Atomization device
By employing a combination of electrode plates and magnetic components in the atomizing device, automatic alignment and electrical connection between the atomizing mechanism and the power supply mechanism are achieved, solving the problem of cumbersome alignment operations in the atomizing device and improving user experience and assembly efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HG INNOVATION LTD
- Filing Date
- 2025-03-25
- Publication Date
- 2026-04-14
AI Technical Summary
When the atomizing mechanism and the power supply mechanism of the atomizing device are disconnected, the alignment operation is cumbersome and inconvenient for users.
The device features a detachable atomizing design, utilizing a combination of electrode plates and magnetic components to achieve automatic alignment and electrical connection between the atomizing mechanism and the power supply mechanism. The magnetic connection between the magnetic components and the electrode plates facilitates contact and conductivity between the electrode contacts and the electrode plates, simplifying the alignment process.
It effectively reduces the time required for alignment, improves user experience and assembly efficiency, and simplifies the operation process of the atomizing device.
Smart Images

Figure CN224112137U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic atomization technology, specifically to an atomization device. Background Technology
[0002] In the field of electronic atomization, for ease of product assembly and disassembly, or for convenient replacement or replenishment of the aerosol matrix in the storage tank after use, related technologies typically employ a detachable design for the atomizing mechanism and power supply mechanism in the atomizing device, using magnetic connections to form a fixed and electrical connection. To achieve this electrical connection, electrodes are generally installed on the opposite end faces of the atomizing and power supply mechanisms. However, in these atomizing devices, the electrodes of the atomizing and power supply mechanisms must be precisely aligned to maintain contact, resulting in cumbersome alignment operations and inconvenience for users. Utility Model Content
[0003] The main technical problem this application addresses is the cumbersome alignment operation and inconvenience for users when the atomizing mechanism and power supply mechanism of the atomizing device are disconnected.
[0004] To address the aforementioned technical problems, this application provides an atomizing device, including a power supply mechanism and an atomizing mechanism, wherein the power supply mechanism and the atomizing mechanism are arranged opposite to each other and are detachably connected;
[0005] The power supply mechanism and the atomizing mechanism each have a first end face and a second end face arranged opposite to each other along the arrangement direction; the atomizing device further includes two electrode plates, two electrode contacts, and two magnetic suction components. One electrode contact is arranged adjacent to the magnetic suction component and cooperates with one electrode plate. The coverage area of the electrode plate covers at least the adjacent electrode contact and the magnetic suction component simultaneously. One electrode plate is disposed on one of the first end face and the second end face, and the electrode contact and the magnetic suction component that cooperate with it are disposed on the other end face of the second end face and the first end face opposite to the electrode plate. The magnetic suction component is magnetically connected to the electrode plate, and the electrode contact and the electrode plate are in contact with each other and conduct electricity under the action of the magnetic connection.
[0006] In one embodiment, two electrode plates are simultaneously disposed on one of the first end face and the second end face, and two electrode contacts and the magnetic attractor are simultaneously disposed on the other of the first end face and the second end face, with the electrode contacts and the magnetic attractor being spaced apart around the center point of their respective end faces.
[0007] In one embodiment, the two electrode plates are respectively a first electrode plate and a second electrode plate, the two electrode contacts are respectively a first electrode contact and a second electrode contact, and the two magnetic suction components are respectively a first magnetic suction component and a second magnetic suction component; the outline shapes of the first end face and the second end face are respectively centrally symmetrical figures, and the power supply mechanism and the atomizing mechanism have at least a first docking state and a second docking state. In the first docking state, the first electrode plate is magnetically connected to the first magnetic suction component and makes contact with the first electrode contact to conduct electricity, and the second electrode plate is magnetically connected to the second magnetic suction component and makes contact with the second electrode contact to conduct electricity; in the second docking state, the first electrode plate is magnetically connected to the second magnetic suction component and makes contact with the second electrode contact to conduct electricity, and the second electrode plate is magnetically connected to the first magnetic suction component and makes contact with the first electrode contact to conduct electricity.
[0008] In one embodiment, the contour shapes of the first end face and the second end face are rotationally symmetric figures, the first electrode contact and the second electrode contact are centrally symmetric about the center of their respective end faces, the first magnetic chuck and the second magnetic chuck are centrally symmetric about the center of their respective end faces, and the first electrode sheet and the second electrode sheet are centrally symmetric about the center of their respective end faces; the power supply mechanism and the atomizing mechanism also have a third docking state and a fourth docking state. In the third docking state, the first electrode sheet is magnetically connected to the first magnetic chuck and makes contact with the second electrode contact to conduct electricity, and the second electrode sheet is magnetically connected to the second magnetic chuck and makes contact with the first electrode contact to conduct electricity; in the fourth docking state, the first electrode sheet is magnetically connected to the second magnetic chuck and makes contact with the first electrode contact to conduct electricity, and the second electrode sheet is magnetically connected to the first magnetic chuck and makes contact with the second electrode contact to conduct electricity.
[0009] In one embodiment, two electrode sheets are disposed on the second end face, and two electrode contacts and two magnetic attractors are disposed on the first end face.
[0010] In one embodiment, the first end face has a plurality of protrusions arranged around its center, the two electrode contacts and the magnetic attractor are disposed on the protrusions, and each of the protrusions surrounds the central region of the first end face to form an air intake groove; the second end face is provided with an air intake port in the region directly opposite the air intake groove.
[0011] In one embodiment, the electrode sheets extend in a straight line perpendicular to the arrangement direction, and the extension directions of the two electrode sheets are parallel to each other.
[0012] In one embodiment, the motor contact is an elastic conductive probe, which protrudes from the magnetic attractor in the arrangement direction in its natural state.
[0013] In one embodiment, the second end face and / or the first end face are provided with raised ribs that surround the electrode sheet, the electrode contact and the magnetic attractor therein, the ribs contacting the opposite end face to seal the gap between the first end face and the second end face.
[0014] In one embodiment, the rib is located at the edge of the gap; and / or, the rib is a component made of an elastic material.
[0015] According to the atomizing device provided in the above embodiments, since the electrode sheet covers the electrode contacts and the magnetic absorbing component, the electrode sheet has both magnetic attraction and electrical connection functions. While connecting with the magnetic absorbing component through magnetic attraction, the electrode contacts also directly form an electrical connection with the electrode sheet, thereby effectively reducing the time required for alignment and improving the user experience. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the atomizing device structure in the embodiments of this application.
[0017] Figure 2 This is a schematic diagram of the atomizing device structure in the embodiments of this application.
[0018] Figure 3 This is a schematic diagram of an explosion of the atomizing device in an embodiment of this application.
[0019] Figure 4 This is a schematic diagram of the power supply mechanism structure in an embodiment of this application.
[0020] Figure 5 This is a schematic diagram of the first end face structure of the power supply mechanism in an embodiment of this application.
[0021] Figure 6 This is a schematic diagram of the second end face structure of the atomizing mechanism in an embodiment of this application.
[0022] Figure 7 This is a schematic diagram of the atomizing mechanism and the power supply mechanism assembled in the first docking state in the embodiments of this application.
[0023] Figure 8 This is a schematic diagram of the assembly of the atomizing mechanism and the power supply mechanism in the second docking state in the embodiments of this application.
[0024] Figure 9 This is a schematic diagram of the assembly of the atomizing mechanism and the power supply mechanism in the third docking state in the embodiments of this application.
[0025] Figure 10 This is a schematic diagram of the assembly of the atomizing mechanism and the power supply mechanism in the fourth docking state in the embodiments of this application.
[0026] Figure 11This is a schematic diagram of the outer shell structure of the atomizing device in the embodiments of this application.
[0027] Explanation of reference numerals in the attached figures:
[0028] 1-Power supply mechanism; 10-First end face; 11-Rib; 12-Boss; 13-Air intake groove;
[0029] 2-Atomizing mechanism; 20-Second end face; 21-Limiting groove; 22-Air inlet;
[0030] 31-Electrode contact; 311-First electrode contact; 312-Second electrode contact; 32-Magnetic element; 321-First magnetic element; 322-Second magnetic element;
[0031] 4-Electrode plate; 41-First electrode plate; 42-Second electrode plate;
[0032] 5-Outer shell; 50-Accommodation space; 51-Opening. Detailed Implementation
[0033] The present application will now be described in further detail with reference to the accompanying drawings and specific embodiments. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0034] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the order of the steps or actions in the method description can be changed or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.
[0035] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).
[0036] In related technologies, to achieve a fixed connection and electrical connection between the detachable atomizing mechanism and the power supply mechanism, corresponding electrodes and magnetic components are usually set on two opposite end faces in the assembly direction of the atomizing mechanism and the power supply mechanism. The magnetic components are used to assist in alignment and achieve a fixed connection, while the electrodes are used to achieve an electrical connection. The electrodes are divided into positive electrodes and negative electrodes. If the positive and negative electrodes are designed to be interchangeable, then in general, the atomizing mechanism and the power supply mechanism can have a maximum of two connection directions. Both of these connection directions can achieve a fixed connection and electrical connection between the atomizing mechanism and the power supply mechanism. However, two-way connections are still insufficient, and users need to spend a certain amount of time aligning them during use, resulting in a poor user experience.
[0037] To improve user convenience in operating detachable atomizing devices and enable quick alignment, this application provides an atomizing device. Please refer to... Figures 1 to 4 The atomizing device includes:
[0038] The power supply mechanism 1 and the atomizing mechanism 2 are arranged opposite to each other and are detachably connected.
[0039] The power supply mechanism 1 and the atomizing mechanism 2 each have a first end face 10 and a second end face 20 arranged opposite to each other along the arrangement direction, i.e., the power supply mechanism 1 has a first end face 10 and the atomizing mechanism 2 has a second end face 20; the atomizing device also includes two electrode plates 4, two electrode contacts 31, and two magnetic suction elements 32. One electrode contact 31 is arranged adjacent to the magnetic suction element 32 and cooperates with one electrode plate 4. The coverage area of the electrode plate 4 at least simultaneously covers the adjacent electrode contact 31 and the magnetic suction element 32; one electrode plate 4 is disposed on one of the first end face 10 and the second end face 20, and the cooperating electrode contact 31 and the magnetic suction element 32 are disposed on the other of the second end face 20 and the first end face 10 opposite to the electrode plate 4. The magnetic suction element 31 is magnetically connected to the electrode plate 4, and the electrode contact 31 and the electrode plate 4 are in contact with each other and conduct electricity under the action of magnetic connection, such as Figure 5 and Figure 6 As shown.
[0040] The main components of the atomizing device in this embodiment include an atomizing mechanism 2 for heating the aerosol matrix to generate aerosol, and a power supply mechanism 1 for providing power to the atomizing mechanism 2, especially the heating core in the atomizing mechanism 2. To heat the aerosol matrix, a liquid storage chamber can be formed inside the atomizing mechanism 2 to store the aerosol matrix. The heating core can be disposed within the liquid storage chamber and is connected to the liquid storage chamber. The aerosol matrix in the liquid storage chamber can enter the heating core, and then the heating core heats the aerosol matrix to generate aerosol, which is then discharged from the atomizing mechanism 2. Furthermore, when storing the aerosol matrix in the liquid storage mechanism, the aerosol matrix can also be absorbed and stored using capillary action through the liquid storage element, which can prevent the aerosol matrix from being consumed too quickly, thus reducing the consumption of the aerosol matrix per unit time.
[0041] In addition, in this embodiment, the heating core can also be set separately in the atomizing chamber outside the liquid storage chamber. The atomizing chamber and the liquid storage chamber are interconnected. The liquid storage chamber is still used to store the aerosol matrix. Then the aerosol matrix can enter the atomizing chamber through the connection between the liquid storage chamber and the atomizing chamber, and then be heated by the heating core to generate aerosol.
[0042] The power supply mechanism 1 is a component equipped with a power source, including a rechargeable or disposable power source, which provides the electrical energy required for the heating core in the atomizing mechanism 2 to operate. Additionally, the power supply mechanism 1 typically includes a circuit board electrically connected to the power source. The circuit board contains the necessary operating circuitry to ensure the proper functioning of all connected components.
[0043] Furthermore, in this embodiment, the atomizing mechanism 2 and the power supply mechanism 1 are arranged opposite to each other and are detachably connected. This means that the atomizing mechanism 2 and the power supply mechanism 1 can be fixedly connected to each other, and can also be disassembled without damaging the connecting parts between them. Moreover, disassembly will not affect their reconnection. The atomizing mechanism 2 and the power supply mechanism 1 are arranged opposite to each other along their arrangement direction. Therefore, at the connection point between them, the power supply mechanism 1 and the atomizing mechanism 2 each have a first end face 10 and a second end face 20, wherein the first end face 10 and the second end face 20 are arranged opposite to each other.
[0044] To establish an electrical connection between the atomizing mechanism 2 and the power supply mechanism 1, the atomizing device further includes two electrode plates 4, two electrode contacts 31, and two magnetic suction elements 32. Each of the two electrode plates 4 can form an electrical connection with an electrode contact 31. Each electrode plate 4 and its corresponding electrode contact 31 are selectively disposed on either the first end face 10 or the second end face 20, so that an electrical connection is formed by contacting the electrode plate 4 with the electrode contact 31. The magnetic attractor 32 can form a magnetic connection with the electrode plate 4. Both the magnetic attractor 32 and the electrode plate 4 are made of ferromagnetic material. The magnetic connection provides automatic guidance within a certain range and is relatively stable. In this embodiment, an electrode contact 31 is arranged adjacent to a magnetic attractor 32, both facing the electrode plate 4. The electrode plate 4 covers both the adjacent electrode contact 31 and the magnetic attractor 32. When the power supply mechanism 1 connects to the atomizing mechanism 2, the magnetic attractor 32 automatically attracts the electrode plate 4 through magnetic attraction, causing the electrode contact 31 to contact the electrode plate 4 to form an electrical connection. Therefore, the magnetic attractor 32 and the electrode plate 4 are positioned and fixedly connected through magnetic attraction, while an electrical connection is formed through the contact between the electrode contact 31 and the electrode plate 4. This achieves both a fixed connection and an electrical connection between the power supply mechanism 1 and the atomizing mechanism 2, improving the assembly efficiency of the atomizing device.
[0045] In some alternative embodiments, to form an electrical connection, the electrode sheet 4 and the electrode contact 31 are respectively disposed on different end faces and opposite each other. Specifically, to simplify the assembly structure, the two electrode sheets 4 can be simultaneously disposed on one of the first end face 10 and the second end face 20, and the two electrode contacts 31 and the magnetic attractor 32 can be simultaneously disposed on the other end face 10 and the second end face 20, with the electrode contacts 31 and the magnetic attractor 32 spaced apart around the center point of their respective end faces. That is, the two electrode sheets 4 can be disposed on one of the power supply mechanism 1 and the atomizing mechanism 2, and the electrode contacts 31 and the magnetic attractor 32 can be disposed on the other, with the electrode contacts 31 and the magnetic attractor 32 arranged adjacent to each other.
[0046] In some alternative embodiments, please refer to Figures 7 to 10By placing the electrode sheet 4 and the electrode contact 31 on different end faces, the user's assembly operation can be further simplified. Specifically, the two electrode sheets 4 are defined as the first electrode sheet 41 and the second electrode sheet 42, the two electrode contacts 31 are defined as the first electrode contact 311 and the second electrode contact 312, and the two magnetic suction members 32 are defined as the first magnetic suction member 321 and the second magnetic suction member 322. The outline shapes of the first end face 10 and the second end face 20 are centrally symmetrical figures. The power supply mechanism 1 and the atomizing mechanism 2 have at least a first docking state and a second docking state. In the first docking state, the first electrode sheet 41 is magnetically connected to the first magnetic suction member 321 and makes contact with the first electrode contact 311 for conduction, and the second electrode sheet 42 is magnetically connected to the second magnetic suction member 322 and makes contact with the second electrode contact 312 for conduction. In the second docking state, the first electrode sheet 41 is magnetically connected to the second magnetic suction member 322 and makes contact with the second electrode contact 312 for conduction, and the second electrode sheet 42 is magnetically connected to the first magnetic suction member 321 and makes contact with the first electrode contact 311 for conduction. With the electrode plates 4 and electrode contacts 31 respectively configured, the positive and negative poles of the electrode plates 4 and electrode contacts 31 are not distinguished. At least two docking states can be formed between the atomizing mechanism 2 and the power supply mechanism 1: a first docking state where the first electrode plate 41 is connected to the first electrode contact 311 and the second electrode plate 42 is connected to the second electrode contact 312; and a second docking state where the first electrode plate 41 is connected to the second electrode contact 312 and the second electrode plate 42 is connected to the first electrode contact 311. Since the docking states do not distinguish between positive and negative poles, this further shortens the time required for the user to connect the power supply mechanism 1 and the atomizing mechanism 2 during assembly, improving operational efficiency and enhancing the user experience.
[0047] In addition, in some optional embodiments, to further improve assembly efficiency, the outline shapes of the first end face 10 and the second end face 20 are rotationally symmetrical, the first electrode contact 311 and the second electrode contact 312 are centrally symmetrical about the center of their respective end faces, the first magnetic chuck 321 and the second magnetic chuck 322 are centrally symmetrical about the center of their respective end faces, and the first electrode sheet 41 and the second electrode sheet 42 are centrally symmetrical about the center of their respective end faces. The power supply mechanism 1 and the atomizing mechanism 2 also have a third docking state and a fourth docking state. In the third docking state, the first electrode sheet 41 is magnetically connected to the first magnetic chuck 321 and makes contact with the second electrode contact 312 for conduction, and the second electrode sheet 42 is magnetically connected to the second magnetic chuck 322 and makes contact with the first electrode contact 311 for conduction. In the fourth docking state, the first electrode sheet 41 is magnetically connected to the second magnetic chuck 322 and makes contact with the first electrode contact 311 for conduction, and the second electrode sheet 42 is magnetically connected to the first magnetic chuck 321 and makes contact with the second electrode contact 312 for conduction. The outlines of the first end face 10 and the second end face 20 are centrally symmetrical, including circles, rounded squares, regular hexagons, etc. The specific shapes are not limited in this embodiment. When electrode plates 4, electrode contacts 31, and magnetic accumulators 32 are respectively arranged on the first end face 10 and the second end face 20, the electrode plates 4 are centrally symmetrical about the center of the end face they are located on, which can be either the first end face 10 or the second end face 20. The same applies to the electrode contacts 31 and the magnetic accumulators 32. Moreover, the electrode contacts 31 and the magnetic accumulators 32 are arranged adjacent to each other. This is equivalent to setting a magnetic accumulator 32 between every two electrode contacts 31 and setting an electrode contact 31 between every two magnetic accumulators 32. Thus, a magnetic accumulator 32 can provide positioning and connection for two electrode contacts 31 respectively, thereby further improving the docking state between the atomizing mechanism 2 and the power supply mechanism 1. In other words, based on the premise that the electrode plate 4 and the electrode contact 31 are respectively disposed on different end faces, and the electrode plate 4, the electrode contact 31, and the magnetic attractor 32 are all centrally symmetrical about their respective end faces, the power supply mechanism 1 and the atomizing mechanism 2 have at least four docking states, specifically: the first docking state corresponds to the first electrode plate 41 being magnetically connected to the first magnetic attractor 321 and making contact with the first electrode contact 311 for conductivity, and the second electrode plate 42 being magnetically connected to the second magnetic attractor 322 and making contact with the second electrode contact 312 for conductivity, such as... Figure 7 As shown. The second docking state corresponds to the first electrode plate 41 being magnetically connected to the second magnetic member 322 and making contact with the second electrode contact 312 for conductivity, and the second electrode plate 42 being magnetically connected to the first magnetic member 321 and making contact with the first electrode contact 311 for conductivity, as shown. Figure 8As shown. The second docking state, relative to the first docking state, involves rotating the connection angle between the power supply mechanism 1 and the atomizing mechanism 2 by 180° to dock them. The third docking state corresponds to the first electrode plate 41 being magnetically connected to the first magnetic attractor 321 and making contact with the second electrode contact 312 for conductivity, and the second electrode plate 42 being magnetically connected to the second magnetic attractor 322 and making contact with the first electrode contact 311 for conductivity, as shown. Figure 9 As shown. In the third docking state, relative to the first docking state, the power supply mechanism 1 and the atomizing mechanism 2 are rotated 90° relative to each other for docking. The fourth docking state corresponds to the first electrode plate 41 being magnetically connected to the second magnetic attractor 322 and making contact with the first electrode contact 311 for conductivity, and the second electrode plate 42 being magnetically connected to the first magnetic attractor 321 and making contact with the second electrode contact 312 for conductivity, as shown. Figure 10 As shown. The fourth docking state, relative to the third docking state, involves rotating the power supply mechanism 1 and the atomizing mechanism 2 180° relative to each other for docking. Note that the relative rotation angles of the power supply mechanism 1 and the atomizing mechanism 2 listed in this embodiment are not strictly numerical ranges. In fact, because the electrode plate 4 has a certain coverage area, it allows the electrode contacts 31 and the magnetic suction element 32 to switch docking angles within a certain range, still achieving a fixed connection and electrical connection between the atomizing mechanism 2 and the power supply mechanism 1.
[0048] In some optional embodiments, specifically, two electrode plates 4 can be disposed on the second end face 20 of the atomizing mechanism 2, and correspondingly, two electrode contacts 31 and two magnetic attractors 32 can be disposed on the first end face 10 of the power supply mechanism 1. The atomizing mechanism 2, in order to heat the aerosol matrix to generate aerosol, typically also has an air intake channel. This air intake channel connects to the outside environment and the atomizing core in the atomizing mechanism 2. Outside air can enter the atomizing core through the air intake channel to mix with the heated aerosol. To prevent leakage of the aerosol matrix in the atomizing mechanism 2, which could contaminate the electrode contacts 31 and cause a short circuit, the first end face 10 in this embodiment has several protrusions 12 arranged around its center. The two electrode contacts 31 and the magnetic attractors 32 are disposed on the protrusions 12, and each protrusion 12 encloses an air intake groove 13 in the central region of the first end face 10. The second end face 20 has an air inlet 22 directly opposite the area of the air intake groove 13. In this embodiment, a plurality of protrusions 12 are provided on the first end face 10, thus forming a height difference on the first end face 10. The air inlet groove 13 is formed at a position lower than the protrusions 12. The electrode contact 31 and the magnetic attractor 32 are both provided on the protrusions 12, thus the electrode contact 31 is separated from the air inlet groove 13. The second end face 20 of the atomizing mechanism 2 is provided with an air inlet 22, and the position of the air inlet 22 is opposite to the air inlet groove 13. Therefore, the air inlet 22 can achieve air intake through the air inlet groove 13. Moreover, when the aerosol matrix leaks, it will only leak into the air inlet groove 13 and will not cross the protrusions 12 to contact the electrode contact 31, thereby avoiding contamination of the electrode contact 31 and short circuit.
[0049] Multiple bosses 12 can be arranged around the center of the first end face 10, and the gap between each boss 12 forms an air intake groove 13; an air intake channel is provided in the power supply component, which connects the air intake groove 13 and the outside.
[0050] In this embodiment, the two electrode contacts 31 are centrally symmetrical about the center of their respective end faces. This means that the two electrode contacts 31 can overlap after rotating 180° around the center of their respective end faces. Therefore, the power supply mechanism 1 and the atomizing mechanism 2 can achieve electrical connection at two different angles by rotating 180°. However, in this embodiment, the angles between the power supply mechanism 1 and the atomizing mechanism 2 are not limited to the two mentioned above. Specifically, in this embodiment, the two electrode plates 4 fixedly disposed on the second end face 20 are centrally symmetrical about the center of their respective end faces. Furthermore, each electrode plate 4 has a large coverage area, allowing one electrode contact 31 and a magnetic attractor 32 to simultaneously contact the same electrode plate 4. The magnetic attractor 32 is magnetically connected to the electrode plate 4, while the electrode contact 31 forms a contact-type electrical connection with the electrode plate 4. Because the electrode plate 4 has a large size, the electrode contact 31 and the magnetic suction component 32 can have a large adjustment angle when they are fixed and electrically connected to the electrode plate 4. Therefore, in addition to the 180° assembly angle, the atomizing mechanism 2 and the power supply mechanism 1 can have more assembly angles, which effectively improves the convenience of assembling the atomizing device and reduces the alignment time during the assembly process.
[0051] In some optional embodiments, in order for a single electrode sheet 4 to simultaneously cover both the electrode contact 31 and the magnetic attractor 32, the electrode sheet 4 can extend linearly along a direction perpendicular to the arrangement direction, and the extension directions of the two electrode sheets 4 are parallel to each other. In other words, the electrode sheet 4 itself can have a strip-shaped structure, thus covering a large area; and the parallelism between the two electrode sheets 4 can, on the one hand, avoid electrical contact between the two electrode sheets 4 and cause short circuits and other faults, and on the other hand, provide guidance for the magnetic connection. When the atomizing mechanism 2 and the power supply mechanism 1 are assembled, the electrode sheet 4 guides the magnetic attractor 32 to achieve orientation and magnetic contact, and the two magnetic attractors 32 respectively form magnetic connections with the two electrode sheets 4, thereby avoiding the problem of poor connection stability that may be caused by a single magnetic connection.
[0052] On the other hand, arranging the two electrode plates 4 into a parallel, straight-line structure also facilitates manufacturing and processing, that is, it makes it easier to manufacture the electrode plates 4 so that they can be placed on the second end face 20.
[0053] In some optional embodiments, to improve assembly accuracy and prevent problems such as power supply abnormalities caused by improper assembly, the extension length of the electrode plate 4 is greater than or equal to the distance between the electrode contact 31 and the magnetic chuck 32; the distance between the two electrode plates 4 matches the distance between the electrode contact 31 and the magnetic chuck 32. When the extension length of the electrode plate 4 is greater than or equal to the distance between the electrode contact 31 and the magnetic chuck 32, it ensures that when the magnetic chuck 32 and the electrode plate 4 are magnetically connected, the electrode contact 31 can synchronously maintain a contact-type electrical connection with the electrode plate 4; and the distance between the two electrode plates 4 matching the distance between the electrode contact 31 and the magnetic chuck 32 means that the distance between the two electrode plates 4 is similar to the distance between the electrode contact 31 and the magnetic chuck 32. This similarity can be that the distance between the two electrode plates 4 is slightly larger or slightly smaller. Regardless of the method, it means that the difference between the two distances is not large, which can further facilitate the adjustment of the assembly orientation between the atomizing mechanism 2 and the power supply mechanism 1.
[0054] In some alternative embodiments, to facilitate production applications and make it more convenient for users, the cross-sectional shape of the entire atomizing device perpendicular to the arrangement direction can be circular, square, or rounded square, etc. Correspondingly, the shapes of the power supply mechanism 1 and the atomizing mechanism 2 along the housing edges perpendicular to the axis can also be circular, square, or rounded square; the electrode plate 4 extends circumferentially along the second end face 20. Unlike the straight extension scheme, the electrode plate 4 can also bend and extend along the edge of the second end face 20. This method can further improve the assembly angle between the atomizing mechanism 2 and the power supply mechanism 1, and can achieve mutual alignment between the atomizing mechanism 2 and the power supply mechanism 1 at more angles.
[0055] In some optional embodiments, to stabilize the contact-type electrical connection between the electrode contact 31 and the electrode plate 4, the electrode contact 31 is an elastic conductive probe, which protrudes from the magnetic attractor 32 in its natural state. The elastic conductive probe contains an elastic component that can generate elastic potential energy under pressure and drive the elastic conductive probe to abut against the electrode plate 4, thereby preventing the electrode contact 31 and the electrode plate 4 from being tightly connected to each other when the atomizing mechanism 2 and the power supply mechanism 1 are assembled.
[0056] In some alternative embodiments, during the process of heating the aerosol matrix to generate an aerosol, the atomizing device often needs to provide an air intake channel to allow outside air to enter, heat the aerosol matrix, mix it with the air, and then discharge it. When the atomizing mechanism 2 and the power supply mechanism 1 are assembled and connected, in order to maintain the seal of other parts, especially in the assembly area of the atomizing mechanism 2 and the power supply mechanism 1, the first end face 10 and / or the second end face 20 can also be provided with raised ribs 11 surrounding the electrode plate 4, the electrode contact 31, and the magnetic attractor 32. The ribs 11 contact the opposite end face to seal the gap between the first end face 10 and the second end face 20. In other words, the ribs 11 are essentially enclosed around their respective end faces. With this structure, when the atomizing mechanism 2 and the power supply mechanism 1 are connected, the ribs 11 enclose the electrode contact 31, the magnetic attractor 32, and the electrode plate 4, thus effectively achieving a seal. Furthermore, to simplify the sealing structure, the rib 11 is located at the edge of the gap between the first end face 10 and the second end face 20. To ensure a good seal, the rib 11 can be made of an elastic material. The rib 11, made of elastic material, can achieve tight contact with the limiting groove 21 on the other end face through elastic deformation, thus sealing the internal space and preventing leakage of the aerosol matrix. In addition, in this embodiment, the first end face 10 and the second end face 20 can also be positioned by the positional cooperation between the limiting groove 21 and the rib 11, preventing misalignment between the atomizing mechanism 2 and the power supply mechanism 1 in the atomizing device.
[0057] In some alternative embodiments, please refer to Figure 11 To maintain the seamless appearance of the atomizing device, it may also include a housing 5, with an accommodating space 50 formed within it. The housing 5 has an opening 51 for guiding the power supply mechanism 1 and the atomizing mechanism 2 into the accommodating space 50. The power supply mechanism 1 is disposed within the accommodating space 50, and the atomizing mechanism 2 is at least partially disposed within the accommodating space 50. By providing the housing 5 with the opening 51, the power supply mechanism 1 and the atomizing mechanism 2 can be sequentially placed into the accommodating space 50. The power supply mechanism 1 can be directly and fixedly disposed within the accommodating space 50, for example, by means of snap-fit, adhesive, or interference fit. The atomizing mechanism 2, however, can be detachably connected to both the housing 5 and the power supply mechanism 1. This allows for convenient replenishment of the aerosol matrix in the atomizing mechanism 2 after use, or for maintenance of the atomizing mechanism 2 through disassembly, or for direct replacement with a new atomizing mechanism 2.
[0058] This application provides an atomizing device. Since the electrode sheet 4 covers the electrode contact 31 and the magnetic suction member 32, the electrode sheet 4 has both magnetic suction and electrical connection functions. While connecting with the magnetic suction member 32 through magnetic suction, the electrode contact 31 also directly forms an electrical connection with the electrode sheet 4, thereby effectively reducing the time required for alignment and improving the user experience.
[0059] The above examples illustrate this application only to aid understanding and are not intended to limit its scope. Those skilled in the art to which this application pertains can make various simple deductions, modifications, or substitutions based on the ideas presented.
Claims
1. An atomizing device, characterized in that, It includes a power supply mechanism and an atomizing mechanism, which are arranged opposite to each other and are detachably connected; The power supply mechanism and the atomizing mechanism each have a first end face and a second end face arranged opposite to each other along the arrangement direction; the atomizing device further includes two electrode plates, two electrode contacts, and two magnetic suction components. One electrode contact is arranged adjacent to the magnetic suction component and cooperates with one electrode plate. The coverage area of the electrode plate covers at least the adjacent electrode contact and the magnetic suction component simultaneously. One electrode plate is disposed on one of the first end face and the second end face, and the electrode contact and the magnetic suction component that cooperate with it are disposed on the other end face of the second end face and the first end face opposite to the electrode plate. The magnetic suction component is magnetically connected to the electrode plate, and the electrode contact and the electrode plate are in contact with each other and conduct electricity under the action of the magnetic connection.
2. The atomizing device as described in claim 1, characterized in that, Two electrode plates are simultaneously disposed on one of the first end face and the second end face, and two electrode contacts and the magnetic attractor are simultaneously disposed on the other of the first end face and the second end face, with the electrode contacts and the magnetic attractor arranged at intervals around the center point of their respective end faces.
3. The atomizing device as described in claim 2, characterized in that, The two electrode plates are respectively a first electrode plate and a second electrode plate, the two electrode contacts are respectively a first electrode contact and a second electrode contact, and the two magnetic suction components are respectively a first magnetic suction component and a second magnetic suction component. The outline shapes of the first end face and the second end face are respectively centrally symmetrical figures. The power supply mechanism and the atomizing mechanism have at least a first docking state and a second docking state. In the first docking state, the first electrode plate is magnetically connected to the first magnetic suction component and makes contact with the first electrode contact to conduct electricity, and the second electrode plate is magnetically connected to the second magnetic suction component and makes contact with the second electrode contact to conduct electricity. In the second docking state, the first electrode plate is magnetically connected to the second magnetic suction component and makes contact with the second electrode contact to conduct electricity, and the second electrode plate is magnetically connected to the first magnetic suction component and makes contact with the first electrode contact to conduct electricity.
4. The atomizing device as described in claim 3, characterized in that, The contours of the first end face and the second end face are rotationally symmetric figures. The first electrode contact and the second electrode contact are centrally symmetric about the center of their respective end faces. The first magnetic chuck and the second magnetic chuck are centrally symmetric about the center of their respective end faces. The first electrode sheet and the second electrode sheet are centrally symmetric about the center of their respective end faces. The power supply mechanism and the atomizing mechanism also have a third docking state and a fourth docking state. In the third docking state, the first electrode sheet is magnetically connected to the first magnetic chuck and makes contact with the second electrode contact to conduct electricity. The second electrode sheet is magnetically connected to the second magnetic chuck and makes contact with the first electrode contact to conduct electricity. In the fourth docking state, the first electrode sheet is magnetically connected to the second magnetic chuck and makes contact with the first electrode contact to conduct electricity. The second electrode sheet is magnetically connected to the first magnetic chuck and makes contact with the second electrode contact to conduct electricity.
5. The atomizing device as described in claim 2, characterized in that, Two electrode plates are disposed on the second end face, and two electrode contacts and two magnetic attractors are disposed on the first end face.
6. The atomizing device as described in claim 5, characterized in that, The first end face has a plurality of protrusions arranged around its center, the two electrode contacts and the magnetic attractor are disposed on the protrusions, and each of the protrusions surrounds the central area of the first end face to form an air intake groove; the second end face is provided with an air intake in the area opposite to the air intake groove.
7. The atomizing device as described in claim 2, characterized in that, The electrode plates extend in a straight line perpendicular to the arrangement direction, and the extension directions of the two electrode plates are parallel to each other.
8. The atomizing device as described in claim 2, characterized in that, The electrode contact is an elastic conductive probe, which protrudes from the magnetic attractor in the arrangement direction in its natural state.
9. The atomizing device according to any one of claims 1-8, characterized in that, The second end face and / or the first end face are provided with raised ribs that surround the electrode sheet, the electrode contact and the magnetic attractor therein, and the ribs contact the opposite end face to seal the gap between the first end face and the second end face.
10. The atomizing device as described in claim 9, characterized in that, The reinforcing rib is located at the edge of the gap; and / or, The ribs are components made of elastic material.