Atomization device replenishment device, atomizer replenishment system, and atomization device replenishment system

By integrating pumping and power supply components into the atomizing equipment replenishment device, the problems of inconvenient liquid filling and difficulty in simultaneous charging of existing atomizing equipment are solved, realizing automated liquid replenishment and charging, improving ease of use and reducing the risk of leakage.

CN224483039UActive Publication Date: 2026-07-14HG INNOVATION LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HG INNOVATION LTD
Filing Date
2025-05-23
Publication Date
2026-07-14

AI Technical Summary

Technical Problem

Existing atomizing devices are inconvenient to fill with liquid, making it difficult to do so simultaneously with charging. They lack ease of use and are prone to leakage, which affects the user experience.

Method used

Design a replenishment device for atomizing equipment, integrating a pumping component and a power supply component. The device enables automated connection between the atomizing matrix replenishment container and the atomizing equipment, as well as charging of the power supply unit, through a base. This simplifies the structure and supports simultaneous replenishment and charging.

Benefits of technology

It enables automated liquid replenishment and charging of atomizing devices, simplifies the operation process, reduces the risk of leakage, and improves ease of use and user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of atomization equipment, and provides an atomization equipment supplementing device, an atomizer supplementing system and an atomization equipment supplementing system. The atomization equipment supplementing device comprises a base, a pumping assembly and a power supply assembly. The base is provided with a first assembly area for connecting an atomization substrate supplementing container, a second assembly area for connecting at least part of the atomization equipment and a third assembly area for connecting a power supply device. The pumping assembly can establish a liquid flow path between the atomization substrate supplementing container and the atomization equipment, so that the atomization substrate in the atomization substrate supplementing container can be delivered into the atomization equipment. The power supply assembly can be electrically connected with the power supply device. The technical scheme of the application integrates the functions of liquid supplementing and charging of the atomization equipment, reduces the number of auxiliary equipment, and is more flexible and convenient to use. The user does not need to manually supplement the liquid, so that the atomization equipment does not need to retain the aesthetic design, a liquid absorbing cotton with a larger size can be arranged, the possibility of liquid leakage of the atomizer is correspondingly reduced, and the use experience is improved.
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Description

Technical Field

[0001] This application relates to the field of atomization equipment technology, specifically to an atomization equipment replenishment device, an atomizer replenishment system, and an atomization equipment replenishment system. Background Technology

[0002] Currently, most common liquid-filled nebulizers are equipped with a filling port. When the internal nebulizing medium runs out, users can refill it by connecting a medium refill bottle to the filling port. These devices usually also come with a dedicated charger to power the device. However, the filling process in existing nebulizers is typically manual, requiring users to fill the container themselves. This process is prone to leakage, making it inconvenient and impacting the user experience. Furthermore, it's difficult to simultaneously fill the container while it's charging, resulting in a lack of integration between charging and filling, and ultimately, insufficient ease of use. Utility Model Content

[0003] In order to solve at least one of the technical problems in the related technology, such as inconvenient liquid injection operation of atomizing equipment, difficulty in simultaneous liquid injection and charging, insufficient convenience, and poor user experience, this application provides an atomizing equipment replenishment device, an atomizer replenishment system, and an atomizing equipment replenishment system.

[0004] One embodiment of this utility model provides an atomizing device replenishment device, comprising: a base having a first assembly area, a second assembly area, and a third assembly area, the first assembly area for connecting an atomizing matrix replenishment container, the second assembly area for connecting at least a portion of the atomizing device, and the third assembly area for connecting a power supply device for the atomizing device; a pumping assembly disposed within the base, the pumping assembly being configured to establish a liquid flow path between the atomizing matrix replenishment container and the atomizing device, and capable of delivering the atomizing matrix in the atomizing matrix replenishment container to the atomizing device; and a power supply assembly disposed within the base, the power supply assembly being configured to be electrically connected to the power supply device to charge the power supply device.

[0005] According to another embodiment of the present invention, the first assembly area, the second assembly area and the third assembly area are all provided with slots, and each slot is provided with a slot connection structure.

[0006] According to another embodiment of the present invention, the second assembly area and the third assembly area are adjacent to and interconnected to form a complete machine slot, which is used for inserting the complete atomizing device and connecting it to the complete machine slot.

[0007] Furthermore, the first assembly area and the complete machine slot are located on the same side of the base; or, the first assembly area and the complete machine slot are located on opposite sides of the base.

[0008] According to another embodiment of the present invention, the third assembly area has a charging interface, which is electrically connected to the power supply component and can be electrically connected to the power supply device; and / or, the base has an electrical connection interface, which is electrically connected to the power supply component and is configured to be electrically connected to an external power source.

[0009] According to another embodiment of the present invention, the first assembly area has a liquid inlet interface for connecting an atomizing matrix replenishment container, and the second assembly area has a liquid outlet interface for connecting an atomizing device; the pumping assembly includes: a pump body, the pump body having a liquid inlet pipe and a liquid outlet pipe, the liquid inlet pipe being connected to the liquid inlet interface, and the liquid outlet pipe being connected to the liquid outlet interface; and a pumping control module, the pumping control module being electrically connected to the pump body to control the operation of the pump body.

[0010] According to another embodiment of the present invention, the atomizing device replenishment device further includes: an atomizing matrix replenishment container, which is used to contain the atomizing matrix, and one end of the atomizing matrix replenishment container has a liquid supply interface, which is configured to be connected to a pumping component to replenish the atomizing matrix to the atomizing device through the pumping component.

[0011] According to another embodiment of this application, the liquid inlet interface has an interface member, the surface of which has a first marking structure. The first marking structure is a through structure and is connected to the liquid inlet pipeline. The liquid supply interface has a sealing member, the surface of which has a second marking structure. The shape and size of the second marking structure correspond to the first marking structure. The second marking structure is configured to dock with the first marking structure and be opened by the first marking structure to connect the liquid supply interface to the liquid inlet pipeline.

[0012] According to another embodiment of this application, the second marking structure includes a socket structure, the inner contour of which is adapted to the outer contour of the first marking structure, and the socket structure has a socket sealing film; wherein the socket structure is adapted for insertion of the first marking structure, and the socket sealing film can be punctured by the first marking structure.

[0013] According to another embodiment of the present invention, the second marking structure includes a socket structure, the inner contour of which is adapted to the outer contour of the first marking structure, and the socket structure has multiple valve structures, which block the socket structure in their natural state; wherein, the socket structure is suitable for the insertion of the first marking structure, and the valve structures can release the blocking of the socket structure under the push of the first marking structure.

[0014] According to another embodiment of the present invention, the liquid inlet interface has an interface component, the surface of which has a first marking structure. The first marking structure is a through structure and is connected to the liquid inlet pipeline. The liquid supply interface has a sealing component, the surface of which has a second marking structure. The surface of the second marking structure is a reflective surface, and the area on the sealing component surrounding the second marking structure is a light-transmitting area. The liquid inlet interface is provided with a photodetector, which is used to emit a preset wavelength of identification light to the second marking structure and receive the identification light reflected by the second marking structure.

[0015] According to another embodiment of the present invention, the outer contour of the first marking structure is arranged in the shape of the letter "ELF"; the second marking structure is a socket structure with an inner contour in the shape of the letter "ELF". The shape and size of the inner contour of the socket structure are the same as the outer contour of the first marking structure, and the first marking structure can be inserted and connected.

[0016] One embodiment of this utility model provides an atomizer replenishment system, including: an atomizer replenishment device as described in any of the above embodiments; and an atomizer having a liquid storage chamber and a replenishment interface communicating with the liquid storage chamber. The atomizer can be connected to a second assembly area of ​​the atomizer replenishment device, and the replenishment interface can be connected to a pumping assembly. The pumping assembly is used to pump an atomizing matrix into the liquid storage chamber, and the atomizer is used to heat the atomizing matrix to generate an aerosol.

[0017] According to another embodiment of the present invention, the atomizer also has a nozzle structure, the nozzle structure and the liquid replenishment interface are located at opposite ends of the liquid storage chamber, and the inner wall surface of the atomizer at the end away from the nozzle structure is provided with a liquid suction structure.

[0018] In another embodiment of the present invention, an atomizing device replenishment system is provided, comprising: an atomizing device replenishment device as described in any of the above embodiments; and an atomizing device, the atomizing device including a detachably connected atomizer and a power supply device; the power supply device is configured to be connected to a third assembly area of ​​the atomizing device replenishment device and electrically connected to a power supply assembly to charge the power supply device through the power supply assembly.

[0019] Correspondingly, through structural improvements and optimizations, the power supply for the atomizing device can be charged simultaneously with the liquid replenishment, reducing auxiliary equipment, simplifying the overall structure, and making it more flexible and convenient to use. Moreover, automated liquid replenishment can be achieved using the pumping component, eliminating the need for manual replenishment by the user. This eliminates the need for aesthetically pleasing design elements such as open reservoirs or small absorbent cotton, allowing for the use of larger absorbent cotton, which reduces the likelihood of leakage. Even minor leaks are less noticeable to the user, minimizing the impact on the atomizing device's use and improving the user experience. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of a supplementary device for an atomizing device in one embodiment of this application;

[0021] Figure 2 This is a perspective view of a supplementary device for an atomizing device in one embodiment of this application;

[0022] Figure 3 This is a side view of a supplementary device for an atomizing device in one embodiment of this application;

[0023] Figure 4 This is a schematic diagram of a pumping assembly in one embodiment of this application;

[0024] Figure 5 This is a schematic diagram of a supplementary device for an atomizing device in another embodiment of this application;

[0025] Figure 6 This is a schematic diagram of an atomizing matrix replenishment container in one embodiment of this application;

[0026] Figure 7 This is a schematic diagram of a portion of the liquid inlet interface in one embodiment of this application;

[0027] Figure 8 This is a schematic diagram showing the docking state of the liquid inlet and liquid supply interface in one embodiment of this application;

[0028] Figure 9 This is a schematic diagram of the liquid inlet interface and the mismatched interface structure in one embodiment of this application;

[0029] Figure 10 This is a schematic diagram of a portion of the liquid supply interface in another embodiment of this application;

[0030] Figure 11 This is a schematic diagram showing the docking state of the liquid inlet and liquid supply interface in another embodiment of this application;

[0031] Figure 12 This is a schematic diagram of the atomizing matrix replenishment container and the photodetector in another embodiment of this application;

[0032] Figure 13 This is a schematic diagram of an atomizer replenishment system in one embodiment of this application;

[0033] Figure 14 This is a schematic diagram of the internal structure of an atomizing device in one embodiment of this application;

[0034] Figure 15 This is a schematic diagram of a supplementary system for an atomizing device in one embodiment of this application.

[0035] In the above figures, arrow F1 indicates the first direction, arrow F2 indicates the second direction, and arrow F3 indicates the third direction; the dashed box indicates the schematic line of the obscured internal structure.

[0036] Explanation of reference numerals in the attached figures:

[0037] 100 Atomizing equipment replenishment device; 1 base, 11 first assembly area, 111 first slot, 112 liquid inlet interface, 1121 interface component, 1122 first identification structure, 1123 photodetector, 12 second assembly area, 121 second slot, 122 liquid outlet interface, 13 third assembly area, 131 third slot, 132 charging interface, 14 complete machine slot, 151 electrical connection interface, 152 display, 153 slot connection structure, 2 pumping assembly, 21 pump body, 211 liquid inlet pipeline, 212 liquid outlet pipeline, 22 pumping control module, 3 power supply assembly, 4 atomizing matrix replenishment container, 41 liquid supply interface, 411 sealing component, 4111 light-transmitting area, 412 second identification structure, 4121 socket structure, 4122 socket sealing film, 4123 valve structure, 421 non-matching interface structure;

[0038] 500 Atomizing device; 510 Atomizer; 511 Liquid storage tank; 512 Liquid replenishment interface; 513 Nozzle structure; 514 Atomizing core; 515 Liquid suction structure; 520 Power supply device; 521 Power supply housing; 522 Battery; 523 Electronic control board. Detailed Implementation

[0039] 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.

[0040] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments, and the operational steps involved in each embodiment can also be rearranged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for clearly describing a particular embodiment and do not imply that they represent the necessary components and / or order.

[0041] 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).

[0042] The atomizing equipment replenishment device provided in this application is an integrated charging and liquid replenishment device that can be used with an atomizer or a complete atomizing equipment. By setting a first assembly area, a second assembly area, and a third assembly area on the base to respectively accommodate the atomizing matrix replenishment container, the atomizer of the atomizing equipment, and the power supply device, liquid replenishment can be performed simultaneously with charging.

[0043] The following describes some embodiments of the atomizing device replenishment device, atomizer replenishment system, and atomizing device replenishment system provided in this application, with reference to the accompanying drawings.

[0044] An embodiment of the first aspect of this application provides an atomizing device replenishment device 100, such as... Figure 1 As shown, the atomizing device replenishment device 100 includes a base 1, a pumping assembly 2, and a power supply assembly 3. The base 1 is the base structure of the atomizing device replenishment device 100, and both the pumping assembly 2 and the power supply assembly 3 are disposed within the base 1. The base 1 is provided with a first assembly area 11, a second assembly area 12, and a third assembly area 13, which can be used in conjunction with the atomizing device and the atomizing matrix replenishment container 4. The atomizing device includes an atomizer and a power supply device. The atomizing matrix replenishment container 4 can be connected to the first assembly area 11 and connected to the pumping assembly 2, while at least a portion of the atomizing device can be connected to the second assembly area 12 and connected to the other end of the pumping assembly 2. When the pumping assembly 2 is working, it can pump the atomizing matrix stored in the atomizing matrix replenishment container 4 into the atomizing device, realizing the replenishment operation of the atomizing device. The power supply device of the atomizing device can be connected to the third assembly area 13 of the base 1 and electrically connected to the power supply assembly 3, so that the power supply assembly 3 can charge the power supply device.

[0045] In practical applications, the atomizer and power supply of the atomizing device can be simultaneously assembled in the corresponding assembly area on the base 1, thereby enabling simultaneous liquid replenishment and charging operations. When the atomizer and power supply of the atomizing device are detachably connected assembly structures, the atomizer can be connected to the second assembly area 12 of the base 1 for liquid replenishment, or the power supply can be connected to the third assembly area 13 of the base 1 for charging.

[0046] It is understandable that the existing charging devices for atomizing equipment can only perform a single charging function, while refilling requires manual operation by the user or the configuration of a separate refilling device. Users need to configure a lot of auxiliary equipment, and charging and refilling cannot be performed simultaneously, making it inconvenient to use.

[0047] The atomizer replenishment device in this embodiment integrates liquid replenishment and charging functions through structural improvements and optimizations. It can simultaneously replenish the liquid and charge the power supply of the atomizer, reducing auxiliary equipment, simplifying the overall structure, and making it more flexible and convenient to use. Furthermore, it allows for automated liquid replenishment using a pump assembly, eliminating the need for manual replenishment by the user. This frees up aesthetically pleasing design elements such as open reservoirs or small absorbent cotton, allowing for the use of larger absorbent cotton, which reduces the likelihood of leakage. Even minor leaks are less noticeable to the user, minimizing the impact on the atomizer's usability and improving the user experience.

[0048] In one embodiment, such as Figure 1 and Figure 2 As shown, the first assembly area 11, the second assembly area 12, and the third assembly area 13 all have slots, for example... Figure 2 The diagram shows a first slot 111, a second slot 121, and a third slot 131, each equipped with a slot connection structure 153 to secure the atomizing matrix replenishment container 4 and the atomizing device, respectively. For example, the atomizing matrix replenishment container 4 can be installed in the first slot 111, the atomizer of the atomizing device can be installed in the second slot 121, and the power supply device of the atomizing device can be installed in the third slot 131. Alternatively, parts of the atomizing matrix replenishment container 4 and parts of the atomizing device can be installed in their respective slots. To facilitate the assembly of the atomizing device and the atomizing matrix replenishment container 4, the slots can be designed as follows: Figure 2 The structure shown has openings on both sides (e.g., one side in the second direction and one side in the third direction). Of course, it is also possible to use an opening on only one side (e.g., a single opening in one of the first, second, or third directions) as needed. As long as it meets the assembly requirements of the atomizing device and the atomizing matrix replenishment container 4, it can be set according to the actual situation.

[0049] In one embodiment, such as Figure 1 and Figure 2In the example shown, the second assembly area 12 and the third assembly area 13 are arranged adjacently and are connected, so that the second slot 121 and the third slot 131 combine to form the complete unit slot 14, which is adapted to the overall structure of the atomizing device. In use, the entire atomizing device can be assembled into the complete unit slot 14. This is suitable for both integrated atomizing devices and detachable split-type atomizing devices, without the need to disassemble and assemble the atomizer and power supply unit separately, making it more flexible and convenient to use.

[0050] In one embodiment, such as Figure 1 and Figure 2 In the example shown, the first assembly area 11 and the assembly slot 14 are located on opposite sides of the base 1, for example... Figure 2 The two sides shown in the first direction can separate the atomizing device and the atomizing matrix replenishment container 4 from each other to avoid mutual interference. On the other hand, the space between the first assembly area 11 and the machine slot 14 can be used to arrange the pumping component 2, which is beneficial to improve space utilization and make the atomizing device replenishment device 100 more compact in structure, making it easier to use and carry.

[0051] In one embodiment, the first assembly area 11 and the assembly slot 14 may also be located on the same side of the base 1, for example... Figure 2 As shown in the figure, on the same side in the third direction, the area where the slot is set in the base 1 can be located on the same side, thereby reserving more space in other areas of the base 1 other than the slot, so as to reserve enough space for the pumping assembly 2 and the power supply assembly 3, and at the same time simplifying the assembly operation of the pumping assembly 2 and the power supply assembly 3, which is conducive to improving production efficiency.

[0052] In one embodiment, such as Figure 1 As shown, a charging interface 132 is provided in the third assembly area 13 on the base 1. The charging interface 132 is electrically connected to the power supply component 3. When the power supply device of the atomizing device is assembled in the third assembly area 13, the power supply device can be electrically connected to the charging interface 132 to charge the power supply device through the power supply component 3. The charging structure can be set on the side wall or bottom wall of the third slot 131, depending on the structure of the power supply device.

[0053] In one embodiment, such as Figure 2As shown, the base 1 is also provided with an electrical connection interface 151, which is electrically connected to the power supply component 3. In use, the electrical connection interface 151 can also be directly connected to an external power source using a power cord to charge the power supply device of the atomizing device directly through the external power source. This is suitable for use in situations where indoor power supply is more convenient. Alternatively, the power supply component 3 can be charged in advance through an external power source. When the atomizing device needs to be charged during outdoor use, the power supply device of the atomizing device can be connected to the third slot 131 to charge the power supply device through the power supply component 3. This allows the power supply device of the atomizing device to be replenished with power at any time to meet the user's usage needs.

[0054] In one embodiment, such as Figure 1 and Figure 4 As shown, the pumping assembly 2 includes a pump body 21 and a pumping control module 22. The pump body 21 is used to pump the atomized matrix, and the pump body 21 has an inlet pipe 211 and an outlet pipe 212. Correspondingly, the first assembly area 11 of the base 1 is provided with an inlet interface 112, which is connected to the inlet pipe 211 of the pump body 21, and is used to connect the atomized matrix replenishment container 4. The second assembly area 12 is provided with an outlet interface 122, which is connected to the outlet pipe 212 of the pump body 21, and is used to connect the atomizing device. The pumping control module 22 is electrically connected to the pump body 21 to control the working state of the pump body 21. When the atomizing matrix replenishment container 4 and the atomizing device are respectively connected to the corresponding assembly areas, the pumping control module 22 can control the pump body 21 to start according to the user's needs, so as to pump the atomizing matrix in the atomizing matrix replenishment container 4 to the atomizing device.

[0055] It should be noted that in practical applications, the pumping control module 22 can be set with corresponding operating structures (control buttons) to facilitate user input of operation commands to control the start and stop of the pump body 21; or, the pumping volume of the pump body 21 each time it starts working can be set. Specifically, a corresponding flow meter can be set in the pump body 21, and the pump body 21 will automatically stop working after the preset pumping volume is reached.

[0056] In one embodiment, such as Figure 5 As shown, the atomizing device replenishment device 100 also includes an atomizing matrix replenishment container 4. The shape of the atomizing matrix replenishment container 4 is adapted to the first assembly area 11 of the base 1, and the atomizing matrix replenishment container 4 is used to contain the atomizing matrix. One end of the atomizing matrix replenishment container 4 has a liquid supply interface 41. When the atomizing matrix replenishment container 4 is connected to the first assembly area 11, the liquid supply interface 41 can be connected to the pumping assembly 2 so that when the pumping assembly 2 is working, the atomizing matrix in the atomizing matrix replenishment container 4 is pumped to the atomizing device to realize the liquid replenishment operation.

[0057] In practical applications, the atomizing matrix replenishment container 4 can specifically adopt a bottle-shaped structure for easy storage and carrying; the liquid supply interface 41 can be located on the side wall of the atomizing matrix replenishment container 4, for example... Figure 6 The example in the text is, of course, the liquid supply interface 41 can also be set in other locations of the atomizing matrix replenishment container 4 as needed.

[0058] In one embodiment, such as Figure 3 , Figure 6 and Figure 7 As shown, the liquid inlet 112 in the first assembly area 11 has an interface component 1121. The surface of the interface component 1121 is provided with a first marking structure 1122. The first marking structure 1122 is a through structure and is connected to the liquid inlet pipe 211 of the pumping assembly 2. Correspondingly, the liquid supply interface 41 of the atomizing matrix replenishment container 4 is provided with a sealing component 411. The surface of the sealing component 411 is provided with a second marking structure 412, and the shape and size of the second marking structure 412 are the same as those of the first marking structure 1122. In the initial state, the second marking structure 412 is in a closed state, that is, the liquid supply interface 41 is completely closed by the sealing component 411. When the atomizing matrix replenishment container 4 is connected to the first assembly area 11, the liquid supply interface 41 is connected to the liquid inlet interface 112, the second marking structure 412 can be connected to the first marking structure 1122, and the second marking structure 412 can be opened by the first marking, so that the liquid supply interface 41 is connected to the liquid inlet pipe 211. At this time, the atomizing matrix in the atomizing matrix replenishment container 4 can flow to the pump body 21 through the liquid inlet pipe 211, and enter the liquid outlet pipe 212 under the action of the pump body 21, and then flow into the liquid storage chamber 511 of the atomizer 510.

[0059] By setting a first identification structure 1122 and a second identification structure 412 with the same shape and size, only the atomizing matrix replenishment container 4 that matches the liquid inlet interface 112 can be connected and replenished. When other replenishment products are loaded into the first assembly area 11 of the atomizing device replenishment device 100 of this application, they cannot be correctly connected or communicated with the liquid inlet interface 112, thereby identifying that the replenishment product is not compatible with the atomizing device replenishment device 100 of this application and may be a counterfeit product. Users can be informed of this situation in time and take corresponding measures to prevent or reduce the replenishment of the atomizing matrix of counterfeit products into the atomizing device and affect the user experience.

[0060] It should be noted that the first identifier structure 1122 and the second identifier structure 412 are not limited to... Figure 3 , Figure 5 and Figure 6The letter-shaped structure can also be in the form of numbers or text, or it can also be in the form of a graphic with a specific structure, so as to meet the requirement that the first identification structure 1122 can be connected and matched with the second identification structure 412, but it is difficult to connect and match with the interface of other fluid replacement products.

[0061] In one embodiment, such as Figure 6 and Figure 8 As shown, on the liquid supply interface 41 of the atomizing matrix replenishment container 4, the second marking structure 412 includes a socket structure 4121 and a socket sealing film 4122. The socket sealing film 4122 is disposed inside the socket structure 4121 and closes the socket structure 4121; the inner contour of the socket structure 4121 is adapted to the outer contour of the first marking structure 1122. When the liquid supply interface 41 is connected to the liquid inlet interface 112, the first marking structure 1122 of the liquid inlet interface 112 can extend into the socket structure 4121 of the second marking structure 412 and puncture the socket sealing film 4122 inside the socket structure 4121, such as... Figure 8 The state shown in the diagram allows the second identification structure 412 to open, enabling the liquid supply interface 41 to connect with the liquid inlet pipe 211, allowing the atomized matrix in the atomized matrix replenishment container 4 to flow into the liquid inlet pipe 211. When other replenishment products are loaded into the first assembly area 11, because their interfaces are non-matching interface structures 421, the first identification structure 1122 cannot connect to the non-matching interface structure 421 (e.g., ...). Figure 9 (As shown in the diagram) or the first identifier structure 1122 and the non-matching interface structure 421 can only be partially connected, making it difficult to perform normal fluid replenishment operations, thus alerting the user.

[0062] It should be noted that in practical applications, the socket sealing film 4122 can be a plastic sealing film, rubber film or other structures; the inner wall surface of the socket structure 4121 can also be provided with a corresponding sealing structure (such as a sealing ring, silicone sealing gasket or the like) to play a sealing role when the first marking structure 1122 extends into the socket structure 4121 of the second marking structure 412, so as to prevent leakage of the atomized matrix.

[0063] In one embodiment, such as Figure 6 and Figure 10In the example, in the atomizing matrix replenishment container 4, the second identification structure 412 of the liquid supply interface 41 includes a socket structure 4121 and a valve structure 4123. There are multiple valve structures 4123, all disposed within the socket structure 4121. In the initial state, the multiple valve structures 4123 seal the socket structure 4121. When the valve structure 4123 is subjected to an external force, it can release the seal on the socket structure 4121, for example, by rotating or deforming relative to the socket structure 4121, thereby releasing the socket structure 4121 from its sealed state. When the atomizing matrix replenishment container 4 is inserted into the first assembly area 11, the liquid supply interface 41 mates with the liquid inlet interface 112. The first marking structure 1122 of the liquid inlet interface 112 extends into the insertion structure 4121 of the second marking structure 412, and exerts a thrust on the valve structure 4123, causing the valve structure 4123 to release the sealing state of the insertion structure 4121. Figure 11 In the state shown, the valve structure 4123 is flipped so that the liquid supply interface 41 is connected to the liquid inlet pipe 211 through the first identification structure 1122, so that the atomized matrix in the atomized matrix replenishment container 4 can flow into the liquid inlet pipe 211.

[0064] The valve structure 4123 selected in the above embodiments can be a silicone valve, and the shape of the valve structure 4123 can be as follows: Figure 10 and Figure 11 The rectangular structure shown can also be other shapes, such as trapezoids, triangles, circles, etc. The valve structure 4123 can specifically be an elastic structure. When the first identification structure 1122 separates from the second identification structure 412, the valve structure 4123 can return to its original shape under the action of elasticity, so as to close the insertion hole structure 4121 of the second identification structure 412 again.

[0065] In one embodiment, such as Figure 3 and Figure 12As shown, the liquid inlet 112 has an interface component 1121, the surface of which has a first marking structure 1122. The first marking structure 1122 is a through structure and is connected to the liquid inlet pipe 211. The liquid supply 41 has a sealing component 411, the surface of which has a second marking structure 412. The surface of the second marking structure 412 is a reflective surface, while the area around the second marking structure 412 on the sealing component 411 is a light-transmitting area 4111. Correspondingly, the liquid inlet 112 of the first assembly area 11 is provided with a photodetector 1123. The photodetector 1123 can emit a preset wavelength of identification light towards the second marking structure 412. The identification light is reflected by the second marking structure 412 and can be received by the photodetector 1123. When the atomizing matrix replenishment container 4 is inserted into the first assembly area 11, the second identification structure 412 aligns with the first identification structure 1122. Light emitted by the photodetector 1123 illuminates the sealing member 411. The light illuminating the second identification structure 412 is reflected back to the photodetector 1123 after being reflected by the reflective surface, while light illuminating the area surrounding the second identification structure 412 passes through normally without being reflected. The photodetector 1123 can identify that the second identification structure 412 and the first identification structure 1122 are matched by the light reflected back from the second identification structure 412. When other replenishment products are inserted into the first assembly area 11, the light emitted by the photodetector 1123 illuminates the interface of that replenishment product. Because this interface is a non-matching interface structure 421, the light reflection is abnormal and differs from the reflection of the second identification structure 412. The photodetector 1123 can identify that this replenishment product is an incompatible product (e.g., a counterfeit product).

[0066] In one specific example, a display 152 electrically connected to the light recognition device 1123 is provided on the base 1. The display 152 can display the recognition result of the light recognition device 1123 to remind the user in a visual way so that the user can notice it in time.

[0067] In one specific example, a sound output device electrically connected to the light recognition device 1123 can also be provided on the base 1, which can output sound prompt information corresponding to the recognition result of the light recognition device 1123 to remind the user.

[0068] Specifically, the light identifier 1123 can be an infrared light-emitting instrument that can emit infrared light; the light identifier 1123 can have a built-in identification module, which has pre-stored model data that matches the reflected light of the second identification structure 412, and can identify according to the actual light reflection situation, and display it through the display 152, or output corresponding sound prompt information through the sound output device.

[0069] In one embodiment, such as Figure 3 , Figure 6 and Figure 7 As shown, the first marking structure 1122 of the liquid inlet interface 112 is a through protrusion structure, and the outer contour of the first marking is in the shape of the letter "ELF". Correspondingly, the second marking structure 412 has a socket structure 4121, and the inner contour of the socket structure 4121 is in the shape of the letter "ELF". The shape and size of the inner contour of the socket structure 4121 are the same as the outer contour of the first marking structure 1122. The first marking structure 1122 can dock with the socket structure 4121 and extend into the socket structure 4121, so that the liquid supply interface 41 is connected to the liquid inlet interface 112 and the liquid inlet pipeline 211.

[0070] When in use, since the atomizing matrix replenishment container 4 and the base 1 are a matching structure, the first marking structure 1122 and the second marking structure 412 can be connected and cooperate. However, when other replenishment products that are not compatible with the base 1 are loaded into the atomizing equipment replenishment device 100 of this application, their interfaces do not match the first marking structure 1122 of the base 1, making it difficult to connect correctly. For example, when other replenishment products do not have letter markings on their interfaces that match the first marking structure 1122, the interface cannot connect with the liquid inlet interface 112 of the base 1; when other replenishment products have imitation marking structures on their interfaces, such as the letters "FLF", their shape, size, etc. are difficult to match with the first marking structure 1122 on the base 1, and they belong to the non-matching interface structure 421, which cannot be correctly connected; if the interface has the letters "ELE", then some of its structures may be able to connect with the first marking structure 1122, for example, the third letter "F" of the first marking structure 1122 may partially connect with the third letter "E" of the interface. When the atomizing matrix in the replenishment product flows to the liquid inlet interface 112, leakage may occur. Even if the interface of the replenishment product is also equipped with a sealing film or valve, it can only partially connect with the first marking structure 1122, affecting the normal liquid guiding speed, which is significantly different from the replenishment operation of the atomizing matrix replenishment container 4 of this application.

[0071] An embodiment of the second aspect of this application provides an atomizer replenishment system, such as... Figure 13As shown, the device includes the atomizing device replenishment device 100 and the atomizer 510 in any of the embodiments of the first aspect described above. The atomizer 510 has a liquid storage chamber 511 inside, which is used to store the atomizing matrix. The atomizer 510 can heat the atomizing matrix in the liquid storage chamber 511 to generate an aerosol from the atomizing matrix. The atomizer 510 is provided with a liquid replenishment interface 512 communicating with the atomization chamber. The shape and size of the atomizer 510 are adapted to the second assembly area 12 of the atomization equipment replenishment device 100. In use, the atomizer 510 can be connected to the second assembly area 12 so that the liquid replenishment interface 512 can be connected to the pumping component 2 of the atomization equipment replenishment device 100. When the atomization matrix replenishment container 4 is loaded into the first assembly area 11 of the atomization equipment replenishment device 100, the pumping component 2 can pump the atomization matrix in the atomization matrix replenishment container 4 to the liquid storage chamber 511 of the atomizer 510 to realize the liquid replenishment operation of the atomizer 510. In this embodiment, the atomizer 510 can be part of the atomization equipment and can be assembled with the matching power supply device 520 to form a complete atomization equipment.

[0072] The atomizer replenishment system in this embodiment enables automated liquid replenishment of the atomizer 510 via the atomizer replenishment device 100, eliminating the need for manual replenishment. This eliminates the need to retain the existing atomizer's structural design for aesthetic purposes (such as open-cell design, small absorbent cotton design, etc.), thereby reducing the possibility of atomizer leakage.

[0073] In one embodiment, such as Figure 13 , Figure 14 As shown, the atomizer 510 also has a mouthpiece structure 513 to facilitate inhalation. The atomizer 510 contains an atomizing core 514, which heats up when powered on to heat the atomizing matrix in the liquid reservoir 511, causing the atomizing matrix to atomize and generate an aerosol. The atomizer 510 also has a corresponding airflow structure that allows external air to enter and mix with the generated aerosol, which then flows to the mouthpiece for inhalation.

[0074] In the atomizer 510, the nozzle structure 513 and the liquid replenishment interface 512 are located at opposite ends of the liquid storage chamber 511. This maintains a certain distance between the liquid replenishment interface and the nozzle structure 513, creating spatial isolation and preventing the atomized matrix at the liquid replenishment interface 512 from overflowing and contaminating the nozzle structure 513, thus improving the user experience. Specifically, the liquid replenishment interface 512 can be located on the bottom surface at the end furthest from the nozzle structure 513, or on the side wall at the end furthest from the nozzle structure 513, depending on the specific structure and assembly requirements. It is understood that in existing atomizers capable of liquid replenishment, liquid is usually replenished directly through the nozzle structure 513, or a corresponding interface structure is provided next to the nozzle. After replenishment, the atomized matrix easily overflows and contaminates the nozzle structure 513, requiring users to clean it before vaping, resulting in a poor user experience. The liquid replenishment interface 512 in this application effectively alleviates the above problems.

[0075] In addition, such as Figure 14 In the example shown, a liquid-absorbing structure 515 is provided on the inner wall surface of the atomizer 510 at the end away from the nozzle structure 513. This structure is used to absorb condensate or atomizing matrix leaking from the liquid storage tank 511 within the atomizer 510, preventing leakage from the atomizer 510 to the outside. Since the atomizer replenishment system in this embodiment replenishes the atomizer 510, manual replenishment by the user is unnecessary. Therefore, the existing exposed tank design for aesthetic purposes is not required, allowing for a larger liquid-absorbing structure. Furthermore, the material selection for the liquid-absorbing structure does not need to consider aesthetic requirements; materials with strong absorbency, such as absorbent cotton, can be used.

[0076] Furthermore, the atomizer replenishment system in this application also has all the beneficial effects of the atomizer replenishment device in any of the embodiments of the first aspect described above, which will not be repeated here.

[0077] An embodiment of the third aspect of this application provides an atomizing device replenishment system, such as... Figure 15 As shown, the device includes the atomizing device replenishment device 100 and the atomizing device 500 as described in any of the embodiments of the first aspect above. The atomizing device 500 includes a detachably connected atomizer 510 and a power supply device 520; the power supply device 520 can supply power to the atomizer 510 so that the atomizer 510 can heat the atomizing matrix. The power supply device 520 can be connected to the third assembly area 13 of the atomizing device replenishment device 100 and electrically connected to the power supply component 3 of the atomizing device replenishment device 100, and the power supply component 3 charges the power supply device 520. The power supply device 520 can be installed separately in the third assembly area 13 for separate charging, or the power supply device 520 and the atomizer 510 can be assembled into the atomizing device 500, and then the entire device can be installed in the corresponding assembly area for simultaneous charging and replenishment.

[0078] In a specific example, such as Figure 14 and Figure 15 In the example, the atomizer 510 has a liquid storage chamber 511 inside, which is used to store the atomizing matrix. The atomizer 510 can heat the atomizing matrix in the liquid storage chamber 511 to generate an aerosol. The atomizer 510 is provided with a liquid replenishment interface 512 that communicates with the atomizing chamber, and the shape and size of the atomizer 510 are adapted to the second assembly area 12 of the atomizing device replenishment device 100. In use, the atomizer 510 can be connected to the second assembly area 12 so that the liquid replenishment interface 512 can be connected to the pumping component 2 of the atomizing device replenishment device 100. When the atomizing matrix replenishment container 4 is loaded into the first assembly area 11 of the atomizing device replenishment device 100, the pumping component 2 can pump the atomizing matrix in the atomizing matrix replenishment container 4 into the liquid storage chamber 511 of the atomizer 510.

[0079] A preferred embodiment of the atomization device replenishment system of this application is described below with reference to the accompanying drawings.

[0080] like Figure 1 , Figure 2 , Figure 14 and Figure 15 In the example, the atomization device replenishment system includes an atomization device replenishment device 100 and an atomization device 500. The atomization device 500 includes a detachably connected atomizer 510 and a power supply device 520; as shown... Figure 14 In the example, the atomizer 510 has a mouthpiece structure 513 at one end in the first direction, and the end of the atomizer 510 away from the mouthpiece structure 513 in the first direction is detachably connected to the power supply device 520. The atomizer 510 has an atomization chamber for storing the atomization matrix, and also has an atomizing core 514 and a corresponding airway structure. A large-sized liquid absorption structure 515 is provided on the inner wall of the end of the atomizer 510 away from the mouthpiece structure 513 in the first direction. The power supply housing 521 of the power supply device 520 has a battery 522 and an electronic control board 523 that are electrically connected to each other. The battery 522 is electrically connected to the atomizing core 514 of the atomizer 510 to supply power to the atomizing core 514, and the power supply status of the battery 522 is controlled by the electronic control board 523. The power supply housing 521 also has a corresponding electrical interface. The atomizer 510 has a liquid replenishment interface 512 on the side wall of the end away from the mouthpiece structure 513 in the first direction.

[0081] like Figures 1 to 5In the example, the atomizing device replenishment device 100 includes a base 1, a pumping assembly 2, a power supply assembly 3, and an atomizing matrix replenishment container 4. The base 1 is provided with a first assembly area 11, a second assembly area 12, and a third assembly area 13. In a second direction, the first assembly area 11 is located on one side of the base 1, and the second assembly area 12 and the third assembly area 13 are located on the other side of the base 1. Specifically, the first assembly area 11 includes a first slot 111, the second assembly area 12 includes a second slot 121, and the third assembly area 13 includes a third slot 131. The first slot 111 has a through structure on the side away from the second slot 121 in the second direction and on the side in the third direction. The second slot 121 and the third slot 131 have a through structure on the side away from the first slot 111 in the second direction and on the side in the third direction. The third slot 131 has a through structure with the second slot 121 in the first direction and is connected to the second slot 121 to form a complete machine slot 14. The first slot 111 is adapted to the atomizing matrix replenishment container 4, the second slot 121 is adapted to the atomizer 510, and the third slot 131 is adapted to the power supply device 520 of the atomizing device 500. Each of the first slot 111, second slot 121, and third slot 131 has a corresponding slot connection structure 153 (e.g., a snap-fit ​​structure) at its edge. The first slot 111 has a liquid inlet 112 on its side wall in the second direction, the second slot 121 has a liquid outlet 122 on its side wall in the second direction, and the third slot 131 has a charging interface 132 on its side wall in the second direction. An electrical connection interface 151 is provided on the outer wall of the base 1. This electrical connection interface 151 is electrically connected to the power supply component 3 and can be connected to an external power source to charge the power supply component 3 or directly charge the power supply device 520 of the atomizing device 500 via an external power source.

[0082] like Figures 1 to 5 As shown, the pumping assembly 2 and the power supply assembly 3 are housed within the base 1. The pumping assembly 2 includes a pump body 21 and a pumping control module 22. The pump body 21 is used to pump the atomized matrix and has an inlet pipe 211 and an outlet pipe 212. The inlet pipe 211 of the pump body 21 is connected to the inlet interface 112, and the outlet pipe 212 of the pump body 21 is connected to the outlet interface 122. The pumping control module 22 is electrically connected to the pump body 21 to control the operating status of the pump body 21. The power supply assembly 3 is electrically connected to the charging interface 132.

[0083] like Figure 3 , Figure 5 , Figure 6 and Figure 7In the example, the atomizing matrix replenishment container 4 is specifically in the form of a replenishment bottle, which stores the atomizing matrix inside. The atomizing matrix replenishment container 4 has a liquid supply interface 41 at one end in the second direction; when the atomizing matrix replenishment container 4 is connected to the first slot 111, the liquid supply interface 41 can be connected to the liquid inlet interface 112.

[0084] like Figures 5 to 11 In the example, the liquid inlet 112 has an interface member 1121. The surface of the interface member 1121 is provided with an outwardly protruding first marking structure 1122. The first marking structure 1122 is a through structure and is connected to the liquid inlet pipe 211 of the pumping assembly 2. The outer contour of the first marking is in the shape of the letter "ELF". Correspondingly, the liquid supply interface 41 of the atomizing matrix replenishment container 4 is provided with a sealing member 411. The surface of the sealing member 411 is provided with a second marking structure 412. The second marking structure 412 is specifically a socket structure 4121 with an inner contour shape of the letter "ELF". The shape and size of the second marking structure 412 are the same as those of the first marking structure 1122. A socket sealing membrane 4122 or multiple valve structures 4123 are provided inside the socket structure 4121 of the second marking structure 412. In the initial state, the socket sealing membrane 4122 or the valve structure 4123 closes the socket structure 4121, so that the liquid supply interface 41 is completely closed by the sealing member 411. When the atomizing matrix replenishment container 4 is assembled in the first slot 111, the liquid supply interface 41 is connected to the liquid inlet interface 112. The first marking structure 1122 of the liquid inlet interface 112 can extend into the insertion structure 4121 of the second marking structure 412 and puncture the insertion sealing film 4122 in the insertion structure 4121 (e.g., Figure 8 (as shown in the diagram), or push the valve structure 4123 within the socket structure 4121 to flip (as shown in the diagram). Figure 11 (as shown in the diagram) to release the blocking state of the socket structure 4121, so that the liquid supply interface 41 is connected to the liquid inlet pipe 211, and the atomized matrix in the atomized matrix replenishment container 4 can flow into the liquid inlet pipe 211.

[0085] In use, the power supply device 520 of the atomizing device 500 can be installed separately into the third slot 131 for charging. Alternatively, the atomizer 510 of the atomizing device 500 can be installed into the second slot 121, and the atomizing matrix replenishment container 4 can be installed into the first slot 111 for replenishment. Or, the entire atomizing device 500 can be installed into the slot 14 formed by the second slot 121 and the third slot 131, and the atomizing matrix replenishment container 4 can be installed into the first slot 111, while charging and replenishing the atomizing device 500 are performed simultaneously. When the liquid supply port 41 of the atomizing matrix replenishment container 4 is connected to the liquid inlet port 112 of the first slot 111, the first marking structure 1122 and the second marking structure 412 can cooperate with each other; however, when other replenishment products that are not compatible with the base 1 are installed in the first slot 111 for use, their interface is a non-matching interface structure 421, which does not match the first marking structure 1122 of the base 1 and is difficult to connect correctly, thereby preventing other products (such as counterfeit products) that are not compatible with the atomizing equipment replenishment device 100 from being used in the atomizing equipment replenishment device 100.

[0086] Furthermore, such as Figure 2 as well as Figure 12 In the example shown, the base 1 is also equipped with a display 152; the liquid inlet 112 is also equipped with an infrared-emitting light identifier 1123, which is electrically connected to the display 152. Correspondingly, on the liquid supply interface 41 of the atomizing matrix replenishment container 4, the surface of the second marking structure 412 of the sealing member 411 is a reflective surface, and the area around the second marking structure 412 on the sealing member 411 is a light-transmitting area 4111. When the liquid supply interface 41 is connected to the liquid inlet 112, the light identifier 1123 emits infrared light onto the sealing member 411. The infrared light emitted onto the second marking structure 412 is reflected by the reflective surface and received by the light identifier 1123, while the infrared light emitted into the area around the second marking structure 412 can pass through normally. The identification module of the light identifier 1123 can identify that the second marking structure 412 and the first marking structure 1122 are matched by the light reflected back from the second marking structure 412. When other replenishment products are loaded into the first assembly area 11, the photodetector 1123 emits infrared light towards the interface of the replenishment product. If the reflection of this light is abnormal, differing from that of the second identification structure 412, the photodetector 1123 can identify the replenishment product as incompatible (e.g., counterfeit). The identification result of the photodetector 1123 can be displayed on the display 152, and corresponding audio prompts can also be output via an audio output device to remind the user.

[0087] In addition, a communication module (such as a Bluetooth module) is also installed in the base 1. The communication module can communicate with the user's terminal device (such as a mobile phone, computer, etc.), and the user can obtain relevant data of the atomizing device supplement device 100 (including battery level, historical operation records, etc.) through the terminal device. When the atomizing device 500 is installed in the base 1, it can establish a communication connection with the communication module and can also synchronize the heating mode of the atomizing device 500. For example, when it is detected that the atomizing device 500 adopts a dual-coil Mesh atomizing component, the latest dual-coil Mesh heating strategy can be synchronized to the atomizing device 500, so that older products can be upgraded to the latest heating mode and improve the user experience. At the same time, the communication module can also synchronize safety policies such as child lock and safety protection to the atomizing device 500, such as automatically activating the child lock when not in use, or automatically disconnecting after accumulating a certain amount of inhalation (such as after 7 seconds), to further enhance the safety of use.

[0088] Furthermore, the atomization device replenishment system in this application also has all the beneficial effects of the atomization device replenishment device in any of the embodiments of the first aspect described above, which will not be repeated here.

[0089] 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. A replenishment device for an atomizing equipment, characterized in that, include: The base has a first assembly area, a second assembly area and a third assembly area, the first assembly area being used to connect an atomizing matrix replenishment container, the second assembly area being used to connect at least a portion of an atomizing device, and the third assembly area being used to connect a power supply device for the atomizing device. A pumping assembly disposed within the base, the pumping assembly being configured to establish a liquid flow path between the atomizing matrix replenishment container and the atomizing device, and capable of delivering the atomizing matrix in the atomizing matrix replenishment container to the atomizing device; And a power supply assembly disposed within the base, the power supply assembly being configured to be electrically connected to the power supply device to charge the power supply device.

2. The atomizing equipment replenishment device according to claim 1, characterized in that, The first assembly area, the second assembly area and the third assembly area all have slots, and each slot has a slot connection structure.

3. The atomizing equipment replenishment device according to claim 2, characterized in that, The second assembly area is adjacent to and connected to the third assembly area to form a complete unit slot, which is used for inserting the complete unit of the atomizing device and connecting it to the complete unit slot.

4. The atomizing equipment replenishment device according to claim 1, characterized in that, The third assembly area has a charging interface, which is electrically connected to the power supply assembly and can also be electrically connected to the power supply device; and / or, The base has an electrical connection interface that is electrically connected to the power supply assembly and is configured to be electrically connected to an external power source.

5. The atomizing equipment replenishment device according to any one of claims 1 to 4, characterized in that, The first assembly area has a liquid inlet for connecting to the atomizing matrix replenishment container, and the second assembly area has a liquid outlet for connecting to the atomizing device. The pumping assembly includes: The pump body has an inlet pipe and an outlet pipe, the inlet pipe is connected to the inlet interface, and the outlet pipe is connected to the outlet interface; And a pumping control module, which is electrically connected to the pump body to control the operation of the pump body.

6. The atomizing equipment replenishment device according to claim 5, characterized in that, Also includes: An atomizing matrix replenishment container is provided for containing atomizing matrix. One end of the atomizing matrix replenishment container has a liquid supply port configured to connect to the pumping assembly to replenish the atomizing matrix to the atomizing device via the pumping assembly.

7. The atomizing equipment replenishment device according to claim 6, characterized in that, The liquid inlet interface has an interface component, and the surface of the interface component has a first marking structure. The first marking structure is a through structure and is connected to the liquid inlet pipeline. The liquid supply interface has a sealing member, the surface of which has a second marking structure, and the shape and size of the second marking structure correspond to the first marking structure. The second marking structure is configured to dock with the first marking structure and open the first marking structure to connect the liquid supply interface to the liquid inlet pipeline.

8. The atomizing equipment replenishment device according to claim 7, characterized in that, The second identification structure includes a socket structure, the inner contour of which is adapted to the outer contour of the first identification structure, and the socket structure has a socket sealing film inside; The socket structure is adapted for insertion of the first marking structure, and the socket sealing film can be punctured by the first marking structure.

9. The atomizing equipment replenishment device according to claim 7, characterized in that, The second identification structure includes a socket structure, the inner contour of which is adapted to the outer contour of the first identification structure, and the socket structure has multiple valve structures, which seal the socket structure in a natural state. The insertion hole structure is adapted for insertion of the first marking structure, and the valve structure is capable of releasing the sealing of the insertion hole structure under the push of the first marking structure.

10. The atomizing equipment replenishment device according to claim 6, characterized in that, The liquid inlet interface has an interface component, and the surface of the interface component has a first marking structure. The first marking structure is a through structure and is connected to the liquid inlet pipeline. The liquid supply interface has a sealing element, and the surface of the sealing element has a second marking structure; The surface of the second marking structure is a reflective surface, and the area on the sealing member surrounding the second marking structure is a light-transmitting area; The liquid inlet is equipped with a photodetector, which is used to emit a preset wavelength of identification light to the second identification structure and receive the identification light reflected by the second identification structure.

11. An atomizer replenishment system, characterized in that, include: The atomizing device replenishment device as described in any one of claims 1 to 10; The device includes an atomizer, which has a liquid storage chamber and a replenishment port communicating with the liquid storage chamber. The atomizer can be connected to the second assembly area of ​​the atomizing device replenishment device, and the replenishment port can be connected to the pumping assembly. The pumping assembly is used to pump the atomizing matrix into the liquid storage tank, and the atomizer is used to heat the atomizing matrix to generate an aerosol.

12. The atomizer replenishment system according to claim 11, characterized in that, The atomizer also has a nozzle structure, which is located at both ends of the liquid storage chamber, and a liquid suction structure is provided on the inner wall of the atomizer at the end away from the nozzle structure.

13. A refill system for an atomizing device, characterized in that, include: The atomizing device replenishment device as described in any one of claims 1 to 10; And an atomizing device, the atomizing device including a detachably connected atomizer and a power supply device; The power supply device is configured to be connected to the third assembly area of ​​the atomizing device replenishment device and electrically connected to the power supply assembly to charge the power supply device through the power supply assembly.