Liquid storage device, atomization device and atomization equipment

By designing the urging mechanism and sealing structure in the liquid storage device, the problem of atomizing matrix leakage in the non-use state of atomization equipment is solved, and storage and transportation safety and convenience of use are achieved, improving user experience.

CN223125875UActive Publication Date: 2025-07-22HG INNOVATION LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422093880.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-27
Publication Date
2025-07-22
Estimated Expiration
2034-08-27

AI Technical Summary

Technical Problem

The existing atomization equipment with replaceable liquid storage devices is prone to leakage of atomized substrate in the non-use state, resulting in inconvenient storage and transportation and affecting the user experience.

Method used

A liquid storage device is designed, and the sealing structure is placed in the closed state of the liquid storage chamber through the force utilizing mechanism, and only when it is necessary to use it, the liquid guiding port is opened and connected to the atomization channel through the force utilizing element, so as to realize the buffering and atomization of the atomization matrix.

Benefits of technology

Avoid leakage of atomized substrate during storage and transportation, ensure the safety and convenience of the liquid storage device, and effectively atomize the substrate during use, improving the user experience.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223125875U_ABST
    Figure CN223125875U_ABST
Patent Text Reader

Abstract

The utility model discloses a liquid storage device, an atomization device and atomization equipment, the liquid storage device comprises a liquid storage mechanism and a force application mechanism, the liquid storage mechanism comprises a liquid storage bin and a sealing structure, the liquid storage bin is provided with a liquid guide port, the sealing structure is sealed at the liquid guide port, and the liquid storage bin is provided with an aerosol channel in a penetrating mode; the force application mechanism comprises a groove body, a force application piece and a temporary storage piece, and the groove body sleeves the liquid storage bin in a reciprocating sliding manner and can be positioned to a first position and a second position; the force application piece and the temporary storage piece are both arranged in the groove body, the temporary storage piece is provided with an atomization channel in a penetrating mode, and the groove body is provided with an insertion opening communicating with the atomization channel; at the first position, the force applying piece is far away from the sealing structure; and at the second position, the force application piece destroys the sealing structure, and the aerosol channel is communicated with the atomization channel. According to the liquid storage device, the groove body and the liquid storage bin are connected in the sliding mode and kept at the first position, the force application piece is located at the position away from the sealing structure, and therefore the liquid guide opening can be sealed through the sealing structure, and storage and transportation of the liquid storage device are facilitated.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the technical field of electronic atomization, and particularly relates to a liquid storage device, an atomization device and an atomization equipment. Background Art

[0002] An atomization equipment generally consists of a liquid storage device and an atomization device. For an atomization equipment with a replaceable liquid storage device, since the liquid storage device has the problem of leaking atomization matrix, it is not convenient to store and transport separately. Usually, the liquid storage device is assembled with the atomization device and sealed by an atomization core. The long-term contact between the atomization matrix and the atomization core easily leads to leakage, greatly reducing the user experience. Summary of the Utility Model

[0003] The present application aims to provide a liquid storage device, an atomization device and an atomization equipment, so as to seal the liquid storage chamber through a sealing structure when the tank body is in the first position, avoiding the leakage of the atomization matrix.

[0004] The present application provides a liquid storage device, including:

[0005] A liquid storage mechanism, including a liquid storage chamber and a sealing structure. The liquid storage chamber is used for storing the atomization matrix. The liquid storage chamber is provided with a liquid guiding port, and the sealing structure seals the liquid guiding port and can open the liquid guiding port when being stressed; the liquid storage chamber is provided with an aerosol channel in a penetrating manner;

[0006] A force application mechanism, including a tank body, a force application member and a buffer member. The tank body is sleeved on the liquid storage chamber in a reciprocating sliding manner and can be positioned at a first position and a second position; both the force application member and the buffer member are arranged inside the tank body. The buffer member is provided with an atomization channel in a penetrating manner, and the tank body is provided with a socket communicated with the atomization channel;

[0007] In the first position, the force application member is away from the sealing structure;

[0008] In the second position, the force application member contacts the sealing structure and applies a force to open the liquid guiding port, and the aerosol channel is communicated with the atomization channel.

[0009] As a further solution of the liquid storage device provided by the present application, a limiting portion is arranged on the liquid storage chamber, and a first limiting cooperation portion and a second limiting cooperation portion are arranged on the tank body. The limiting portion cooperates with the first limiting cooperation portion to enable the tank body to be in the first position, and the limiting portion cooperates with the second limiting cooperation portion to enable the tank body to be in the second position.

[0010] As a further solution of the liquid storage device provided in the present application, the limiting part is a limiting boss provided on the liquid storage bin, the first limiting cooperation part is a first limiting groove provided on the tank body, the second limiting cooperation part is a second limiting groove provided on the tank body, the limiting boss can be clamped into the first limiting groove so that the tank body is in the first position, and the limiting boss can be clamped into the second limiting groove so that the tank body is in the second position.

[0011] In some embodiments, the liquid storage mechanism further includes a first seal, the first seal is arranged on one side of the liquid storage bin facing the tank body to seal the gap between the liquid storage bin and the tank body, an aerosol transition hole and a liquid guide transition hole are formed on the first seal, the aerosol transition hole is communicated with the aerosol channel, and the liquid guide transition hole is communicated with the liquid guide port.

[0012] In some embodiments, a transition groove and a buffer groove are formed by the tank body extending upward from its tank bottom, the force applying member is arranged in the transition groove, the buffer member is arranged in the buffer groove, and a liquid passing hole communicating with the transition groove is formed on the side wall of the buffer groove; the first seal has an extension part, the extension part is accommodated in the transition groove, an extension groove is formed on the extension part, the liquid guide transition hole is formed as the notch of the extension groove, and an extension groove communication hole is further formed on the groove wall of the extension groove to be communicated with the liquid passing hole.

[0013] In some embodiments, the liquid passing hole is arranged at the bottom side of the side wall of the buffer groove.

[0014] In some embodiments, the force applying mechanism further includes a second seal, the second seal is arranged at the socket, and a fogging channel through hole communicating with the fogging channel is formed on the second seal.

[0015] In some embodiments, the sealing structure is a film-shaped sealing film, and the force applying member can pierce the sealing film when the tank body is in the second position.

[0016] In some embodiments, the force applying member is a piercing tube with a tubular structure, one end of the piercing tube facing the sealing film is a piercing tip, and a communication hole is arranged at the end of the piercing tube far from the piercing tip.

[0017] In some embodiments, the sealing structure is a plugging block, the plugging block is plugged and sealed at the liquid guide port along the direction of the tank body from the first position to the second position; the force applying member can push the plugging block away from the liquid guide port when the tank body is in the second position.

[0018] In some embodiments, the force applying member is a columnar pushing column.

[0019] The present application also provides an atomizing device, comprising: a housing, an atomizing core, and the liquid storage device as described above. The atomizing core is installed in the housing, the housing is detachably connected to the liquid storage device, and the atomizing core can be inserted into the atomizing channel.

[0020] The present application also provides an atomizing device, comprising: the atomizing device as described above, and a power supply assembly, where the power supply assembly is detachably or fixedly connected to the atomizing device.

[0021] According to the liquid storage device, atomizing device, and atomizing equipment of the above embodiments, the liquid storage device slidably connects the tank body to the liquid storage chamber and holds it in the first position. At this time, since the force-applying member is in a position away from the sealing structure, the liquid guiding port can be sealed through the sealing structure. In this state, the liquid storage device can prevent the atomizing matrix from leaking, facilitating the storage and transportation of the liquid storage device. When it is necessary to use this liquid storage device in combination with the atomizing device, the liquid storage device and the atomizing device are assembled, such that the atomizing core in the atomizing device is inserted into the atomizing channel through the socket, and with the help of an external force, the tank body slides relative to the liquid storage chamber to the second position. At this time, the force-applying member can contact the sealing structure and apply a force to open the liquid guiding port, and the atomizing matrix can flow through the liquid guiding port to the buffer member. The buffer member buffers the atomizing matrix and conducts the atomizing matrix to the atomizing core, so as to atomize the atomizing matrix into an aerosol through the atomizing core, and the aerosol is output through the aerosol channel. Description of the Drawings

[0022] Figure 1 Is a perspective view of the liquid storage device provided by the present application in the first embodiment;

[0023] Figure 2 Is a schematic diagram of the separation of the liquid storage mechanism and the force-applying mechanism of the liquid storage device provided by the present application in the first embodiment;

[0024] Figure 3 Is Figure 2 A partial enlarged schematic diagram of part A in

[0025] Figure 4 Is a schematic diagram of the tank body in the first position of the liquid storage device provided by the present application in the first embodiment;

[0026] Figure 5 Is a schematic diagram of the tank body in the second position of the liquid storage device provided by the present application in the first embodiment;

[0027] Figure 6 Is an exploded view of the liquid storage device provided by the present application in the first embodiment;

[0028] Figure 7 Is an exploded view of the cross-sectional effect of the liquid storage device provided by the present application in the first embodiment;

[0029] Figure 8 A perspective view of the liquid storage device provided in this application in the second embodiment;

[0030] Figure 9 A schematic diagram showing the separation of the liquid storage mechanism and the force applying mechanism of the liquid storage device provided in this application in the second embodiment;

[0031] Figure 10 is Figure 9 A partial enlarged schematic diagram at position B in;

[0032] Figure 11 A schematic diagram showing the tank body in the first position of the liquid storage device provided in this application in the second embodiment;

[0033] Figure 12 A schematic diagram showing the tank body in the second position of the liquid storage device provided in this application in the second embodiment;

[0034] Figure 13 An exploded view of the liquid storage device provided in this application in the second embodiment;

[0035] Figure 14 An exploded view of the liquid storage device provided in this application in the second embodiment with a sectional view effect;

[0036] Figure 15 A perspective view of the atomizing device provided in this application in the first embodiment;

[0037] Figure 16 An exploded view of the atomizing device provided in this application in the first embodiment with a sectional view effect;

[0038] Figure 17 A perspective view of the atomizing device provided in this application in the second embodiment;

[0039] Figure 18 An exploded view of the atomizing device provided in this application in the second embodiment with a sectional view effect.

[0040] Reference numerals:

[0041] Liquid storage device 100, liquid storage mechanism 10, liquid storage bin 11, liquid guiding port 110, aerosol passage 111, limiting part 112, limiting boss 1120, cover body 113, sealing structure 12, first seal 13, aerosol transition hole 131, liquid guiding transition hole 132, extending part 133, extending groove 134, extending groove communication hole 135, seal 14, through hole 140, force applying mechanism 20, groove body 21, socket 210, first limiting cooperation part 211, first limiting groove 2110, second limiting cooperation part 212, second limiting groove 2120, transition groove 213, mounting groove 2131, opening 2132, buffer groove 214, liquid passing hole 2140, force applying member 22, puncturing tube 220, puncturing tip 221, communication hole 222, buffer member 23, atomization passage 230, second seal 24, atomization passage through hole 240;

[0042] Atomization device 200, housing 30, mounting seat 31, open end 32, atomization core 40, power supply assembly 50, mouthpiece 60, mouthpiece passage 61. Specific embodiments

[0043] The present application will be further described in detail below in conjunction with the accompanying drawings through specific embodiments. Similar elements in different embodiments are labeled with related similar element numbers. In the following embodiments, many detailed descriptions are provided to enable a better understanding of the present application. However, those skilled in the art can easily recognize that some of the features can be omitted in different situations, or can be replaced by other elements, materials, or methods. In some cases, some operations related to the present application are not shown or described in the specification, in order to avoid the core part of the present application being submerged by excessive description. For those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.

[0044] In addition, the features, operations, or characteristics described in the specification can be combined in any appropriate manner to form various embodiments, and the operation steps involved in each embodiment can also be reordered or adjusted in an obvious manner by those skilled in the art. Therefore, the specification and drawings are only for clearly describing a certain embodiment, and do not mean to be the necessary composition and / or order.

[0045] The serial numbers assigned to the components in this article, such as "first", "second", etc., are only used to distinguish the described objects and do not have any sequential or technical meaning. And the "connection" and "coupling" mentioned in the present application, unless otherwise specified, both include direct and indirect connections (couplings).

[0046] For atomization equipment products in which the liquid storage device and the atomization device are independent of each other, the liquid storage device is usually composed of a liquid storage tank and a liquid storage member arranged below the liquid storage tank. The liquid storage tank stores a liquid atomization matrix that can be atomized to produce an aerosol. The liquid storage tank is provided with a liquid through hole so that the atomization matrix can be introduced into the liquid storage member for buffering. At the same time, an aerosol channel is provided in the liquid storage tank, and an atomization channel is provided on the liquid storage member. The aerosol channel and the atomization channel are kept in communication. When in use, the atomization device and the liquid storage device are assembled, the atomization core in the atomization device is inserted into the atomization channel, and the atomization matrix buffered in the liquid storage member is introduced into the atomization core so that it is atomized by the atomization core to produce an aerosol.

[0047] With the atomization device formed by the above-mentioned independent liquid storage device and atomization device, the user can replace the liquid storage device storing different types of atomization matrices. However, the liquid storage device and the atomization device need to be stored and transported separately when not in use, so there is a problem of liquid leakage in the liquid storage device.

[0048] In response to the above-mentioned problems, the present application provides a liquid storage device and an atomization device. The liquid storage device can be activated only when the sealing structure in its liquid storage tank is punctured by a force-applying mechanism. When not punctured, the liquid storage tank is in a relatively closed state and will not cause leakage, so that users can store liquid conveniently.

[0049] Embodiment 1

[0050] See also Figures 1-7 As shown, the liquid storage device 100 provided in this embodiment includes: a liquid storage mechanism 10 and a force applying mechanism 20 .

[0051] The liquid storage mechanism 10 includes a liquid storage tank 11 and a sealing structure 12. The liquid storage tank 11 is used to store an atomized matrix, which is usually in liquid form and can generate an aerosol by atomization. The liquid storage tank 11 is a structure with an opening at the top, and a cover 113 is also provided at the top opening of the liquid storage tank 11, and the cover 113 is sealed and installed at the top opening. The liquid storage tank 11 is provided with a liquid guide port 110 connected to the inner cavity of the liquid storage tank 11, and the sealing structure 12 is sealed at the liquid guide port 110. The sealing structure 12 can open the liquid guide port 110 when subjected to force, which is specifically determined according to the connection method between the sealing structure 12 and the liquid guide port 110, please refer to the subsequent embodiments. When the sealing structure 12 opens the liquid guide port 110 due to force, the stored atomized matrix can flow to the cache for caching. The liquid storage tank 11 is provided with an aerosol channel 111 through the liquid storage tank 11, and the aerosol channel 111 can output the generated aerosol to the outside.

[0052] The force applying mechanism 20 includes a groove body 21, a force applying member 22 and a buffer member 23. The groove body 21 is reciprocatingly slidably sleeved on the liquid storage tank 11 and can be positioned to a first position (such as Figure 4 as shown) and a second position (asFigure 5 As shown in the figure, in other words, the groove body 21 is sleeved on the liquid storage bin 11 and can slide along the liquid storage bin 11. Specifically, it slides along the axial direction of the liquid storage bin 11. When sliding, it can be positioned at the first position and the second position. The force applying member 22 and the buffer member 23 are both arranged inside the groove body 21. The buffer member 23 is provided with a through-type atomization channel 230, and the groove body 21 is provided with a socket 210 communicating with the atomization channel 230.

[0053] As Figure 4 shown, in the first position, the force applying member 22 is away from the sealing structure 12, and the sealing structure 12 remains sealed at the liquid guiding port 110. As Figure 5 shown, in the second position, the force applying member 22 contacts the sealing structure 12 and applies a force to open the liquid guiding port 110, so that the atomization matrix flows into the inside of the groove body 21 through the liquid guiding port 110 and is buffered by the buffer member 23. In this state, the aerosol channel 111 is kept in communication with the atomization channel 230.

[0054] In actual use, the groove body 21 is slidably connected to the liquid storage bin 11 and kept at the first position. At this time, since the force applying member 22 is at a position away from the sealing structure 12, the liquid guiding port 110 can be sealed by the sealing structure 12. In this state, the liquid storage device 100 can avoid leakage of the atomization matrix, which is convenient for the storage and transportation of the liquid storage device 100. When the liquid storage device 100 needs to be used in cooperation with the atomization device, the liquid storage device and the atomization device are assembled, so that the atomization core in the atomization device is inserted into the atomization channel 230 through the socket 210, and with the help of an external force, the groove body 21 slides relative to the liquid storage bin 11 to the second position. At this time, a force can be applied to the sealing structure 12 by the force applying member 22 to open the liquid guiding port 110, and the atomization matrix can flow to the buffer member 23 through the liquid guiding port 110. The buffer member 23 buffers the atomization matrix and conducts the atomization matrix to the atomization core, so as to atomize the atomization matrix into aerosol by the atomization core, and the aerosol is output through the aerosol channel.

[0055] In this embodiment, the sealing structure 12 is a membranous sealing film. When the groove body 21 moves to the second position, the force applying member 22 can pierce the sealing film to open the liquid guiding port 110. At this time, the force applied by the force applying member 22 is the piercing force.

[0056] In some embodiments, the liquid guiding port 110 is a mouth-shaped structure, and the sealing film can be fixed at the liquid guiding port 110 in a bonded manner. The sealing film can be made of materials such as an aluminum film or a plastic film, etc. It can be structurally damaged when subjected to the force of being pierced by a pointed structure, so as to open the liquid guiding port 110.

[0057] In an embodiment of the present application, the force-applying member 22 may adopt a needle-shaped, rod-shaped or columnar structure, and only the end facing the sealing structure 12 needs to be a tip.

[0058] In this embodiment, as Figure 6 shown, the force-applying member 22 is a puncturing tube 220 with a tubular structure. One end of the puncturing tube 220 facing the sealing film is a puncturing tip 221. A communication hole 222 is provided at the end of the puncturing tube 220 away from the puncturing tip 221. Puncturing the sealing film through the puncturing tube 220 can increase the puncturing area. At the same time, the atomization matrix can also flow out through the puncturing tube 220 and flow to the buffer member 23 through the communication hole 222.

[0059] The buffer member 23 is usually made of materials such as cotton or fiber to buffer the atomization matrix by adsorption and can slowly release the atomization matrix to the atomization core. After the sealing structure 12 in the liquid storage device 100 provided in the present application is punctured, the atomization matrix always exists on the buffer member 23. If the user needs to replace this liquid storage device with a liquid storage device storing other types of atomization matrix when the atomization matrix is not used up, the two ends outside of the atomization channel 230 can be blocked by blocking the aerosol channel 111 near the atomization channel 230 and the socket 210 with a blocking member to prevent the atomization matrix from leaking through the atomization channel 230 of the buffer member 23 made of materials such as cotton or fiber.

[0060] In a specific embodiment, the blocking member is inserted into the atomization channel 230 through the socket 210 in a plug-and-play manner. The blocking member can block the aerosol channel 111 near the atomization channel 230 and the socket 210. In this way, it is convenient for the user to replace the liquid storage device to achieve the purpose of immediate replacement.

[0061] As Figures 2-6 shown, a limiting portion 112 is provided on the liquid storage chamber 11, and a first limiting and cooperating portion 211 and a second limiting and cooperating portion 212 are provided on the groove body 21. The limiting portion 112 cooperates with the first limiting and cooperating portion 211 to make the groove body 21 in the first position, and the limiting portion 112 cooperates with the second limiting and cooperating portion 212 to make the groove body 21 in the second position.

[0062] Specifically, when the groove body 21 slides on the liquid storage chamber 11 so that the limiting portion 112 cooperates with the first limiting and cooperating portion 211, the groove body 21 can be in the first position. When a force is continuously applied to the groove body 21 so that the groove body 21 continues to slide on the liquid storage chamber 11 and the limiting portion 112 cooperates with the second limiting and cooperating portion 212, the groove body 21 can be in the second position. As Figure 4 shown, there is a certain gap between the groove body 21 in the first position and the liquid storage chamber 11, that is, the liquid storage mechanism 10 and the force-applying mechanism 20 are not fully assembled.

[0063] As Figures 3-5 shown, the limiting part 112 is a limiting boss 1120 provided on the liquid storage bin 11, the first limiting mating part 211 is a first limiting groove 2110 provided on the groove body 21, and the second limiting mating part 212 is a second limiting groove 2120 provided on the groove body 21. When a force is applied to the groove body 21 to make the groove body 21 slide on the liquid storage bin 11 and the limiting boss 1120 is snapped into the first limiting groove 2110, the groove body 21 is in the first position. When a continuous force is applied to the groove body 21 to make the groove body 21 continue to slide on the liquid storage bin 11 and the limiting boss 1120 is snapped into the second limiting groove 2120, the groove body 21 is in the second position.

[0064] It can be understood that during the process of sliding the groove body 21 on the liquid storage bin 11 and snapping the limiting boss 1120 into the first limiting groove 2110 and the second limiting groove 2120, the groove body 21 undergoes a certain deformation accordingly, so that a clear sound can be emitted when the first limiting groove 2110 and the second limiting groove 2120 are snapped with the limiting boss 1120. The user can judge whether the snapping is successful through this sound to determine that the groove body 21 is in the second position.

[0065] In particular, the groove body 21 of the liquid storage device 100 is usually in the first position in the factory state. Therefore, when the user applies a force to make the groove body 21 slide on the liquid storage bin 11 and a clear sound occurs, it can be judged that the groove body 21 is in the second position.

[0066] To seal the gap between the liquid storage bin 11 and the groove body 21, the liquid storage mechanism 10 provided in this embodiment further includes a first sealing member 13. The first sealing member 13 is arranged on the liquid storage bin 11 to seal the gap between the liquid storage bin 11 and the groove body 21. As Figure 7 shown, an aerosol transition hole 131 and a liquid guiding transition hole 132 are formed in the first sealing member 13. The aerosol transition hole 131 is communicated with the aerosol passage 111, and the liquid guiding transition hole 132 is communicated with the liquid guiding port 110. That is, when the groove body 21 is in the second position, the atomization matrix can flow into the groove body 21 through the liquid guiding transition hole 132, and the aerosol can be transported to the aerosol passage 111 through the aerosol transition hole 131.

[0067] Continue to refer to Figure 7As shown in the figure, a transition groove 213 and a buffer groove 214 are formed by the tank body 21 extending upward from its bottom. A force - applying member 22 is disposed in the transition groove 213, and a buffer member 23 is disposed in the buffer groove 214. A liquid - passing hole 2140 communicating with the transition groove 213 is formed in the side wall of the buffer groove 214. The first seal 13 has an extension portion 133. The extension portion 133 is received in the transition groove 213. An extension groove 134 is provided in the extension portion 133. The liquid - guiding transition hole 132 is formed as the notch of the extension groove 134. An extension - groove communication hole 135 is further formed in the groove wall of the extension groove 134 to communicate with the liquid - passing hole 2140.

[0068] In this embodiment, the liquid - passing hole 2140 is provided at the bottom side of the side wall of the buffer groove 214. The atomization matrix enters the transition groove 213 through the liquid - guiding transition hole 132, enters the buffer groove 214 through the extension - groove communication hole 135 and the liquid - passing hole 2140, and then is introduced to the buffer member 23. The application of the transition groove 213 and the buffer groove 214 can prevent the buffer member 23 from being completely immersed in the atomization matrix, enabling the atomization matrix to slowly flow to the buffer member 23. The setting of the extension portion 122 can seal the transition groove 213.

[0069] In this embodiment, two transition grooves 213 are provided, and correspondingly, two extension portions 133 are provided. The two extension portions 133 act together to seal the buffer groove 214.

[0070] In an embodiment of the present application, an installation groove 2131 is further provided in the transition groove 213. The force - applying member 22 is inserted into the installation groove 2131. An opening 2132 is further provided in the side wall of the installation groove 2131. The opening 2132 communicates with the liquid - passing hole 2140 so that the atomization matrix can flow to the liquid - passing hole 2140 through the opening 2132.

[0071] In the present application, to seal the atomization core, the force - applying mechanism 20 further includes a second seal 24. The second seal 24 is disposed at the socket 210. The second seal 24 is provided with an atomization - channel communication hole 240 communicating with the atomization channel 230. The atomization core can be inserted into the atomization channel 230 through the atomization - channel communication hole 240, and the second seal 24 can seal the atomization core.

[0072] Embodiment Two

[0073] This embodiment provides a liquid - storage device. The difference between this liquid - storage device and that of Embodiment One lies in the different structures of the force - applying member and the sealing structure. Thus, the ways in which the force - applying member damages the sealing structure are also different. For details, please refer to the following embodiments.

[0074] See Figures 8-14 As shown in the figure, the liquid - storage device 100 provided in this embodiment includes: a liquid - storage mechanism 10 and a force - applying mechanism 20.

[0075] The liquid storage mechanism 10 includes a liquid storage chamber 11 and a sealing structure 12. The liquid storage chamber 11 is used to store the atomization matrix, which is usually in a liquid form and can generate aerosol through atomization. The liquid storage chamber 11 has an open top, and a cover 113 is provided at the open top of the liquid storage chamber 11. The cover 113 is sealingly installed at the open top. The liquid storage chamber 11 is provided with a liquid guiding port 110 communicating with the inner cavity of the liquid storage chamber 11. The sealing structure 12 seals the liquid guiding port 110. The sealing structure 12 can open the liquid guiding port 110 when a force is applied, and specifically depends on the connection manner between the sealing structure 12 and the liquid guiding port 110. Please refer to the subsequent embodiments. When the sealing structure 12 opens the liquid guiding port 110 due to the applied force, the stored atomization matrix can flow to the buffer member for buffering. The liquid storage chamber 11 is provided with an aerosol passage 111 in a penetrating manner, and the aerosol passage 111 can output the generated aerosol to the outside.

[0076] The force applying mechanism 20 includes a groove body 21, a force applying member 22, and a buffer member 23. The groove body 21 is sleeved on the liquid storage chamber 11 in a reciprocating sliding manner and can be positioned at a first position (as Figure 11 shown) and a second position (as Figure 12 shown). In other words, the groove body 21 is arranged on the liquid storage chamber 11 in a sleeved manner and can slide along the liquid storage chamber 11. Specifically, it slides along the axial direction of the liquid storage chamber 11. When sliding, it can be positioned at the first position and the second position. The force applying member 22 and the buffer member 23 are both arranged inside the groove body 21. The buffer member 23 is provided with an atomization passage 230 in a penetrating manner. The groove body 21 is provided with a socket 210 communicating with the atomization passage 230.

[0077] As Figure 11 shown, in the first position, the force applying member 22 is away from the sealing structure 12, and the sealing structure 12 remains in a sealed state at the liquid guiding port 110. As Figure 12 shown, in the second position, the force applying member 22 contacts the sealing structure 12 and applies a force to open the liquid guiding port 110, so that the atomization matrix flows into the inside of the groove body 21 through the liquid guiding port 110 and is buffered by the buffer member 23. In this state, the aerosol passage 111 is kept in communication with the atomization passage 230.

[0078] In actual use, the tank body 21 is slidably connected to the liquid storage chamber 11 and maintained at the first position. At this time, since the force-applying member 22 is in a position away from the sealing structure 12, the liquid guiding port 110 can be sealed through the sealing structure 12. In this state, the liquid storage device 100 can prevent the atomization matrix from leaking, facilitating the storage and transportation of the liquid storage device 100. When the liquid storage device 100 needs to be used in cooperation with an atomization device, the liquid storage device and the atomization device are assembled so that the atomization core in the atomization device is inserted into the atomization channel 230 through the socket 210, and with the help of an external force, the tank body 21 slides relative to the liquid storage chamber 11 to the second position. At this time, a force can be applied to the sealing structure 12 through the force-applying member 22 to open the liquid guiding port 110, and the atomization matrix can flow through the liquid guiding port 110 to the buffer member 23. The buffer member 23 buffers the atomization matrix and conducts the atomization matrix to the atomization core, so as to atomize the atomization matrix into an aerosol through the atomization core, and the aerosol is output through the aerosol channel.

[0079] In this embodiment, the sealing structure 12 is a plugging block, and the plugging block plugs and seals the liquid guiding port 110 along the direction of the tank body 21 from the first position to the second position. When the tank body 21 moves to the second position, the force-applying member 22 can push the plugging block to open the liquid guiding port 110. At this time, the force applied by the force-applying member 22 is a pushing force, and through this pushing force, the plugging block can be disengaged from the liquid guiding port 110.

[0080] It can be understood that when the plugging block seals the liquid guiding port 110 in a plugging manner, the sealing structure 12 needs to be plugged at the top of the liquid guiding port 110 so that it can be disengaged from the liquid guiding port 110 in a pushing manner.

[0081] In some embodiments, the liquid guiding port 110 is a mouth-shaped structure, and the plugging block is specifically plugged at the liquid guiding port 110 from top to bottom inside the liquid storage chamber 11. The plugging block can be made of materials such as rubber or silica gel, and can be disengaged from the liquid guiding port 110 under the pushing force, thereby opening the liquid guiding port 110.

[0082] In an embodiment of the present application, the force-applying member 22 can adopt a needle-shaped, rod-shaped or columnar structure, specifically a columnar structure.

[0083] In this embodiment, as Figure 14 shown, the force-applying member 22 is a pushing column 223 with a columnar structure. The diameter of the pushing column 223 should be smaller than the diameter of the liquid guiding port 110. After the tank body 21 is in the second position and the pushing column 223 pushes the plugging block to disengage from the liquid guiding port 110, the atomization matrix can flow into the inside of the tank body 21 through the gap between the pushing column 223 and the liquid guiding port 110 and be buffered by the buffer member 23.

[0084] The buffer member 23 is usually made of materials such as cotton or fiber, and caches the atomization matrix by adsorption, and can slowly release the atomization matrix to the atomization core. The sealing structure 12 in the liquid storage device 100 provided in the present application makes the atomization matrix always present on the buffer member 23 after being punctured. If the user needs to replace the present liquid storage device with a liquid storage device storing other types of atomization matrix when the atomization matrix is not used up, the two outer ends of the atomization channel 230 can be blocked by blocking the aerosol channel 111 near one end of the atomization channel 230 and blocking the socket 210, so as to avoid the leakage of the atomization matrix through the atomization channel 230 of the buffer member 23 made of materials such as cotton or fiber.

[0085] In a specific embodiment, the blocking member is inserted into the atomization channel 230 through the socket 210 in a plug-and-play manner, and the blocking member can block the aerosol channel 111 near one end of the atomization channel 230 and the socket 210. In this way, it is convenient for the user to replace the liquid storage device to achieve the purpose of immediate replacement.

[0086] As Figures 9-14 shown, a limiting portion 112 is provided on the liquid storage chamber 11, a first limiting and cooperating portion 211 and a second limiting and cooperating portion 212 are provided on the groove body 21, and the limiting portion 112 cooperates with the first limiting and cooperating portion 211 to make the groove body 21 in the first position, and the limiting portion 112 cooperates with the second limiting and cooperating portion 212 to make the groove body 21 in the second position.

[0087] Specifically, when the groove body 21 slides on the liquid storage chamber 11 such that the limiting portion 112 cooperates with the first limiting and cooperating portion 211, the groove body 21 can be in the first position. And when a force is continuously applied to the groove body 21 such that the groove body 21 continues to slide on the liquid storage chamber 11 and the limiting portion 112 cooperates with the second limiting and cooperating portion 212, the groove body 21 can be in the second position. As Figure 11 shown, there is a certain gap between the groove body 21 in the first position and the liquid storage chamber 11, that is, the liquid storage mechanism 10 and the force application mechanism 20 are not fully assembled.

[0088] As Figures 10-12 shown, the limiting portion 112 is a limiting boss 1120 provided on the liquid storage chamber 11, the first limiting and cooperating portion 211 is a first limiting groove 2110 provided on the groove body 21, and the second limiting and cooperating portion 212 is a second limiting groove 2120 provided on the groove body 21. When a force is applied to the groove body 21 such that the groove body 21 slides on the liquid storage chamber 11 and the limiting boss 1120 is snapped into the first limiting groove 2110, the groove body 21 is in the first position. When a force is continuously applied to the groove body 21 such that the groove body 21 continues to slide on the liquid storage chamber 11 and the limiting boss 1120 is snapped into the second limiting groove 2120, the groove body 21 is in the second position.

[0089] It is understandable that during the process of sliding the tank body 21 on the liquid storage bin 11 and making the limiting boss 1120 snap into the first limiting groove 2110 and the second limiting groove 2120, the corresponding deformation of the tank body 21 occurs, so that a clear sound can be emitted when the first limiting groove 2110 and the second limiting groove 2120 are snapped with the limiting boss 1120. The user can judge whether the snapping is successful through this sound to determine that the tank body 21 is in the second position.

[0090] Specifically, the tank body 21 of the liquid storage device 100 is usually in the first position in the factory state. Therefore, when the user applies a force to make the tank body 21 slide on the liquid storage bin 11 and a clear sound occurs, it can be judged that the tank body 21 is in the second position.

[0091] To seal the gap between the liquid storage bin 11 and the tank body 21, the liquid storage mechanism 10 provided in this embodiment further includes a first seal 13. The first seal 13 is arranged on the liquid storage bin 11 to seal the gap between the liquid storage bin 11 and the tank body 21. As Figure 14 shown, an aerosol transition hole 131 and a liquid guide transition hole 132 are formed on the first seal 13. The aerosol transition hole 131 is communicated with the aerosol channel 111, and the liquid guide transition hole 132 is communicated with the liquid guide port 110. That is, when the tank body 21 is in the second position, the atomization matrix can flow into the tank body 21 through the liquid guide transition hole 132, and the aerosol can be transported to the aerosol channel 111 through the aerosol transition hole 131.

[0092] In this application, a seal 14 is further provided between the liquid storage bin 11 and the cover body 113. The seal is provided with a through hole 140 to seal the assembly gap between the liquid storage bin 11 and the cover body 113. After the cover body 113 is connected to the liquid storage bin 11, the through hole 140 is communicated with the aerosol channel 111.

[0093] In this application, to seal the atomization core, the force application mechanism 20 further includes a second seal 24. The second seal 24 is arranged at the socket 210. The second seal 24 is provided with an atomization channel through hole 240 communicated with the atomization channel 230. The atomization core can be inserted into the atomization channel 230 through the atomization channel through hole 240, and the second seal 24 can seal the atomization core.

[0094] Embodiment III

[0095] See Figures 15-18 shown, this embodiment further provides an atomization device 200, which includes: the liquid storage device 100 in the above Embodiment I and Embodiment II, wherein, Figure 15 and Figure 16 in is the liquid storage device 100 in Embodiment I, Figure 17 andFigure 18 The middle one is the liquid storage device 100 in the second embodiment. The atomization device provided in this embodiment further includes a housing 30 and an atomization core 40. The atomization core 40 is installed inside the housing 30. The housing 30 is detachably connected to the liquid storage device 100, and the atomization core 40 can be inserted into the atomization channel 230 through the socket 210.

[0096] Wherein, an installation seat 31 is further provided inside the housing 30. The atomization core 40 is installed on the installation seat 31. An open end 32 is provided on one side of the housing 30, so that the liquid storage device 100 can be installed inside the housing 30. The housing 30 is detachably connected to the liquid storage device 100, so as to insert the atomization core 40 into the atomization channel 230.

[0097] Specifically, during the installation process, the atomization core 40 can be inserted into the inside of the atomization channel 230 through the atomization channel through hole 240. Similarly, in order to avoid leakage of the atomization matrix, it is only necessary to seal the atomization core 40 with the atomization channel through hole 240 and the end of the aerosol channel 111 close to the atomization channel 230. For this purpose, a first seal 13 is provided in the circumferential direction of the atomization channel through hole 240, and a second seal 24 is provided at the end of the aerosol channel 111 close to the atomization channel 230, so that the installation seat 31 cooperates with the first seal 13 for sealing, and the atomization core 40 cooperates with the second seal 24 for sealing, thereby sealing the outside of both ends of the atomization channel 230.

[0098] Embodiment Four

[0099] This embodiment provides an atomization device. Continuing to refer to Figures 15-18 As shown, the atomization device provided in this embodiment further includes a power supply component 50. The power supply component 50 is connected to the atomization device 200 and can provide the electric energy required for heating for the heating element in the atomization core 40. The power supply component 50 is detachably or fixedly connected to the atomization device 200. When fixedly connected, the power supply component 50 and the atomization device 200 can form an integral structure. When detachably connected, the power supply component 50 and the atomization device 200 can form a split structure.

[0100] In this embodiment, the atomization device further includes a mouthpiece 60. The mouthpiece 60 is installed on the liquid storage chamber 11. The mouthpiece 60 has a mouthpiece channel 61. The mouthpiece channel 61 is communicated with the aerosol channel 111. When the user sucks through the mouthpiece 60, the outside air can enter the atomization core 40 in the atomization channel 230, and the aerosol generated by the operation of the atomization core 40 is output through the aerosol channel 111 and the mouthpiece channel 61.

[0101] In summary, for the liquid storage device and the atomization device provided in this application, in this liquid storage device, the tank body is slidably connected to the liquid storage chamber and maintained in the first position. At this time, since the force applying member is in a position away from the sealing structure, the liquid guiding port can be sealed through the sealing structure. The liquid storage device in this state can prevent the atomization matrix from leaking, facilitating the storage and transportation of the liquid storage device. When it is necessary to use this liquid storage device in cooperation with the atomization device, the liquid storage device and the atomization device are assembled so that the atomization core in the atomization device is inserted into the atomization channel through the socket, and with the help of an external force, the tank body slides relative to the liquid storage chamber to the second position. At this time, the connection between the sealing structure and the liquid guiding port can be broken through the force applying member to open the liquid guiding port, and the atomization matrix can flow to the buffer member through the liquid guiding port. The buffer member caches the atomization matrix and exports the atomization matrix to the atomization core, so as to atomize the atomization matrix into aerosol through the atomization core, and the aerosol is output through the aerosol channel.

[0102] The above uses specific examples to elaborate on the present invention, which is only used to help understand the present invention and is not intended to limit the present invention. For those skilled in the technical field to which the present invention belongs, based on the idea of the present invention, several simple deductions, deformations or substitutions can also be made.

Claims

1. A liquid storage device, characterized in that, Comprising: A liquid storage mechanism, including a liquid storage chamber and a sealing structure. The liquid storage chamber is used for storing an atomization matrix. The liquid storage chamber is provided with a liquid guiding port, and the sealing structure is sealed to the liquid guiding port. The sealing structure can open the liquid guiding port when a force is applied; the liquid storage chamber is provided with an aerosol channel in a penetrating manner; A force application mechanism, including a groove body, a force application member, and a buffer member. The groove body is sleeved on the liquid storage chamber in a reciprocating sliding manner and can be positioned at a first position and a second position; both the force application member and the buffer member are arranged inside the groove body. The buffer member is provided with an atomization channel in a penetrating manner, and the groove body is provided with a socket communicated with the atomization channel; At the first position, the force application member is away from the sealing structure; At the second position, the force application member contacts the sealing structure and applies a force to open the liquid guiding port, and the aerosol channel is communicated with the atomization channel.

2. The liquid storage device according to claim 1, wherein The liquid storage chamber is provided with a limiting portion, and the groove body is provided with a first limiting cooperation portion and a second limiting cooperation portion. The limiting portion cooperates with the first limiting cooperation portion to enable the groove body to be in the first position, and the limiting portion cooperates with the second limiting cooperation portion to enable the groove body to be in the second position.

3. The liquid storage device according to claim 2, wherein The limiting portion is a limiting boss arranged on the liquid storage chamber, the first limiting cooperation portion is a first limiting groove arranged on the groove body, and the second limiting cooperation portion is a second limiting groove arranged on the groove body. The limiting boss can be clamped into the first limiting groove to enable the groove body to be in the first position, and the limiting boss can be clamped into the second limiting groove to enable the groove body to be in the second position.

4. The liquid storage device according to claim 1, wherein The liquid storage mechanism further includes a first sealing member, and the first sealing member is arranged on one side of the liquid storage chamber facing the groove body to seal the gap between the liquid storage chamber and the groove body. The first sealing member is provided with an aerosol transition hole and a liquid guiding transition hole. The aerosol transition hole is communicated with the aerosol channel, and the liquid guiding transition hole is communicated with the liquid guiding port.

5. The liquid storage device according to claim 4, wherein The groove body extends upward from its groove bottom to form a transition groove and a buffer groove. The force application member is arranged in the transition groove, the buffer member is arranged in the buffer groove, and a liquid passing hole communicated with the transition groove is arranged on the side wall of the buffer groove; the first sealing member has an extension portion, the extension portion is accommodated in the transition groove, the extension portion is provided with an extension groove, the liquid guiding transition hole is formed as the notch of the extension groove, and an extension groove communication hole is further arranged on the groove wall of the extension groove to be communicated with the liquid passing hole.

6. The liquid storage device according to claim 5, characterized in that, The liquid passing hole is arranged at the bottom side of the side wall of the buffer groove.

7. The liquid storage device according to claim 1, wherein The force application mechanism further includes a second sealing member, and the second sealing member is arranged at the socket. The second sealing member is provided with an atomization channel through hole communicated with the atomization channel.

8. The liquid storage device according to any one of claims 1-7, characterized in that, The sealing structure is a membranous sealing film, and the force application member can pierce the sealing film when the groove body is in the second position.

9. The liquid storage device according to claim 8, characterized in that, The force application member is a puncturing tube with a tubular structure. One end of the puncturing tube facing the sealing film is a puncturing tip, and a communication hole is arranged at the end of the puncturing tube away from the puncturing tip.

10. The liquid storage device according to any one of claims 1-7, characterized in that, The sealing structure is a plugging block, and the plugging block is plugged and sealed at the liquid guiding port along the direction of the groove body from the first position to the second position; the force applying member can push the plugging block away from the liquid guiding port when the groove body is in the second position.

11. The liquid storage device according to claim 10, characterized in that, The force applying member is a columnar pushing column.

12. An atomization device, characterized in that, Comprising: A housing, an atomization core, and a liquid storage device according to any one of claims 1-11, wherein the atomization core is installed in the housing, the housing is detachably connected to the liquid storage device, and the atomization core can be inserted into the atomization channel.

13. An atomization device, characterized in that, Comprising: An atomization device according to claim 12, and a power supply assembly, wherein the power supply assembly is detachably or fixedly connected to the atomization device.