Atomization assembly and electronic atomization device

By designing the induction component in the electronic atomization device to detect the inverted state to calculate the atomization liquid capacity, the problem of users need to observe the atomization liquid volume by themselves is solved, and simple atomization liquid replenishment and monitoring is achieved.

CN223195532UActive Publication Date: 2025-08-08DONGGUAN LIJIA INTELLIGENT TECH CO LTD SHENZHEN BRANCH
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Patent Information

Application Number
CN202422297067.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-08-08
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

When replenishing atomization liquid in existing electronic atomization devices, users need to observe the amount of atomization liquid through the naked eye, which leads to the troublesome replenishment process and reduces the user experience.

Method used

Design an atomization component to generate an induction signal by detecting the inverted state by the induction component, calculate the atomization liquid capacity, and avoid users from observing the atomization liquid replenishment state by themselves.

Benefits of technology

The atomization liquid replenishment process is simplified, the user experience is improved, and the accuracy and convenience of atomization liquid volume monitoring is ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an atomization assembly and an electronic atomization device, the atomization assembly is used for the electronic atomization device, the atomization assembly comprises a bin body, a liquid storage cavity is defined, the bin body comprises a connecting part, the liquid storage cavity is communicated to the connecting part, and the connecting part is used for being connected with a liquid storage bottle loaded with atomized liquid; the sensing assembly is connected to the bin body; wherein the atomization assembly supplements atomized liquid to the liquid storage cavity through inversion, and the induction assembly detects the inversion state and generates an induction signal. The atomization assembly can automatically detect the oil supplementing action of a user and calculate the amount of supplemented atomized liquid so as to provide data for an oil supplementing reminding device, and the electronic atomization device with the atomization assembly also has the advantages.
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Description

Technical Field

[0001] The utility model relates to the technical field of atomization equipment, and in particular to an atomization component and an electronic atomization device. Background Art

[0002] Currently, electronic atomizers are often equipped with a refill mechanism to ensure continuous use. Conventional electronic atomizers often include a refill reminder to remind users to refill when the atomizer liquid volume is low. However, during this refill process, users need to visually observe the atomizer liquid level. However, in most electronic atomizers, visual inspection is difficult and cumbersome, reducing the user experience. Utility Model Content

[0003] The present invention aims to solve at least one of the technical problems existing in the prior art. To this end, the present invention provides an atomizing assembly that can automatically detect the user's oil refilling action and calculate the amount of atomized liquid replenished, thereby providing data for the oil refill reminder device.

[0004] The utility model also provides an electronic atomization device having the above-mentioned atomization assembly.

[0005] According to the first embodiment of the present invention, the atomizing assembly is used in an electronic atomizing device, and the atomizing assembly includes:

[0006] a tank body defining a liquid storage cavity, the tank body including a connecting portion, the liquid storage cavity communicating with the connecting portion, the connecting portion being configured to connect to a liquid storage bottle loaded with atomized liquid;

[0007] a sensing component connected to the warehouse body;

[0008] The atomizing component replenishes the atomized liquid into the liquid storage chamber by inverting, and the sensing component detects the inverted state and generates a sensing signal.

[0009] The atomizer assembly according to the embodiment of the present invention has at least the following beneficial effects: when the liquid storage chamber needs to be replenished with atomized liquid, the atomizer assembly can be inverted to direct the atomized liquid from the liquid storage bottle into the liquid storage chamber. The sensing assembly can detect the inverted state of the atomizer assembly during the inversion process, thereby generating a sensing signal. The atomizer assembly can use this sensing signal to calculate the volume of atomized liquid discharged from the liquid storage bottle, eliminating the need for the user to monitor the atomized liquid replenishment status and making atomized liquid replenishment more convenient.

[0010] According to some embodiments of the present invention, the sensing component includes a sensor, which detects the inverted state. The atomization component also includes a processor, which is electrically connected to the sensor. The processor receives the sensing signal and calculates the atomized liquid capacity derived from the liquid storage bottle through the inversion time.

[0011] According to some embodiments of the present invention, the warehouse body further defines an active channel separated from the liquid storage chamber, the sensing component further includes a sensing member, the sensing member is movably disposed in the active channel, the sensing member is configured to be inverted following the atomization component, and the sensor detects the inverted state of the sensing member.

[0012] According to some embodiments of the present invention, a limiting member is further included, which is connected to the warehouse body. A protrusion is provided on the side of the warehouse body facing the limiting member, and the protrusion has a first hollow structure. The limiting member cover is provided on the protrusion and defines the movable channel together with the protrusion.

[0013] According to some embodiments of the present invention, the sensor is a Hall sensor; and the sensing element is a magnetic element.

[0014] According to some embodiments of the present invention, the warehouse body includes a base and an atomization warehouse, the connecting part is provided in the atomization warehouse, the base is connected to the atomization warehouse, and together with the atomization warehouse, defines the liquid storage cavity, the atomization assembly also includes a cover body, the cover body is connected to the side of the base away from the atomization warehouse and together with the base defines a accommodating cavity connected to the liquid storage cavity, and the sensing assembly is provided in the accommodating cavity.

[0015] According to some embodiments of the present invention, a through hole is provided on a side of the cover body facing away from the base, the through hole is connected to the accommodating cavity, and the atomization assembly further includes a display, the display is provided in the through hole and is electrically connected to the sensing assembly.

[0016] According to some embodiments of the present invention, the atomization assembly further includes a liquid storage, a liquid guide tube, and an atomization core, the atomization core abuts against the liquid guide tube, the liquid storage is arranged in the liquid storage cavity, and the liquid storage defines an atomization channel, the liquid guide tube and the atomization core are accommodated in the atomization channel.

[0017] According to some embodiments of the present invention, the liquid guide tube has a second hollow structure, the outer wall of the liquid guide tube abuts against the inner wall of the liquid storage, and the side wall of the liquid guide tube is provided with a liquid guide port, the liquid guide port is connected to the second hollow structure, and the atomization core is accommodated in the second hollow structure.

[0018] According to the second embodiment of the present invention, the electronic atomization device includes:

[0019] The atomizer assembly described in any of the above embodiments;

[0020] a liquid storage bottle defining a storage cavity containing atomized liquid, the liquid storage bottle being connected to the connecting portion, the storage cavity being in communication with the liquid storage cavity; and

[0021] A battery is connected to the compartment body and the liquid storage bottle, and the battery is electrically connected to the sensing component.

[0022] The electronic atomization device according to the embodiment of the present utility model has at least the following beneficial effects: the atomization component can detect the status of the replenished atomization liquid when the electronic atomization device replenishes the atomization liquid, and the electronic atomization device calculates the amount of the replenished atomization liquid according to the replenishment time, thereby solving the problem that the user needs to observe when replenishing the atomization liquid.

[0023] Additional aspects and advantages of the present invention will be given in part in the following description and will become apparent from the following description or learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments, wherein:

[0025] Figure 1 This is a schematic diagram of an atomization assembly in an embodiment of the present utility model;

[0026] Figure 2 This is a schematic top view of the atomizing assembly in an embodiment of the present utility model;

[0027] Figure 3 In the embodiment of the present utility model Figure 2 AA cross-sectional view;

[0028] Figure 4 In the embodiment of the present utility model Figure 2 BB section diagram;

[0029] Figure 5 This is a schematic diagram of an explosion of the atomizing assembly in an embodiment of the present utility model;

[0030] Figure 6 This is a schematic diagram of the bin body in an embodiment of the present utility model;

[0031] Figure 7 This is a schematic diagram of an atomization assembly in an embodiment of the present utility model;

[0032] Figure 8 This is a schematic diagram of the connection between the liquid guide tube and the atomizer core in an embodiment of the present utility model;

[0033] Figure 9 Schematic diagram of the electronic atomization device in an embodiment of the present invention.

[0034] Reference numerals:

[0035] Atomizer assembly 100; chamber body 110; base 111; accommodating chamber 1111; atomizer chamber 112; liquid storage chamber 1121; connecting portion 1122; movable channel 113; raised portion 114; first hollow structure 1141; liquid storage 120; atomizer channel 121; sensing assembly 130; sensor 131; sensing member 132; limiting member 150; accommodating groove 151; cover body 160; through hole 161; display 170; liquid guide tube 180; second hollow structure 181; liquid guide port 182; atomizer core 190; electronic atomizer device 10; liquid storage bottle 200; battery 300. DETAILED DESCRIPTION

[0036] The following describes embodiments of the present invention in detail. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended only to explain the present invention and are not to be construed as limiting the present invention.

[0037] In the description of the present invention, it should be understood that descriptions involving orientations, such as up, down, front, back, left, right, etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they cannot be understood as limitations on the present invention.

[0038] In the description of this utility model, "several" means more than one, "plurality" means more than two, "greater than," "less than," and "exceed" are understood to exclude the number itself, while "above," "below," and "within" are understood to include the number itself. The use of the terms "first" and "second" is solely for the purpose of distinguishing technical features and is not to be construed as indicating or implying relative importance, implicitly specifying the number of the indicated technical features, or implicitly specifying the order of the indicated technical features.

[0039] In the description of the present invention, unless otherwise clearly defined, terms such as setting, installing, and connecting should be understood in a broad sense, and technicians in the relevant technical field can reasonably determine the specific meanings of the above terms in the present invention based on the specific content of the technical solution.

[0040] In the description of the present invention, reference to terms such as "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that the specific features, structures, materials, or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the exemplary expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0041] Electronic atomizers use batteries to generate heat, heating the atomizing liquid inside the device and converting it into aerosol, which the user inhales. The atomizer assembly is the primary component in an electronic atomizer that converts the atomizing liquid into aerosol.

[0042] The following describes the atomizing assembly 100 of the first embodiment of the present invention with reference to the accompanying drawings. The present invention provides an atomizing assembly 100 for an electronic atomizing device 10. Figures 1 to 7 As shown, the atomizing assembly 100 includes a housing 110 and a sensing assembly 130. A liquid storage chamber 1121 is defined within the housing 110. The liquid storage chamber 1121 is used to store the atomized liquid required for atomization by the atomizing assembly 100, and the housing 110 further includes a connecting portion 1122. The connecting portion 1122 is used to connect to a liquid storage bottle 200. The liquid storage bottle 200 is loaded with atomized liquid. The liquid storage chamber 1121 is connected to the connecting portion 1122, that is, the liquid storage chamber 1121 is connected to the position where the connecting portion 1122 is located. Specifically, when it is necessary to replenish the atomized liquid in the liquid storage chamber 1121, the liquid storage bottle 200 is connected via the connecting portion 1122, so that the atomized liquid in the liquid storage bottle 200 can be directed from the liquid storage bottle 200 to the liquid storage chamber 1121.

[0043] The liquid storage chamber 1121 is used to store the atomized liquid that is conducted from the liquid storage bottle 200 to the atomizer assembly 100. When the atomizer assembly 100 starts working, the atomizer assembly 100 heats the atomized liquid and converts it into an aerosol. The heated atomized liquid is the atomized liquid stored in the liquid storage chamber 1121. The sensing assembly 130 is connected to the chamber body 110 and is used to detect the motion state of the atomizer assembly 100. For details, see Figure 3 、 Figure 7 and Figure 9As shown, when the atomized liquid in the atomizer assembly 100 is used up to a certain amount, the atomizer assembly 100 will remind the user to replenish the atomized liquid. At this time, the user needs to connect the liquid storage bottle 200 through the connecting portion 1122 to guide the atomized liquid in the liquid storage bottle 200 into the liquid storage chamber 1121 and store it in the liquid storage chamber 1121. In the process of replenishing the atomized liquid, the user needs to invert the atomizer assembly 100 so that the atomized liquid can be guided from the liquid storage bottle 200 to the liquid storage chamber 1121, and the sensing assembly 130 is used to detect the inverted state of the atomizer assembly 100 and generate a sensing signal, that is, the sensing assembly 130 can detect the user's action of replenishing the atomized liquid and thereby generate a sensing signal for replenishing the liquid. It should be noted that the inversion here is not limited to rotating the atomizer assembly 100 and the liquid storage bottle 200 180 degrees. The angle of rotation of the atomizer assembly 100 can be 90 degrees, or 120 degrees, or other angles, as long as the atomized liquid can be discharged from the liquid storage bottle 200 to the liquid storage chamber 1121 for storage. The atomizer assembly 100 will receive the sensing signal emitted by the sensing assembly 130 and calculate the volume of the atomized liquid discharged from the liquid storage bottle 200, thereby determining the available atomized liquid volume and usage time in the liquid storage chamber 1121.

[0044] Compared to traditional electronic atomization devices, which require users to visually observe the replenishment status of the atomized liquid during the atomized liquid replenishment process, making the replenishment process more cumbersome and reducing the user experience, the atomization assembly 100 provided in the embodiment of the utility model can detect the inverted state of the atomization assembly 100 through the sensing assembly 130, that is, detect the user's oil replenishment action, thereby generating a sensing signal, and then the atomization assembly 100 can calculate the volume of the atomized liquid extracted from the liquid storage bottle 200 through the sensing signal, thereby avoiding the need for users to observe the atomized liquid replenishment status by themselves and making the replenishment of the atomized liquid more convenient.

[0045] In some embodiments, see Figures 4 to 7As shown, the sensing component 130 includes a sensor 131, which is used to detect the inverted state of the atomizer component 100. At the same time, the atomizer component 100 also includes a processor, which is electrically connected to the sensor 131. Specifically, the processor and the sensor 131 communicate with each other. When the sensor 131 detects that the user performs the action of inverting the atomizer component 100 to replenish the atomized liquid, the sensor 131 generates a sensing signal and transmits the sensing signal to the processor, wherein the sensing signal includes the time when the atomizer component 100 starts to be inverted (i.e., the time when the atomizer liquid starts to be replenished) and the time when the atomizer component 100 returns to the upright position (i.e., the time when the atomizer liquid is replenished). The processor will receive the sensing signal and calculate the volume of the atomized liquid replenished within the time period. Since the specifications and dimensions of the atomizer assembly 100 will not change during the refilling process, the amount of atomized liquid extracted from the liquid storage bottle 200 per unit time is constant. The processor will calculate the volume of the atomized liquid extracted from the liquid storage bottle 200 within the time period based on the time used to replenish the atomized liquid, thereby providing the atomizer assembly 100 with data on the atomized liquid volume, so that the atomizer assembly 100 can continue to monitor the atomized liquid volume to ensure that the atomized liquid is used in the future and can remind the user to replenish the atomized liquid when the atomized liquid is consumed to a certain volume. This embodiment detects the user's action of replenishing the atomized liquid through the sensor 131, and calculates the volume of the atomized liquid replenished based on the time of replenishing the atomized liquid through the processor, thereby improving the convenience of replenishing the atomized liquid and avoiding the situation where the user still needs to observe the replenishment status of the atomized liquid when replenishing.

[0046] In some embodiments, see Figures 4 to 8As shown, the housing 110 further defines a movable channel 113, which is separated from the liquid storage chamber 1121. The sensing assembly 130 also includes a sensing member 132, which is movably disposed in the movable channel 113. The sensing member 132 is configured to follow the inversion of the atomizer assembly 100, and the sensor 131 detects the inverted state of the sensing member 132. Specifically, the sensing assembly 130 includes a sensor 131 and a sensing member 132, and the sensor 131 is used to detect the operating state of the sensing member 132. When the atomizer assembly 100 needs to be replenished with atomized liquid, the atomizer assembly 100 needs to be connected to the liquid storage bottle 200 and inverted to replenish the atomized liquid into the liquid storage chamber 1121. Since the sensing member 132 is movably disposed in the movable channel 113, during the inversion process, the sensing member 132 will be inverted together with the atomizer assembly 100, that is, the sensing member 132 will slide from one end of the movable channel 113 to the other end of the movable channel 113. At this time, the sensor 131 will detect the movement of the sensing member 132 and record the time when the sensing member 132 starts to invert. In this embodiment, the time when the inversion starts is recorded as the first time. After the atomizer assembly 100 completes the replenishment of the atomized liquid, the atomizer assembly 100 will reset and return to the initial state, that is, the upright state. The sensing member 132 will also reset following the atomizer assembly 100. The sensor 131 will record the time when the sensing member 132 completes the reset. In this embodiment, the time when the reset is completed is recorded as the second time, and the time difference between the first time and the second time is the time to replenish the atomized liquid. The processor will calculate the capacity of the atomized liquid replenished based on the time, thereby providing the atomizer assembly 100 with data on the atomized liquid capacity.

[0047] Furthermore, in some embodiments, the sensor 131 is a Hall sensor and the sensing element 132 is a magnetic element. Specifically, the magnetic element is arranged in the movable channel 113. When the atomizer assembly 100 is inverted, the magnetic element will move in the movable channel 113, causing the magnetic field to change. A Hall effect will be generated between the Hall sensor and the magnetic element, thereby enabling the sensor 131 to detect the movement state of the sensing element 132 to detect the user's action of replenishing the atomizer assembly 100 with atomized liquid and record the time of replenishing the atomized liquid. In some embodiments, the sensor 131 and the sensing element 132 can also be detected by other means, such as infrared detection. The sensor 131 can emit infrared rays toward the sensing element 132. When the sensing element 132 is not active, the sensing element 132 will block the infrared rays. When the sensing element 132 follows the atomizer assembly 100 to be inverted to replenish the atomized liquid, the sensing element 132 is unable to block the infrared rays. At this time, the sensor 131 can detect the inverted state of the atomizer assembly 100 by the shielding of the infrared rays by the sensing element 132, and record the total time that the sensing element 132 does not block the infrared rays as the time for replenishing the atomized liquid, so that the processor can calculate the amount of atomized liquid replenished. In another embodiment, the sensor 131 and the sensing element 132 can also sense the motion state of the atomizer assembly 100 through sound wave detection.

[0048] In another embodiment, the sensing assembly 130 may not include the sensing element 132. Specifically, the sensing assembly 130 may detect the rehydration status of the atomizer assembly 100 using a single device, the sensor 131. For example, the sensor 131 may be an electronic gyroscope. The electronic gyroscope can detect the motion status of the atomizer assembly 100 through its own component structure without the need for the sensing element 132.

[0049] In some embodiments, see Figures 3 to 6As shown, the atomizer assembly 100 also includes a stopper 150, which is connected to the housing 110. A protrusion 114 is provided on one side of the housing 110 facing the stopper 150. The protrusion 114 has a first hollow structure 1141. The stopper 150 is covered on the protrusion 114 and defines a movable channel 113 together with the protrusion 114. At this time, the first hollow structure 1141 of the protrusion 114 is the movable channel 113. Specifically, the protrusion 114 is formed by the housing 110 extending in the direction of the stopper 150. The first hollow structure 1141 of the protrusion 114 passes through one end of the protrusion 114 close to the stopper 150, that is, the sensing element 132 can be placed into the first hollow structure 1141 from one end of the protrusion 114 facing the stopper 150 and can be movably arranged in the first hollow structure 1141. The limiting member 150 is arranged at the end where the sensing member 132 is placed. When the atomizer assembly 100 is in the upright position, the sensing member 132 will be located at the end of the protrusion 114 away from the limiting member 150 and in contact with the wall surface of the chamber body 110. When the atomizer assembly 100 is replenishing the atomized liquid, the sensing member 132 will move to the end where the protrusion 114 faces the limiting member 150. At this time, the limiting member 150 will close the end where the protrusion 114 faces the limiting member 150 to prevent the sensing member 132 from sliding out of the movable channel 113. The limiting member 150 will limit the sensing member 132 so that the sensing member 132 is always in the movable channel 113.

[0050] In some embodiments, see Figures 4 to 7 As shown, the warehouse body 110 includes a base 111 and an atomizing warehouse 112, the base 111 is connected to the atomizing warehouse 112, and together with the atomizing warehouse 112, defines a liquid storage chamber 1121, the atomizing assembly 100 also includes a cover 160, the cover 160 is connected to the side of the base 111 away from the atomizing warehouse 112 and together with the base 111 defines a accommodating chamber 1111 connected to the liquid storage chamber 1121, and the sensing assembly 130 is provided in the accommodating chamber 1111. Specifically, in this embodiment, the base 111 is connected to the atomizing warehouse 112, specifically above the atomizing warehouse 112, and the base 111 cover is provided on the atomizing warehouse 112, and the two cooperate with each other to form the liquid storage chamber 1121. In this embodiment, the base 111 and the atomizing warehouse 112 are integrally formed. In other embodiments, the base 111 and the atomization bin 112 may be connected in other ways, such as by snap-fitting or threading the base 111 to the atomization bin 112. In another embodiment, the base 111 may be connected to the atomization bin 112 by an interference fit, i.e., a friction ring is provided on the side wall of the base 111, and the friction ring is made of a tough material, such as rubber, silicone, etc. The base 111 is connected to the atomization bin 112 by the interference fit of the friction ring.

[0051] Furthermore, the cover 160 is used to contact the user's mouth, and the user inhales the aerosol after atomization through the cover 160. The cover 160 is connected to the side of the base 111 away from the atomization bin 112, that is, one side of the base 111 is connected to the atomization bin 112, and the other side is connected to the cover 160, and the base 111 is arranged between the cover 160 and the atomization bin 112. When the cover 160 is connected to the base 111, a space is formed between the cover 160 and the base 111, and the space is a receiving cavity 1111, and the sensing component 130 is received in the receiving cavity 1111. The cover 160 and the base 111 protect the sensing component 130, prevent the sensing component 130 from being exposed to the outside world, and avoid damage to the sensing component 130 when the atomization component 100 is in use.

[0052] In some embodiments, see Figures 3 to 5 As shown, a through hole 161 is provided on the side of the cover 160 facing away from the base 111, and the through hole 161 is connected to the accommodating chamber 1111. The atomizer assembly 100 also includes a display 170, which is provided in the through hole 161 and is electrically connected to the sensing assembly 130. Specifically, the display 170 is accommodated in the through hole 161 and is electrically connected to the sensing assembly 130 through a wire. The display 170 communicates with the processor. When the sensing assembly 130 sends a sensing signal to the processor and the processor calculates the capacity of the replenished atomized liquid, the calculated capacity data will be displayed on the display 170. The user can replenish the atomized liquid by himself according to the capacity data on the display 170. If the user does not replenish the atomized liquid by himself, when the atomized liquid capacity on the display 170 is consumed to a certain capacity, the atomizer assembly 100 will also remind the user to replenish the atomized liquid to avoid the atomized liquid being exhausted, which will cause the atomizer assembly 100 to dry out and the like.

[0053] In a preferred embodiment, see Figures 3 to 5As shown, the side of the limiter 150 facing the through hole 161 has a receiving groove 151, and at least a portion of the display 170 is accommodated in the receiving groove 151, so that it is stably connected to the limiter 150 and is not prone to loosening. Therefore, the limiter 150 can not only limit the sensing member 132, preventing the sensing member 132 from sliding out of the movable channel 113. At the same time, the limiter 150 can also play a supporting role. The limiter 150 can support the display 170 so that the display 170 can be stably connected and communicated with the sensing component 130. Therefore, by providing the limiter 150, not only the overall structure of the atomizer assembly 100 can be simplified, but also the overall volume of the atomizer assembly 100 can be reduced, making the overall structure of the atomizer assembly 100 more compact. In other embodiments (not shown in the figures), the display 170 may not be connected to the limit member 150, and the display 170 may be connected to the through hole 161 of the cover body 160. For example, the display 170 may be connected and fixed in the through hole 161 by snap connection, bonding, interference fit, etc., so that the display 170 may not be connected to the limit member 150.

[0054] In some embodiments, see Figure 7 and Figure 8 As shown, the atomization assembly 100 also includes a liquid storage 120, a liquid guide tube 180 and an atomization core 190. The atomization core 190 is in contact with the liquid guide tube 180. The liquid storage 120 is arranged in the liquid storage cavity 1121, and the liquid storage 120 defines an atomization channel 121. The liquid guide tube 180 and the atomization core 190 are accommodated in the atomization channel 121. Specifically, the liquid storage 120 is used to store the atomized liquid in the liquid storage cavity 1121. The middle part of the liquid storage 120 is also a hollow structure. The hollow structure of the liquid storage 120 defines the atomization channel 121, that is, the hollow structure of the liquid storage 120 is used to convert the atomized liquid into an aerosol. The liquid guide tube 180 and the atomization core 190 are arranged in the atomization channel 121. Since the liquid storage 120 stores the atomized liquid, the atomized liquid atomized by the atomization core 190 comes from the liquid storage 120. When the atomizer core 190 begins to convert the atomized liquid into an aerosol, the liquid storage 120 continues to provide the atomizer core 190 with atomized liquid, allowing the atomizer core 190 to continue operating to convert the atomized liquid into an aerosol for the user to inhale. In this embodiment, the liquid storage 120 is made of cotton. In other embodiments, the liquid storage 120 can also be made of other materials, such as an oil-conducting mesh, a ceramic core, or a non-woven fabric.

[0055] Further, in some embodiments, see Figure 7 and Figure 8As shown, the liquid guide tube 180 has a second hollow structure 181, the outer wall of the liquid guide tube 180 abuts the inner wall of the liquid storage 120, and the side wall of the liquid guide tube 180 is provided with a liquid guide port 182, which is connected to the second hollow structure 181, and the atomizing core 190 is accommodated in the second hollow structure 181. Specifically, the liquid guide tube 180 is arranged in the atomizing channel 121, and the atomizing core 190 is arranged in the second hollow structure 181 of the liquid guide tube 180, and the outer peripheral wall of the liquid guide tube 180 has a liquid guide port 182. Since the liquid storage 120 not only has a liquid storage function, but also has a liquid guide function. When the atomizing core 190 heats the atomized liquid and converts it into an aerosol, the atomized liquid in the liquid storage 120 will be transferred to the atomizing core 190 through the liquid guide port 182, so that the atomizing core 190 can continue to heat the atomized liquid without dry burning. When the atomized liquid capacity of the liquid storage 120 is too low, that is, the atomized liquid in the liquid storage 120 is insufficient to support the atomizer core 190 to continue working for a long time, the atomizer assembly 100 will send a signal to remind the user to replenish the atomized liquid in the liquid storage 120 in time to avoid the atomized liquid being exhausted and affecting the normal operation of the atomizer assembly 100, or to avoid the atomized liquid being exhausted and the atomizer core 190 being dry-burned, causing damage to the atomizer assembly 100.

[0056] The electronic atomization device 10 of the second embodiment of the present invention will be described below with reference to the accompanying drawings. Figures 1 to 9 As shown, the electronic atomization device 10 includes the atomization assembly 100, the liquid storage bottle 200 and the battery 300 described in any of the above embodiments. The interior of the liquid storage bottle 200 defines a storage cavity, which is used to accommodate the atomized liquid. The liquid storage bottle 200 is connected to the connecting portion 1122 of the warehouse body 110, and the storage cavity and the liquid storage cavity 1121 are connected, so that the atomized liquid in the liquid storage bottle 200 can be discharged from the storage cavity to the liquid storage cavity 1121. The battery 300 is connected to the warehouse body 110 and the liquid storage bottle 200, and the battery 300 is electrically connected to the sensing assembly 130, and the battery 300 provides power for the sensing assembly 130.

[0057] Specifically, when a user inhales, negative pressure is generated inside the electronic atomizer device 10. At this point, the sensor assembly 130 detects the negative pressure and controls the atomizer core 190 to start operating. The atomizer core 190 heats the atomized liquid through the heating element to convert the atomized liquid into an aerosol. The aerosol is then discharged to the outside through the cover 160 for the user to inhale. Because the atomizer core 190 and the liquid guide tube 180 are located in the atomization channel 121 defined by the liquid reservoir 120, the atomized liquid stored in the liquid reservoir 120 is conducted to the atomizer core 190 through the liquid guide port 182, allowing the atomizer core 190 to continue operating. When the atomized liquid in the liquid storage 120 is consumed to a certain amount, the atomizing assembly 100 will remind the user to replenish the atomized liquid. When the user needs to replenish the atomized liquid into the liquid storage 120 through the liquid storage bottle 200, the user needs to invert the electronic atomizing device 10 to replenish the atomized liquid. The sensor 131 will detect the inverted state of the electronic atomizing device 10 and generate a sensing signal. The processor will receive the sensing signal and calculate the atomized liquid capacity derived from the liquid storage bottle 200 according to the inverted time of the electronic atomizing device 10, thereby obtaining the atomized liquid capacity in the liquid storage 120. After the atomized liquid is replenished, when the user takes another inhalation action, the atomizing core 190 will heat the new atomized liquid to generate an aerosol, so that the electronic atomizing device 10 can continue to work.

[0058] The electronic atomization device 10 can detect the status of the replenished atomization liquid through the atomization component 100 when replenishing the atomization liquid. The electronic atomization device 10 calculates the amount of replenished atomization liquid according to the replenishment time, thereby solving the problem that the user needs to observe when replenishing the atomization liquid and improving the user experience.

[0059] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various modifications can be made within the scope of knowledge possessed by a person skilled in the art without departing from the spirit of the present invention. In addition, the embodiments of the present invention and the features of the embodiments can be combined with each other unless there is a conflict.

Claims

1. Atomizer assembly, used in electronic atomizer device, characterized in that: The atomizing assembly comprises: a tank body defining a liquid storage cavity, the tank body including a connecting portion, the liquid storage cavity communicating with the connecting portion, the connecting portion being configured to connect to a liquid storage bottle loaded with atomized liquid; a sensing component connected to the warehouse body; The atomizing component replenishes the atomized liquid into the liquid storage chamber by inverting, and the sensing component detects the inverted state and generates a sensing signal.

2. The atomizing assembly according to claim 1, characterized in that: The sensing component includes a sensor, which detects the inverted state. The atomization component also includes a processor, which is electrically connected to the sensor. The processor receives the sensing signal and calculates the atomized liquid capacity derived from the liquid storage bottle based on the inverted time.

3. The atomizing assembly according to claim 2, characterized in that: The chamber body further defines a movable channel separated from the liquid storage chamber. The sensing component further includes a sensing element, which is movably disposed in the movable channel. The sensing element is configured to be inverted following the atomization component, and the sensor detects the inverted state of the sensing element.

4. The atomizing assembly according to claim 3, characterized in that: It also includes a limiting member, which is connected to the warehouse body. A protrusion is provided on the side of the warehouse body facing the limiting member. The protrusion has a first hollow structure. The limiting member cover is provided on the protrusion and defines the movable channel together with the protrusion.

5. The atomizing assembly according to claim 3, characterized in that: The sensor is a Hall sensor, and the sensing element is a magnetic element; or the sensor is an electronic gyroscope.

6. The atomizing assembly according to claim 1, characterized in that: The tank body includes a base and an atomization tank, the connecting part is provided in the atomization tank, the base is connected to the atomization tank, and together with the atomization tank, defines the liquid storage cavity, the atomization assembly also includes a cover body, the cover body is connected to the side of the base away from the atomization tank and together with the base defines a accommodating cavity connected to the liquid storage cavity, and the sensing assembly is provided in the accommodating cavity.

7. The atomizing assembly according to claim 6, characterized in that: A through hole is provided on a side of the cover body facing away from the base, and the through hole is connected to the accommodating cavity. The atomizing assembly further includes a display, which is provided in the through hole and electrically connected to the sensing assembly.

8. The atomizing assembly according to claim 1, characterized in that: The atomization assembly further includes a liquid storage, a liquid guide tube, and an atomization core. The atomization core abuts against the liquid guide tube. The liquid storage is provided in the liquid storage cavity, and the liquid storage defines an atomization channel. The liquid guide tube and the atomization core are accommodated in the atomization channel.

9. The atomizing assembly according to claim 8, characterized in that: The liquid guide tube has a second hollow structure, the outer wall of the liquid guide tube abuts against the inner wall of the liquid storage, and the side wall of the liquid guide tube is provided with a liquid guide port, the liquid guide port is connected to the second hollow structure, and the atomizing core is accommodated in the second hollow structure.

10. An electronic atomization device, characterized in that: include: The atomizer assembly according to any one of claims 1 to 9; a liquid storage bottle defining a storage cavity containing atomized liquid, the liquid storage bottle being connected to the connecting portion, the storage cavity being in communication with the liquid storage cavity; and A battery is connected to the compartment body and the liquid storage bottle, and the battery is electrically connected to the sensing component.