Atomization device

By designing atomization device with multiple sets of atomization components and gate modules, the problem of users being tired of a single-flavored aerosols in the prior art is solved, and the generation and switching of multiple aerosols are realized, and the operation process is simplified.

CN222967948UActive Publication Date: 2025-06-13HG INNOVATION LTD
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Patent Information

Application Number
CN202421469184.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-25
Publication Date
2025-06-13
Estimated Expiration
2034-06-25

AI Technical Summary

Technical Problem

Existing atomization devices usually only have a single atomization core and a single liquid storage structure, which causes users to feel bored with a single flavor of aerosol during long-term use and cumbersome operation.

Method used

An atomization device is designed, including at least two isolated liquid reservoirs and multiple sets of atomization components. Through a gate module, the power supply selectively establishes an electrical connection relationship with one or more atomization components to realize the generation and switching of multiple aerosols.

Benefits of technology

The device can selectively control the working state of multiple sets of atomization components under simple operation of the user, generate multiple aerosols, solve the problem of users being tired of a single taste aerosol and simplify the operation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an atomization device which comprises a shell, a liquid storage part, at least two sets of atomization assemblies, a suction nozzle, a power source and a gating module, and the shell is provided with a first end and an airflow inlet; the liquid storage part is positioned in the shell and is provided with at least two mutually isolated liquid storage cavities used for containing atomization matrixes, the atomization assemblies are in liquid guide communication with the liquid storage cavities in a one-to-one correspondence mode, and the atomization matrixes in the liquid storage cavities are transmitted to the atomization assemblies to generate aerosol; the suction nozzle is positioned at the first end, and the suction nozzle is selectively or simultaneously in airflow communication with the atomization assembly, so that the generated aerosol can be sucked out; the power source is connected with the atomization assembly and used for providing working voltage for the atomization assembly. The gating module is connected between the power supply and the atomization assemblies and used for enabling the power supply to selectively establish an electric connection relation with one or more sets of atomization assemblies. A user can control different atomization assemblies through the gating module in the device, operation of the user is facilitated, and the device is simple in structure and convenient to implement.
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Description

Technical Field

[0001] This application relates to the technical field of atomizers, and particularly to an atomization device. Background Art

[0002] The atomization device heats the atomization matrix stored in the liquid storage structure through an atomization core to generate an aerosol that meets the requirements. Usually, only a single atomization core and a single liquid storage structure are provided in the atomization device, and only one type of aerosol can be generated each time. The liquid storage capacity of the atomization devices in the related art is getting larger and larger, and an atomization device can be used by a user for 15 days or more. Therefore, the user may get tired of the aerosol of a single flavor. Summary of the Utility Model

[0003] This application provides an atomization device, including:

[0004] A housing having a first end and an air inlet;

[0005] A liquid storage member positioned within the housing, the liquid storage member having at least two liquid storage cavities for containing an atomization matrix, and at least two of the liquid storage cavities being isolated from each other;

[0006] At least two groups of atomization assemblies, the atomization assemblies and the liquid storage cavities are in liquid conduction communication one-to-one, and the atomization matrix in the liquid storage cavity is transferred to the atomization assemblies to generate an aerosol;

[0007] A mouthpiece positioned at the first end of the housing, and the mouthpiece selectively or simultaneously communicates with the atomization assemblies in terms of air flow, so that the generated aerosol can be sucked out;

[0008] A power source, the power source is connected to the atomization assemblies and is used to provide a working voltage for the atomization assemblies;

[0009] A gating module, the gating module is connected between the power source and the atomization assemblies, and the gating module is used to selectively establish an electrical connection relationship between the power source and one or more groups of the atomization assemblies.

[0010] As a further solution of the atomization device provided by this application, the gating module includes:

[0011] A trigger assembly, including a substrate and at least two trigger switches arranged on the substrate, the trigger switches are connected between the power source and the atomization assemblies, and are used to connect or disconnect the connection between the power source and the atomization assemblies;

[0012] The switching component includes a switching member and at least two trigger keys provided on the switching member. The switching member is movably connected to the substrate and can be switched from an initial position to a preset trigger position. At the preset trigger position, one or more of the trigger keys trigger the trigger switch, so that one or more of the trigger switches connect the power supply and the atomization component.

[0013] As a further solution of the atomization device provided by the present application, the switching member is arranged on the substrate so as to reciprocally slide between the initial position and the preset trigger position in a linear direction. At least two of the trigger keys are arranged on the switching member in a direction parallel to the linear direction, and at least two of the trigger switches are arranged on the substrate in a direction parallel to the linear direction; alternatively, the switching member is mounted on the substrate so as to reciprocally rotate between the initial position and the preset trigger position around a center. At least two of the trigger keys are arranged on the switching member in a circumferential array around the center, and at least two of the trigger switches are arranged on the substrate in a circumferential array around the center.

[0014] As a further solution of the atomization device provided by the present application, the trigger switch is a micro switch, and the trigger key contacts and presses the trigger switch to trigger the trigger switch.

[0015] As a further solution of the atomization device provided by the present application, an operation part is provided on the switching member for operating the switching member to switch between the initial position and the preset trigger position.

[0016] As a further solution of the atomization device provided by the present application, the operation part is concave.

[0017] As a further solution of the atomization device provided by the present application, the operation part is also provided with an anti-slip structure.

[0018] As a further solution of the atomization device provided by the present application, the switching component further includes an elastic reset member, and the elastic reset member is connected between the substrate and the switching member for resetting the switching member from the preset trigger position to the initial position.

[0019] As a further solution of the atomization device provided by the present application, a start mark is further provided on the switching member, and the start mark indicates switching the switching member from the initial position to the preset trigger position.

[0020] As a further solution of the atomization device provided by the present application, the liquid storage member further has at least two independent liquid storage containers that are removable relative to the liquid storage cavity. The liquid storage containers are used to contain the atomization matrix and are in liquid guiding communication with the atomization component.

[0021] As a further solution of the atomization device provided by the present application, the liquid storage container has a liquid outlet, the liquid storage cavity has a connection end docked with the liquid outlet, and the atomization matrix is transferred from the liquid storage container to the liquid storage cavity through the connection end.

[0022] As a further solution of the atomization device provided by the present application, the connection end includes a liquid inlet and a fluid guide; the liquid inlet is configured to be aligned with the liquid outlet of the liquid storage container connected to the liquid storage cavity, and the fluid guide is configured to have a length along the diversion direction, and the cross-sectional area of the fluid guide gradually increases along the diversion direction.

[0023] According to the atomization device of the above embodiment, by the gating module, the power supply is selectively electrically connected to one or more groups of atomization components, so that one or more groups of atomization components can work to generate aerosol. In this way, the user can realize the control of different atomization components only by operating the gating module, which is convenient for the user to operate, and has a simple structure and is easy to implement. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 A perspective view of the atomization device provided by the present application;

[0025] Figure 2 A sectional view of the atomization device provided by the present application;

[0026] Figure 3 An exploded view of the atomization device provided by the present application;

[0027] Figure 4 A schematic structural diagram of the gating module of the atomization device provided by the present application in one embodiment;

[0028] Figure 5 A schematic structural diagram of the gating module of the atomization device provided by the present application in another embodiment;

[0029] Figure 6 A schematic structural diagram of the atomization device provided by the present application in this embodiment;

[0030] Figure 7 is Figure 6 A top view of a partial structure in.

[0031] Reference numerals:

[0032] Housing 10, first end 11, air flow inlet 12, mounting cavity 13, exposed hole 14, liquid storage member 20, liquid storage cavity 200, liquid storage container 201, liquid outlet 202, connecting end 203, liquid inlet 2031, body guide 2032, first liquid storage structure 21, second liquid storage structure 22, atomization assembly 30, first atomization assembly 31, first atomization channel 311, second atomization assembly 32, second atomization channel 321, nozzle 40, first aerosol channel 41, second aerosol channel 42, trigger channel 43, air flow sensor 44, power supply 50, gating module 60, trigger assembly 61, Substrate 611, trigger switch 612, first trigger switch 6121, second trigger switch 6122, first electrode assembly 613, second electrode assembly 614, first stopper 615, second stopper 616, air intake switching switch 617, first air intake hole 6171, second air intake hole 6172, switching assembly 62, switching member 621, trigger key 622, first trigger key 6221, second trigger key 6222, operating member 623, first toggle member 6231, second toggle member 6232, elastic return member 625, first elastic return member 6251, second elastic return member 6252. DETAILED DESCRIPTION

[0033] The present application is further described in detail below by specific embodiments in conjunction with the accompanying drawings. Wherein similar elements in different embodiments adopt associated similar element numbers. In the following embodiments, many detailed descriptions are intended to enable the present application to be better understood. However, those skilled in the art can easily recognize that some of the features can be omitted in different situations, or can be replaced by other elements, materials, and methods. In some cases, some operations related to the present application are not shown or described in the specification, in order to avoid the core part of the present application being overwhelmed by too much description, and for those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations based on the description in the specification and the general technical knowledge in the art.

[0034] In addition, the features, operations or characteristics described in the specification can be combined in any appropriate manner to form various implementations, and the operation steps involved in each embodiment can also be replaced or adjusted in a sequence in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for the purpose of clearly describing a certain embodiment and do not mean that the composition and / or sequence are necessary.

[0035] The serial numbers of the components in this document, such as "first", "second", etc., are only used to distinguish the objects described and do not have any order or technical meaning. The "connection" and "coupling" mentioned in this application, unless otherwise specified, include direct and indirect connections (couplings).

[0036] The atomizing core can atomize the atomizing matrix in a heated manner into an aerosol for users to use. An atomizing device with a dual atomizing core can generate different types of aerosols to meet diversified usage requirements. For different atomizing cores, different switches are usually used for control, and users need to operate different switches for switching, resulting in cumbersome user operations and complex structures.

[0037] To address the above problems, the present application provides an atomizing device that can selectively establish an electrical connection relationship between a power source and one or more groups of atomizing components through a gating module, enabling one or more groups of atomizing components to operate. It not only has a simple structure but also is convenient for users to operate.

[0038] See Figures 1-7 As shown, the atomizing device provided by the present application includes: a housing 10, a liquid storage member 20, at least two groups of atomizing components 30, a mouthpiece 40, a power source 50, and a gating module 60.

[0039] The housing 10 has a first end 11 and an air inlet 12. An installation cavity 13 is also provided inside the housing 10. Among them, the liquid storage member 20, the atomizing components 30, and the power source 50 are all positioned in the installation cavity 13. The liquid storage member 20 has at least two liquid storage cavities 200 for accommodating the atomizing matrix. The at least two liquid storage cavities 200 are isolated from each other, that is, they are independent structures. Moreover, the at least two liquid storage cavities 200 are respectively in one-to-one correspondence and liquid conduction connection with at least two groups of atomizing components 30, that is, the atomizing components 30 are in one-to-one liquid conduction connection with the liquid storage cavities 200. The atomizing matrix in the liquid storage cavity 200 is transferred to the atomizing components 30 to generate an aerosol. The mouthpiece 40 is positioned at the first end 11, and the air inlet 12 is in communication with each atomizing component 30. The mouthpiece 40 selectively or simultaneously allows air to flow through the atomizing components 30 so that the generated aerosol can be sucked out.

[0040] In this embodiment, the liquid storage member 20 can be a housing structure, and at least two independent liquid storage cavities 200 are formed in the housing structure.

[0041] Of course, in other embodiments, the housing 10 is a cylindrical structure with openings at both ends, and sealing silicone structures are respectively provided at the openings at both ends to seal the inside of the housing 10 and partition its interior to form at least two liquid storage cavities 200.

[0042] In one embodiment, the liquid storage member 20 further has at least two independent liquid storage containers 201 that can be removed relative to the liquid storage cavities 200. The liquid storage containers 201 are used to accommodate the atomizing matrix, and each liquid storage container 201 is respectively in one-to-one correspondence with each atomizing component 30, so that the liquid storage container 201 and the corresponding atomizing component 30 are in liquid conduction connection to provide the atomizing matrix to the corresponding atomizing component 30.

[0043] In one embodiment, the liquid storage container 201 has a liquid outlet 202, and the liquid storage cavity 200 has a connection end 203 docked with the liquid outlet 202. The atomization matrix is transferred from the liquid storage container 201 to the liquid storage cavity 200 through the connection end 203.

[0044] In this embodiment, the connection end 203 includes a liquid inlet 2031 and a fluid guide 2032. The liquid inlet 2031 is configured to be aligned with the liquid outlet 202 of the liquid storage container 201 connected to the liquid storage cavity 200. The fluid guide 2032 is configured to have a length along the fluid guiding direction, and the cross-sectional area of the fluid guide 2032 gradually increases along the fluid guiding direction. The fluid guide 2032 can guide the flow rate of the atomization matrix when flowing from the liquid storage container 201 to the liquid storage cavity 200, avoiding the overflow and too fast flow rate of the atomization matrix from the connection end 203.

[0045] In a preferred embodiment, it can be considered that the first end 11 is the top end of the housing 10, the air inlet 12 is arranged at the bottom end of the housing 10, and the atomization assembly 30 is arranged in the vertical direction. In other words, the mouthpiece 40 is selectively or simultaneously in air flow communication with the top end of the atomization assembly 30, and the air inlet 12 is in communication with the bottom end of each atomization assembly 30. In a specific embodiment, the user generates negative pressure by sucking the mouthpiece 40, so that the external air flow can enter the atomization assembly 30 through the air inlet 12, and then the aerosol generated by the atomization matrix transferred to the atomization assembly 30 in the liquid storage cavity 200 is sucked out through the air flow by the mouthpiece 40.

[0046] In this embodiment, the power supply 50 is electrically connected to the atomization assembly 30, and the power supply 50 can provide a working voltage for the atomization assembly 30. The atomization assembly 30 can be a heating wire or the like that can generate heat under the action of voltage, and then the atomization matrix is heated and atomized to generate aerosol by heating.

[0047] The gating module 60 is connected between the power supply 50 and the atomization assembly 30. The gating module 60 is used to selectively establish an electrical connection relationship between the power supply 50 and one or more groups of atomization assemblies 30, so that one or more groups of atomization assemblies 30 among all the atomization assemblies 30 can work to generate aerosol.

[0048] Specifically, the gating module 60 can establish an electrical connection relationship between the power supply 50 and one group of atomization assemblies 30, or the gating module 60 can establish an electrical connection relationship between the power supply 50 and two groups of atomization assemblies 30, or the gating module 60 can establish an electrical connection relationship between the power supply 50 and three groups of atomization assemblies 30, and so on.

[0049] It should be noted that in this embodiment, when the power supply 50 is electrically connected to multiple groups of atomizing components 30 through the gating module 60, the multiple groups of atomizing components 30 are partial atomizing components among all the atomizing components 30, so that the partial atomizing components 30 work simultaneously. Of course, in some embodiments, the multiple groups of atomizing components 30 can also be all the atomizing components 30, so that all the atomizing components 30 work.

[0050] It is not difficult to understand that different types of atomizing matrices can be accommodated in each liquid storage chamber 200. When one atomizing component 30 works, an aerosol of one type can be generated, and when multiple groups of atomizing components 30 work simultaneously, an aerosol mixing multiple types can be generated.

[0051] In this embodiment, the gating module 60 includes a triggering component 61 and a switching component 62. The triggering component 61 includes a substrate 611 and at least two triggering switches 612. Each triggering switch 612 is disposed on the substrate 611, and each triggering switch 612 corresponds to each atomizing component 30 one by one. The triggering switch 611 is connected between the power supply 50 and the atomizing component 30 corresponding to the triggering switch 611, and the triggering switch 611 is used to connect or disconnect the connection between the power supply 50 and the atomizing component 30. For example, after the triggering switch 611 is triggered to generate a triggering signal, the connection between the power supply 50 and the atomizing component 30 can be connected through the triggering signal. On the contrary, when the triggering switch 611 is not triggered, the connection between the power supply 50 and the atomizing component 30 is kept in a disconnected state. The switching component 62 includes a switching member 621 and at least two triggering keys 622. The at least two triggering keys 622 are disposed on the switching member 611. The switching member 621 is movably connected to the substrate 611 and can be switched from the initial position P to the preset triggering position Q. At the preset triggering position Q, one or more triggering keys 622 trigger the corresponding triggering switches 612, so that one or more triggering switches 612 connect the power supply 50 and the atomizing component 30 corresponding to the triggering switch 612.

[0052] In an embodiment of the present application, as Figure 4 shown, the switching member 621 is arranged on the substrate 611 so as to reciprocally slide between the initial position P and the preset triggering position Q along the linear direction L. The at least two triggering keys 622 are arranged on the switching member 621 along the direction parallel to the linear direction L. The at least two triggering switches 612 are arranged on the substrate 611 along the direction parallel to the linear direction L. Or, as Figure 5 shown, the switching member 621 is mounted on the substrate 611 so as to reciprocally rotate between the initial position P and the preset triggering position Q around the center O. The at least two triggering keys 622 are arranged on the switching member 621 in a circumferential array around the center O. The at least two triggering switches 612 are arranged in a circumferential array around the center O on the substrate 611.

[0053] Combined Figure 4 As shown, the switching member 621 is arranged on the substrate 611 to reciprocally slide along a linear direction L between an initial position P and a preset trigger position Q. Figure 4 Three trigger keys 622 and three trigger switches 612 are shown in FIG. Taking the linear direction L as an example, from left to right are the first to the third trigger keys 622 and the first to the third trigger switches 612. Among them, the distance L1 between the first trigger key 622 and the first trigger switch 612 is less than the distance L2 between the second trigger key 622 and the second trigger switch 612, and the distance L2 between the second trigger key 622 and the second trigger switch 622 is set to be the same as the distance between the third trigger key 622 and the third trigger switch 622. In this way, after the switching member 621 moves a distance of L1 along the linear direction L, the first trigger key 622 can trigger the first trigger switch 612, thereby triggering one of the atomizing components 30 to work. When the switching member 621 moves a distance of L2 along the linear direction L, the second trigger key 622 can trigger the second trigger switch 612, and the third trigger key 622 can trigger the third trigger switch 612, enabling two of the atomizing components 30 to work, thereby realizing the connection between one or more trigger switches 612 being powered on to 50 and the atomizing components 30 corresponding to the one or more trigger switches 612.

[0054] It can be understood that adopting the above-mentioned sliding mode in the linear direction L, where the preset trigger position Q is a relatively changing position, specifically related to the distance between the corresponding trigger key 622 and the trigger switch 612. In the above embodiment, only the movement along the same direction is taken as an example for illustration. Of course, in other embodiments, it can also be the movement along different directions. Correspondingly, the positions where the mutually corresponding trigger keys 622 and trigger switches 612 are arranged are also different.

[0055] Combined Figure 5 As shown, the switching member 621 is installed on the substrate 611 to reciprocally rotate around the center O between an initial position P and a preset trigger position Q. Figure 5 Three trigger switches 612 and two trigger keys 622 are shown in FIG. Figure 5 Taking the clockwise direction of the perspective shown in FIG. as an example, in sequence are the first to the third trigger switches 612, the first trigger key 622, and the second trigger key 622. Rotating the switching member 621 around the center O in the clockwise direction so that the second trigger key 622 triggers the first trigger switch 612 can enable one of the atomizing components 30 corresponding to the first trigger switch 612 to work. Continuing to rotate the switching member 612 around the center O in the clockwise direction so that the first trigger key 622 triggers the first trigger switch 612 and the second trigger key 622 triggers the second trigger switch 612 can enable the atomizing components 30 corresponding to the first and second trigger switches 612 to work.

[0056] Similarly, the above-described connection method of rotating around the center O is adopted, where the preset trigger position Q is also a relatively changing position, specifically related to the angles of the circumferential array of the corresponding trigger keys 622 and trigger switches 612. For example, the angle between the initial position P and the preset trigger position Q is 90°. Similarly, two adjacent trigger switches 612 and two adjacent trigger keys 612 are arranged at an interval of 90°. Then, after rotating 90° in the clockwise direction, the second trigger key 622 triggers the first trigger switch 612. After continuing to rotate 90° in the clockwise direction, the first trigger key 622 triggers the first trigger switch 612, and the second trigger key 622 triggers the second trigger switch 612.

[0057] Of course, according to the different angles between two adjacent trigger keys 622 and two adjacent trigger switches 612, the angle of rotation from the initial position P to the preset trigger position Q is also different, or the direction of rotation is also different.

[0058] In this embodiment, the trigger switch 612 is a micro switch, and the trigger key 622 contacts and presses the trigger switch 612 to trigger the trigger switch 612.

[0059] An operation part 623 is further provided on the switching part 621. The operation part 623 is used to operate the switching part 621 to switch between the initial position P and the preset trigger position Q to facilitate user operation.

[0060] In one embodiment, the operation part 623 is concave. Of course, in other embodiments, an anti-slip structure is further provided on the operation part 623 so that the user's finger can apply a force to the switching part 621.

[0061] In some embodiments, the switching assembly 62 further includes an elastic reset member 625. The elastic reset member 625 is connected between the substrate 611 and the switching part 621 and is used to reset the switching part 621 from the preset trigger position Q to the initial position P for the next switching action.

[0062] In order to more intuitively display the switching position, a start mark (not shown in the figure) can be further set on the switching part 621. The start mark indicates that the switching part 621 is switched from the initial position P to the preset trigger position Q for the user to intuitively observe.

[0063] In this application, in the following embodiments, two atomizing assemblies 30 and two liquid storage chambers 200 are taken as examples for description, and the reciprocating sliding mode between the switching part 621 and the substrate 611 is taken as an example for description.

[0064] In this embodiment, the atomization assembly 30 includes a first atomization assembly 31 and a second atomization assembly 32. The first atomization assembly 31 and the second atomization assembly 32 are preferably arranged side by side. The first atomization assembly 31 and the second atomization assembly 32 can heat and atomize different atomization matrices to generate aerosols, so as to output the aerosols from the same direction.

[0065] In a specific embodiment, both the first atomization assembly 31 and the second atomization assembly 32 can generate heat under the electric energy provided by the power supply 50 to heat and atomize the atomization matrix to generate aerosols.

[0066] A first liquid storage structure 21 and a second liquid storage structure 22 are respectively arranged in the two liquid storage chambers 200. The first liquid storage structure 21 stores the first atomization matrix and supplies the first atomization matrix to the first atomization assembly 31. The second liquid storage structure 22 stores the second atomization matrix and supplies the second atomization matrix to the second atomization assembly 32. Wherein, the first atomization matrix and the second atomization matrix can be atomization matrices with different components, and different types of aerosols can be generated by heating through the first atomization assembly 31 and the second atomization assembly 32.

[0067] In one embodiment, the first liquid storage structure 21 and the first atomization assembly 31 can be fixedly connected, and the second liquid storage structure 22 and the second atomization assembly 32 can also be fixedly connected. In other words, after the atomization matrix is used up, it needs to be discarded. Or, corresponding liquid injection holes can be provided on the first liquid storage structure 21 and the second liquid storage structure 22 to inject the atomization matrix through the liquid injection holes.

[0068] Of course, in other embodiments, the first liquid storage structure 21 can be an independent structure relative to the first atomization assembly 31, and the second liquid storage structure 22 can be an independent structure relative to the second atomization assembly 32. After the atomization matrix is used up, the corresponding liquid storage structure can be replaced to improve the product utilization rate.

[0069] See Figure 6 As shown, the trigger switch 612 includes a first trigger switch 6121 and a second trigger switch 6122 arranged on the substrate 611. The first trigger switch 6121 is connected between the power supply 50 and the first atomization assembly 31. The first trigger switch 6121 is used to connect or disconnect the connection between the power supply 50 and the first atomization assembly 31. In the on state, the first atomization assembly 31 can be made to work to heat the atomization matrix stored in the first liquid storage structure 21. The second trigger switch 6122 is connected between the power supply 50 and the second atomization assembly 32. The second trigger switch 6122 is used to connect or disconnect the connection between the power supply 50 and the second atomization assembly 32. In the on state, the second atomization assembly 32 can be made to work to heat the atomization matrix stored in the second liquid storage structure 22.

[0070] It should be noted that when the first trigger switch 6121 connects the power supply 50 to the first atomization component 31 to make the first atomization component 31 work, the second trigger switch 6122 disconnects the connection between the power supply 50 and the second atomization component 32. And when the second trigger switch 6122 connects the power supply 50 to the second atomization component 10 to make the second atomization component 32 work, the first trigger switch 6121 disconnects the connection between the power supply 50 and the first atomization component 20.

[0071] The switching member 621 is movably connected to the substrate 611. The switching member 621 can be toggled along the first direction or the second direction from the initial position. As Figure 6 shown, in the figure, the switching member 621 is in the initial position. The trigger key 622 includes a first trigger key 6221 and a second trigger key 6222 provided on the switching member 621. Toggling the switching member 621 along the first direction from the initial position, the first trigger key 6221 triggers the first trigger switch 6121 to connect the power supply 50 to the first atomization component 31. Toggling the switching member 621 along the second direction from the initial position, the second trigger key 6222 triggers the second trigger switch 6122 to connect the power supply 50 to the second atomization component 32.

[0072] Combined with Figure 6 shown, the first direction is Figure 6 the direction from right to left as shown in Figure 4 and the second direction is the direction from left to right as shown in

[0073] In the above embodiment, by toggling the switching member 621 in different directions, the first trigger key 6221 or the second trigger key 6222 can trigger the first trigger switch 6121 or the second trigger switch 6122, so that the first atomization component 31 or the second atomization component 32 works. In this way, the user only needs to toggle the same switching component 62 in different directions to realize the control of different atomization components, which is convenient for the user to operate, and the structure is simple and easy to implement.

[0074] Both the first trigger switch 6121 and the second trigger switch 6122 can connect the power supply 50 to the first atomization component 31 and the second atomization component 32 in the triggered state, while disconnecting the connection between the power supply 50 and the first atomization component 31 and the second atomization component 32 in the non-triggered state. For example, both the first trigger switch 6121 and the second trigger switch 6122 are microswitches. In this way, the first trigger key 6221 can connect or disconnect the connection between the power supply 50 and the first atomization component 31 by contacting or disengaging from the first trigger switch 6121, and the second trigger key 6222 can connect or disconnect the connection between the power supply 50 and the second atomization component 32 by contacting or disengaging from the second trigger switch 6122.

[0075] In one embodiment, an exposed hole 14 is further formed in the housing 10, and a part of the switching member 621 extends to the outside of the housing 10 through the exposed hole 14 for user operation.

[0076] In this embodiment, the switching member 621 is reciprocally slidably arranged on the substrate 611 in the linear direction L. It can be understood that the positive direction of the linear direction is the first direction, and the negative direction of the linear direction is the second direction. When the switching member 621 is toggled from the initial position in the first direction, the first trigger key 6221 moves a first preset displacement in the first direction to trigger the first trigger switch 6121, that is, the first trigger switch 6121, which is a microswitch, is connected to the first atomization component 31 by extrusion. During this process, the second trigger key 6222 disengages from or moves away from the second trigger switch 6122. When the switching member 621 is toggled from the initial position in the second direction, the second trigger key 6222 moves a second preset displacement in the second direction to trigger the second trigger switch 6122, that is, the second trigger switch 6122, which is a microswitch, is connected to the second atomization component 32 by extrusion. During this process, the first trigger key 6221 disengages from or moves away from the first trigger switch 6121.

[0077] In one embodiment of the present application, the first preset displacement is the distance between the first trigger key 6221 and the first trigger switch 6121 along the first direction, and the sum of the length of the positive and negative first trigger switches 6121 along the first direction or the half length of the positive and negative first trigger switches 6121 along the first direction, that is, the movement amount of the first preset displacement allows the first trigger key 6221 to trigger the first trigger switch 6121 to connect the power supply 50 to the first atomizer assembly 31. The second preset displacement is the distance between the second trigger key 6222 and the second trigger switch 6122 along the second direction, and the sum of the length of the positive and negative second trigger switches 6122 along the second direction or the half length of the positive and negative second trigger switches 6122 along the second direction, that is, the movement amount of the second preset position allows the second trigger key 6222 to trigger the second trigger switch 6122 to connect the power supply 50 to the second atomizer assembly 32.

[0078] See also Figure 1 , Figure 6 and Figure 7 As shown, the operating part 623 includes a first toggle part 6231 and a second toggle part 6232. By toggling the first toggle part 6231, the switching member 621 can be moved from the initial position along the first direction from right to left. By toggling the second toggle part 6232, the switching member 621 can be moved from the initial position along the second direction from left to right. The setting of the two toggle parts can facilitate the user to operate.

[0079] In this embodiment, the first toggle portion 6231 and the second toggle portion 6232 are symmetrical about the middle of the switching member 621 , so that the switching member 621 exposed to the outside of the housing 10 through the exposing hole 14 is overall beautiful.

[0080] In one embodiment of the present application, a user can apply force to the first toggle portion 6231 and the second toggle portion 6232 with his fingers to move the toggle switch member 621 from an initial position along the first direction or the second direction, and the first toggle portion 6231 and the second toggle portion 6232 are both set to be concave so that the user's fingers act on the first toggle portion 6231 and the second toggle portion 6232.

[0081] In some embodiments, the surfaces of the first toggle portion 6231 and the second toggle portion 6232 are both provided with anti-slip structures to generate friction with the user's fingers for easy operation.

[0082] like Figure 4 As shown, the trigger assembly 61 also includes: a first electrode assembly 613 and a second electrode assembly 614, the first electrode assembly 613 is connected between the first atomization assembly 31 and the first trigger switch 6121, and the second electrode assembly 614 is electrically connected to the second atomization assembly 32 and the second trigger switch 6122.

[0083] The elastic reset member 625 includes a first elastic reset member 6251 and a second elastic reset member 6252. The switching member 621 is slidably mounted on the substrate 611. The substrate 611 is provided with a first stop portion 615 and a second stop portion 616 spaced apart from each other. The first elastic reset member 6251 is disposed between the first stop portion 615 and the switching member 621 and is used to reset the switching member 621 to the initial position after being toggled in the first direction. The second elastic reset member 6252 is disposed between the second stop portion 616 and the switching member 621 and is used to reset the switching member 621 to the initial position after being toggled in the second direction.

[0084] In this embodiment, two ends of the first elastic reset member 6251 are respectively connected to the first stop portion 615 and the switching assembly 62, and two ends of the second elastic reset member 6252 are respectively connected to the second stop portion 616 and the switching member 621. When the switching member 621 is toggled in the first direction or the second direction, the elastic potential energies of the first elastic reset member 6251 and the second elastic reset member 6252 need to be overcome.

[0085] See Figure 3 As shown, the atomizing device provided in this embodiment further includes an air intake switching switch 617. The air intake switching switch 617 is connected to the switching member 621. The air intake switching switch 617 has a first air intake hole 6171 and a second air intake hole 6172. Combining Figure 2 As shown, the first atomizing assembly 31 has a first atomizing channel 311, and the second atomizing assembly 32 has a second atomizing channel 321. One ends of the first air intake hole 6171 and the second air intake hole 6172 are both communicated with the outside atmosphere. In a specific embodiment, one ends of the first air intake hole 6171 and the second air intake hole 6172 are both communicated with the air flow inlet 12. The switching member 621 moves from the initial position in the first direction to communicate the other end of the first air intake hole 6171 with the first atomizing channel 311 and cut off the communication between one end of the second air intake hole 6172 and the second atomizing channel 321, so that outside gas can enter the first atomizing channel 311 through the air intake hole. The switching member 621 moves from the initial position in the second direction to communicate the other end of the second air intake hole 6172 with the second atomizing channel 321 and cut off the communication between one end of the first air intake hole 6171 and the first atomizing channel 311, so that outside gas can enter the second atomizing channel 321 through the air intake hole.

[0086] See Figure 2As shown, a first aerosol channel 41, a second aerosol channel 42, and a trigger channel 43 are provided on the nozzle 40. The first aerosol channel 41 communicates with the first atomization channel 311, the second aerosol channel 42 communicates with the second atomization channel 321, and an airflow sensor 44 is correspondingly provided on the trigger channel 43. Moreover, the trigger channel 43 is always in communication with the air inlet hole of the housing 10. The airflow sensors 44 are both connected to the first atomization assembly 31 and the second atomization assembly 32, and can generate a trigger signal when the airflow changes to control the operation of the first atomization assembly 31 or the second atomization assembly 32. In a specific embodiment, after the user toggles the switching member 621 in the first direction or the second direction, the user then sucks through the nozzle 40 so that external gas can enter the first atomization channel 311 or the second atomization channel 321. As the airflow in the trigger channel 43 changes, the first atomization assembly 31 or the second atomization assembly 32 can be triggered to operate, so that the generated aerosol is output through the first aerosol channel 41 or the second aerosol channel 42.

[0087] In an embodiment of the present application, the activation identifiers include a first activation identifier and a second activation identifier. The first activation identifier indicates toggling the switching assembly 62 in the first direction, and the second activation identifier indicates toggling the switching assembly 62 in the second direction to remind the user of the toggling direction.

[0088] In summary, for the atomization device provided in the present application, the power supply is selectively electrically connected to one or more groups of atomization assemblies through the selection module, enabling one or more groups of atomization assemblies to operate to generate aerosol. In this way, the user can achieve the control of different atomization assemblies only through the operation of the selection module, which is convenient for the user to operate, and has a simple structure and is easy to implement.

[0089] The above uses specific examples to elaborate on the present invention, which is only used to help understand the present invention and is not intended to limit the present invention. For those skilled in the technical field to which the present invention pertains, based on the idea of the present invention, several simple deductions, deformations, or substitutions can also be made.

Claims

1. An atomizing device, characterized in that: include: a housing having a first end and an airflow inlet; A liquid storage member is positioned in the housing, the liquid storage member having at least two liquid storage chambers for accommodating atomized substrates, and at least two of the liquid storage chambers are isolated from each other; At least two groups of atomizing components, wherein the atomizing components and the liquid storage chambers are in one-to-one correspondence and are in liquid-conducting communication, and the atomizing matrix in the liquid storage chamber is transferred to the atomizing components to generate aerosol; a mouthpiece, positioned at the first end of the housing, and the mouthpiece selectively or simultaneously connected to the atomizing assembly via an airflow so that the generated aerosol can be inhaled; A power supply, which is connected to the atomizer assembly and is used to provide a working voltage for the atomizer assembly; A gating module is connected between the power source and the atomizing assembly, and is used to enable the power source to selectively establish an electrical connection relationship with one or more groups of the atomizing assemblies.

2. The atomizing device according to claim 1, characterized in that: The gating module comprises: A trigger assembly, comprising a substrate and at least two trigger switches disposed on the substrate, wherein the trigger switches are connected between the power source and the atomizer assembly and are used to connect or disconnect the power source and the atomizer assembly; A switching component includes a switching member and at least two trigger keys arranged on the switching member. The switching member can be movably connected to the substrate and can be switched from an initial position to a preset trigger position. In the preset trigger position, one or more of the trigger keys trigger the trigger switch to enable one or more of the trigger switches to connect the power supply to the atomization component.

3. The atomizing device according to claim 2, characterized in that The switching member is arranged on the substrate so as to be reciprocatingly slidable between the initial position and the preset trigger position along a straight line direction, at least two of the trigger keys are arranged on the switching member along a direction parallel to the straight line direction, and at least two of the trigger switches are arranged on the substrate along a direction parallel to the straight line direction; or, the switching member is installed on the substrate so as to be reciprocatingly rotatable around the center of a circle between the initial position and the preset trigger position, at least two of the trigger keys are arranged on the switching member in a circular array around the center of the circle, and at least two of the trigger switches are arranged on the substrate in a circular array around the center of the circle.

4. The atomizing device according to claim 3, characterized in that The trigger switch is a micro switch, and the trigger key contacts and presses the trigger switch to trigger the trigger switch.

5. The atomizing device according to claim 3, characterized in that: The switching member is provided with an operating portion for operating the switching member to switch between the initial position and the preset trigger position.

6. The atomizing device according to claim 5, characterized in that: The operating portion is concave.

7. The atomizing device according to claim 6, characterized in that The operating part is also provided with an anti-slip structure.

8. The atomizing device according to claim 2, characterized in that: The switching component further includes an elastic reset member, which is connected between the substrate and the switching member and is used to reset the switching member from the preset trigger position to the initial position.

9. The atomizing device according to claim 2, characterized in that: The switching element is also provided with a start mark, and the start mark indicates that the switching element is switched from the initial position to the preset trigger position.

10. The atomizing device according to claim 1, characterized in that: The liquid storage component also has at least two independent liquid storage containers that are removable relative to the liquid storage cavity. The liquid storage containers are used to contain atomization substrates and are in liquid-conducting communication with the atomization component.

11. The atomizing device according to claim 10, characterized in that The liquid storage container has a liquid outlet, the liquid storage cavity has a connection end docking with the liquid outlet, and the atomized matrix is ​​transferred from the liquid storage container to the liquid storage cavity through the connection end.

12. The atomizing device according to claim 11, characterized in that The connecting end includes a liquid inlet and a body guide; the liquid inlet is configured to be aligned with the liquid outlet of the liquid storage container connected to the liquid storage cavity, the body guide is configured to have a length along the flow guiding direction, and the cross-sectional area of ​​the body guide gradually increases along the flow guiding direction.