Atomization device
By designing multiple atomizers and atomizing components for rotating connection in the atomizing device, the problem of the single working mode of existing atomizing devices is solved, and a variety of aerosol flavor outputs are achieved, thus improving the user experience.
Patent Information
- Application Number
- CN202422995117.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-12-05
AI Technical Summary
Existing atomizing devices can only operate on one atomizing component, resulting in a relatively simple working mode that is difficult to meet the diverse needs of users.
An atomizing device was designed, comprising at least two atomizers, each atomizer having multiple atomizing components. By rotating the connection, different atomizing channels can be connected to achieve diverse working modes.
It enables diverse operating modes for the atomizing device, enhances the user experience, and can output a wider variety of aerosol flavors.
Smart Images

Figure CN223585259U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic atomization technology, and more particularly to an atomization device. Background Technology
[0002] Atomizing devices are devices that atomize an aerosol matrix into an aerosol for user use, and they are widely used in industries such as medicine and beauty. Existing atomizing devices generally only have one atomizing component, meaning they can only operate on that single component. This results in a relatively limited operating mode, making it difficult to meet the diverse needs of users. Utility Model Content
[0003] In view of this, the purpose of this application is to provide an atomizing device that solves the technical problem that existing atomizing devices can only work on one atomizing component and have a relatively simple working mode.
[0004] To achieve the above objectives, the technical solution adopted in this application is as follows:
[0005] An embodiment of this application provides an atomizing device, comprising:
[0006] ontology;
[0007] At least two atomizers are respectively disposed on the main body. The at least two atomizers include a first atomizer and a second atomizer. The first atomizer includes at least two first atomizing components, each of which has a first atomizing channel. The second atomizer includes at least one second atomizing component, each of which has a second atomizing channel.
[0008] The first atomizer rotates relative to the second atomizer so that at least one of the first atomizing channels located at the atomizing working position is connected to at least one of the second atomizing channels.
[0009] In one embodiment, at least two of the first atomizing components are used to store aerosol matrices of different flavors;
[0010] Alternatively, at least one of the first atomizing components and at least one of the second atomizing components are used to store aerosol matrices of different flavors.
[0011] In one embodiment, the first atomizer further includes a first receiving chamber, and the second atomizer further includes a second receiving chamber. The first receiving chamber and the second receiving chamber are rotatably connected. The first receiving chamber defines at least two first receiving cavities, and each first receiving cavity is provided with a first atomizing component. The second receiving chamber defines at least one second receiving cavity, and each second receiving cavity is provided with a second atomizing component.
[0012] In one embodiment, the first atomizer further includes an elastic element, the first receiving chamber is slidable relative to the second receiving chamber along its axial direction, the elastic element is connected to the first receiving chamber and is used to apply an elastic force to the first receiving chamber toward the second receiving chamber, the first receiving chamber is provided with a plurality of first positioning parts, each first positioning part is provided with at least one first receiving chamber, the second receiving chamber is provided with a plurality of second positioning parts, a positioning groove is formed between each two adjacent second positioning parts, and each positioning groove is provided with at least one second receiving chamber;
[0013] When the first receiving chamber rotates about its axis relative to the second receiving chamber by a preset angle, each of the first positioning parts slides out of one of the positioning slots and engages with the adjacent positioning slot, so that at least one of the first receiving chambers and at least one of the second receiving chambers are positioned at the atomizing working position.
[0014] In one embodiment, the number of the first atomizing components is m, and the preset angle is α, satisfying: α=360° / m.
[0015] In one embodiment, the first atomizer further includes a first rotating shaft, the first receiving chamber has a connecting hole, the first rotating shaft slides through the connecting hole and is connected to the second receiving chamber, the elastic element is a cylindrical spring housed in the connecting hole and sleeved on the first rotating shaft, one end of the cylindrical spring is connected to the first receiving chamber, and the other end of the cylindrical spring is connected to the end of the first rotating shaft away from the second receiving chamber.
[0016] In one embodiment, the main body has a rotating window located at the position of the first receiving chamber. At least some of the first atomizing components are located at the position of the rotating window. Each first atomizing component includes a first liquid storage shell and a first atomizing core. The first atomizing core is disposed inside the first liquid storage shell and has the first atomizing channel. At least a portion of the first liquid storage shell and the first receiving chamber corresponding to the rotating window are transparent or semi-transparent structures.
[0017] And / or, the main body is provided with an observation window, the observation window is located at the position of the second receiving chamber, each of the second atomizing components includes a second liquid storage shell and a second atomizing core, the second atomizing core is disposed inside the second liquid storage shell and has a second atomizing channel, and the second liquid storage shell and the second receiving chamber are at least partially transparent or semi-transparent structures corresponding to the observation window.
[0018] In one embodiment, the atomizing device further includes a first seal located between the first atomizing component and the second atomizing component. The first seal has a first docking channel, the location of which defines the atomizing working position. One end of the first docking channel communicates with at least one first atomizing channel located at the atomizing working position, and the other end of the first docking channel communicates with at least one second atomizing channel located at the atomizing working position.
[0019] In one embodiment, the atomizing device further includes an airflow sensor, and the first seal further defines a detection channel communicating with the first docking channel, the airflow sensor being disposed within the detection channel.
[0020] In one embodiment, the axis of at least one first atomizing channel located at the atomizing working position coincides with the axis of at least one second atomizing channel.
[0021] In one embodiment, the atomizing device further includes a power supply component and a circuit board disposed inside the main body. The circuit board is electrically connected to the power supply component. Each atomizing component includes a conductive component. The circuit board is provided with a pin assembly electrically connected to it. The pin assembly is used to abut against at least one of the conductive components located at the atomizing working position. The pin assembly is electrically connected to the conductive component.
[0022] In one embodiment, the circuit board is located between the first atomizing component and the second atomizing component, and a set of the conductive components are respectively disposed on the side of the circuit board facing the first atomizing component and the side facing the second atomizing component.
[0023] In one embodiment, the body includes:
[0024] The housing defines an installation cavity and has a first opening communicating with the installation cavity. The first atomizer and the second atomizer are respectively housed in the installation cavity. The first receiving chamber has a first take-out port on the side facing the first opening, and the first take-out port is respectively communicating with a plurality of the first receiving cavities.
[0025] The nozzle assembly has an air outlet that communicates with at least one of the first atomizing channels located at the atomizing working position. The nozzle assembly is connected to the end of the housing with the first opening and is used to open or close the first pick-up / put-out port.
[0026] In one embodiment, the first atomizer and the second atomizer are distributed along the axial direction of the housing, and the housing also has a second opening communicating with the mounting cavity. The first opening and the second opening are respectively located at two opposite ends of the housing along its axial direction. The body also includes:
[0027] The shell cover has an air inlet that is connected to at least one of the second atomizing channels located at the atomizing working position. The second receiving chamber has a second take-out port on the side facing the second opening. The second take-out port is connected to the second receiving chamber and the second opening, respectively. The shell cover is located at the end of the shell where the second opening is located and is used to open or close the second take-out port.
[0028] In one embodiment, the nozzle assembly includes a nozzle body and a second seal. The nozzle body has an air outlet. The second seal is rotatably disposed on the nozzle body and has at least two second docking channels. The first atomizing assembly has at least two air outlet pipes, each of which passes through one of the second docking channels and one of the first atomizing channels.
[0029] The beneficial effects of this application are:
[0030] The atomizing device provided in this application includes a main body, a first atomizer, and a second atomizer. The first atomizer comprises at least two first atomizing components, each with a first atomizing channel. The second atomizer comprises at least one second atomizing component, each with a second atomizing channel. The first atomizer is rotatable relative to the second atomizer, allowing at least one first atomizing channel located at the atomizing working position to communicate with at least one second atomizing channel. This allows the user to achieve any combination of the first and second atomizing components by rotating the first atomizer, resulting in more diverse operating modes and improved user experience.
[0031] To make the above-mentioned objectives, features and advantages of this application more apparent and understandable, preferred embodiments are described below in detail with reference to the accompanying drawings. Attached Figure Description
[0032] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0033] Figure 1The diagram shows a first-view structural schematic of the atomizing device in some embodiments of this application;
[0034] Figure 2 This application shows a second-view structural schematic diagram of the atomizing device in some embodiments;
[0035] Figure 3 It shows Figure 2 Schematic diagram of the cross-sectional structure at point AA;
[0036] Figure 4 The diagram shows a third-view exploded view of the atomizing device in some embodiments of this application;
[0037] Figure 5 The following is a fourth-view exploded structural diagram of the atomizing device in some embodiments of this application;
[0038] Figure 6 This paper shows a first-view structural schematic diagram of the first atomizer in some embodiments of this application;
[0039] Figure 7 It shows Figure 6 Schematic diagram of the cross-sectional structure at point BB;
[0040] Figure 8 This paper shows a second-view exploded structural diagram of the first atomizer in some embodiments of this application;
[0041] Figure 9 This paper shows a third-view exploded structural diagram of the first atomizer in some embodiments of this application;
[0042] Figure 10 The diagram shows an assembly structure of the power supply component, circuit board, second seal, and second atomizing component in some embodiments of this application.
[0043] Figure 11 It shows Figure 10 A schematic diagram of the cross-sectional structure at the CC section;
[0044] Figure 12 It shows Figure 10 A first-person perspective exploded structure diagram;
[0045] Figure 13 It shows Figure 10 A schematic diagram of the second-view decomposed structure;
[0046] Figure 14 The first-view structural schematic diagram of the nozzle assembly in some embodiments of this application is shown;
[0047] Figure 15 This paper shows a second-view exploded structural diagram of the nozzle assembly in some embodiments of the present application;
[0048] Figure 16 An exploded view of the atomizing device is shown in some other embodiments of this application;
[0049] Figure 17 A cross-sectional view of the atomizing device is shown in some other embodiments of this application;
[0050] Figure 18 This invention provides a schematic diagram of the atomizing device in some embodiments of the present application when the housing cover opens the second loading port;
[0051] Figure 19 A cross-sectional structural schematic diagram of the atomizing device in some embodiments of this application is shown.
[0052] Explanation of key component symbols:
[0053] 1000 - Atomizing device; 100 - Body; 110 - Housing; 111 - Mounting cavity; 112 - First opening; 113 - Second opening; 114 - Second limiting part; 115 - Rotating window; 116 - Observation window; 120 - Nozzle assembly; 121 - Nozzle body; 1211 - Air outlet; 1212 - First limiting part; 122 - First magnetic component; 123 - Second sealing component; 1231 - Second docking channel; 130 - Shell cap; 131 - Cap body; 1311 - Air inlet; 1312 - Notch; 1313 - Handle; 132 - Sealing part; 1321 - Annular boss; 1322 - Sealing ring; 200 - First atomizer; 210 - First atomizing assembly; 211 - First liquid reservoir; 212 - First atomizing core; 2121 - First atomizing channel; 213 - Air outlet pipe; 220 - First receiving chamber; 221 - First receiving cavity; 222-First positioning part; 223-Connecting hole; 224-First loading / unloading port; 230-Elastic element; 240-First rotating shaft; 250-Conductive component; 251-First conductive electrode; 252-Second conductive electrode; 300-Second atomizer; 310-Second atomizing component; 311-Second liquid storage shell; 312-Second atomizing core; 3121-Second atomizing channel; 320-Second receiving chamber; 321-Second receiving cavity; 322-Second positioning part; 323-Positioning groove; 324-Second pick-and-place port; 325-Second magnetic component; 326-Second rotating shaft; 400-Power supply assembly; 410-Battery; 420-Main board; 500-Circuit board; 510-Ejector pin assembly; 511-First elastic ejector pin; 512-Second elastic ejector pin; 600-Airflow sensor; 700-First sealing component; 710-First docking channel; 720-Detection channel. Detailed Implementation
[0054] The embodiments of this application are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.
[0055] In the description of this application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.
[0056] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.
[0057] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0058] In this application, unless otherwise expressly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0059] like Figures 1 to 3As shown, an embodiment of this application provides an atomizing device 1000, including a body 100 and at least two atomizers. The at least two atomizers are respectively disposed on the body 100, and include a first atomizer 200 and a second atomizer 300. The first atomizer 200 includes at least two first atomizing components 210, each of which has a first atomizing channel 2121. The second atomizer 300 includes at least one second atomizing component 310, each of which has a second atomizing channel 3121. The first atomizer 200 rotates relative to the second atomizer 300 so that at least one first atomizing channel 2121 located in the atomizing working position communicates with at least one second atomizing channel 3121.
[0060] It should be noted that the aforementioned atomizing components are used to atomize the aerosol matrix into an aerosol. The generated aerosol can be output through the aforementioned atomizing channel for user inhalation. For example, the flavor of the aerosol matrix can be sour, sweet, icy, salty, or fruity (e.g., watermelon, peach, apple, etc.), etc., without specific limitations. For example, the first atomizing component 210 may include a first atomizing core 212, and the second atomizing component 310 may include a second atomizing core 312. The atomizing core can heat the aerosol matrix to atomize it into an aerosol. The atomizing core can further be a heating element such as a heating mesh or heating ceramic, without specific limitations on the type of atomizing core.
[0061] It is understood that in the atomizing device 1000 provided in this embodiment, the first atomizer 200 can rotate relative to the second atomizer 300, so that at least one first atomizing channel 2121 located in the atomizing working position is connected to at least one second atomizing channel 3121. In this way, the user can rotate the first atomizer 200 to achieve any combination of the first atomizing component 210 and the second atomizing component 310, so that the atomizing device 1000 has more diversified working modes, thereby meeting the diverse usage needs of users and improving the user experience.
[0062] In one embodiment, at least two first atomizing components 210 are used to store aerosol bases of different flavors. Thus, a user can select different flavors of aerosol bases to atomize within the first atomizer 200 by rotating it, allowing the atomizing device 1000 to output a wider variety of aerosol flavors.
[0063] In another embodiment, at least one first atomizing component 210 and at least one second atomizing component 310 are respectively used to store aerosol matrices of different flavors. Thus, by rotating the first atomizer 200, the user can select to atomize different flavored aerosol matrices in the first atomizer 200 and the second atomizer 300, enabling arbitrary combinations of multiple flavored aerosol matrices and making the atomizing device 1000 able to output a wider variety of aerosol flavors.
[0064] like Figures 3 to 5 As shown, in one embodiment, the first atomizer 200 further includes a first receiving chamber 220, and the second atomizer 300 further includes a second receiving chamber 320. The first receiving chamber 220 and the second receiving chamber 320 are rotatably connected. The first receiving chamber 220 defines at least two first receiving cavities 221, each of which is provided with a first atomizing component 210. The second receiving chamber 320 defines at least one second receiving cavity 321, each of which is provided with a second atomizing component 310. In this embodiment, by rotatably connecting the first receiving chamber 220 and the second receiving chamber 320, the first atomizer 200 can rotate relative to the second atomizer 300. Thus, the user can rotate the first receiving chamber 220 to drive the first atomizer 200 to rotate relative to the second atomizer 300, thereby achieving any combination of the first atomizing component 210 and the second atomizing component 310. Meanwhile, the first receiving cavity 221 facilitates the installation of the first atomizing component 210, and the second receiving cavity 321 facilitates the installation of the second atomizing component 310.
[0065] like Figure 3 , Figure 8 and Figure 12 As shown, the first atomizer 200 further includes an elastic element 230. The first receiving chamber 220 is slidable relative to the second receiving chamber 320 along its axial direction. The elastic element 230 is connected to the first receiving chamber 220 and is used to apply an elastic force to the first receiving chamber 220 toward the second receiving chamber 320. The first receiving chamber 220 is provided with a plurality of first positioning parts 222, each first positioning part 222 corresponding to at least one first receiving cavity 221. The second receiving chamber 320 is provided with a plurality of second positioning parts 322, and a positioning groove 323 is formed between each two adjacent second positioning parts 322. Each positioning groove 323 corresponds to at least one second receiving cavity 321.
[0066] Understandably, when the first receiving chamber 220 rotates relative to the second receiving chamber 320 by a preset angle around its axis, under the action of the elastic force generated by the elastic element 230, each first positioning part 222 slides out of one positioning groove 323 and engages with another adjacent positioning groove 323, so that at least one first receiving cavity 221 and at least one second receiving cavity 321 are positioned in the atomizing working position. This achieves the positioning of the rotation angle of the first atomizer 200, ensuring precise communication between at least one first atomizing channel 2121 and at least one second atomizing channel 3121 located in the atomizing working position. Simultaneously, the process of the first positioning part 222 sliding out of one positioning groove 323 and engaging with another adjacent positioning groove 323 provides tactile or auditory feedback to the user, making the atomizing device 1000 more user-friendly.
[0067] Furthermore, the number of first atomizing components 210 is m, and the preset angle is α, satisfying: α = 360° / m. For example, the number of first atomizing components 210 can be two, three, four, five, six, etc., and no specific limitation is made here.
[0068] For ease of description, we will use m=4 here, that is, as... Figure 8 and Figure 9 The following example illustrates the number of four first atomizing components 210: α = 360° / 4 = 90°, meaning that when the user rotates the first atomizer 200, one first atomizing component 210 is switched for every 90 degrees of rotation; when m = 3, one first atomizing component 210 is switched for every 120 rotations; when m = 2, one first atomizing component 210 is switched for every 180 rotations; and so on for other values of m, which will not be listed here.
[0069] like Figure 3 , Figure 6 and Figure 7 As shown, the first atomizer 200 further includes a first rotating shaft 240, a connecting hole 223 is provided on the first receiving chamber 220, the first rotating shaft 240 is slidably passed through the connecting hole 223 and connected to the second receiving chamber 320, and the elastic member 230 is a cylindrical spring that is housed in the connecting hole 223 and sleeved on the first rotating shaft 240. One end of the cylindrical spring is connected to the first receiving chamber 220, and the other end of the cylindrical spring is connected to the end of the first rotating shaft 240 away from the second receiving chamber 320.
[0070] In this embodiment, the first rotating shaft 240 not only enables the rotational connection between the first atomizer 200 and the second atomizer 300, but also provides a guiding function for the extension or shortening of the cylindrical spring, so that the cylindrical spring can stably apply elastic force to the first receiving chamber 220, so that the user can better switch the first atomizing component 210.
[0071] Of course, in the above embodiments, the elastic element 230 can also be a spring sheet. The spring sheet is located in the connecting hole 223 and is connected to the first receiving chamber 220 and the second receiving chamber 320 respectively. The spring sheet can also apply elastic force to the first receiving chamber 220 to cooperate with the first positioning part 222 and the positioning groove 323 to position the rotation angle of the first atomizer 200. Here, no specific limitation is made on the type of elastic element 230.
[0072] like Figure 2 as well as Figures 5 to 7 As shown, in a specific embodiment, the main body 100 has a rotating window 115 located at the position of the first receiving chamber 220. At least some of the multiple first atomizing components 210 are located at the position of the rotating window 115. Each first atomizing component 210 includes a first liquid storage shell 211 and a first atomizing core 212. The first atomizing core 212 is disposed inside the first liquid storage shell 211 and has a first atomizing channel 2121. The first liquid storage shell 211 and the first receiving chamber 220 are at least partially transparent or semi-transparent structures corresponding to the rotating window 115. Thus, when the user uses the atomizing device 1000, the first atomizer 200 can be rotated through the rotating window 115. At the same time, the user can also directly observe the remaining amount of aerosol matrix in the first liquid storage shell 211 through the rotating window 115.
[0073] like Figure 2 , Figure 5 , Figure 10 and Figure 11 As shown, in another specific embodiment, the main body 100 has an observation window 116 located at the position of the second receiving chamber 320. Each second atomizing component 310 includes a second liquid storage shell 311 and a second atomizing core 312. The second atomizing core 312 is disposed inside the second liquid storage shell 311 and has a second atomizing channel 3121. The second liquid storage shell 311 and the second receiving chamber 320 are at least partially transparent or semi-transparent at the observation window 116. Thus, when the user uses the atomizing device 1000, the remaining amount of aerosol matrix in the second liquid storage shell 311 can be directly observed through the observation window 116.
[0074] Of course, the two specific embodiments described above can be combined. That is, the user can rotate the first atomizer 200 through the rotating window 115 and directly observe the remaining amount of aerosol matrix in the first atomizer 200 through the rotating window 115. Simultaneously, the remaining amount of aerosol matrix in the second atomizer 300 can be directly observed through the observation window 116.
[0075] like Figure 3 , Figure 12 and Figure 13 As shown, in one embodiment, the atomizing device 1000 further includes a first sealing member 700, which is located between the first atomizing component 210 and the second atomizing component 310. The first sealing member 700 is provided with a first docking channel 710, which defines an atomizing working position. One end of the first docking channel 710 is connected to at least one first atomizing channel 2121 located at the atomizing working position, and the other end of the first docking channel 710 is connected to at least one second atomizing channel 3121 located at the atomizing working position.
[0076] For example, the material of the first seal 700 can be sealing silicone, sealing rubber, etc., without specific limitations.
[0077] In this embodiment, a first sealing member 700 with a first docking channel 710 is provided between the first atomizing component 210 and the second atomizing component 310. One end of the first docking channel 710 is connected to at least one first atomizing channel 2121 located at the atomizing working position, and the other end of the first docking channel 710 is connected to at least one second atomizing channel 3121 located at the atomizing working position. This achieves a sealed docking between at least one first atomizing component 210 and at least one second atomizing component 310 located at the atomizing working position, thereby reducing the possibility of leakage when aerosol flows from the second atomizing channel 3121 to the first atomizing channel 2121.
[0078] like Figure 12 and Figure 13 As shown, the atomizing device 1000 further includes an airflow sensor 600, and the first seal 700 further defines a detection channel 720 that communicates with the first docking channel 710, with the airflow sensor 600 disposed within the detection channel 720.
[0079] Understandably, the operation of the first atomizing component 210 and the second atomizing component 310 requires a response to the airflow sensor 600. By placing the airflow sensor 600 within the detection channel 720 of the first seal 700, it can detect the air pressure difference to determine whether the user is performing a suction action.
[0080] like Figure 3 As shown, in one embodiment, the axis of at least one first atomizing channel 2121 located at the atomizing working position coincides with the axis of at least one second atomizing channel 3121, that is, the first atomizing channel 2121 and the second atomizing channel 3121 at the atomizing working position are coaxially arranged. This allows the first atomizing channel 2121 to directly connect to the second atomizing channel 3121, thereby shortening the airflow path of the aerosol as it flows from the second atomizing channel 3121 to the first atomizing channel 2121.
[0081] like Figures 11 to 13 As shown, in one embodiment, the atomizing device 1000 further includes a power supply component 400 and a circuit board 500 disposed inside the body 100. The circuit board 500 is electrically connected to the power supply component 400. Each atomizing component includes a conductive component 250. The circuit board 500 is provided with a pin assembly 510 electrically connected thereto. The pin assembly 510 is used to abut against at least one conductive component 250 located at the atomizing working position. The pin assembly 510 is electrically connected to the conductive component 250.
[0082] It should be noted that the above statement "each atomizing component includes a conductive component 250" means that both the first atomizing component 210 and the second atomizing component 310 include a conductive component 250.
[0083] In this embodiment, by setting the pin assembly 510 and the conductive assembly 250, the power supply assembly 400 is electrically connected to at least one first atomizing assembly 210 and at least one second atomizing assembly 310 located at the atomizing working position, thereby facilitating the power supply assembly 400 to supply power to the first atomizing assembly 210 and the second atomizing assembly 310.
[0084] like Figure 11 and Figure 12 As shown, exemplarily, the power supply assembly 400 includes a battery 410 and a motherboard 420. The battery 410 is disposed on and electrically connected to the motherboard 420, and the motherboard 420 is connected to the circuit board 500. The circuit board 500 and the motherboard 420 can be selected as printed circuit boards (PCBs) or flexible printed circuit boards (FPCs), and no specific limitations are placed on the types of the motherboard 420 and the circuit board 500.
[0085] like Figure 3 , Figure 12 and Figure 13 As shown, the circuit board 500 is further located between the first atomizing component 210 and the second atomizing component 310. A set of conductive components 250 are respectively arranged on the side of the circuit board 500 facing the first atomizing component 210 and the side facing the second atomizing component 310. In this way, the first atomizer 200 and the second atomizer 300 share a single circuit board 500 for electrical connection with the power supply component 400, saving on the number of components used, making the structure of the atomizing device 1000 more compact, and reducing the manufacturing cost of the atomizing device 1000.
[0086] like Figure 8 , Figure 12 and Figure 13As shown, by way of example, each group of conductive components 250 includes a first conductive electrode 251 and a second conductive electrode 252. The first conductive electrode 251 is electrically connected to the positive pin of the atomizing component, and the second conductive electrode 252 is electrically connected to the negative pin of the atomizing component. Each group of ejector pins 510 includes a first elastic ejector pin 511 and a second elastic ejector pin 512. The first elastic ejector pin 511 is used to abut against the first conductive electrode 251, and the second elastic ejector pin 512 is used to abut against the second conductive electrode 252.
[0087] like Figures 3 to 5 as well as Figure 9 As shown, in one embodiment, the body 100 includes a housing 110 and a mouthpiece assembly 120. The housing 110 defines a mounting cavity 111 and has a first opening 112 communicating with the mounting cavity 111. A first atomizer 200 and a second atomizer 300 are respectively housed within the mounting cavity 111. A first receiving chamber 220 has a first loading / unloading port 224 on the side facing the first opening 112, and the first loading / unloading port 224 communicates with a plurality of first receiving chambers 221. The mouthpiece assembly 120 has an air outlet 1211, which communicates with at least one first atomizing channel 2121 located at the atomizing working position. The mouthpiece assembly 120 is connected to the end of the housing 110 with the first opening 112 for opening or closing the first loading / unloading port 224. In this way, when using the atomizing device 1000, the user can first remove the nozzle assembly 120 from the housing 110 to open the first take-out port 224, then take out the first atomizing component 210 from the first receiving cavity 221, put the new first atomizing component 210 into the first receiving cavity 221, and then install the nozzle assembly 120 back onto the housing 110 to close the first take-out port 224, thereby completing the replacement of the first atomizing component 210.
[0088] like Figures 3 to 5As shown, the first atomizer 200 and the second atomizer 300 are distributed along the axial direction of the housing 110. The housing 110 is also provided with a second opening 113 that communicates with the mounting cavity 111. The first opening 112 and the second opening 113 are respectively located at two opposite ends of the housing 110 along its axial direction. The body 100 also includes a cover 130. The cover 130 is provided with an air inlet 1311 that communicates with at least one second atomizing channel 3121 located at the atomizing working position. The second receiving chamber 320 is provided with a second take-out port 324 on the side facing the second opening 113. The second take-out port 324 communicates with the second receiving chamber 321 and the second opening 113 respectively. The cover 130 is disposed at the end of the housing 110 where the second opening 113 is provided, and is used to open or close the second take-out port 324. In this way, when using the atomizing device 1000, the user can first move the cover 130 to open the second take-out port 324, then take out the second atomizing component 310 from the second receiving cavity 321, put the new second atomizing component 310 into the second receiving cavity 321, and then move the cover 130 to close the second take-out port 324, thereby completing the replacement of the second atomizing component 310.
[0089] Understandably, when a user inhales through the air outlet 1211 of the mouthpiece assembly 120, external airflow enters the second atomization channel 3121 through the air inlet 1311. The second atomization component 310, located at the atomization working position, atomizes the corresponding aerosol matrix into an aerosol. At the same time, the first atomization component 210, located at the atomization working position, atomizes the corresponding aerosol matrix into an aerosol. The aerosol in the second atomization channel 3121 flows into the first atomization channel 2121 and mixes with the aerosol in the first atomization channel 2121. Then, it is output through the air outlet 1211 for the user to inhale.
[0090] like Figure 14 and Figure 15As shown, the mouthpiece assembly 120 further includes a mouthpiece body 121 and a second sealing member 123. The mouthpiece body 121 has an air outlet 1211. The second sealing member 123 is rotatably disposed on the mouthpiece body 121 and has at least two second docking channels 1231. The first atomizing assembly 210 is provided with at least two air outlet pipes 213, each air outlet pipe 213 passing through one second docking channel 1231 and one first atomizing channel 2121 respectively. Thus, when the user rotates the first atomizer 200, the first atomizer 200 synchronously drives the second sealing member 123 to rotate through the air outlet pipes 213, so that the second docking channel 1231 located in the atomizing working position is connected to the air outlet 1211, realizing the connection between the first atomizing channel 2121 located in the atomizing working position and the air outlet 1211. During this process, the second seal 123 provides a sealing effect, reducing the possibility of leakage of aerosol as it enters the mouthpiece assembly 120 from the first atomizer 200.
[0091] For example, the material of the second seal 123 can be sealing silicone, sealing rubber, etc., without specific limitations.
[0092] like Figure 4 and Figure 15 As shown, the suction nozzle assembly 120 further includes a suction nozzle body 121 and a first magnetic element 122. The suction nozzle body 121 is provided with an air outlet 1211 and a first limiting part 1212. The first magnetic element 122 is connected to the suction nozzle body 121. The housing 110 is provided with a second limiting part 114 that slides with the first limiting part 1212 to restrict the suction nozzle assembly 120 from rotating relative to the housing 110.
[0093] Understandably, when the first limiting part 1212 slides along the second limiting part 114 to the preset position, the first magnetic element 122 magnetically connects with the first atomizer 200, so that the nozzle assembly 120 can be detachably connected to the end of the housing 110 with the first opening 112. The first limiting part 1212 and the second limiting part 114 cooperate to achieve a guiding effect, thus preventing mistaken insertion. This ensures that when the nozzle assembly 120 is installed into the housing 110, the multiple air outlet pipes 213 can be correspondingly inserted into the multiple second docking channels 1231, making the atomizing device 1000 more convenient to use.
[0094] For example, the first limiting part 1212 is a limiting rib formed on the outer periphery of the nozzle body 121, and the second limiting part 114 is a limiting groove formed on the inner sidewall of the housing 110. Alternatively, the first limiting part 1212 can be a limiting groove formed on the outer periphery of the nozzle body 121, and the second limiting part 114 can be a limiting rib formed on the inner sidewall of the housing 110. Both of these structures can achieve the guiding and error-proof function, and no specific limitations are made on the structure of the first limiting part 1212 and the second limiting part 114 here.
[0095] like Figure 3 and Figure 14 As shown, further, the first atomizer 200 also includes a first rotating shaft 240, and the first receiving chamber 220 is rotatably connected to the second receiving chamber 320 via the first rotating shaft 240; when the first limiting part 1212 slides along the second limiting part 114 to a preset position, the first magnetic element 122 is magnetically connected to the end of the first rotating shaft 240 away from the second receiving chamber 320. In this way, the first rotating shaft 240 is directly used as the magnetic object of the first magnetic element 122, thus eliminating the need for additional components as magnetic objects to magnetically engage with the first magnetic element 122, saving on the use of components, making the structure of the atomizing device 1000 more compact, and reducing the manufacturing cost of the atomizing device 1000.
[0096] like Figure 4 and Figure 5 As shown, the cover 130 further includes a cover body portion 131 and a sealing portion 132 connected to each other. The cover body portion 131 is provided with an air inlet 1311 and at least one handle position 1313. The second receiving compartment 320 is provided with a second magnetic element 325. The sealing portion 132 is used to block the second take-out port 324 and restrict the cover 130 from rotating relative to the housing 110.
[0097] Understandably, when the sealing part 132 is installed at the second access port 324, the second magnetic element 325 is magnetically connected to the cover part 131, so that the cover 130 can be detachably installed at the end of the housing 110 where the second opening 113 is located. The sealing part 132 serves the dual purpose of sealing the second access port 324 and restricting the rotation of the cover 130 relative to the housing 110.
[0098] like Figure 4 and Figure 5As shown, further, the sealing part 132 includes an annular boss 1321 and a sealing ring 1322. The annular boss 1321 is connected to the cover part 131, and the sealing ring 1322 is sleeved on the outer periphery of the annular boss 1321 and disposed close to the cover part 131. It can be understood that the sealing ring 1322 allows the annular boss 1321 to better seal the second access port 324, achieving a better sealing effect. For example, the material of the sealing ring 1322 can be sealing silicone, sealing rubber, etc., without specific limitations.
[0099] like Figures 16 to 19 As shown, further, a second rotating shaft 326 is provided on the second receiving compartment 320, and the cover 130 is rotatably connected to the second receiving compartment 320 through the second rotating shaft 326, so that the cover 130 is rotatably disposed at the end of the housing 110 where the second opening 113 is opened. In this way, the cover 130 can be opened or closed by rotating the second loading port 324.
[0100] like Figure 16 and Figure 17 As shown, in one specific embodiment, the axis of the second rotating shaft 326 coincides with the axis of the first atomizer 200, and the cover 130 is provided with a notch 1312 adapted to the shape of the second access port 324. Thus, when the user rotates the cover 130 until the notch 1312 connects with the second access port 324, the second access port 324 is opened by the cover 130, allowing replacement of the second atomizing component 310 within the second receiving cavity 321. When the user rotates the cover 130 until the notch 1312 is no longer connected to the second access port 324, the second access port 324 is closed by the cover 130.
[0101] like Figure 18 and Figure 19 As shown, in another specific embodiment, the axis of the second rotating shaft 326 does not coincide with the axis of the first atomizer 200, and a second magnetic element 325 is provided on the second receiving chamber 320.
[0102] Understandably, when the user rotates the cover 130 relative to the second receiving chamber 320 via the second pivot 326 to close the second dispensing port 324, the second magnetic component 325 magnetically connects to the cover 130. At this time, under the magnetic attraction between the second magnetic component 325 and the cover 130, the second dispensing port 324 is closed by the cover 130. When the user rotates the cover 130 relative to the second receiving chamber 320 via the second pivot 326 to open the second dispensing port 324, the second atomizing component 310 can be replaced.
[0103] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0104] Although embodiments of this application have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting this application. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of this application.
Claims
1. An atomizing device, characterized in that, include: Ontology(100); At least two atomizers are respectively disposed on the body (100). The at least two atomizers include a first atomizer (200) and a second atomizer (300). The first atomizer (200) includes at least two first atomizing components (210), each of which has a first atomizing channel (2121). The second atomizer (300) includes at least one second atomizing component (310), each of which has a second atomizing channel (3121). The first atomizer (200) rotates relative to the second atomizer (300) to make at least one of the first atomizing channels (2121) located at the atomizing working position communicate with at least one of the second atomizing channels (3121).
2. The atomizing device according to claim 1, characterized in that, At least two of the first atomizing components (210) are used to store aerosol matrices of different flavors; Alternatively, at least one of the first atomizing components (210) and at least one of the second atomizing components (310) are used to store aerosol matrices of different flavors.
3. The atomizing device according to claim 1, characterized in that, The first atomizer (200) further includes a first receiving chamber (220), and the second atomizer (300) further includes a second receiving chamber (320). The first receiving chamber (220) and the second receiving chamber (320) are rotatably connected. The first receiving chamber (220) defines at least two first receiving cavities (221), and each first receiving cavity (221) is provided with a first atomizing component (210). The second receiving chamber (320) defines at least one second receiving cavity (321), and each second receiving cavity (321) is provided with a second atomizing component (310).
4. The atomizing device according to claim 3, characterized in that, The first atomizer (200) further includes an elastic element (230). The first receiving chamber (220) is slidable relative to the second receiving chamber (320) along its axial direction. The elastic element (230) is connected to the first receiving chamber (220) and is used to apply an elastic force to the first receiving chamber (220) toward the second receiving chamber (320). The first receiving chamber (220) is provided with a plurality of first positioning parts (222), each first positioning part (222) corresponding to at least one first receiving cavity (221). The second receiving chamber (320) is provided with a plurality of second positioning parts (322), and a positioning groove (323) is formed between each two adjacent second positioning parts (322). Each positioning groove (323) corresponds to at least one second receiving cavity (321). When the first receiving chamber (220) rotates about its axis relative to the second receiving chamber (320) by a preset angle, each of the first positioning parts (222) slides out of one of the positioning slots (323) and engages with the adjacent positioning slot (323), so that at least one of the first receiving chambers (221) and at least one of the second receiving chambers (321) are positioned on the atomizing working position.
5. The atomizing device according to claim 4, characterized in that, The number of the first atomizing components (210) is m, and the preset angle is α, satisfying: α=360° / m.
6. The atomizing device according to claim 4, characterized in that, The first atomizer (200) further includes a first rotating shaft (240), and a connecting hole (223) is provided on the first receiving chamber (220). The first rotating shaft (240) is slidably passed through the connecting hole (223) and connected to the second receiving chamber (320). The elastic element (230) is a cylindrical spring that is housed in the connecting hole (223) and sleeved on the first rotating shaft (240). One end of the cylindrical spring is connected to the first receiving chamber (220), and the other end of the cylindrical spring is connected to the end of the first rotating shaft (240) away from the second receiving chamber (320).
7. The atomizing device according to claim 3, characterized in that, The main body (100) has a rotating window (115) located in the first receiving chamber (220). At least some of the first atomizing components (210) are located in the rotating window (115). Each first atomizing component (210) includes a first liquid storage shell (211) and a first atomizing core (212). The first atomizing core (212) is disposed inside the first liquid storage shell (211) and has a first atomizing channel (2121). The first liquid storage shell (211) and the first receiving chamber (220) are at least partially transparent or semi-transparent at the location corresponding to the rotating window (115). And / or, the main body (100) is provided with an observation window (116), the observation window (116) is located in the second receiving chamber (320), each of the second atomizing components (310) includes a second liquid storage shell (311) and a second atomizing core (312), the second atomizing core (312) is disposed inside the second liquid storage shell (311) and has a second atomizing channel (3121), the second liquid storage shell (311) and the second receiving chamber (320) are at least partially transparent or semi-transparent structures corresponding to the observation window (116).
8. The atomizing device according to any one of claims 1 to 7, characterized in that, The atomizing device further includes a first sealing element (700), which is located between the first atomizing component (210) and the second atomizing component (310). The first sealing element (700) is provided with a first docking channel (710), which defines the atomizing working position. One end of the first docking channel (710) is connected to at least one first atomizing channel (2121) located at the atomizing working position, and the other end of the first docking channel (710) is connected to at least one second atomizing channel (3121) located at the atomizing working position.
9. The atomizing device according to claim 8, characterized in that, The atomizing device further includes an airflow sensor (600), and the first seal (700) further defines a detection channel (720) communicating with the first docking channel (710), wherein the airflow sensor (600) is disposed within the detection channel (720).
10. The atomizing device according to any one of claims 1 to 7, characterized in that, The axis of at least one of the first atomizing channels (2121) located at the atomizing working position coincides with the axis of at least one of the second atomizing channels (3121).
11. The atomizing device according to any one of claims 1 to 7, characterized in that, The atomizing device further includes a power supply component (400) and a circuit board (500) disposed inside the main body (100). The circuit board (500) is electrically connected to the power supply component (400). Each atomizing component includes a conductive component (250). The circuit board (500) is provided with a pin assembly (510) electrically connected thereto. The pin assembly (510) is used to abut against at least one of the conductive components (250) located at the atomizing working position. The pin assembly (510) is electrically connected to the conductive component (250).
12. The atomizing device according to claim 11, characterized in that, The circuit board (500) is located between the first atomizing component (210) and the second atomizing component (310). A set of conductive components (250) are respectively provided on the side of the circuit board (500) facing the first atomizing component (210) and the side facing the second atomizing component (310).
13. The atomizing device according to any one of claims 3 to 7, characterized in that, The body (100) includes: The housing (110) defines a mounting cavity (111) and has a first opening (112) communicating with the mounting cavity (111). The first atomizer (200) and the second atomizer (300) are respectively housed in the mounting cavity (111). The first receiving chamber (220) has a first take-out port (224) on the side facing the first opening (112). The first take-out port (224) is respectively communicating with a plurality of the first receiving chambers (221). The nozzle assembly (120) has an air outlet (1211) that communicates with at least one of the first atomizing channels (2121) located at the atomizing working position. The nozzle assembly (120) is connected to one end of the housing (110) where the first opening (112) is located, and is used to open or close the first pick-up and drop-off port (224).
14. The atomizing device according to claim 13, characterized in that, The first atomizer (200) and the second atomizer (300) are distributed along the axial direction of the housing (110). The housing (110) is also provided with a second opening (113) communicating with the mounting cavity (111). The first opening (112) and the second opening (113) are respectively located at two opposite ends of the housing (110) along its axial direction. The body (100) also includes: The cover (130) has an air inlet (1311) which is connected to at least one second atomizing channel (3121) located at the atomizing working position. The second receiving chamber (320) has a second take-out port (324) on the side facing the second opening (113). The second take-out port (324) is connected to the second receiving chamber (321) and the second opening (113) respectively. The cover (130) is disposed at the end of the housing (110) where the second opening (113) is located, and is used to open or close the second take-out port (324).
15. The atomizing device according to claim 13, characterized in that, The nozzle assembly (120) includes a nozzle body (121) and a second sealing member (123). The nozzle body (121) has an air outlet (1211). The second sealing member (123) is rotatably disposed on the nozzle body (121) and has at least two second docking channels (1231). The first atomizing assembly (210) has at least two air outlet pipes (213). Each air outlet pipe (213) is respectively disposed through one second docking channel (1231) and one first atomizing channel (2121).