 400, causing the atomized particles to lose a significant amount of kinetic energy upon impact, thereby reducing the flow velocity and noise generated during particle ejection. Simultaneously, the impacted atomized particles must pass through the impact portion 410 and then through the first mist outlet 430 to be ejected into the first chamber 111, effectively extending the ejection distance and further reducing the flow velocity of the atomized particles, thereby further reducing the noise generated during particle ejection.

[0074] In this specification, unless otherwise expressly specified and limited, "above" or "below" the second feature can mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. Furthermore, "above," "over," and "on top" of the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0075] In the description of this specification, the use of terms such as "preferred embodiment," "another embodiment," "some embodiments," "other embodiments," or "specific example," etc., refers to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of this application. In this specification, the illustrative expressions 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 a suitable manner in any one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0076] Although embodiments of this application have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting this application. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of this application.

Claims

1. An atomising device characterised in that, The device includes an installation body (100), an atomizing body (200), a gas supply device (700), a liquid storage bottle (500), and a suction tube (600). The atomizing body (200) is located inside the installation body (100). The installation body (100) is connected to the liquid storage bottle (500). The atomizing body (200) is connected to the suction tube (600) that extends into the liquid storage bottle (500). The gas supply device (700) is used to supply gas to the atomizing body (200). The mounting body (100) has a chamber (110) inside, and a spacer (400) is provided inside the chamber (110). The spacer (400) divides the chamber (110) into a first chamber (111) and a second chamber (112). The atomizing body (200) is located in the second chamber (112). One end of the spacer (400) has an impact part (410), and the other end has a first mist outlet (430). The bottom of the impact part (410) has an inclined surface (411). The first mist outlet (430) is away from the impact part (410), and the air outlet of the atomizing body (200) points towards the impact part (410). The liquid in the storage bottle (500) is guided to the atomizing body (200) through the suction tube (600) for atomization. The atomized particles are sprayed into the second chamber (112) and collide with the bottom of the impact part (410). After the impact, the atomized particles move along the inclined surface (411) to the first mist outlet (430) and are discharged from the first mist outlet (430) into the first chamber (111).

2. The atomizing device of claim 1, wherein The angle α between the axis of the air outlet of the atomizing body (200) and the vertical line of the spacer (400) is 10°-70°.

3. The atomizing device as described in claim 1, characterized in that, The atomized particles ejected by the atomizing body (200) move along the bottom of the inclined surface (411) from the top of the inclined surface (411), and then are discharged from the first mist outlet (430) into the first chamber (111).

4. The atomizing device as described in claim 1, characterized in that, The spacer (400) is also provided with a transition surface (412) at its bottom, and the inclined surface (411) is inclined along the direction of the transition surface (412); The angle β between the inclined surface (411) and the transition surface (412) is 3°-12°.

5. The atomizing device as described in claim 1, characterized in that, The angle θ between the axis of the air outlet of the atomizing body (200) and the inclined surface (411) is 40°-60°.

6. The atomizing device as described in claim 1, characterized in that, The spacer (400) includes a bottom part (450) and a wall surface (460) surrounding the outer periphery of the bottom part (450), and the impact part (410) is located on the lower surface of the bottom part (450). The lower surface of the bottom component (450) is also provided with a transition surface (412), the inclined surface (411) is inclined along the direction of the transition surface (412), and the first mist outlet (430) is opened on the bottom component (450) and communicates with the transition surface (412); After the atomized particles are sprayed into the second chamber (112) and come into contact with the inclined surface (411), the atomized particles move along the inclined direction of the inclined surface (411) to the first mist outlet (430) on the transition surface (412), and the atomized particles are discharged from the first mist outlet (430) into the first chamber (111).

7. The atomizing device as described in claim 1, characterized in that, The impact portion (410) is recessed along the direction of the first chamber (111) or the impact portion (410) is protruding along the direction of the second chamber (112).

8. The atomizing device as described in claim 1, characterized in that, The atomizing body (200) includes an atomizing core (210) and an atomizing base (220). The atomizing base (220) is provided with a connecting post (221), an air guide column (222), a liquid suction column (223), and a liquid return hole (224). The connecting post (221) is connected to the air guide column (222). The atomizing core (210) is fixed on the air guide column (222) and the liquid suction column (223). The suction tube (600) is inserted into the bottom of the atomizing seat (220) and communicates with the inside of the atomizing seat (220). The liquid in the storage bottle (500) enters the suction column (223) through the suction tube (600). After passing through the connecting column (221) and the air guide column (222), the gas is discharged from the air outlet of the atomizing core (210) to atomize the liquid in the liquid outlet of the atomizing core (210).

9. The atomizing device as described in claim 8, characterized in that, The mounting body (100) is provided with an air inlet pipe (130). The connecting column (221) is connected to the air inlet pipe (130) through the guide (300). After passing through the air inlet pipe (130), the guide (300) and the connecting column (221), the gas is discharged from the air outlet of the atomizing core (210) to atomize the liquid in the liquid outlet of the atomizing core (210). The spacer (400) has a protrusion (440) at its bottom, and the protrusion (440) is inserted into the top of the guide (300).

10. The atomizing device as described in claim 1, characterized in that, It also includes a housing (800), the mounting body (100) is connected to the housing (800), and the gas supply device (700) is located inside the bottom of the housing (800); The installation body (100) is provided with a connector (140), and a gas supply pipeline (141) is formed inside the connector (140). The gas supply device (700) is connected to the gas supply pipeline (141) through a gas transmission pipe (710). The bottom of the suction tube (600) is equipped with a fragrance filter (610); The mounting body (100) includes a housing (150) and a cover (160) connected to the housing (150). The cover (160) is provided with a second mist outlet (161), and the second mist outlet (161) has a protruding step (162) formed downward.