Atomization device
By combining low-temperature thermal radiation and high-temperature contact heating atomization methods, the problem of deterioration of temperature-sensitive matrix in atomization devices is solved, enabling switching between multiple atomization forms to meet users' personalized needs and improve aerosol quality and device lifespan.
Patent Information
- Application Number
- CN202520162296.0
- 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 atomization devices are prone to deterioration or failure of temperature-sensitive atomization matrix when heated at high temperatures, affecting aerosol quality and device lifespan. Furthermore, the atomization forms are limited and cannot meet users' personalized needs.
It employs a combination of low-temperature thermal radiation heating and high-temperature contact heating, which are suitable for different types of atomization matrices. Low-temperature heating is suitable for temperature-sensitive components, while high-temperature heating is suitable for components with higher tolerance, enabling switching between multiple atomization modes.
Offering a variety of flavors and functions, aerosols meet users' personalized needs, enhance the user experience, and avoid the deterioration and gelatinization of temperature-sensitive ingredients.
Smart Images

Figure CN223860220U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of electronic atomization, in particular to an atomization device. BACKGROUND
[0002] The atomization device is provided with a liquid storage cavity for storing an atomization substrate, and an atomization assembly in liquid path communication with the liquid storage cavity is configured to heat the atomization substrate and generate aerosol with specific functions and effects.
[0003] In the related art, the atomization assembly directly contacts the liquid atomization substrate and heats it at a high temperature to achieve atomization, which has high atomization efficiency and generates a large amount of mist. However, some atomization substrates with specific aroma components, bioactive components, drug components, etc. are sensitive to temperature, and are prone to deterioration or failure after being directly heated at a high temperature, and are also prone to pasting, which seriously affects the quality of the generated aerosol and reduces the service life of the atomization device. CONTENT OF THE UTILITY MODEL
[0004] The present application provides an atomization device, which solves the technical problem of single atomization form of the existing atomization device and limited use of atomization substrates. The atomization device provided by the present application combines the advantages of low-temperature atomization and high-temperature atomization, can use different types of atomization substrates, provides aerosol with multiple flavors, different functions and effects for users, meets the personalized use needs of users, and improves the user experience.
[0005] In some embodiments of the present application, an atomization device is provided, which includes: a storage assembly for storing a first atomization substrate; a heating assembly corresponding to the storage assembly and configured to heat the first atomization substrate by thermal radiation and generate a first aerosol; a liquid storage assembly for storing a second atomization substrate; an atomization assembly in liquid path communication with the liquid storage assembly and configured to atomize the second atomization substrate by contact heating and generate a second aerosol; wherein 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.
[0006] In some embodiments, the atomization device further includes a housing, one end of the housing is provided with an air inlet, and the other end of the housing is provided with the air outlet; the storage assembly includes: a rotating member provided with at least two first accommodating spaces, the first accommodating spaces being used to store the first atomization substrate; the heating assembly is configured to be arranged opposite to any one of the first accommodating spaces to heat the first atomization substrate in the corresponding first accommodating space; wherein, when the rotating member rotates, the relative positions of the first accommodating spaces and the heating assembly are switched.
[0007] In some embodiments, the heating assembly comprises a first heating element disposed opposite to the sidewall of the rotating member; wherein the rotating member rotates around its central axis to rotate the at least one first accommodating space to a set position, such that the first accommodating space is disposed opposite to the first heating element.
[0008] In some embodiments, one end of the rotating member towards the air outlet is provided with a first air outlet through hole, which is in communication with the first accommodating space; wherein the first accommodating space rotated to the set position is configured to be in communication with the air outlet through the corresponding first air outlet through hole.
[0009] In some embodiments, one end of the rotating member towards the air inlet is provided with a first air inlet through hole, which is in communication with the first accommodating space; wherein the first accommodating space rotated to the set position is configured to be in communication with the air inlet through the corresponding first air inlet through hole.
[0010] In some embodiments, the storage assembly further comprises a liquid storage element accommodated in the first accommodating space, configured to adsorb the first atomized substrate.
[0011] In some embodiments, the atomization device further comprises a gas regulating mechanism disposed in the housing, configured to at least partially distribute the gas flow discharged from the first accommodating space rotated to the set position to the atomization assembly, or fully distribute the gas flow to the air outlet.
[0012] In some embodiments, the gas regulating mechanism is provided with independent first and second air outlet ends, and the atomization device further comprises a first air chamber, an air inlet end of the first air chamber being connected to the second air outlet end, and an air outlet end of the first air chamber being connected to an air inlet end of the atomization assembly, configured to supply the gas flow from the first accommodating space to the atomization assembly; and / or a second air chamber provided with independent first and second air inlet ends, an air outlet end of the second air chamber being connected to the air outlet; wherein the first air inlet end is connected to the first air outlet end, configured to supply the gas flow from the first accommodating space to the air outlet; and the second air inlet end is connected to an air outlet end of the atomization assembly, configured to supply the gas flow from the first accommodating space and the atomization assembly to the air outlet.
[0013] In some embodiments, the air adjusting mechanism comprises: a distribution member 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 in communication with the first containing space rotated to the set position, the air outlet end of the first distribution channel is connected to the first air inlet end, and the air outlet end of the second distribution channel is connected to the air inlet end of the first air chamber; an adjusting member movably connected to the distribution member and configured to change position between a first position and a second position; in the first position, the adjusting member connects the air outlet end of the air inlet channel to the air inlet end of the first distribution channel; and in the second position, the adjusting member connects the air outlet end of the air inlet channel to the air inlet end of the second distribution channel.
[0014] In some embodiments, the air adjusting mechanism further comprises: a guide member connecting the air outlet end of the first distribution channel to the first air inlet end and configured to guide the airflow in the first distribution channel into the second air chamber.
[0015] The atomization device provided by the present application has a heating assembly and an atomization assembly. The heating assembly heats a first atomization substrate by thermal radiation and generates a first aerosol. Compared with a contact heating method, the heating assembly can promote the molecular thermal motion of the first atomization substrate in a non-contact heating form, so as to realize low-temperature atomization of the first atomization substrate. The atomization device is suitable for atomizing substrates containing sensitive effective components such as preset fragrance components, bioactive components and pharmaceutical active components, and avoids problems such as deterioration, failure and pasting of the atomization substrate at high temperature. The atomization assembly atomizes a second atomization substrate by a contact heating method and generates a second aerosol. Compared with a thermal radiation heating method, the atomization assembly can promote high-temperature atomization of the second atomization substrate in a contact heating form, so that the atomization efficiency is higher and the atomization smoke yield is larger. The atomization device is suitable for atomizing substrates containing effective components such as smoking agent components, tobacco components or tobacco substitute components, which have high temperature tolerance.
[0016] The atomization device provided by the present application combines the advantages of low-temperature atomization and high-temperature atomization, can use different types of atomization substrates, provides aerosols with multiple flavors, different functions and effects for users, meets the personalized use requirements of the users, and improves the use experience of the users. BRIEF DESCRIPTION OF DRAWINGS
[0017] The present application will be further described below with reference to the drawings and embodiments. In the drawings:
[0018] Figure 1 is a schematic diagram of the overall structure of one embodiment of the atomization device provided by the present application;
[0019] Figure 2 is a schematic diagram of the vertical cross-sectional structure of the atomization air passage of one embodiment of the atomization device provided by the present application; and Figure 1
[0020] Figure 3 This is a schematic diagram of the vertical cross-sectional structure of the atomizing air passage in one embodiment of the atomizing device. Figure 2 ;
[0021] Figure 4 This is a schematic diagram of the vertical cross-sectional structure of the air intake channel in one embodiment of the atomizing device of this application;
[0022] Figure 5 yes Figure 4 Enlarged schematic diagram of the local structure at point A;
[0023] Figure 6 This is a schematic diagram of the vertical cross-sectional structure of the air guide component in one embodiment of the atomizing device of this application;
[0024] Figure 7 yes Figure 6 Enlarged schematic diagram of the local structure at point B;
[0025] Figure 8 This is an exploded structural diagram of the storage component of one embodiment of the atomizing device of this application;
[0026] Figure 9 This is an exploded view of the air regulating mechanism of one embodiment of the atomizing device of this application;
[0027] Figure 10 This is a schematic diagram of the distribution component structure of the air regulating mechanism in one embodiment of the atomizing device of this application;
[0028] Figure 11 This is an exploded view of the atomizing component of one embodiment of the atomizing device of this application.
[0029] The attached figures are labeled as follows:
[0030] Atomizing device 100; XX axis, YY axis, ZZ axis;
[0031] 10-Shell, 11-Air inlet, 12-Air outlet, 13-Mounting cavity, 14-First air chamber, 141-First absorbent cotton, 15-Second air chamber, 151-First air inlet, 152-Second air inlet, 153-Second absorbent cotton, 16-Window, 17-Transparent window, 18-Accommodation cavity, 19-Adjustment groove;
[0032] 20 - storage component, 21 - rotating member, 210 - first containing space, 211 - first shaft hole, 2111 - middle axis, 212 - first groove, 2121 - slot, 213 - first air inlet through hole, 22 - liquid storage member, 221 - first air vent, 23 - central shaft, 24 - first flexible member, 241 - first air outlet through hole, 242 - second shaft hole, 25 - second flexible member, 251 - via hole, 252 - third shaft hole, 253 - second sealing ring;
[0033] 30 - heating component, 31 - first heating member;
[0034] 40 - liquid storage component, 41 - second containing space, 42 - first fixing part, 421 - second air inlet through hole, 43 - second fixing part, 431 - second air outlet through hole;
[0035] 50 - atomization component, 51 - liquid guide member, 511 - first liquid guide member, 512 - second liquid guide member, 5121 - atomization air channel, 52 - second heating member, 53 - core seat, 54 - first core pipe, 541 - first liquid inlet, 55 - second core pipe, 551 - second liquid inlet, 56 - first sealing member;
[0036] 60 - air adjusting mechanism, 61 - distribution member, 611 - air inlet channel, 6111 - total air inlet hole, 6112 - total air outlet hole, 612 - first distribution channel, 6121 - first air inlet hole, 6122 - first air outlet hole, 613 - second distribution channel, 6131 - second air inlet hole, 6132 - second air outlet hole, 614 - first surface, 615 - second surface, 616 - third surface, 617 - first sealing ring, 62 - adjusting member, 621 - air guide groove, 622 - fourth surface, 623 - clamping part, 624 - knob, 63 - air guide member;
[0037] 70 - positioning component, 71 - positioning groove, 72 - positioning elastic member. DETAILED DESCRIPTION
[0038] The technical scheme of the present application will be further described in detail below with specific embodiments and the accompanying drawings.
[0039] In order to facilitate understanding of the technical scheme of the present application, the width direction of the atomization device 100 is defined as the X-axis direction, the thickness direction of the atomization device 100 is defined as the Y-axis direction, and the height direction of the atomization device 100 is defined as the Z-axis direction, which is consistent with the direction of gravity.
[0040] Please refer to Figures 1-2In some embodiments of the present application, an atomization device 100 is provided, which comprises a storage assembly 20, a heating assembly 30, a liquid storage assembly 40, and an atomization assembly 50. The storage assembly 20 is configured to store a first atomization substrate. The liquid storage assembly 40 is configured to store a second atomization substrate.
[0041] The heating assembly 30 is arranged corresponding to the storage assembly 20 and is configured to heat the first atomization substrate by thermal radiation and generate a first aerosol. The atomization assembly 50 is in liquid communication with the liquid storage assembly 40 and is configured to atomize the second atomization substrate by contact heating and generate a second aerosol. At least one of the first aerosol and the second aerosol is discharged through the air outlet 12; or, the first aerosol and the second aerosol are combined and then discharged through the air outlet 12.
[0042] The first atomization substrate can be in any one or more of a solid state, a semi-solid state, and a liquid state, which is not limited in the present application, and can be heated by the heat radiated from the heating assembly 30 and generate a first aerosol. The second atomization substrate is in a liquid state and flows from the liquid storage assembly 40 to the atomization assembly 50 through a liquid path.
[0043] The atomization device 100 provided in the present application simultaneously has the heating assembly 30 and the atomization assembly 50. The heating assembly 30 heats the first atomization substrate by thermal radiation and generates a first aerosol, which can promote the molecular thermal motion of the first atomization substrate in a non-contact heating form, thereby realizing low-temperature atomization of the first atomization substrate, and is suitable for atomizing atomization substrates that are sensitive to temperature, such as atomization substrates containing effective components such as fragrance components, bioactive components, and pharmaceutical active components, thereby avoiding problems such as deterioration, failure, and pasting of the atomization substrate at high temperature. The atomization assembly 50 atomizes the second atomization substrate by contact heating and generates a second aerosol, which can promote high-temperature atomization of the second atomization substrate in a contact heating form, has higher atomization efficiency and larger atomization smoke yield, and is suitable for atomizing atomization substrates that have high temperature tolerance, such as atomization substrates containing effective components such as smoking agents, tobacco components, or tobacco substitute components.
[0044] In one embodiment, the heating assembly 30 is a heating resistor. After the heating assembly 30 is activated, it generates heat itself to form a high-temperature area in the space where the heating assembly 30 is located, thereby increasing the temperature of the storage assembly 20 corresponding to the heating assembly.
[0045] In one embodiment, the heating assembly 30 is configured as an induction coil, and the storage assembly 20 is provided with an induction heating element that generates heat in response to the energization of the induction coil. Exemplarily, the induction heating element (not shown in the figure) is a metal sheet. Through the heating action of the induction heating element, the temperature in the storage assembly 20 is increased.
[0046] In one embodiment, the heating assembly 30 is configured to have a gap (not labeled in the figure) with the storage assembly 20, and the gap is filled with air.
[0047] In one embodiment, the heating assembly 30 is configured to have a gap (not labeled in the figure) with the storage assembly 20, and the gap is filled with a heat-conducting material (not labeled in the figure), which can be, for example, metal or paraffin-based heat-conducting oil, naphthenic heat-conducting oil, etc.
[0048] The above examples provide four specific implementations of the heating assembly 30 to heat the storage assembly 20 in a heat radiation manner.
[0049] The atomization device 100 of the present application combines the advantages of low-temperature atomization and high-temperature atomization, can use different types of atomization substrates, provides users with aerosols of multiple flavors, different functions and effects, meets the personalized use needs of users, and improves the user experience.
[0050] In the following embodiments, the first atomization substrate is exemplified by a fragrance liquid containing fragrance components, and the second atomization substrate is exemplified by a tobacco oil containing a smoke agent and tobacco components or tobacco substitute components. The fragrance liquid provides the user with a first aerosol having a preset fragrance odor, and the tobacco oil provides the user with a second aerosol having tobacco components or tobacco substitute components and smoke.
[0051] Please refer to Figures 1-3 In some embodiments, the atomization device 100 further includes a housing 10, one end of the housing 10 is provided with an air inlet 11, and the other end of the housing 10 is provided with the above-mentioned air outlet 12. In the present embodiment, the housing 10 is arranged along the Z-axis direction, i.e. the direction of gravity, the air inlet 11 is arranged at the bottom of the housing 10, and the air outlet 12 is arranged at the top of the housing 10.
[0052] The storage assembly 20 includes a rotating member 21, and the rotating member 21 is provided with at least two first containing spaces 210 for storing the first atomization substrate. The heating assembly 30 is configured to be arranged opposite to any one of the first containing spaces 210 to heat the first atomization substrate in the corresponding first containing space 210. When the rotating member 21 rotates, the relative positions of the first containing spaces 210 and the heating assembly 30 are switched, so that the first atomization substrate in different first containing spaces 210 is heated by the heating assembly 30 to generate a first aerosol.
[0053] The first atomization substrate is configured to provide a preset fragrance odor, and different first containing spaces 210 are used to store first atomization substrates with the same or different fragrance odors.
[0054] When different first atomized substrates with different fragrance smells are stored in different first containing spaces 210, the fragrance types of the first atomized substrates in the storage assembly 20 are enriched, and the user can rotate the first containing spaces 210 storing the first atomized substrates with different fragrance smells to the set positions by rotating the rotating member 21 according to his / her own preferences, so as to provide the user with the first aerosol with a specific fragrance smell, and enable the first aerosol to flow through the atomization assembly 50 and mix with the second aerosol, thereby forming a combination of different fragrance types and tastes, and realizing the switching and adjustment of multiple aerosol tastes.
[0055] In the following embodiments, the first atomized substrates with different fragrance smells stored in different first containing spaces 210 are taken as examples for illustration.
[0056] The heating assembly 30 can be fixedly arranged in the shell 10, and the user manually drives the rotating member 21 to rotate to switch the first containing space 210 opposite to the heating assembly 30, so as to heat the first atomized substrates in different first containing spaces 210 to generate the first aerosol with different fragrance smells, and realize the switching of the first aerosol smell, which is simple and convenient to operate.
[0057] In use, the external airflow entering the shell 10 through the air inlet 11 can be configured to directly flow out of the air outlet 12 after flowing through the first containing space 210 opposite to the heating assembly 30 and carrying out the first aerosol, so as to provide the user with the first aerosol with a preset fragrance smell, thereby meeting the user's preference demand for the first aerosol with a specific fragrance smell; or the external airflow entering the shell 10 through the air inlet 11 can also be configured to continue to flow to the atomization assembly 50 after flowing through the first containing space 210 opposite to the heating assembly 30 and carrying out the first aerosol, so that the first aerosol in the airflow mixes with the second aerosol and then flows out of the air outlet 12, thereby providing the user with the mixed aerosol with a specific fragrance smell and tobacco components, tobacco substitute components and smoke.
[0058] Please refer to Figures 2-3 In some embodiments, the shell 10 is formed with a mounting cavity 13 (as shown in Figure 6 The storage assembly 20 is movably connected in the mounting cavity 13.
[0059] The heating assembly 30 includes a first heating member 31, which is arranged opposite to the side wall of the rotating member 21. The rotating member 21 rotates around the central axis 2111 (as shown in Figure 8 The first containing space 210 to enable the first containing space 210 to be arranged opposite to the first heating member 31.
[0060] The first heating element 31 can be arranged along the axial direction of the rotating member 21 and fixedly connected to the side wall surface of the mounting cavity 13, so that the first heating element 31 can be arranged opposite to the side wall of the rotating member 21. The first heating element 31 is preferably close to the side wall surface of the rotating member 21 to reduce heat loss and improve the atomization efficiency of the first atomization substrate.
[0061] When the first heating element 31 is opposite to the first containing space 210 rotated to the set position, the first aerosol with the preset fragrance can be provided to the user during each puffing, so as to meet the user's preference for the specific fragrance of the first aerosol.
[0062] When the first heating element 31 is opposite to multiple first containing spaces 210 rotated to the set position at the same time, more first aerosols can be provided to the user during each puffing, which is beneficial to improve the richness of the first aerosol and increase the fragrance.
[0063] The first heating element 31 can be any one or more of a PTC heating element, an FPC heating element, an infrared heating element, a graphene heating element, and a resistance wire heating element, and the present application does not limit the same. The first heating element 31 can heat the first atomization substrate in the first containing space 210 opposite to the first heating element 31 by heat radiation and generate the first aerosol.
[0064] Please refer to Figures 3-5 In some embodiments, the rotating member 21 is provided with a first air outlet through hole 241 at one end facing the air outlet 12, and the first air outlet through hole 241 is in communication with the first containing space 210. Among them, the first containing space 210 rotated to the set position is configured to be in communication with the air outlet 12 through the corresponding first air outlet through hole 241, so that the first aerosol generated in the first containing space 210 can be discharged through the first air outlet through hole 241 and flow to the air outlet 12.
[0065] The number of first air outlet through holes 241 matches the number of first containing spaces 210, so that the first aerosol generated in each first containing space 210 can be discharged through the corresponding first air outlet through hole 241.
[0066] The first heating element 31 radiates heat to the first containing space 210 rotated to the set position by heat radiation, promotes the molecular thermal motion of the fragrance components in the first atomization substrate, and the generated first aerosol is discharged from the first air outlet through hole 241 in a self-volatilization manner and flows to the air outlet 12. Without setting an airflow channel penetrating through the first containing space 210, the risk of liquid leakage of the first containing space 210 can be reduced.
[0067] It can be understood that the first aerosol discharged in the first accommodating space 210 in the set position can be configured to be discharged directly to the air outlet 12 alone, or can be configured to flow through the atomization assembly 50 and be discharged after being combined with the second aerosol.
[0068] Please refer to Figures 3-4 In some embodiments, one end of the rotating member 21 towards the air inlet 11 is provided with a first air inlet through hole 213, and the first air inlet through hole 213 is in communication with the first accommodating space 210. Among them, the first accommodating space 210 rotated to the set position is configured to be in communication with the air inlet 11 through the corresponding first air inlet through hole 213.
[0069] The number of first air inlet through holes 213 is matched with the number of first accommodating spaces 210, so that the airflow entering from the air inlet 11 can flow into the first accommodating space 210 in the set position through the first air inlet through hole 213, and after flowing through the first accommodating space 210, the generated first aerosol is carried out from the corresponding first air outlet through hole 241, and finally discharged from the air outlet 12. The first atomization substrate can be a solid or colloidal or paste with volatile fragrance odor, which is accommodated in the first accommodating space 210 and has a gap between the inner cavity wall of the first accommodating space 210 for airflow to pass through; or the first atomization substrate itself is provided with a through hole in communication with the first air inlet through hole 213 and the first air outlet through hole 241, which can be passed through by the airflow, so as to ensure that the airflow flowing through the first accommodating space 210 in the set position can carry out the volatilized first aerosol.
[0070] Please refer to Figure 8 In some embodiments, the storage assembly 20 further comprises a liquid storage member 22, which is accommodated in the first accommodating space 210 and used for adsorbing the first atomization substrate.
[0071] The application atomization device 100 is provided with a liquid storage member 22 in the first accommodating space 210, which can adsorb the liquid first atomization substrate through the liquid storage member 22, avoiding the problem of liquid first atomization substrate leaking from the first air inlet through hole 213 and the first air outlet through hole 241, and improving the user experience.
[0072] Please refer to Figure 8 In some embodiments, the liquid storage member 22 is provided with a first air hole 221 through the liquid storage member 22, and the first air hole 221 is in communication with the first air inlet through hole 213 and the first air outlet through hole 241 corresponding to the first accommodating space 210 where the liquid storage member 22 is located, so that the airflow in the first accommodating space 210 in the set position flows through the liquid storage member 22, thereby carrying out the generated first aerosol, facilitating the airflow to flow through the first accommodating space 210, and improving the output efficiency of the first aerosol.
[0073] In some embodiments, the first air outlet through hole 241 and the first air inlet through hole 213 can be respectively provided with one-way valves or switches configured to control the first air inlet through hole 213 corresponding to the first containing space 210 in the set position to be in communication with the air inlet 11, and control the first air outlet through hole 241 corresponding to the first containing space 210 in the set position to be in communication with the air outlet 12, so that the first containing space 210 is in communication with the air inlet 11 and the air outlet 12. In addition, the valve or switch is also configured to control the first air inlet through hole 213 and the first air outlet through hole 241 corresponding to the first containing space 210 in the set position to be closed. By controlling the opening and closing of the first air inlet through hole 213 and the first air outlet through hole 241 through the one-way valve or switch, the first containing space 210 can store different physical forms of the first atomized substrate, which reduces the risk of leakage of the first atomized substrate in the first containing space 210, and also avoids the first containing space 210 in the set position to release the first aerosol to the outside, which is beneficial to prolong the effective use period and service life of the first atomized substrate.
[0074] Please refer to Figure 3 In some embodiments, the liquid storage assembly 40 includes a second containing space 41 formed in the housing 10 for storing a second atomized substrate.
[0075] The atomization assembly 50 includes a liquid guide 51 and a second heating element 52. The liquid guide 51 is in liquid communication with the second containing space 41 for adsorbing the second atomized substrate. The liquid guide 51 is provided with an atomization air channel 5121. The air inlet end of the atomization air channel 5121 is in communication with the first containing space 210 rotated to the set position, and the air outlet end of the atomization air channel 5121 is in communication with the air outlet 12. The second aerosol is generated in the atomization air channel 5121.
[0076] The second heating element 52 is accommodated in the atomization air channel 5121 and at least partially abuts the liquid guide 51, and is configured to atomize the second atomized substrate. The second heating element 52 heats and atomizes the second atomized substrate transmitted on the liquid guide 51 in a contact heating manner and generates a second aerosol. Compared with the first aerosol generated by the first heating element 31 in a low-temperature atomization manner, the second aerosol has higher generation efficiency and larger generation amount, which can meet the use demand of the user for deep puffing.
[0077] In use, the airflow discharged from the first accommodating space 210 in the set position can be configured to flow directly to the air outlet 12 for discharge without flowing through the atomization air channel 5121 and the atomization assembly 50, so as to provide the user with the first aerosol having the preset fragrance odor; or the airflow discharged from the first accommodating space 210 in the set position can be configured to flow at least partially to the atomization air channel 5121, so that the first aerosol carried in the airflow can mix with the second aerosol in the atomization air channel 5121, and the mixed aerosol flows through the atomization assembly 50 and is finally discharged through the air outlet 12, so as to provide the user with the mixed aerosol having the specific fragrance odor and the tobacco component / tobacco substitute component and smoke.
[0078] Referring to Figure 4 In some embodiments, the atomization device 100 further comprises a gas adjusting mechanism 60 arranged in the housing 10 and configured to at least partially distribute the airflow discharged from the first accommodating space 210 in the set position to the atomization assembly 50, or fully distribute the airflow to the air outlet 12.
[0079] In use, the external airflow flows into the first accommodating space 210 in the set position from the air inlet 11, carries the generated first aerosol, and then enters the gas adjusting mechanism 60. Under the control of the gas adjusting mechanism 60, the airflow flows to the air outlet 12 for discharge, so as to provide the user with the first aerosol having the preset fragrance odor; or under the control of the gas adjusting mechanism 60, the airflow flows at least partially to the atomization air channel 5121 of the atomization assembly 50, so that the first aerosol carried in the airflow can mix with the second aerosol in the atomization air channel 5121, and the mixed aerosol flows through the atomization assembly 50 and is finally discharged from the air outlet 12, so as to provide the user with the mixed aerosol having the preset fragrance odor, the tobacco component or the tobacco substitute component, meet the user's personalized use demand, and improve the user's use experience.
[0080] Referring to Figure 3 , Figure 6 In some embodiments, the gas adjusting mechanism 60 has an air inlet end and independent first and second air outlet ends, and the first accommodating space 210 in the set position is configured to communicate with the air inlet 11 through the corresponding first air inlet through hole 213 and communicate with the air inlet end of the gas adjusting mechanism 60 through the corresponding first air outlet through hole 241.
[0081] The atomization device 100 further comprises a first air tank 14, the air inlet end of the first air tank 14 is connected to the second air outlet end of the gas adjusting mechanism 60, and the air outlet end of the first air tank 14 is connected to the air inlet end of the atomization assembly 50, which is configured to allow the airflow to flow from the first accommodating space 210 to the atomization assembly 50, so that the airflow discharged from the first accommodating space 210 flows at least partially through the atomization assembly 50.
[0082] The atomization device 100 further comprises a second air chamber 15, which is provided with a first air inlet end 151 and a second air inlet end 152, and an air outlet end connected to the air outlet 12. The first air inlet end 151 is connected to the first air outlet end of the air adjusting mechanism 60 and is configured to allow the airflow to flow from the first containing space 210 to the air outlet 12 directly. The second air inlet end 152 is connected to the air outlet end of the atomization assembly 50 and is configured to allow the airflow to flow from the first containing space 210 and the atomization assembly 50 to the air outlet 12.
[0083] The first air chamber 14 is used to communicate the second air outlet end of the air adjusting mechanism 60 and the air inlet end of the atomization assembly 50, so that at least part of the airflow discharged from the first containing space 210 in the set position can flow to the atomization assembly 50 through the first air chamber 14, facilitating the arrangement of the liquid storage assembly 40 and the atomization assembly 50.
[0084] The second air chamber 15 is in communication with the first air outlet end of the air adjusting mechanism 60 through the first air inlet end 151 and is connected to the air outlet end of the atomization assembly 50 through the second air inlet end 152, so as to guide the airflow entering through the first air inlet end 151 and the second air inlet end 152 to the air outlet 12, realizing the separate output of the first aerosol or the mixed output of the first aerosol and the second aerosol.
[0085] The air adjusting mechanism 60 can also be configured to distribute all the airflow discharged from the first containing space 210 to the air inlet end of the first air chamber 14, and all the airflow flows through the atomization assembly 50 under the guidance of the first air chamber 14, so that all the first aerosol is mixed with the second aerosol in the atomization airway 5121, then enters the second air chamber 15 from the second air inlet end 152 and is further mixed, and the mixed aerosol is finally discharged from the air outlet 12.
[0086] Please refer to Figures 4-6 , Figures 9-10In some embodiments, the air adjusting mechanism 60 comprises a distribution piece 61 and an adjusting piece 62, the distribution piece 61 is used for distributing the air flow discharged from the first accommodating space 210, and the distribution piece 61 is provided with independent air inlet channels 611, a first distribution channel 612 and a second distribution channel 613. The air inlet end of the air inlet channel 611 constitutes the air inlet end of the air adjusting mechanism 60 and is communicated with the first air outlet through hole 241 corresponding to the first accommodating space 210 in the set position, so that the air flow discharged from the first accommodating space 210 in the set position all enters the air inlet channel 611. The air outlet end of the first distribution channel 612 constitutes the first air outlet end of the air adjusting mechanism 60 and is connected with the first air inlet end 151 of the second air chamber 15, so that the air flow discharged from the first accommodating space 210 directly flows to the air outlet 12 through the second air chamber 15. The air outlet end of the second distribution channel 613 constitutes the second air outlet end of the air adjusting mechanism 60 and is connected with the air inlet end of the first air chamber 14, so that the air flow discharged from the second distribution channel 613 at least partially flows to the atomizing assembly 50 through the first air chamber 14.
[0087] The adjusting piece 62 is movably connected with the distribution piece 61 and is configured to change position between a first position and a second position. In the first position, the adjusting piece 62 communicates the air outlet end of the air inlet channel 611 with the air inlet end of the first distribution channel 612. In the second position, the adjusting piece 62 communicates the air outlet end of the air inlet channel 611 with the air inlet end of the second distribution channel 613.
[0088] In use, the user can manually drive the adjusting piece 62 to move relative to the distribution piece 61, so that the adjusting piece 62 changes position between the first position and the second position, thereby switching the connection of the air outlet end of the air inlet channel 611 with the air inlet end of the first distribution channel 612 or with the air inlet end of the second distribution channel 613, changing the flow path inside the air adjusting mechanism 60, so as to directly distribute the air flow discharged from the first accommodating space 210 in the set position to the air outlet 12, or at least partially distribute the air flow discharged from the first accommodating space 210 in the set position to the atomizing assembly 50, which is simple in structure, convenient to use and improves the user experience.
[0089] Please refer to Figure 9 In some embodiments, the adjusting piece 62 at least partially movably abuts against the distribution piece 61.
[0090] The air outlet end of the air inlet channel 611, the air inlet end of the first distribution channel 612 and the air inlet end of the second distribution channel 613 are arranged on the side of the distribution piece 61 abutting against the adjusting piece 62.
[0091] The side of the adjusting piece 62 abutting against the distribution piece 61 is provided with a gas guide groove 621, which is configured to communicate the air outlet end of the air inlet channel 611 with the air inlet end of the first distribution channel 612 or with the air inlet end of the second distribution channel 613.
[0092] When the adjusting member 62 moves between the first position and the second position relative to the distribution member 61, the adjusting member 62 and the distribution member 61 are always in sealing contact to improve the air tightness between the adjusting member 62 and the distribution member 61, and prevent the air flow discharged from the air outlet end of the air inlet channel 611 from leaking out of the gap between the adjusting member 62 and the distribution member 61.
[0093] The adjusting member 62 can be arranged to move in a straight line direction, an arc direction, or rotate around a set rotation center relative to the distribution member 61, and the present application does not limit this. The adjusting member 62 can be moved to connect the air outlet end of the air inlet channel 611 to the air inlet end of the first distribution channel 612, or connect the air outlet end of the air inlet channel 611 to the air inlet end of the second distribution channel 613.
[0094] Please refer to Figures 9-10 In some embodiments, the distribution member 61 has opposite first and second surfaces 614, 615, and a third surface 616 perpendicular to the first and second surfaces 614, 615, wherein the first and second surfaces 614, 615 are arranged horizontally above and below each other, and the third surface 616 is arranged vertically.
[0095] The air inlet end of the air inlet channel 611 penetrates the second surface 615 and forms a total air inlet hole 6111, which constitutes the air inlet end of the air adjusting mechanism 60 and is connected to the first air outlet through hole 241 corresponding to the first containing space 210 in the set position. The air outlet end of the air inlet channel 611 penetrates the third surface 616 and forms a total air outlet hole 6112, and the air inlet channel 611 is arranged in a similar inverted "L" shape in the distribution member 61.
[0096] The air inlet end of the first distribution channel 612 penetrates the third surface 616 and forms a first air inlet hole 6121, which is located on one side of the total air outlet hole 6112. The air outlet end of the first distribution channel 612 penetrates the first surface 614 and forms a first air outlet hole 6122, which constitutes the first air outlet end of the air adjusting mechanism 60 and is connected to the first air inlet end 151 of the second air chamber 15. The first distribution channel 612 is arranged in a similar "L" shape in the distribution member 61.
[0097] The air inlet end of the second distribution passage 613 penetrates the third surface 616 and is provided with a second air inlet hole 6131 which is located on the other side of the total air outlet hole 6112; the air outlet end of the second distribution passage 613 penetrates the first surface 614 and is provided with a second air outlet hole 6132 which constitutes the second air outlet end of the air adjusting mechanism 60 and is connected with the air inlet end of the first air chamber 14, and the second distribution passage 613 is arranged in the distribution piece 61 in a similar "L" shape.
[0098] The first air inlet hole 6121, the total air outlet hole 6112 and the second air inlet hole 6131 are arranged along the X axis direction on the third surface 616.
[0099] Correspondingly, the adjusting piece 62 has a fourth surface 622 which movably abuts against the third surface 616, and the air guide groove 621 is formed in the fourth surface 622. In this embodiment, the first position of the adjusting piece 62 is taken as an example, and the first position is located on the right side of the X axis direction in the figure; the second position is taken as an example, and the second position is located on the left side of the X axis direction in the figure.
[0100] In use, the user can manually drive the adjusting piece 62 to move along the X axis direction to the first position on the right side, at this time, the air guide groove 621 connects the total air outlet hole 6112 and the first air inlet hole 6121, so as to obtain the first aerosol with the preset fragrance; the user can also manually drive the adjusting piece 62 to move along the X axis direction to the second position on the left side, at this time, the air guide groove 621 connects the total air outlet hole 6112 and the second air inlet hole 6131, so as to obtain the smoke with the preset fragrance, tobacco component or tobacco substitute component.
[0101] Please refer to Figure 8 In some embodiments, the storage assembly 20 further comprises a central shaft 23 which is fixedly connected in the mounting cavity 13 along the Z axis direction. The rotating piece 21 is configured as a columnar structure extending along the Z axis direction, and a first shaft hole 211 is provided through the central axis 2111 of the rotating piece 21 and the rotating piece 21 is rotationally connected to the central shaft 23 through the first shaft hole 211. The first accommodating space 210 is arranged on the rotating piece 21 along the Z axis direction and is uniformly distributed around the first shaft hole 211.
[0102] In use, when the first atomized substrate in one of the first accommodating spaces 210 is consumed or the fragrance is weakened, or the user wants to switch the fragrance of the first aerosol, the rotating piece 21 can be manually driven to rotate around the central shaft 23 to rotate the first accommodating space 210 storing the first atomized substrate to a set position, so as to continue to provide the user with the first aerosol.
[0103] Please refer to Figure 2 In some embodiments, the air adjusting mechanism 60 is arranged in the mounting cavity 13 and is located at the upper end of the storage assembly 20.
[0104] Please refer to Figure 8 The rotating member 21 is provided with eight first grooves 212 which are uniformly distributed around the first shaft hole 211 in the circumferential direction. The first grooves 212 are formed with a notch 2121 at the upper end in the axial direction of the rotating member 21. A first air inlet through hole 213 penetrates the bottom surface of the first groove 212, so that the airflow entering from the air inlet 11 can pass through the first air inlet through hole 213 into the corresponding first groove 212. The liquid storage member 22 is inserted into the corresponding first groove 212 through the notch 2121, and the first atomization substrate is adsorbed on the liquid storage member 22.
[0105] The storage assembly 20 further comprises a first flexible member 24 which is detachably connected to the upper end of the rotating member 21 and closes the notch 2121. The first flexible member 24 and the first groove 212 define a first containing space 210 therebetween. A first air outlet through hole 241 is provided through the first flexible member 24, so that the airflow in the first containing space 210 can be discharged through the corresponding first air outlet through hole 241. A second shaft hole 242 is provided through the center of the first flexible member 24, and the upper end of the central shaft 23 is fixed to the top of the mounting cavity 13 through the second shaft hole 242.
[0106] In use, the user can rotate the rotating member 21 to rotate 45° around the central axis 2111 thereof, so as to switch the first containing space 210 which is in gas path communication with the air inlet 11 and the air inlet passage 611, thereby switching the fragrance odor of the generated first aerosol. If the first atomization substrate in a certain first containing space 210 is consumed or the fragrance odor is weakened, the user can remove the first flexible member 24, and add the first atomization substrate to the corresponding first groove 212 or the liquid storage member 22 through the notch 2121, so as to realize the recycling use of the storage assembly 20, reduce the use cost of the user, and prolong the service life of the atomization device 100.
[0107] The first flexible member 24 is made of flexible material and has certain elasticity. The flexible material can be selected from silicone material, rubber material, soft plastic material, etc., which is not limited in the present application. The upper end surface of the first flexible member 24 facing the air adjusting mechanism 60 is at least partially sealed against the second surface 615 of the distribution member 61, so that the first air outlet through hole 241 corresponding to the first containing space 210 which is not in the set position can be closed by the second surface 615 of the distribution member 61, avoiding the first atomization substrate in the first containing space 210 in the non-use state from volatilizing the first aerosol outward.
[0108] The storage assembly 20 also includes a second flexible member 25, which is fixedly connected to the bottom of the mounting cavity 13 and at least partially abuts the bottom surface of the rotating member 21. The second flexible member 25 is made of a flexible material and has a certain elasticity. The flexible material can be selected from silicone, rubber, soft plastic, etc., and the present application does not limit the same.
[0109] The second flexible member 25 is provided with a through hole 251 along the Z-axis, which is configured to communicate the air inlet 11 with the first air inlet hole 213 corresponding to the first containing space 210 in the set position. The center of the second flexible member 25 is provided with a third shaft hole 252, and the lower end of the central shaft 23 passes through the third shaft hole 252 and is fixed to the bottom of the mounting cavity 13.
[0110] The second flexible member 25 at least partially seals and abuts the bottom surface of the rotating member 21 towards the upper end surface of the rotating member 21, so that the first air inlet hole 213 corresponding to the first containing space 210 in the set position can be closed by the second flexible member 25, avoiding the first aerosol from the first atomized base in the first containing space 210 in the non-use state.
[0111] Referring to Figure 10 In some embodiments, the second surface 615 of the dispensing member 61 is provided with a first sealing ring 617, the number of first sealing rings 617 matches the number of first containing spaces 210, and the first sealing rings 617 are arranged corresponding to the first air outlet holes 241. One of the first sealing rings 617 is arranged at the total air inlet hole 6111 and abuts the periphery of the first air outlet hole 241 corresponding to the first containing space 210 in the set position; the remaining first sealing rings 617 abut the periphery of the first air outlet hole 241 corresponding to the first containing space 210 outside the set position, to seal the air outlet end of the first containing space 210 in the non-use state with the second surface 615.
[0112] Referring to Figure 8 Correspondingly, the top surface of the second flexible member 25 is provided with a second sealing ring 253, the number of second sealing rings 253 matches the number of first containing spaces 210, and the second sealing rings 253 are arranged corresponding to the first air inlet holes 213. One of the second sealing rings 253 is arranged at the through hole 251 and abuts the periphery of the first air inlet hole 213 corresponding to the first containing space 210 in the set position; the remaining second sealing rings 253 abut the periphery of the first air inlet hole 213 corresponding to the first containing space 210 outside the set position, to seal the air inlet end of the first containing space 210 in the non-use state with the top surface of the second flexible member 25.
[0113] In other embodiments, the positions of the first sealing ring 617 and the second sealing ring 253 can also be adjusted according to actual conditions, and the application does not make any limitation on this. The first sealing ring 617 and the second sealing ring 253 can only be used to seal the air inlet end and the air outlet end of the first accommodating cavity outside the set position.
[0114] Please refer to Figure 1 In some embodiments, the shell 10 is further provided with a window 16 communicating the mounting cavity 13 with the outside world, and the rotating member 21 is at least partially exposed to the window 16, so that the user can rotate the rotating member 21 around the central shaft 23 by actuating it through the window 16.
[0115] Please refer to Figure 1 In some embodiments, the shell 10 is further provided with a transparent window 17 on the second accommodating space 41, which is configured to display the liquid level of the second atomized substrate in the liquid storage cavity, so that the user can know the remaining amount of the second atomized substrate in time.
[0116] Please refer to Figures 2-3 In some embodiments, the atomization device 100 further comprises a positioning assembly 70, which is arranged between the rotating member 21 and the inner wall of the mounting cavity 13 and is configured to limit the rotation of the rotating member 21. The positioning assembly 70 comprises a positioning groove 71 and a positioning elastic member 72. The number of the positioning grooves 71 is preferably matched with the number of the first accommodating spaces 210, and the positioning grooves 71 are arranged on the bottom surface of the rotating member 21 and correspond to the first accommodating spaces 210 one by one. The positioning elastic member 72 is arranged at least one, which is fixedly connected to the bottom surface of the mounting cavity 13 and is configured to be matched with the positioning grooves 71. The positioning elastic member 72 in the embodiment is taken as an example of spring beads.
[0117] When the rotating member 21 rotates any one of the first accommodating spaces 210 to the set position, the beads of the positioning elastic member 72 are at least partially elastically clamped in the corresponding positioning groove 71, so as to limit the rotation of the rotating member 21, realize the positioning of the rotating member 21, avoid the problem that the first accommodating space 210 cannot form a gas path communication with the air inlet 11 and the air inlet channel 611 due to insufficient or excessive rotation angle of the rotating member 21, and also avoid the problem that the taste of the first aerosol produced during use is accidentally switched due to the easy rotation of the rotating member 21 caused by external force interference during use.
[0118] Please refer to Figure 2In some embodiments, the second accommodating space 41 is between the first air chamber 14 and the second air chamber 15, the atomization assembly 50 is accommodated in the second accommodating space 41, and a liquid storage cavity is defined between the atomization assembly 50 and the inner wall surface of the second accommodating space 41, and the second atomization substrate is stored in the liquid storage cavity. This structure design can maximize the volume of the liquid storage cavity in the limited space in the shell 10, and ensure the storage amount of the second atomization substrate.
[0119] Referring to Figure 3 In some embodiments, the bottom of the second accommodating space 41 is provided with a first fixed part 42 communicating with the first air chamber 14, and the top of the second accommodating space 41 is provided with a second fixed part 43 communicating with the second air chamber 15, the first fixed part 42 and the second fixed part 43 are coaxially arranged, and the atomization assembly 50 is fixedly connected between the second fixed part 43 and the first fixed part 42 along the Z-axis. The first fixed part 42 is provided with a second air inlet through hole 421 communicating with the first air chamber 14, and the second fixed part 43 is provided with a second air outlet through hole 431 communicating with the second air chamber 15. The air inlet end of the atomization air channel 5121 is connected with the air outlet end of the first air chamber 14 through the second air inlet through hole 421, and the air outlet end of the atomization air channel 5121 is connected with the second air inlet end 152 of the second air chamber 15 through the second air outlet through hole 431.
[0120] Referring to Figure 3 and Figure 11 In some embodiments, the atomization assembly 50 further includes a core seat 53, a first core pipe 54, a second core pipe 55, a first sealing member 56, and the liquid guide 51 includes a first liquid guide 511 and a second liquid guide 512. The lower end of the first core pipe 54 is inserted and fixed to the first fixed part 42, the upper end of the first core pipe 54 is inserted and fixed to the second fixed part 43, and the first sealing member 56 is sealingly clamped between the first core pipe 54 and the second fixed part 43.
[0121] The pipe wall of the first core pipe 54 is provided with a plurality of first liquid inlets 541, and the pipe wall of the second core pipe 55 is provided with a plurality of second liquid inlets 551, and the second atomization substrate in the liquid storage cavity can enter the second core pipe 55 through the first liquid inlets 541 and the second liquid inlets 551. The core seat 53 is fixed to the bottom of the first core pipe 54, the second core pipe 55 is accommodated in the first core pipe 54, and the bottom of the second core pipe 55 is inserted and fixed to the core seat 53. The first liquid guide 511 is fixedly clamped between the first core pipe 54 and the second core pipe 55 and closes the first liquid inlets 541 and the second liquid inlets 551, and the second liquid guide 512 is accommodated in the second core pipe 55 and closes the second liquid inlets 551. The second liquid guide 512 is in liquid communication with the liquid storage cavity through the second liquid inlets 551, the first liquid guide 511 and the first liquid inlets 541.
[0122] The atomization air channel 5121 penetrates the second liquid guide 512 along the Z axis, the second heating element 52 is accommodated in the atomization air channel 5121 and at least partially abuts the inner wall surface of the second liquid guide 512, so as to heat and atomize the second atomization substrate transmitted to the inner wall surface of the second liquid guide 512, and generate the second aerosol in the atomization air channel 5121.
[0123] The core seat 53 and the first sealing element 56 are both provided with a through hole for airflow passing through, so that the airflow in the first air chamber 14 can enter the atomization assembly 50 through the second air inlet hole 421, flow through the atomization air channel 5121 and carry out the generated second aerosol, and then flow to the second air chamber 15 from the second air outlet hole 431.
[0124] The liquid guide 51 of the atomization assembly 50 adopts a double-layer structure design of inner and outer layers, has a larger liquid absorption amount, better liquid guiding and locking effects, and can reduce the risk of liquid leakage of the atomization assembly 50.
[0125] In actual manufacturing, the first liquid guide 511 and the second liquid guide 512 can be made of different materials and have different porosities, so that the first liquid guide 511 and the second liquid guide 512 have different liquid absorption and liquid guiding characteristics, so as to improve the liquid guiding efficiency and enhance the atomization effect.
[0126] Please refer to Figures 6-7 In some embodiments, the air adjusting mechanism 60 further includes a gas guide 63, which is arranged through the second accommodating space 41 and arranged side by side with the atomization assembly 50.
[0127] The gas guide 63 communicates the air outlet end of the first distribution channel 612 with the first air inlet end 151 of the second air chamber 15, and is configured to guide the airflow in the first distribution channel 612 to the air outlet 12.
[0128] In some embodiments, the air inlet end of the gas guide 63 is connected with the first air outlet hole 6122, and the air outlet end of the gas guide 63 is connected with the first air inlet end 151, so that the airflow discharged from the first distribution channel 612 can enter the second air chamber 15 through the second accommodating space 41 under the guidance of the gas guide 63, and finally be discharged from the air outlet 12. The gas guide 63 is arranged through the second accommodating space 41, which fully utilizes the space of the second accommodating space 41 and does not greatly affect the effective volume of the liquid storage cavity, thereby improving the compactness of the structure inside the shell 10.
[0129] Please refer to Figure 6In some embodiments, the first air chamber 14 is provided with a first liquid absorbing cotton 141, and the second air chamber 15 is provided with a second liquid absorbing cotton 153. During use, the first liquid absorbing cotton 141 and the second liquid absorbing cotton 153 can absorb large liquid droplets in the airflow, preventing the large liquid droplets from being inhaled by the user along with the airflow discharged from the air outlet 12, and ensuring the suction feeling of the aerosol discharged from the air outlet 12.
[0130] In some embodiments, the atomization device further comprises a control switch (not shown in the figure) for controlling the operation of the first heating element 31 and the second heating element 52. The control switch can be a multi-gear adjustment switch. During use, the user can manually adjust the gear lever of the control switch to adjust the working mode of the first heating element 31 and the second heating element 52 according to the gear change of the control switch, or the control switch can be used to control the start and stop of the first heating element 31 and the second heating element 52.
[0131] Please refer to Figure 9 In some embodiments, the adjustment member 62 is provided with a clamping portion 623 connected with the gear lever of the control switch, so as to achieve the linkage connection between the control switch and the adjustment member 62, so as to synchronously adjust the gear change of the control switch when the position of the adjustment member 62 changes.
[0132] For example, when the adjustment member 62 is in the first position, the gear lever is driven to move to the first gear by the clamping portion 623. At this time, the airflow discharged from the first accommodating cavity in the set position does not flow through the atomization assembly 50, and only the first aerosol is discharged from the air outlet 12. The control switch can be configured to control the second heating element 52 to stop running to avoid dry burning of the second heating element 52. When the adjustment member 62 is in the second position, the gear lever is driven to move to the second gear by the clamping portion 623. At this time, the airflow discharged from the first accommodating cavity in the set position flows through the first air chamber 14, the atomization assembly 50, and the second air chamber 15 in sequence. The control switch can be configured to control the second heating element 52 to run to atomize the second atomization substrate by the second heating element 52 and generate the second aerosol, so that the mixed taste aerosol containing the first aerosol and the second aerosol is discharged from the air outlet 12.
[0133] Please refer to Figure 1 and Figure 9 In some embodiments, the shell 10 is further provided with an adjustment groove 19 arranged along the X-axis and connecting the accommodating cavity 18 with the space outside the shell 10.
[0134] The adjusting part 62 is provided with a knob 624 which is at least partially protruded from the adjusting groove 19. When the adjusting part 62 is in the first position, the knob 624 is stopped on the inner wall of one end of the adjusting groove 19; when the adjusting part 62 is in the second position, the knob 624 is stopped on the inner wall of the other end of the adjusting groove 19. The adjusting groove 19 can define the position changing range of the adjusting part 62, and when the knob 624 is stopped on the inner wall of the two ends of the adjusting groove 19, the adjusting part 62 is positioned in the first position or the second position, which is convenient for the user to quickly and accurately adjust the adjusting part 62 to the right position.
[0135] The above application of specific examples to the technical solutions of the present application are described, which 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, a number of simple deductions, deformations or substitutions can be made.
Claims
1. An atomizing device, characterized in that, include: Storage component for storing the first atomizing matrix; A heating component, corresponding to the storage component, is configured to heat the first atomizing matrix and generate a first aerosol by thermal radiation. A liquid storage assembly for storing the second atomizing matrix; The atomizing component, which forms a liquid channel connection with the liquid storage component, is configured to atomize the second atomizing matrix and generate a second aerosol by contact heating. 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 as described in claim 1, characterized in that, The atomizing device also includes a housing, one end of which is provided with an air inlet, and the other end of which is provided with an air outlet; The storage component includes: The rotating component is provided with at least two first receiving spaces, the first receiving spaces being used to store the first atomizing matrix; The heating component is configured to be disposed opposite to any one of the first accommodating spaces to heat the first atomized matrix within the corresponding first accommodating space; When the rotating component rotates, the relative positions of the first accommodating space and the heating component are switched.
3. The atomizing device as described in claim 2, characterized in that, The heating component includes: The first heating element is disposed opposite to the side wall of the rotating element; The rotating member rotates around its own central axis to rotate at least one of the first accommodating spaces to a set position, such that the first accommodating space is positioned opposite to the first heating element.
4. The atomizing device as described in claim 3, characterized in that, The rotating component is provided with a first air outlet hole at one end facing the air outlet, and the first air outlet hole is connected to the first accommodating space. The first accommodating space, rotated to the set position, is configured to communicate with the air outlet through the corresponding first air outlet hole.
5. The atomizing device as described in claim 4, characterized in that, The rotating component is provided with a first air inlet hole at one end facing the air inlet, and the first air inlet hole is connected to the first accommodating space. The first accommodating space, rotated to the set position, is configured to communicate with the air inlet through the corresponding first air inlet hole.
6. The atomizing device as described in claim 5, characterized in that, The storage component also includes: A liquid storage device is housed in the first accommodating space and is used to adsorb the first atomizing matrix.
7. The atomizing device as described in claim 5, characterized in that, The atomizing device also includes: An air regulating mechanism, disposed within the housing, is configured to distribute at least a portion of the airflow discharged from the first accommodating space rotated to the set position to the atomizing component, or to distribute all of it to the air outlet.
8. The atomizing device as described in claim 7, characterized in that, The air regulating mechanism has independent first and second air outlets, and the atomizing device further 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 first accommodating space to the atomizing component. and / or, The second air chamber has 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; wherein, the first air inlet is connected to the first air outlet and is configured to supply airflow from the first accommodating space 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 first accommodating space and the atomizing component to the air outlet.
9. The atomizing device as described in 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 first accommodating space rotated to the set 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 member, movably connected to the distributing member, is configured to be positionally variable between a first position and a second position; in the first position, the adjusting member connects the outlet end of the air intake channel with the air intake end of the first distributing channel; in the second position, the adjusting member connects the outlet end of the air intake channel with the air intake end of the second distributing channel.
10. The atomizing device as described in claim 9, characterized in that, The gas regulating mechanism also includes: An air guide, connecting the air outlet of the first distribution channel with the first air inlet, is configured to guide the airflow in the first distribution channel into the second air chamber.