Atomization device

Through the design of blocking components and connecting channels, combined with a detachable cover, the problems of complex structure and high cost caused by the float structure in the humidifier are solved, and automatic control of the water level in the atomization chamber and stable atomization effect are achieved.

CN223484397UActive Publication Date: 2025-10-28GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202422462728.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-11
Publication Date
2025-10-28
Estimated Expiration
2034-10-11

AI Technical Summary

Technical Problem

Existing humidifiers use a float structure to control the water level in the atomizing tank, which results in a complex structure and high cost.

Method used

A blocking component and a connecting channel design is adopted. When the blocking component is in the yielding state, the water storage chamber and the atomization chamber are connected, and are disconnected in the blocking state. Combined with the detachable connection of the first cover body, the water storage chamber is sealed and automatically replenished with water, avoiding liquid sealing.

Benefits of technology

The structure is simplified, the cost is reduced, and the constant automatic control of the water level in the atomization chamber is achieved, ensuring the stability and convenience of the atomization effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an atomizing device. The atomizing device comprises an atomizing main body, a plugging component and a first cover body, the atomizing main body is provided with a water storage cavity and an atomizing cavity; a communication channel is arranged between the water storage cavity and the atomization cavity; the blocking component has a blocking state that at least part of the blocking component is blocked in the communicating channel and a receding state away from the communicating channel; when the blocking part is in the receding state, the water storage cavity communicates with the atomization cavity through the communicating channel; when the plugging part is in a plugging state, the water storage cavity and the atomization cavity are in a disconnected state; the first cover body is detachably connected with the atomization main body, so that the water storage cavity is closed or opened through the first cover body; when the water storage cavity is closed through the first cover body, the water storage cavity is a sealed cavity. According to the atomization device, a floater structure is omitted, so that the purposes of simplifying the structure and reducing the cost are achieved.
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Description

Technical Field

[0001] This utility model relates to the field of atomizing device technology, and more specifically, to an atomizing device. Background Art

[0002] Existing integrated humidifiers mainly use a float structure to control the water level in the atomizing tank to maintain a constant height. This design has the problems of complex structure and high cost. Utility Model Content

[0003] The main objective of this invention is to provide an atomizing device to solve the problem that existing humidifiers have complex structures due to the use of a float structure to control the water level in the atomizing tank.

[0004] To achieve the above objectives, this utility model provides an atomizing device, comprising: an atomizing body having a water storage chamber and an atomizing chamber; a connecting channel being provided between the water storage chamber and the atomizing chamber; a blocking component having a blocking state at least partially blocking within the connecting channel and a yielding state away from the connecting channel; when the blocking component is in the yielding state, the water storage chamber and the atomizing chamber are connected through the connecting channel; when the blocking component is in the blocking state, the water storage chamber and the atomizing chamber are disconnected; a first cover being detachably connected to the atomizing body to close or open the water storage chamber; when the water storage chamber is closed by the first cover, the water storage chamber is a sealed cavity.

[0005] Furthermore, the atomizing chamber includes a water storage chamber and a mist storage chamber; the atomizing device also includes an atomizing section disposed within the atomizing chamber, which is located between the water storage chamber and the mist storage chamber, so that the water in the water storage chamber is atomized to form mist when passing through the atomizing section, and the formed mist enters the mist storage chamber; a connecting channel is provided between the water storage chamber and the water storage chamber.

[0006] Furthermore, the atomizing body includes a first body component and a second body component, with a water storage cavity disposed on the first body component; the second body component is connected to the outside of the first body component so that a portion of the first body component and the second body component form an atomizing cavity; the first body component has a first preset opening communicating with the water storage cavity; the first cover is detachably connected to the first body component to cover the first preset opening of the first body component, thereby closing the water storage cavity.

[0007] Furthermore, the first body component is a columnar structure.

[0008] Furthermore, the first pre-set opening is located at the upper end of the first body component.

[0009] Furthermore, the connecting channel is located at the bottom of the water storage chamber.

[0010] Furthermore, the atomizing body includes a second body component and a third body component; the mist storage cavity is disposed on the third body component; the second body component is disposed around the third body component, and the inner wall of the second body component and the outer wall of the third body component are used to form the water storage cavity.

[0011] Furthermore, the upper end of the third body component is provided with a second preset opening that communicates with the mist storage chamber; the atomizing device also includes a mist outlet cover, which is provided with a mist outlet hole. The mist outlet cover is placed on the second preset opening of the third body component so that the mist in the mist storage chamber flows out through the mist outlet hole on the mist outlet cover.

[0012] Furthermore, the connecting channel is located at the lower part of the water storage cavity; the lower end of the third body component has a third preset opening that communicates with the mist storage cavity, and the atomizing part is disposed at the third preset opening of the third body component; there is a gap between the lower end of the third body component and the bottom wall of the water storage cavity; or the lower end of the third body component is in contact with the bottom wall of the water storage cavity.

[0013] Optionally, the blocking component includes a blocking body; when the blocking component is in a blocking state, at least a portion of the blocking body is disposed within the communication channel; when the blocking component is in a yielding state, the blocking body is moved away from the communication channel.

[0014] Optionally, the sealing component includes a sealing part and a blocking part; at least a portion of the sealing part is disposed within the communicating channel and has a through hole; the blocking part is movably connected to the sealing part to have a blocking state that blocks within the through hole and a yielding state that is away from the through hole; when the blocking part is in the yielding state, the water storage chamber and the atomizing chamber are connected through the through hole; when the blocking part is in the blocking state, the water storage chamber and the atomizing chamber are disconnected.

[0015] Furthermore, the sealing component also includes a connecting portion, one end of which is connected and fixed to the sealing portion, and the other end of which is connected and fixed to the sealing portion; at least part of the connecting portion is configured in a variable form to allow the sealing portion to switch between a sealing state and a yielding state.

[0016] Furthermore, the atomizing device is a humidifier, atomizer, or aroma diffuser.

[0017] According to the technical solution of this utility model, the atomizing device includes an atomizing body, a sealing component, and a first cover; the atomizing body has a water storage chamber and an atomizing chamber, and a connecting channel is provided between the water storage chamber and the atomizing chamber, the connecting channel penetrating the atomizing body along the distribution direction of the water storage chamber and the atomizing chamber.

[0018] The blocking component has a blocking state in which it is at least partially blocked in the connecting channel and a yielding state away from the connecting channel; when the blocking component is in the yielding state, the connecting channel is open and the water storage chamber and the atomizing chamber are connected through the connecting channel; when the blocking component is in the blocking state, the connecting channel is closed and the water storage chamber and the atomizing chamber are disconnected.

[0019] The first cover is detachably connected to the atomizing body, allowing the water storage chamber to be opened or closed via the first cover. When the first cover is detached from the atomizing body, it moves away from the water storage chamber, opening it and allowing water to be added or injected. When the first cover closes the water storage chamber, it is connected to the atomizing body, ensuring the water storage chamber is sealed and maintaining its airtightness.

[0020] In practice, when the first cover closes the water storage chamber, the chamber is sealed, causing the sealing component to switch to a yielding state. Water in the storage chamber flows into the atomizing chamber through the connecting channel. When the water level in the atomizing chamber does not exceed the position of the connecting channel, the pressure inside the storage chamber is the same as the external atmospheric pressure because the atomizing chamber is not sealed, and no liquid seal occurs. As the water level in the atomizing chamber increases, when it exceeds the position of the connecting channel, the pressure inside the storage chamber becomes lower than the external atmospheric pressure. Under the influence of this pressure difference, water in the storage chamber will no longer flow into the atomizing chamber, thus achieving a liquid seal effect.

[0021] When the water level in the atomizing chamber decreases due to atomization to below the level of the connecting channel, the water storage chamber reconnects to the outside through the connecting channel. This means the pressure inside the water storage chamber is once again equal to the external atmospheric pressure, eliminating the pressure difference. Water then flows back into the atomizing chamber through the connecting channel until the water level rises above the level of the connecting channel, re-establishing a liquid seal and preventing further water flow. This cycle automatically replenishes the atomizing chamber, ensuring a constant water level and thus achieving automatic control of the water level within the atomizing chamber.

[0022] Alternatively, the atomizing device may be a humidifier, atomizer, or aroma diffuser.

[0023] The atomizing device of this application eliminates the float structure in order to simplify the structure and reduce costs. Attached Figure Description

[0024] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:

[0025] Figure 1 A schematic diagram of the atomizing device according to the present invention is shown; wherein, the blocking component is configured in the first manner and is in a blocking state;

[0026] Figure 2 A schematic diagram of the atomizing device according to the present invention is shown; wherein, the blocking component is configured in the first manner, and the blocking component is in a yielding state;

[0027] Figure 3 A schematic diagram of the structure of the sealing component of the atomizing device according to the present invention is shown when the sealing component is configured in the first manner;

[0028] Figure 4 A schematic diagram of the structure of the first cover of the atomizing device according to the present invention is shown;

[0029] Figure 5 A schematic diagram of the atomizing device according to the present invention is shown; wherein, the blocking component is configured in the second manner, and the blocking component is in a blocking state;

[0030] Figure 6 A schematic diagram of the atomizing device according to the present invention is shown; wherein, the blocking component is configured in the second manner, and the blocking component is in a yielding state;

[0031] Figure 7 A schematic diagram of the structure of the atomizing body of the atomizing device according to the present invention is shown;

[0032] Figure 8 A schematic diagram of the structure of the sealing component of the atomizing device according to the present invention is shown when the sealing part is configured in a second manner; wherein the sealing part is in a sealing state;

[0033] Figure 9 A schematic diagram of the structure of the sealing component of the atomizing device according to the present invention is shown when the sealing component is configured in a second manner; wherein the sealing component is in a yielding state.

[0034] The above figures include the following reference numerals:

[0035] 10. Atomizing body; 101. First body component; 1011. Preset body portion; 1012. First preset opening; 1013. External thread; 102. Second body component; 103. Third body component; 1031. Second preset opening; 1032. Inclined surface;

[0036] 11. Water storage chamber; 12. Atomizing chamber; 121. Water storage section; 122. Mist storage section; 13. Connecting channel; 14. Atomizing section;

[0037] 20. Sealing component; 21. Sealing part; 211. Through hole; 212. First sealing section; 213. Second sealing section; 22. Sealing part; 221. Sealing body; 222. Sealing cover; 23. Connecting part; 24. Sealing main body; 241. First main body part; 242. Second main body part;

[0038] 30. First cover; 40. Fog outlet cover; 50. Base. Detailed Implementation

[0039] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0040] It should be noted that the following detailed descriptions are illustrative and intended to provide further explanation of this application. Unless otherwise specified, 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 application pertains.

[0041] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0042] This utility model provides an atomizing device with atomizing function. Please refer to [reference needed]. Figures 1 to 9 The atomizing device includes an atomizing body 10, a sealing component 20, and a first cover 30. The atomizing body 10 has a water storage chamber 11 and an atomizing chamber 12. A connecting channel 13 is provided between the water storage chamber 11 and the atomizing chamber 12. The connecting channel 13 passes through the atomizing body 10 along the distribution direction of the water storage chamber 11 and the atomizing chamber 12.

[0043] The blocking component 20 has a blocking state in which it is at least partially blocked in the connecting channel 13 and a yielding state away from the connecting channel 13; when the blocking component 20 is in the yielding state, the connecting channel 13 is in the open state, and the water storage chamber 11 and the atomizing chamber 12 are connected through the connecting channel 13; when the blocking component 20 is in the blocking state, the connecting channel 13 is in the closed state, and the water storage chamber 11 and the atomizing chamber 12 are disconnected.

[0044] The first cover 30 is detachably connected to the atomizing body 10, allowing the water storage chamber 11 to be closed or opened via the first cover 30. When the first cover 30 is detached from the atomizing body 10, and the first cover 30 is away from the water storage chamber 11, the water storage chamber 11 is opened, allowing water to be added or injected into it. When the first cover 30 closes the water storage chamber 11, the first cover 30 is connected to the atomizing body 10, and the water storage chamber 11 is sealed, ensuring its airtightness.

[0045] In the specific implementation process, when the first cover 30 closes the water storage chamber 11, the water storage chamber 11 becomes a sealed chamber, causing the sealing component 20 to switch to a yielding state. Water in the water storage chamber 11 flows into the atomizing chamber 12 through the connecting channel 13. When the water level in the atomizing chamber 12 does not exceed the position of the connecting channel 13, since the atomizing chamber 12 is not sealed, the pressure in the water storage chamber 11 is the same as the external atmospheric pressure, and no liquid seal phenomenon occurs. As the amount of water in the atomizing chamber 12 increases, when the water level in the atomizing chamber 12 exceeds the position of the connecting channel 13, the pressure in the water storage chamber 11 will be lower than the external atmospheric pressure. Under the action of the pressure difference, the water in the water storage chamber 11 will no longer flow into the atomizing chamber 12, thus achieving the liquid seal effect.

[0046] When the water level in the atomizing chamber 12 decreases due to atomization to below the level of the connecting channel 13, the water storage chamber 11 reconnects to the outside through the connecting channel 13. This means the pressure inside the water storage chamber 11 is once again equal to the external atmospheric pressure, eliminating the pressure difference. Water from the water storage chamber 11 can then flow back into the atomizing chamber 12 through the connecting channel 13, until the water level in the atomizing chamber 12 rises above the level of the connecting channel 13, thus re-establishing a liquid seal. Water from the water storage chamber 11 then stops flowing into the atomizing chamber 12. This cycle automatically replenishes water to the atomizing chamber 12, ensuring a constant water level and achieving automatic control of the water level within the atomizing chamber 12.

[0047] In the specific implementation process, when the first cover 30 moves away from the water storage chamber 11 to open the water storage chamber 11 and add or inject water into the water storage chamber 11, the sealing component 20 is in a sealing state to prevent water in the water storage chamber 11 from flowing into the atomizing chamber 12. In specific operation, first, the sealing component 20 is in a sealing state, then the first cover 30 is moved away from the water storage chamber 11 to open the water storage chamber 11 and add water into the water storage chamber 11; after adding water, the first cover 30 is then connected to the atomizing body 10 to close the water storage chamber 11, thereby maintaining the sealed state of the water storage chamber 11.

[0048] Alternatively, the atomizing device may be a humidifier, atomizer, or aroma diffuser.

[0049] In the specific implementation process, before using the atomizing device, the blocking component 20 must be removed from the connecting channel 13 so that the blocking component 20 is in a freeing state so that water can be added to the atomizing chamber 12. After the water is added, the atomizing device can be started to work.

[0050] The atomizing device of this application eliminates the float structure in order to simplify the structure and reduce costs.

[0051] In this embodiment, the atomizing chamber 12 includes a water storage chamber 121 and a mist storage chamber 122; the atomizing device also includes an atomizing part 14 disposed in the atomizing chamber 12, which is disposed between the water storage chamber 121 and the mist storage chamber 122, so that the water in the water storage chamber 121 is atomized to form mist when it passes through the atomizing part 14, and the formed mist enters the mist storage chamber 122.

[0052] A connecting channel 13 is provided between the water storage chamber 11 and the water storage chamber 121. When the blocking component 20 is in the yielding state, the water storage chamber 11 and the water storage chamber 121 are connected through the connecting channel 13; when the blocking component 20 is in the blocking state, the water storage chamber 11 and the water storage chamber 121 are disconnected.

[0053] In the specific implementation process, when the first cover 30 closes the water storage cavity 11, the water storage cavity 11 becomes a sealed cavity, causing the sealing component 20 to switch to a yielding state. Water in the water storage cavity 11 flows into the water storage chamber 121 through the connecting channel 13. When the water level in the water storage chamber 121 does not exceed the position of the connecting channel 13, since the water storage chamber 121 is not sealed, the pressure inside the water storage cavity 11 is the same as the external atmospheric pressure, and no liquid seal will occur. As the water in the water storage chamber 121 increases, when the water level in the water storage chamber 121 exceeds the position of the connecting channel 13, the pressure inside the water storage cavity 11 will be lower than the external atmospheric pressure. Under the action of the pressure difference, water in the water storage cavity 11 will no longer flow into the water storage chamber 121, thus achieving a liquid seal.

[0054] When the water level in the water storage chamber 121 decreases due to atomization to below the level of the connecting channel 13, the water storage chamber 11 reconnects to the outside through the connecting channel 13. This means the pressure inside the water storage chamber 11 is once again equal to the external atmospheric pressure, eliminating the pressure difference. Water can then flow back into the water storage chamber 121 through the connecting channel 13 until the water level in the water storage chamber 121 rises above the level of the connecting channel 13, re-establishing the liquid seal. Water then stops flowing into the water storage chamber 121. This cycle allows for automatic water replenishment to the water storage chamber 121, ensuring a constant water level and thus achieving automatic water level control.

[0055] Optionally, the connecting channel 13 is located at the lower part of the water storage cavity 121, that is, there is a certain distance between the connecting channel 13 and the bottom wall of the water storage cavity 121; each time water is added from the water storage cavity 11 into the water storage cavity 121, the water addition automatically stops when the water level just exceeds the position of the connecting channel 13; therefore, the distance between the connecting channel 13 and the bottom wall of the water storage cavity 121 is set according to the actual situation.

[0056] Optionally, the atomizing section 14 is an atomizing plate. Optionally, the atomizing plate is circular.

[0057] In this embodiment, the atomizing body 10 includes a first body component 101 and a second body component 102. A water storage cavity 11 is disposed on the first body component 101. The second body component 102 is connected to the outside of the first body component 101, so that a portion of the body of the first body component 101 and the second body component 102 form an atomizing cavity 12, that is, the outer wall surface of a portion of the body of the first body component 101 and the inner wall surface of the second body component 102 form an atomizing cavity 12.

[0058] Specifically, the first body component 101 includes a preset body portion 1011, which is a part of the first body component 101; the preset body portion 1011 and the second body component 102 form an atomizing cavity 12, that is, the outer wall surface of the preset body portion 1011 and the inner wall surface of the second body component 102 form the atomizing cavity 12. A connecting channel 13 is formed on the preset body portion 1011.

[0059] Optionally, the first body component 101 is a columnar structure; for example, the first body component 101 is a cylindrical structure.

[0060] Optionally, when the first body member 101 is a columnar structure, a portion of the body part of the first body member 101 forms a preset body part 1011 along the circumference of the first body member 101.

[0061] Specifically, the second body component 102 is a strip structure, and both ends of the second body component 102 are connected to the outside of the first body component 101, so that the preset body part 1011 and the second body component 102 form an atomizing cavity 12.

[0062] In this embodiment, the first body component 101 has a first preset opening 1012 communicating with the water storage cavity 11, so as to inject or add water into the water storage cavity 11 through the first preset opening 1012, that is, the first preset opening 1012 is a water inlet. The first cover 30 and the first body component 101 are detachably connected. When the first cover 30 is placed on the first preset opening 1012 of the first body component 101, the first cover 30 and the first body component 101 are connected, at which time the first cover 30 closes the water storage cavity 11, and the water storage cavity 11 is a sealed cavity. By disassembling the first cover 30 and the first body component 101, the first preset opening 1012 is opened, thereby opening the water storage cavity 11.

[0063] Optionally, the first preset opening 1012 is opened at the upper end of the first body 101, that is, the atomizing device of this application is top-filled with water.

[0064] Optionally, the first cover 30 and the first body 101 are threaded together. That is, the upper outer circumferential surface of the first body 101 is provided with an external thread 1013.

[0065] Optionally, the connecting channel 13 is located at the lower part of the water storage chamber 11.

[0066] In this embodiment, the atomizing body 10 further includes a third body component 103; a mist storage cavity 122 is disposed on the third body component 103; a second body component 102 is disposed around the third body component 103; a water storage cavity 121 is formed between the second body component 102 and the third body component 103, that is, the inner wall of the second body component 102 and the outer wall of the third body component 103 are used to form the water storage cavity 121.

[0067] Specifically, the second body member 102 is connected to the outside of the first body member 101 and surrounds the third body member 103, so that the outer wall of a portion of the first body member 101, the inner wall of the second body member 102, and the outer wall of the third body member 103 form a water storage cavity 121.

[0068] Optionally, the third body member 103 is a columnar structure, and the outer wall of part of the first body member 101, the inner peripheral surface of the second body member 102, and the outer peripheral surface of the third body member 103 form a water-retaining cavity 121. For example, the third body member 103 is a cylindrical structure.

[0069] In this embodiment, the upper end of the third body component 103 is provided with a second preset opening 1031 that communicates with the mist storage chamber 122, so that the mist in the mist storage chamber 122 flows out through the second preset opening 1031. The atomizing device also includes a mist outlet cover 40, which has a mist outlet hole. The mist outlet cover 40 is placed over the second preset opening 1031 of the third body component 103, so that the mist in the mist storage chamber 122 flows out through the mist outlet hole on the mist outlet cover 40.

[0070] Optionally, the fog outlet cover 40 is provided with multiple fog outlet holes.

[0071] In this embodiment, the lower end of the third body component 103 has a third preset opening that communicates with the mist storage chamber 122; the atomizing part 14 is disposed at the third preset opening at the lower end of the third body component 103.

[0072] Specifically, the lower end of the third body component 103 and the bottom wall of the water storage cavity 121 are arranged in a first manner: there is a gap between the lower end of the third body component 103 and the bottom wall of the water storage cavity 121, that is, the space between the lower end of the third body component 103 and the bottom wall of the water storage cavity 121 also belongs to the water storage cavity 121. In the specific implementation process, the water in the space between the lower end of the third body component 103 and the bottom wall of the water storage cavity 121 flows upward through the atomizing part 14 to be atomized into mist. The formed mist enters the mist storage cavity 122 upward and then flows out from the mist outlet hole on the mist outlet cover 40 at the upper end of the third body component 103. Optionally, the height of the connecting channel 13 is higher than the height of the lower end of the third body component 103.

[0073] Optionally, the lower end of the third body component 103 is open to form a third preset opening.

[0074] Optionally, the lower end of the third body component 103 is connected to the bottom wall of the water storage cavity 121 by a connector to provide fixed support for the third body component 103. The connector does not completely cover the periphery of the space directly opposite the lower end of the third body component 103 and the bottom wall of the water storage cavity 121 along the circumference of the third body component 103, so that water in the water storage cavity 121 can flow through the atomizing section 14.

[0075] Optionally, the upper and lower ends of the connector are fixedly connected to the lower end of the third body 103 and the bottom wall of the water storage cavity 121, respectively.

[0076] Optionally, the connector is a strip structure.

[0077] Optionally, there is at least one connector.

[0078] Optionally, the connector is not positioned opposite the communication channel 13 along the circumference of the third body component 103.

[0079] Specifically, the lower end of the third body component 103 and the bottom wall of the water storage cavity 121 are arranged in a second manner: the lower end of the third body component 103 contacts the bottom wall of the water storage cavity 121, and the lower end of the third body component 103 is connected and fixed to the bottom wall of the water storage cavity 121 to provide fixed support for the third body component 103.

[0080] Optionally, the height of the connecting channel 13 is higher than the lower end height of the third body component 103.

[0081] Optionally, an inclined surface 1032 is provided between the outer peripheral surface and the lower end surface of the third body component 103 so that water in the water storage cavity 121 flows to the atomizing part 14.

[0082] In this embodiment, the upper part of the water storage cavity 121 is open; the atomizing device also includes a second cover, which is disposed on the upper opening of the water storage cavity 121 to cover the water storage cavity 121.

[0083] It should be noted that the second cover only covers the water storage cavity 121 and does not seal it.

[0084] The way the mist storage chamber 122 is arranged in this application can enhance the mist collection effect; the atomizing device of this application can provide a stable and efficient atomization effect, meeting the user's needs for atomization quality and ease of use.

[0085] In this embodiment, the first configuration of the blocking component 20 is as follows: Figures 1 to 3 As shown, the blocking component 20 includes a blocking body 24; when the blocking component 20 is in the blocking state, at least a portion of the blocking body 24 is disposed within the communication channel 13; when the blocking component 20 is in the yielding state, the blocking body 24 is moved away from the communication channel 13.

[0086] Optionally, the sealing body 24 is a block structure, that is, the sealing body 24 is a sealing block.

[0087] Optionally, the sealing body 24 includes a first main body 241 and a second main body 242 connected to each other; when the sealing component 20 is in the sealing state, the first main body 241 is disposed in the communication channel 13, and the second main body 242 is located outside the communication channel 13 and abuts against the outer wall surface of the first body component 101; in this way, the sealing effect on the communication channel 13 can be guaranteed.

[0088] Optionally, the sealing body 24 is a T-shaped structure.

[0089] In the specific implementation process, the blocking body 24 is inserted into the connecting channel 13 from the end of the connecting channel 13 facing the atomizing chamber 12.

[0090] Optionally, at least a portion of the sealing body 24 is made of a flexible material to facilitate insertion into and removal from the communication channel 13. For example, at least a portion of the sealing body 24 is made of silicone.

[0091] Optionally, at least a portion of the first main body 241 is made of a flexible material to facilitate insertion into and removal from the communicating channel 13. For example, at least a portion of the first main body 241 is made of silicone.

[0092] Optionally, at least a portion of the second body portion 242 is made of a flexible material. For example, at least a portion of the second body portion 242 is made of silicone.

[0093] Optionally, the sealing body 24 is a silicone plug.

[0094] In this embodiment, the second configuration of the blocking component 20 is as follows: Figure 5 , Figure 6 , Figure 8 , Figure 9 As shown, the sealing component 20 includes a sealing part 21 and a sealing part 22; at least a portion of the sealing part 21 is disposed in the communicating channel 13, and the outer surface of the sealing part 21 is in close contact with the channel wall of the communicating channel 13; the sealing part 21 has a through hole 211, which penetrates the sealing part 21 along the distribution direction of the water storage chamber 11 and the atomizing chamber 12, so that the water storage chamber 11 and the atomizing chamber 12 are connected through the through hole 211.

[0095] The sealing part 22 is movably connected to the sealing part 21, and can be in a sealed state (blocking the through hole 211) and a yielding state (moving away from the through hole 211). When the sealing part 22 is in the yielding state, the sealing component 20 is also in the yielding state, and the through hole 211 is open, at which time the water storage chamber 11 and the atomizing chamber 12 are connected through the through hole 211. When the sealing part 22 is in the sealed state, the sealing component 20 is also in the sealed state, the sealing part 22 blocks the through hole 211, the through hole 211 is closed, and the water storage chamber 11 and the atomizing chamber 12 are disconnected.

[0096] In the specific implementation process, when the first cover 30 closes the water storage cavity 11, the water storage cavity 11 is a sealed cavity, causing the sealing part 22 to switch to the yielding state. Water in the water storage cavity 11 flows into the water storage cavity 121 through the through hole 211. When the water level in the water storage cavity 121 does not exceed the position of the connecting channel 13, since the water storage cavity 121 is not sealed, the pressure in the water storage cavity 11 is the same as the external atmospheric pressure, and no liquid seal will occur. As the water in the water storage cavity 121 increases, when the water level in the water storage cavity 121 exceeds the position of the connecting channel 13, the water level in the water storage cavity 121 exceeds the sealing part 21, that is, the water in the water storage cavity 121 does not exceed the sealing part 21. This will cause the pressure in the water storage cavity 11 to be less than the external atmospheric pressure. Under the action of the pressure difference, the water in the water storage cavity 11 will no longer flow into the water storage cavity 121, and at this time, liquid seal is achieved.

[0097] In the specific implementation process, when the first cover 30 moves away from the water storage chamber 11 to open the water storage chamber 11 and add or inject water into the water storage chamber 11, the sealing part 22 is in a sealing state to prevent the water in the water storage chamber 11 from flowing into the atomizing chamber 12 at this time.

[0098] Specifically, the sealing component 20 also includes a connecting portion 23, one end of which is connected and fixed to the sealing portion 21, and the other end of which is connected and fixed to the sealing portion 22. At least a portion of the connecting portion 23 is configured to be variable in shape so that the sealing portion 22 can switch between a sealing state and a yielding state. Furthermore, when the sealing portion 22 is in the yielding state, the sealing portion 22 is also connected to the sealing portion 21 through the connecting portion 23, thus solving the problem of storage and preventing loss of the sealing portion 22.

[0099] Optionally, at least a portion of the sealing portion 22 is made of a flexible material to facilitate the insertion of the sealing portion 22 into and removal from the through hole 211.

[0100] Optionally, the sealing part 22 includes a sealing body 221 and a sealing cover 222 connected to each other. The sealing body 221 is used to seal inside the through hole 211. When the sealing body 221 seals inside the through hole 211, the sealing cover 222 is located outside the through hole 211 and abuts against the end of the sealing part 21; in this way, the sealing effect on the through hole 211 can be guaranteed.

[0101] Optionally, at least a portion of the sealing body 221 is made of a flexible material to facilitate insertion into and removal from the through-hole 211. For example, at least a portion of the sealing body 221 is made of silicone.

[0102] Optionally, at least a portion of the sealing cap 222 is made of a flexible material. For example, at least a portion of the sealing cap 222 is made of silicone.

[0103] Optionally, the sealing part 22 is a silicone plug.

[0104] Optionally, the sealing body 221 and the sealing cover 222 are integrally formed structures.

[0105] Optionally, the other end of the connecting part 23 is connected and fixed to the sealing cover 222.

[0106] Optionally, the connecting part 23 is a strip structure.

[0107] Optionally, at least a portion of the connecting portion 23 may be made of a flexible material, allowing the shape of at least a portion of the connecting portion 23 to be variable. For example, at least a portion of the connecting portion 23 may be made of silicone.

[0108] Optionally, the sealing part 21 has a columnar structure; when the sealing part 21 is disposed in the communication channel 13, the outer peripheral surface of the sealing part 21 is tightly fitted with the channel wall of the communication channel 13; the through hole 211 extends along the axial direction of the sealing part 21.

[0109] Optionally, along the extending direction of the through hole 211, the sealing part 21 includes a first sealing section 212 and a second sealing section 213 connected to each other; the first sealing section 212 is disposed in the communicating channel 13, and the outer surface of the first sealing section 212 is in close contact with the channel wall of the communicating channel 13; the second sealing section 213 is located outside the communicating channel 13 and inside the atomizing chamber 12, that is, the second sealing section 213 is located inside the water storage chamber 121.

[0110] Optionally, when the sealing part 21 is a columnar structure, the outer peripheral surface of the first sealing section 212 is in close contact with the channel wall of the connecting channel 13.

[0111] Optionally, the cross-section of the second sealing section 213 perpendicular to the axial direction of the through hole 211 is larger than the cross-section of the first sealing section 212 perpendicular to the axial direction of the through hole 211, so that when the first sealing section 212 is disposed in the communication channel 13, the second sealing section 213 abuts against the first body member 101 to ensure the stability of the sealing part 21 and the first body member 101.

[0112] Optionally, the sealing part 21 is a tubular structure.

[0113] In the specific implementation process, the sealing part 22 is inserted into the through hole 211 from the end of the through hole 211 facing the atomizing chamber 12.

[0114] In the specific implementation process, before using the atomizing device, the sealing part 22 must be removed from the through hole 211 so that the sealing part 22 is in a freeing state so that water can be added to the atomizing chamber 12. After the water is added, the atomizing device can be started to work.

[0115] In this embodiment, the atomizing device also includes a base 50, and the first body component 101 and the second body component 102 are both disposed on the base 50.

[0116] Optionally, the upper surface of the base 50 forms the bottom wall of the water storage cavity 11.

[0117] Optionally, the upper surface of the base 50 forms the bottom wall of the water storage cavity 121.

[0118] Optionally, the first body component 101 and the base 50 are integrated into one piece, which simplifies the manufacturing process and reduces costs.

[0119] In this embodiment, the atomizing device also includes control components, which are disposed within the base 50.

[0120] As can be seen from the above description, the embodiments of this utility model achieve the following technical effects:

[0121] In the atomizing device provided by this utility model, the atomizing device includes an atomizing body 10, a sealing component 20 and a first cover 30; the atomizing body 10 has a water storage chamber 11 and an atomizing chamber 12, and a connecting channel 13 is provided between the water storage chamber 11 and the atomizing chamber 12, and the connecting channel 13 penetrates the atomizing body 10 along the distribution direction of the water storage chamber 11 and the atomizing chamber 12.

[0122] The blocking component 20 has a blocking state in which it is at least partially blocked in the connecting channel 13 and a yielding state away from the connecting channel 13; when the blocking component 20 is in the yielding state, the connecting channel 13 is in the open state, and the water storage chamber 11 and the atomizing chamber 12 are connected through the connecting channel 13; when the blocking component 20 is in the blocking state, the connecting channel 13 is in the closed state, and the water storage chamber 11 and the atomizing chamber 12 are disconnected.

[0123] The first cover 30 is detachably connected to the atomizing body 10, allowing the water storage chamber 11 to be closed or opened via the first cover 30. When the first cover 30 is detached from the atomizing body 10, and the first cover 30 is away from the water storage chamber 11, the water storage chamber 11 is opened, allowing water to be added or injected into it. When the first cover 30 closes the water storage chamber 11, the first cover 30 is connected to the atomizing body 10, and the water storage chamber 11 is sealed, ensuring its airtightness.

[0124] In the specific implementation process, when the first cover 30 closes the water storage chamber 11, the water storage chamber 11 becomes a sealed chamber, causing the sealing component 20 to switch to a yielding state. Water in the water storage chamber 11 flows into the atomizing chamber 12 through the connecting channel 13. When the water level in the atomizing chamber 12 does not exceed the position of the connecting channel 13, since the atomizing chamber 12 is not sealed, the pressure in the water storage chamber 11 is the same as the external atmospheric pressure, and no liquid seal phenomenon occurs. As the amount of water in the atomizing chamber 12 increases, when the water level in the atomizing chamber 12 exceeds the position of the connecting channel 13, the pressure in the water storage chamber 11 will be lower than the external atmospheric pressure. Under the action of the pressure difference, the water in the water storage chamber 11 will no longer flow into the atomizing chamber 12, thus achieving the liquid seal effect.

[0125] When the water level in the atomizing chamber 12 decreases due to atomization to below the level of the connecting channel 13, the water storage chamber 11 reconnects to the outside through the connecting channel 13. This means the pressure inside the water storage chamber 11 is once again equal to the external atmospheric pressure, eliminating the pressure difference. Water from the water storage chamber 11 can then flow back into the atomizing chamber 12 through the connecting channel 13, until the water level in the atomizing chamber 12 rises above the level of the connecting channel 13, thus re-establishing a liquid seal. Water from the water storage chamber 11 then stops flowing into the atomizing chamber 12. This cycle automatically replenishes water to the atomizing chamber 12, ensuring a constant water level and achieving automatic control of the water level within the atomizing chamber 12.

[0126] Alternatively, the atomizing device may be a humidifier, atomizer, or aroma diffuser.

[0127] The atomizing device of this application eliminates the float structure in order to simplify the structure and reduce costs.

[0128] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0129] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.

[0130] 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. An atomizing device, characterized in that, include: The atomizing body (10) has a water storage chamber (11) and an atomizing chamber (12); a communication channel (13) is provided between the water storage chamber (11) and the atomizing chamber (12). A blocking component (20) has a blocking state that at least partially blocks the connecting channel (13) and a yielding state that moves away from the connecting channel (13); when the blocking component (20) is in the yielding state, the water storage chamber (11) and the atomizing chamber (12) are connected through the connecting channel (13); when the blocking component (20) is in the blocking state, the water storage chamber (11) and the atomizing chamber (12) are disconnected. The first cover (30) is detachably connected to the atomizing body (10) to close or open the water storage cavity (11) through the first cover (30); when the water storage cavity (11) is closed through the first cover (30), the water storage cavity (11) is a sealed cavity.

2. The atomizing device according to claim 1, characterized in that, The atomizing chamber (12) includes a water storage chamber (121) and a mist storage chamber (122); the atomizing device also includes an atomizing part (14) disposed in the atomizing chamber (12), the atomizing part (14) being disposed between the water storage chamber (121) and the mist storage chamber (122), so that the water in the water storage chamber (121) is atomized to form mist when passing through the atomizing part (14), and the formed mist enters the mist storage chamber (122); the connecting channel (13) is provided between the water storage chamber (11) and the water storage chamber (121).

3. The atomizing device according to claim 1, characterized in that, The atomizing body (10) includes a first body component (101) and a second body component (102). The water storage cavity (11) is disposed on the first body component (101). The second body component (102) is connected to the outside of the first body component (101) so that a part of the body of the first body component (101) and the second body component (102) form the atomizing cavity (12). The first body component (101) has a first preset opening (1012) that communicates with the water storage cavity (11); the first cover (30) is detachably connected to the first body component (101) to cover the first preset opening (1012) of the first body component (101) and thereby close the water storage cavity (11).

4. The atomizing device according to claim 3, characterized in that, The first body component (101) is a columnar structure; and / or The first preset opening (1012) is located at the upper end of the first body member (101); and / or The connecting channel (13) is located at the lower part of the water storage cavity (11).

5. The atomizing device according to claim 2, characterized in that, The atomizing body (10) includes a second body component (102) and a third body component (103); the mist storage chamber (122) is disposed on the third body component (103); the second body component (102) is disposed around the third body component (103), and the inner wall of the second body component (102) and the outer wall of the third body component (103) are used to form the water storage chamber (121).

6. The atomizing device according to claim 5, characterized in that, The upper end of the third body component (103) is provided with a second preset opening (1031) communicating with the mist storage chamber (122); the atomizing device also includes a mist outlet cover (40), which is provided with a mist outlet hole. The mist outlet cover (40) is placed on the second preset opening (1031) of the third body component (103) so that the mist in the mist storage chamber (122) flows out through the mist outlet hole on the mist outlet cover (40).

7. The atomizing device according to claim 5, characterized in that, The connecting channel (13) is located at the lower part of the water storage cavity (121); the lower end of the third body component (103) has a third preset opening that communicates with the mist storage cavity (122), and the atomizing part (14) is disposed at the third preset opening of the third body component (103). There is a gap between the lower end of the third body component (103) and the bottom wall of the water storage cavity (121); or The lower end of the third body component (103) contacts the bottom wall of the water storage cavity (121).

8. The atomizing device according to claim 1, characterized in that, The blocking component (20) includes a blocking body (24); when the blocking component (20) is in a blocking state, at least a portion of the blocking body (24) is disposed within the communication channel (13); when the blocking component (20) is in a yielding state, the blocking body (24) is away from the communication channel (13).

9. The atomizing device according to claim 1, characterized in that, The sealing component (20) includes a sealing part (21) and a blocking part (22); at least a portion of the sealing part (21) is disposed within the communicating channel (13) and has a through hole (211); the blocking part (22) is movably connected to the sealing part (21) to have a blocking state that blocks the through hole (211) and a yielding state that moves away from the through hole (211); When the blocking part (22) is in the yielding state, the water storage chamber (11) and the atomizing chamber (12) are connected through the through hole (211); when the blocking part (22) is in the blocking state, the water storage chamber (11) and the atomizing chamber (12) are disconnected.

10. The atomizing device according to claim 9, characterized in that, The sealing component (20) further includes a connecting part (23), one end of which is connected and fixed to the sealing part (21), and the other end of which is connected and fixed to the sealing part (22); at least part of the connecting part (23) is configured in a variable form so that the sealing part (22) can switch between a sealing state and a yielding state.

11. The atomizing device according to claim 1, characterized in that, The atomizing device is a humidifier, atomizer, or aromatherapy diffuser.