Atomization device and atomization equipment

By setting a casing, induction assembly and atomization bracket in the electronic atomization device, the air intake is realized using the gap and an independent first airway is formed, which solves the problem of low triggering sensitivity of pneumatic switches, improves the sensing sensitivity and reduces the structural complexity.

CN222853173UActive Publication Date: 2025-05-13HG INNOVATION LTD
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Patent Information

Application Number
CN202421530888.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-28
Publication Date
2025-05-13
Estimated Expiration
2034-06-28

AI Technical Summary

Technical Problem

In the existing electronic atomization device, the triggering sensitivity of the pneumatic switch is low, resulting in poor induction sensitivity.

Method used

By providing the housing, induction assembly and atomization bracket in the atomization device, air intake is achieved using the gap between the atomizer and the housing, and an independent first airway is formed through the mounting seat, reducing the complexity of air flow around the pneumatic switch.

Benefits of technology

The triggering sensitivity of the pneumatic switch is improved and the structural complexity of the atomization device is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The atomization device comprises a shell, a mounting groove is formed in the shell, an opening of the mounting groove is exposed out of the shell, the mounting groove is used for containing an atomizer, and a gap communicating with the outside is formed between the mounting groove and the atomizer; when the atomization device and the atomizer are assembled, an air inlet of the atomizer is located in the installation groove. The induction assembly is arranged in the shell; the sensing assembly comprises a pneumatic switch and a mounting base, a first air channel is formed in the mounting base, and the first air channel communicates with the pneumatic switch and the mounting groove. Air inlet is achieved through the gap between the atomizer and the shell, the installation base forms the independent first air channel, the airflow complexity around the pneumatic switch is reduced, and therefore the triggering sensitivity of the pneumatic switch is improved; and the first air channel is connected with the mounting groove, so that the triggering air channel of the pneumatic switch multiplexes the atomizing air channel, and the structural complexity of the atomizing device is reduced.
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Description

Technical Field

[0001] The present application relates to the field of electronic atomization technology, and in particular to an atomization device and an atomization equipment. Background Art

[0002] At present, general electronic atomization devices are usually controlled to enter the working state based on a pneumatic switch, so that the atomization core can heat the aerosol matrix to generate aerosol and discharge it. The negative pressure used to trigger the pneumatic switch to work is generally transmitted through the structural gap inside the electronic atomization device. Under this transmission method, the negative pressure that triggers the pneumatic switch has poor stability, resulting in poor sensing sensitivity. Utility Model Content

[0003] The present application provides an atomizing device and an atomizing equipment, aiming to solve the problem of low trigger sensitivity of a pneumatic switch of an atomizing device in the related art.

[0004] In one embodiment, an atomizing device is provided for use with an atomizer, wherein the atomizer comprises an air inlet and an air outlet arranged opposite to each other, and an atomizing air passage arranged between the air inlet and the air outlet; the atomizing device further comprises:

[0005] A housing, wherein the housing is formed with a mounting groove, an opening of the mounting groove is exposed to the housing, the mounting groove is used to accommodate at least one end of the atomizer provided with the air inlet, and a gap is formed between the mounting groove and the outer peripheral surface of the atomizer to communicate with the outside and the air inlet;

[0006] The induction component is arranged in the shell; the induction component includes a pneumatic switch and a mounting seat, a first air channel is formed in the mounting seat, and the first air channel connects the pneumatic switch and the mounting groove.

[0007] In one embodiment, the atomization device also includes an atomization bracket, which is fixedly disposed in the mounting groove and is used to support the atomizer; a second air duct is disposed on the atomization bracket, and the second air duct connects the first air duct and the mounting groove; an air path connecting the gap and the air inlet is formed between the atomization bracket and the atomizer.

[0008] In one embodiment, the atomizer bracket further includes an extension tube, at least a portion of the second air duct is located in the extension tube, the extension tube extends toward the mounting seat and is connected to the mounting seat, so that the second air duct is sealedly connected to the first air duct.

[0009] In one embodiment, at least one positioning column is further provided on the atomizer bracket, and the positioning column is used to match the end of the atomizer and support the atomizer; the air path is formed between the positioning columns, and the second air channel is connected to at least one of the positioning columns and the extension tube.

[0010] In one embodiment, an extension direction of the second air passage is staggered with an axial direction of the atomizer.

[0011] In one embodiment, a sensing assembly cavity is formed in the mounting base, the sensing assembly cavity is arranged in parallel with the first airway, and the sensing assembly cavity is connected to the first airway; the pneumatic switch is sealed and embedded in the opening of the sensing assembly cavity, and the pneumatic switch is connected to the first airway.

[0012] In one embodiment, the atomization device also includes a circuit board, which is arranged in the shell and fixedly connected to the shell; the pneumatic switch is fixedly arranged on the surface of the circuit board facing away from the mounting groove; the bottom of the pneumatic switch and the bottom of the sensing assembly cavity have a preset gap.

[0013] In one embodiment, an open guide groove is formed on the mounting seat, and the open guide groove is blocked by the inner wall of the shell, so that the mounting seat and the shell together enclose a sensing airway; the sensing assembly cavity and the first airway are connected through the sensing airway.

[0014] In one embodiment, two oppositely disposed outer end surfaces of the mounting seat are respectively in contact with the circuit board and the shell, and the pneumatic switch is inserted into the mounting seat, so that the mounting seat is fixedly connected with the shell and the circuit board.

[0015] In one embodiment, an atomization device is also provided, which includes an atomizer and the above-mentioned atomization device; the atomizer is detachably arranged in the mounting groove through the opening, and the air inlet of the atomizer is connected to the outside through the gap between the atomizer and the mounting groove.

[0016] According to the atomization device and atomization equipment of the above-mentioned embodiments, air intake is achieved through the gap between the atomizer and the shell, and the mounting base forms an independent first airway, thereby reducing the complexity of the airflow around the pneumatic switch, thereby improving the triggering sensitivity of the pneumatic switch; the first airway is connected to the mounting groove, so that the triggering airway of the pneumatic switch reuses the atomization airway, thereby reducing the structural complexity of the atomization device. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 Schematic diagram of the structure of an atomization device in an embodiment.

[0018] Figure 2 A cross-sectional view of an atomization device in one embodiment.

[0019] Figure 3 A cross-sectional view of an atomizer in one embodiment.

[0020] Figure 4 A cross-sectional view of an atomization support in an embodiment.

[0021] Figure 5 A cross-sectional view of a sensing component in one embodiment.

[0022] Figure 6 Schematic diagram of the mounting base structure in one embodiment.

[0023] The reference numerals are as follows:

[0024] 1-atomizing device; 2-housing; 21-mounting slot; 3-atomizer; 31-gap; 32-accommodating space; 33-atomizing core; 34-aerosol matrix; 35-air inlet; 36-air outlet; 37-atomizing airway; 4-sensing component; 41-pneumatic switch; 42-mounting seat; 43-first airway; 431-sensing airway; 432-sensing assembly cavity; 44-air guide tube; 45-opening guide groove; 5-atomizing bracket; 51-second airway; 52-positioning column; 53-extension tube; 54-air path; 6-circuit board; 7-power supply component. DETAILED DESCRIPTION

[0025] The present invention is further described in detail below by specific embodiments in conjunction with the accompanying drawings. Wherein similar elements in different embodiments adopt associated similar element numbers. In the following embodiments, many detailed descriptions are intended to enable the present application to be better understood. However, those skilled in the art can easily recognize that some of the features can be omitted in different situations, or can be replaced by other elements, materials, and methods. In some cases, some operations related to the present application are not shown or described in the specification, in order to avoid the core part of the present application being overwhelmed by too much description, and for those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations based on the description in the specification and the general technical knowledge in the art.

[0026] In addition, the features, operations or characteristics described in the specification can be combined in any appropriate manner to form various implementations. At the same time, the steps or actions in the method description can also be interchanged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the various sequences in the specification and the drawings are only for the purpose of clearly describing a certain embodiment and are not meant to be a required sequence, unless otherwise specified that a certain sequence must be followed.

[0027] The serial numbers of the components in this document, such as "first", "second", etc., are only used to distinguish the objects described and do not have any order or technical meaning. The "connection" and "coupling" mentioned in this application, unless otherwise specified, include direct and indirect connections (couplings).

[0028] Please refer to Figure 1-Figure 6 In the embodiment of the present application, an atomizing device 1 is provided, which is used in conjunction with an atomizer 3, wherein the atomizer 3 includes an air inlet 35 and an air outlet 36 arranged opposite to each other, and an atomizing airway 37 is formed between the air inlet 35 and the air outlet 36. The atomizing device 1 specifically includes a housing 2, an atomizer 3, and a sensing component 4.

[0029] The housing 2 is formed with a mounting groove 21, and the opening of the mounting groove 21 is exposed to the housing 2. The mounting groove 21 is used to accommodate at least one end of the atomizer 3 provided with an air inlet 35, and a gap 31 is formed between the mounting groove 21 and the outer peripheral surface of the atomizer 3 to connect the outside and the air inlet 35; the housing 2 is the overall external structure of the atomizer 1, and one or more accommodating chambers can be formed inside it according to specific needs, and the accommodating chamber can be used to accommodate the parts required by the atomizer 1; wherein, in order to accommodate the atomizer 3, the housing 2 in the embodiment of the present application is formed with a mounting groove 21, and the opening of the mounting groove 21 is exposed to the housing 2, indicating that the atomizer 3 can be inserted into the mounting groove 21 from the position of the opening, thereby realizing the connection between the atomizer 3 and the housing 2.

[0030] The shape and depth of the mounting groove 21 can be determined according to the specific shape of the atomizer 3; for example, if the cross-sectional shape of the atomizer 3 is circular, then the cross-sectional shape of the mounting groove 21 can also be set to a matching circle; if the cross-sectional shape of the atomizer 3 is square, then the cross-sectional shape of the mounting groove 21 can be set to a square.

[0031] Please refer to Figure 2 and Figure 3 , the atomizer 3 is detachably arranged in the mounting groove 21; the atomizer 3 has a containing space 32, in which an atomizing core 33 and an aerosol matrix 34 are arranged; the atomizer 3 has an air inlet 35 and an air outlet 36 arranged relatively, and an atomizing airway 37 is formed between the air inlet 35 and the air outlet 36; the air inlet 35 is connected to the outside through the gap 31 between the atomizer 3 and the mounting groove 21. In the embodiment of the present application, the function of the atomizer 3 is to store the aerosol matrix 34, and in the energized working state, the aerosol matrix 34 is heated to generate an aerosol and discharged from the air outlet 36. The atomizer 3 is detachably connected to the mounting groove 21, which means that the atomizer 3 can be removed from the mounting groove 21, and the atomizer 3 after removal can be maintained, replaced, and an aerosol matrix 34 can be added.

[0032] Among them, the atomizer core 33 is used to heat the aerosol matrix 34 when it is powered on, so the aerosol matrix 34 is generally arranged in the same chamber with the atomizer core 33. If the aerosol matrix 34 and the atomizer core 33 are arranged in the same chamber, the aerosol matrix 34 can be stored through a liquid storage member, and the liquid storage member can include liquid storage cotton, ceramic liquid storage member, etc. Alternatively, the aerosol matrix 34 can also be arranged in different chambers with the atomizer core 33, and then through structures such as switches, the aerosol matrix 34 can be controlled to flow into the position of the atomizer core 33, and the aerosol matrix 34 is heated by the atomizer core 33 to generate an aerosol, so that the leakage of the aerosol matrix 34 can be avoided as much as possible.

[0033] In the process of heating the aerosol matrix 34 to generate aerosol and discharge it, the nebulizer 3 needs gas to enter the nebulizer 3. The nebulizer 3 heats the aerosol matrix 34 to generate aerosol, mixes it with air, and then discharges it. Therefore, the nebulizer 3 includes an air inlet 35 and an air outlet 36 that are relatively arranged, wherein the air inlet 35 serves as an inlet for air to enter the nebulizer 3, and the air outlet 36 serves as an outlet for the aerosol to discharge the nebulizer 3. An atomization airway 37 is formed between the air inlet 35 and the air outlet 36, and the atomization airway 37 passes through the nebulizer 3.

[0034] In order to allow external air to enter the atomizer 3 through the air inlet 35, the air inlet 35 can be connected to the outside through the gap 31 between the atomizer 3 and the mounting groove 21. Since a detachable connection is formed between the atomizer 3 and the mounting groove 21, there is a natural assembly gap 31 between the two. In the embodiment of the present application, the assembly gap 31 is directly used as the air inlet channel of the atomizing device, so there is no need to open the air inlet 35 on the housing 2, thereby reducing the number of holes opened in the atomizing device 1 in terms of appearance, improving the product sealing of the atomizing device 1, and making the atomizing device 1 more beautiful.

[0035] In order to control the atomizer 3 to enter the working state, the atomizer device 1 includes a sensing component 4, which is arranged in the housing 2; the sensing component 4 includes a pneumatic switch 41 and a mounting seat 42, and a first airway 43 is formed in the mounting seat 42, and the first airway 43 connects the pneumatic switch 41 and the mounting groove 21. The function of the sensing component 4 is to serve as a starter of the atomizer 3. When the pneumatic switch 41 in the sensing component 4 detects the starting negative pressure, it drives the atomizer 3 to work accordingly, and heats the aerosol matrix 34 to generate aerosol. The mounting base 42 in the sensing component 4 forms a first air channel 43, one end of which is connected to the pneumatic switch 41, so that negative pressure can be transmitted to the pneumatic switch 41 via the first air channel 43; the other end of the first air channel 43 is connected to the mounting groove 21, and the atomizer 3 can be arranged in the mounting groove 21, so the first air channel 43 can be connected to the atomizing air channel 37 in the atomizer 3; therefore, when the user inhales at the air outlet 36, negative pressure will be generated in the atomizing air channel 37, and the negative pressure will be transmitted to the air inlet 35 via the atomizing air channel 37, and then transmitted to the pneumatic switch 41 via the first air channel 43 connected to the air inlet 35, thereby triggering the pneumatic switch 41, so that the atomizer 3 enters the working state, and heats the aerosol matrix 34 to generate aerosol. The atomization device 1 in the embodiment of the present application realizes air intake through the gap 31 between the atomizer 3 and the shell 2, and forms an independent first air duct 43 by the mounting seat 42, thereby reducing the complexity of the airflow around the pneumatic switch 41, thereby improving the triggering sensitivity of the pneumatic switch 41; the first air duct 43 is connected to the mounting groove 21, so that the triggering air duct of the pneumatic switch 41 reuses the atomization air duct 37, thereby reducing the structural complexity of the atomization device 1.

[0036] The detachable connection between the atomizer 3 and the mounting groove 21 may include plug-in connection, threaded connection, snap-in connection, etc. of the atomizer 3; wherein, during the connection between the atomizer 3 and the mounting groove 21, a positioning member or the like may be used to prevent the atomizer 3 from being improperly installed; for details, please refer to Figure 4 In some optional embodiments, the atomizer device 1 may further include an atomizer bracket 5, which is fixedly arranged in the mounting groove 21 and is used to carry the atomizer 3; a second air channel 51 is arranged on the atomizer bracket 5, and the second air channel 51 is connected to the first air channel 43 and the mounting groove 21; an air path 54 connecting the gap 31 and the air inlet is formed between the atomizer bracket 5 and the atomizer 3. The atomizer bracket 5 and the mounting groove 21 may be fixedly connected or integrally formed, that is, the atomizer bracket 5 and the mounting groove 21 may be enclosed together to form a storage space for the atomizer 3. In addition, in order to improve the connection stability, the installation of the atomizer 3 and the mounting groove 21 may also improve its connection strength by means of magnetic matching connection of magnetic suction accessories.

[0037] The second air channel 51 is a through structure on the atomizing bracket 5 , and its function is to connect the first air channel 43 with the mounting groove 21 , so as to realize the reuse of the triggering air channel of the pneumatic switch 41 for the atomizing air channel 37 .

[0038] There is a gap 31 between the mounting groove 21 and the atomizer 3, and the gap 31 can connect the outside with the air inlet 35; and in order to prevent the atomizer bracket 5 from blocking the connection between the gap 31 and the air inlet 35, an air path 54 connecting the gap 31 and the air inlet is formed between the atomizer bracket 5 and the atomizer 3, and the gap 31 and the air inlet 35 can be connected through the air path 54.

[0039] In order to position the atomizer 3 and avoid the atomizer 3 from being installed in place, in some optional embodiments, at least one positioning column 52 may be provided on the atomizer bracket 5, and the positioning column is used to match the end of the atomizer 3 and support the atomizer 3; an air path 54 is formed between the positioning columns 52, and the second air channel 51 is provided in at least one positioning column 52. A plurality of positioning columns 52 may be provided at intervals, so there is an interval between adjacent positioning columns 52; based on the interval, the gap 31 and the air inlet 35 can be connected, so the interval between the positioning columns 52 constitutes the air path 54. In addition, the air path 54 may also include a space enclosed by each positioning column 52.

[0040] The second air channel 51 is arranged in any positioning column 52, indicating that the positioning column 52 is a hollow structure, and the hollow structure is used to connect the air inlet 35 with the first air channel 43. In order to improve the sealing performance of the air channel, especially the sealing performance between the first air channel 43 and the second air channel 51, in some optional embodiments, the atomizer bracket 5 also includes an extension tube 53, at least part of the second air channel 51 is located in the extension tube 53, and the extension tube 53 extends in the direction of the mounting seat 42 and is connected to the mounting seat 42, so that the second air channel 51 and the first air channel 43 are connected to each other in a sealed manner. The extension tube 53 extends from the positioning column 52, and the hollow structure of the extension tube 53 itself constitutes a part of the second air channel 51; therefore, connecting the extension tube 53 to the mounting seat 42 also realizes the connection between the first air channel 43 and the second air channel 51. The connection between the extension tube 53 and the mounting seat 42 may be achieved by inserting the extension tube 53 into the first air passage 43, or inserting the air guide tube 44 on the mounting seat 42 into the second air passage 51. The sealing performance between the second air passage 51 and the first air passage 43 may be effectively improved by sufficient surface contact between the outer wall of the extension tube 53 and the first air passage 43, or sufficient surface contact between the outer wall of the air guide tube 44 and the second air passage 51.

[0041] In some optional embodiments, in order to prevent the leakage of the aerosol matrix 34 in the nebulizer 3 from affecting the first airway 43, the extension direction of the second airway 51 is staggered with the axial direction of the nebulizer 3. If the aerosol matrix 34 leaks in the nebulizer 3, it will flow out of the nebulizer 3 through the air inlet 35 located on the axis of the nebulizer 3 and be placed on the nebulizer bracket 5; therefore, the positioning column 52 is offset from the axis of the nebulizer 3 to prevent the aerosol matrix 34 from entering the second airway 51 and then further entering the first airway 43 to pollute the first airway 43. In addition, the entrance of the second airway 51 can be slightly higher than the bearing surface of the nebulizer bracket 5 facing the air inlet 35 of the nebulizer 3, so that when the aerosol matrix 34 leaks, the aerosol matrix 34 will be temporarily stored between the nebulizer bracket 5 and the air inlet of the second airway 51 to prevent the aerosol matrix 34 from flowing into the first airway 43.

[0042] In addition, the atomizer bracket 5 can also be provided with an electrode, which is suitable for when the power supply component is arranged in the housing 2, and can form an electrical connection between the electrode and the atomizer 3, so as to realize the power supply operation of the atomizer 3. The power supply component is arranged in the housing 2, which can effectively increase the battery life of the atomizer device 1, so that the atomizer 3 can work for a longer time.

[0043] In some alternative embodiments, please refer to Figure 5 In order to facilitate the installation of the pneumatic switch 41, a sensing assembly cavity 432 is formed in the mounting seat 42. The sensing assembly cavity 432 is arranged in parallel with the first airway 43, and the sensing assembly cavity 432 is connected to the first airway 43; the pneumatic switch 41 is sealed and embedded in the opening of the sensing assembly cavity 432, and the pneumatic switch 41 is connected to the first airway 41. The function of the sensing assembly cavity 432 is to install the sensing switch 41, so that the sensing assembly cavity 432 is connected to the first airway 43, so that the pneumatic switch 41 can sense the change of air pressure and control the working state of the atomizer 3. The opening of the sensing assembly cavity 432 faces the mounting groove 21, so the pneumatic switch 41 can be installed upside down in the sensing assembly cavity 432, which can prevent the top aerosol matrix from leaking and contaminating the pneumatic switch 41.

[0044] In some optional embodiments, in order to prevent the aerosol matrix from flowing into the mounting seat 42 and contaminating the pneumatic switch 41, please refer to Figure 2 and Figure 5The atomization device 1 also includes a circuit board 6, which is fixedly arranged in the shell 2 and fixedly connected to the shell 2. The pneumatic switch 41 is fixedly arranged on the surface of the circuit board 6 facing away from the mounting groove 21; the bottom of the pneumatic switch 41 and the bottom of the sensing assembly cavity 432 have a preset interval. On the one hand, by arranging the pneumatic switch 41 on the surface of the circuit board 6 facing away from the mounting groove 21, the circuit board 6 can carry the leaked aerosol matrix; on the other hand, if the aerosol matrix flows in through the mounting seat 42, since the bottom of the pneumatic switch 41 and the bottom of the sensing assembly cavity 432 have a preset interval, the aerosol matrix will be retained in the bottom of the sensing assembly cavity 432 in advance. The larger the preset interval between the bottom of the pneumatic switch 41 and the sensing assembly cavity 432, the more aerosol matrix can be retained, and the better the effect of preventing the pneumatic switch 41 from being contaminated. Please refer to Figure 5 , wherein the sensing assembly chamber 432 is connected to the first air channel 43 at the bottom, that is, there is a bend between the sensing assembly chamber 432 and the first air channel 43, and a communicating vessel structure is formed between the sensing assembly chamber 432 and the first air channel 43. The aerosol matrix that leaks into the mounting seat 42 will gradually rise from the bottom of the communicating vessel, thereby avoiding contamination of the pneumatic switch 41 suspended above, and ensuring the sensing sensitivity of the pneumatic switch 41. It is worth mentioning that the sensing assembly chamber 432 in the embodiment of the present application refers to the entire chamber for installing the pneumatic switch 41, and the space connected to the opening and the bottom can be regarded as a component of the sensing assembly chamber 432.

[0045] In some optional embodiments, in order to achieve a fixed connection of the mounting seat 42, two oppositely disposed outer end surfaces of the mounting seat 42 are respectively in contact with the circuit board 6 and the housing 2, and the pneumatic switch 41 is inserted into the mounting seat 42, so that the mounting seat 42 is fixedly connected with the housing 2 and the circuit board 6. Since the mounting seat 42 is disposed between the circuit board 6 and the housing 2, the mounting seat 42 can be fixed by the circuit board 6 and the housing 2 without the need for other mounting structures to further achieve installation; the circuit board 6 and the housing 2 can fix the mounting seat 42 by clamping, and the mounting seat 42 itself can be made of a material with a certain elasticity such as silicone. In the clamped state, a large static friction force is generated between the mounting seat 42 and the circuit board 6 and the housing 2, thereby effectively enclosing and forming the first airway 43.

[0046] In some optional embodiments, in order to simplify the structure of the mounting seat 42 and facilitate installation, the mounting seat 42 can be at least partially disposed between the circuit board 6 and the housing 2, and the mounting seat 42 and the housing 2 are enclosed together to form a communicating structure. Figure 6Since the first air channel 43 can be formed by the mounting seat 42 and the shell 2, it is not necessary to directly form a closed air channel on the mounting seat 42, but an open guide groove 45 can be formed on the mounting seat 42, and the open guide groove 45 is blocked by the inner wall of the shell 2, so that the mounting seat 42 and the shell 2 are enclosed together to form a sensing air channel 431, and the sensing assembly cavity 432 is connected to the first air channel 43 through the sensing air channel 431. The open guide groove 45 represents an unclosed guide groove formed on the mounting seat 42, which can facilitate the processing and demoulding process of the mounting seat 42, and then the unclosed part thereof can be closed by the shell 2, so as to form a sensing air channel 431 connected between the sensing assembly cavity 432 and the first air channel 43, thereby simplifying the installation structure.

[0047] In some optional embodiments, in order to connect the first air duct 43 with the mounting groove 21, the mounting seat 42 has an air duct 44, and the air duct 44 passes through the circuit board 6, and the first air duct 43 is connected to the mounting groove 21 through the air duct 44. The air duct 44 itself is connected to the first air duct 43. Since the mounting seat 42 is clamped between the circuit board 6 and the housing 2, the air duct 44 can directly pass through the circuit board 6, and its end is connected to the air inlet 35. Specifically, it can be an extension tube 53 provided on the atomization bracket 5, which is inserted into the air duct 44, so as to realize the structure of connecting the first air duct 43 with the mounting groove 21. Since the air duct 44 passes through the circuit board 6, a through hole can be opened on the circuit board 6 for the air duct 44 to pass directly, and the matching structure between the air duct 44 and the through hole of the circuit board 6 can also realize the installation limit effect of the mounting seat 42.

[0048] The embodiment of the present application provides an atomization device 1, which realizes air intake through the gap 31 between the atomizer 3 and the shell 2, and the mounting seat 42 forms an independent first air channel 43, thereby reducing the complexity of the airflow around the pneumatic switch 41, thereby improving the triggering sensitivity of the pneumatic switch 41; the first air channel 43 is connected to the mounting groove 21, so that the triggering air channel of the pneumatic switch 41 reuses the atomization air channel 37, thereby reducing the structural complexity of the atomization device 1.

[0049] The present application also provides an atomization device, please continue to refer to Figure 1-Figure 6 The atomization device includes a power supply component 7, an atomizer 3 and an atomization device 1 in an embodiment of the present application; the atomizer 3 is detachably arranged in the mounting groove 21 through an opening, and the air inlet 35 of the atomizer 3 is connected to the outside through a gap 31 between the atomizer 3 and the mounting groove 21; the power supply component 7 is electrically connected to the atomization device 1 and is used to provide power to the atomizer 3.

[0050] Among them, the power supply component 7 can be arranged in the space formed by the shell 2, and is used to provide electrical energy to the atomizer 3 in the atomization device, and the atomizer 3 is used to heat the aerosol matrix 34 into an aerosol. The power supply component 7 and the atomization device 1 can be fixedly connected or detachably connected. When the atomization device 1 and the power supply component 7 are detachably connected, the atomization device 1 and the power supply component 7 can be replaced according to the usage. The above-mentioned atomization device is only an embodiment of the present application, and the specific internal structure of the atomization device will not be repeated.

[0051] The above specific examples are used to illustrate the present invention, which are only used to help understand the present invention and are not intended to limit the present invention. For those skilled in the art of the present invention, some simple deductions, deformations or substitutions can be made based on the idea of ​​the present invention.

Claims

1. Atomizing device, used in conjunction with an atomizer, the atomizer comprising an air inlet and an air outlet arranged opposite to each other, and an atomizing airway arranged between the air inlet and the air outlet; characterized in that: The atomizing device comprises: A housing, wherein the housing is formed with a mounting groove, an opening of the mounting groove is exposed to the housing, the mounting groove is used to accommodate at least one end of the atomizer provided with the air inlet, and a gap is formed between the mounting groove and the outer peripheral surface of the atomizer to communicate with the outside and the air inlet; The induction component is arranged in the shell; the induction component includes a pneumatic switch and a mounting seat, a first air channel is formed in the mounting seat, and the first air channel connects the pneumatic switch and the mounting groove.

2. The atomizing device according to claim 1, characterized in that The atomization device also includes an atomization bracket, which is fixedly arranged in the mounting groove and is used to carry the atomizer; a second air channel is arranged on the atomization bracket, and the second air channel connects the first air channel and the mounting groove; an air path connecting the gap and the air inlet is formed between the atomization bracket and the atomizer.

3. The atomizing device according to claim 2, characterized in that The atomizer bracket further includes an extension tube, at least a portion of the second air channel is located in the extension tube, the extension tube extends toward the mounting seat and is connected to the mounting seat, so that the second air channel is in sealed communication with the first air channel.

4. The atomizing device according to claim 3, characterized in that The atomizer bracket is also provided with at least one positioning column, which is used to match the end of the atomizer and support the atomizer; the air path is formed between the positioning columns, and the second air channel is connected to at least one of the positioning columns and the extension tube.

5. The atomizing device according to claim 3, characterized in that: The extension direction of the second air channel is staggered with the axial direction of the atomizer.

6. The atomizing device according to any one of claims 1 to 5, characterized in that: A sensing assembly cavity is formed in the mounting seat, the sensing assembly cavity is arranged in parallel with the first air passage, and the sensing assembly cavity is communicated with the first air passage; The pneumatic switch is sealed and embedded in the opening of the sensing assembly cavity, and the pneumatic switch is connected to the first air channel.

7. The atomizing device according to claim 6, characterized in that The atomization device further includes a circuit board, which is disposed in the housing and fixedly connected to the housing; The pneumatic switch is fixedly arranged on the surface of the circuit board facing away from the mounting groove; A preset interval is formed between the bottom of the pneumatic switch and the bottom of the sensing assembly cavity.

8. The atomizing device according to claim 6, characterized in that: An open guide groove is formed on the mounting seat, and the open guide groove is blocked by the inner wall of the shell, so that the mounting seat and the shell are jointly enclosed to form a sensing airway; the sensing assembly cavity is connected to the first airway through the sensing airway.

9. The atomizing device according to claim 7, characterized in that: Two oppositely disposed outer end surfaces of the mounting seat are respectively in contact with the circuit board and the shell, and the pneumatic switch is inserted into the mounting seat, so that the mounting seat is fixedly connected with the shell and the circuit board.

10. Atomization equipment, characterized in that, The atomization equipment comprises an atomizer and an atomization device as described in any one of claims 1 to 9; the atomizer is detachably arranged in the mounting groove through the opening, and the air inlet of the atomizer is connected to the outside through the gap between the atomizer and the mounting groove.