Atomization device
By introducing evaporation and liquid storage components into the atomizing device, and utilizing heating and atomization components to generate a variety of aerosol flavors, the problem of single flavor in existing devices is solved, improving user experience and device performance.
Patent Information
- Application Number
- CN202520162312.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-01-23
AI Technical Summary
Existing atomizing devices are only equipped with a single flavor of atomizing matrix, which cannot meet users' personalized needs for different aerosol flavors.
Design an atomizing device comprising a volatile component and a liquid storage component, wherein a first aerosol is generated by a heating component or by a heated airflow coming into contact with a flavoring matrix to generate a first aerosol, and a second aerosol is generated by an atomizing component, providing a variety of flavor options.
It enables users to personalize their choices for different aerosol flavors, improves the user experience, extends battery life, and reduces the risk of flavor mixing and leakage.
Smart Images

Figure CN223860221U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of electronic atomization, and in particular to an atomization device. BACKGROUND
[0002] In related designs, an atomization device is used to heat and atomize a base material and generate aerosol. External airflow of the atomization device can enter from an air inlet of the atomization device, mix with the atomized base material to form aerosol, and finally be discharged from an air outlet for a user to smoke.
[0003] However, the atomization device is only configured with a single type of base material, which cannot meet the personalized use requirements of users for different aerosol flavors. CONTENT OF THE UTILITY MODEL
[0004] The present application provides an atomization device, which solves the technical problem that the existing atomization device is only configured with a single type of base material and cannot meet the personalized use requirements of users for different aerosol flavors.
[0005] The present application provides an atomization device comprising:
[0006] a volatilization component for storing a flavoring material having a volatilization property;
[0007] a heating component for heating the flavoring material to generate a first aerosol, or the heating component for heating air to generate a hot air flow, the hot air flow being in contact with the flavoring material to generate a first aerosol;
[0008] a liquid storage component for storing a base material;
[0009] an atomization component in liquid path communication with the liquid storage component, configured to heat the base material and generate a second aerosol;
[0010] At least one of the first aerosol and the second aerosol is discharged through an air outlet, or the first aerosol and the second aerosol are combined and then discharged through the air outlet.
[0011] In some embodiments, the volatilization component comprises at least one containing bin provided with at least one airflow passage; wherein the airflow passage is configured to allow the hot air flow to pass through, the hot air flow being in contact with the flavoring material and forming the first aerosol.
[0012] In some embodiments, the volatilization component comprises:
[0013] at least two containing bins, each containing bin being provided with at least one airflow passage;
[0014] A rotation shaft, the at least two accommodating chambers are arranged around the rotation shaft, and the rotation shaft is configured to rotate the accommodating chambers to a preset position, so that the hot air flow can pass through the air flow channel of the at least one accommodating chamber.
[0015] In some embodiments, the accommodating chamber is provided with a liquid storage member for storing the flavoring base; the air flow channel axially penetrates the liquid storage member; wherein the liquid storage member is configured to guide the flavoring base to the wall surface of the air flow channel, and the hot air flow contacts the wall surface to form the first aerosol.
[0016] In some embodiments, the material of the liquid storage member at least includes one of a cotton structure, a fiber structure and a porous ceramic structure.
[0017] In some embodiments, the atomization device is provided with an air inlet hole; the heating assembly includes a heating ring arranged between the volatilization assembly and the air inlet hole for heating the air flow; wherein the hollow channel of the heating ring is arranged opposite to the air inlet hole.
[0018] In some embodiments, the atomization device further includes a gas adjusting mechanism for adjusting the air flow direction in the atomization device; wherein the gas adjusting mechanism is arranged in communication with the air passage of the volatilization assembly and the air passage of the atomization assembly respectively, and is configured to distribute at least part of the first aerosol to the atomization passage where the atomization assembly is arranged or distribute all of the first aerosol to the air outlet.
[0019] In some embodiments, the gas adjusting mechanism is provided with a first air outlet end and a second air outlet end.
[0020] The atomization device further includes a first air chamber, an air inlet end of the first air chamber is connected to the second air outlet end, and an air outlet end of the first air chamber is connected to an air inlet end of the atomization assembly, which is configured to guide the air flow from the accommodating chamber to the atomization assembly; and / or a second air chamber, which is provided with independent first and second air inlet ends, and an air outlet end of the second air chamber is connected to the air outlet; wherein the first air inlet end is connected to the first air outlet end, which is configured to guide the air flow from the accommodating chamber to the air outlet; and the second air inlet end is connected to an air outlet end of the atomization assembly, which is configured to guide the air flow from the accommodating chamber and the atomization assembly to the air outlet.
[0021] In some embodiments, the gas adjusting mechanism includes:
[0022] The distribution piece is provided with an independent air inlet channel, a first distribution channel and a second distribution channel, wherein the air inlet end of the air inlet channel is communicated with the containing bin rotated to the preset position, the air outlet end of the first distribution channel is connected with the first air inlet end, and the air outlet end of the second distribution channel is connected with the air inlet end of the first air bin.
[0023] The adjusting piece is movably connected with the distribution piece and is configured to be movable between a first position and a second position; wherein in the first position, the adjusting piece communicates the air outlet end of the air inlet channel with the air inlet end of the first distribution channel; and in the second position, the adjusting piece communicates the air outlet end of the air inlet channel with the air inlet end of the second distribution channel.
[0024] In some embodiments, the air adjusting mechanism further comprises an air guide piece which communicates the air outlet end of the first distribution channel with the first air inlet end and is configured to guide the airflow in the first distribution channel into the second air bin.
[0025] The present application has the following beneficial effects: the atomization device can generate different aerosols, including a first aerosol generated by accelerating volatilization by using a heating assembly and a second aerosol generated by heating atomization. In use, at least one of the first aerosol and the second aerosol can be selected to be discharged through the air outlet, or the first aerosol and the second aerosol can be selected to be combined and then discharged through the air outlet, thereby forming aerosols of different flavors, providing users with a variety of flavor choices, thereby meeting the personalized use needs of users for aerosols of different flavors, and improving user experience. BRIEF DESCRIPTION OF DRAWINGS
[0026] The present application will be further described below in conjunction with the drawings and embodiments, wherein:
[0027] Figure 1 is a schematic diagram of the external structure of the atomization device in some embodiments of the present application;
[0028] Figure 2 is Figure 1 is a longitudinal sectional view of the atomization device shown in FIG. 1;
[0029] Figure 3 is a schematic diagram of the atomization device shown in FIG. 1, wherein the volatilization assembly, part of the air adjusting mechanism and the atomization assembly are omitted; Figure 2 in FIG. 3 further disassembles the top of the atomization device to expose the second air bin; Figure 3
[0030] Figure 4 is a structure exploded view of the volatilization assembly and part of the air adjusting mechanism of the atomization device in some embodiments of the present application;
[0031] Figure 5 is Figure 1 is a structural exploded view of the atomization device shown in the relative one-side angle to expose the more complete adjustment member;
[0032] Figure 6 is a structural schematic view of the distribution member of the atomization device of the present application in some embodiments;
[0033] Figure 7 is Figure 6 is a horizontal sectional view of the distribution member shown after being turned over 180°;
[0034] Figure 8 is a positional relationship diagram between the adjustment member, the distribution member and the gear lever of the control switch in the atomization device of the present application; wherein the tab is in the first position;
[0035] Figure 9 is a positional relationship diagram between the adjustment member, the distribution member and the gear lever of the control switch in the atomization device of the present application; wherein the tab is in the second position.
[0036] Reference signs
[0037] atomization device 100; volatilization assembly 1; containing bin 11; liquid storage member 12; air flow channel 121; rotating shaft 13; rotating member 14; partition plate 141; first air hole 142; second air hole 143; heating assembly 2; heating ring 21; liquid storage assembly 3; liquid storage cavity 31; atomization assembly 4; liquid guide member 41; atomization air channel 411; heating member 42; shell 5; air inlet 51; air outlet 52; containing area 53; first air bin 54; second air bin 55; first air inlet end 551; second air inlet end 552; air adjustment mechanism 6; air guide member 61; distribution member 62; air inlet channel 621; first distribution channel 622; second distribution channel 623; matching surface 624; adjustment member 63; air guide groove 631; clamping portion 632; control switch 7; gear lever 71. DETAILED DESCRIPTION
[0038] The technical solutions of the present application will be further described in detail below by means of specific embodiments in conjunction with the drawings.
[0039] In view of the technical problem that the existing atomization device is only configured with a single aerosol substrate and cannot meet the personalized use requirements of users for different aerosol flavors, the present application provides an atomization device 100, which mainly comprises a volatilization assembly 1 and a liquid storage assembly 3, the volatilization assembly 1 is used to store a flavoring substrate with volatilization characteristics, and the liquid storage assembly 3 is used to store an atomization substrate. Figure 1 , Figure 2 Figure 3 With reference to the foregoing, the atomization device 100 further comprises a heating assembly 2 and an atomization assembly 4. The heating assembly 2 is configured to heat the flavoring substrate to generate a first aerosol, or to heat a gas stream and form a hot gas stream for contacting the flavoring substrate to generate the first aerosol. The atomization assembly 4 is in fluid communication with the liquid storage assembly 3 and is configured to heat the atomization substrate to generate a second aerosol. At least one of the first aerosol and the second aerosol can be discharged through the gas outlet 52 of the atomization device 100. Alternatively, the first aerosol and the second aerosol can be combined and discharged through the gas outlet 52.
[0040] The flavoring substrate can be in any one or more of a solid, semi-solid, or liquid physical form, and the present application does not limit the flavoring substrate to any specific physical form, as long as the flavoring substrate has a natural volatilization characteristic. The flavoring substrate can comprise a volatile substrate of active ingredients such as a pre-set fragrance component, a bioactive component, a pharmaceutically active component, and the like. The atomization substrate can be in a liquid form, and can comprise an atomization substrate of active ingredients such as a smoking agent component, a tobacco component, or a tobacco substitute component, and the like.
[0041] The atomization device 100 of the present application is configured to selectively generate the first aerosol and / or the second aerosol. Specifically, the atomization device 100 is configured to provide at least two flavors of aerosol to a user by controlling the operation of the heating assembly 2 and / or the atomization assembly 4. The two flavors of aerosol can include a flavor of the first aerosol, and a combined flavor of the first aerosol and the second aerosol. The user can switch between the different flavors of aerosol according to the user's own needs, thereby satisfying the user's individualized use requirements for different flavors of aerosol. It should be noted that the atomization device 100 can also provide the user with the flavor of the second aerosol, and the present application does not limit the flavor of the second aerosol.
[0042] In some embodiments, when the heating assembly 2 is configured to heat the flavoring substrate to generate the first aerosol, the heating assembly 2 can be a heating structure such as a heating sheet, a heating track, a heating column, and the like. The heating structure is configured to generate heat. Since the flavoring substrate has a volatilization characteristic, the heat generated by the heating structure can accelerate the volatilization of the flavoring substrate, thereby generating the first aerosol. The heating structure can be disposed at the periphery of the flavoring substrate or inside the flavoring substrate. For example, the heating structure can directly or indirectly contact the outer surface of the flavoring substrate, or the flavoring substrate can have an internal passage, and the heating structure can be arranged at the internal passage of the flavoring substrate.
[0043] In some embodiments, when the heating assembly 2 is configured to heat a gas stream and form a hot gas stream for contacting the flavoring substrate to generate the first aerosol, the hot gas stream generated by the heating assembly 2 can flow to the flavoring substrate and contact the flavoring substrate. Since the flavoring substrate has a volatilization characteristic, the hot gas stream can accelerate the volatilization of the flavoring substrate, thereby generating the first aerosol.
[0044] The following is described by way of example with the heating assembly 2 being used to heat the airflow and form a hot airflow.
[0045] It can be appreciated that the first aerosol formed by simply relying on the volatilization characteristics of the flavoring substrate is not prominent in taste, and users will feel that the taste is insipid or easily covered by the aerosol produced by other substrates. The heating assembly 2 can compensate for this defect by promoting the thermal motion of the molecules of the flavoring substrate and accelerating the volatilization of the flavoring substrate, thereby forming a first aerosol that meets the preset quality. By accelerating the volatilization of the flavoring substrate to produce an aerosol through a hot airflow, the particle size distribution of the first aerosol produced can be made more uniform. For example, during the volatilization accelerated by the hot airflow, the dynamic action of the airflow enables the volatilized substrate particles to quickly mix with the surrounding airflow. The mixing process is similar to gas diffusion, which enables the particles to be uniformly distributed in the airflow and avoids the particle aggregation phenomenon that can occur in traditional heating and atomization. In addition, since the amount of electricity required to heat the air and the discharge requirement are low, the discharge time of the battery of the present atomization device 100 can be improved, and the use time supported by the atomization device 100 can be extended.
[0046] Since the first aerosol formed after volatilization accelerated by heating has a relatively low relative moisture content, the first aerosol produces relatively little condensate when cooled, which has a positive effect on preventing liquid leakage. In addition, when the first aerosol flows into the atomization assembly 4, the relatively dry first aerosol is not easily absorbed by the liquid guide 41 of the atomization assembly 4, so it does not affect the taste of the second aerosol produced by the atomization assembly 4, which has a positive effect on preventing flavor carryover.
[0047] The atomization assembly 4 of the present application is in liquid path communication with the liquid storage assembly 3, so that the atomization substrate can flow from the liquid storage assembly 3 to the atomization assembly 4 through the liquid path. The atomization assembly 4 can heat and atomize the atomization substrate by contact heating to produce a second aerosol. It can be appreciated that contact heating can promote high-temperature atomization of the atomization substrate, and this heating method has the advantages of high-efficiency atomization and large amount of atomization produced.
[0048] The following is described by way of example with the flavoring substrate containing a fragrance component, the fragrance liquid, and the atomization substrate containing a smoking agent and a tobacco component or a tobacco substitute component, the tobacco oil. The fragrance liquid provides the user with a first aerosol with a preset fragrance taste, and the tobacco oil provides the user with a second aerosol with a tobacco taste.
[0049] In some embodiments, reference can be made to Figure 3The atomization device 100 can include a housing 5, which is provided with an air inlet 51 and an air outlet 52 that communicate with the outside. The air inlet 51 can allow an external airflow to enter the housing 5, and the airflow entering the housing 5 can mix with the volatilized flavoring base and / or the atomized atomization base to form a first aerosol and / or a second aerosol. The first aerosol and / or the second aerosol can be carried out of the air outlet 52 to the outside of the atomization device 100. The air inlet 51 and the air outlet 52 can be respectively arranged at opposite ends of the housing 5.
[0050] For the convenience of description, the end of the atomization device 100 provided with the air outlet 52 is regarded as the proximal end, and the end of the atomization device 100 opposite to the position of the air outlet 52 is regarded as the distal end. Meanwhile, the proximal end is regarded as the top, and the distal end is regarded as the bottom. For the internal structure of the atomization device 100, the side close to the proximal end is regarded as the top / end / proximal end, and the side close to the distal end is regarded as the bottom / end / distal end.
[0051] The housing 5 forms a receiving area 53, and the volatilization assembly 1 can be arranged in the receiving area 53. It can be combined with Figure 2 and Figure 4 It can be combined with
[0052] In use, the external airflow of the housing 5 can enter through the air inlet 51 and be configured to sequentially pass through the heating assembly 2, the receiving bin 11 matched with the heating assembly 2, and the air outlet 52 to provide a user with a preset aroma flavor and meet the user's preference for a specific aroma flavor. Alternatively, the external airflow can enter through the air inlet 51 and be configured to sequentially pass through the working heating assembly 2, the receiving bin 11 matched with the heating assembly 2, the atomization assembly 4, and the air outlet 52 to provide a user with a mixed flavor having a specific aroma flavor and a tobacco flavor.
[0053] In some embodiments, the volatilization assembly 1 can include one receiving bin 11, which is provided with a flavoring base of one flavor. A user can taste a preset aroma flavor.
[0054] In some embodiments, the volatilization assembly 1 can include two or more receiving bins 11, each of which is provided with a flavoring base of a different flavor. The airflow can pass through the two or more receiving bins 11 at the same time, so that a user can taste two or more preset composite aroma flavors. Of course, the receiving bins 11 can also be provided with flavoring bases of the same flavor to improve the richness of a specific aroma flavor.
[0055] In some embodiments, the volatilization assembly 1 can include at least two containing bins 11; meanwhile, reference can be made to Figure 2 The volatilization assembly 1 further includes a rotating shaft 13, all the containing bins 11 are arranged around the rotating shaft 13, which provides a basis for adjusting the relative positions between the containing bins 11, the rotating shaft 13 can rotate at least one containing bin 11 to a preset position, so that the hot air flow can pass through the airflow passage 121 of the at least one containing bin 11. It can be understood here that the preset position refers to a position that can allow the hot air flow to enter the airflow passage 121; the adjustment of the relative positions between the containing bins 11, in other words, the switching of the relative positions between the containing bins 11 and the heating assembly 2.
[0056] It can be understood that, when the heating assembly 2 is opposite to the airflow passage 121 of one containing bin 11 rotated to the set position, the first aerosol providing the preset fragrance flavor can be provided each time the user inhales, which meets the user's preference for the preset fragrance flavor. When the heating assembly 2 is opposite to the airflow passages 121 of several containing bins 11 rotated to the set position at the same time, more first aerosols can be provided each time the user inhales, which is beneficial to increasing the generation amount of the first aerosol and positively affects the enrichment of the preset fragrance flavor.
[0057] When different containing bins 11 store flavoring substrates of different fragrance flavors, the types of fragrance in the volatilization assembly 1 are enriched, and the user can rotate the containing bins 11 storing flavoring substrates of different fragrance flavors to the set position to provide first aerosols of different preset fragrance flavors by adjusting the relative positions between the containing bins 11, so as to form combinations of different fragrance types and flavors, and realize the switching and adjustment of multiple aerosol flavors.
[0058] Continuing to refer to Figure 4 The volatilization assembly 1 can further include a rotating member 14, which can be a cylindrical structure, and the inside of the rotating member 14 is provided with a plurality of partition plates 141 arranged in a circle to define at least two containing bins 11 arranged in a circle. The rotating shaft 13 is coaxially inserted in the rotating member 14 and fixed in the accommodating area 53, so that the rotating member 14 can rotate around the central axis thereof to arrange the airflow passage 121 of at least one containing bin 11 opposite to the heating assembly 2.
[0059] Continuing to refer to Figure 3 The circumferential outer wall of the shell 5 can be provided with an opening at the position of the accommodating area 53, so that a part of the structure of the rotating member 14 is exposed, so that the user can manually drive the rotating member 14 to rotate. Of course, the atomization device 100 can also include a driving motor arranged in the shell 5 to drive the rotating member 14 to rotate, and the user only needs to input a working instruction, and the rotating member 14 can automatically rotate.
[0060] Continuing to refer to Figure 2The bottom end of the rotating member 14 is provided with a plurality of first air holes 142, each of which is in one-to-one correspondence with each of the storage bins 11 and communicates with the corresponding storage bin 11, so that the airflow can enter the corresponding storage bin 11 from the first air hole 142. At the same time, the top end of the rotating member 14 is provided with a plurality of second air holes 143, each of which is in one-to-one correspondence with each of the storage bins 11 and communicates with the corresponding storage bin 11, so that the first aerosol generated in the storage bin 11 can be discharged through the second air hole 143 and directly flow to the air outlet 52 or the atomization assembly 4.
[0061] The first air holes 142 and the second air holes 143 can be respectively provided with one-way valves or switches configured to control the first air hole 142 corresponding to the storage bin 11 in the set position to be in communication with the air inlet 51, and control the second air hole 143 corresponding to the storage bin 11 in the set position to be in communication with the air outlet 52, so that the storage bin 11 is in gas path communication with the air inlet 51 and the air outlet 52. In addition, the valve or switch is also configured to control the first air hole 142 and the second air hole 143 corresponding to the storage bin 11 in a position other than the set position to be closed. By controlling the opening and closing of the first air hole 142 and the second air hole 143 through the one-way valve or switch, different physical forms of flavoring bases can be stored in the storage bin 11, which reduces the risk of leakage of the flavoring base in the storage bin 11, and also avoids the release of the first aerosol from the storage bin 11 in a position other than the set position, which is beneficial to prolong the effective use period and service life of the flavoring base.
[0062] Please refer to Figure 2 , Figure 4 for details. The storage bin 11 can be provided with a liquid storage member 12 for storing liquid flavoring bases. In some embodiments, the airflow channel 121 can axially penetrate the liquid storage member 12 and be configured to maintain communication with the first air hole 142 and the second air hole 143. The liquid storage member 12 can guide the flavoring base to the wall surface of the airflow channel 121, so that the hot airflow contacts the wall surface, thereby accelerating the volatilization of the flavoring base and forming the first aerosol. In some embodiments, the size of the liquid storage member 12 is smaller than the size of the inner cavity of the storage bin 11, so that there is a gap between the inner wall of the storage bin 11 and the outer wall of the liquid storage member 12, which forms the airflow channel 121.
[0063] The material of the liquid storage member 12 can include at least one of a cotton structure, a fiber structure, and a porous ceramic structure. These structures have the property of absorbing liquid and can absorb the flavoring base therein. During use, the flavoring base located at the wall surface of the airflow channel 121 will be consumed first, and then the flavoring base relatively far from the airflow channel 121 will flow to the wall surface of the airflow channel 121 under the action of the concentration difference.
[0064] Please refer toFigure 3 The heating assembly 2 can be arranged between the volatilization assembly 1 and the air inlet 51, and opposite the receiving cavity 11 in communication with the interface. Since the heating assembly 2 is arranged outside the rotating member 14, the problem of winding of the wire electrically connected to the heating assembly 2 can be avoided, and the structure of the rotating member 14 can be simpler, without the need for additional design to solve the problem of rotation obstruction.
[0065] The heating of the heating assembly 2 can be by resistance heating or electromagnetic heating, which is not limited. The heating member can work according to the suction action of the user; for example, the atomization device 100 can include a pneumatic sensor, and the heating member works after the pneumatic sensor detects the airflow fluctuation caused by suction.
[0066] In some embodiments, as shown in Figure 3 The heating assembly 2 can include a heating ring 21 arranged between the volatilization assembly 1 and the air inlet 51 for heating the airflow; wherein the hollow channel of the heating ring 21 is arranged opposite the air inlet 51. In use, the airflow entering from the air inlet 51 can pass through the heating ring 21 to achieve air heating; and the heating ring 21 can provide 360° directional heating, which can ensure uniform heating of the airflow.
[0067] Continuing to refer to Figure 2 The liquid storage assembly 3 can include a liquid storage cavity 31 formed in the housing 5 for storing the atomization substrate.
[0068] The atomization assembly 4 can include a liquid guide 41 and a heating member 42, the liquid guide 41 being in liquid communication with the liquid storage cavity 31 for adsorbing the atomization substrate. The liquid guide 41 is provided with an atomization air passage 411, the air inlet end of the atomization air passage 411 being in communication with the receiving cavity 11 rotated to a set position, and the air outlet end of the atomization air passage 411 being in communication with the air outlet 52, and the second aerosol being generated in the atomization air passage 411.
[0069] The heating member 42 is accommodated in the atomization air passage 411 and at least partially abuts the liquid guide 41, and is configured to atomize the atomization substrate. The heating member 42 heats and atomizes the atomization substrate flowing on the liquid guide 41 in a contact heating manner and generates a second aerosol.
[0070] In use, the airflow discharged from the holding chamber 11 in the set position can be configured to flow directly to the air outlet 52 for discharge without flowing through the atomization air passage 411, so as to provide the user with the first aerosol having the preset fragrance taste; or the airflow discharged from the holding chamber 11 in the set position can be configured to flow at least partially to the atomization air passage 411, so that the first aerosol carried in the airflow can mix with the second aerosol in the atomization air passage 411, and the mixed aerosol is finally discharged through the air outlet 52, so as to provide the user with the mixed aerosol having the specific fragrance taste and the tobacco component / tobacco substitute component and smoke.
[0071] For reference Figure 2 The atomization device 100 further comprises a gas adjusting mechanism 6 arranged in the housing 5 and in communication with the air passage of the volatilization assembly 1 and the air passage of the atomization assembly 4 respectively. The gas adjusting mechanism 6 is configured to at least partially distribute the airflow discharged from the holding chamber 11 rotated to the set position to the atomization assembly 4, or distribute all the airflow to the air outlet 52. For reference Figure 2 , Figure 2 The two airflow flow paths separated by the gas adjusting mechanism 6 are shown in
[0072] In use, the external airflow flows into the holding chamber 11 in the set position from the air inlet 51, carries the generated first aerosol, and then enters the gas adjusting mechanism 6. Under the control of the gas adjusting mechanism 6, all the airflow flows to the air outlet 52 for discharge, so as to provide the first aerosol having the preset fragrance taste; or under the control of the gas adjusting mechanism 6, at least part of the airflow flows to the atomization air passage 411 of the atomization assembly 4, so that the first aerosol carried in the airflow can mix with the second aerosol in the atomization air passage 411, and the mixed aerosol flows through the atomization assembly 4 and is then discharged from the air outlet 52, thereby providing the mixed aerosol having the preset fragrance taste, tobacco component or tobacco substitute component.
[0073] In some embodiments, the gas adjusting mechanism 6 has an air inlet end, and a first air outlet end and a second air outlet end. The holding chamber 11 in the set position is configured to be in communication with the air inlet 51 through the corresponding first air hole 142, and in communication with the air inlet end of the gas adjusting mechanism 6 through the corresponding second air hole 143.
[0074] As shown in Figure 2 The atomization device 100 further comprises a first air chamber 54, the air inlet end of the first air chamber 54 is connected to the second air outlet end of the gas adjusting mechanism 6, and the air outlet end of the first air chamber 54 is connected to the air inlet end of the atomization assembly 4, which is configured to allow the airflow to flow from the holding chamber 11 to the atomization assembly 4, so that at least part of the airflow discharged from the holding chamber 11 flows through the atomization assembly 4.
[0075] As shown in Figure 3As shown, the atomization device 100 further comprises a second air chamber 55, which is provided with a first air inlet end 551 and a second air inlet end 552, and an air outlet end connected to the air outlet 52. The first air inlet end 551 is connected to the first air outlet end of the air adjusting mechanism 6, configured to guide the airflow from the containing chamber 11 to the air outlet 52 directly; the second air inlet end 552 is connected to the air outlet end of the atomization assembly 4, configured to guide the airflow from the containing chamber 11 and the atomization assembly 4 to the air outlet 52.
[0076] The first air chamber 54 is used to communicate the second air outlet end of the air adjusting mechanism 6 and the air inlet end of the atomization air passage 411 of the atomization assembly 4, so that at least part of the airflow discharged from the containing chamber 11 in the set position can flow to the atomization assembly 4 through the first air chamber 54, facilitating the arrangement of the liquid storage assembly 3 and the atomization assembly 4.
[0077] The second air chamber 55 is in communication with the first air inlet end 551 and the first air outlet end of the air adjusting mechanism 6, and is connected to the air outlet end of the atomization air passage 411 of the atomization assembly 4 through the second air inlet end 552, so as to guide the airflow entering through the first air inlet end 551 and the second air inlet end 552 to the air outlet 52, realizing the separate output of the first aerosol or the mixed output of the first aerosol and the second aerosol.
[0078] The air adjusting mechanism 6 can also be configured to distribute all the airflow discharged from the containing chamber 11 to the air inlet end of the first air chamber 54, and all the airflow flows through the atomization assembly 4 under the guidance of the first air chamber 54, so that all the first aerosol is mixed with the second aerosol in the atomization air passage 411, then enters the second air chamber 55 through the second air inlet end 552 and is further mixed, and the mixed aerosol is finally discharged from the air outlet 52.
[0079] In some embodiments, as shown in Figure 2 or Figure 3 The air adjusting mechanism 6 can further comprise a gas guide 61, which is arranged through the liquid storage cavity 31 and parallel to the atomization assembly 4. The gas guide 61 communicates the air outlet end of the first distribution passage 622 and the first air inlet end 551 of the second air chamber 55, and is configured to guide the airflow in the first distribution passage 622 to the air outlet 52.
[0080] In some embodiments, in combination with Figure 2 , Figure 4 and Figure 5 , the air adjusting mechanism 6 can comprise a distribution member 62 and an adjusting member 63.
[0081] The distribution member 62 is used to distribute the airflow discharged from the containing chamber 11. Referring to Figure 6 and Figure 7 , the distribution member 62 is provided with independent air inlet passages 621, first distribution passages 622 and second distribution passages 623. In combination withFigure 2 Referring to the drawings together, the air inlet end of the air inlet passage 621 constitutes the air inlet end of the air adjusting mechanism 6 and is in communication with the second air hole 143 corresponding to the containing bin 11 in the set position, so that the air flow discharged from the containing bin 11 in the set position all enters the air inlet passage 621. The air outlet end of the first distribution passage 622 constitutes the first air outlet end of the air adjusting mechanism 6 and is connected to the first air inlet end 551 of the second air chamber 55, so that the air flow discharged from the containing bin 11 directly flows to the air outlet 52 through the second air chamber 55. The air outlet end of the second distribution passage 623 constitutes the second air outlet end of the air adjusting mechanism 6 and is connected to the air inlet end of the first air chamber 54, so that the air flow discharged from the second distribution passage 623 at least partially flows to the atomizing assembly 4 through the first air chamber 54.
[0082] Referring to the drawings together, Figure 8 or Figure 9 , the adjusting member 63 is movably connected to the distribution member 62 and is configured to be positionally variable between a first position and a second position. In the first position, as shown in Figure 8 , the adjusting member 63 is in communication with the air outlet end of the air inlet passage 621 and the air inlet end of the first distribution passage 622; in the second position, as shown in Figure 9 , the adjusting member 63 is in communication with the air outlet end of the air inlet passage 621 and the air inlet end of the second distribution passage 623.
[0083] In use, the user can manually drive the adjusting member 63 to move relative to the distribution member 62 to change the position of the adjusting member 63 between the first position and the second position, so as to switch the connection of the air outlet end of the air inlet passage 621 to the air inlet end of the first distribution passage 622 or to the air inlet end of the second distribution passage 623, change the path of the air flow circulating inside the air adjusting mechanism 6, and directly distribute the air flow discharged from the containing bin 11 in the set position to the air outlet 52 or at least partially distribute the air flow discharged from the containing bin 11 in the set position to the atomizing assembly 4, which is simple in structure, convenient to use, and improves the user experience.
[0084] In some embodiments, as shown in Figure 6 or Figure 7 , the distribution member 62 is provided with a mating surface 624 abutting against the adjusting member 63, and the outlet end of the air inlet passage 621, the inlet end of the first distribution passage 622, and the inlet end of the second distribution passage 623 can be arranged on the mating surface 624. Secondly, the outlet end of the air inlet passage 621 can be arranged at the bottom of the distribution member 62 and is in communication with the second air hole 143 in the set position, and the outlet end of the first distribution passage 622 and the outlet end of the second distribution passage 623 can be arranged at the top of the distribution member 62.
[0085] Continuing to refer to Figure 8 or Figure 9The adjusting member 63 is at least partially in contact with the matching surface 624 of the distributing member 62. The adjusting member 63 is provided with a gas guide groove 631 on the surface opposite to the matching surface 624, which is configured to connect the outlet of the air inlet channel 621 with the inlet of the first distributing channel 622 or the inlet of the second distributing channel 623.
[0086] When the adjusting member 63 moves between the first position and the second position relative to the distributing member 62, the adjusting member 63 and the distributing member 62 are always in a sealed contact state, so as to improve the air tightness between the adjusting member 63 and the distributing member 62, and prevent the air flow discharged from the outlet of the air inlet channel 621 from leaking from the gap between the adjusting member 63 and the distributing member 62. The adjusting member 63 can be arranged to move in a straight line direction, an arc direction, or to rotate around a set rotation center relative to the distributing member 62, which is not limited in the present application.
[0087] In some embodiments, as shown in Figure 8 or Figure 9 The atomizing device 100 further comprises a control switch 7 for controlling the operation of the heating assembly 2 and the atomizing assembly 4. The control switch 7 can be a multi-position adjusting switch. In use, the user can manually adjust the position of the adjusting rod 71 of the control switch 7, so as to adjust the working mode of the heating assembly 2 and the atomizing assembly 4 according to the position of the control switch 7, or to control the start and stop of the heating assembly 2 and the atomizing assembly 4 through the control switch 7.
[0088] The adjusting member 63 is provided with a clamping portion 632 connected with the adjusting rod 71 of the control switch 7, so as to realize the linkage connection between the control switch 7 and the adjusting member 63. In use, the position of the adjusting member 63 can be changed synchronously according to the position change of the control switch 7. It can be understood that, in addition to the basic function of adjusting the position, the adjusting rod 71 of the control switch 7 also has the function of positioning the adjusting member 63 to the appropriate position, so that the mouth and the mouth can be centered.
[0089] The above application of specific examples to the technical solutions of the present application is only used to help understand the content of the present application, and does not limit the present application. For those skilled in the art to which the present application belongs, according to the idea of the present application, some simple deductions, deformations or substitutions can be made.
Claims
1. An atomizing device, characterized in that, include: A volatile component for storing flavoring bases with volatile properties; A heating assembly for heating the flavoring base to generate a first aerosol, or the heating assembly for heating air to generate a hot airflow that contacts the flavoring base to generate a first aerosol; Liquid storage components are used to store the atomizing matrix; The atomizing component, which forms a liquid channel connection with the liquid storage component, is configured to heat the atomizing matrix and generate a second aerosol; Wherein, at least one of the first aerosol and the second aerosol is discharged through the air outlet; or, the first aerosol and the second aerosol are combined and then discharged through the air outlet.
2. The atomizing device according to claim 1, characterized in that, The volatile component includes: At least one containment chamber, wherein the containment chamber is provided with at least one airflow passage; The airflow channel is configured to allow the hot airflow to pass through, and the hot airflow contacts the flavoring matrix to form the first aerosol.
3. The atomizing device according to claim 2, characterized in that, The volatile component includes: At least two of the aforementioned compartments, each of the aforementioned compartments having at least one airflow passage; A rotating shaft, around which the at least two receiving chambers are arranged, the rotating shaft being configured to rotate the receiving chambers to a preset position, such that the hot airflow can pass through the airflow channel of at least one of the receiving chambers.
4. The atomizing device according to claim 2 or 3, characterized in that, The receiving chamber is equipped with a liquid storage device for storing the flavoring base; the airflow channel is formed axially through the liquid storage device; The liquid storage device is configured to guide the flavoring matrix to the wall of the airflow channel, and the hot airflow contacts the wall to form the first aerosol from the flavoring matrix.
5. The atomizing device according to claim 4, characterized in that, The liquid storage component is made of at least one of the following materials: cotton structure, fiber structure, and porous ceramic structure.
6. The atomizing device according to claim 2 or 3, characterized in that, The atomizing device is equipped with an air inlet; The heating component includes a heating coil, which is disposed between the evaporation component and the air inlet for heating the airflow; wherein the hollow channel of the heating coil is disposed opposite to the air inlet.
7. The atomizing device according to claim 3, characterized in that, The atomizing device also includes: An air regulating mechanism is used to adjust the airflow direction within the atomizing device; The gas regulating mechanism is configured to communicate with the air passage of the evaporation component and the air passage of the atomizing component, and is configured to distribute at least a portion of the first aerosol to the atomizing channel where the atomizing component is located or distribute all of it to the air outlet.
8. The atomizing device according to claim 7, characterized in that, The gas regulating mechanism is provided with a first gas outlet and a second gas outlet; The atomizing device also includes: The first air chamber has an air inlet connected to the second air outlet, and the air outlet connected to the air inlet of the atomizing component, configured to supply airflow from the receiving chamber to the atomizing component. and / or, The second air chamber is provided with an independent first air inlet and a second air inlet, and the air outlet of the second air chamber is connected to the air outlet. The first air inlet is connected to the first air outlet and is configured to supply airflow from the receiving chamber to the air outlet; the second air inlet is connected to the air outlet of the atomizing component and is configured to supply airflow from the receiving chamber and the atomizing component to the air outlet.
9. The atomizing device according to claim 8, characterized in that, The gas regulating mechanism includes: The components are equipped with independent air intake channels, a first distribution channel, and a second distribution channel. The air intake end of the air intake channel is connected to the receiving chamber rotated to the preset position. The air outlet end of the first distribution channel is connected to the first air intake end, and the air outlet end of the second distribution channel is connected to the air intake end of the first air chamber. An adjusting element, movably connected to the dispensing element, is configured to be positionally variable between a first position and a second position; In the first position, the adjusting member connects the air outlet of the air intake channel with the air intake of the first distribution channel; in the second position, the adjusting member connects the air outlet of the air intake channel with the air intake of the second distribution channel.
10. The atomizing device according to claim 9, characterized in that, The gas regulating mechanism also includes: An air guide, which connects the outlet end of the first distribution channel to the inlet end, is configured to guide the airflow in the first distribution channel into the second air chamber.