Atomization device and atomization system

By setting a puncture structure in the accommodating cavity of the atomization device, the problems of inconvenience and easy leakage in the atomization matrix in the prior art are solved, and the effect of convenient supplementation and effective leakage prevention is achieved.

CN222869866UActive Publication Date: 2025-05-16HG INNOVATION LTD
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Patent Information

Application Number
CN202421509343.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-28
Publication Date
2025-05-16
Estimated Expiration
2034-06-28

AI Technical Summary

Technical Problem

Existing atomization devices are inconvenient and easy to leak when replenishing atomized substrate, resulting in operational difficulties and environmental pollution.

Method used

Atomization device is designed, including a storage cavity with an open end and a puncture structure arranged in the storage cavity. The puncture structure punctures part of its side walls when the atomization liquid container is loaded to form a liquid outlet channel, solving the problem of inconvenient and easy leakage of supplementing the atomization matrix.

Benefits of technology

Through this design, convenient supplementation of atomized substrate and effective leakage prevention are achieved, improving operational convenience and environmental safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an atomization device and an atomization system. The atomization device comprises a containing cavity with an open end and used for containing an atomized liquid container which can be detachably installed; the piercing structure is arranged in the containing cavity and used for piercing part of the side wall of the atomized liquid container to form a liquid outlet channel when the atomized liquid container is arranged in the containing cavity. The puncture structure is arranged in the containing cavity, so that when the atomized liquid container is contained in the containing cavity, part of the side wall of the atomized liquid container can be opened through the puncture structure, the liquid outlet channel is formed, and the beneficial effects of being convenient to use and environmentally friendly are achieved.
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Description

Technical Field

[0001] The present application relates to the field of electronic atomization technology, and in particular to an atomization device and an atomization system. Background Art

[0002] The atomizer is an electronic device used to heat and atomize the atomizer matrix so that the atomizer matrix produces an inhalable aerosol. In some related atomizer devices, after the atomizer matrix is ​​used up, the atomizer matrix can be replenished by manually injecting the atomizer matrix into the atomizer device. Therefore, there is no need to replace the entire atomizer device, which reduces the cost of use; however, this type of atomizer device is inconvenient to refill, and it is easy to leak and splash during refilling. Special care is required during operation, otherwise it is easy to pollute the environment or get on the user's hands or body. Utility Model Content

[0003] The present application provides an atomization device and an atomization system, which are used to solve the problem that it is inconvenient and easy to leak the atomization matrix of the atomization device.

[0004] In one embodiment, an atomization device is provided, comprising: a accommodating chamber with an open end, the accommodating chamber being used to accommodate a detachable atomized liquid container; and a puncturing structure arranged in the accommodating chamber, for puncturing a portion of the side wall of the atomized liquid container to form a liquid outlet channel when the atomized liquid container is loaded into the accommodating chamber.

[0005] In one embodiment, the open end is located at the top of the accommodating cavity, and the piercing structure is arranged at the lower part of the side wall of the accommodating cavity and has a set distance from the bottom surface of the accommodating cavity.

[0006] In one embodiment, the puncturing structure includes a puncturing member; the puncturing member includes at least one puncturing portion; the puncturing portion includes a blade portion; the cutting direction of the blade portion is opposite to the loading direction of the atomized liquid container.

[0007] In one embodiment, the atomization device further includes a liquid guiding member having one end extending into the accommodating cavity and close to the puncturing structure; the liquid guiding member is located downstream of the puncturing structure.

[0008] In one embodiment, the atomization device also includes an atomization bin arranged side by side with the accommodating cavity; the puncture structure is arranged on a side of the accommodating cavity close to the atomization bin; the liquid guiding member connects the accommodating cavity and the atomization bin to transfer the atomized matrix output through the liquid outlet channel to the atomization bin; the atomization bin is provided with a liquid inlet, and a liquid storage member is provided in the atomization bin, and the liquid guiding member is fitted up and down with the liquid storage member through the liquid inlet.

[0009] In one embodiment, the atomization device further comprises a sealing seat; one side of the sealing seat is located at the lower side of the puncture structure and forms at least a portion of the accommodating cavity.

[0010] In one embodiment, the atomization device also includes a bracket; the bracket forms part of the accommodating cavity; the bracket is provided with a plurality of support members extending toward the inner side of the accommodating cavity and supporting the inserted atomization liquid container; the sealing seat is provided with a plurality of slots, and the support members are inserted into the slots to press the sealing seat.

[0011] In one embodiment, a sealing member is provided on the inner wall of the accommodating cavity, and the sealing member is provided between the puncturing structure and the open end, and is used to tightly cooperate with the outer wall of the inserted atomized liquid container to form at least one interface space in the accommodating cavity that is isolated from the external environment.

[0012] In one embodiment, the accommodating cavity includes a bottleneck cavity and a bottle body cavity connected to the bottleneck cavity; the bottleneck cavity is a cylindrical cavity with a diameter of 12-15 mm; or, the accommodating cavity also includes a bottleneck cavity, a bottle body cavity, and a bottle mouth cavity, and the bottle mouth cavity and the bottle body cavity are respectively arranged at two ends of the bottleneck cavity and are connected to each other; the end of the puncturing structure extends out of the bottle body cavity.

[0013] In one embodiment, an atomization system is also provided, comprising an atomization device and an atomization liquid container; the atomization device is any of the atomization devices described above; the atomization liquid container comprises a bottle body and a bottleneck arranged around the bottle body; a shoulder is formed at the connection position between the bottle body and the bottleneck; when the atomization liquid container is loaded into the accommodating cavity of the atomization device, the puncturing structure of the atomization device can puncture the shoulder and at least part of the side wall connecting the bottle body and the shoulder to form a liquid outlet channel.

[0014] According to the atomization device and the atomization system of the above-mentioned embodiment, a puncture structure is provided in the accommodating cavity. When the atomization liquid container is loaded into the accommodating cavity, a part of the side wall of the atomization liquid container can be punctured by the puncture structure to form a liquid outlet channel, thereby solving the problem of inconvenient replenishment of the atomization matrix and easy leakage. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 A three-dimensional schematic diagram of an atomization system in an embodiment;

[0016] Figure 2 A schematic cross-sectional view of an atomization system in one embodiment;

[0017] Figure 3 A schematic cross-sectional view of an atomizing liquid container of an atomizing system after being inserted into an atomizing device in one embodiment;

[0018] Figure 4A three-dimensional schematic diagram of a puncture structure of an atomization device in an embodiment;

[0019] Figure 5 A partial three-dimensional schematic diagram of an atomization device in an embodiment;

[0020] Figure 6 A three-dimensional schematic diagram of a sealing seat of an atomizing device in an embodiment;

[0021] The accompanying drawings are marked as follows: 11-accommodating chamber, 111-open end, 112-fixing member, 113-sealing member, 114-bottleneck chamber, 115-bottle body chamber, 116-bottle mouth chamber, 12-piercing structure, 121-piercing member, 1211-installing portion, 1212-piercing portion, 1213-arc segment, 1214-blade portion, 1215-threaded hole, 122-screw, 13-atomized liquid container, 131-bottle body, 1311-shoulder, 132-bottleneck, 133-bottle mouth, 134-liquid outlet channel, 133-through hole, 14-bracket, 141-support, 15-liquid guide, 16-atomization chamber, 17-atomization assembly, 171-liquid storage part, 172-heating part, 18-nozzle, 19-power supply, 20-atomization matrix, 21-sealing seat, 211-lower part, 212-support part, 213-connecting channel, 214-slot. DETAILED DESCRIPTION

[0022] The present application is further described in detail below by specific embodiments in conjunction with the accompanying drawings. Wherein similar elements in different embodiments adopt associated similar element numbers. In the following embodiments, many detailed descriptions are intended to enable the present application to be better understood. However, those skilled in the art can easily recognize that some of the features can be omitted in different situations, or can be replaced by other elements, materials, and methods. In some cases, some operations related to the present application are not shown or described in the specification, in order to avoid the core part of the present application being overwhelmed by too much description, and for those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations based on the description in the specification and the general technical knowledge in the art.

[0023] In addition, the features, operations or characteristics described in the specification can be combined in any appropriate manner to form various implementations. At the same time, the steps or actions in the method description can also be interchanged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the various sequences in the specification and the drawings are only for the purpose of clearly describing a certain embodiment and are not meant to be a required sequence, unless otherwise specified that a certain sequence must be followed.

[0024] The serial numbers of the components in this document, such as "first", "second", etc., are only used to distinguish the objects described and do not have any order or technical meaning. The "connection" and "coupling" mentioned in this application, unless otherwise specified, include direct and indirect connections (couplings).

[0025] Aiming at the problem that the e-liquid bottle of the existing atomizer device is easy to leak and cause pollution when it is loaded, in the present application, a puncture structure is provided in the accommodating cavity, so that when the atomizer liquid container is loaded into the accommodating cavity, part of the side wall of the atomizer liquid container can be opened through the puncture structure to form a liquid outlet channel, thereby solving the problem that it is inconvenient to replenish the atomizer matrix and it is easy to leak, and has the advantages of being easy to use and environmentally friendly.

[0026] In one embodiment, an atomization device is provided, which mainly includes a receiving chamber 11, a puncture structure 12, etc. Figures 1 to 4 , which is a schematic diagram of the atomization device being applied to the atomization system.

[0027] The accommodating chamber 11 has an open end 111 for accommodating a detachably loaded atomized liquid container 13. The piercing structure 12 is disposed in the accommodating chamber 11, and is used to pierce a portion of the side wall of the atomized liquid container 13 to form a liquid outlet channel 134 when the atomized liquid container 13 is loaded into the accommodating chamber 11. The portion of the side wall of the atomized liquid container may include a wall surface at its end and a side wall surface.

[0028] When the atomized liquid container 13 is loaded into the accommodating cavity 11, the puncturing structure 12 interferes with the side wall of the atomized liquid container 13, and part of the side wall of the atomized liquid container 13 is cut, thereby puncturing part of the side wall of the atomized liquid container 13 to form a liquid outlet channel 134, thereby avoiding the defects of the prior art that it is inconvenient to replenish the atomized matrix and it is easy to leak. The present application has the advantages of being easy to use and environmentally friendly.

[0029] In some embodiments, the opening of the open end 111 of the accommodating chamber 11 faces upward, and the atomized liquid container 13 is inserted into the accommodating chamber 11 upside down through the open end 111. The atomized matrix 20 in the atomized liquid container 13 can flow out through the liquid outlet channel 134 under the action of gravity. It can be understood that in other embodiments, the opening of the open end of the accommodating chamber can also be in other directions, and correspondingly, the atomized liquid container can be installed in the accommodating chamber at other angles.

[0030] In some embodiments, the shape and size of the accommodating chamber 11 are comparable to those of the atomized liquid container 13, so that the accommodating chamber 11 has a certain guiding function. When the atomized liquid container 13 is loaded, it can be loaded into the accommodating chamber 11 with a relatively stable trajectory, so that the piercing structure 12 can stably pierce part of the side wall of the atomized liquid container to form a relatively consistent liquid outlet channel 134.

[0031] In one embodiment, the open end 111 is located at the top of the accommodating chamber 11. The puncture structure 12 is arranged at the lower part of the side wall of the accommodating chamber 11 and has a set distance from the bottom surface of the accommodating chamber 11. In the process of loading the atomized liquid container 13 into the accommodating chamber, the shoulder 1311 of the atomized liquid container 13 contacts the puncture structure 12, and when the atomized liquid container 13 is continuously inserted, the shoulder and side wall of the atomized liquid container 13 are continuously cut, and a certain length of the liquid outlet channel 134 is formed in the axial direction; after the atomized liquid container 13 is inserted into place, since the puncture structure 12 has a certain distance from the bottom surface of the accommodating chamber 11, that is, the distance between the puncture structure 12 and the bottom surface of the accommodating chamber 11 is greater than the distance from the end surface (shoulder 1311) of the atomized liquid container 13 to the bottom surface of the accommodating chamber 11, thereby avoiding the problem of the puncture structure 12 blocking the liquid outlet channel 134, so that the atomized matrix 20 of the atomized liquid container 13 can flow out smoothly through the liquid outlet channel 134.

[0032] In one embodiment, the piercing structure 12 includes a piercing member 121. The piercing member 121 includes at least one piercing portion 1212, each piercing portion 1212 includes a blade portion 1214, and the cutting direction of the blade portion 1214 is opposite to the loading direction of the atomized liquid container 13. Through the provision of the blade portion 1214, when the atomized liquid container 13 is inserted, the side wall of the atomized liquid container 13 can be cut more conveniently, thereby forming an open liquid outlet channel 134.

[0033] It can be understood that the number of piercing portions 1212 can be set to one or more according to actual needs.

[0034] Furthermore, the blade portion 1214 is located at the lower part of the accommodating chamber 11 and has a set distance from the bottom surface of the accommodating chamber 11, so that part of the side wall of the atomized liquid container 13 can be continuously cut during the insertion process of the atomized liquid container 13, and the piercing member 121 can be prevented from blocking the cut liquid outlet channel 134.

[0035] In one embodiment, the piercing member 121 includes mounting portions 1211 disposed on both sides of the two piercing portions 1212. An arc segment 1213 is formed between the two mounting portions 1211, and the arc surface of the arc segment 1213 matches the shape of the atomized liquid container 13, so that it can fit with the outer wall surface of the atomized liquid container 13, thereby improving the stability of the atomized liquid container 13.

[0036] The piercing portion 1212 is extended on the arc segment 1213 toward the inner side of the accommodating cavity 11 , so as to interfere with the inserted atomized liquid container 13 to pierce a portion of the side wall of the atomized liquid container 13 to form a liquid outlet channel 134 .

[0037] In some embodiments, the piercing structure 12 further includes a fastening assembly for fixing the piercing member 121 in the accommodating cavity 11. The piercing member 121 can be fixedly installed in the accommodating cavity 11 by the fastening assembly to pierce the atomized liquid container 13 to form a liquid outlet channel 134.

[0038] In some embodiments, the atomizing device further comprises a support 14, wherein the support 14 forms part of the accommodating cavity 11. The piercing member 121 is fastened to the support 14 by a fastening assembly, and the piercing portion 1212 extends into the accommodating cavity 11.

[0039] In some embodiments, the bracket 14 can be used as a mounting frame of the atomization device for installation of various components. It can be an integral structure or a split assembly structure, and can be made of plastic injection molding or metal material.

[0040] In some embodiments, the mounting portion 1211 is provided with a threaded hole 1215; the fastening assembly includes a screw 122 that cooperates with the threaded hole 1215 to lock the piercing member 121. Correspondingly, a corresponding screw hole can be provided on the bracket 14, and the screw 122 is locked into the threaded hole 1215, so that the piercing member 121 is fixed in the accommodating cavity 11 of the bracket 14.

[0041] It is understandable that in some embodiments, the fastening assembly can also adopt other structural forms, such as providing snap-fitting buckles, buckle holes, etc. between the piercing member 121 and the side wall of the accommodating cavity 11, and fixing the piercing member 121 to the side wall of the accommodating cavity 11 by snap-fitting.

[0042] In one embodiment, the atomizing device further includes a liquid guide 15 having one end extending in the accommodating chamber 11 and close to the liquid outlet channel 134. The atomized matrix 20 outputted from the atomized liquid container 13 through the liquid outlet channel 134 can be absorbed by one end of the liquid guide 15 and transmitted to the atomizing assembly 17 of the atomizing device for heating and atomization to generate an aerosol.

[0043] It can be understood that the material of the liquid-conducting member 15 can be liquid-conducting cotton or porous ceramics.

[0044] In one embodiment, the atomizing device further includes an atomizing chamber 16 disposed side by side with the accommodating chamber 11. The piercing structure 12 is disposed on one side of the accommodating chamber 11 close to the atomizing chamber 16. The liquid guide 15 connects the accommodating chamber 11 and the atomizing chamber 16 to transfer the atomized matrix 20 output through the liquid outlet channel 134 to the atomizing chamber 16. Figure 3 The arrows show the flow direction.

[0045] It is understandable that the atomizing device is further provided with an atomizing assembly 17 in the atomizing chamber 16 to heat and atomize the input atomizing matrix 20. The atomizing assembly 17 may include a liquid storage member 171 and a heating member 172 connected to the liquid storage member 171. The atomizing matrix 20 adsorbed by the liquid storage member 171 is heated and atomized by the heating member 172 to generate an aerosol. Of course, the atomizing device may also include a nozzle 18, a power supply 19, etc., which will not be described in detail here.

[0046] In one embodiment, the bracket 14 forms an atomization bin 16 at a position parallel to the accommodating cavity 11; in one embodiment, the bracket 14 can form an installation cavity for installing the atomization bin 16 at a position parallel to the accommodating cavity 11, and the atomization bin 16 is arranged in the installation cavity and sealed with the installation cavity.

[0047] In some embodiments, the first end of the liquid guide 15 extends from the side wall of the accommodating chamber 11 and is located below the piercing member 121. After the atomized matrix 20 of the atomized liquid container 13 flows out of the liquid outlet channel, it can be absorbed by the first end of the liquid guide 15 and transferred to the atomization chamber 16.

[0048] In some embodiments, a liquid inlet is provided on the lower end surface of the atomizing chamber 16. The lower end of the liquid storage member 171 of the atomizing assembly 17 is exposed at the liquid inlet. The second end of the liquid guide member 15 is arranged below the liquid inlet and is closely attached to the lower end surface of the exposed portion of the liquid storage member 171.

[0049] In some embodiments, a liquid inlet may also be provided on the side wall of the atomization bin 16. The second end of the liquid guide 15 is arranged opposite to the liquid inlet and may extend into the liquid inlet to fit tightly with the upper and lower parts of the liquid storage part 171 of the atomization assembly 17. The liquid guide may be sandwiched between multiple liquid storage parts, and the upper end surface of the liquid guide may fit tightly with the lower end surface of the liquid storage part above it, and the lower end surface of the liquid guide may fit tightly with the lower end surface of the liquid storage part below it; the liquid guide may extend from the liquid inlet into the atomization bin and fit tightly with the lower end surface of the liquid storage part located in the atomization bin; or the liquid storage part 171 may extend out of the liquid inlet and fit with the second end of the liquid guide 15 to achieve the transmission of the atomized matrix.

[0050] When the atomized liquid container 13 is inserted into the accommodating cavity 11, a portion of the side wall of the atomized liquid container 13 is cut through the piercing member 121 to form a liquid outlet channel 134. The atomized matrix 20 flows out from the liquid outlet channel 134, is absorbed by the first end of the liquid guiding member 15 located below the piercing member 121, is transferred to the second end, and then is transferred to the liquid storage member 171, and is heated and atomized by the heating member 172 of the atomizing assembly 17 to generate an aerosol for the user to inhale.

[0051] In one embodiment, if Figure 5As shown, the atomizing device further includes a sealing seat 21. One side of the sealing seat 21 is located at the lower side of the puncture structure 12 and forms a part of the accommodating cavity 11. In some embodiments, the sealing seat 21 can be configured to accommodate the part of the atomized liquid container 13 inserted into the accommodating cavity 11 and located at the lower side of the puncture structure 12. Through the configuration of the sealing seat 21, it can be connected with the side wall of the atomized liquid container 13, thereby preventing the atomized matrix flowing out of the atomized liquid container 13 from overflowing, further reducing the risk of leakage of the atomized matrix.

[0052] In some embodiments, the atomized liquid container 13 includes a bottle body 131 and a bottleneck 132 disposed on the periphery of the bottle body 131; a shoulder 1311 is formed at the connection position between the bottle body 131 and the bottleneck 132. Figure 6 As shown, the shape of the lower portion 211 of the sealing seat 21 is substantially the same as the outer shape of the bottle mouth 133 and the bottle neck 132 of the atomized liquid container 13, so that the bottle mouth 133 and the bottle neck 132 can be completely connected. The support portion 212 with an arc surface formed on the upper end surface of the sealing seat 21 can match the shape of the shoulder portion 1311 of the atomized liquid container 13, so that the shoulder portion 1311 can be engaged on the support portion 212, thereby playing a certain sealing role.

[0053] In some embodiments, the other side of the sealing seat 21 can extend to the atomization bin 16 and is provided with a connecting channel 213 that can connect the atomization bin 16 with the air inlet.

[0054] In one embodiment, the bracket 14 is provided with a plurality of support members 141 extending toward the inner side of the accommodating cavity 11 and supporting the inserted atomized liquid container 13. Correspondingly, the sealing seat 21 is provided with a plurality of slots 214, and the support members 141 are inserted into the slots 214 to press the sealing seat 21.

[0055] During assembly, the sealing seat 21 is loaded into the bracket 14 from the bottom, and the support member 141 is inserted into the card slot 214, thereby limiting the sealing seat 21 in the bracket 14. When the atomized liquid container 13 is loaded, the bottle mouth 133 and the bottleneck 132 of the atomized liquid container 13 enter the lower part of the sealing seat 21 in sequence, and when the shoulder 1311 of the atomized liquid container 13 reaches the support member 141, it is stopped by the support member 141 to form support. At this time, the shoulder 1311 of the atomized liquid container 13 can be connected with the supporting portion 212 of the sealing seat 21, and can also play a certain sealing effect to prevent the atomized matrix from flowing into the lower part of the sealing seat 21.

[0056] In some embodiments, the upper end surface of the support member 141 may also be a curved surface, matching the shape of the shoulder 1311 of the atomized liquid container 13 to better support the atomized liquid container 13 .

[0057] In some embodiments, the bracket 14 forms an installation cavity for installing the atomization bin 16 at a position parallel to the accommodating cavity 11, and the sealing seat 21 is correspondingly arranged on the bracket 14. It can be understood that the atomization device can also be provided with a fastener on the lower side of the seal to press and fix the sealing seat 21 on the bracket 14.

[0058] In some embodiments, the outer periphery of the sealing seat 21 may be provided with ridges to form a tight fit with the inner wall of the bracket 14 to further improve the sealing performance.

[0059] In one embodiment, a sealing member 113 may also be provided on the inner wall of the accommodating chamber 11. The sealing member 113 is provided between the puncturing structure 12 and the open end 111, and is used to closely cooperate with the outer wall of the inserted atomized liquid container 13 so that at least one interface space isolated from the external environment is formed in the accommodating chamber 11. The liquid outlet channel 134 formed by the opening of the puncturing structure 12 is located in the interface space.

[0060] The interface space is formed on the inner side of the accommodating cavity 11 by tightly fitting the seal 113 with the outer wall of the accommodating cavity 13 after the accommodating cavity 11 is inserted into the accommodating cavity 11. The accommodating matrix 20 flowing out of the accommodating cavity 13 can be enclosed in the interface space, thereby further preventing the accommodating cavity 11 from leaking out the accommodating cavity 11.

[0061] In some embodiments, the inner wall of the accommodating chamber 11 is provided with an accommodating groove, and the sealing member 113 is arranged in the accommodating groove. A fixing member 112 is also arranged at the open end 111 of the accommodating chamber 11 to compress and fix the sealing member 113 in the accommodating groove, so that the sealing member 113 can be pre-installed in the accommodating chamber 11. After the atomized liquid container 13 is inserted, the airtightness can be achieved.

[0062] In one embodiment, the accommodating chamber 11 includes a bottleneck chamber 114 and a bottle body chamber 115 connected to the bottleneck chamber 114, and the cross-sectional area of ​​the bottle body chamber 115 is larger than the cross-sectional area of ​​the bottleneck chamber 114. The bottleneck chamber 114 is a cylindrical cavity with a diameter of 12-15 mm, and one end of the bottleneck chamber 114 is connected to the bottle body chamber 115, and its size is comparable to that of the atomized liquid container 13.

[0063] The bottle neck cavity 114 and the bottle body cavity 115 can be arranged to be similar to the outer shape of the atomized liquid container 13 , thereby providing a guide for the insertion of the atomized liquid container 13 , so that the atomized liquid container 13 can be stably arranged in the accommodating cavity 11 .

[0064] In one embodiment, the accommodating chamber 11 includes a bottleneck chamber 114, a bottle body chamber 115, and a bottle mouth chamber 116 disposed at the lower side of the bottleneck chamber 114. The bottle mouth chamber 116 passes through the other end of the bottleneck chamber 114. The bottle body chamber 115 and the bottle mouth chamber 116 are located at opposite sides of the bottleneck chamber 114 and are mutually connected. The end of the piercing structure 12 extends out of the bottle body chamber 115.

[0065] By setting the bottle mouth cavity 116, the atomized liquid container 13 can be directly inserted into the accommodating cavity 11 without removing the bottle mouth 133 of the atomized liquid container 13, which is more convenient to use and can avoid the risk of atomized liquid leakage caused by opening the bottle mouth 133.

[0066] In some embodiments, the bottle body cavity 115 is a cylindrical cavity with a diameter of 19 mm to 22 mm; the bottle mouth cavity 116 is a cylindrical cavity with a height of 10 to 15 mm; and the length of the bottle neck cavity 114 is 10 to 21 mm. In some embodiments, the length of the bottle body cavity 115 is 37 to 41 mm. By setting the sizes of the bottle body cavity 115, the bottle neck cavity 114, and the bottle mouth cavity 116 to be equivalent to the sizes of the atomizing liquid container 13, the atomizing liquid container 13 can be better inserted into the atomizing device 10, and the insertion connection between the two is facilitated.

[0067] It can be understood that in some embodiments, the bottle mouth cavity 116, the bottleneck cavity 114 and the bottle body cavity 115 can be integrally formed on the bracket of the atomizer host; or they can be assembled on the bracket of the atomizer host by multiple components, and their materials can be made of plastic, silicone or other materials.

[0068] It can be understood that in some embodiments, a guide section can be provided at the insertion end of the bottle mouth cavity 116, so that when the bottle mouth 133 is inserted, the entire atomized liquid container 13 can be guided to the center position of the accommodating cavity 11, thereby facilitating better positioning of the atomized liquid container 13.

[0069] In one embodiment, an atomization system is further provided, comprising an atomization device and an atomization liquid container 13. The atomization device is the atomization device of any of the above embodiments.

[0070] The atomized liquid container 13 includes a bottle body 131 and a bottleneck 132 arranged outside the bottle body 131 ; a shoulder 1311 is formed at the connection position between the bottle body 131 and the bottleneck 132 .

[0071] When the atomized liquid container 13 is installed in the accommodating chamber 11 of the atomizing device, the piercing structure 12 of the atomizing device can pierce the shoulder 1311 and at least part of the side wall connecting the bottle body 131 and the shoulder 1311 to form a liquid outlet channel 134 .

[0072] In some embodiments, the bottle body 131 and the bottleneck 132 may be integrally formed and may be made of puncturable materials such as plastic, silicone, etc. Further, the atomized liquid container 13 may also include a bottle mouth 133 disposed at the open end of the bottleneck 132, and the bottle mouth 133 seals the opening of the atomized liquid container 13, thereby preventing the atomized matrix 20 in the atomized liquid container 13 from flowing out.

[0073] In some embodiments, when a seal 113 is further provided on the inner wall of the accommodating chamber 11, the seal 113 is used to seal between the inner wall of the accommodating chamber 11 and the outer wall of the atomized liquid container 13, so that the accommodating chamber 11 has at least one interface space isolated from the external environment. The interface space is formed on the inner side of the accommodating chamber 11 by the seal 113 and the outer wall of the atomized liquid container tightly fitting after the atomized liquid container 13 is inserted into the accommodating chamber 11, and the atomized matrix 20 flowing out of the atomized liquid container 13 can be enclosed in the interface space, thereby further preventing the atomized liquid from leaking out, avoiding defects such as environmental pollution.

[0074] In some embodiments, the seal is a sealing ring made of a sealing silicone rubber disposed inside the accommodating cavity 11, and its shape matches the cross-sectional shape of the accommodating cavity 11. It is understandable that there may be multiple seals, and the multiple seals are arranged at intervals or adjacently along the height direction of the accommodating cavity 11, and the material of the sealing ring is not limited to the sealing silicone rubber.

[0075] It is understandable that the atomizing device may further include a power supply 19, a nozzle 18, a control circuit, etc., which will not be elaborated here.

[0076] When in use, the atomized liquid container 13 can be directly inserted into the accommodating chamber 11 without opening the bottle mouth 133 of the atomized liquid container 13. Under the restriction of the bottleneck chamber 114 and the bottle body chamber 115, the atomized liquid container 13 can be stably inserted into the accommodating chamber 11. When the shoulder 1311 where the bottleneck 132 of the atomized liquid container 13 and the bottle body 131 meet reaches the position of the piercing member 121, the shoulder 1311 of the atomized liquid container 13 is cut by the blade 1214 of the piercing member 121. When the atomized liquid container 13 is continuously inserted, the piercing member 121 continues to cut the side wall of the atomized liquid container 13, thereby forming an open liquid outlet channel 134 at the shoulder 1311 and part of the side wall of the atomized liquid container 13. After the atomized liquid container 13 is in place, the bottle mouth 133 of the atomized liquid container 13 is located in the bottle mouth cavity 116, the bottle neck 132 is located in the bottle neck cavity 114, and the bottle body 131 is located in the bottle body cavity 115. At this time, since the puncture structure 12 is at a certain distance from the bottom surface of the accommodating cavity 11, that is, the distance between the puncture structure 12 and the bottom surface of the accommodating cavity 11 is greater than the distance from the end face (shoulder 1311) of the atomized liquid container 13 to the bottom surface of the accommodating cavity 11, the problem of the puncture structure 12 blocking the liquid outlet channel 134 is avoided, so that the atomized matrix 20 of the atomized liquid container 13 can flow out smoothly through the liquid outlet channel 134.

[0077] The first end of the liquid-guiding member 15 below the piercing member 121 absorbs the atomized matrix 20 flowing out of the liquid outlet channel 134, and then transmits it to the second end of the atomization bin 16, and then transmits it to the liquid storage member 171 closely attached to the liquid-guiding member 15, and then is heated and atomized by the heating member 172 of the atomization assembly 17 to generate an aerosol for the user to inhale.

[0078] The above specific examples are used to illustrate the present application, which is only used to help understand the present application and is not intended to limit the present application. For technicians in the technical field to which the present application belongs, they can also make some simple deductions, deformations or substitutions based on the ideas of the present application.

Claims

1. An atomizing device, characterized in that: The atomizing device comprises: a containing chamber (11) having an open end (111), the containing chamber (11) being used to contain a detachably inserted atomizing liquid container (13); and The piercing structure (12) provided in the accommodating cavity (11) is used to pierce part of the side wall of the atomized liquid container (13) to form a liquid outlet channel (134) when the atomized liquid container (13) is loaded into the accommodating cavity (11).

2. The atomizing device according to claim 1, characterized in that: The open end (111) is located at the top of the accommodating cavity (11), and the piercing structure (12) is arranged at the lower part of the side wall of the accommodating cavity (11) and has a set distance from the bottom surface of the accommodating cavity (11).

3. The atomizing device according to claim 1, characterized in that: The piercing structure (12) comprises a piercing member (121); the piercing member (121) comprises at least one piercing portion (1212); The piercing portion (1212) includes a blade portion (1214); the cutting direction of the blade portion (1214) is opposite to the loading direction of the atomized liquid container (13).

4. The atomizing device according to claim 1, characterized in that: The atomizing device further comprises a liquid guiding member (15) having one end extending into the accommodating cavity (11) and close to the puncturing structure (12); The liquid guiding member (15) is located downstream of the puncturing structure (12).

5. The atomizing device according to claim 4, characterized in that: The atomizing device further comprises an atomizing bin (16) arranged side by side with the accommodating chamber (11); the piercing structure (12) is arranged on a side of the accommodating chamber (11) close to the atomizing bin (16); The liquid guide member (15) is connected to the accommodating chamber (11) and the atomization chamber (16) so as to transmit the atomized matrix (20) output through the liquid outlet channel (134) to the atomization chamber (16); The atomizing chamber (16) is provided with a liquid inlet, a liquid storage component (171) is provided inside the atomizing chamber (16), and the liquid guiding component (15) is vertically attached to the liquid storage component (171) through the liquid inlet.

6. The atomizing device according to claim 1, characterized in that: The atomizing device further comprises a sealing seat (21); One side of the sealing seat (21) is located at the lower side of the puncture structure (12) and forms at least a portion of the accommodating cavity (11).

7. The atomizing device according to claim 6, characterized in that: The atomizing device further comprises a bracket (14); the bracket (14) forms a portion of the accommodating cavity (11); The support (14) is provided with a plurality of support members (141) extending toward the inner side of the accommodating cavity (11) and supporting the inserted atomized liquid container (13); The sealing seat (21) is provided with a plurality of slots (214), and the support member (141) is inserted into the slots to press the sealing seat (21).

8. The atomizing device according to any one of claims 1 to 7, characterized in that: The inner wall of the accommodating cavity (11) is provided with a sealing member (113), and the sealing member (113) is provided between the puncturing structure (12) and the open end (111), and is used to tightly cooperate with the outer wall of the inserted atomized liquid container (13) so as to form at least one interface space in the accommodating cavity (11) that is isolated from the external environment.

9. The atomizing device according to any one of claims 1 to 7, characterized in that: The accommodating chamber (11) comprises a bottleneck chamber (114) and a bottle body chamber (115) communicating with the bottleneck chamber (114); The bottleneck cavity (114) is a cylindrical cavity with a diameter of 12-15 mm; Alternatively, the accommodating cavity further comprises a bottleneck cavity (114), a bottle body cavity (115), and a bottle mouth cavity (116), wherein the bottle mouth cavity (116) and the bottle body cavity (115) are respectively arranged at two ends of the bottleneck cavity (114) and are interconnected; The end of the puncturing structure (12) extends out of the bottle body cavity (115).

10. An atomization system, characterized in that: It comprises an atomizing device and an atomizing liquid container (13); the atomizing device is the atomizing device according to any one of claims 1 to 9; The atomized liquid container (13) comprises a bottle body (131) and a bottleneck (132) arranged on the periphery of the bottle body (131); a shoulder (1311) is formed at the connection position between the bottle body (131) and the bottleneck (132); When the atomized liquid container (13) is loaded into the accommodating chamber (11) of the atomizing device, the piercing structure (12) of the atomizing device can pierce the shoulder (1311) and at least a portion of the side wall of the bottle body (131) connected to the shoulder (1311), thereby forming a liquid outlet channel (134).