Atomizer, suction nozzle piece and atomization device thereof

By incorporating a liquid storage chamber and an isolation component in the liquid passage design within the atomizer, the problem of volatile gases from the liquid matrix entering the air passage is solved, thereby improving product quality and user experience.

CN223958323UActive Publication Date: 2026-03-03NEVILLA (HONG KONG) LTD
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Patent Information

Application Number
CN202520416885.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-03-03
Estimated Expiration
2035-03-11

AI Technical Summary

Technical Problem

During storage and transportation, the volatile nature of the liquid matrix in atomizers can cause volatile gases to enter the air passages, affecting product quality and user experience.

Method used

An isolation component is installed between the liquid storage chamber and the first chamber component in the atomizer. By controlling the state of the liquid passage, the volatile gas of the liquid matrix is ​​prevented from entering the gas passage. The linkage design of the blocking component and the isolation component ensures that the liquid storage chamber and the storage chamber are connected when needed, and remain sealed otherwise.

Benefits of technology

It effectively prevents volatile gases from entering the airway, improves product quality, reduces the concentration decay of odorous substances, and enhances the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an atomizer, a suction nozzle piece and an atomizing device thereof. Comprising a suction nozzle piece, a liquid storage cavity is formed in the suction nozzle piece, and the liquid storage cavity is used for storing a first liquid substrate; a first storage cavity is formed in the first bin body part; the isolation piece is arranged between the first storage cavity and the liquid storage cavity, and the isolation piece is used for isolating the liquid storage cavity from the first storage cavity; the isolation piece is further provided with a liquid passing channel, and the liquid passing channel communicates with the first storage cavity and the liquid storage cavity; the liquid passing channel is configured to have an opening state and a blocking state. According to the atomizer, the liquid storage cavity is formed in the suction nozzle piece, the isolation piece is arranged between the first bin body piece and the suction nozzle piece, and by controlling the state of the liquid passing channel in the isolation piece, the first liquid substrate can be prevented from entering the air channel during volatilization and even escaping out of the atomizer.
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Description

Technical Field

[0001] This application relates to the field of atomization technology, and in particular to atomizers, mouthpieces and atomizing devices thereof. Background Technology

[0002] An atomizer is an electronic device that transforms its internal matrix into an inhalable aerosol. Inside the atomizer, there is a storage chamber for storing the odor-containing matrix and an airway. After the initial liquid matrix in the storage chamber is transformed into an aerosol, it travels through the airway to the outside of the atomizer and is inhaled by the user.

[0003] However, during the production and use of atomizers, the first liquid matrix stored inside the atomizer is volatile and prone to volatilization during storage and transportation. The volatilized gas can easily enter the airway from the connection point and escape to the outside of the atomizer, thus condensing into droplets inside the packaging bag, affecting product quality. Furthermore, the volatilization also affects the concentration of odorous substances in the matrix, causing a decrease in odor concentration and affecting the user's experience. Summary of the Invention

[0004] The embodiments of this application provide an atomizer, a mouthpiece, and an atomizing device thereof, which can optimize the liquid injection structure design to avoid the volatile gas of the first liquid matrix entering the air passage during storage and transportation, thus affecting the product quality and user experience of the atomizer.

[0005] In a first aspect, embodiments of this application provide an atomizer, comprising:

[0006] A suction nozzle, wherein the suction nozzle has a liquid storage chamber for storing a first liquid matrix;

[0007] A first compartment component, wherein a first storage cavity is provided inside the first compartment component;

[0008] An isolator is disposed between the first storage cavity and the liquid storage cavity, the isolator being used to isolate the liquid storage cavity and the first storage cavity; the isolator is also provided with a liquid passage, the liquid passage being connected to the first storage cavity and the liquid storage cavity respectively;

[0009] The liquid passage is configured to have an open state and a blocked state.

[0010] In some embodiments, the atomizer further includes:

[0011] A blocking element is provided detachably within the liquid passage; after the blocking element is removed, the liquid passage is in an open state.

[0012] In some embodiments, the isolation member includes a first isolation member and a second isolation member, the liquid passage includes a first liquid passage and a second liquid passage, and the first isolation member and the second isolation member are movable relative to each other;

[0013] When the first isolation member and the second isolation member are in at least one relative position, the first liquid passage and the second liquid passage are connected, thereby the liquid passage is in the open state;

[0014] When the first isolation member and the second isolation member are in at least one relative position, the first liquid passage and the second liquid passage are spaced apart or misaligned, thereby making the liquid passage in the blocked state.

[0015] In some embodiments, the blocking member and the suction nozzle are linked together, and the suction nozzle and the first chamber member can move relative to each other, so that the liquid storage chamber and the first storage chamber are in a first relative position or a second relative position.

[0016] In the first relative position, the blocking member causes the liquid passage to be in the open state, and the first storage cavity is connected to the liquid storage cavity through the liquid passage, so that the first liquid matrix in the liquid storage cavity enters the first storage cavity; in the second relative position, the blocking member causes the liquid passage to be in the blocked state, the first storage cavity and the liquid storage cavity are not connected, and the liquid storage cavity is in a sealed state.

[0017] In some embodiments, the blocking member is a protruding structure provided on the side of the suction nozzle member near the isolating member;

[0018] When in the first relative position, the protruding structure is misaligned with the liquid passage; when in the second relative position, the protruding structure blocks the liquid passage to keep the liquid storage chamber sealed.

[0019] In some embodiments, the atomizer further includes:

[0020] An airway tube is provided, at least partially disposed within the first chamber, with one end of the airway tube extending toward the nozzle assembly to communicate with the nozzle opening of the nozzle assembly. A first through hole is provided on the side wall of the airway tube, and a second through hole corresponding to the first through hole is formed on one side of the first storage cavity.

[0021] The suction nozzle rotates relative to the first chamber component with the air passage component as the pivot, so that the liquid storage chamber and the first storage chamber are in a first relative position or a second relative position. When in the first relative position, the first through hole and the second through hole are connected.

[0022] In some embodiments, the airway tube is disposed through the first storage cavity, or the airway tube is disposed on one side of the first storage cavity.

[0023] In some embodiments, the airway tube passes through the liquid storage chamber, or the nozzle has at least two liquid storage chambers, which surround the airway tube, and the number of liquid passages corresponds to the number of liquid storage chambers.

[0024] In some embodiments, the liquid storage chamber has an opening on the side near the isolator. When in the first relative position, the opening communicates with the liquid passage so that the first liquid matrix in the liquid storage chamber enters the first storage chamber through the opening and the liquid passage.

[0025] In some embodiments, the suction nozzle has an extension extending toward the first chamber member, the extension covering the exterior of the first chamber member;

[0026] The extension has a positioning structure on its inner side, and the outer wall of the first chamber has a matching structure corresponding to the positioning structure. When the suction nozzle moves relative to the first chamber, the positioning structure and the matching structure work together to position the liquid storage chamber and the first storage chamber at a first relative position or a second relative position.

[0027] In some embodiments, the atomizer further includes:

[0028] The second compartment component is disposed on one side of the first compartment component;

[0029] The second chamber contains a second storage cavity and an atomizing core; the second storage cavity is used to store the atomizing matrix, and the atomizing core is used to atomize the atomizing matrix;

[0030] The first compartment component and the second compartment component are integrally formed, or the first compartment component and the second compartment component are detachably connected.

[0031] In some embodiments, the second chamber is further provided with a second air passage, and the atomizing core is connected between the second storage cavity and the second air passage.

[0032] Secondly, embodiments of this application provide a nozzle for an atomizer, the nozzle having a nozzle opening and a liquid storage chamber for storing a first liquid matrix.

[0033] The atomizer includes a first chamber and an isolator; the first chamber has a first storage cavity; the isolator is disposed between the first storage cavity and the liquid storage cavity, and is used to isolate the liquid storage cavity and the first storage cavity; the isolator also has a liquid passage, which is connected to the first storage cavity and the liquid storage cavity respectively; the liquid passage is configured to have an open state and a blocked state.

[0034] Thirdly, embodiments of this application provide an atomizing device, the atomizing device including an atomizer and a battery assembly, the battery assembly being electrically connected to the atomizer, and the atomizer being any one of the atomizers described above.

[0035] The beneficial effects of this application are: by setting a liquid storage chamber in the nozzle and setting an isolation member between the first chamber and the nozzle, and by controlling the state of the liquid passage on the isolation member, it is possible to prevent the first liquid matrix from entering the air passage or even escaping outside the atomizer when it evaporates, thereby improving the quality of the product, reducing the odor concentration decay of odorous substances, and thus improving the user experience. Attached Figure Description

[0036] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0037] Figure 1 This is a schematic diagram of the three-dimensional structure of an atomizer according to one embodiment of this application;

[0038] Figure 2 It is in this application Figure 1 A schematic diagram of the AA cross-section three-dimensional structure;

[0039] Figure 3 It is in this application Figure 1 A schematic diagram of the three-dimensional cross-sectional structure of BB;

[0040] Figure 4 This is a schematic cross-sectional view of an atomizer according to one embodiment of this application;

[0041] Figure 5 This is a three-dimensional structural diagram of a suction nozzle component according to an embodiment of this application;

[0042] Figure 6 This is a three-dimensional structural diagram of the atomizer portion of one embodiment of this application;

[0043] Figure 7This is a schematic diagram of the cooperation between the blocking element and the liquid passage in one embodiment of this application;

[0044] Figure 8 This is a schematic diagram of the cooperation between the first and second spacers in one embodiment of this application;

[0045] Figure 9 This is a schematic diagram of the first and second spacers in another embodiment of this application.

[0046] Figure 10 This is a schematic diagram of the first and second spacers in yet another embodiment of this application;

[0047] Figure 11 This is a schematic diagram of the atomizing device structure according to one embodiment of this application.

[0048] Explanation of reference numerals in the attached drawings: 10-Mouthpiece; 11-Liquid reservoir; 20-First chamber; 21-First storage cavity; 30-Isolator; 31-Liquid passage; 210-First liquid storage element; 40-Blocking element; 32-First isolation element; 33-Second isolation element; 311-First liquid passage; 312-Second liquid passage; 41-Protruding structure; 50-Airway fitting; 12-Mouthpiece opening; 51-First through hole; 211-Second through hole; 111-Opening; 13-Extension; 131-Positioning structure; 201-Matching structure; 60-Second chamber; 61-Second storage cavity; 62-Atomizing core; 611-Second liquid storage element; 63-Second airway; 100-Atomizer; 70-Airway sealing element; 1000-Atomizing device; 200-Battery assembly. Detailed Implementation

[0049] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0050] Please refer to Figure 1 , Figure 2 and Figure 3 ,in, Figure 2 The liquid storage chamber 11 and the first storage chamber 21 are in a second relative position state; Figure 3 The liquid storage chamber 11 and the first storage chamber 21 are in a first relative position state; one embodiment of this application provides an atomizer 100, including:

[0051] The suction nozzle 10 has a liquid storage chamber 11 inside, which is used to store the first liquid matrix.

[0052] The first compartment component 20 has a first storage cavity 21 inside it;

[0053] An isolator 30 is disposed between the first storage cavity 21 and the liquid storage cavity 11. The isolator 11 is used to isolate the liquid storage cavity 11 and the first storage cavity 21. The isolator 11 is also provided with a liquid passage 31, which is connected to the first storage cavity 21 and the liquid storage cavity 11 respectively.

[0054] The liquid passage 31 is configured to have an open state and a closed state.

[0055] In this embodiment, the mouthpiece 10 is used to allow the user to conveniently inhale the aerosol generated in the atomizer 100. Specifically, this embodiment optimizes the internal structure of the mouthpiece 10 by providing a storage chamber 11 inside the mouthpiece 10 for storing the first liquid matrix.

[0056] First, the first liquid matrix in this application will be described. In one case, the first liquid matrix in this application can be an aerosol matrix that needs to be atomized into an aerosol by means of heating or ultrasonic vibration by the atomizer 100, such as e-liquid. In this case, an atomizing core can be provided in the first chamber component 20 to heat and atomize the first liquid matrix entering the first chamber component 20. In another case, the first liquid matrix in this application can be a volatile matrix that can evaporate without heating, such as flavoring, in which case an atomizing core may not be provided in the first chamber component 20.

[0057] In this embodiment, the first chamber 20 is another structure in the atomizer 100 used to store the first liquid matrix. It can store the first liquid matrix through the first storage chamber 21, and consume the first liquid matrix in the first storage chamber 21 when in use.

[0058] In one embodiment, the first liquid matrix is ​​initially stored in the reservoir 11 of the nozzle 10, while the first storage cavity 21 in the first chamber 20 does not store the first liquid matrix. Since the reservoir 11 is initially sealed, this prevents the first liquid matrix from evaporating and entering the air passage. An isolator 30 is positioned between the reservoir 11 and the first storage cavity 21 to isolate them, preventing communication between them initially and ensuring the airtightness of the reservoir 11. During use, by controlling the state of the liquid passage 31, the reservoir 11 in the nozzle 10 can communicate with the first storage cavity 21 in the first chamber 20 through the liquid passage 31 on the isolator 30, allowing the first liquid matrix in the reservoir 11 to enter the first storage cavity 21 through the liquid passage 31.

[0059] In one embodiment, a first liquid storage element 210 is provided in the first storage cavity 21, which can be used to absorb and store a first liquid matrix. In one example, the first liquid storage element 210 is a liquid storage cotton.

[0060] In this embodiment, the isolator 30 is used to block and connect the first storage chamber 21 and the liquid storage chamber 11. It controls the replenishment of the first liquid matrix into the first storage chamber 21 by controlling the liquid passage 31 to be in an open or blocked state. By setting the isolator 30, the first liquid matrix can be prevented from entering the air passage through the first storage chamber 21 or even escaping outside the atomizer during evaporation, thereby improving product quality, reducing the odor concentration decay of odorous substances, and ultimately enhancing the user experience.

[0061] In one embodiment, the spacer 30 is a sealing silicone.

[0062] In one embodiment, please refer to Figure 7 , Figure 9 and Figure 10 The atomizer 100 also includes:

[0063] The blocking element 40 is detachably disposed within the liquid passage 31; after the blocking element 40 is removed, the liquid passage 31 is in the open state.

[0064] In this embodiment, the blocking member 40 is used to control the state of the liquid passage 31. The blocking member 40 is described as being detachably mounted. First, the blocking member 40 can block the liquid passage 31, thus placing it in a blocked state.

[0065] In this embodiment, "removal" includes at least three cases:

[0066] In the first case, please refer to Figure 7 Structure (b) (refer to the arrow direction under Y in (b) for its removal direction), its blocking element 40 can be detached from the liquid passage 31, for example, it can be taken directly from the suction nozzle 10.

[0067] In the second case, please refer to Figure 7 Structure (a) in the diagram (its direction of movement is indicated by the arrow under the Y symbol in (a)), and please refer to... Figure 9 The (e) structure in the middle, Figure 9 The (e) structure in the middle is Figure 9 The structure in (c) is obtained by moving in the direction of the arrow marked X in the figure. The direction of movement of the blocking member 40 is shown by the arrow marked Y in the figure. It can be seen that the blocking member 40 can be moved away from the liquid passage 31 by a certain position without entering and leaving the liquid passage 31.

[0068] In the third case, please refer to Figure 10 Structures (f) and (g) are shown in the diagram, where structure (g) is obtained by moving structure (f) away from it via the arrow marked Y in the diagram. It can be seen that the blocking element 40 can move relative to the liquid passage 31, but does not need to leave the liquid passage 31.

[0069] In all three cases described above, "removal" indicates that after the blocking element 40 performs the "removal" step, the liquid passage 31 can be opened.

[0070] Please refer to Figure 7 In one embodiment, after the blocking member 40 is moved away from the liquid passage 31, the liquid passage 31 is in an open state. When the blocking member 40 is inside the liquid passage 31 or at one end of the liquid passage 31 to block it, the liquid passage 31 is in a blocked state. In this embodiment, the direction of removal of the blocking member 40 can be the same as or tangential to the extension direction of the liquid passage 31.

[0071] Please refer to Figure 10 In another embodiment, the blocking member 40 can be moved away from the liquid passage 31 by a certain position. In one relative position, the liquid passage 31 is in an open state, and in another relative position, the liquid passage 31 is in a blocked state. That is, the blocking member 40 in this application can also block the liquid passage 31 without completely leaving the liquid passage 31.

[0072] In this embodiment, the blocking member 40 can be driven manually by the user or electrically by a motor or other device.

[0073] The structure of the spacer 30 in this application is further optimized below. Please refer to [link / reference]. Figure 8 , Figure 9 and Figure 10 The isolation member 30 includes a first isolation member 32 and a second isolation member 33, and the liquid passage 31 includes a first liquid passage 311 and a second liquid passage 312. The first isolation member 32 and the second isolation member 33 can move relative to each other.

[0074] With the first isolation member 32 and the second isolation member 33 in at least one relative position, the first liquid passage 311 and the second liquid passage 312 are connected, thereby making the liquid passage 31 open.

[0075] With the first isolation member 32 and the second isolation member 33 in at least one relative position, the first liquid passage 311 and the second liquid passage 312 are spaced apart or misaligned, thereby making the liquid passage 31 in the blocked state.

[0076] In this embodiment, the isolation member 30 is further disassembled into a first isolation member 32 and a second isolation member 33, and the liquid passage 31 is further disassembled into a first liquid passage 311 and a second liquid passage 312. The relative movement between the first isolation member 32 and the second isolation member 33 controls the connection and disconnection of the first liquid passage 311 and the second liquid passage 312, thereby adjusting the state of the liquid passage 31. When the first liquid passage 311 and the second liquid passage 312 are connected, the liquid passage 31 is in the open state; when the first liquid passage 311 and the second liquid passage 312 are spaced apart or misaligned, the liquid passage 31 is in the blocked state.

[0077] The relative motion between the first spacer 32 and the second spacer 33 will be described below:

[0078] Please refer to Figure 8 In one embodiment, the first spacer 32 and the second spacer 33 can rotate relative to each other to adjust their relative positions.

[0079] Please refer to Figure 9 and Figure 10 In another embodiment, the first isolating member 32 and the second isolating member 33 can be moved relative to each other to adjust their relative positions. The direction of movement can be the same as or tangential to the extension direction of the liquid passage 31. When the first isolating member 32 and the second isolating member 33 are moved relative to each other to a distance or misalignment, the aforementioned blocking member 40 can further block the first liquid passage 311 and the second liquid passage 312.

[0080] The following section further optimizes the structure of atomizer 100; please refer to [the relevant documentation / reference]. Figure 1 , Figure 2 , Figure 3 and Figure 4 The blocking component 40 and the suction nozzle component 10 are linked together. The suction nozzle component 10 and the first chamber component 20 can move relative to each other, so that the liquid storage chamber 11 and the first storage chamber 21 are in a first relative position or a second relative position.

[0081] In the first relative position, the blocking member 40 keeps the liquid passage 31 open, and the first storage cavity 21 is connected to the liquid storage cavity 11 through the liquid passage 31, so that the first liquid matrix in the liquid storage cavity 11 enters the first storage cavity 21; in the second relative position, the blocking member 40 keeps the liquid passage 31 blocked, the first storage cavity 21 is not connected to the liquid storage cavity 11, and the liquid storage cavity 11 is in a sealed state.

[0082] First, the linkage between the blocking member 40 and the suction nozzle 10 will be explained, meaning that the blocking member 40 can move along with the movement of the suction nozzle 10. Second, the relative movement between the suction nozzle 10 and the first chamber body 20 in this embodiment will be explained:

[0083] In one embodiment, the first chamber component 20 is fixed, and the user drives the suction nozzle component 10 to move relative to the first chamber component 20. In another embodiment, the suction nozzle component 10 is fixed, and the user drives the first chamber component 20 to move relative to it. That is, in this application, the user can drive either the suction nozzle component 10 or the first chamber component 20 to move, so that they move relative to each other.

[0084] In this embodiment, the relative movement between the suction nozzle 10 and the first chamber body 20 can be either relative rotation or relative translation.

[0085] The operation of the atomizer 100 will be described using an example:

[0086] In the initial state, the liquid storage chamber 11 and the first storage chamber 21 are in the second relative position (please refer to...). Figure 2 In this position, the liquid storage chamber 11 in the suction nozzle 10 stores the first liquid matrix in the initial state, while the first storage chamber 21 does not store the first liquid matrix in the initial state and is isolated from the first storage chamber 21 in the first chamber body 20 by the isolation member 30.

[0087] When a user uses the atomizer 100 for the first time, by moving the mouthpiece 10 relative to the first chamber 20, the liquid reservoir 11 and the first storage chamber 21 are placed in a first relative position (see reference). Figure 1 In this position, the first storage chamber 21 is connected to the liquid storage chamber 11 through the liquid passage 31, so that the first liquid matrix in the liquid storage chamber 11 enters the first storage chamber 21 and can then enter the airway for the user to inhale.

[0088] When not in use, the suction nozzle 10 and the first chamber 20 are moved relative to each other repeatedly so that the liquid storage chamber 11 and the first storage chamber 21 are put back into the second relative position, so that the first storage chamber 21 in the first chamber 20 is isolated again.

[0089] It should be noted that, in one embodiment, the first storage cavity 21 may also contain a first liquid matrix, and the first liquid matrix may be replenished through the above-described working process.

[0090] Please refer to Figure 3 , Figure 4 and Figure 5 In one embodiment, the blocking member 40 is a protruding structure 41 provided on the side of the suction nozzle member 10 near the isolator member;

[0091] When in the first relative position, the protruding structure 41 is misaligned with the liquid passage 31; when in the second relative position, the protruding structure 41 blocks the liquid passage 31 so that the liquid storage chamber 11 is in a sealed state.

[0092] In this embodiment, the structure of the blocking member 40 is further optimized by incorporating a protruding structure 41 on the side of the suction nozzle 10 near the isolator. The protruding structure 41 blocks the liquid passage 31 on the isolator 30 when the suction nozzle 10 and the first chamber 20 are in a second relative position, i.e., when the liquid storage chamber 11 is not connected to the first storage chamber 21, thus ensuring the sealing of the first storage chamber 21. In its initial factory condition, the protruding structure 41 also further prevents the first liquid matrix from entering the first storage chamber 21 through the liquid passage 31 by sealing the liquid passage 31.

[0093] The specific structure of the atomizer 100 will be further explained below.

[0094] Please refer to Figure 2 , Figure 3 and Figure 4 In one embodiment, the atomizer 100 further includes:

[0095] An airway tube 50 is at least partially disposed within the first chamber 20. One end of the airway tube 50 extends toward the nozzle 10 to communicate with the nozzle opening 12 of the nozzle 10. A first through hole 51 is provided on the side wall of the airway tube 50, and a second through hole 211 corresponding to the first through hole 51 is formed on one side of the first storage cavity 21.

[0096] The nozzle component 10 rotates relative to the first chamber component 20 about the air passage component 50 as the pivot (please refer to the direction of rotation). Figure 2 and Figure 3 The label X and Figure 4 The marking Y in the figure is used to make the liquid storage chamber 11 and the first storage chamber 21 be in a first relative position or a second relative position. When they are in the first relative position, the first through hole 51 and the second through hole 211 are connected.

[0097] In this embodiment, the airway tube 50 is used to form an airway. A portion of the airway tube 50 is disposed within the nozzle 10, while another portion is disposed within the first chamber 20, to ensure simultaneous communication between the nozzle opening 12 of the nozzle 10 and the first storage cavity 21.

[0098] In this embodiment, the airway tube 50 is provided with a first through hole 51, and a second through hole 211 corresponding to the first through hole 51 is formed on one side of the first storage cavity 21. The first liquid matrix entering the first storage cavity 21 can further enter the airway of the airway tube 50 through the second through hole 211 and the first through hole 51, and then enter the mouthpiece 12 through the airway after evaporation for the user to inhale. Furthermore, when the first liquid matrix is ​​a matrix that needs to be heated and atomized, an atomizing core can be added to the airway tube 50 at the position corresponding to the first through hole 51 to atomize and generate the required aerosol.

[0099] In this embodiment, the relative motion of the nozzle 10 and the first chamber 20 is further optimized. They rotate relative to each other around the airway tube 50 as an axis of rotation.

[0100] It should be noted that during the relative rotation of the nozzle 10 and the first chamber 20, the airway tube 50 can be fixedly connected to either one. That is, the airway tube 50 can rotate with the rotation of the nozzle 10 or with the rotation of the first chamber 20, as long as it is ensured that in the first relative position, when the liquid storage chamber 11 is connected to the first storage chamber 21 through the liquid passage 31, the first through hole 51 and the second through hole 211 are connected. The first through hole 51 and the second through hole 211 are connected, that is, on the plane perpendicular to the extension direction of the airway tube 50, the projections of the first through hole 51 and the second through hole 211 at least partially overlap.

[0101] In one embodiment, the airway tube 50 is fixedly connected to the nozzle 10 so that the airway tube 50 rotates with the rotation of the nozzle 10. At this time, the position of the liquid passage 31 and the position where the first through hole 51 and the second through hole 211 are connected are set to correspond to each other, so as to ensure that when in the first relative position, the first liquid matrix can pass through the liquid passage 31, the first through hole 51 and the second through hole 211.

[0102] In another embodiment, the airway tube 50 is fixedly connected to the first chamber 20 so that the airway tube 50 rotates with the rotation of the first chamber 20. At this time, since the airway tube 50 is fixedly connected to the first chamber 20, it is necessary to keep the first through hole 51 and the second through hole 211 in a fixed communication position. At this time, the rotation of the nozzle 10 and the first chamber 20 will not affect the communication between the first through hole 51 and the second through hole 211.

[0103] Please refer to Figure 2 and Figure 3 In one embodiment, the airway fitting 50 is disposed through the first storage cavity 21, or, please refer to Figure 4 The airway fitting 50 is located on one side of the first storage cavity 21.

[0104] In this embodiment, the position of the airway tube 50 is further optimized. When the airway tube 50 passes through the first storage cavity 21, the suction nozzle 10 and the first chamber 20 rotate relative to each other about the airway tube 50. When the airway tube 50 is located on one side of the first storage cavity 21, the suction nozzle 10 and the first chamber 20 rotate relative to each other about the airway tube 50.

[0105] Please refer to Figure 2 , Figure 3 and Figure 5 In one embodiment, the airway tube 50 passes through the liquid storage chamber 11, or the nozzle 10 is provided with at least two liquid storage chambers 11, and the at least two liquid storage chambers 11 are arranged around the airway tube 50, and the number of liquid passages 31 corresponds to the number of liquid storage chambers 11.

[0106] In this embodiment, the number of liquid storage chambers 11 is further optimized, thereby enabling the storage of a variety of different flavors of first liquid matrix according to actual needs, enriching the user experience of the atomizer 100.

[0107] Please refer to Figure 2 In one embodiment, the liquid storage chamber 11 has an opening 111 on the side near the isolation member 30. When in the first relative position, the opening 111 communicates with the liquid passage 31 so that the first liquid matrix in the liquid storage chamber 11 enters the first storage chamber 21 through the opening and the liquid passage 31.

[0108] In this embodiment, the design of the first liquid storage chamber 11 is further described. An opening 111 corresponding to the liquid passage 31 is provided on the side of the liquid storage chamber 11 near the isolator 30. This allows the opening 111 to communicate with the liquid passage 31 when the suction nozzle 10 and the first chamber body 20 are in a first relative position, thereby enabling the liquid storage chamber 11 to communicate with the first storage chamber 21. In this embodiment, the opening 111 allows the first liquid matrix inside the liquid storage chamber 11 to enter the first storage chamber 21 through the opening 111 and the liquid passage 31 when aligned with the liquid passage 31.

[0109] Please refer to Figure 2 , Figure 3 , Figure 5 and Figure 6 In one embodiment, the suction nozzle 10 has an extension 13 extending toward the first chamber 20, the extension 13 covering the exterior of the first chamber 20.

[0110] The extension 13 has a positioning structure 131 on its inner side and a matching structure 201 corresponding to the positioning structure 131 on the outer wall of the first chamber 20. When the suction nozzle 10 moves relative to the first chamber 20, the positioning structure 131 and the matching structure 201 work together to make the liquid storage chamber 11 and the first storage chamber 21 be in a first relative position or a second relative position.

[0111] In this embodiment, the relative movement can be either relative rotation or translation as described in the previous embodiments. A positioning structure 131 and a mating structure 201 are provided to determine the relative position of the nozzle 10 and the first chamber 20, helping the user perceive their relative positions. Furthermore, multiple positioning structures 131 and mating structures 201 can be provided to enhance user perception. Even further, markings can be placed on the outer wall of the first chamber 20 at positions corresponding to the first and second relative positions to help the user identify their relative positions during rotation.

[0112] In this embodiment, when the positioning structure 131 or the mating structure 201 is set, the positioning structure 131 or the mating structure 201 can be set to correspond to the position of the liquid storage cavity 11 or to correspond to the position of the blocking member 40.

[0113] In one embodiment, the positioning structure 131 is a protrusion, and the mating structure 201 is a groove. In another embodiment, the mating structure 201 is a protrusion, and the positioning structure 131 is a groove. The resistance created by the protrusion engaging with the groove helps the user perceive the position.

[0114] Please refer to Figure 1 , Figure 2 , Figure 3 and Figure 6 In one embodiment, the structure of the atomizer 100 is further optimized. Specifically, the atomizer 100 further includes:

[0115] The second compartment component 60 is disposed on one side of the first compartment component 20;

[0116] The second chamber 60 is provided with a second storage cavity 61 and an atomizing core 62; the second storage cavity 61 is used to store the atomizing substrate, and the atomizing core 62 is used to atomize the atomizing substrate;

[0117] Please refer to the following: Figure 1 , Figure 2 , Figure 3 and Figure 6 In one embodiment, the first compartment component 60 and the second compartment component 20 are integrally formed, or the first compartment component 60 and the second compartment component 20 are detachably connected.

[0118] In this embodiment, a second chamber 60 is added to increase the variety of substrates stored in the atomizer 100 and enrich the user experience of the atomizer 100. Specifically, the second storage chamber 61 can store a second liquid substrate that needs to be atomized and can be atomized by the atomizing core 62. The second substrate can be a substrate with the same or similar flavor as the first liquid substrate, or it can be a substrate with a different flavor than the first liquid substrate.

[0119] In this embodiment, the aerosol generated after being atomized by the atomizing core 62 can enter the mouthpiece opening 12 of the mouthpiece 10 in two ways. In one case, the atomizing core 62 is connected between the second storage chamber 61 and the mouthpiece opening 12 of the mouthpiece 10. In this case, the first chamber 20 and the second chamber 60 can be arranged side-by-side, so the aerosol can directly reach the mouthpiece opening 12 and be inhaled. In the other case, the atomizing core 62 is connected between the second storage chamber 61 and the airway tube 50, so the aerosol can reach the mouthpiece opening 12 through the airway tube 50 and be inhaled.

[0120] In one embodiment, a second liquid storage element 611 is provided within the second storage cavity 61, which can be used to absorb and store the first liquid matrix. In one example, the second liquid storage element 611 is a liquid storage cotton.

[0121] In this embodiment, the connection method between the first chamber component 20 and the second chamber component 60 is optimized. When the first chamber component 20 and the second chamber component 60 are integrally formed, the atomizer 100 can be a disposable atomizer 100. Alternatively, when the first liquid matrix is ​​exhausted, the first liquid matrix can be continuously replenished to extend the service life of the atomizer 100. When the first chamber component 20 and the second chamber component 60 are detachably connected, the first chamber component 20 or the second chamber component 60 in the atomizer 100 can be replaced after disassembly according to actual needs, which can also extend the service life of the atomizer 100.

[0122] In one embodiment, please refer to Figure 2 and Figure 3 The structure of the second chamber 60 is further optimized by providing a second air passage 63 within the second chamber 60, with the atomizing core 62 connected between the second storage cavity 61 and the second air passage 63. Similarly, in this embodiment, the second air passage 63 can be directly connected to the mouthpiece 12 of the mouthpiece 10, or it can be connected to the mouthpiece 12 of the mouthpiece 10 through the air passage tube 50.

[0123] In this embodiment, the first chamber component 20 can be arranged side by side with the second chamber component 60, including left and right arrangement and inside and outside arrangement. In addition, the second chamber component 60 can also be arranged on the side of the first chamber component 20 away from the nozzle component 10.

[0124] Please refer to Figure 2 , Figure 3 and Figure 5 Another embodiment of this application provides a nozzle 10 for an atomizer 100. The nozzle 10 is provided with a nozzle opening 12 and a liquid storage chamber 11 is provided inside the nozzle 10. The liquid storage chamber 11 is used to store a first liquid matrix.

[0125] The atomizer 100 includes a first chamber 20 and an isolator 30. The first chamber 20 has a first storage cavity 21. The isolator 30 is disposed between the first storage cavity 21 and the liquid storage cavity 11. The isolator 11 is used to isolate the liquid storage cavity 11 and the first storage cavity 21. The isolator 11 also has a liquid passage 31, which is connected to the first storage cavity 21 and the liquid storage cavity 11 respectively. The liquid passage 31 is configured to have an open state and a blocked state.

[0126] In this embodiment, a suction nozzle 10 is provided. By providing a liquid storage chamber 11 in the suction nozzle 10 that can store a first liquid matrix, it can be used in conjunction with the first chamber 20 and can also help the first chamber 20 to be in an empty cavity state before use.

[0127] Please refer to Figure 2 and Figure 3 In one embodiment, the atomizer 100 further includes an airway sealing member 70, which is used to seal the airway at the factory to prevent leakage. Before use, the user needs to remove the airway sealing member 70 from the airway and then continue to perform the above steps.

[0128] Please refer to Figure 11 Another embodiment of this application provides an atomizing device 1000, which includes an atomizer 100 and a battery assembly 200. The battery assembly 200 is electrically connected to the atomizer 100, and the atomizer 100 is any one of the atomizers described above.

[0129] In this embodiment, the battery assembly 200 is used to store energy and control the opening and closing of the atomizing core in the atomizer 100, as well as the working state of the atomizing core.

[0130] The above description is merely an embodiment of this application and does not limit the patent scope of this application. Any equivalent structural or procedural transformations made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this application.

Claims

1. An atomizer, characterized in that, include: A suction nozzle, wherein the suction nozzle has a liquid storage chamber for storing a first liquid matrix; A first compartment component, wherein a first storage cavity is provided inside the first compartment component; An isolator is disposed between the first storage cavity and the liquid storage cavity, the isolator being used to isolate the liquid storage cavity and the first storage cavity; the isolator is also provided with a liquid passage, the liquid passage being connected to the first storage cavity and the liquid storage cavity respectively; The liquid passage is configured to have an open state and a blocked state.

2. The atomizer as described in claim 1, characterized in that, The atomizer also includes: A blocking element is provided detachably within the liquid passage; after the blocking element is removed, the liquid passage is in an open state.

3. The atomizer as described in claim 1, characterized in that, The isolation element includes a first isolation element and a second isolation element, and the liquid passage includes a first liquid passage and a second liquid passage. The first isolation element and the second isolation element are movable relative to each other. When the first isolation member and the second isolation member are in at least one relative position, the first liquid passage and the second liquid passage are connected, thereby the liquid passage is in the open state; When the first isolation member and the second isolation member are in at least one relative position, the first liquid passage and the second liquid passage are spaced apart or misaligned, thereby making the liquid passage in the blocked state.

4. The atomizer as described in claim 2, characterized in that, The blocking component and the suction nozzle component are linked together. The suction nozzle component and the first chamber component can move relative to each other, so that the liquid storage chamber and the first storage chamber are in a first relative position or a second relative position. In the first relative position, the blocking member causes the liquid passage to be in the open state, and the first storage cavity is connected to the liquid storage cavity through the liquid passage, so that the first liquid matrix in the liquid storage cavity enters the first storage cavity; in the second relative position, the blocking member causes the liquid passage to be in the blocked state, the first storage cavity and the liquid storage cavity are not connected, and the liquid storage cavity is in a sealed state.

5. The atomizer according to claim 4, characterized in that, The blocking element is a protruding structure provided on the side of the suction nozzle near the isolating element; When in the first relative position, the protruding structure is misaligned with the liquid passage; when in the second relative position, the protruding structure blocks the liquid passage to keep the liquid storage chamber sealed.

6. The atomizer according to claim 4, characterized in that, The atomizer also includes: An airway tube is provided, at least partially disposed within the first chamber, with one end of the airway tube extending toward the nozzle assembly to communicate with the nozzle opening of the nozzle assembly. A first through hole is provided on the side wall of the airway tube, and a second through hole corresponding to the first through hole is formed on one side of the first storage cavity. The suction nozzle rotates relative to the first chamber component with the air passage component as the pivot, so that the liquid storage chamber and the first storage chamber are in a first relative position or a second relative position. When in the first relative position, the first through hole and the second through hole are connected.

7. The atomizer according to claim 6, characterized in that, The airway tube is disposed through the first storage cavity, or the airway tube is disposed on one side of the first storage cavity.

8. The atomizer according to claim 6, characterized in that, The air passage is disposed through the liquid storage chamber, or the nozzle is provided with at least two liquid storage chambers, the at least two liquid storage chambers are disposed around the air passage, and the number of liquid passages corresponds to the number of liquid storage chambers.

9. The atomizer according to claim 4, characterized in that, The liquid storage chamber has an opening on the side near the isolation member. When in the first relative position, the opening communicates with the liquid passage so that the first liquid matrix in the liquid storage chamber enters the first storage chamber through the opening and the liquid passage.

10. The atomizer according to claim 4, characterized in that, The suction nozzle has an extension extending toward the first chamber component, the extension covering the exterior of the first chamber component; The extension has a positioning structure on its inner side, and the outer wall of the first chamber has a matching structure corresponding to the positioning structure. When the suction nozzle moves relative to the first chamber, the positioning structure and the matching structure work together to position the liquid storage chamber and the first storage chamber at a first relative position or a second relative position.

11. The atomizer according to any one of claims 1-10, characterized in that, The atomizer also includes: The second compartment component is disposed on one side of the first compartment component; The second chamber contains a second storage cavity and an atomizing core; the second storage cavity is used to store the atomizing matrix, and the atomizing core is used to atomize the atomizing matrix; The first compartment component and the second compartment component are integrally formed, or the first compartment component and the second compartment component are detachably connected.

12. The atomizer according to claim 11, characterized in that, The second chamber is further provided with a second air passage, and the atomizing core is connected between the second storage cavity and the second air passage.

13. A mouthpiece for an atomizer, characterized in that, The suction nozzle is provided with a suction opening and a liquid storage chamber is provided inside the suction nozzle for storing the first liquid matrix; The atomizer includes a first chamber and an isolator; the first chamber has a first storage cavity; the isolator is disposed between the first storage cavity and the liquid storage cavity, and is used to isolate the liquid storage cavity and the first storage cavity; the isolator also has a liquid passage, which is connected to the first storage cavity and the liquid storage cavity respectively; the liquid passage is configured to have an open state and a blocked state.

14. An atomizing device, characterized in that, The atomizing device includes an atomizer and a battery assembly, the battery assembly being electrically connected to the atomizer, and the atomizer being the atomizer described in any one of claims 1-12.