Storage assembly, atomization assembly and electronic atomization device
By designing separately arranged storage components and atomization component structures in the electronic atomization device, the conveyors are used to realize continuous liquid supply of the aerosol-forming matrix, solving the problem of atomization core pollution and improving the user experience.
Patent Information
- Application Number
- CN202421928203.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-08-08
AI Technical Summary
When the electronic atomization device is not used for a long time, the atomization core may cause contamination to the aerosol-forming matrix and affect the user experience.
A structure is designed where the storage component is arranged separately from the atomization component. The storage component includes a conveyor for accommodating the aerosol-forming substrate. The first part of the conveyor is in contact with the storage cavity and the second part cooperates with the atomization component to achieve continuous liquid supply.
Prevents aerosol-forming substrate from being contaminated when not used for a long time, improves user experience, has a simple structure and good sealing performance.
Smart Images

Figure CN223111087U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of electronic atomization, and in particular relates to a storage component, an atomization component and an electronic atomization device. Background Art
[0002] The electronic atomization device generally includes a storage cavity for storing an aerosol-forming matrix and an atomization core disposed in the storage cavity and used to heat the aerosol-forming matrix to form an aerosol. Since the atomization core is directly disposed in the storage cavity, if the electronic atomization device is not used for a long time, the atomization core is disposed in the aerosol-forming matrix for a long time, which may cause contamination to the aerosol-forming matrix, resulting in a poor user experience when using the device. Utility Model Content
[0003] The technical purpose of the utility model is to provide a storage component, an atomization component and an electronic atomization device, aiming to solve the technical problem in the related art that when the atomizer is not used for a long time, the atomization core may cause contamination to the aerosol forming matrix.
[0004] To solve the above technical problems, the utility model is implemented as follows: a storage component is used in conjunction with an atomizer component, the storage component defines a storage cavity for accommodating a liquid aerosol-forming matrix, and the storage component includes a conveying member in contact with the aerosol-forming matrix, the conveying member has a first part in contact with the aerosol-forming matrix in the storage cavity and a second part located outside the storage cavity, the second part is used to contact and cooperate with the mating part of the atomizer component to transfer the aerosol-forming matrix to the atomizer component.
[0005] Furthermore, the storage component includes a storage member and a support member, a storage cavity is enclosed between the storage member and the support member, and the support member is provided with a liquid hole connected to the storage cavity; the first part of the transmission member is passed through the liquid hole, and the second part is located outside the liquid hole.
[0006] Furthermore, the storage component is provided with a limiting portion in the storage cavity near the liquid passage hole, and the limiting portion is used to limit the transmission member from moving toward the storage cavity when it contacts and cooperates with the atomization component.
[0007] Furthermore, the support member is provided with a sealing portion on a side away from the storage cavity, the sealing portion surrounds the circumference of the liquid hole and wraps around the first portion, and the second portion protrudes from a side of the sealing portion away from the storage cavity.
[0008] Furthermore, a first mounting groove is provided on the support member, and the first mounting groove is used to accommodate a part of the atomization assembly, and the rest of the atomization assembly is located outside the first mounting groove.
[0009] Further, the storage member is further defined with an air outlet channel, the storage cavity is disposed around the air outlet channel, one end of the air outlet channel is an inlet end for communicating with the atomization channel of the atomization component, and the other end of the air outlet channel is a mouthpiece end for the user to inhale.
[0010] Further, an atomization component is used in cooperation with the above storage component. The atomization component includes a porous body and a heating element that is in liquid communication with the porous body. Wherein, the porous body is provided with a mating portion for contacting and mating with the second part of the transfer member of the storage component.
[0011] Further, the atomization component further includes a housing and a bottom cover; an accommodation cavity is enclosed between the housing and the bottom cover, and the housing is used for being assembled in the first installation groove of the storage component; the porous body and the heating element are both disposed in the accommodation cavity; the housing, the bottom cover and the heating element define at least part of the atomization channel, one end of the atomization channel penetrates through the housing to form an outlet end, and the other end penetrates through the bottom cover to form an inlet end; a through hole corresponding to and communicating with the mating portion is further provided on the housing, and the second part protrudes from one side of the through hole away from the storage cavity and contacts the mating portion.
[0012] Further, an electronic atomization device includes the above storage component and the above atomization component. Wherein, the electronic atomization device further includes a power supply component, and the power supply component has an accommodation space, and at least part of the storage component and the atomization component are located in the accommodation space.
[0013] Further, the accommodation space includes a second installation groove formed in the power supply component for accommodating the storage component, and a third installation groove for accommodating the part of the atomization component located in the storage component.
[0014] The storage component in the present utility model, compared with the related art, has the beneficial effects that:
[0015] In the present utility model, by providing a storage cavity for accommodating a liquid aerosol-forming substrate in a storage component, the aerosol-forming substrate is separately arranged from the atomization component. Thus, when the storage component and the atomization component are not used for a long time, the aerosol-forming substrate can be prevented from being contaminated, and the user experience can be improved. In addition, the storage component further includes a transfer member. Moreover, the first part of the transfer member can be in contact with the aerosol-forming substrate in the storage cavity, and the second part can be used for contact and cooperation with the mating part of the atomization component. Therefore, during use, the aerosol-forming substrate in the storage cavity can be transferred to the second part through the first part of the transfer member and then to the atomization component through the second part. Continuous liquid supply can be achieved through the transfer member for the user to use, and the overall structure is simple. Description of the Drawings
[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following-described drawings are only some embodiments of the present utility model. For those skilled in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0017] Figure 1 It is a three-dimensional structure schematic diagram of an electronic atomization device in an embodiment of the present utility model;
[0018] Figure 2 It is a cross-sectional schematic diagram of an electronic atomization device in an embodiment of the present utility model;
[0019] Figure 3 It is an exploded view of the cross-sectional structure of an electronic atomization device in an embodiment of the present utility model;
[0020] Figure 4 It is a first exploded view of an electronic atomization device in an embodiment of the present utility model;
[0021] Figure 5 It is a second exploded view of an electronic atomization device in an embodiment of the present utility model;
[0022] Figure 6 It is an assembly flow chart of an electronic atomization device in an embodiment of the present utility model;
[0023] Figure 7 It is a structure schematic diagram of an electronic atomization device in another embodiment of the present utility model.
[0024] In the drawings, each reference numeral represents:
[0025] 10. Storage component; 20. Atomization component; 30. Power supply component;
[0026] 101. Storage cavity; 102. Storage member; 103. Transfer member; 1031. First part; 1032. Second part; 104. Support member; 105. Limiting portion; 106. Sealing portion; 107. First installation groove; 108. Air outlet passage
[0027] 201. Porous body; 2011. Fitting portion; 202. Heating element; 203. Atomization channel; 204. Housing; 2041. Through hole; 205. Bottom cover; 206. Sealing member
[0028] 301. Accommodating space; 3011. Second installation groove; 3012. Third installation groove; 302. Air inlet passage Detailed implementation manners
[0029] The embodiments of the present utility model will be described in detail below. The examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to explain the present utility model, and should not be construed as a limitation to the present utility model. Based on the embodiments in the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the scope of protection of the present utility model
[0030] In the description of the present utility model, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "circumferential", "radial", etc. are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present utility model
[0031] In addition, the terms "first" and "second" are only used for descriptive purposes and should not be construed as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present utility model, "a plurality of" means two or more unless otherwise specifically defined
[0032] Please refer to Figure 1-7, an embodiment of the present utility model provides a storage component 10 for cooperating with an atomization component 20. The storage component 10 defines a storage cavity 101 for accommodating a liquid aerosol-forming matrix, and the storage component 10 includes a conveying member 103 in contact with the aerosol-forming matrix. The conveying member 103 has a first portion 1031 in contact with the aerosol-forming matrix in the storage cavity 101 and a second portion 1032 located outside the storage cavity 101. The second portion 1032 is used for contact and cooperation with a mating portion 2011 of the atomization component 20 to transfer the aerosol-forming matrix to the atomization component 20.
[0033] In the embodiment of the present utility model, by providing a storage cavity 101 for accommodating a liquid aerosol-forming matrix in the storage component 10, the aerosol-forming matrix is separately arranged from the atomization component 20, so that the storage component 10 and the atomization component 20 can prevent the aerosol-forming matrix from being contaminated when not in use for a long time, and the user experience can be improved. In addition, the storage component 10 further includes a conveying member 103, and the first portion 1031 of the conveying member 103 can be in contact with the aerosol-forming matrix in the storage cavity 101, and the second portion 1032 can be used for contact and cooperation with the mating portion 2011 of the atomization component 20. Therefore, during use, the aerosol-forming matrix in the storage cavity 101 can be transferred to the second portion 1032 through the first portion 1031 of the conveying member 103 and then transferred to the atomization component 20 through the second portion 1032. Continuous liquid supply can be realized through the conveying member 103 for the user to use, and the overall structure is simple.
[0034] Further, in some embodiments, the conveying member 103 can be made of porous materials such as PE, wood pulp fiber, and metal. Through the capillary action of the conveying member 103, continuous liquid supply can be realized, so that the aerosol-forming matrix in the storage cavity 101 can be smoothly transferred to the atomization component 20.
[0035] Further, please refer to Figure 2 and Figure 3 , in some embodiments, the storage component 10 includes a storage member 102 and a support member 104. A storage cavity 101 is enclosed between the storage member 102 and the support member 104, and the support member 104 is provided with a liquid passing hole communicating with the storage cavity 101; the first portion 1031 of the conveying member 103 passes through the liquid passing hole, and the second portion 1032 is located outside the liquid passing hole.
[0036] Specifically, the transfer member 103 can be connected to the storage member 102 through the support member 104, and the end face of the first part 1031 of the transfer member 103 is exposed on the side of the support member 104 close to the storage cavity 101, so that the first part 1031 of the transfer member 103 can contact the aerosol-forming matrix in the storage cavity 101. The aerosol-forming matrix in the storage cavity 101 can be transferred to the second part 1032 through the first part 1031 of the transfer member 103 and then transferred to the atomization assembly 20 through the second part 1032, thereby realizing continuous liquid supply.
[0037] Further, please refer to Figure 2 and Figure 3 , in some embodiments, the storage assembly 10 is provided with a limiting portion 105 at a position in the storage cavity 101 close to the liquid passing hole. The limiting portion 105 is used to limit the movement of the transfer member 103 toward the storage cavity 101 when it is in contact and cooperation with the atomization assembly 20. Through the limiting portion 105, when the transfer member 103 is in contact and cooperation with the atomization assembly 20, the transfer member 103 will not move into the storage cavity 101, and the limitation of the transfer member 103 in the storage assembly 10 can be realized, so that the transfer member 103 can stably transfer liquid.
[0038] Specifically, the limiting portion 105 can be integrally formed on the support member 104 or be separately arranged and connected to the support member 104. The limiting portion 105 can be a butt-joint structure, and the side of the butt-joint structure facing away from the storage cavity 101 can be a butt-joint surface, and the end face of the first part 1031 can be in butt-joint with the butt-joint surface of the butt-joint structure. Therefore, when the transfer member 103 is in contact and cooperation with the atomization assembly 20, the first part 1031 can be prevented from moving into the storage cavity 101, so that the limitation of the transfer member 103 in the storage assembly 10 can be realized. In addition, a liquid passing hole communicating with the storage cavity 101 is also formed in the butt-joint structure, so that the aerosol-forming matrix in the storage cavity 101 can contact the first part 1031 of the transfer member 103 through the liquid passing hole, and thus continuous liquid supply of the transfer member 103 can be realized.
[0039] It should be noted that in other embodiments, the limiting portion 105 can be arranged on other structural members of the storage assembly 10. The present utility model does not make specific limitations on the setting position of the limiting portion 105.
[0040] Further, please refer to Figure 2 and Figure 3 , in some embodiments, the support member 104 is further provided with a sealing portion 106 on the side away from the storage cavity 101. The sealing portion 106 surrounds the circumference of the liquid passing hole and wraps the first part 1031, and the second part 1032 protrudes from the side of the sealing portion 106 facing away from the storage cavity 101.
[0041] Specifically, the atomizer assembly 20 is provided with a through hole 2041. When the storage assembly 10 and the atomizer assembly 20 are assembled, the sealing portion 106 and the through hole 2041 of the atomizer assembly 20 are interference-fitted to form a seal, thereby ensuring the sealing of the storage assembly 10 and the atomizer assembly 20 during assembly and preventing leakage.
[0042] For further information, see Figure 2 and Figure 3 In some specific embodiments, the sealing portion 106 can be an annular structure protruding from the side of the support member 104 away from the storage chamber 101, the annular structure surrounds the circumference of the liquid hole and wraps the first part 1031, the inner wall of the annular structure abuts against the outer wall of the first part 1031 to achieve a tight fit to form a seal; and the outer wall of the annular structure abuts against the hole wall of the through hole 2041 of the atomizer assembly 20 to achieve a tight fit to form a seal, thereby ensuring the sealing of the sealing portion 106, the transmission member 103 and the through hole 2041 of the atomizer assembly 20 when connected. In addition, the second part 1032 protrudes from the side of the annular structure away from the storage chamber 101, so that the liquid can be continuously supplied through the transmission member 103, which can ensure the sealing and oil pressure problems during oil supply and assembly.
[0043] It should be noted that, in other embodiments, the sealing portion 106 may be disposed on the storage element 102 of the storage assembly 10. The present invention does not specifically limit the location of the sealing portion 106.
[0044] For further information, see Figure 2 and Figure 3 In some embodiments, the support member 104 is further provided with a first mounting groove 107, and the first mounting groove 107 is used to accommodate part of the atomizer assembly 20, and the rest of the atomizer assembly 20 is located outside the first mounting groove 107. The storage assembly 10 is provided with the first mounting groove 107, and a part of the outer wall of the atomizer assembly 20 can abut against the groove wall of the first mounting groove 107, so that the atomizer assembly 20 and the storage assembly 10 can be detachably connected.
[0045] For further information, see Figure 2 and Figure 3 In some specific embodiments, the first mounting groove 107 can be opened on the side of the support member 104 away from the storage cavity 101, so that the sealing portion 106 is also located in the first mounting groove 107. When the atomizer assembly 20 is assembled in the first mounting groove 107, the sealing portion 106 is interference fit with the through hole 2041 of the atomizer assembly 20, thereby realizing a sealed connection between the atomizer assembly 20 and the storage assembly 10.
[0046] It should be noted that in other embodiments, the first installation groove 107 may be formed on the storage member 102 of the storage component 10. The present utility model does not specifically limit the setting position of the first installation groove 107.
[0047] Further, please refer to Figure 2 and Figure 3 , in some embodiments, the storage member 102 further defines an air outlet channel 108. The storage cavity 101 is disposed around the air outlet channel 108. One end of the air outlet channel 108 is an inlet end for communicating with the atomization channel 203 of the atomization component 20, and the other end of the air outlet channel 108 is a mouthpiece end for the user to inhale. Therefore, the aerosol formed in the atomization channel 203 of the atomization component 20 can flow out to the outside through the air outlet channel 108.
[0048] Further, please refer to Figure 1-6 , in some specific embodiments, the storage member 102 is provided with a mouthpiece, and the mouthpiece communicates with the air outlet channel 108. The atomization channel 203 forms e-liquid, and the e-liquid flows through the air outlet channel 108 to the mouthpiece, so that the user can inhale the e-liquid through the mouthpiece.
[0049] Further, please refer to Figure 1-7 , the embodiment of the present utility model further provides an atomization component 20 for cooperating with the above storage component 10. The atomization component 20 includes a porous body 201 and a heating element 202 that is in liquid communication with the porous body 201. Among them, the porous body 201 is provided with a mating portion 2011, and the mating portion 2011 is used for contact cooperation with the second portion 1032 of the transfer member 103 of the storage component 10.
[0050] Specifically, the atomization component 20 includes a porous body 201 and a heating element 202. Among them, the transfer member 103 of the storage component 10 is in contact cooperation with the mating portion 2011 of the porous body 201, so that the aerosol forming matrix conveyed by the transfer member 103 can be conveyed to the porous body 201. The heating element 202 is in contact and cooperation with the porous body 201, so that the heating element 202 can heat the aerosol forming matrix in the porous body 201 and finally atomize it into aerosol. By providing the mating portion 2011 in the porous body 201 of the atomization component 20, the mating portion 2011 can cooperate with the second portion 1032 of the transfer member 103 of the storage component 10, so that the porous body 201 of the atomization component 20 and the aerosol forming matrix in the storage cavity 101 can be separately arranged. Thus, when the storage component 10 and the atomization component 20 are not used for a long time, it can prevent the aerosol forming matrix from being contaminated and improve the user experience.
[0051] Further, please refer to Figure 1-7, in some specific embodiments, the atomization assembly 20 further includes a housing 204 and a bottom cover 205; a receiving cavity is defined between the housing 204 and the bottom cover 205, and the housing 204 is used to be assembled in the first installation groove 107 of the storage assembly 10; both the porous body 201 and the heating element 202 are disposed in the receiving cavity, and the housing 204, the bottom cover 205 and the heating element 202 define at least part of the atomization channel 203. One end of the atomization channel 203 penetrates through the housing 204 to form an outlet end, and the other end penetrates through the bottom cover 205 to form an inlet end; a through hole 2041 corresponding to and communicating with the matching portion 2011 is further provided on the housing, and the second part 1032 of the transfer member 103 protrudes from the side of the through hole 2041 away from the storage cavity and contacts the matching portion 2011.
[0052] Specifically, the through hole 2041 is in plug-in fit with the first part 1031 of the sealing portion 106 of the storage assembly 10. When the storage assembly 10 and the atomization assembly 20 are assembled, the sealing portion 106 of the storage assembly 10 and the through hole 2041 of the atomization assembly 20 are in interference fit to form a seal, so as to ensure the sealing performance when the storage assembly 10 and the atomization assembly 20 are assembled and prevent the liquid leakage problem. The transfer member 103 can be in a columnar structure, and the matching portion 2011 can be in a hole structure. The atomization assembly 20 and the storage assembly 10 are assembled and connected, and the second part 1032 of the transfer member 103 is inserted through the matching portion 2011, and the transfer member 103 is in interference fit with the matching portion 2011, so that the aerosol forming matrix of the transfer member 103 can be directly transferred to the porous body 201. In addition, it can be understood that when the porous body 201 is not saturated, the transfer member 103 can continuously transfer the aerosol forming matrix to the porous body 201, but when the porous body 201 is saturated, the transfer member 103 will stop liquid transmission, so as to ensure that the product will not leak liquid. In addition, the outlet end of the atomization channel 203 is used to communicate with the air outlet channel 108 of the storage assembly 10. The heating element 202 heats the aerosol forming matrix in the porous body 201 to form an aerosol, and the aerosol in the atomization channel 203 is transferred to the air outlet channel 108 and finally transferred to the outside.
[0053] Further, please refer to Figure 1-7 , in some specific embodiments, the atomization assembly 20 further includes a sealing member 206; the bottom cover 205 covers the housing 204, and the sealing member 206 is clamped between the porous body 201 and the bottom cover 205; the sealing member 206 is also used to abut against the second part 103 of the storage assembly 10.
[0054] Specifically, the seal 206 is clamped between the porous body 201 and the bottom cover 205, thereby ensuring the sealing performance of the atomization assembly 20 and preventing liquid leakage. In addition, a part of the housing 204 is assembled in the first installation groove 107 of the storage assembly 10, and a sealing ring assembly groove is provided on the outer side of the housing 204, so that the sealing ring can be clamped between the groove wall of the first installation groove 107 and the outer side of the housing 204, thereby further improving the connection sealing performance between the atomization assembly 20 and the storage assembly 10.
[0055] In addition, the through hole 2041 is opened in the housing 204 and is located on the side of the porous body 201 away from the seal 206. Therefore, the first part 1031 of the transfer member 103 passes through the through hole 2041 and the end face of the first part 1031 abuts against the limiting part 105, while the second part 1032 of the transfer member 103 passes through the mating part 2011 and the end face of the second part 1032 can abut against the seal 206, thereby realizing the stable assembly of the transfer member 103 between the support member 104 and the porous body 201 and ensuring the stability of liquid transfer.
[0056] Further, please refer to Figure 2-6 , in some embodiments, the transfer member 103 extends axially, the sealing part 106 of the support member 104 and the porous body 201 of the atomization assembly 20 are distributed axially in sequence, the first part 1031 of the transfer member 103 passes through the sealing part 106 of the support member 104 and a part of the end face of the first part 1031 is exposed on the side of the support member 104 close to the storage cavity 101, and the second part 1032 of the transfer member 103 passes through the mating part 2011 of the porous body 201. Therefore, the aerosol-forming medium in the storage cavity 101 can sequentially pass through the first part 1031 and the second part 1032 of the transfer member 103 along the axial direction, and then be transferred to the porous body 201 through the second part 1032.
[0057] Further, please refer to Figure 7 , in some embodiments, the transfer member 103 extends transversely, the sealing part 106 of the support member 104 and the porous body 201 of the atomization assembly 20 are distributed transversely in sequence. Similarly, the first part 1031 of the transfer member 103 passes through the sealing part 106 of the support member 104 and a part of the end face of the first part 1031 is exposed on the side of the support member 104 close to the storage cavity 101, and the second part 1032 of the transfer member 103 passes through the mating part 2011 of the porous body 201, so that the aerosol-forming medium in the storage cavity 101 can sequentially pass through the first part 1031 and the second part 1032 of the transfer member 103 along the transverse direction, and then be transferred to the porous body 201 through the second part 1032.
[0058] Further, please refer to Figure 1-7, an embodiment of the present utility model provides an electronic atomization device, including the storage component 10 as above and the atomization component 20 as above. By providing a transmission member 103 in the storage component 10 and a mating portion 2011 in the atomization component 20, the mating portion 2011 can cooperate with the transmission member 103 of the storage component 10, so that the porous body 201 of the atomization component 20 and the aerosol-forming matrix in the storage cavity 101 can be separately arranged. Therefore, when the storage component 10 and the atomization component 20 are not used for a long time, the aerosol-forming matrix can be prevented from being contaminated, and the user experience can be improved.
[0059] Further, please refer to Figure 1-7 , in some embodiments, the electronic atomization device further includes a power supply component 30. Wherein, the power supply component 30 has a receiving space 301, and at least part of the storage component 10 and the atomization component 20 are located in the receiving space 301, so that the detachable connection of the storage component 10, the atomization component 20 and the power supply component 30 can be realized.
[0060] Further, please refer to Figure 1-6 , in some specific embodiments, the transmission member 103 extends axially, the support member 104 and the atomization component 20 are distributed axially in sequence, and the receiving space 301 includes a second installation groove 3011 formed in the power supply component 30 for accommodating the storage component 10, and a third installation groove 3012 for accommodating the part of the atomization component 20 outside the first installation groove 107.
[0061] Specifically, the atomization component 20 is divided into two parts. One part is assembled in the first installation groove 107 of the storage component 10, and the other part is located outside the first installation groove 107 and is used for being assembled in the third installation groove 3012 of the power supply component 30. In addition, the power supply component 30 is further provided with a second installation groove 3011 for assembling at least part of the storage component 10. Therefore, the detachable connection of the storage component 10, the atomization component 20 and the power supply component 30 can be realized, and the disassembly and assembly operations are convenient and fast.
[0062] In some specific embodiments, please refer to Figure 1-6, The specific assembly process of the electronic atomization device may include: First, assemble the support member 104 to the storage member 102, and a sealing ring may be arranged to be clamped between the support member 104 and the storage member 102; then insert the transmission member 103 through the sealing portion 106 of the support member 104 and make the first part 1031 abut against the limiting portion 105; next, assemble the atomization assembly 20 to the first installation groove 107, and arrange a sealing ring to be clamped between the outer peripheral side of the atomization assembly 20 and the first installation groove 107; at the same time, the second part 1032 of the transmission member 103 is inserted through the mating portion 2011 of the porous body 201 and the second part 1032 abuts against the seal 206 of the atomization assembly 20, and at the same time the sealing portion 106 is inserted through the through hole 2041; finally, the whole is inserted into the accommodation space 301 of the power supply assembly 30, and the part of the atomization assembly 20 located outside the first assembly groove is assembled to the third accommodation groove, and at least part of the storage assembly 10 is assembled to the second accommodation groove, so as to realize the assembly connection of the whole machine and have tightness.
[0063] Further, please refer to Figure 2 and Figure 3 , The power supply assembly 30 is further provided with an air inlet passage 302. One end of the air inlet passage 302 communicates with the third accommodation groove to communicate with the atomization passage 203 of the atomization assembly 20, and the atomization passage 203 communicates with the air outlet passage 108 and communicates with the outside; the other end of the air inlet passage 302 communicates with the outside for external air flow to flow in, so as to form an air flow passage of the electronic atomization device.
[0064] In the above embodiments, the descriptions of each embodiment have their own emphases. For the parts not detailed in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.
[0065] The above is the description of the technical solution provided by the present invention. For those skilled in the art, according to the idea of the embodiments of the present invention, there will be changes in the specific implementation manners and application scopes. In summary, the content of this specification should not be construed as a limitation to the present invention.
Claims
1. A storage component for use in conjunction with an atomizing component, characterized in that, The storage component defines a storage cavity for accommodating a liquid aerosol-forming matrix, and the storage component includes a conveying member in contact with the aerosol-forming matrix, the conveying member having a first portion in contact with the aerosol-forming matrix in the storage cavity and a second portion located outside the storage cavity, the second portion being used to contact and cooperate with a mating portion of the atomization component to transfer the aerosol-forming matrix to the atomization component.
2. The storage component according to claim 1, wherein The storage assembly comprises a storage member and a support member, a storage cavity is enclosed between the storage member and the support member, and the support member is provided with a liquid hole communicating with the storage cavity; The first part of the transmission member is disposed in the liquid passage hole, and the second part is located outside the liquid passage hole.
3. The storage component according to claim 2, characterized in that, The storage component is provided with a limiting portion in the storage cavity near the liquid passage hole, and the limiting portion is used to limit the transmission member from moving toward the storage cavity when it contacts and cooperates with the atomization component.
4. The storage component according to claim 2, wherein, The support member is further provided with a sealing portion on a side away from the storage cavity. The sealing portion surrounds the circumference of the liquid hole and wraps around the first portion. The second portion protrudes from a side of the sealing portion away from the storage cavity.
5. The storage component according to claim 2, wherein, The support member is also provided with a first mounting groove, and the first mounting groove is used to accommodate part of the atomization assembly, and the rest of the atomization assembly is located outside the first mounting groove.
6. The storage component according to claim 2, characterized in that, The storage element also defines an air outlet passage, the storage cavity is arranged around the air outlet passage, one end of the air outlet passage is an inlet end for communicating with the atomization passage of the atomization assembly, and the other end of the air outlet passage is a nozzle end for a user to inhale.
7. An atomization component for use in conjunction with the storage component according to any one of claims 1-6, characterized in that, The atomization assembly includes a porous body and a heating body in liquid communication with the porous body, wherein the porous body is provided with a matching portion, and the matching portion is used for contacting and matching with the second part of the conveying member of the storage assembly.
8. The atomizer assembly according to claim 7, characterized in that: The atomizer assembly further comprises a shell and a bottom cover; a receiving cavity is enclosed between the shell and the bottom cover, and the shell is used to be assembled in the first mounting groove of the storage assembly; The porous body and the heating element are both arranged in the accommodating cavity; The housing, the bottom cover and the heating element define at least a portion of an atomization channel, one end of the atomization channel passes through the housing to form an outlet end, and the other end of the atomization channel passes through the bottom cover to form an inlet end; The shell is also provided with a through hole corresponding to and communicating with the matching portion, and the second portion protrudes from a side of the through hole away from the storage cavity and contacts with the matching portion.
9. An electronic atomization device, characterized in that, It comprises a storage component as described in any one of claims 1 to 6 and an atomization component as described in any one of claims 7 to 8, wherein the electronic atomization device further comprises a power supply component, the power supply component has a accommodating space, and at least part of the storage component and the atomization component are located in the accommodating space.
10. The electronic atomization device according to claim 9, wherein, The accommodating space includes a second mounting groove formed in the power supply assembly for accommodating the storage assembly, and a third mounting groove for accommodating a portion of the atomization assembly located outside the storage assembly.