Electronic atomization device
By incorporating a flavor enhancer and a heat conductor into the electronic atomizing device, heat conduction is used to heat the fragrance and release its aroma. This solves the problem that users can only perceive the smell through taste, enabling a combined olfactory and gustatory inhalation experience. It also enhances the aroma concentration, reduces the device temperature, and improves the user experience.
Patent Information
- Application Number
- CN202422888591.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-26
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-11-26
AI Technical Summary
When inhaling the atomized liquid from existing electronic atomizing devices, users can only perceive the aroma through their sense of taste, which makes it difficult to satisfy the combined olfactory and gustatory experience. In particular, the aerosol of odorless atomized liquids has a bland taste, which affects the user experience.
A fragrance enhancer and a heat conductor are set in the atomizing device. The heat conductor contacts the electrode and is inserted into the fragrance in the storage box cavity. The fragrance is heated by heat conduction to make it volatilize and release its aroma, combining the sense of smell and taste.
It enables users to obtain an excellent vaping experience through the fusion of smell and taste, enhances the aroma concentration, reduces the surface temperature of the device, reduces the risk of burning hands, and avoids the waste of fragrance.
Smart Images

Figure CN223614203U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electronic atomization technology, and in particular to an electronic atomization device. Background Technology
[0002] Electronic cigarettes and electronic devices used to atomize health care drugs, therapeutic drugs and other substances can be collectively referred to as electronic atomization devices. Electronic atomization devices generally include an atomizer for generating aerosols and a battery pack for providing power to the atomizer.
[0003] Currently, atomizers on the market typically consist of a housing and an atomizing coil. The housing contains an airflow channel connecting to the outside and a reservoir for storing the atomized liquid. The atomizing coil generally includes a liquid guide and a heating element that are connected and in contact. The atomizing coil is installed in the flow path of the airflow channel and is connected to the reservoir. The atomization process of an atomizer is generally as follows: the atomized liquid flows from the reservoir into the area where the liquid guide and the heating element are in contact. Under the heating effect of the heating element, the atomized liquid around the heating element is atomized to form an aerosol that the user can inhale. When the user inhales, a suction airflow is formed in the airflow path of the airflow channel. As the suction airflow passes through the heating element, it carries away the aerosol. The aerosol ultimately flows out from the outlet of the airflow channel along with the suction airflow and enters the user's mouth for inhalation.
[0004] Currently available atomizing liquids can be classified into flavored atomizing liquids and flavorless atomizing liquids according to their ingredients. Flavored atomizing liquids can be further divided into fruit-flavored, tobacco-flavored, and beverage-flavored liquids, etc. Although the flavors are rich, users can only experience the aroma through taste when vaping, which is difficult to satisfy the needs of some users. In particular, flavorless atomizing liquids can give a bland taste due to the aerosol formed by atomization, which greatly affects the user's vaping experience. Utility Model Content
[0005] The main purpose of this invention is to provide an electronic atomizing device that, by setting up an aroma enhancer and a heat conductor for transferring heat to the aroma enhancer to promote the aroma release, allows the user to experience the fragrance through smell when inhaling, thereby providing the user with an excellent inhalation experience through the fusion of smell and taste.
[0006] To achieve the above objectives, this utility model proposes an electronic atomizing device, which includes a power supply component, an atomizing mechanism, and a heat conductor. The atomizing mechanism is connected to the power supply component, and the power supply component is provided with at least one first positive electrode and at least one first negative electrode.
[0007] The atomizing mechanism includes:
[0008] An atomizer, wherein the atomizer is provided with at least one second positive electrode and at least one second negative electrode, the second positive electrode being in electrical contact with the first positive electrode, and the second negative electrode being in electrical contact with the first negative electrode; and
[0009] A fragrance enhancer includes at least one storage box, the inner cavity of which stores a volatile fragrance. The storage box has an insertion port communicating with the inner cavity and at least one first vent hole communicating with the outside. One end of a heat conductor is in contact with at least one of a first positive electrode, a second positive electrode, a first negative electrode, and a second negative electrode. The other end of the heat conductor is inserted into the inner cavity of the storage box through the insertion port. The heat conductor is used to transfer heat to the fragrance, so that the fragrance volatilizes under the action of the heat transferred by the heat conductor, and the fragrance volatilizes to the outside through the first vent hole.
[0010] Optionally, one end of the heat conductor is in contact with any one of the first positive electrode, the second positive electrode, the first negative electrode, and the second negative electrode.
[0011] Optionally, one end of the heat conductor is in contact with at least two of the first positive electrode, the second positive electrode, the first negative electrode, and the second negative electrode, and the heat conductor and the electrodes in contact with it are insulated from each other.
[0012] Optionally, when the heat conductor comes into contact with any one of the first positive electrode, the second positive electrode, the first negative electrode, and the second negative electrode, the material used to make the heat conductor is any one of copper, iron, and aluminum.
[0013] Optionally, when one end of the heat conductor is in contact with at least two of the first positive electrode, the second positive electrode, the first negative electrode, and the second negative electrode, the heat conductor is made of an insulating thermally conductive material, or the heat conductor is made of a conductive material, and the contact portion between the heat conductor and the electrode in contact with it is provided with an insulating layer.
[0014] Optionally, one end of the heat conductor is provided with a bent portion, and the bent portion is provided with at least one mounting hole. The electrodes that are in contact with the heat conductor are provided in a one-to-one correspondence with the mounting holes, and are inserted through the mounting holes and in contact with the hole wall of the mounting holes.
[0015] Optionally, the end of the heat conductor away from the bend is provided with a pointed tip.
[0016] Optionally, the heat conductor is in the form of a sheet, column, or spiral.
[0017] Optionally, one end of the heat conductor is fixedly connected to the power supply assembly and in contact with the first positive electrode and / or the first negative electrode on the power supply assembly, and the storage box is connected to the atomizer or the power supply assembly.
[0018] Optionally, one end of the heat conductor is fixedly connected to the atomizer and in contact with the second positive electrode and / or the second negative electrode on the atomizer, and the storage box is connected to the atomizer.
[0019] Optionally, the storage box is a hollow cylindrical shape and is arranged around the atomizer.
[0020] Optionally, the atomizer is disposed adjacent to the storage box.
[0021] Optionally, along the height direction of the atomizer, the atomizer has a groove on its side extending from the end face of the atomizer away from the power supply component to the end face of the atomizer near the power supply component, and the storage box is placed in the groove.
[0022] Optionally, the atomizer has an airflow channel that communicates with the outside world, and the atomizing mechanism also includes a mouthpiece. The mouthpiece is connected to the atomizer, and the mouthpiece includes a mouthpiece body that is connected to the air outlet of the airflow channel.
[0023] Optionally, the mouthpiece further includes an outer cover, which is disposed outside the atomizer and the aroma enhancer and is detachably connected to the atomizer. The outer cover has at least one second air vent that communicates with the first air vent. The top of the outer cover is connected to one end of the mouthpiece body. The outer cover also has a connecting hole that connects the mouthpiece body and the airflow channel.
[0024] Optionally, the first vent is located on the end face of the storage box near the nozzle body, and the second vent is located on the top of the outer cover, with the first vent and the second vent corresponding to each other.
[0025] Optionally, a ventilation space is provided between the outer wall surface of the storage box with the first vent hole and the inner wall surface of the outer cover with the second vent hole, which communicates with the first vent hole and the second vent hole. The ventilation space is independently set up from the airflow channel.
[0026] Optionally, the fragrance is an herb, a porous body with adsorbed fragrance, a paste fragrance, or a solid fragrance.
[0027] Optionally, the fragrance enhancer further includes at least one sealing film attached to the storage box to seal the first vent and the insertion port.
[0028] Optionally, the storage box is made of a rigid material.
[0029] Compared with the prior art, the beneficial effects of this utility model are:
[0030] In the technical solution of this utility model, a fragrance enhancer is provided, which includes at least one storage box containing volatile fragrance. The storage box has at least one first vent hole communicating with the outside. Furthermore, one end of a heat conductor is in contact with at least one of the first positive electrode, first negative electrode, second positive electrode, and second negative electrode. The other end of the heat conductor is inserted into the inner cavity of the storage box and can directly contact the fragrance inside. Therefore, when using an electronic atomizing device, the heat generated on the electrode in contact with one end of the heat conductor can be directly conducted to that end of the heat conductor via thermal conduction. The heat conductor then conducts this heat to the inner cavity of the storage box, thereby heating the fragrance inside and promoting rapid evaporation of the fragrance's aroma. Thus, when a user inhales from the electronic atomizing device, the aerosol formed by the atomized liquid is inhaled into the user's mouth. At the same time, because the atomizing mechanism is close to the user's mouth and nose, the aroma enhancer of the atomizing mechanism is also close to the user's mouth and nose, causing the fragrance in the storage box to quickly evaporate into the outside through the first vent, and the fragrance will enter the user's nose, so that the user can perceive the fragrance through smell. In this way, the user can obtain an excellent inhalation experience through the fusion of the two senses of smell and taste.
[0031] Furthermore, compared to the fragrance in the storage box evaporating naturally, this embodiment of the invention uses a heat conductor within the storage box to heat the fragrance, increasing the fragrance concentration. This not only satisfies users' demand for a rich aroma but also allows for greater fragrance extraction when the fragrance has weakened and cannot evaporate sufficiently naturally, thus avoiding waste caused by discarding the fragrance after it has faded. Moreover, by conducting heat generated by the electrode in contact with one end of the heat conductor to the fragrance in the storage box, not only is rapid evaporation of the fragrance promoted, but the temperature of the electrode is also reduced. This reduces the heat transferred from the electrode to the surface of the e-vaporizer, thus lowering the surface temperature of the e-vaporizer and reducing the risk of burns, ultimately improving the user experience. Attached Figure Description
[0032] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0033] Figure 1 This is a three-dimensional structural diagram of the electronic atomizing device in the first embodiment of the present invention;
[0034] Figure 2 for Figure 1 Exploded view;
[0035] Figure 3 for Figure 1 A three-dimensional sectional view;
[0036] Figure 4 for Figure 2 A schematic diagram of the three-dimensional structure of the heat conductor;
[0037] Figure 5 This is a three-dimensional structural diagram of the electronic atomizing device in the second embodiment of the present invention when the atomizer and the aroma enhancer are in a separated state;
[0038] Figure 6 This is an exploded view of the electronic atomizing device in the third embodiment of this utility model;
[0039] Figure 7 This is an exploded view of the electronic atomizing device in the fourth embodiment of this utility model;
[0040] Figure 8 This is an exploded view of the electronic atomizing device in the fifth embodiment of this utility model;
[0041] Figure 9 This is a schematic diagram of the electronic atomizing device in the sixth embodiment of the present invention when the atomizing mechanism and the power supply component are in a separated state;
[0042] Figure 10 for Figure 9 Exploded view of the electronic atomizing device;
[0043] Figure 11 This is an exploded view of the electronic atomizing device in the seventh embodiment of this utility model;
[0044] Figure 12 This is an exploded view of the electronic atomizing device in the eighth embodiment of this utility model.
[0045] Explanation of icon numbers:
[0046] 1. Atomizer; 11. Housing; 111. Groove; 114. Base; 1141. Boss; 1142. Through hole; 12. Atomizer core; 13. Airflow channel; 131. Air outlet; 14. Liquid storage chamber; 15. Second positive electrode; 16. Second negative electrode;
[0047] 2. Suction nozzle; 21. Outer cover; 211. Second air vent; 212. Connecting hole; 22. Suction nozzle body;
[0048] 3. Aroma enhancer; 31. Storage box; 311. First vent; 312. Insertion port; 32. Sealing film; 33. Fragrance;
[0049] 4. Ventilation space;
[0050] 5. Raised structure;
[0051] 100, Atomizing mechanism; 200, Power supply assembly; 210, Housing; 2101, Battery housing; 2102, Mounting cavity; 220, Separator; 230, Battery; 240, First positive electrode; 250, Second positive electrode; 300, Heat conductor; 310, Bending part; 3101, Mounting hole; 320, Tip.
[0052] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0053] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0054] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.
[0055] Furthermore, when an element is described as being "fixed to" another element, it can be directly on the other element, or one or more intermediate elements may exist between them. When an element is described as being "connected to" another element, it can be directly connected to the other element, or one or more intermediate elements may exist between them.
[0056] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or," "and / or," or "and / or" throughout the text implies three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where A and B are simultaneously satisfied. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0057] Reference Figures 1 to 12 This utility model provides an electronic atomizing device, which includes a power supply component 200, an atomizing mechanism 100 and a heat conductor 300. The atomizing mechanism 100 is connected to the power supply component 200, and the power supply component 200 is provided with at least one first positive electrode 240 and at least one first negative electrode 250.
[0058] The atomizing mechanism 100 includes an atomizer 1 and a flavor enhancer 3.
[0059] The atomizer 1 is provided with at least one second positive electrode 15 and at least one second negative electrode 16. The second positive electrode 15 is in electrical contact with the first positive electrode 240, and the second negative electrode 16 is in electrical contact with the first negative electrode 250.
[0060] The aroma enhancer 3 includes at least one storage box 31. The inner cavity of the storage box 31 stores a volatile fragrance 33. The storage box 31 is provided with an insertion port 312 communicating with its own inner cavity and at least one first vent 311 communicating with the outside. One end of the heat conductor 300 is in contact with at least one of the first positive electrode 240, the second positive electrode 15, the first negative electrode 250 and the second negative electrode 16. The other end of the heat conductor 300 is inserted into the inner cavity of the storage box 31 through the insertion port 312. The heat conductor 300 is used to transfer heat to the fragrance 33 so that the fragrance 33 volatilizes under the action of the heat transferred by the heat conductor 300, and the fragrance volatilizes to the outside through the first vent 311.
[0061] It should be noted that the electrical contact between the two electrodes described above includes two implementation methods: first, the two electrodes are in contact with each other but not connected; second, the two electrodes are connected to each other. Specifically, in some optional embodiments, the first positive electrode 240 and the second positive electrode 15 are in contact with each other, and the first negative electrode 250 and the second negative electrode 16 are in contact with each other. In other optional embodiments, the first positive electrode 240 and the second positive electrode 15 are connected to each other (e.g., by welding), and the first negative electrode 250 and the second negative electrode 16 are connected to each other (e.g., by welding). Furthermore, the contact between the heat conductor 300 and the electrodes described above also includes two implementation methods: first, the heat conductor 300 and the electrodes are only in contact with each other but not connected; second, the heat conductor 300 and the electrodes are connected to each other, thus achieving contact. Specifically, one end of the heat conductor 300 is in contact with or connected to at least one of the first positive electrode 240, the second positive electrode 15, the first negative electrode 250, and the second negative electrode 16 (e.g., fixed connection or detachable connection), as long as the heat on the electrode can be conducted to the heat conductor 300, without any specific limitation.
[0062] In the technical solution of this utility model, since an aroma enhancer 3 is provided, and the aroma enhancer 3 includes at least one storage box 31, the storage box 31 stores volatile fragrance 33, and the storage box 31 is provided with at least one first ventilation hole 311 communicating with the outside, and one end of the heat conductor 300 is in contact with at least one of the first positive electrode 240, the first negative electrode 250, the second positive electrode 15 and the second negative electrode 16, and the other end of the heat conductor 300 is inserted into the inner cavity of the storage box 31 and can directly contact the fragrance 33 in the inner cavity of the storage box 31, so when the electronic atomizing device is used, the heat generated on the electrode in contact with one end of the heat conductor 300 can be directly conducted to one end of the heat conductor 300 through thermal conduction, and the heat conductor 300 conducts the heat to the inner cavity of the storage box 31, thereby heating the fragrance 33 in the inner cavity of the storage box 31 and causing the fragrance 33 to evaporate quickly. Thus, when a user inhales from the electronic atomizing device, the aerosol formed by the atomization of the atomizing liquid is inhaled into the user's mouth. At the same time, because the atomizing mechanism 100 is close to the user's mouth and nose, the aroma enhancer 3 of the atomizing mechanism 100 is also close to the user's mouth and nose, causing the fragrance 22 in the storage box 31 to quickly evaporate into the outside through the first vent 311, and the fragrance will enter the user's nose, so that the user can perceive the fragrance through smell. In this way, the user can obtain an excellent inhalation experience through the fusion of the two senses of smell and taste.
[0063] Furthermore, compared to the fragrance 33 in the inner cavity of the storage box 31 evaporating its aroma through natural evaporation, this embodiment of the invention, by providing a heat conductor 300 in the inner cavity of the storage box 31 and using the heat conducted to the heat conductor 300 to heat the fragrance 33 to evaporate its aroma, can increase the aroma concentration. This not only helps meet the user's demand for a rich aroma but also helps to obtain more aroma when the fragrance 33 becomes too weak to evaporate naturally, thus avoiding the waste of the fragrance 33 caused by its being discarded after fading. Moreover, by conducting the heat generated by the electrode in contact with one end of the heat conductor 300 to the fragrance 33 in the inner cavity of the storage box 31, it can not only promote the rapid evaporation of the fragrance 33 but also reduce the temperature of the electrode, thereby reducing the heat transferred from the electrode to the surface of the electronic atomizing device. Therefore, it helps to reduce the surface temperature of the electronic atomizing device, thereby reducing the risk of the electronic atomizing device becoming too hot to handle, and thus improving the user experience.
[0064] In some optional embodiments of this utility model, such as Figure 1-10 As shown, one end of the heat conductor 300 is in contact with any one of the first positive electrode 240, the second positive electrode 15, the first negative electrode 250, and the second negative electrode 16.
[0065] In this embodiment, the heat conductor 300 may optionally be made of any one of copper, iron, or aluminum. Since copper, iron, and aluminum all have good thermal conductivity, a heat conductor 300 made of copper, iron, or aluminum will also have good thermal conductivity. This allows the heat conductor 300 to quickly conduct the heat generated by the electrode in contact with it to the fragrance 33, thereby heating the fragrance 33 promptly. Of course, the heat conductor 300 can also be made of other thermally conductive materials, as long as they meet the thermal conductivity requirements; no specific limitation is made here.
[0066] In some other optional embodiments of this utility model, such as Figure 11-12 As shown, one end of the heat conductor 300 is in contact with at least two of the first positive electrode 240, the second positive electrode 15, the first negative electrode 250, and the second negative electrode 16. The heat conductor 300 and the electrodes in contact with it are insulated from each other, thereby preventing short circuits when the electronic atomizing device is working.
[0067] In this embodiment, in some optional implementations, the material used to make the heat conductor 300 is an insulating and thermally conductive material, such as ceramics, glass, graphene, etc., as long as it meets the usage requirements, and no specific limitation is made here.
[0068] In some alternative embodiments, the heat conductor 300 is made of a conductive material, and an insulating layer (not shown) is provided at the contact points between the heat conductor 300 and the electrodes in contact with it. In specific implementations, the conductive material can be a metallic material (such as copper, iron, aluminum, etc.) or other materials such as conductive ceramic materials. Furthermore, the insulating layer can specifically be a ceramic glaze or a Teflon coating. Alternatively, the insulating layer can be formed by performing micro-arc oxidation treatment on the heat conductor 300 or all electrodes in contact with it, as long as it ensures mutual insulation between the heat conductor 300 and all electrodes in contact with it; no specific limitation is made here.
[0069] In some optional embodiments of this utility model, such as Figure 2-4 As shown in Figures 10-12, one end of the heat conductor 300 is provided with a bent portion 310, and the bent portion 310 is provided with at least one mounting hole 3101. The electrode that contacts the heat conductor 300 is provided with a corresponding mounting hole 3101, and is inserted through the mounting hole 3101 and in contact with the hole wall of the mounting hole 3101. In this way, not only is mutual contact between the electrode and one end of the heat conductor 300 realized, thereby realizing heat transfer between the electrode and the heat conductor 300, but also the heat conductor 300 and the electrode are electrically contacted through surface contact. Compared with point contact, the contact area between the heat conductor 300 and the electrode is increased, which is more conducive to improving the heat conduction efficiency between the electrode and the heat conductor 300. That is, it is conducive to accelerating the heat conduction from the electrode to the heat conductor 300, thereby accelerating the heat conduction to the inner cavity of the storage box 31, thereby increasing the heating rate of the fragrance 33, and allowing the aroma of the fragrance 33 to evaporate quickly.
[0070] It should be noted that, as mentioned above, the one-to-one correspondence between the electrodes in contact with the heat conductor 300 and the mounting holes 3101 means that the number of electrodes in contact with the heat conductor 300 is the same as the number of mounting holes 3101, and their positions correspond one-to-one with the positions of the mounting holes 3101. For example, as... Figure 12 As shown, when the first positive electrode 240 and the first negative electrode 250 of the first positive electrode 240, the second positive electrode 15, the first negative electrode 250 and the second negative electrode 16 are in contact with the heat conductor 300, there are two mounting holes 3101, and the positions of the two mounting holes 3101 correspond one-to-one with the positions of the first positive electrode 240 and the first negative electrode 250, so that the first positive electrode 240 and the first negative electrode 250 can be inserted into the corresponding mounting holes 3101.
[0071] like Figure 2 , 4As shown, in this embodiment, optionally, the end of the heat conductor 300 away from the bending portion 310 is provided with a tip 320. Since the tip 320 of the heat conductor 300 is easily inserted into the insertion port 312, and after the tip 320 is inserted into the insertion port 312, it is also easier for the tip 320 to pierce into the fragrance 33, thus facilitating the insertion of the heat conductor 300 into the fragrance enhancer 3. Furthermore, when the insertion port 312 is covered with a sealing film 32, the tip 321 can easily pierce the sealing film 32, thereby allowing the heat conductor 300 to be inserted into the fragrance enhancer 3.
[0072] In this embodiment, optionally, the heat conductor 300 is in the form of a sheet (e.g., Figure 4 ), columnar (such as) Figure 7 The heat conductor 300 can be in any shape, such as a spiral (not shown), or a spiral shape. It can also be in other shapes, as long as the heat conductor 300 can be inserted into the inner cavity of the storage box 31 through the insertion port 312. The shape of the heat conductor 300 is not specifically limited here.
[0073] In some optional embodiments of this utility model, such as Figure 2-6 As shown, one end of the heat conductor 300 is fixedly connected to the power supply assembly 200 and in contact with the first positive electrode 240 and / or the first negative electrode 250 on the power supply assembly 200. The storage box 31 is connected to the atomizer 1 or the power supply assembly 200, including the following 6 examples.
[0074] Example 1, such as Figure 1-3 As shown, one end of the heat conductor 300 is fixedly connected to the power supply assembly 200 and in contact with the first positive electrode 240 on the power supply assembly 200, and the storage box 31 is connected to the atomizer 1. Thus, in some electronic atomization devices using disposable atomizers 1, compared to fixing the heat conductor 300 to the atomizer 1, fixing the heat conductor 300 to the power supply assembly 200 allows for the reuse of the heat conductor 300. This avoids the waste of resources caused by the heat conductor 300 being discarded along with the disposable atomizer 1 after the atomizing liquid is exhausted due to its fixed connection to the atomizer 1, thereby reducing production costs and saving resources.
[0075] In specific implementation, such as Figure 2 , 3 As shown, the atomizer 1 has a through hole 1142 with a corresponding insertion port 312 on one end face near the second positive electrode 15 and the second negative electrode 16. The heat conductor 300 passes through the through hole 1142 and the insertion port 312 in sequence and is inserted into the inner cavity of the storage box 31.
[0076] In this example, in some optional embodiments, the storage box 31 is detachably connected to the atomizer 1. The specific detachable connection method can be a plug-in, socket, or magnetic connection, as long as it allows for easy assembly and disassembly between the storage box 31 and the atomizer 1; no specific limitation is made here. Thus, by detachably connecting the storage box 31 to the atomizer 1, the flavor enhancer 3 can be replaced. This allows for replacement with a new flavor enhancer 3 after the aroma of the flavoring agent 33 has been exhausted, and also enables users to switch between different flavor enhancers 3 at any time according to their needs, thereby effectively meeting user requirements.
[0077] In some alternative embodiments, the storage box 31 is fixedly connected to the atomizer 1. The specific fixed connection method can be bonding or welding, as long as the storage box 31 can be fixedly connected to the atomizer 1. No specific limitation is made here.
[0078] Example 2, such as Figure 5 As shown, one end of the heat conductor 300 is fixedly connected to the power supply assembly 200 and is in contact with the first positive electrode 240 on the power supply assembly 200, and the storage box 31 is connected to the power supply assembly 200.
[0079] In this example, in some optional implementations, the storage box 31 is detachably connected to the power assembly 200. The specific detachable connection method is plug-in or magnetic connection, etc., as long as the storage box 31 and the power assembly 200 can be detached and assembled. No specific limitation is made here.
[0080] In some alternative embodiments, the storage box 31 is fixedly connected to the power supply assembly 200. The specific fixed connection method can be adhesive bonding or welding, as long as the storage box 31 can be fixedly connected to the power supply assembly 200. No specific limitation is made here.
[0081] Example 3, please refer to Figure 6 One end of the heat conductor 300 is fixedly connected to the power supply assembly 200 and contacts the first negative electrode 250 on the power supply assembly 200. The storage box 31 is connected to the atomizer 1.
[0082] The rest of the content in this example is the same as in Example 1. Please refer to Example 1 for details, and it will not be repeated here.
[0083] Example 4, such as Figure 7 As shown, one end of the heat conductor 300 is fixedly connected to the power supply assembly 200 and in contact with the first negative electrode 250 on the power supply assembly 200, and the storage box 31 is connected to the power supply assembly 200.
[0084] The rest of the content in this example is the same as in Example 2. Please refer to Example 2 for details, and it will not be repeated here.
[0085] Example 5: One end of the heat conductor 300 is fixedly connected to the power supply assembly 200 and is in contact with the first positive electrode 240 and the first negative electrode on the power supply assembly 200. The storage box 31 is connected to the power supply assembly 200.
[0086] The rest of the content in this example is the same as in Example 2. Please refer to Example 2 for details, and it will not be repeated here.
[0087] Example 6, such as Figure 12 As shown, one end of the heat conductor 300 is fixedly connected to the power supply assembly 200 and is in contact with the first positive electrode 240 and the first negative electrode 250 on the power supply assembly 200. The storage box 31 is connected to the atomizer 1.
[0088] The rest of the content in this example is the same as in Example 1. Please refer to Example 1 for details, and it will not be repeated here.
[0089] In some other optional embodiments of this utility model, such as Figure 8-11 As shown, one end of the heat conductor 300 is fixedly connected to the atomizer 1 and contacts the second positive electrode 15 and / or the second negative electrode 16 on the atomizer 1. The storage box 31 is connected to the atomizer 1, including the following three examples:
[0090] Example 1, such as Figure 8 As shown, one end of the heat conductor 300 is fixedly connected to the atomizer 1 and is in contact with the second positive electrode 15 on the atomizer 1.
[0091] Example 2, such as Figure 9 , 10 As shown, one end of the heat conductor 300 is fixedly connected to the atomizer 1 and is in contact with the second negative electrode 16 on the atomizer 1.
[0092] Example 3, such as Figure 11 As shown, one end of the heat conductor 300 is fixedly connected to the atomizer 1 and is in contact with the second positive electrode 15 and the second negative electrode 16 on the atomizer 1.
[0093] In this embodiment, during specific implementation, a through hole 1142 is provided on the end face of the storage box 31 near the second positive electrode 15 and the second negative electrode 16, corresponding to the insertion port 312. The heat conductor 300 passes through the through hole 1142 and the insertion port 312 in sequence and is inserted into the inner cavity of the storage box 31. The heat conductor 300 can be embedded in the atomizer 1 or bonded to the atomizer 1, thereby being fixedly connected to the atomizer 1.
[0094] In some optional embodiments of the utility model, such as Figure 2 , 5 As shown in Figure 12, the position of the storage box 31 relative to the atomizer 1 can be configured in various ways. This embodiment provides the following three examples:
[0095] Example 1, such as Figure 6 , 11 As shown, the storage box 31 is a hollow cylindrical shape and is arranged around the atomizer 1.
[0096] Furthermore, such as Figure 6 , 11 As shown, when the storage box 31 is connected to the atomizer 1, in some optional embodiments, the storage box 31 and the atomizer 1 are detachably connected. Specifically, the size and shape of the hollow space of the atomizer 1 and the storage box 31 are adapted to each other, and the storage box 31 is fitted over the atomizer 1 and detachably connected to the atomizer 1. Of course, in this embodiment, the detachable connection between the storage box 31 and the atomizer 1 can also be achieved by means such as magnetic connection or snap-fit connection, which is not specifically limited here. In other optional embodiments, the storage box 31 and the atomizer 1 are fixedly connected. Specifically, the storage box 31 can be fixedly connected to the atomizer 1 by interference fit or adhesive, which is not specifically limited here.
[0097] When the storage box 31 is connected to the power supply assembly 200 (not shown), in some optional embodiments, the storage box 31 and the power supply assembly 200 are detachably connected. The specific connection method can be plug-in, snap-fit, or magnetic connection, as long as it allows for the detachment of the aroma enhancer 3 and the power supply assembly 200; no specific limitation is made here. In other optional embodiments, the storage box 31 and the power supply assembly 200 are fixedly connected, and the specific connection method can be adhesive bonding; no specific limitation is made here.
[0098] Example 2, such as Figure 7 , 10 As shown, the atomizer 1 and the storage box 31 are arranged adjacent to each other. In specific implementations, the storage box 31 and the atomizer 1 can be arranged in a left-right adjacent relationship or a front-back adjacent relationship. That is, the storage box 31 can be located on the left, right, front or back of the atomizer 1, and no specific limitation is made here.
[0099] Furthermore, such as Figure 10 As shown, when the storage box 31 is connected to the atomizer 1, in some optional embodiments, the storage box 31 and the atomizer 1 are detachably connected. The detachable connection method can be magnetic connection or snap-on connection, etc., which is not specifically limited here. In other optional embodiments, the atomizer 1 can also be fixedly connected to the storage box 31. The specific fixed connection method can be adhesive or welding, etc., which is not specifically limited here.
[0100] like Figure 7 As shown, when the storage box 31 is connected to the power supply assembly 200, the connection method is the same as in Example 1. Please refer to Example 1 for details, which will not be repeated here.
[0101] Example 3, such as Figure 2 , 5 As shown in Figures 8 and 12, along the height direction of the atomizer 1, the atomizer 1 has a groove 111 on its side extending from the end of the atomizer 1 away from the power supply assembly 200 to the end of the atomizer 1 near the power supply assembly 200, and the storage box 31 is placed in the groove 111.
[0102] Furthermore, such as Figure 2 , 8 As shown, when the storage box 31 is connected to the atomizer 1, in some optional embodiments, the storage box 31 and the atomizer 1 are detachably connected. Specifically, the size and shape of the storage box 31 and the groove 111 are adapted to each other, and the storage box 31 is inserted into the groove 111 and detachably connected to the atomizer 1. Moreover, when the storage box 31 is inserted into the groove 111, the overall surface of the atomizing mechanism 100 can present a relatively flat state, which helps to improve the aesthetics of the atomizing mechanism 100. In other optional embodiments, the storage box 31 is fixedly connected to the atomizer 1. Specifically, the storage box 31 can be fixedly connected to the atomizer 1 by interference fit or adhesive bonding, which is not specifically limited here.
[0103] like Figure 5 As shown, when the storage box 31 is connected to the power supply assembly 200, the connection method is the same as in Example 1. Please refer to Example 1 for details, which will not be repeated here.
[0104] In some optional embodiments of this utility model, please refer to the reference. Figure 3 and Figure 5 The atomizer 1 has an airflow channel 13 that is connected to the outside. The atomizing mechanism 100 also includes a mouthpiece 2, which is connected to the atomizer 1. The mouthpiece 2 includes a mouthpiece body 22, which is connected to the air outlet 131 of the airflow channel 13.
[0105] In this embodiment, as Figure 5 As shown, the atomizer 1 also includes a housing 11 and an atomizing core 12. The housing 11 has an airflow channel 13 and a liquid storage chamber 14 for storing atomized liquid. The atomizing core 12 is located on the airflow path of the airflow channel 13. The atomizing core 12 is connected to the liquid storage chamber 14 and electrically connected to the second positive electrode 15 and the second negative electrode 16. The atomizing core 12 is electrically connected to the power supply component 200 through the second positive electrode 15 being electrically connected to the first positive electrode 240 and the second negative electrode 16 being electrically connected to the first negative electrode 250, thereby turning on the power supply component 200. When the user inhales, the power supply component 200 provides electrical energy to the atomizing core 12 so that the atomizing core 12 is energized and heated, and the atomized liquid obtained from the liquid storage chamber 14 is vaporized into an aerosol that can be inhaled by the user.
[0106] In this embodiment, as Figure 1-3 As shown in Figure 6-11, the mouthpiece 2 also includes an outer cover 21. The outer cover 21 covers the atomizer 1 and the flavor enhancer 3 and is detachably connected to the atomizer 1. The outer cover 21 has at least one second air diffuser 211 that communicates with the first air diffuser 311. The top of the outer cover 21 is connected to one end of the mouthpiece body 22. The outer cover 21 also has a connecting hole 212 that connects the mouthpiece body 22 and the airflow channel 13 (e.g., ...). Figure 3 The outer cover 21 is placed over the atomizer 1 and the aroma enhancer 3, which not only protects the atomizer 1 and the aroma enhancer 3 and improves their impact resistance, but also makes the appearance of the atomizing mechanism 100 integrated, which helps to further improve the overall aesthetics of the electronic atomizing device.
[0107] In this embodiment, in some optional implementations, such as Figure 2-3 As shown, the atomizer 1 has a base 114 at the end away from the mouthpiece body 22, and the outer cover 21 is detachably connected to the base 114. Specifically, the base 114 has a protrusion 1141, and the end of the outer cover 21 away from the mouthpiece body 22 is inserted into the protrusion 1141, thereby achieving a detachable connection between the outer cover 21 and the atomizer 1. At the same time, since the flavor enhancer 3 is confined inside the outer cover 21, the top wall of the outer cover 21 will press the flavor enhancer 3 against the base 114 of the atomizer 1, thereby achieving a connection between the flavor enhancer 3 and the atomizer 1. Of course, the detachable connection between the outer cover 21 and the base 114 can also be a snap-fit connection or a magnetic connection, etc., which are not specifically limited here.
[0108] In some alternative embodiments, the outer cover 21 can be engaged with the outer side wall of the atomizer 1 via a snap-fit structure (not shown). Specifically, the snap-fit structure may include a first snap-fit portion and a second snap-fit portion, wherein the first snap-fit portion is disposed on the inner wall of the outer cover 21, and the second snap-fit portion is disposed on the outer side wall of the atomizer 1 and engages with the first snap-fit portion, thereby achieving the engagement between the outer cover 21 and the atomizer 1. It should be noted that one of the first snap-fit portion and the second snap-fit portion is a protrusion, and the other is a recess that matches the protrusion.
[0109] In this embodiment, please refer to some optional implementation methods. Figure 2The first vent 311 is located on the end face of the storage box 31 near the mouthpiece body 22, and the second vent 211 is located on the top of the outer cover 21. The first and second vents 311 are arranged in a one-to-one correspondence. This ensures that the aroma in the fragrance enhancer 3 can diffuse to the outside through the first and second vents 311. In addition, since both the first and second vents 311 are located close to the mouthpiece body 22, when the user inhales by holding the mouthpiece body 22 in their mouth, the second vent 211 can be closer to the user's nose. This shortens the path for the aroma to enter the user's nasal cavity, reduces aroma loss and waste, and allows the aroma to enter the user's nasal cavity quickly and in larger quantities, giving the user a stronger sense of smell and further enhancing the user's inhalation experience.
[0110] In this embodiment, in some other alternative implementations, such as Figure 2 , 3 As shown in Figure 6, a ventilation space 4 is provided between the outer wall surface of the storage box 31 with the first vent 311 and the inner wall surface of the outer cover 21 with the second vent 211, and the ventilation space 4 is connected to the first vent 311 and the second vent 211. The ventilation space 4 and the airflow channel 13 are set independently. In this way, since the ventilation space 4 has a large volume, it is not necessary to align the first vent 311 and the second vent 211 when installing the outer cover 21. Instead, the first vent 311 and the second vent 211 are connected to the ventilation space 4, which improves the speed of installing the outer cover 21. Furthermore, since the aroma of the fragrance 33 can diffuse from the first vent 311 of the storage box 31 into the ventilation space 4 and accumulate there, the aroma concentration in the ventilation space 4 reaches a high level. In the same amount of time, a larger amount of aroma can diffuse from the ventilation space 4, which has a higher aroma concentration, to the outside. Therefore, setting up the ventilation space 4 also facilitates the diffusion of the aroma from the fragrance enhancer 3 to the outside. In addition, by setting the ventilation space 4 and the airflow channel 13 independently (i.e., the airflow channel 13 is not connected to the ventilation space 4), it can prevent the aroma from the fragrance enhancer 3 from being drawn into the airflow channel 13 and mixed with the gas in the airflow channel 13 before entering the user's mouth when the user inhales through the atomizing mechanism 100. This reduces the likelihood of the user having difficulty inhaling the aroma through the nasal cavity.
[0111] In this embodiment, optionally, as Figure 2 , 6As shown, the first air vent 311 is provided on the end face of the storage box 31 near the mouthpiece body 22, and the second air vent 211 is provided on the top of the outer cover 21. At least one of the following surfaces is provided: the end face of the storage box 31 near the mouthpiece body 22, the inner wall surface of the top of the outer cover 21, and the end face of the atomizer 1 near the mouthpiece body 22. The protruding structure 5 is used to form a ventilation space 4 between the end face of the storage box 31 near the mouthpiece body 22 and the inner wall surface of the top of the outer cover 21.
[0112] In some specific implementation methods, such as Figure 6 As shown, there can be multiple protruding structures 5. Some of the protruding structures 5 are located on the end face of the storage box 31 near the mouthpiece body 22, some of the protruding structures 5 are located on the inner wall surface of the top of the outer cover 21, and the remaining protruding structures 5 are located on the end face of the atomizer 1 near the mouthpiece body 22.
[0113] In other specific implementations, such as Figure 3 As shown, the protruding structure 5 can be a single ring-shaped structure, which is disposed on the inner wall surface of the top of the outer cover 21. The end of the protruding structure 5 away from the inner wall surface of the top of the outer cover 21 is pressed against the end face of the atomizer 1 near the mouthpiece body 22, and it is disposed around the air outlet 131. In addition to forming the ventilation space 4, the protruding structure 5 is also used to separate the airflow channel 13 and the ventilation space 4, so that the ventilation space 4 and the airflow channel 13 are set independently.
[0114] In some optional embodiments of this utility model, such as Figure 3 As shown, fragrance 33 is herbaceous plant, porous body with adsorbed fragrance, paste fragrance 33 or solid fragrance 33.
[0115] It should be noted that the herbal plants can be one or more of the following: tobacco, lavender, lemongrass, mint, flowers (such as osmanthus, rose, chrysanthemum, orange blossom, cherry blossom, jasmine, etc.), rosemary, sandalwood, star anise, fennel, cinnamon, coffee, etc., or other herbal plants; no specific limitation is made here. The porous body that adsorbs the fragrance serves as the fragrance carrier and can be porous ceramics, sponges, cotton strips, etc.; no specific limitation is made here. Both the paste fragrance 33 and the solid fragrance 33 are fragrances 33 in different forms from perfumes, and both contain a mixture of fragrances. For example, the paste fragrance 33 can be a paste incense, and the solid fragrance 33 can be a solid perfume. Furthermore, the aforementioned fragrances can be natural or synthetic, and the type of fragrance can be fruity, tobacco-based, beverage-based, floral, etc.; no specific limitation is made here.
[0116] In some optional embodiments of this utility model, such as Figure 2 , 3As shown in Figures 5-7, the aroma enhancer 3 also includes at least one sealing film 32, which is attached to the storage box 31 to seal the first vent 311 and the insertion port 312. Before using the aroma enhancer 3, the sealing film 32 seals the first vent 311 and the insertion port 312 to prevent the aroma from diffusing to the outside. When the user needs to use the aroma enhancer 3, the aroma of the fragrance 33 inside the aroma enhancer 3 will diffuse outward by tearing open the sealing film 32. This helps to preserve the fragrance of the fragrance 33 and avoids waste of the fragrance 33 before use. After the aroma enhancer 3 is used, the first vent 311 can be resealed, for example, by reattaching the sealing film 32 to the first vent 311 of the storage box 31 or by using a sealing material such as a rubber stopper to seal the first vent 311 of the storage box 31. This can reduce the waste of the fragrance 33 after the electronic atomization device is used. Of course, after the electronic atomizing device is used up, the first vent 311 of the storage box 31 can be left unsealed. In this case, the aroma enhancer 3 can be used as an aromatherapy device.
[0117] In some optional embodiments of this utility model, the storage box 31 is made of a rigid material. By using a rigid material to make the storage box 31, the rigidity of the storage box 31 can be enhanced and its shape can be kept stable. This not only helps to keep the aroma enhancer 3 intact during transportation, but also facilitates the interconnection between the storage box 31 and the atomizer 1, and also helps to improve the aesthetics of the atomizing mechanism 100.
[0118] In this embodiment, the rigid material can be plastic, ceramic, metal, wood, etc., and is not specifically limited here.
[0119] In this embodiment, as Figure 2 , 3 As shown, in some alternative embodiments, the atomizing mechanism 100 is detachably connected to the power supply assembly 200.
[0120] In a specific implementation, the power supply assembly 200 also includes a housing 210 and a battery 230. A partition seat 220 is horizontally provided within the inner cavity of the housing 210, dividing the inner cavity into a battery receiving cavity 2101 and an open mounting cavity 2102. The atomizing mechanism 100 is inserted into the mounting cavity 2102 and is detachably connected to the power supply assembly 200 via a threaded connection, magnetic connection, or plug-in connection. A first positive electrode 240 and a second positive electrode 15 are fixedly disposed on the partition seat 220. One end of the first positive electrode 240 and the second positive electrode 15 is electrically connected to the battery 230, which is located within the battery receiving cavity 2101. Specifically, the battery 230 can be a lithium battery, a dry cell battery, or a similar type of battery.
[0121] When the atomizing mechanism 100 is installed on the power supply assembly 200, the first positive electrode 240 and the second positive electrode 15 are in contact with each other, and the first negative electrode 250 and the second negative electrode 16 are in contact with each other, thereby realizing the electrical connection between the power supply assembly 200 and the atomizing mechanism 100; when the atomizing mechanism 100 is removed from the power supply assembly 200, the first positive electrode 240 and the second positive electrode 15 are separated from each other, and the first negative electrode 250 and the second negative electrode 16 are separated from each other, thereby disconnecting the electrical connection between the power supply assembly 200 and the atomizing mechanism 100.
[0122] In some alternative embodiments, the atomizing mechanism 100 may also be fixedly connected to the power supply assembly 200.
[0123] In this embodiment, specifically, the electronic atomizing device can be an electronic cigarette (in this case, the atomizing liquid mentioned in the above embodiments of the present invention can be a medium such as e-liquid).
[0124] It should be noted that other aspects of the electronic atomizing device disclosed in this utility model can be found in the prior art, and will not be repeated here. The above are merely preferred embodiments of this utility model, and do not limit the patent scope of this utility model. All equivalent structural transformations made based on the inventive concept of this utility model and the contents of this utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this utility model.
Claims
1. An electronic atomizing device, characterized in that, The electronic atomizing device includes a power supply component, an atomizing mechanism, and a heat conductor. The atomizing mechanism is connected to the power supply component, and the power supply component is provided with at least one first positive electrode and at least one first negative electrode. The atomizing mechanism includes: An atomizer, wherein the atomizer is provided with at least one second positive electrode and at least one second negative electrode, the second positive electrode being in electrical contact with the first positive electrode, and the second negative electrode being in electrical contact with the first negative electrode; and A fragrance enhancer includes at least one storage box, the inner cavity of which stores a volatile fragrance. The storage box has an insertion port communicating with the inner cavity and at least one first vent hole communicating with the outside. One end of a heat conductor is in contact with at least one of a first positive electrode, a second positive electrode, a first negative electrode, and a second negative electrode. The other end of the heat conductor is inserted into the inner cavity of the storage box through the insertion port. The heat conductor is used to transfer heat to the fragrance, so that the fragrance volatilizes under the action of the heat transferred by the heat conductor, and the fragrance volatilizes to the outside through the first vent hole.
2. The electronic atomizing device as described in claim 1, characterized in that, One end of the heat conductor is in contact with any one of the first positive electrode, the second positive electrode, the first negative electrode, and the second negative electrode; Alternatively, one end of the heat conductor is in contact with at least two of the first positive electrode, the second positive electrode, the first negative electrode, and the second negative electrode, and the heat conductor and the electrodes in contact with it are insulated from each other.
3. The electronic atomizing device as described in claim 2, characterized in that: When the heat conductor comes into contact with any one of the first positive electrode, the second positive electrode, the first negative electrode, and the second negative electrode, the material used to make the heat conductor is any one of copper, iron, and aluminum. When one end of the heat conductor is in contact with at least two of the first positive electrode, the second positive electrode, the first negative electrode, and the second negative electrode, the heat conductor is made of an insulating and thermally conductive material, or the heat conductor is made of a conductive material, and the contact portion between the heat conductor and the electrode in contact with it is provided with an insulating layer.
4. The electronic atomizing device as described in claim 3, characterized in that, One end of the heat conductor is provided with a bent portion, and the bent portion is provided with at least one mounting hole. The electrodes that are in contact with the heat conductor are arranged one-to-one with the mounting holes, and are inserted through the mounting holes and in contact with the hole wall of the mounting holes.
5. The electronic atomizing device as described in claim 4, characterized in that, The heat conductor has a pointed end away from the bent portion; And / or, the heat conductor is in the form of a sheet, column, or spiral.
6. The electronic atomizing device according to any one of claims 1-5, characterized in that, One end of the heat conductor is fixedly connected to the power supply assembly and is in contact with the first positive electrode and / or the first negative electrode on the power supply assembly; the storage box is connected to the atomizer or the power supply assembly. or, One end of the heat conductor is fixedly connected to the atomizer and in contact with the second positive electrode and / or the second negative electrode on the atomizer, and the storage box is connected to the atomizer.
7. The electronic atomizing device as described in claim 6, characterized in that, The storage box is a hollow cylindrical shape and is arranged around the atomizer; or... The atomizer is disposed adjacent to the storage box; or... Along the height direction of the atomizer, the atomizer has a groove on its side extending from the end of the atomizer away from the power component to the end of the atomizer near the power component, and the storage box is placed in the groove.
8. The electronic atomizing device as described in claim 6, characterized in that, The atomizer has an airflow channel that communicates with the outside. The atomizing mechanism also includes a mouthpiece, which is connected to the atomizer. The mouthpiece includes a mouthpiece body, which is connected to the air outlet of the airflow channel.
9. The electronic atomizing device as described in claim 8, characterized in that, The mouthpiece also includes an outer cover, which is disposed outside the atomizer and the aroma enhancer and is detachably connected to the atomizer. The outer cover has at least one second air vent that communicates with the first air vent. The top of the outer cover is connected to one end of the mouthpiece body. The outer cover also has a connecting hole that connects the mouthpiece body and the airflow channel.
10. The electronic atomizing device as described in claim 9, characterized in that, The first vent is located on the end face of the storage box near the nozzle body, and the second vent is located on the top of the outer cover; the first vent and the second vent are arranged in a one-to-one correspondence. Alternatively, A ventilation space is provided between the outer wall surface of the storage box with the first vent hole and the inner wall surface of the outer cover with the second vent hole, which is connected to the first vent hole and the second vent hole. The ventilation space is independently set up from the airflow channel.
11. The electronic atomizing device according to any one of claims 1-5, characterized in that, The fragrance is a herbaceous plant, a porous body with adsorbed fragrance, a paste fragrance, or a solid fragrance; And / or, the aroma enhancer further includes at least one sealing film, which is attached to the storage box to seal the first vent hole and the insertion port; And / or, the storage box is made of a rigid material.