Main machine and atomization equipment

By driving the air regulating component to move through the drive module, the air inlet area is precisely controlled, solving the problem of the fixed air inlet in existing atomizing devices and improving atomization efficiency and user experience.

CN224084652UActive Publication Date: 2026-04-07SHENZHEN JIER TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

The air inlet area of ​​existing atomizing devices is fixed and cannot be adjusted according to different atomizers or user needs, resulting in a poor user experience.

Method used

The system uses a drive module to move the air regulating component. Through the cooperation of the motor and the rotating shaft, the air intake area of ​​the air inlet is precisely controlled. Combined with the reduction gear set and the guide component, the air intake area can be precisely adjusted.

Benefits of technology

It improves the atomization efficiency and user experience of atomizing devices, and can automatically adjust the air intake area according to different types of atomizers, reducing the difficulty of operation and adjustment time for users.

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Abstract

The utility model provides a main machine and atomization equipment, the main machine is applied to the atomization equipment, and the main machine comprises a shell and an air adjusting device. The shell is used for installing an atomizer of the atomization equipment, a containing space is formed in the shell, the shell is provided with an air inlet, and the air inlet is communicated with the containing space. The air adjusting device is arranged in the containing space and comprises an air adjusting piece and a driving module, the air adjusting piece abuts against the inner wall of the shell, the driving module comprises a motor, a rotating shaft and a movement assembly, the motor is connected with the rotating shaft, the movement assembly is arranged on the rotating shaft in a sleeving mode and is in threaded connection with the rotating shaft, and the movement assembly is further connected with the air adjusting piece. The motor can drive the rotating shaft to rotate along the rotating axis of the rotating shaft, so that the moving assembly drives the air adjusting piece to move in the direction of the rotating axis, and the air inlet area of the air inlet is changed. According to the host, the air adjusting part is driven by the motor in the driving module to move relative to the air inlet of the shell, so that the air inlet area is accurately adjusted, and the user experience is improved.
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Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of atomization, and particularly relates to a host and an atomization device. BACKGROUND

[0002] The atomization device is mainly used for atomizing atomized liquid. The atomization device generally comprises an air inlet through which external air enters the atomization device and mixes with atomized liquid to form an aerosol. The aerosol passes through a gas guide channel under the suction of a user to be inhaled or used by the user. The area of the air inlet generally affects the amount of external air entering the atomization device. However, the area of the air inlet is generally fixed. CONTENT OF THE UTILITY MODEL

[0003] In view of this, the application provides a host in the first aspect, which is applied to an atomization device. The host comprises:

[0004] A shell is used for installing an atomizer of the atomization device. The shell has a receiving space. The shell has an air inlet which is in communication with the receiving space.

[0005] A gas adjusting device is arranged in the receiving space. The gas adjusting device comprises a gas adjusting member and a driving module. The gas adjusting member abuts against an inner wall of the shell. The driving module comprises a motor, a rotating shaft and a movement assembly. The motor is connected to the rotating shaft. The movement assembly is sleeved on the rotating shaft and threadedly connected to the rotating shaft. The movement assembly is further connected to the gas adjusting member.

[0006] The motor can drive the rotating shaft to rotate along the rotating axis of the rotating shaft, so that the movement assembly drives the gas adjusting member to move along the direction of the rotating axis, thereby changing the air inlet area of the air inlet.

[0007] The host provided by the application drives the gas adjusting member to move relative to the air inlet of the shell through the driving module, so that the air inlet area can be adjusted according to different types of atomizers or different user needs, thereby improving the user experience. Meanwhile, the motor in the driving module drives the rotating shaft to rotate, and then drives the gas adjusting member to move, so that the adjustment of the air inlet area is more accurate, and the gas adjusting efficiency is improved.

[0008] The driving module further comprises an output gear and a speed reduction gear set. The output gear is arranged on the output shaft of the motor, and the output gear is in meshing connection with the speed reduction gear set. The speed reduction gear set is connected to the rotating shaft.

[0009] The speed reduction gear set comprises a first speed reduction gear, a transmission member, and a second speed reduction gear, the first speed reduction gear is connected with the output gear, the first speed reduction gear is arranged on one side of the transmission member, a transmission gear is arranged on the other side of the transmission member, the transmission gear is connected with the second speed reduction gear, and the second speed reduction gear is arranged on the rotating shaft.

[0010] The driving module further comprises a base and a guide member, the base is arranged in the accommodation space, the motor is arranged on the base, one end of the rotating shaft is connected with the motor, the other end of the rotating shaft is arranged on the base, the guide member is arranged on the base, and the axial direction of the guide member is parallel to the rotating axis direction of the rotating shaft, and the movement assembly is sleeved on the guide member.

[0011] The driving module further comprises an elastic member, the elastic member is sleeved on the guide member, one end of the elastic member is connected with the base, and the other end of the elastic member is connected with the movement assembly, and the elastic member is in a compressed state.

[0012] The movement assembly comprises a first movement member, a second movement member, and a third movement member, the first movement member is sleeved on the rotating shaft and is threadedly connected with the rotating shaft, the second movement member is sleeved on the first movement member and is detachably connected with the first movement member, the third movement member is detachably connected with the second movement member, and the third movement member is connected with the air adjusting member.

[0013] The air adjusting member is provided with a connecting portion on the side close to the driving module, the air adjusting device further comprises a fourth movement member, the fourth movement member is connected with the third movement member and the connecting portion, the connection direction of the fourth movement member and the third movement member is perpendicular to the connection direction of the fourth movement member and the connecting portion, and the connection direction of the fourth movement member and the connecting portion is along the thickness direction of the main machine.

[0014] The main machine further comprises a support, a first magnetic member, a second magnetic member, and a first sensor, the support is arranged in the accommodation space, the air adjusting member is movably connected with the support, the driving module and the second magnetic member are arranged on the support, and the first magnetic member is arranged on the fourth movement member; when the driving module drives the fourth movement member and the air adjusting member to move, and the air adjusting member closes the air inlet, the first magnetic member and the second magnetic member are arranged correspondingly and are magnetically attracted to each other, and at this time, the first sensor is used to send a signal that the air inlet is closed.

[0015] The host further comprises a second sensor and a processor. When the atomizer is installed in the host, the second sensor is configured to detect a resistance value of a heating element of an atomizing core in the atomizer, and the processor is configured to control the driving module to drive the air adjusting member to move according to the resistance value, so that the air inlet area is a preset air inlet area.

[0016] The second aspect of the present application provides an atomization device, which comprises an atomizer and a host provided in the first aspect of the present application. The atomizer is installed in the shell of the host. The atomizer has a gas guide channel connected to the air inlet. External gas can enter the receiving space through the air inlet and then enter the gas guide channel.

[0017] The atomization device provided in the second aspect of the present application uses the host provided in the first aspect of the present application. After the atomizer in the atomization device is installed in the host, the air inlet area of the host can be automatically adjusted according to the resistance value of the atomizer, so that the amount of atomized gas of the atomization device is automatically adjusted to the best use taste, and the user experience is improved. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required to be used in the embodiments of the present application will be described below.

[0019] Figure 1 FIG. 4 is a side view of the atomization device when the air adjusting member and the air inlet are partially overlapped in an embodiment of the present application.

[0020] Figure 2 FIG. 5 is a partial enlarged view of the atomization device shown in FIG. 4. Figure 1

[0021] Figure 3 FIG. 6 is a side view of the atomization device when the air adjusting member and the air inlet are mostly overlapped in an embodiment of the present application.

[0022] Figure 4 FIG. 7 is a partial enlarged view of the atomization device shown in FIG. 6. Figure 3

[0023] Figure 5 FIG. 8 is an exploded view of the host in an embodiment of the present application.

[0024] Figure 6 FIG. 9 is a partial enlarged view of the host shown in FIG. 8. Figure 5

[0025] Figure 7

[0026] Figure 8 ​​​​It is an exploded view of the air adjusting member, the support, and the driving module in an embodiment of the present application.

[0027] Figure 9 It is a perspective view of the driving module in an embodiment of the present application.

[0028] Figure 10 It is a perspective view of the driving module in an embodiment of the present application. Figure 9

[0029] Figure 11 It is a perspective view of the driving module in an embodiment of the present application. Figure 9

[0030] Figure 12 It is an exploded view of the driving module in an embodiment of the present application. Figure 9

[0031] Figure 13 It is a perspective view of the driving module in an embodiment of the present application. Figure 9

[0032] Figure 14 It is a perspective view of the driving module in an embodiment of the present application. Figure 11

[0033] Figure 15 It is a perspective view of the air adjusting member, the fourth moving member, and the driving module in an embodiment of the present application.

[0034] Figure 16 It is a perspective view of the air adjusting member, the fourth moving member, and the driving module in an embodiment of the present application. Figure 15

[0035] Figure 17 It is a perspective view of the air adjusting member, the fourth moving member, and the driving module in an embodiment of the present application.

[0036] Figure 18 It is a perspective view of the air adjusting member, the fourth moving member, and the driving module in an embodiment of the present application. Figure 17

[0037] Figure 19 It is a perspective view of the air adjusting member, the fourth moving member, and the driving module in an embodiment of the present application.

[0038] Figure 20 It is a perspective view of the air adjusting member, the fourth moving member, and the driving module in an embodiment of the present application.

[0039] Figure 21 It is a perspective view of the air adjusting member, the fourth moving member, and the driving module in an embodiment of the present application. Figure 20

[0040] Figure 22 It is a perspective view of the air adjusting member, the fourth moving member, and the driving module in an embodiment of the present application.

[0041] ​​​​​​​​Figure 23 for Figure 22 The image shows a top view of the atomizer.

[0042] Figure 24 for Figure 22 The diagram shows a cross-sectional view of the atomizer.

[0043] Label Explanation:

[0044] Main unit - 1, Atomizing device - 2, Atomizer - 3, Housing - 10, Air inlet - 101, Bottom wall - 102, Side wall - 103, Receiving space - 11, Air regulating device - 20, Air regulating component - 21, Connecting part - 211, Air regulating port - 212, Drive module - 22, Motor - 221, Rotating shaft - 222, Moving component - 223, First moving component - 2231, Second moving component - 2232, Third moving component - 2233, Output gear - 224, Reduction gear set - 225, First reduction gear - 2251, Second reduction gear - 2252, Transmission component - 2253, Transmission gear - 2254, Gear protective cover - 2255, Base - 226, Guide component - 227, Elastic component - 228, Bearing - 229, Bearing cover - 230, Bushing - 231, Decorative component - 232, Fourth moving component - 24, Bracket - 30, First magnetic component - 41, Second sensor - 51, Processor - 52, Input module - 53, Ignition button - 61, Battery - 62, PCB board - 63, Microphone silicone - 64, Bracket cover - 65, Housing cover - 66, Lens - 67, Inner oil guide cotton - 71, Heating element - 72, Atomizer core outer cover - 73, Atomizer core inner bracket - 74, Silicone ring - 75, Oil tank - 76, Oil absorbent cotton - 77, Bottom cover - 78, Magnet - 79, Pin - 80, Electrode - 81, Oil filling plug - 82, Air guide channel - 83. Detailed Implementation

[0045] The following are preferred embodiments of this application. It should be noted that, for those skilled in the art, several improvements and modifications can be made without departing from the principles of this application, and these improvements and modifications are also considered to be within the scope of protection of this application.

[0046] In view of this, in order to solve the above problems, this application provides a host. Please refer to it as well. Figures 1-13 , Figure 1 This is a side view of the atomizing device when the air regulating component and the air inlet are misaligned in one embodiment of this application. Figure 2 for Figure 1 A magnified view of a partial atomizing device is shown. Figure 3 This is a side view of the atomizing device when the air regulating component and the air inlet partially overlap in one embodiment of this application. Figure 4 for Figure 3 A magnified view of a partial atomizing device is shown.Figure 5 FIG. 9 is a side view of an atomization device according to an embodiment of the present application, in which the air adjusting member overlaps the air inlet most. Figure 6 FIG. 10 is a partial enlarged view of the atomization device shown in FIG. 9. Figure 5 FIG. 11 is an exploded view of the atomization device shown in FIG. 9. Figure 7 FIG. 12 is an exploded view of a host according to an embodiment of the present application. Figure 8 FIG. 13 is an exploded schematic view of an air adjusting member, a bracket, and a driving module according to an embodiment of the present application. Figure 9 FIG. 14 is a perspective structural schematic view of the driving module according to an embodiment of the present application. Figure 10 FIG. 15 is a front view of the driving module shown in FIG. 14. Figure 9 FIG. 16 is a sectional schematic view of the driving module shown in FIG. 14. Figure 11 FIG. 17 is an exploded view of the driving module shown in FIG. 14. Figure 9 FIG. 18 is a front view of the driving module shown in FIG. 17, in which a moving assembly in the driving module moves to another position. Figure 12 FIG. 19 is a sectional schematic view of the driving module shown in FIG. 17. Figure 9 FIG. 20 is an exploded view of the driving module shown in FIG. 17. Figure 13 FIG. 21 is a front view of the driving module shown in FIG. 20, in which the moving assembly in the driving module moves to another position. Figure 9 FIG. 22 is a sectional schematic view of the driving module shown in FIG. 20.

[0047] The host 1 provided by the embodiment is applied to an atomization device 2, and the host 1 includes a shell 10 and an air adjusting device 20. The shell 10 is used to accommodate an atomizer 3 of the atomization device 2, and the shell 10 includes a bottom wall 102 and a side wall 103 connected to the bottom wall 102. The bottom wall 102 is arranged opposite to the atomizer 3, and the side wall 103 surrounds the bottom wall 102 to form an accommodation space 11. The side wall 103 has an air inlet 101 communicating with the accommodation space 11. The air adjusting device 20 is arranged in the accommodation space 11, and the air adjusting device 20 includes an air adjusting member 21 and a driving module 22 connected to each other. The air adjusting member 21 abuts against the side wall 103, and the driving module 22 can drive the air adjusting member 21 to move, so as to change an air inlet area of the air inlet 101.

[0048] The host 1 is a part of the atomization device 2, and the atomization device 2 provided by the embodiment and hereinafter is mainly used in the fields of medical treatment, furniture, and electronic atomizers. The atomization device 2 usually includes the host 1 and the atomizer 3. The atomizer 3 stores liquid to be atomized. The atomizer 3 usually has an atomization core including an atomization core base and a heating element 72. The liquid to be atomized can be conducted to the atomization core base by adsorption and finally to the heating element 72. The heating element 72 is used to atomize the liquid to be atomized into aerosol for a user to use or smoke. However, when the user changes different atomizers 3, the air inlet area of the air inlet 101 usually needs to be changed to achieve the best taste. However, the air inlet of the host in the related art is usually fixed and cannot be changed, which affects the experience of the user.

[0049] The present embodiment is only illustratively described by applying the atomization device 2 to the field of electronic atomizers. Alternatively, the atomizer 3 and the main machine 1 can be fixedly connected or detachably connected. The present embodiment is only illustratively described by taking the atomizer 3 and the main machine 1 as being detachably connected.

[0050] The main machine 1 comprises a shell 10 and an air adjusting device 20. The shell 10 is the overall housing of the main machine 1 and is used to accommodate various components inside the main machine 1. Meanwhile, the shell 10 is also used to accommodate the atomizer 3 of the atomization device 2, that is, the atomizer 3 is fixed to the shell 10 of the main machine 1. Alternatively, the connection relationship between the atomizer 3 and the main machine 1 includes but is not limited to magnetic connection, buckle connection, etc. The shell 10 has a bottom wall 102 oppositely arranged relative to the atomizer 3 and a side wall 103 bently connected to the bottom wall 102. In other words, the bottom wall 102 is the side of the shell 10 corresponding to the atomizer 3, and the side wall 103 is bently connected to the bottom wall 102. The side wall 103 and the bottom wall 102 jointly enclose a receiving space 11, and the air adjusting device 20 and various components inside the main machine 1 are arranged in the receiving space 11.

[0051] The shell 10 has an air inlet 101 communicating with the receiving space 11, that is, the air inlet 101 penetrates through the shell 10, one side of the air inlet 101 communicates with the air outside the main machine 1, and the other side of the air inlet 101 communicates with the receiving space 11 inside the main machine 1. The air adjusting device 20 comprises an air adjusting piece 21 and a driving module 22 connected to each other. Alternatively, the air adjusting piece 21 and the driving module 22 can be fixedly connected or detachably connected. The air adjusting piece 21 abuts against the shell 10, that is, the air adjusting piece 21 abuts against the inner wall of the shell 10, so that the air adjusting piece 21 can abut against the air inlet 101 to different degrees, thereby changing the air inlet area of the air inlet 101.

[0052] In particular, the air inlet 101 can be arranged on the side wall 103, the top wall, or the bottom wall 102 of the shell 10. When the air inlet 101 is arranged on the top wall of the shell 10, the risk of liquid leakage of the atomization device 2 can be reduced. When the air inlet 101 is arranged on the side wall of the shell 10, the air inlet 101 is relatively close to the atomizer 3, and the external air can enter the atomizer 3 more quickly after entering the main machine 1 from the air inlet 101, thereby improving the atomization efficiency of the atomization device 2. Meanwhile, the air inlet 101 arranged on the side wall 103 makes the atomization device 2 adjust the air inlet area more intuitively, which is convenient for determining the optimal air inlet area. Furthermore, the air inlet 101 arranged on the side wall 103 reduces the risk of dust accumulation in the air inlet 101 and improves the hygiene level of the atomization device 2. When the air inlet 101 is arranged on the bottom wall of the shell 10, the situation that the air inlet 101 is blocked by the user's hand when the user holds the atomization device 2 can be avoided.

[0053] The driving module 22 can drive the air adjusting member 21 to move, so as to change the air inlet area of the air inlet 101. In other words, the driving module 22 can drive the air adjusting member 21 to move relative to the shell 10, so that the air adjusting member 21 abutting against the shell 10 has various positional relationships relative to the air inlet 101, thereby changing the actual air inlet area of the air inlet 101. Specifically, when the air adjusting member 21 is staggered with the air inlet 101, the air adjusting member 21 does not block the air inlet 101 at all, at this time, the actual air inlet area of the air inlet 101 is the area of the air inlet 101 itself, at this time, the air inlet area of the air inlet 101 is the largest, and the air inlet rate is the fastest. When the air adjusting member 21 partially coincides with the air inlet 101, the actual air inlet area of the air inlet 101 is the area of the air inlet 101 that is not blocked by the air adjusting member 21, that is, compared with the case that the air adjusting member 21 is staggered with the air inlet 101, the air inlet area is reduced, and the air inlet rate is also reduced. When the air adjusting member 21 completely blocks the air inlet 101, the actual air inlet area of the air inlet 101 is zero, that is, the air inlet 101 cannot inlet air, at this time, the air inlet 101 is in a closed state.

[0054] The driving module 22 includes a motor 221, a rotating shaft 222, and a movement assembly 223. The motor 221 is connected to the rotating shaft 222, the movement assembly 223 is sleeved on the rotating shaft 222 and is threadedly connected with the rotating shaft 222, and the movement assembly 223 is further connected to the air adjusting member 21. The motor 221 can drive the rotating shaft 222 to rotate along the rotating axis of the rotating shaft 222, so that the movement assembly 223 drives the air adjusting member 21 to move along the rotating axis.

[0055] The driving module 22 includes a motor 221, a rotating shaft 222, and a movement assembly 223. The motor 221 is the power source of the driving module 22, the output shaft of the motor 221 is connected to the rotating shaft 222, so that when the output shaft of the motor 221 rotates, the rotating shaft 222 can be driven to rotate synchronously. The movement assembly 223 is sleeved on the rotating shaft 222 and is threadedly connected with the rotating shaft 222, in other words, the rotating shaft 222 penetrates through the movement assembly 223, and is connected to the movement assembly 223 in a form similar to the cooperation between a screw and a screw rod.

[0056] Specifically, the outer sidewall 103 of the rotating shaft 222 has a first thread, and the inner sidewall 103 of the motion assembly 223 has a second thread. When the rotating shaft 222 rotates under the drive of the motor 221, the motion assembly 223 is threadedly connected with the rotating shaft 222, so that the circumferential rotation of the rotating shaft 222 is converted into the movement of the motion assembly 223 along the length direction of the rotating shaft 222. That is, when the rotating shaft 222 rotates, the threads of the rotating shaft 222 and the motion assembly 223 are threadedly connected with each other, so that the motion assembly 223 moves along the length direction of the rotating shaft 222. At the same time, the motion assembly 223 is connected with the air adjusting member 21, thereby driving the air adjusting member 21 to move relative to the air inlet 101, so as to change the air inlet area.

[0057] The air inlet area of the air inlet of the atomization device in the related art is generally fixed and cannot be adjusted according to the user's demand. This may cause the user to have a poor experience in use, such as too much or too little mist, unsuitable taste, and the like. The host 1 in the embodiment can control the air inlet area by controlling the positional relationship between the air adjusting member 21 and the air inlet hole, so that the air inlet rate of the atomization device 2 can be adjusted according to the user's demand, thereby improving the user's experience. For example, when the mist is too much, the air adjusting member 21 can be adjusted to increase the area of the air adjusting member 21 overlapping with the air inlet 101, that is, to reduce the air inlet area, so that the mist is reduced. Similarly, when the mist is too little, the air adjusting member 21 can be adjusted to reduce the area of the air adjusting member 21 overlapping with the air inlet 101, that is, to increase the air inlet area, so that the mist is increased.

[0058] Some atomization devices 2 have the function of adjusting the air, but most of these atomization devices 2 are manually adjusted, that is, the user manually adjusts the air inlet area of the atomization device 2. However, when the user is not skilled, the user cannot accurately adjust the air inlet area to the appropriate size, and the user often needs to adjust several times to make the atomization device 2 reach the best taste, thereby reducing the user's experience. In the embodiment, the air adjusting member 21 is driven by the driving module 22 to move, so that the air adjusting member 21 accurately blocks part of the air inlet 101, thereby accurately controlling the actual air inlet area of the air inlet 101, so that the atomization device 2 can automatically switch to the appropriate air inlet area according to the type of the atomizer 3.

[0059] For example, the atomizer 3 includes a first atomizer 3 and a second atomizer 3, wherein the atomized liquid types or resistances of the first atomizer 3 and the second atomizer 3 are different, so that the optimal air inlet areas of the first atomizer 3 and the second atomizer 3 are different. Wherein when the first atomizer 3 cooperates with the host 1, the first air inlet area is the optimal air inlet area. When the second atomizer 3 cooperates with the host 1, the second air inlet area is the optimal air inlet area. When the first atomizer 3 is installed in the host 1, the driving module 22 drives the air adjusting piece 21 to move relative to the air inlet 101, so that the air inlet area is the first air inlet area. When the second atomizer 3 is installed in the host 1, the driving module 22 drives the air adjusting piece 21 to move relative to the air inlet 101, so that the air inlet area is the second air inlet area. By precisely controlling the air adjusting piece 21 through the driving module 22, the air inlet area is precisely controlled, and the operation difficulty of the user adjusting the air inlet area is reduced.

[0060] At the same time, the motor 221 drives the rotating shaft 222 to rotate in the embodiment, the rotating shaft 222 is threadedly connected with the movement assembly 223, so that the rotation of the rotating shaft 222 is converted into the movement of the movement assembly 223 along the length direction of the rotating shaft 222. Further, the movement assembly 223 drives the air adjusting piece 21 to move relative to the air inlet 101, so that the air inlet area is changed, the adjustment of the air inlet area is more accurate, and the adjustment difficulty of the air inlet area is reduced.

[0061] For example, when the air inlet area needs to be reduced by 1mm 2 , at this time, the motor 221 can drive the rotating shaft 222 to rotate clockwise by a set angle, so that the air adjusting piece 21 moves relative to the air inlet 101 by a certain distance in a first direction, and then the air inlet area is reduced. Similarly, when the air inlet area needs to be increased by 1mm 2 , at this time, the motor 221 can drive the rotating shaft 222 to rotate counterclockwise by a set angle, so that the air adjusting piece 21 moves relative to the air inlet 101 by a certain distance in a second direction opposite to the first direction, and then the air inlet area is increased.

[0062] In summary, the driving module 22 drives the air adjusting piece 21 to move relative to the air inlet 101 of the shell 10 in the embodiment, so that the air inlet 101 can adjust the air inlet area according to different types of atomizers 3 or different user needs, and the user experience is improved. At the same time, the motor 221 in the driving module 22 drives the rotating shaft 222 to rotate, and then drives the air adjusting piece 21 to move, so that the adjustment of the air inlet area is more accurate, and the air adjusting efficiency is improved.

[0063] Please refer to Figures 1-6In the embodiment, the air inlet 101 is closer to the atomizer 3 than the bottom wall 102. As described above, the air inlet 101 is arranged on the side wall 103 of the shell 10. In the embodiment, the air inlet 101 is closer to the atomizer 3 than the bottom wall 102. In other words, the distance between the air inlet 101 and the bottom wall 102 is greater than the distance between the air inlet 101 and the atomizer 3. That is, the air inlet 101 is arranged on the side wall 103 close to the atomizer 3.

[0064] As described above, the external air enters the main machine 1 through the air inlet 101 of the main machine 1 and is finally conducted to the atomizer 3 connected to the main machine 1. In the embodiment, the air inlet 101 is arranged on the side wall 103 close to the atomizer 3, thereby reducing the distance between the air inlet 101 and the atomizer 3. That is, after the external air enters the main machine 1 through the air inlet 101 of the side wall 103, the external air can be transmitted to the atomizer 3 more quickly. Thus, the speed of the external air from the air inlet 101 to the atomizer 3 is improved, and the atomization efficiency of the atomization device 2 is improved.

[0065] Please refer to Figures 11-12 In the embodiment, the driving module 22 further comprises an output gear 224 and a speed reduction gear set 225. The output gear 224 is arranged on the output shaft of the motor 221, and the output gear 224 is engaged with the speed reduction gear set 225. The speed reduction gear set 225 is connected to the rotating shaft 222.

[0066] As described above, the rotating shaft 222 is connected to the output shaft of the motor 221. When the output shaft of the motor 221 rotates, the rotating shaft 222 rotates synchronously. On this basis, the output gear 224 and the speed reduction gear set 225 are additionally arranged between the output shaft of the motor 221 and the rotating shaft 222. The output gear 224 is arranged on the output shaft of the motor 221, and is mainly used to increase the torque of the output shaft. The output gear 224 is engaged with the speed reduction gear set 225, and the speed reduction gear set 225 is mainly used to reduce the rotating speed of the rotating shaft 222 connected to the output shaft. The speed reduction gear is connected to the rotating shaft 222, that is, one side of the speed reduction gear set 225 is connected to the output gear 224, and the other side of the speed reduction gear set 225 is connected to the rotating shaft 222.

[0067] The output shaft of motor 221 typically rotates at a high speed. If shaft 222 is directly fixed to the output shaft of motor 221, the rotation speed of shaft 222 would be too fast, resulting in excessively fast movement of moving components 223 and air regulating components 21. This would cause the air regulating component 21 to move too quickly relative to the air inlet 101, making precise adjustment of the air intake area impossible. In this embodiment, a reduction gear set 225 is added between the output shaft of motor 221 and shaft 222, making the rotation speed of shaft 222 lower than that of the output shaft. This results in the air regulating component 21 moving relatively slowly and stably, enabling precise adjustment of the air intake area.

[0068] Optionally, the speed reduction principle of the reduction gear set 225 includes, but is not limited to, reducing speed by using gears with different radii, or reducing speed by having one gear simultaneously engage with multiple gears.

[0069] Please refer to this as well. Figures 11-12 , Figure 14 , Figure 14 for Figure 11 The diagram shows a partial enlarged view of the drive module. In this embodiment, the reduction gear set 225 includes a first reduction gear 2251, a transmission member 2253, and a second reduction gear 2252. The first reduction gear 2251 is meshed with the output gear 224. The first reduction gear 2251 is mounted on one side of the transmission member 2253, and a transmission gear 2254 is provided on the other side of the transmission member 2253. The transmission gear 2254 is meshed with the second reduction gear 2252, and the second reduction gear 2252 is mounted on the rotating shaft 222.

[0070] The reduction gear set 225 includes a first reduction gear 2251, a transmission member 2253, and a second reduction gear 2252. In other words, along the arrangement direction of the output shaft and the rotating shaft 222, the reduction gear set 225 sequentially includes the first reduction gear 2251, the transmission member 2253, and the second reduction gear 2252. The first reduction gear 2251 meshes with the output gear 224 and is mounted on one side of the transmission member 2253. A transmission gear 2254 is provided on the other side of the transmission member 2253, that is, the side of the transmission member 2253 opposite to the first reduction gear 2251 has a transmission gear 2254, which meshes with the second reduction gear 2252, and the second reduction gear 2252 is mounted on the rotating shaft 222.

[0071] When the motor 221 starts, the output shaft of the motor 221 drives, the output gear 224 arranged on the output shaft of the motor 221 rotates synchronously, the first reduction gear 2251 is engaged with the output gear 224, the first reduction gear 2251 drives the transmission member 2253 to rotate, and then the transmission gear 2254 of the transmission member 2253 rotates, at this time, the rotation speed of the transmission gear 2254 is less than that of the output gear 224, and the first reduction is realized. The transmission gear 2254 is engaged with the second reduction gear 2252, that is, the transmission gear 2254 drives the second reduction gear 2252 to drive, and the second reduction gear 2252 is arranged on the rotating shaft 222, so that the second reduction gear 2252 drives the rotating shaft 222 to rotate, at this time, the rotation speed of the rotating shaft 222 is less than that of the transmission gear 2254, and the second reduction is realized. In the embodiment, the first reduction gear 2251 and the second reduction gear 2252 are sequentially connected, and cooperate together, so that the rotation speed of the rotating shaft 222 is lower than that of the output shaft of the motor 221, and the effect of speed reduction is better.

[0072] Optionally, the speed reduction gear set 225 further comprises a gear protection cover 2255, the gear protection cover 2255 is sleeved on the first reduction gear 2251, the second reduction gear 2252 and the transmission member 2253. The gear protection cover 2255 isolates the gears in the speed reduction gear set 225, avoiding the interference of other components on the gears.

[0073] Please refer to Figures 11-12 In the embodiment, the driving module 22 further comprises a base 226 and a guide member 227, the motor 221 is arranged on the base 226, one end of the rotating shaft 222 is connected with the motor 221, the other end of the rotating shaft 222 is arranged on the base 226, the guide member 227 is arranged on the base 226, and the axial direction of the guide member 227 is parallel to the axial direction of the rotating shaft 222, and the movement assembly 223 is sleeved on the guide member 227.

[0074] The driving module 22 further comprises a base 226 and a guide member 227, the base 226 is mainly used for providing a mounting basis for other components in the driving module 22, and the guide member 227 is mainly used for guiding the movement direction. The motor 221 is arranged on the base 226, one end of the rotating shaft 222 is connected with the output shaft of the motor 221, and the other end of the rotating shaft 222 is arranged on the base 226. Optionally, the rotating shaft 222 is connected with the base 226 through a bearing 229, that is, the bearing 229 is arranged between the rotating shaft 222 and the base 226, so that the motor 221 drives the rotating shaft 222 to rotate more smoothly. Further optionally, the side of the base 226 facing the bearing 229 is provided with a bearing cover 230, and the bearing 229 is arranged in the bearing cover 230, so as to avoid the interference of other components on the bearing 229 when the bearing 229 rotates.

[0075] The guide 227 is arranged on the base 226, specifically, both ends of the guide 227 are fixed on the base 226. And the axial direction of the guide 227 is parallel to the axial direction of the rotating shaft 222, that is, the extension direction of the guide 227 is the same as the extension direction of the rotating shaft 222. The movement assembly 223 is sleeved on the guide 227, that is, the guide 227 penetrates through the movement assembly 223, and the movement assembly 223 can translate along the extension direction of the guide 227.

[0076] From the above, when the rotating shaft 222 rotates, the movement assembly 223 translates along the axial direction of the rotating shaft 222. On this basis, the embodiment further adds the guide 227 to the driving module 22. The movement assembly 223 is sleeved on the guide 227 and the rotating shaft 222 at the same time, so that when the rotating shaft 222 rotates, the rotating shaft 222 will not drive the movement assembly 223 to rotate, but through the threaded connection relationship, the movement assembly 223 translates along the axial direction of the rotating shaft 222. Through the arrangement of the guide 227, the movement of the driving module is more efficient, and the rotating shaft 222 driving the movement assembly 223 to rotate is avoided.

[0077] Optionally, the driving module 22 further comprises a shaft sleeve 231, the shaft sleeve 231 is sleeved on the guide 227, and the two shaft sleeves 231 are respectively fixed on the opposite sides of the movement assembly 223. The movement assembly 223 is indirectly sleeved on the guide 227 through the shaft sleeve 231, so as to reduce the friction between the movement assembly 223 and the guide 227, and further improve the movement efficiency of the driving module 22.

[0078] Optionally, the driving module 22 further comprises a decorative piece 232, the decorative piece 232 is arranged on the base 226, and the decorative piece 232 is arranged at one end of the guide 227. When the guide 227 is arranged on the base 226, the guide 227 is usually inserted into the base 226. However, when the base 226 is processed, a through hole penetrating through the base 226 is usually directly processed, the guide 227 is inserted into the through hole and is bonded to the base 226. The decorative piece 232 is arranged outside the through hole and closes the through hole, so as to avoid the exposed adhesive accelerating aging, and further reduce the risk of the guide 227 being separated from the base 226.

[0079] Please refer to Figures 11-12 In the embodiment, the driving module 22 further comprises an elastic piece 228, the elastic piece 228 is sleeved on the guide 227, one end of the elastic piece 228 is connected to the base 226, and the other end is connected to the movement assembly 223, and the elastic piece 228 is in a compressed state.

[0080] The driving module 22 further comprises an elastic member 228, which is sleeved on the guide member 227. One end of the elastic member 228 is connected to the base 226, and the other end of the elastic member 228 is connected to the moving assembly 223, that is, the elastic member 228 elastically connects the base 226 and the moving assembly 223. And the elastic member 228 is always in a compressed state. From the above, it can be seen that the moving assembly 223 is sleeved on the guide member 227 and the rotating shaft 222 at the same time, and when the rotating shaft 222 rotates, the moving assembly 223 translates along the axial direction of the rotating shaft 222 and the guide member 227. On this basis, the present embodiment adds an elastic member 228 to the driving module 22, one end of the elastic member 228 is connected to the base 226, and the other end of the elastic member 228 is connected to the moving assembly 223. And in the movement process of the moving assembly 223, the elastic member 228 is always in a compressed state, in other words, in the movement process of the moving assembly 223, the elastic member 228 always gives the moving assembly 223 a elastic force in the direction away from the elastic member 228, so that the elastic member 228 always abuts against the moving assembly 223, thereby preventing the moving assembly 223 from shaking in the movement process and avoiding affecting the actual air inlet area of the air inlet 101.

[0081] Specifically, as shown in Figure 11 , the elastic member 228 can be arranged on the left side of the moving assembly 223, or on the right side of the moving assembly 223, as long as the elastic member 228 can give the moving assembly 223 an elastic force in the axial direction of the guide member 227. In the present embodiment, only the case where the elastic member 228 is arranged on the left side of the moving assembly 223 is schematically illustrated.

[0082] Please refer to Figure 12 , in the present embodiment, the moving assembly 223 comprises a first moving member 2231, a second moving member 2232, and a third moving member 2233, the first moving member 2231 is sleeved on the rotating shaft 222 and threadedly connected with the rotating shaft 222, the second moving member 2232 is sleeved on the first moving member 2231 and detachably connected with the first moving member 2231, the third moving member 2233 is detachably connected with the second moving member 2232, and the third moving member 2233 is connected with the air adjusting member 21.

[0083] The moving assembly 223 comprises a first moving member 2231, a second moving member 2232, and a third moving member 2233. The first moving member 2231 is sleeved on the rotating shaft 222 and threadedly connected with the rotating shaft 222, the second moving member 2232 is sleeved on the first moving member 2231 and detachably connected with the first moving member 2231. The third moving member 2233 is detachably connected with the second moving member 2232, and the third moving member 2233 is connected with the air adjusting member 21.

[0084] Specifically, the first moving part 2231 is sleeved on the rotating shaft 222, and the second moving part 2232 is sleeved on the guide part 227. The second moving part 2232 is sleeved and fixed on the first moving part 2231. Optionally, the fixing manner of the first moving part 2231 and the second moving part 2232 includes but is not limited to clamping groove and clamping block connection, screw connection, etc. The third moving part 2233 is inserted on the side of the second moving part 2232 away from the first moving part 2231, and the third moving part 2233 is detachably fixed on the second moving part 2232 through a screw.

[0085] When the motor 221 drives the rotating shaft 222 to rotate, the first moving part 2231 is threadedly connected with the rotating shaft 222, so that the first moving part 2231 moves along the axial direction of the rotating shaft 222. The first moving part 2231 drives the second moving part 2232 to move along the axial direction of the guide part 227, and the second moving part 2232 drives the third moving part 2233 to also move along the axial direction of the guide part 227. At the same time, the third moving part 2233 drives the air adjusting part 21 to move relative to the air inlet 101 of the shell 10, so as to realize the adjustment of the actual air inlet area of the air inlet 101. In this embodiment, the moving assembly 223 is divided into the first moving part 2231, the second moving part 2232, and the third moving part 2233, so that the driving module 22 is convenient to assemble, and the assembly difficulty of the driving module 22 is reduced.

[0086] Please refer to Figures 11-12 , in particular, the application also provides an assembly method of the driving module 22. First, the motor 221 is installed on the base 226, the first speed reducer gear 2251 is installed on one side of the transmission part 2253, the second speed reducer gear 2252 is installed on the other side of the transmission part 2253, and the gear protection cover 2255 is sleeved on the first speed reducer gear 2251, the second speed reducer gear 2252, and the transmission part 2253 to form the speed reducer gear set 225. The speed reducer gear set 225 is installed on the base 226, and the first speed reducer gear 2251 is engaged with the output gear 224 of the motor 221. Then, the first moving part 2231 is sleeved on the rotating shaft 222, and the bearing 229 and the bearing cover 230 are installed on the end of the rotating shaft 222 away from the motor 221, and then the rotating shaft 222 is installed on the base 226. Then, the elastic part 228, the shaft sleeve 231, and the second moving part 2232 are sleeved on the guide part 227, and the guide part 227 is installed on the base 226. The second guide part 227 is sleeved and fixed on the first guide part 227 by moving the second guide part 227, and the decoration part 232 is installed on the end of the base 226 away from the guide part 227. Finally, the third moving part 2233 is inserted into the second moving part 2232 and fixed by a screw.

[0087] Please refer to Figure 8 , Figures 15-18 , Figure 15Figure 6 is a perspective view of the air adjusting device, the fourth moving member, and the driving module in cooperation in an embodiment of the present application. Figure 16 Figure 7 is a side view of the air adjusting device, the fourth moving member, and the driving module in cooperation in an embodiment of the present application. Figure 15 Figure 7 is a side view of the air adjusting device, the fourth moving member, and the driving module in cooperation in an embodiment of the present application. Figure 17 Figure 8 is a front view of the support and the air adjusting device in cooperation in an embodiment of the present application. Figure 18 Figure 8 is a front view of the support and the air adjusting device in cooperation in an embodiment of the present application. Figure 17 Figure 8 is a front view of the support and the air adjusting device in cooperation in an embodiment of the present application.

[0088] In the embodiment, the air adjusting member 21 is provided with a connecting portion 211 on the side close to the driving module, and the air adjusting device 20 further comprises a fourth moving member 24 connected to the third moving member 2233 and the connecting portion 211. The connecting direction of the fourth moving member 24 and the third moving member 2233 is perpendicular to the connecting direction of the fourth moving member 24 and the connecting portion 211, and the connecting direction of the fourth moving member 24 and the connecting portion 211 is along the thickness direction of the main machine 1.

[0089] The air adjusting member 21 is provided with a connecting portion 211 on the side close to the driving module, and the main machine 1 further comprises a fourth moving member 24. One end of the fourth moving member 24 is connected to the third moving member 2233, and the other end of the fourth moving member 24 is connected to the connecting portion 211 of the air adjusting member 21. The connecting direction of the fourth moving member 24 and the third moving member 2233 is perpendicular to the connecting direction of the fourth moving member 24 and the connecting portion 211, and the connecting direction of the fourth moving member 24 and the connecting portion 211 is along the thickness direction of the main machine 1.

[0090] Specifically, the fourth moving member 24 and the third moving member 2233 are connected by a first screw, and the fourth moving member 24 and the connecting portion 211 are connected by a second screw. The connecting direction of the fourth moving member 24 and the third moving member 2233 is the extension direction of the first screw, and the connecting direction of the fourth moving member 24 and the connecting portion 211 is the extension direction of the second screw. The connecting direction of the fourth moving member 24 and the third moving member 2233 being perpendicular to the connecting direction of the fourth moving member 24 and the connecting portion 211 means that the extension direction of the first screw is perpendicular to the extension direction of the second screw. The embodiment adds the fourth moving member 24, so that the driving module 22 is more suitable for the shape of the shell 10 when installed in the shell 10, and the assembly difficulty of the main machine 1 is reduced.

[0091] Please refer to Figure 8 , Figures 15-18In the embodiment, the host 1 further comprises a bracket 30, a first magnetic member 41, a second magnetic member, and a first sensor. The bracket 30 is arranged in the accommodation space 11, and the air adjusting member 21 is movably connected to the bracket 30. The driving module and the second magnetic member are arranged on the bracket 30, and the first magnetic member 41 is arranged on the fourth moving member 24. When the driving module drives the fourth moving member 24 and the air adjusting member 21 to move, and the air adjusting member 21 closes the air inlet 101, the first magnetic member 41 and the second magnetic member are arranged correspondingly and are magnetically attracted to each other. At this time, the first sensor is used to send a signal that the air inlet 101 is closed.

[0092] The host 1 further comprises a bracket 30, a first magnetic member 41, a second magnetic member, and a first sensor. The bracket 30 is arranged in the accommodation space 11, and the air adjusting member 21 is movably connected to the bracket 30. The driving module and the second magnetic member are arranged on the bracket 30, and the first magnetic member 41 is arranged on the fourth moving member 24.

[0093] When the driving module 22 drives the fourth moving member 24 to move, and the fourth moving member 24 drives the air adjusting member 21 to move, and the air adjusting member 21 completely closes the air inlet 101, the first magnetic member 41 and the second magnetic member are magnetically attracted to each other. In other words, when the air adjusting member 21 moves to completely coincide with the air inlet 101, the first magnetic member 41 and the second magnetic member are magnetically attracted to each other. At this time, the first sensor is used to send a signal that the air inlet 101 is closed. Through the arrangement of the first magnetic member 41, the second magnetic member, and the first sensor, the difficulty of determining whether the air inlet 101 is completely closed is reduced, and the air adjusting member 21 is provided with an initial position, so that the driving module 22 can control the air inlet area of the air inlet 101 more accurately.

[0094] In particular, the first sensor can also detect the specific position of the air adjusting member 21 by detecting the magnetic induction intensity between the first magnetic member 41 and the second magnetic member. That is, on the basis of being able to detect whether the air inlet 101 is completely closed, the first sensor can also detect the real-time position data of the air adjusting member 21 by sensing the magnetic field intensity between the first magnetic member 41 and the second magnetic member. The first sensor can send the detected real-time position data of the air adjusting member 21 to the processor 52, and the processor 52 receives the real-time position of the air adjusting member 21 and obtains the real-time air inlet area of the air inlet 101 through calculation or conversion. At the same time, the processor 52 can also determine whether the actual air inlet area of the air inlet 101 at this time is appropriate. When the processor 52 determines that the air inlet area at this time needs to be increased or decreased, the processor 52 can control the driving module 22 to drive the air adjusting member 21 to move, thereby changing the actual air inlet area of the air inlet 101.

[0095] Optionally, when the first sensor sends a signal that the air inlet 101 is closed, the main machine 1 sends a signal to make the atomizer 3 stop heating, so as to avoid the atomizer 3 heating alone when the main machine 1 has no air intake.

[0096] Optionally, the bracket 30 and the shell 10 form a closed space, and the air adjusting member 21 is arranged in the closed space. One side of the air adjusting member 21 abuts against the shell 10, and the other side abuts against the bracket 30. The side of the bracket 30 away from the air adjusting member 21 further has a through hole connected to the closed space. After the air passes through the air inlet 101, the air further passes through the through hole and is finally conducted to the atomizer 3.

[0097] Please refer to Figure 8 , Figures 15-18 In the embodiment, the air adjusting member 21 is provided with an air adjusting opening 212. When the driving module 22 drives the air adjusting member 21 to move, at least part of the air adjusting opening 212 can coincide with the air inlet 101 to adjust the air inlet area, or the air adjusting opening 212 is arranged staggered with the air inlet 101 to close the air inlet 101.

[0098] The air adjusting member 21 has an air adjusting opening 212. When the driving module 22 drives the air adjusting member 21 to move, at least part of the air adjusting opening 212 can coincide with the air inlet 101, or the air adjusting opening 212 is arranged staggered with the air inlet 101 to close the air inlet 101. In other words, the part of the air adjusting member 21 abutting against the shell 10 has the air adjusting opening 212 penetrating through the air adjusting member 21. Optionally, the area of the air adjusting opening 212 can be greater than, less than, or equal to the area of the air inlet 101. When the area of the air adjusting opening 212 is greater than the area of the air inlet 101, the maximum air inlet area of the main machine 1 is the area of the air inlet 101. When the area of the air adjusting opening 212 is less than the area of the air inlet 101, the maximum air inlet area of the main machine 1 is the area of the air adjusting opening 212.

[0099] When the air adjusting opening 212 coincides with the air inlet 101, the actual air inlet area of the main machine 1 is the area of the part of the air adjusting opening 212 coinciding with the air inlet 101. When the air adjusting opening 212 is arranged staggered with the air inlet 101, the air adjusting member 21 abuts against the air inlet 101 and completely closes the air inlet 101. At this time, the air inlet area is zero. The embodiment controls the actual air inlet area through the cooperation of the air adjusting opening 212 and the air inlet 101, reduces the difficulty of adjusting the air inlet area, and improves the overall air tightness of the main machine 1.

[0100] Optionally, the main machine 1 further comprises an air inlet hole and a manual air adjusting member 21. The user can manually adjust the manual air adjusting member 21 to change the air inlet area of the air inlet hole, so as to manually change the air inlet area of the main machine 1.

[0101] Please refer to Figure 1 ,Figure 7 、 Figure 19 , Figure 19 FIG. 6 is a schematic diagram of the cooperation of the second sensor, the processor, and the input module. In the embodiment, the host 1 further comprises a second sensor 51 and a processor 52. When the atomizer 3 is installed in the host 1, the second sensor 51 is configured to detect the resistance value of the heating element 72 of the atomization core in the atomizer 3, and the processor 52 is configured to control the driving module 22 to drive the air adjusting member 21 to move so that the air inlet area of the air inlet 101 is the preset air inlet area according to the resistance value.

[0102] From the above, it can be seen that the air adjusting member 21 can adjust the air inlet area of the host 1 to adjust the amount of mist of the atomization device 2. In the embodiment, the host 1 further comprises a second sensor 51 and a processor 52. The second sensor 51 is configured to receive signals, and the processor 52 is configured to process the signals received by the second sensor 51 and send the signals to other elements. When the atomizer 3 is installed in the host 1, the second sensor 51 can detect the resistance value of the heating element 72 of the atomization core in the atomizer 3 and simultaneously send the resistance value data of the heating element 72 to the processor 52.

[0103] After the processor 52 receives the resistance value data of the heating element 72 sent by the second sensor 51, the processor 52 can calculate the optimal air inlet area in real time, or the processor 52 can convert the optimal air inlet area corresponding to the resistance value data according to the information stored in the processor 52. After the processor 52 calculates the optimal air inlet area, the processor 52 controls the driving module 22 to drive the air adjusting member 21 to move, so that the air adjusting member 21 moves relative to the air inlet 101, i.e., the actual air inlet area of the air inlet 101 is adjusted, and then the actual air inlet area of the air inlet 101 is the optimal air inlet area calculated by the processor 52 or the preset air inlet area stored in the processor 52. By sensing the resistance value of the heating element 72 through the second sensor 51 and controlling the air inlet area of the air inlet 101 to be the optimal air inlet area through the processor 52 according to the resistance value of the heating element 72, the host 1 can automatically adjust the air inlet area of the air inlet 101 to the optimal air inlet area after the atomizer 3 is replaced, which improves the use experience of the atomization device 2.

[0104] Specifically, for example, the heating element 72 of the atomizer 3 has three resistance values, which are 0.4 Ω, 0.7 Ω, and 1.0 Ω, and the optimal air inlet areas of the host 1 corresponding to the three resistance values are 3 mm 2 , 2 mm 2 , and 1 mm 2When the user installs the 0.4-ohm atomizer 3 to the main machine 1, the second sensor 51 of the main machine 1 can automatically detect that the heating element 72 of the atomizer 3 has a resistance of 0.4 ohm, and the processor 52 controls the driving module 22 to drive the air adjusting element 21 to move according to the data, so that the actual air inlet area of the air inlet 101 of the main machine 1 is 3 mm 2 When the user installs the 0.7-ohm atomizer 3 to the main machine 1, the second sensor 51 of the main machine 1 can automatically detect that the heating element 72 of the atomizer 3 has a resistance of 0.7 ohm, and the processor 52 controls the driving module 22 to drive the air adjusting element 21 to move according to the data, so that the actual air inlet area of the air inlet 101 of the main machine 1 is 2 mm 2 When the user installs the 1.0-ohm atomizer 3 to the main machine 1, the second sensor 51 of the main machine 1 can automatically detect that the heating element 72 of the atomizer 3 has a resistance of 1.0 ohm, and the processor 52 controls the driving module 22 to drive the air adjusting element 21 to move according to the data, so that the actual air inlet area of the air inlet 101 of the main machine 1 is 1 mm 2 .

[0105] Optionally, when the main machine 1 is not installed with the atomizer 3, that is, the second sensor 51 fails to detect the resistance of the atomizer 3, the processor 52 controls the driving module 22 to drive the air adjusting element 21 to move to close the air inlet 101.

[0106] Optionally, the main machine 1 further comprises an input module 53 electrically connected to the processor 52, and the input module 53 is used for the user to manually input the power or resistance of the atomizer 3. The user can manually input the power or resistance of the atomizer 3 installed in the atomization device 2 through the input module 53, and the processor 52 controls the driving module 22 to drive the air adjusting element 21 to move according to the data manually input by the user, so that the air inlet area of the air inlet 101 is the optimal air inlet area input by the user.

[0107] Further optionally, when the atomizer 3 is installed in the main machine 1, the main machine 1 first adjusts the air inlet area of the air inlet 101 to the optimal air inlet area corresponding to the resistance of the atomizer 3 according to the resistance data of the atomizer 3. Then, when the user manually inputs data, the main machine 1 adjusts the air inlet area of the air inlet 101 on the basis of the optimal air inlet area corresponding to the resistance of the atomizer 3, so as to improve the efficiency of the air inlet area adjustment.

[0108] Please refer to Figure 7In particular, the application also provides an assembling method of the host 1. First, the driving module 22 is installed on the bracket 30, and the motor 221 is fixed on the bracket 30 by screws. The ignition key 61 is assembled on the shell 10 of the main body, the air adjusting piece 21 is installed on the bracket 30, and the driving module 22 and the air adjusting piece 21 are connected together by screws. When the driving module 22 moves, the air adjusting piece 21 is driven to move, so as to control the air inlet area of the host 1. The microphone silica gel 64 is assembled on the bracket 30, and the bracket 30 is fixed in the shell 10 of the host 1. Then, the power line of the battery 62 is welded on the PCB board 63, and then the PCB board 63 is installed into the host 1 and fixed by screws. Then, the bracket cover 65 is installed on the bracket 30 and fixed by screws. Then, the shell cover plate 66 is installed on the shell 10, and the shell 10 and the shell cover plate 66 are connected and fixed by interference fit. The lens 67 is assembled on the shell cover plate 66, and the lens 67 and the shell cover plate 66 are connected and fixed by adhesion.

[0109] Reference should be made to Figures 20-24 , Figure 20 is a front view of an atomization device in an embodiment of the application. Figure 21 is Figure 20 a cross-sectional view of the atomization device shown in FIG. 8. Figure 22 is a perspective view of an atomizer in an embodiment of the application. Figure 23 is Figure 22 a top view of the atomizer shown in FIG. 9. Figure 24 is Figure 22 a cross-sectional view of the atomizer shown in FIG. 9. The embodiment provides an atomization device 2, which comprises an atomizer 3 and a host 1 provided in the above embodiments of the application. The atomizer 3 is installed on the shell 10 of the host 1, and the atomizer 3 has a gas guiding channel 83 connected to the air inlet 101, so that external gas can enter the gas guiding channel 83 from the air inlet 101.

[0110] The atomization device 2 comprises an atomizer 3 and a host 1 provided in the above embodiments of the application. The atomizer 3 is used to heat and atomize the atomization liquid stored in the atomizer 3, and the host 1 is used to install and power the atomizer 3. The atomizer 3 is installed on the shell 10 of the host 1, and the atomizer 3 has a gas guiding channel 83 connected to the air inlet 101. When external gas enters the host 1 from the air inlet 101, the gas continues to move in the host 1 and finally flows through the gas guiding channel 83 under the action of suction. At the same time, the gas mixes with the heated and atomized atomization liquid when flowing through the gas guiding channel 83, so as to obtain aerogel, which is inhaled or used by a user from the air outlet of the atomizer 3.

[0111] The atomization device 2 of the present embodiment can automatically adjust the air inlet area of the air inlet 101 of the host 1 according to the resistance value data of the atomizer 3 after the atomizer 3 is installed to the host 1, so that the atomization amount of the atomization device 2 is automatically adjusted to the optimal use taste, thereby improving the user experience.

[0112] Please refer again to Figures 22-24 The present application also provides an assembly method of the atomizer 3. The inner oil absorbing cotton 71 is fixed to the heating element 72, and the heating element 72 has many resistance values. The atomizer outer cover 73 is fixed to the atomizer inner support 7430 by interference fit, the atomizer outer cover 73 is sleeved with two silica gel rings 75 at the top, and is interference sealed with the oil tank 76. The atomizer outer cover 73 is interference sealed with the sealing silica gel, the oil absorbing cotton 77 is fixed to the bottom cover 78 by interference fit, the magnet 79 is fixed to the bottom cover 78 by interference fit, the bottom cover 78 is buckled to the oil tank 76, the two pins 80 of the heating element 72 are threaded through the center hole of the electrode 81 and are spot welded to be fixed. The electrode 81 and the bottom cover 78 are interference assembled by riveting, and the oil injection plug 82 is interference sealed with the oil tank 76.

[0113] In the description of the present application, it should be understood that the orientations or positional relationships indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise" and the like are based on the orientations or positional relationships shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements indicated must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.

[0114] In addition, the terms "first" and "second" are only for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "multiple" is two or more, unless otherwise specifically limited. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion.

[0115] In this application, unless otherwise clearly indicated and limited, the terms "mounting", "connection", "connecting", "fixing" and the like should be interpreted broadly, for example, can be fixed connection, can also be detachable connection, or integral. It can be a mechanical connection, or an electrical connection. It can be directly connected, or indirectly connected through an intermediate medium, or it can be the internal communication of two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in this application can be understood according to the specific circumstances.

[0116] The above provides the content provided by the embodiments of the application, the principles and the implementation of the application are described and explained, and these explanations are only used to help understand the method of the application and its core idea. However, the content of the specification should not be understood as a limitation of the application, and those skilled in the art can make various modifications and changes to the application without departing from the spirit and scope of the application. These modifications and changes of the application belong to the scope of the claims of the application and its equivalent technologies.

Claims

1. A host computer, characterized in that, The host is used in an atomizing device, and the host includes: A housing for mounting the atomizer of the atomizing device, the housing having a receiving space inside, and the housing having an air inlet communicating with the receiving space; An air regulating device is disposed within the receiving space. The air regulating device includes an air regulating component and a drive module. The air regulating component abuts against the inner wall of the housing. The drive module includes a motor, a rotating shaft, and a motion component. The motor is connected to the rotating shaft. The motion component is sleeved on the rotating shaft and threadedly connected to the rotating shaft. The motion component is also connected to the air regulating component. The motor can drive the rotating shaft to rotate along the rotation axis of the rotating shaft, thereby causing the moving components to move the air regulating components along the rotation axis, thereby changing the air intake area of ​​the air inlet.

2. The host computer as described in claim 1, characterized in that, The drive module further includes an output gear and a reduction gear set. The output gear is located on the output shaft of the motor and meshes with the reduction gear set, which is connected to the rotating shaft.

3. The host computer as described in claim 2, characterized in that, The reduction gear set includes a first reduction gear, a transmission component, and a second reduction gear. The first reduction gear meshes with the output gear. The first reduction gear is mounted on one side of the transmission component, and a transmission gear is provided on the other side of the transmission component. The transmission gear meshes with the second reduction gear, and the second reduction gear is mounted on the rotating shaft.

4. The host computer as described in claim 1, characterized in that, The drive module further includes a base and a guide. The base is disposed in the receiving space, the motor is mounted on the base, one end of the rotating shaft is connected to the motor, the other end of the rotating shaft is mounted on the base, the guide is mounted on the base, and the axial direction of the guide is parallel to the rotation axis direction of the rotating shaft. The motion component is sleeved on the guide.

5. The host computer as described in claim 4, characterized in that, The drive module also includes an elastic element, which is sleeved on the guide element. One end of the elastic element is connected to the base, and the other end is connected to the motion component. The elastic element is in a compressed state.

6. The host computer as described in claim 1, characterized in that, The motion assembly includes a first motion component, a second motion component, and a third motion component. The first motion component is sleeved on the rotating shaft and threadedly connected to the rotating shaft. The second motion component is sleeved on the first motion component and detachably connected to the first motion component. The third motion component is detachably connected to the second motion component and is connected to the air regulating component.

7. The host computer as described in claim 6, characterized in that, The air regulating component has a connecting portion on the side near the drive module. The air regulating device also includes a fourth moving component, which is connected to the third moving component and the connecting portion. The connection direction between the fourth moving component and the third moving component is perpendicular to the connection direction between the fourth moving component and the connecting portion. The connection direction between the fourth moving component and the connecting portion is along the thickness direction of the host.

8. The host computer as described in claim 7, characterized in that, The host also includes a bracket, a first magnetic component, a second magnetic component, and a first sensor. The bracket is disposed within the receiving space. The air regulating component is movably connected to the bracket. The drive module and the second magnetic component are mounted on the bracket. The first magnetic component is mounted on the fourth moving component. When the drive module drives the fourth moving component and the air regulating component to move, and the air regulating component closes the air inlet, the first magnetic component and the second magnetic component are correspondingly arranged and magnetically attracted to each other. At this time, the first sensor is used to send a signal that the air inlet is closed.

9. The host computer as described in any one of claims 1-8, characterized in that, The host also includes a second sensor and a processor. When the atomizer is installed on the host, the second sensor is used to detect the resistance of the heating element of the atomizing core in the atomizer. The processor is used to control the drive module to drive the air regulating element to move according to the resistance value, so that the air intake area of ​​the air inlet is a preset air intake area.

10. An atomizing device, characterized in that, The atomizing device includes an atomizer and a main unit as described in any one of claims 1-9. The atomizer is installed in the housing of the main unit and has an air guide channel communicating with the air inlet. External gas can enter the receiving space through the air inlet and then enter the air guide channel.