Electronic atomizer

Through modular design and the use of magnetic suction parts, the problem of unstable electrical connection between the atomization module and the power supply module is solved, and the stable electrical connection and convenient assembly of the electronic atomizer are achieved.

CN223182949UActive Publication Date: 2025-08-05SHENZHEN GEEKVAPE TECH CO LTD
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Patent Information

Application Number
CN202421860103.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-01
Publication Date
2025-08-05
Estimated Expiration
2034-08-01

AI Technical Summary

Technical Problem

In existing replaceable electronic atomizers, the electrical connection between the atomization module and the power supply module is poor, resulting in threatening of the conductive paths during use, affecting the user experience.

Method used

The modular design adopts a modular design, and the housing surface of the atomization module and the power module are kept partially fit by connecting the module, and the rotation and movement of the housing are restricted by magnetic suction parts, thereby ensuring the electrical connection stability of the power supply assembly and the atomization assembly.

Benefits of technology

Improve the electrical connection stability between the atomization module and the power supply module, ensure the normal operation of the electronic atomizer, and simplify the assembly and maintenance process.

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Abstract

The utility model provides an electronic atomizer, and belongs to the technical field of electronic atomization, the electronic atomizer comprises an atomization module, a power supply module and a connection module, the atomization module comprises a first shell and an atomization assembly arranged in the first shell, the atomization assembly is used for heating an aerosol generating substrate to generate aerosol, and the first shell is constructed to form a first surface; the power module comprises a second shell and a power supply assembly arranged in the second shell, the second shell is independent of the first shell and detachably connected with the first shell, and the second shell is constructed to form a second surface; the connecting module is used for keeping the second surface at least partially attached to the first surface so as to limit rotation and movement of the first shell relative to the second shell; wherein the power supply assembly and the atomization assembly form a power-on path through the part where the first surface and the second surface are attached to each other, and the connection module is further used for keeping the power supply assembly electrically connected with the atomization assembly, so that the connection module can improve the stability of electrical connection between the atomization module and the power supply module.
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Description

Technical Field

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

[0002] Currently, replaceable electronic atomizers are primarily composed of an atomizer module and a power supply module. The atomizer module is primarily used to store the aerosol-generating matrix and atomize it when powered on, while the power supply module is primarily used to control and provide power to the atomizer module.

[0003] By making the atomizer module and the power module detachable, the user of the electronic atomizer can replace one of the atomizer module and the power module as needed, so that if one of the atomizer module and the power module is lost or damaged, the other one of the atomizer module and the power module can be used normally by the user in combination with a new one of the atomizer module and the power module.

[0004] However, in the related art, due to the limited contact surface size and connection method between the atomizer module and the power module, it is difficult for the atomizer module and the power module to remain relatively still. As a result, during the use of the replaceable electronic atomizer, the conductive path between the atomizer module and the power module is threatened, affecting the user experience. Utility Model Content

[0005] The present application provides an electronic atomizer, which aims to solve the technical problem of poor electrical connection stability between the atomization module and the power module.

[0006] The present application provides an electronic atomization device, comprising:

[0007] an atomization module, the atomization module comprising a first housing and an atomization assembly, the atomization assembly being disposed within the first housing and configured to heat an aerosol-generating substrate to generate an aerosol, the first housing being configured to have a first surface;

[0008] a power module, the power module comprising a second housing and a power supply assembly, the power supply assembly being disposed within the second housing, the second housing being independent of the first housing and detachably connected to the first housing, the second housing being structured to have a second surface; and

[0009] a connecting module, configured to maintain the second surface at least partially in contact with the first surface, so as to restrict the first shell from rotating and moving relative to the second shell;

[0010] The power supply assembly and the atomization assembly form a power path through the portion where the first surface and the second surface are in contact with each other, and the connection module is further used to maintain the electrical connection between the power supply assembly and the atomization assembly.

[0011] The present application provides an electronic atomizer, which includes an atomization module, a power module and a connection module, wherein the first surface of a detachably connected first shell and the second surface of a second shell are maintained partially in contact with each other by the connection module, so that an atomization component arranged in the first shell and a power supply component arranged in the second shell form an electrical path through the part where the first surface and the second surface are in contact. Based on the connection module, the first shell of the atomization module is restricted from moving and rotating relative to the second shell of the power module, thereby maintaining electrical connection between the power supply component and the atomization component, thereby improving the electrical connection stability between the atomization module and the power module. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] Figure 1 A three-dimensional schematic diagram of an electronic atomizer provided in one embodiment of the present application;

[0013] Figure 2 for Figure 1 An exploded view of an electronic atomizer is shown;

[0014] Figure 3 for Figure 2 A rear view of the electronic atomizer is shown;

[0015] Figure 4 for Figure 1 An exploded view of the power module is shown;

[0016] Figure 5 for Figure 1 An exploded view of the atomization module is shown;

[0017] Figure 6 The first shell and the second shell provided in one embodiment of the present application are Figure 1 Schematic diagram of the cross section in the A-A' direction;

[0018] Figure 7 Another embodiment of the present application provides a first shell and a second shell. Figure 1 Schematic diagram of the cross section in the A-A' direction;

[0019] Figure 8 for Figure 1 A top view of the atomization module is shown;

[0020] Figure 9 for Figure 1 The atomization module is shown along Figure 8 Schematic diagram of the cross section in the C-C' direction;

[0021] Figure 10 for Figure 1 A schematic cross-sectional view of the electronic atomizer along the BB' direction is shown. DETAILED DESCRIPTION

[0022] The following will describe the technical solutions in the embodiments of the present application in conjunction with the accompanying drawings. The described embodiments are only used to explain the ideas created by the present invention and should not be regarded as limiting the scope of protection of this application.

[0023] like Figures 1 to 3 As shown, the electronic atomizer 100 includes an atomizer module 10, a power module 20, and a connection module 30. This embodiment utilizes a modular design of the components of the electronic atomizer 100 based on the atomizer module 10, the power module 20, and the connection module 30. This simplifies the assembly process, facilitates automated assembly, and facilitates maintenance and replacement, eliminating multiple step-by-step installation processes, making assembly faster and more efficient.

[0024] The atomization module 10 includes a first housing 11 and an atomization assembly 12 disposed within the first housing 11. The atomization assembly 12 is used to heat an aerosol-generating substrate to atomize the aerosol-generating substrate into an inhalable aerosol. The first housing 11 can be made of plastic or other materials, such as aluminum, steel, wood, or other materials suitable for accommodating the components disposed therein.

[0025] The power module 20 includes a second housing 21 and a power supply assembly 22 disposed within the second housing 21. The power supply assembly 22 is used to supply power to the atomizer assembly 12, enabling the atomizer assembly 12 to operate normally upon powering on, thereby heating the aerosol-generating substrate. The second housing 21 can be made of plastic or other materials, such as aluminum, steel, wood, or other materials suitable for accommodating the components disposed therein.

[0026] The second housing 21 is independent of the first housing 11 and is detachably connected to the first housing 11. In other words, in the electronic atomizer 100 provided in this embodiment, the first housing 11 and the second housing 21 are independent components, and the atomizer assembly 12 and the power supply assembly 22 are independent components. The power supply assembly 22 of the electronic atomizer 100 and the atomizer assembly 100 together form the electronic atomizer 100.

[0027] The first housing 11 is constructed to have a first surface 101. The second housing 21 is constructed to have a second surface 201. The connection module 30 is used to maintain at least partial contact between the second surface 201 and the first surface 101, thereby restricting rotation and movement of the first housing 11 relative to the second housing 21. Furthermore, the power supply assembly 22 and the atomizer assembly 12 form an electrical path through the contacting portion of the first surface 101 and the second surface 201, and the connection module 30 is also used to maintain electrical connection between the power supply assembly 22 and the atomizer assembly 12.

[0028] In other words, in this embodiment, the connection module 30 maintains at least partial contact between the first surface 101 and the second surface 201 to achieve at least partial contact between the first shell 11 and the second shell 21. Under the action of the connection module 30 on the first shell 11 and the second shell 21, the connection module 30 limits the rotation of the first shell 11 relative to the second shell 21 and limits the movement of the first shell 11 relative to the second shell 21. Once the first shell 11 and the second shell 21 are partially in contact, the first shell 11 and the second shell 21 remain relatively stationary. When the first shell 11 and the second shell 21 are in contact, the atomizer assembly 12 located in the first shell 11 and the power supply assembly 22 located in the second shell 21 can form an electrical path through the portion where the first surface 101 and the second surface 201 are in contact. The connection module 30 further maintains the electrical connection between the power supply assembly 22 and the atomizer assembly 12 by maintaining this electrical path, thereby improving the stability of the electrical connection between the atomizer module 10 and the power module 20.

[0029] Specifically, if Figure 4 As shown, the power supply component 22 includes a battery 221, a first circuit board 222 and a spring pin 223. The first circuit board 222 is electrically connected to the battery 221, and the first circuit board 222 is electrically connected to the spring pin 223. The battery 221 stores the electrical energy required for the electronic atomizer 100 to operate. The spring pin 223 forms a power path with the battery 221 through the first circuit board 222. The first circuit board 222 is used to control the amount of electrical energy output from the battery 221 to the spring pin 223. Part of the spring pin 223 extends out of the second shell 21. The first circuit board 222 can form an electrical path with the positive pole of the battery 221 and the negative pole of the battery 221 through a wire or other electrical connection method. The spring pin 223 can be directly arranged on the first circuit board 222, and an electrical path is formed by the spring pin 223 abutting against the first circuit board 222.

[0030] Specifically, if Figure 5 、 Figure 9 as well as Figure 10 Please continue to see Figure 6The atomizer assembly 12 includes a second circuit board 121 and a heater 124. The second circuit board 121 is electrically connected to the heater 124, and the power receiving portion 1211 of the second circuit board 121 passes through the first shell 11 and abuts against the elastic pin 223. The second circuit board 121 is used to control the amount of electric energy output to the heater 124 based on the abutment of the power receiving portion 1211 of the second circuit board 121 with the elastic pin 223, thereby forming an electric path between the second circuit board 121 and the elastic pin 223, so that the second circuit board 121 forms an electric path with the battery 221 through the elastic pin 223 and the first circuit board 222, and then the heater 124 forms an electric path with the battery 221 through the second circuit board 121, the elastic pin 223 and the first circuit board 222. The heater 124 receives the electric energy provided by the battery 221 and heats the aerosol generating matrix stored in the atomizer assembly 12 to generate aerosol.

[0031] Among them, Figure 4 as well as Figure 10 As shown, the portion of the second housing 21 through which the elastic pin 223 passes forms the second surface 201 , and the portion of the first housing 11 through which the power receiving portion 1211 of the second circuit board 121 passes forms the first surface 101 .

[0032] It is worth mentioning that please continue to refer to Figure 6 、 Figure 9 as well as Figure 10 The atomizing assembly 12 further includes a liquid storage tank 122 and an atomizing tank 123. The liquid storage tank 122 is connected to the atomizing tank 123. The liquid storage tank 122 is used to store the aerosol-generating substrate, and the atomizing tank 123 is used to store the heating element 124. That is, the heating element 124 is disposed in the atomizing tank 123. Due to the connection between the liquid storage tank 122 and the atomizing tank 123, the aerosol-generating substrate is transported from the liquid storage tank 122 to the atomizing tank 123, and then the aerosol-generating substrate is heated in the atomizing tank 123 by the heating element 124.

[0033] The connection module 30 includes a magnetic member 31. For details, please refer to Figure 2 、 Figure 3 as well as Figure 10 In one embodiment provided herein, a first number of first magnetic members 31 are provided on the portion of the second housing 21 through which the spring pin 223 passes, and a first number of second magnetic members 31 are correspondingly provided on the portion of the first housing 11 through which the power receiving portion 1211 of the second circuit board 121 passes. In this embodiment, the first number is an integer greater than or equal to 1.

[0034] The first surface 101 and the second surface 201 maintain at least partial fit between the first shell 11 and the second shell 21 through the mutual attraction magnetic force generated by the first magnetic component 31 and the second magnetic component 31, and the first shell 11 and the second shell 21 limit the movement of the first shell 11 relative to the second shell 21 and limit the rotation of the first shell 11 relative to the second shell 21 through the mutual attraction magnetic force generated by the first magnetic component 31 and the second magnetic component 31, so that the first shell 11 and the second shell 21 maintain a relatively static state through the mutual attraction magnetic force generated by the first magnetic component 31 and the second magnetic component 31.

[0035] Based on the mutual attraction between the first magnetic component 31 and the second magnetic component 31, the first shell 11 and the second shell 21 remain in a relatively static state, so that the spring pin 223 and the power receiving part 1211 of the second circuit board 121 remain in abutment with each other based on the first shell 11 and the second shell 21 remaining in a relatively static state, and then the spring pin 223 and the power receiving part 1211 of the second circuit board 121 remain electrically connected, that is, the power supply component 22 and the atomizer component 12 remain electrically connected.

[0036] It should be noted that if Figure 2 、 Figure 3 as well as Figure 10 The magnetic attraction members 31 shown are only several possible implementations of the connection module 30 in the present application, and should not be regarded as limiting the inventive concept of the present application.

[0037] In another possible implementation of the present application, a first number of magnetic components 31 are provided on the portion of the second shell 21 through which the elastic needle 223 passes, and a magnetic material layer is provided on the first shell 11, so that the first surface 101 and the second surface 201 limit the movement of the first shell 11 relative to the second shell 21 and limit the rotation of the first shell 11 relative to the second shell 21 through the mutual attraction magnetic force generated by the magnetic components 31 and the magnetic material layer.

[0038] In another possible implementation of the present application, a first number of magnetic components 31 are provided on the portion of the first shell 11 through which the power receiving part 1211 of the second circuit board 121 passes, and a magnetic material layer is provided on the second shell 21, so that the first surface 101 and the second surface 201 limit the movement of the first shell 11 relative to the second shell 21 and limit the rotation of the first shell 11 relative to the second shell 21 through the mutual attraction magnetic force generated by the magnetic components 31 and the magnetic material layer.

[0039] Please continue to see Figures 1 to 3, the atomization module 10 also includes a mouthpiece 13. The mouthpiece 13 is provided on the first shell 11 and is located outside the first shell 11. The mouthpiece 13 can be detachably connected to the first shell 11, and the detachable connection method includes but is not limited to a snap connection, a threaded connection or a magnetic connection. After the mouthpiece 13 is connected to the first shell 11, the mouthpiece 13 is communicated with the atomization assembly 12 located in the first shell 11, and the aerosol obtained by heating the aerosol generating matrix flows to the outside of the first shell 11 through the mouthpiece 13, making it convenient for the user of the electronic atomizer 100 to inhale the aerosol through the mouthpiece 13.

[0040] Further, see Figure 1 、 Figure 6 as well as Figure 7 As shown, the first housing 11 and the second housing 21 are arranged side by side, and the sidewalls of the first housing 11 at least partially overlap with the sidewalls of the second housing 21. The first surface 101 includes a first sub-surface 1011 and a second sub-surface 1012 connected to the first sub-surface 1011. In other words, the second sub-surface 1012 is located in a different plane than the first sub-surface 1011. The second surface 201 includes a third sub-surface 2011 and a fourth sub-surface 2012 connected to the third sub-surface 2011. In other words, the third sub-surface 2011 is located in a different plane than the fourth sub-surface 2012.

[0041] The connection module 30 is used to keep the first sub-surface 1011 and the third sub-surface 2011 at least partially in contact with each other and to keep the second sub-surface 1012 and the fourth sub-surface 2012 at least partially in contact with each other.

[0042] That is, in this embodiment, the connection module 30 restricts the portion of the first shell 11 that forms the first sub-surface 1011 from rotating and moving relative to the portion of the second shell 21 that forms the third sub-surface 2011. Thus, the connection module 30 can maintain the relative stationary state of the first shell 11 and the second shell 21 by maintaining at least a partial fit between the first sub-surface 1011 and the third sub-surface 2011. Furthermore, the connection module 30 also restricts the portion of the first shell 11 that forms the second sub-surface 1012 from rotating and moving relative to the portion of the second shell 21 that forms the fourth sub-surface 2012. Thus, the connection module 30 can further maintain the relative stationary state of the first shell 11 and the second shell 21 by maintaining at least a partial fit between the second sub-surface 1012 and the fourth sub-surface 2012. Based on this, the first shell 11 and the second shell 21 remain relatively stationary as a whole, and the power supply component 22 and the atomization component 12 can always maintain electrical connection regardless of whether they form a power path through the part where the first sub-surface 1011 and the third sub-surface 2011 are in contact with each other, or form a power path through the part where the second sub-surface 1012 and the fourth sub-surface 2012 are in contact with each other.

[0043] Specifically, if Figure 6 As shown, in the cross section of the electronic atomizer 100, the first line segment 1011a formed by the first sub-surface 1011 is at least partially aligned with the third line segment 2011a formed by the third sub-surface 2011, and the second line segment 1012a formed by the second sub-surface 1012 is at least partially aligned with the fourth line segment 2012a formed by the fourth sub-surface 2012.

[0044] In this embodiment, since the first line segment 1011a and the third line segment 2011a are at least partially fitted together, the fitting between the first sub-surface 1011 and the third sub-surface 2011 refers to surface fitting to surface or surface fitting to line. In this way, the first shell 11 and the second shell 21 have a relatively large contact area based on the surface-to-surface fitting or surface-line fitting between the first sub-surface 1011 and the third sub-surface 2011, so that the forces on the first shell 11 and the second shell 21 based on the first sub-surface 1011 and the third sub-surface 2011 are relatively dispersed.

[0045] In this embodiment, since the second line segment 1012a and the fourth line segment 2012a are at least partially fitted together, the fitting between the second sub-surface 1012 and the fourth sub-surface 2012 refers to surface fitting to surface or surface fitting to line. In this way, the first shell 11 and the second shell 21 have a relatively large contact area based on the surface-to-surface fitting or surface-line fitting between the second sub-surface 1012 and the fourth sub-surface 2012, so that the forces on the first shell 11 and the second shell 21 based on the second sub-surface 1012 and the fourth sub-surface 2012 are relatively dispersed.

[0046] Furthermore, the first line segment 1011a is connected to the second line segment 1012a, and the extension direction of the first line segment 1011a is different from the extension direction of the second line segment 1012a. Specifically, the first line segment 1011a and the second line segment 1012a are connected to each other, meaning that the tail of the first line segment 1011a is connected to the head of the second line segment 1012a. In the cross-section of the electronic atomizer 100, since the extension direction of the first line segment 1011a is different from the extension direction of the second line segment 1012a, it can be determined that the plane in which the first sub-surface 1011 is located is different from the plane in which the second sub-surface 1012 is located.

[0047] Since the first sub-surface 1011 and the second sub-surface 1012 are located in different planes, the connected first sub-surface 1011 and the second sub-surface 1012 can form a first space in the corresponding contour of the first shell 11 .

[0048] Furthermore, the third line segment 2011a is connected to the fourth line segment 2012a, and the extension direction of the third line segment 2011a is different from the extension direction of the fourth line segment 2012a. Specifically, the third line segment 2011a and the fourth line segment 2012a are connected, meaning that the tail of the third line segment 2011a is connected to the head of the fourth line segment 2012a. In the cross-section of the electronic atomizer 100, since the extension direction of the third line segment 2011a is different from the extension direction of the fourth line segment 2012a, it can be determined that the plane in which the third sub-surface 2011 lies is different from the plane in which the fourth sub-surface 2012 lies.

[0049] Because the third sub-surface 2011 and the fourth sub-surface 2012 are located on different planes, the connected third sub-surface 2011 and fourth sub-surface 2012 can form a second space within the corresponding contours of the second housing 21. The second space is adapted to the first space. When the first housing 11 and the second housing 21 are arranged side by side, a portion of the second housing 21 extends into the first space, or a portion of the first housing 11 extends into the second space.

[0050] Further, if Figure 6 As shown, the angle between the first line segment 1011a and the second line segment 1012a in the clockwise direction is equal to the angle between the third line segment 2011a and the fourth line segment 2012a in the clockwise direction. Thus, when the first housing 11 and the second housing 21 are arranged in parallel, if the length of the first line segment 1011a is equal to the length of the third line segment 2011a, the first line segment 1011a and the third line segment 2011a are completely aligned; if the length of the first line segment 1011a is less than the length of the third line segment 2011a, the entire first line segment 1011a and a portion of the third line segment 2011a are completely aligned; and if the length of the first line segment 1011a is greater than the length of the third line segment 2011a, the entire third line segment 2011a and a portion of the first line segment 1011a are completely aligned.

[0051] In other embodiments of the present application, Figure 4 as well as Figure 5 As shown, the first surface 101 includes a first sub-surface 1011, a second sub-surface 1012, and a fifth sub-surface 1013 connected in sequence. The second surface includes a third sub-surface 2011, a fourth sub-surface 2012, and a sixth sub-surface 2013 connected in sequence.

[0052] Accordingly, if Figure 7As shown, in the cross-section of the electronic atomizer 100, the first sub-surface 1011 forms a first line segment 1011a, the second sub-surface 1012 forms a second line segment 1012a, and the fifth sub-surface 1013 forms a fifth line segment 1013a. The first line segment 1011a, the second line segment 1012a, and the fifth line segment 1013a are connected in sequence, that is, the tail end of the first line segment 1011a is connected to the head end of the second line segment 1012a, and the tail end of the second line segment 1012a is connected to the head end of the fifth line segment 1013a. The tail end of the third line segment 2011a is connected to the head end of the fourth line segment 2012a, and the tail end of the fourth line segment 2012a is connected to the head end of the sixth line segment 2013a.

[0053] In a specific embodiment provided in the present application, the connection module 30 is used to keep the first sub-surface 1011 and the third sub-surface 2011 at least partially in contact with each other, and to keep the second sub-surface 1012 and the fourth sub-surface 2012 at least in contact with each other.

[0054] That is, in this embodiment, the connection module 30 limits the movement and rotation of the first shell 11 relative to the second shell 21 by maintaining at least a partial contact between the first sub-surface 1011 and the third sub-surface 2011, and maintaining at least a partial contact between the second sub-surface 1012 and the fourth sub-surface 2012. Based on this, the connection module 30 can maintain relative stillness between the first shell 11 and the second shell 21. Whether the power supply assembly 22 and the atomizer assembly 12 form an electrical path through the contact between the first sub-surface 1011 and the third sub-surface 2011, or through the contact between the second sub-surface 1012 and the fourth sub-surface 2012, the power supply assembly 22 and the atomizer assembly 12 can always maintain electrical connection.

[0055] Furthermore, in a specific embodiment of the present application, the first line segment 1011a and the third line segment 2011a are at least partially aligned, the second line segment 1012a and the fourth line segment 2012a are at least partially aligned, and the fifth line segment 1013a and the sixth line segment 2013a are not aligned. In this way, the first sub-surface 1011 and the third sub-surface 2011 are in surface-to-surface contact or surface-to-line contact, and the second sub-surface 1012 and the fourth sub-surface 2012 are in surface-to-surface contact or surface-to-line contact.

[0056] With respect to the second housing 21, when the second housing 21 tends to rotate with respect to the third sub-surface 2011, the second housing 21 is constrained not only by the force exerted by the connection module 30 but also by the force exerted by the first housing 11. When the second housing 21 tends to rotate with respect to the fourth sub-surface 2012, the second housing 21 is constrained not only by the force exerted by the connection module 30 but also by the force exerted by the first housing 11.

[0057] For the first housing 11, when the first housing 11 tends to rotate with respect to the first sub-surface 1011, the first housing 11 is constrained not only by the force exerted by the connection module 30 but also by the force exerted by the second housing 21. When the first housing 11 tends to rotate with respect to the second sub-surface 1012, the first housing 11 is constrained not only by the force exerted by the connection module 30 but also by the force exerted by the second housing 21.

[0058] In another specific embodiment provided in this application, Figure 2 as well as Figure 3 As shown, the connection module 30 is used to keep the first sub-surface 1011 and the third sub-surface 2011 at least partially in contact with each other, and to keep the fifth sub-surface 1013 and the sixth sub-surface 2013 at least partially in contact with each other.

[0059] That is, in this embodiment, the connection module 30 limits the rotation and movement of the first shell 11 relative to the second shell 21 by maintaining at least a partial contact between the first sub-surface 1011 and the third sub-surface 2011, and maintaining at least a partial contact between the fifth sub-surface 1013 and the sixth sub-surface 2013. Based on this, the connection module 30 is able to maintain relative stillness between the first shell 11 and the second shell 21. Whether the power supply assembly 22 and the atomizer assembly 12 form an electrical path through the contact between the first sub-surface 1011 and the third sub-surface 2011, or through the contact between the fifth sub-surface 1013 and the sixth sub-surface 2013, the power supply assembly 22 and the atomizer assembly 12 can always maintain electrical connection.

[0060] Furthermore, in a specific embodiment of the present application, the first line segment 1011a and the third line segment 2011a are at least partially aligned, the fifth line segment 1013a and the sixth line segment 2013a are at least partially aligned, and the second line segment 1012a and the fourth line segment 2012a are not aligned. In this way, the first sub-surface 1011 and the third sub-surface 2011 are in surface-to-surface contact or surface-to-line contact, and the fifth sub-surface 1013 and the sixth sub-surface 2013 are in surface-to-surface contact or surface-to-line contact.

[0061] For the first shell 11, no matter whether the rotation trend is generated based on the first sub-surface 1011 or the fifth sub-surface 1013, the first shell 11 will be subjected to the force applied by the connecting module 30 and the second shell 21, so that the first shell 11 and the second shell 21 remain relatively stationary.

[0062] For the second shell 21, no matter whether the rotation trend is generated based on the second sub-surface 1012 or the sixth sub-surface 2013, the second shell 21 will be subjected to the force applied by the connecting module 30 and the first shell 11, so that the first shell 11 and the second shell 21 remain relatively stationary.

[0063] In another specific embodiment provided in the present application, the connection module 30 is used to keep the second sub-surface 1012 and the fourth sub-surface 2012 at least partially in contact with each other, and to keep the fifth sub-surface 1013 and the sixth sub-surface 2013 at least partially in contact with each other.

[0064] That is, in this embodiment, the connection module 30 limits the rotation and movement of the first housing 11 relative to the second housing 21 by maintaining at least a partial contact between the second sub-surface 1012 and the fourth sub-surface 2012, and maintaining at least a partial contact between the fifth sub-surface 1013 and the sixth sub-surface 2013. Based on this, the connection module 30 can maintain relative stillness between the first housing 11 and the second housing 21. Similarly, the power supply assembly 22 and the atomizer assembly 12 can always maintain electrical connection.

[0065] Furthermore, in a specific embodiment of the present application, the second line segment 1012a and the fourth line segment 2012a are at least partially aligned, the fifth line segment 1013a and the sixth line segment 2013a are at least partially aligned, and the first line segment 1011a and the third line segment 2011a are not aligned. In this way, the second sub-surface 1012 and the fourth sub-surface 2012 are in surface-to-surface contact or surface-to-line contact, and the fifth sub-surface 1013 and the sixth sub-surface 2013 are in surface-to-surface contact or surface-to-line contact.

[0066] In another specific embodiment provided in the present application, the connection module 30 is used to keep the first sub-surface 1011 at least partially in contact with the third sub-surface 2011, to keep the second sub-surface 1012 at least partially in contact with the fourth sub-surface 2012, and to keep the fifth sub-surface 1013 at least partially in contact with the sixth sub-surface 2013.

[0067] That is, in this embodiment, the connection module 30 can achieve relative stillness between the first shell 11 and the second shell 21 by maintaining that any sub-surface of the first surface 101 (the first sub-surface 1011, the second sub-surface 1012, or the fifth sub-surface 1013) is at least partially in contact with a corresponding sub-surface of the second surface 201 (the third sub-surface 2011, the fourth sub-surface 2012, or the sixth sub-surface 2013). Whether the power supply component 22 and the atomizer component 12 form a power path through the portion where the first sub-surface 1011 and the third sub-surface 2011 are in contact, or through the portion where the second sub-surface 1012 and the fourth sub-surface 2012 are in contact, or through the portion where the fifth sub-surface 1013 and the sixth sub-surface 2013 are in contact, the power supply component 22 and the atomizer component 12 can always maintain electrical connection.

[0068] Furthermore, in a specific embodiment of the present application, Figure 7 As shown, the first line segment 1011a and the third line segment 2011a are at least partially aligned, the second line segment 1012a and the fourth line segment 2012a are at least partially aligned, and the fifth line segment 1013a and the sixth line segment 2013a are at least partially aligned. Thus, the first sub-surface 1011 and the third sub-surface 2011 are in surface-to-surface contact or surface-to-line contact, the second sub-surface 1012 and the fourth sub-surface 2012 are in surface-to-surface contact or surface-to-line contact, and the fifth sub-surface 1013 and the sixth sub-surface 2013 are in surface-to-surface contact or surface-to-line contact.

[0069] The first surface 101 provided in conjunction with this embodiment includes a first sub-surface 1011, a second sub-surface 1012, and a fifth sub-surface 1013 connected in sequence, and the second surface 201 includes a third sub-surface 2011, a fourth sub-surface 2012, and a sixth sub-surface 2013 connected in sequence, and Figure 4 、 Figure 5 as well as Figures 8 to 10 , the electronic atomizer 100 provided in this application is described in detail.

[0070] like Figure 5 As shown, the first housing 11 includes a first main body 111 and a first cover 112. The first main body 111 defines a first opening 116, and the first cover 112 covers the first opening 116. The first cover 112 and the first main body 111 form a first accommodating chamber 11c, in which the atomizer assembly 12 is disposed.

[0071] like Figure 4 as well as Figure 7As shown, the second housing 21 includes a second main body 211 and a second cover 212. The second main body 211 defines a second opening 216, and the second cover 212 covers the second opening 216. The second cover 212 and the second main body 211 form a second accommodating compartment 21c, in which the power supply assembly 22 is disposed.

[0072] The first cover plate 112 is constructed to form a first surface 101 , and the second cover plate 212 is constructed to form a second surface 201 . The connection module 30 is used to keep the first cover plate 112 and the second cover plate 212 at least partially in contact with each other to limit the rotation and movement of the first shell 11 relative to the second shell 21 .

[0073] The atomizer assembly 12 in the first accommodating chamber 11c and the power supply assembly 22 in the second accommodating chamber 21c form a power path through the parts where the first cover plate 112 and the second cover plate 212 fit together. The connection module 30 is also used to maintain the electrical connection between the power supply assembly 22 and the atomizer assembly 12.

[0074] The connection module 30 is disposed on at least one of the first cover plate 112 and the second cover plate 212. Specifically, the connection module 30 can be disposed on the inner wall of the first cover plate 112 or on the outer wall of the first cover plate 112, and the connection module 30 can be disposed on the inner wall of the second cover plate 212 or on the outer wall of the second cover plate 212.

[0075] Furthermore, the connection module 30 includes a magnetic member 31. At least one magnetic member 31 is provided on the first cover plate 112, and at least another magnetic member 31 is provided on the second cover plate 212. The magnetic member 31 provided on the first cover plate 112 corresponds to the magnetic member 31 provided on the second cover plate 212, and the magnetic member 31 provided on the first cover plate 112 and the magnetic member 31 provided on the second cover plate 212 attract each other, so that the first cover plate 112 and the second cover plate 212 are kept relatively stationary by the magnetic member 31, thereby limiting the rotation or movement of the second housing 21 relative to the first housing 11.

[0076] Further, if Figure 5As shown, the first cover plate 112 includes a first sub-cover plate 1121, a second sub-cover plate 1122 and a third sub-cover plate 1123 connected in sequence, and the second cover plate 212 includes a fourth sub-cover plate 2121, a fifth sub-cover plate 2122 and a sixth sub-cover plate 2123 connected in sequence. The first sub-cover plate 1121 is constructed to form a first sub-surface 1011, the second sub-cover plate 1122 is constructed to form a second sub-surface 1012, the third sub-cover plate 1123 is constructed to form a fifth sub-surface 1013, the fourth sub-cover plate 2121 is constructed to form a third sub-surface 2011, the fifth sub-cover plate 2122 is constructed to form a fourth sub-surface 2012, and the sixth sub-cover plate 2123 is constructed to form a sixth sub-surface 2013.

[0077] Among them, in the cross section of the electronic atomizer 100, Figure 4 、 Figure 5 as well as Figure 7 As shown, the first sub-cover plate 1121 is attached to the fourth sub-cover plate 2121 , the second sub-cover plate 1122 is attached to the fifth sub-cover plate 2122 , and the third sub-cover plate 1123 is attached to the sixth sub-cover plate 2123 .

[0078] Furthermore, in the cross section of the electronic atomizer 100, Figure 4 、 Figure 5 as well as Figure 7 As shown, the extension direction of the first sub-cover plate 1121 is different from the extension direction of the second sub-cover plate 1122, and the extension direction of the second sub-cover plate 1122 is different from the extension direction of the third sub-cover plate 1123. The extension direction of the first sub-cover plate 1121 and the extension direction of the third sub-cover plate 1123 can be the same or different. The extension direction of the fourth sub-cover plate 2121 is different from the extension direction of the fifth sub-cover plate 2122, and the extension direction of the fifth sub-cover plate 2122 is different from the extension direction of the sixth sub-cover plate 2123. The extension direction of the fourth sub-cover plate 2121 and the extension direction of the sixth sub-cover plate 2123 can be the same or different.

[0079] Along the axial direction of the electronic atomizer 100 , the first sub-cover plate 1121 is affixed to the fourth sub-cover plate 2121 , the second sub-cover plate 1122 is affixed to the fifth sub-cover plate 2122 , and the third sub-cover plate 1123 is affixed to the sixth sub-cover plate 2123 .

[0080] Please continue reading Figure 5 The first main body 111 includes a first top plate 1111, a first bottom plate 1112 and a first side plate 1113. The first top plate 1111 and the first bottom plate 1112 are arranged opposite to each other. The first side plate 1113 is connected between the first top plate 1111 and the first bottom plate 1112. The first side plate 1113, the first top plate 1111 and the first bottom plate 1112 are jointly constructed to form a first opening 116.

[0081] Among them, combined Figure 5 、 Figure 8 as well as Figure 9 As shown, the suction nozzle 13 is provided on the first top plate 1111 , and the suction nozzle 13 is communicated with the atomization assembly 12 through the first top plate 1111 .

[0082] Furthermore, if Figure 5 as well as Figure 9 As shown, the first housing 11 further includes an axial limit plate 113. The axial limit plate 113 is located in the first accommodating chamber 11c and is provided on the first bottom plate 1112. The axial limit plate 113 is used to limit the atomizer assembly 12 along the axial direction of the first housing 11 to limit the movement of the atomizer assembly 12 relative to the first bottom plate 1112. Figure 6 As shown, there can be multiple axial limiting plates 113, and the multiple axial limiting plates 113 are spaced apart and arranged on the first bottom plate 1112. The atomizing assembly 12 abuts against one end of the axial limiting plate 113 away from the first bottom plate 1112.

[0083] Furthermore, if Figure 5 As shown, the first housing 11 further includes a radial limiting plate 114. The radial limiting plate 114 is located in the first accommodating chamber 11c and is provided on the first side plate 1113. The radial limiting plate 114 is used to limit the atomizing assembly 12 along the radial direction of the first housing 11 to limit the movement of the atomizing assembly 12 relative to the first side plate 1113. Figure 6 As shown, there can be multiple radial limiting plates 114, which are spaced apart on the first side plate 1113. The atomizing assembly 12 abuts against one end of the radial limiting plate 114 away from the first side plate 1113.

[0084] Please continue reading Figure 4 The second main body 211 includes a second top plate 2111, a second bottom plate 2112 and a second side plate 2113. The second top plate 2111 and the second bottom plate 2112 are arranged opposite to each other. The second side plate 2113 is connected between the second top plate 2111 and the second bottom plate 2112. The second side plate 2113, the second top plate 2111 and the second bottom plate 2112 are jointly constructed to form a second opening 216.

[0085] Furthermore, the second housing 21 also includes a retaining post (not shown). The retaining post is disposed on the second side panel 2113 and is located within the second accommodating compartment 21c. Restricting holes are provided on the first circuit board 222 corresponding to the retaining post, allowing the retaining post to pass through the retaining hole, thereby maintaining relative fixation between the first circuit board 222 and the first side panel 1113.

[0086] Furthermore, if Figure 4As shown, the power supply assembly 22 further includes a foam adhesive 224. The foam adhesive 224 at least partially wraps the side wall of the battery 221 and fills the gap between the battery 221 and the first circuit board 222, or the gap between the battery 221 and the second side plate 2113, so as to prevent the battery 221 from shaking inside the second housing 21.

[0087] Furthermore, if Figure 4 As shown, the power supply component 22 further includes a charging interface 225. The charging interface 225 is provided on the first circuit board 222 and is electrically connected to the first circuit board 222. In addition, in a specific embodiment, Figure 4 as well as Figure 10 As shown, the second bottom plate 2112 is provided with a charging through hole 2114 for the charging interface 225 to extend out of the second bottom plate 2112 , so that the charging interface 225 can be connected to an external power source to charge the battery 221 .

[0088] Furthermore, if Figure 5 、 Figure 9 as well as Figure 10 As shown, the electronic atomizer 100 further includes a bracket 14. The bracket 14 is disposed in the first accommodating chamber 11c and is located on the first bottom plate 1112. The bracket 14 is used to place the atomizing assembly 12 to support the atomizing assembly 12.

[0089] See Figures 9 and 10 In some embodiments, the liquid storage tank 122 includes a liquid storage housing 1223, a first seal 1221, and / or a second seal 1222. The ends of the liquid storage housing 1223 may be provided with only the first seal 1221, or only the second seal 1222. When only the first seal 1221 or the second seal 1222 is provided at the ends of the liquid storage housing 1223, the ends of the liquid storage housing 1223 not provided with the first seal 1221 or the second seal 1222 can maintain the original structure of the tank body. In other embodiments, the liquid storage housing 1223 may also be provided with both the first seal 1221 and the second seal 1222. In this case, the liquid storage housing 1223 is a shell-like structure with openings at opposite ends. One of the openings is sealed by the first seal 1221, and the other of the openings is sealed by the second seal 1222. The material of the first sealing member 1221 and / or the second sealing member 1222 may be, but is not limited to, silicone, which is a good elastic sealing material.

[0090] Furthermore, in some embodiments, the liquid storage tank 122 also includes oil storage cotton 1224, which is mounted on the atomization tank 123 and filled in the liquid storage shell 1223. The oil storage cotton 1224 can make the aerosol generating mechanism in the liquid storage shell 1223 penetrate more evenly and can reduce leakage.

[0091] Furthermore, in some embodiments, the liquid storage tank 122 also includes oil-absorbing cotton 1225, which is arranged between the first sealing member 1221 and the suction nozzle 13. The oil-absorbing cotton 1225 can absorb the condensed liquid generated when the heating member 124 heats the aerosol generating matrix.

[0092] Please continue reading Figure 9 as well as Figure 10 In some embodiments, the heater 124 is electrically connected to the pins 125, which are electrically connected to the second circuit board 121, so that the pins 125 can introduce current to power the heater 124. The second sealing member 1222 is provided with a routing channel, and the pins 125 are arranged in the routing channel, that is, the second sealing member 1222 can provide a routing space for the pins.

[0093] It is worth mentioning that the atomization module 10 also includes a suction channel. For example, Figure 9 As shown by the dotted line, the first base plate 1112, the bracket 14, the liquid storage tank 122 and the atomization tank 123 are jointly constructed to form a suction channel. The inlet of the suction channel is provided on the first base plate 1112, and the outlet of the suction channel is provided on the first sealing member 1221, so that the outside of the first shell 11 is connected to the first accommodating chamber 11c through the air intake channel. The air intake channel transports the air outside the first shell 11 to the inside of the first shell 11, and the air is mixed with the aerosol and inhaled by the user of the electronic atomizer through the mouthpiece 13.

[0094] Specifically, an air inlet hole 1114 is defined on the first bottom plate 1112 , an air inlet cavity is defined in the bracket 14 , and the air inlet hole 1114 is connected to the air inlet cavity to form a component of the suction channel.

[0095] In addition, since in any embodiment provided in the present application, the power module 20 and the atomization module 10 are independent modules, the suction channel will definitely not pass through the power module 20, which can protect the power supply component 22 and extend the life of the power supply component 22.

[0096] Further, if Figure 10 As shown, the electronic atomizer 100 further includes an air pressure detection member 15. The air pressure detection member 15 is disposed in the first accommodating chamber 11c and is located on the second circuit board 121. The air pressure detection member 15 is electrically connected to the second circuit board 121. The air pressure detection member 15 is connected to the detection airway. Figure 10The dotted line in FIG. 1 indicates that when the air pressure detection element 15 detects negative pressure, the air pressure detection element 15 sends a feedback signal to the second circuit board 121 , and the second circuit board 121 controls the heating element 124 to start heating.

[0097] The air pressure detection element 15 may be, but is not limited to, a microphone. The microphone is an electronic air pressure sensor that can sense changes in air pressure generated by the inhalation action of the electronic atomizer 100 and transmit a feedback signal corresponding to the air pressure change to the second circuit board 121, thereby regulating the power supply assembly 22 to turn on and off the power supply state of the heating element 124.

[0098] Further, see Figures 9 and 10 In some embodiments, the liquid storage tank 122 is disposed circumferentially outside the atomization tank 123, that is, the atomization tank 123 is located within the inner cavity of the liquid storage tank 122, so that the liquid storage tank 122 can promptly deliver the aerosol-generating substrate to the atomization tank 123. Alternatively, the liquid storage tank 122 and the atomization tank 123 can form a relatively compact integrated structure, which is easy to install and reduces the space occupied within the first housing 11.

[0099] Of course, the present application may have many other embodiments. Without departing from the spirit and essential points of the present application, technicians familiar with the field may make various corresponding changes and modifications based on the present application, but these corresponding changes and modifications should all fall within the scope of protection of the claims attached to the present application.

Claims

1. An electronic atomizer, characterized in that: include: An atomization module (10), comprising a first housing (11) and an atomization assembly (12), wherein the atomization assembly (12) is disposed within the first housing (11), the atomization assembly (12) being used to heat an aerosol-generating substrate to generate an aerosol, and the first housing (11) is structured to have a first surface (101); A power module (20), the power module (20) comprising a second housing (21) and a power supply assembly (22), the power supply assembly (22) being disposed in the second housing (21), the second housing (21) being independent of the first housing (11) and being detachably connected to the first housing (11), the second housing (21) being structured to form a second surface (201); as well as a connecting module (30), the connecting module (30) being used to keep the second surface (201) at least partially in contact with the first surface (101) so as to limit the rotation and movement of the first shell (11) relative to the second shell (21); The power supply assembly (22) and the atomizer assembly (12) form an electrical path through the portion where the first surface (101) and the second surface (201) are in contact with each other, and the connection module (30) is also used to maintain the electrical connection between the power supply assembly (22) and the atomizer assembly (12).

2. The electronic atomizer according to claim 1, characterized in that The first surface (101) includes a first sub-surface (1011) and a second sub-surface (1012), and the first sub-surface (1011) and the second sub-surface (1012) are connected; The second surface (201) comprises a third sub-surface (2011) and a fourth sub-surface (2012), and the third sub-surface (2011) is connected to the fourth sub-surface (2012); The connection module (30) is used to keep the first sub-surface (1011) and the third sub-surface (2011) at least partially in contact with each other, and to keep the second sub-surface (1012) and the fourth sub-surface (2012) at least partially in contact with each other.

3. The electronic atomizer according to claim 2, characterized in that: In the cross section of the electronic atomizer, the first line segment (1011a) formed by the first sub-surface (1011) is at least partially aligned with the third line segment (2011a) formed by the third sub-surface (2011), the second line segment (1012a) formed by the second sub-surface (1012) is at least partially aligned with the fourth line segment (2012a) formed by the fourth sub-surface (2012), the first line segment (1011a) is connected to the second line segment (1012a), and the third line segment (2011a) is connected to the fourth line segment (2012a).

4. The electronic atomizer according to claim 3, characterized in that: The extending direction of the first line segment (1011a) is different from the extending direction of the second line segment (1012a), and the extending direction of the third line segment (2011a) is different from the extending direction of the fourth line segment (2012a).

5. The electronic atomizer according to claim 1, characterized in that: The first surface (101) includes a first sub-surface (1011), a second sub-surface (1012), and a fifth sub-surface (1013) connected in sequence, and the second surface (201) includes a third sub-surface (2011), a fourth sub-surface (2012), and a sixth sub-surface (2013) connected in sequence; wherein, The connection module (30) is used to keep the first sub-surface (1011) and the third sub-surface (2011) at least partially in contact with each other, and to keep the second sub-surface (1012) and the fourth sub-surface (2012) at least partially in contact with each other; or, The connection module (30) is used to keep the first sub-surface (1011) and the third sub-surface (2011) at least partially in contact with each other, and to keep the fifth sub-surface (1013) and the sixth sub-surface (2013) at least partially in contact with each other; or, The connection module (30) is used to keep the second sub-surface (1012) and the fourth sub-surface (2012) at least partially in contact with each other, and to keep the fifth sub-surface (1013) and the sixth sub-surface (2013) at least partially in contact with each other; or, The connection module (30) is used to keep the first sub-surface (1011) and the third sub-surface (2011) at least partially in contact with each other, keep the second sub-surface (1012) and the fourth sub-surface (2012) at least partially in contact with each other, and keep the fifth sub-surface (1013) and the sixth sub-surface (2013) at least partially in contact with each other.

6. The electronic atomizer according to claim 5, characterized in that In the cross section of the electronic atomizer, the first sub-surface (1011) forms a first line segment (1011a), the second sub-surface (1012) forms a second line segment (1012a), the fifth sub-surface (1013) forms a fifth line segment (1013a), the first line segment (1011a), the second line segment (1012a) and the fifth line segment (1013a) are connected in sequence, the third sub-surface (2011) forms a third line segment (2011a), the fourth sub-surface (2012) forms a fourth line segment (2012a), the sixth sub-surface (2013) forms a sixth line segment (2013a), the fourth line segment (2012a), the fifth line segment (1013a) and the sixth line segment (2013a) are connected in sequence; wherein, The first line segment (1011a) is at least partially aligned with the third line segment (2011a), and the second line segment (1012a) is at least partially aligned with the fourth line segment (2012a); or, The first line segment (1011a) is at least partially aligned with the third line segment (2011a), and the fifth line segment (1013a) is at least partially aligned with the sixth line segment (2013a); or, The second line segment (1012a) is at least partially aligned with the fourth line segment (2012a), and the fifth line segment (1013a) is at least partially aligned with the sixth line segment (2013a); or, The first line segment (1011a) is at least partially aligned with the third line segment (2011a), the second line segment (1012a) is at least partially aligned with the fourth line segment (2012a), and the fifth line segment (1013a) is at least partially aligned with the sixth line segment (2013a).

7. The electronic atomizer according to claim 6, characterized in that The extension direction of the first line segment (1011a) is different from the extension direction of the second line segment (1012a), the extension direction of the second line segment (1012a) is different from the extension direction of the fifth line segment (1013a), the extension direction of the third line segment (2011a) is different from the extension direction of the fourth line segment (2012a), and the extension direction of the fourth line segment (2012a) is different from the extension direction of the sixth line segment (2013a).

8. The electronic atomizer according to any one of claims 1 to 7, characterized in that: The first housing (11) comprises a first main body (111) and a first cover plate (112); the first main body (111) is provided with a first opening (116); the first cover plate (112) covers the first opening (116); the first cover plate (112) and the first main body (111) are structured to form a first accommodating chamber (11c); the atomizing assembly is arranged in the first accommodating chamber (11c); The second shell (21) comprises a second main body (211) and a second cover (212); the second main body (211) is provided with a second opening (216); the second cover (212) covers the second opening (216); the second cover (212) and the second main body (211) form a second accommodating compartment (21c); the power supply assembly is arranged in the second accommodating compartment (21c); The first cover plate (112) is constructed to form the first surface (101), the second cover plate (212) is constructed to form the second surface (201), and the connection module (30) is provided on at least one of the first cover plate (112) and the second cover plate (212).

9. The electronic atomizer according to claim 8, characterized in that The first main body (111) comprises a first top plate (1111), a first bottom plate (1112) and a first side plate (1113); the first bottom plate (1112) and the first top plate (1111) are arranged opposite to each other; the first side plate (1113) is connected between the first top plate (1111) and the first bottom plate (1112); the first side plate (1113), the first top plate (1111) and the first bottom plate (1112) are jointly constructed to form the first opening (116); The second main body portion (211) includes a second top plate (2111), a second bottom plate (2112) and a second side plate (2113); the second bottom plate (2112) and the second top plate (2111) are arranged opposite to each other; the second side plate (2113) is connected between the second top plate (2111) and the second bottom plate (2112); the second side plate (2113), the second top plate (2111) and the second bottom plate (2112) are jointly constructed to form the second opening (216).

10. The electronic atomizer according to claim 9, characterized in that: The first housing (11) further comprises an axial limiting plate (113), the axial limiting plate (113) being located in the first accommodating chamber (11c) and being provided on the first bottom plate (1112), the axial limiting plate (113) being used for limiting the atomizing assembly (12) along the axial direction of the first housing (11); And / or, the first shell (11) further includes a radial limiting plate (114), the radial limiting plate (114) is located in the first accommodating chamber (11c) and is provided on the first side plate (1113), and the radial limiting plate (114) is used to limit the atomizing assembly (12) along the radial direction of the first shell (11).

11. The electronic atomizer according to claim 1, characterized in that: The atomization module (10) further comprises a suction nozzle (13), wherein the suction nozzle (13) is provided on the first shell (11) and is in communication with the atomization assembly (12), and the aerosol flows to the outside of the first shell (11) through the suction nozzle (13).

12. The electronic atomizer according to claim 1, characterized in that The connection module (30) includes a magnetic attraction member (31); wherein, At least one of the magnetic elements (31) is provided on the first shell (11), a magnetic material layer is provided on the second shell (21), and the magnetic element (31) and the magnetic material layer attract each other; or, At least one of the magnetic elements (31) is provided on the second shell (21), a magnetic material layer is provided on the first shell (11), and the magnetic element (31) and the magnetic material layer attract each other; or, At least one of the magnetic components (31) is provided on the first shell (11), and at least another of the magnetic components (31) is provided on the second shell (21). The magnetic components (31) provided on the first shell (11) and the magnetic components (31) provided on the second shell (21) attract each other.

13. The electronic atomizer according to claim 1, characterized in that The power supply assembly (22) includes a battery (221), a first circuit board (222), and an elastic pin (223); the first circuit board (222) is electrically connected to the battery (221) and the elastic pin (223), respectively; and the elastic pin (223) partially extends out of the second housing (21); The atomizing assembly (12) comprises a second circuit board (121), a liquid storage tank (122), an atomizing tank (123) and a heating element (124); the heating element (124) is electrically connected to the second circuit board (121); the power receiving portion (1211) of the second circuit board (121) passes through the first shell (11) and is electrically connected to the spring pin (223); the atomizing tank (123) is in communication with the liquid storage tank (122); the liquid storage tank (122) is used to accommodate the aerosol generating matrix; the heating element (124) is arranged in the atomizing tank (123); the heating element (124) is used to heat the aerosol generating matrix to generate the aerosol.