Atomizer of atomization device and atomization device
By designing the structure of the liquid storage container and nozzle assembly in the nebulizer, dynamic liquid replenishment of the nebulizer was achieved, solving the problem of insufficient nebulizer capacity, expanding the capacity of the nebulizer, and maintaining the sensitivity of suction detection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2026-03-24
AI Technical Summary
The limited capacity of atomizers makes it difficult to meet users' demand for high-capacity atomizing devices.
An atomizer for an atomizing device is designed, including a liquid storage container, a nozzle assembly, and an atomizing module. The liquid storage container is installed with its outlet facing downward in the mounting groove. It is connected to the airflow switch through the first sensing air channel of the nozzle assembly to achieve dynamic liquid replenishment, expand the capacity of the atomizing device, and does not affect the suction detection function.
By incorporating a nozzle assembly that carries a liquid storage container, the capacity of the atomizing device is expanded without affecting the suction detection function, thus improving the overall user experience of the atomizer.
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Figure CN224022905U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of electronic atomization, in particular to an atomizer of an atomization device and the atomization device. BACKGROUND
[0002] The atomization device is an electronic device that heats and atomizes an atomization substrate to generate aerosol. In a refillable atomization device, the atomizer and the power assembly of the atomization device are detachably connected to facilitate users to freely replace the atomizer or the power assembly.
[0003] In the refillable atomization device, the capacity of the atomizer is limited, which is difficult to meet the demand of users for large-capacity atomization devices. CONTENT OF THE UTILITY MODEL
[0004] The present application provides an atomizer of an atomization device and the atomization device, which can solve the problem of limited capacity of the atomizer.
[0005] In order to solve the above technical problems, the present application provides an atomizer of an atomization device, which comprises a liquid storage container, a suction nozzle assembly and an atomization module. The liquid storage container has a first liquid storage space and a liquid outlet communicating with the first liquid storage space; the suction nozzle assembly is internally provided with mutually isolated mounting grooves, an air outlet channel and a first sensing air channel, the air outlet channel and the first sensing air channel respectively penetrating through both ends of the length direction of the suction nozzle assembly, the liquid outlet of the liquid storage container is downwardly mounted in the mounting groove, and the first sensing air channel is used for communication to an air flow switch; the atomization module comprises an oil tank and an atomization assembly arranged in the oil tank, a second liquid storage space communicating with the atomization assembly is defined between the oil tank and the atomization assembly, the oil tank is detachably connected with the suction nozzle assembly, and the liquid outlet of the liquid storage container communicates with the second liquid storage space.
[0006] In an embodiment, the suction nozzle assembly comprises a shell, a sealing assembly and an air channel pipe, the shell comprises a suction nozzle part and an assembly part arranged transversely and side by side, the assembly part is provided with a mounting groove, at least part of the sealing assembly and the air channel pipe are arranged in the suction nozzle part, the first sensing air channel is defined in the sealing assembly, and the air outlet channel is defined in the air channel pipe.
[0007] In an embodiment, the sealing assembly comprises a first sealing member and a second sealing member, the first sealing member is internally provided with a first sub-air channel, the second sealing member is internally provided with a second sub-air channel, both ends of the second sub-air channel respectively communicate with the first sub-air channel and the air flow switch; the first sub-air channel and the second sub-air channel are butt-jointed to form the first sensing air channel.
[0008] In an embodiment, the suction nozzle assembly further comprises a liquid suction member, the sealing assembly and the shell define an assembly cavity isolated from the first sensing air channel, both ends of the length direction of the sealing assembly are respectively provided with a first air outlet hole and a second air outlet hole, the liquid suction member is arranged in the assembly cavity, and a through hole communicating the first air outlet hole and the second air outlet hole is formed in the interior of the liquid suction member.
[0009] In an embodiment, the airway tube is arranged in the through hole, and a gap is formed between the upper end of the airway tube and the sealing assembly, and the liquid suction member is arranged around the gap.
[0010] In an embodiment, the sealing assembly has a first boss and a second boss arranged side by side at one end of the oil tank, and the first boss and the second boss are both used for plugging the oil tank, the first boss is provided with a first opening hole communicating with the first sensing airway, the second boss is provided with a second opening hole and a third opening hole, the second opening hole communicates with the air outlet channel and the atomization assembly, and the third opening hole is close to the outer periphery of the liquid outlet and communicates the liquid outlet of the liquid storage container with the second liquid storage space.
[0011] In an embodiment, the shell further comprises a suction part arranged at the end of the suction nozzle part away from the oil tank, and the suction part is provided with a third air outlet hole and a fourth air outlet hole which are not communicated with each other, the third air outlet hole communicates with the first sensing airway, and the fourth air outlet hole communicates with the air outlet channel.
[0012] In an embodiment, the oil tank is provided with a second sensing airway, and the atomization assembly is provided with an airflow channel, the airflow channel communicates with the air outlet channel and the external atmosphere, one end of the second sensing airway communicates with the first sensing airway, and the other end of the second sensing airway is used for communicating with the airflow switch.
[0013] In an embodiment, the second sensing airway comprises a buffer cavity, the buffer cavity has an air inlet and an air outlet, the air outlet is butt-jointed with the air inlet end of the first sensing airway, and the air inlet is used for communicating with the airflow sensor; the air inlet and the air inlet end of the first sensing airway are arranged in a first direction, and the first direction is perpendicular to the extension direction of the first sensing airway.
[0014] In an embodiment, the atomization module further comprises a liquid storage member arranged in the second liquid storage space, one end of the liquid storage member extends to below the liquid outlet, and the other end of the liquid storage member extends to the atomization assembly and is in fluid contact with the atomization assembly.
[0015] To solve the above technical problems, the application provides a kind of atomization device, and the atomization device includes the atomizer of the atomization device and power supply assembly, the atomizer of the atomization device and power supply assembly are detachably connected, and the atomizer of the atomization device is any one of the above-mentioned atomizers.
[0016] The atomizer of the atomization device provided in the application has a liquid storage container, an atomization module and a suction nozzle assembly. The suction nozzle assembly is provided with a mounting groove, and the liquid storage container is mounted in the mounting groove downward. The liquid outlet of the liquid storage container is communicated with the second liquid storage space of the atomization module. Therefore, the liquid storage container can supplement the liquid to the atomization module. Therefore, the suction nozzle assembly carrying the liquid storage container is arranged, the first sensing air channel of the suction nozzle assembly can be communicated with the air flow switch, the capacity of the atomization device can be expanded by the liquid storage container of the suction nozzle assembly, and the suction detection function is not affected after the suction nozzle assembly is mounted behind the oil tank. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 The structural schematic diagram of the atomizer and the power supply assembly provided in an embodiment of the application is shown.
[0018] Figure 2 The sectional view of the atomizer and the power supply assembly provided in an embodiment of the application is shown.
[0019] Figure 3 The sectional view of the atomizer provided in an embodiment of the application is shown.
[0020] Figure 4 The structural schematic diagram of the liquid storage container, the suction nozzle assembly and the atomization module provided in an embodiment of the application is shown.
[0021] Figure 5 The structural schematic diagram of the liquid storage container provided in an embodiment of the application is shown.
[0022] Figure 6 The structural schematic diagram of the suction nozzle assembly provided in an embodiment of the application is shown.
[0023] Figure 7 The exploded view of the suction nozzle assembly provided in an embodiment of the application is shown.
[0024] Figure 8 The structural schematic diagram of the first sealing member and the second sealing member provided in an embodiment of the application is shown.
[0025] Figure 9 The structural schematic diagram of the suction nozzle assembly provided in another embodiment of the application is shown.
[0026] Figure 10 The exploded view of the atomization module provided in an embodiment of the application is shown.
[0027] Figure 11 The structural schematic diagram of the atomization module provided in an embodiment of the application is shown.
[0028] 10, atomizer; 11, liquid storage container; 111, first liquid storage space; 112, liquid outlet; 113, first clamping structure; 114, blocking piece; 12, mouthpiece assembly; 121, mounting groove; 1211, second clamping structure; 122, air outlet channel; 123, first sensing air passage; 124, housing; 1241, mouthpiece part; 1242, assembly part; 1243, suction part; 12431, third air outlet hole; 12432, fourth air outlet hole; 1244, protrusion; 125, sealing assembly; 1251, first sealing piece; 12511, first sub-air passage; 12512, first main body part; 12513, first air passage part; 1252, second sealing piece; 12521, second sub-air passage; 12522, second main body part; 12523, second air passage part; 1253, first air outlet hole; 1254, second air outlet hole; 1255, pressure relief groove; 1256, first boss; 12561, first opening; 1257, second boss; 12571, second opening; 12572, third opening; 1258, assembly cavity; 126, air passage tube; 127, liquid suction piece; 1271, through hole; 13, atomization module; 131, oil tank; 1311, second sensing air passage; 1312, buffer cavity; 1313, air inlet; 1314, air outlet; 1315, air inlet column; 1316, first butt joint hole; 1317, second butt joint hole; 1318, third butt joint hole; 132, atomization assembly; 1321, air flow channel; 1322, mounting tube; 1323, atomization core; 133, second liquid storage space; 134, liquid storage piece; 20, power supply assembly; 21, shell; 211, mounting cavity; 22, support; 23, air flow switch. DETAILED DESCRIPTION
[0029] The application will be further described in details through specific embodiments in conjunction with the accompanying drawings. Similar elements in different embodiments are represented by similar reference symbols. In the following embodiments, many details are described in order to make the application better understood. However, one skilled in the art can easily recognize that some features can be omitted in different cases, or can be replaced by other elements, materials, methods. In some cases, some operations related to the application are not shown or described in the specification, in order to avoid the core part of the application being overwhelmed by too much description, and it is not necessary for one skilled in the art to describe these related operations in detail according to the description in the specification and the general technical knowledge in the art.
[0030] In addition, features described in the specification, operations or characteristics can be combined in any appropriate manner to form various embodiments. Meanwhile, the steps or actions in the method description can also be sequentially changed or adjusted in a manner that can be apparent to those skilled in the art. Therefore, the various sequences in the specification and the drawings are only for the purpose of clearly describing a certain embodiment, and do not mean that the sequence is necessary, unless otherwise stated that a certain sequence must be followed.
[0031] The serial numbers of the components in this paper, such as "first", "second", etc., are only used to distinguish the described objects, and do not have any order or technical meaning. The "connection" and "coupling" in this application include direct and indirect connections (couplings) unless otherwise specified.
[0032] The terms "parallel", "perpendicular" and the like are defined in relation to the current process level, not the absolute strict definition in the mathematical sense, and a small amount of deviation is allowed, and approximate parallel, approximate perpendicular, etc. can be used. For example, A is parallel to B, which means that A and B are parallel or approximately parallel, and the included angle between A and B is between 0° and 10°. For example, A is perpendicular to B, which means that A and B are perpendicular or approximately perpendicular, and the included angle between A and B is between 80° and 100°. The orientation terms mentioned in the embodiments of the application, such as "upper", "inner", "outer", "side" and the like, are only with reference to the actual use orientation of the product. Therefore, the orientation terms used are for better and clearer description and understanding of the embodiments of the application, and are not intended to indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the embodiments of the application.
[0033] Please refer to Figure 1 and Figure 2 The present application provides an atomization device, which comprises an atomizer 10 (referred to as atomizer 10 for short) of the atomization device and a power supply assembly 20, wherein the atomizer 10 and the power supply assembly 20 are detachably connected. The detachable connection between the atomizer 10 and the power supply assembly 20 can be, but is not limited to, plug-in connection, clamping connection, magnetic attraction connection, etc. In Figure 1 and Figure 2 In the embodiments of the present application, the power supply assembly 20 comprises a shell 21 and a bracket 22, the shell 21 forms a slot inside, the upper end of the slot has an opening, the bracket 22 can be assembled in the slot away from the opening, and the slot forms a mounting cavity 211 of the atomizer 10 at the position close to the opening. The atomizer 10 can be mounted in the mounting cavity 211 of the atomizer 10 through the opening and be connected with the bracket 22.
[0034] The power assembly 20 can further include a battery, a circuit board and other electronic components. After the atomizer 10 is connected to the power assembly 20, the battery can supply power to the atomizer 10, and the control circuit on the circuit board can control the atomizer 10. The battery, the circuit board and other electronic components can be mounted on the bracket 22.
[0035] Please refer to Figures 2-4 , the atomizer 10 includes a liquid storage container 11, a mouthpiece assembly 12 and an atomization module 13. As shown in Figure 3 and Figure 5 , the liquid storage container 11 is used to supply liquid to the atomization module 13. Although the atomization module 13 can also store a certain amount of atomization substrate, the capacity of the stored atomization substrate is limited and cannot meet the user's demand for a large-capacity atomizer 10. Therefore, the liquid storage container 11 can be used to dynamically supply liquid to the atomization module 13 to increase the overall capacity of the atomization substrate of the atomizer 10. The liquid storage container 11 has a first liquid storage space 111 and a liquid outlet 112 communicating with the first liquid storage space 111. The first liquid storage space 111 is used to store liquid atomization substrate, and the atomization substrate can generate aerosol after being atomized by the atomization module 13.
[0036] As shown in Figure 2 and Figure 6 , the mouthpiece assembly 12 is provided with a mounting groove 121, an air outlet channel 122 and a first sensing air passage 123 which are isolated from each other. The air outlet channel 122 and the first sensing air passage 123 respectively pass through both ends of the length direction of the mouthpiece assembly 12. The liquid outlet 112 of the liquid storage container 11 is mounted downwardly in the mounting groove 121, so that after the liquid outlet 112 of the liquid storage container 11 is communicated to the atomization module 13, the atomization substrate in the first liquid storage space 111 can automatically supply liquid to the atomization module 13 under the action of gravity.
[0037] In an embodiment, the liquid storage container 11 and the mounting groove 121 can be detachably connected, so that after the atomization substrate in the liquid storage container 11 is consumed, the liquid storage container 11 can be detached from the mounting groove 121 for replacement, thereby improving the overall reusability of the atomizer 10. The detachable connection between the liquid storage container 11 and the mounting groove 121 can be a clamping connection or a magnetic attraction connection, etc. For example, in the embodiments of Figure 5 and Figure 6 , a first clamping structure 113 is arranged on the outer wall of the liquid storage container 11, and a second clamping structure 1211 is arranged on the inner wall of the mounting groove 121. The first clamping structure 113 is clamped with the second clamping structure 1211.
[0038] In an embodiment, as shown in Figure 3 , Figure 5 and Figure 6As shown, the slot direction of the mounting groove 121 is upward, the number of the first clamping structures 113 is two, and the two first clamping structures 113 are spaced apart along the longitudinal direction. The second clamping structure 1211 is used to be clamped with any first clamping structure 113 to switch the sealing state and the open state of the liquid storage container 11. The liquid storage container 11 is provided with a blocking piece 114. In the sealing state, the first clamping structure 113 and the second clamping structure 1211 of the liquid storage container 11 away from the atomization module 13 are clamped, and the blocking piece 114 blocks the liquid outlet 112 in the liquid storage container 11; in the open state, the first clamping structure 113 and the second clamping structure 1211 of the liquid storage container 11 close to the atomization module 13 are clamped, and part of the structure of the atomization module 13 extends into the liquid outlet 112 to lift the blocking piece 114, so that the liquid outlet 112 of the liquid storage container 11 can supply liquid to the atomization module 13.
[0039] Through the above structure, the sealing state of the liquid storage container 11 can prevent liquid leakage during storage and transportation of the atomizer 10. When the user needs to use the liquid storage container 11 to supplement the liquid to the atomization module 13, the liquid storage container 11 can be pushed downward to be in the open state. This way of switching the two states of the liquid storage container 11 is simple, and the cooperation of the clamping structures of the liquid storage container 11 and the mounting groove 121 can make the user feel and hear the buckling when switching the two states of the liquid storage container 11, so as to prompt the user to switch the state.
[0040] As shown, Figure 2 The first sensing air channel 123 is used to communicate to the air flow switch 23. The position of the air flow switch 23 can be arranged in the mouthpiece assembly 12, the atomization module 13 or the power supply assembly 20, for example, in the embodiment of Figure 2 The position of the air flow switch 23 is arranged in the power supply assembly 20, and the first sensing air channel 123 communicates to the air flow switch 23 in the power supply assembly 20. When the user sucks at the mouthpiece assembly 12, a negative pressure can be generated in the first sensing air channel 123, and the air flow switch 23 can sense the air flow change of the first sensing air channel 123 to start the atomization device. By arranging the air outlet channel 122 and the first sensing air channel 123 which are isolated from each other in the mouthpiece assembly 12, the application can make the air outlet channel 122 and the first sensing air channel 123 not interfere with each other, effectively prevent the condensate from flowing back to the air flow switch 23, improve the sensitivity of the air flow switch 23, and reduce the risk of false start.
[0041] As shown, Figures 2-4As shown, the atomization module 13 includes an oil tank 131 and an atomization assembly 132 arranged in the oil tank 131, and a second liquid storage space 133 is defined between the oil tank 131 and the atomization assembly 132 and communicates with the atomization assembly 132. Specifically, the oil tank 131 has a groove at one end thereof facing the mouthpiece assembly 12, and the atomization assembly 132 is arranged in the groove, and the second liquid storage space 133 is defined between the atomization assembly 132 and the inner wall of the groove. The second liquid storage space 133 can store an atomization substrate, and the atomization substrate in the second liquid storage space 133 can flow to the atomization assembly 132 to be heated by the atomization assembly 132 into an aerosol.
[0042] The oil tank 131 is detachably connected to the mouthpiece assembly 12, and the detachable connection between the oil tank 131 and the mouthpiece assembly 12 can be a clamping connection, a magnetic connection, or the like. The liquid outlet 112 of the liquid storage container 11 communicates with the second liquid storage space 133, so that the liquid storage container 11 can supplement liquid to the second liquid storage space 133. The gas outlet passage 122 of the mouthpiece assembly 12 communicates with the atomization assembly 132, so that the aerosol generated by the atomization assembly 132 can flow out of the atomizer 10 through the gas outlet passage 122.
[0043] The atomizer 10 of the atomization device provided in the present application has a liquid storage container 11, an atomization module 13, and a mouthpiece assembly 12. The mouthpiece assembly 12 is provided with a mounting groove 121, and the liquid storage container 11 is mounted in the mounting groove 121 downwardly. The liquid outlet 112 of the liquid storage container 11 communicates with the second liquid storage space 133 of the atomization module 13, so that the liquid storage container 11 can supplement liquid to the atomization module 13. Therefore, the present application provides the mouthpiece assembly 12 carrying the liquid storage container 11, and the mouthpiece assembly 12 has a first sensing air channel 123 that can communicate with the air flow switch 23. The mouthpiece assembly 12 can expand the capacity of the atomization device through the liquid storage container 11, and the installation of the mouthpiece assembly 12 in the oil tank 131 does not affect the suction detection function.
[0044] In an embodiment, as shown, Figure 7 The mouthpiece assembly 12 includes a housing 124, a sealing assembly 125, and an air channel pipe 126. The housing 124 is used to be detachably connected to the oil tank 131, and the housing 124 includes a mouthpiece portion 1241 and an assembly portion 1242 arranged transversely and side by side. The assembly portion 1242 is provided with the mounting groove 121, at least part of the sealing assembly 125, and the air channel pipe 126 are arranged in the mouthpiece portion 1241. The first sensing air channel 123 is defined in the sealing assembly 125, and the gas outlet passage 122 is defined in the air channel pipe 126. Therefore, the first sensing air channel 123, the gas outlet passage 122, and the mounting groove 121 can be isolated from each other in pairs, and the housing 124 can be divided into the mouthpiece portion 1241 and the assembly portion 1242 arranged side by side, so that the assembly portion 1242 has a larger space to install a large-capacity liquid storage container 11.
[0045] Further, asFigure 7 and Figure 8 As shown in FIG. 12, the sealing assembly 125 includes a first sealing member 1251 and a second sealing member 1252, which are sequentially arranged in the longitudinal direction within the mouthpiece portion 1241. The first sealing member 1251 is provided with a first sub-air channel 12511 extending in the longitudinal direction, and the second sealing member 1252 is provided with a second sub-air channel 12521 extending in the longitudinal direction, two ends of the second sub-air channel 12521 being in communication with the first sub-air channel 12511 and the airflow switch 23 respectively, and the first sub-air channel 12511 and the second sub-air channel 12521 being in abutment to form the first sensing air channel 123. By splitting the sealing assembly 125 into the first sealing member 1251 and the second sealing member 1252, the assembly of the sealing assembly 125 with the shell 124, the liquid suction member 127 and the air channel tube 126 is facilitated.
[0046] In an embodiment, the first sealing member 1251 includes a first body portion 12512 and a first air channel portion 12513, and the second sealing member 1252 includes a second body portion 12522 and a second air channel portion 12523. The first body portion 12512 and the second body portion 12522 are both flat structures extending in the transverse direction, and the first air channel portion 12513 and the second air channel portion 12523 are both slender columnar structures extending in the longitudinal direction. The first body portion 12512 and the second body portion 12522 are oppositely arranged at intervals, the first body portion 12512 is arranged away from the atomization module 13, the second body portion 12522 is arranged close to the atomization module 13, the side of the first body portion 12512 facing the second body portion 12522 is connected with the first air channel portion 12513, the side of the second body portion 12522 facing the first body portion 12512 is connected with the second air channel portion 12523, the first air channel portion 12513 and the second air channel portion 12523 are oppositely arranged and connected, the first air channel portion 12513 is connected with the edge of the first body portion 12512 in the transverse direction, and the second air channel portion 12523 is connected with the edge of the second body portion 12522 in the transverse direction, so as to reserve more space for mounting the liquid suction member 127 between the first body portion 12512 and the second body portion 12522.
[0047] The first body portion 12512 is arranged within the mouthpiece portion 1241, the end of the second body portion 12522 connected with the second air channel portion 12523 is arranged within the mouthpiece portion 1241, and the end of the second body portion 12522 away from the second air channel portion 12523 is arranged at the bottom of the assembly portion 1242 and connected with the liquid outlet 112 of the liquid storage container 11, so as to prevent oil leakage when the liquid outlet 112 supplies liquid to the atomization module 13.
[0048] As Figure 7As shown, in an embodiment, the mouthpiece assembly 12 further comprises a liquid suction member 127, and the sealing assembly 125 and the mouthpiece portion 1241 of the shell 124 define an assembly cavity 1258 isolated from the first induction air channel 123, specifically, the first body portion 12512, the first air channel portion 12513, the second body portion 12522, the second air channel portion 12523 and the mouthpiece portion 1241 enclose the assembly cavity 1258. The sealing assembly 125 is provided with a first air outlet hole 1253 and a second air outlet hole 1254 at both ends in the length direction (longitudinal direction), specifically, the first body portion 12512 is provided with the first air outlet hole 1253, and the second body portion 12522 is provided with the second air outlet hole 1254, both the first air outlet hole 1253 and the second air outlet hole 1254 are arranged opposite to the assembly cavity 1258, preferably, the first air outlet hole 1253 and the second air outlet hole 1254 are arranged opposite in the longitudinal direction. The liquid suction member 127 is arranged in the assembly cavity 1258, and a through hole 1271 is formed in the liquid suction member 127, both ends of the through hole 1271 are communicated with the first air outlet hole 1253 and the second air outlet hole 1254, and the second air outlet hole 1254 is communicated with the atomization assembly 132. By arranging the liquid suction member 127 in the assembly cavity 1258, the liquid suction member 127 can absorb the condensed liquid, prevent the condensed liquid from being generated in the aerosol outlet channel 122, and by limiting the assembly cavity 1258 of the liquid suction member 127 by the sealing assembly 125 and the shell 124, the sealing of the space where the liquid suction member 127 is arranged can be ensured.
[0049] Further, as shown in FIG. 1, Figure 2 The air channel pipe 126 is arranged in the through hole 1271, and the upper end of the air channel pipe 126 has a gap with the sealing assembly 125, and the liquid suction member 127 is arranged around the gap, so that the condensed liquid in the aerosol outlet channel 122 can be absorbed by the liquid suction member 127 through the gap, and the condensed liquid is prevented from flowing out of the aerosol outlet channel 122.
[0050] In an embodiment, as shown in FIG. 1, Figure 2 and Figure 7 The sealing assembly 125 is provided with a pressure relief groove 1255 on the side of the second air outlet hole 1254, the liquid suction member 127 is arranged above the pressure relief groove 1255, and the pressure relief groove 1255 is communicated with the assembly cavity 1258 and the second air outlet hole 1254 to balance the air pressure between the assembly cavity 1258 and the second air outlet hole 1254, so that the liquid suction member 127 can smoothly absorb the condensed liquid.
[0051] In an embodiment, as shown in FIG. 1, Figure 9As shown, the sealing assembly 125 has a first boss 1256 and a second boss 1257 arranged side by side at one end of the oil reservoir 131, and specifically, the first boss 1256 and the second boss 1257 are arranged on the second body part 12522 of the second sealing member 1252. The first boss 1256 and the second boss 1257 are both used for plugging with the oil reservoir 131, and the second boss 1257 can be plugged into a groove of the oil reservoir 131, and the first boss 1256 is plugged into the second sensing air channel 1311 of the oil reservoir 131.
[0052] The first boss 1256 is provided with a first opening hole 12561 communicating with the first sensing air channel 123, and the first opening hole 12561 is used for communicating with the second sensing air channel 1311 of the atomization module, and the second sensing air channel 1311 is used for communicating with the air flow switch 23 which can be arranged in the atomization module or the power assembly 20. The second boss 1257 is provided with a second opening hole 12571 and a third opening hole 12572, the second opening hole 12571 communicates the air outlet channel 122 and the atomization assembly 132, and the third opening hole 12572 is in close contact with the outer periphery of the liquid outlet 112 and communicates the liquid outlet 112 of the liquid storage container 11 and the second liquid storage space 133. That is, the liquid outlet 113 of the liquid storage container 11 can be interference fit with the third opening hole 12572 of the second sealing member 1252 to assist in fixing the liquid storage container 11, that is, the fixing of the liquid storage container 11 can be at least one of the clamping and fixing with the mounting groove 1211 and the interference fit fixing with the second sealing member 1252.
[0053] By arranging the first boss 1256 and the second boss 1257 on the sealing assembly 125, the sealing assembly 125 can communicate the various channels of the suction nozzle assembly 12 with the various channels of the atomization module 13, and ensure the sealed connection between the suction nozzle assembly 12 and the atomization module 13 and ensure the damping connection between the suction nozzle assembly 12 and the atomization module 13 to prevent the loosening of the connection between the two.
[0054] In an embodiment, as shown in Figure 2 and Figure 7 As shown, the shell 124 further includes a suction part 1243 arranged at the end of the suction nozzle part 1241 away from the oil reservoir 131, and the suction part 1243 is provided with a third air outlet hole 12431 and a fourth air outlet hole 12432 which are not communicated with each other, the third air outlet hole 12431 communicates with the first sensing air channel 123, and the fourth air outlet hole 12432 communicates with the air outlet channel 122. The suction part 1243 is in abutment with the upper end of the first sealing member 1251 of the sealing assembly 125, so as to isolate the third air outlet hole 12431 and the fourth air outlet hole 12432, and make the third air outlet hole 12431 communicate with the first sensing air channel 123 and the fourth air outlet hole 12432 communicate with the first air outlet hole 1253.
[0055] In an embodiment, as shown in Figure 7 The outer side wall of the shell 124 is provided with a protrusion 1244, which is used to abut against the inner wall of the outer shell 21 of the power assembly 20 to ensure that the atomizer 10 is damped after being installed in the outer shell 21, so that the atomizer 10 cannot fall out of the outer shell 21.
[0056] As shown in Figures 2-4 In an embodiment, the oil tank 131 is provided with a second induction air channel 1311, and the atomization assembly 132 is provided with an air flow channel 1321, which is connected to the air outlet channel 122 and the external atmosphere. Further, the power assembly 20 can have an air inlet channel, and the air flow channel 1321 can be connected to the air inlet channel. One end of the second induction air channel 1311 is connected to the first induction air channel 123, and the other end of the second induction air channel 1311 is connected to the air flow switch 23. The air flow switch 23 can be arranged in the atomization module 13 or the power assembly 20.
[0057] Further, as shown in Figure 2 The second induction air channel 1311 includes a buffer cavity 1312, which has an air inlet 1313 and an air outlet 1314. The air outlet 1314 is connected to the air inlet end of the first induction air channel 123. Specifically, the first boss 1256 of the sealing assembly 125 is inserted into the air outlet 1314 of the buffer cavity 1312, so that the air outlet 1314 of the buffer cavity 1312 is connected to the first induction air channel 123 through the first opening 12561. The air inlet 1313 is connected to the air flow switch 23. The air inlet 1313 and the air inlet end of the first induction air channel 123 are arranged in a first direction, which is perpendicular to the extension direction of the first induction air channel 123. Generally, the extension direction of the first induction air channel 123 is longitudinal, and the first direction is transverse. Therefore, if condensate is generated in the first induction air channel 123, the condensate will flow along the first induction air channel 123 to the buffer cavity 1312 and be collected in the buffer cavity 1312, rather than directly flowing to the air inlet 1313 of the buffer cavity 1312, preventing the condensate from directly flowing to the air flow switch 23.
[0058] In an embodiment, the air inlet column 1315 is protruded from the cavity wall of the buffer cavity 1312 away from the first induction air channel 123, and the air outlet end of the air inlet column 1315 is the air inlet 1313. Therefore, the buffer cavity 1312 outside the air inlet column 1315 can have a space with a certain height to collect condensate, further reducing the possibility of condensate flowing to the air flow switch 23.
[0059] In an embodiment, the atomization module 13 further includes a liquid storage member 134 arranged in the second liquid storage space 133. One end of the liquid storage member 134 extends below the liquid outlet 112, and the other end extends to the atomization assembly 132 and is in fluid contact with the atomization assembly 132.
[0060] like Figure 10 As shown, in one embodiment, the atomizing component 132 includes an mounting tube 1322 and an atomizing core 1323. The atomizing module 13 also includes a liquid storage component 134, which is disposed within the second liquid storage space 133 and surrounds the outer periphery of the atomizing component 132. The mounting tube 1322 connects the liquid outlet 112 of the liquid storage container 11 and the liquid storage component 134, so that the atomizing matrix of the liquid outlet 112 can flow to the liquid storage component 134 via the mounting tube 1322. The liquid storage component 134 is in fluid communication with the atomizing core 1323, so that the atomizing matrix of the liquid storage component 134 can flow to the atomizing core 1323. The atomizing core 1323 can be horizontally or vertically positioned. The atomizing core 1323 has an airflow channel 1321, and the two ends of the airflow channel 1321 are respectively connected to the air outlet channel 122 of the mouthpiece assembly 12 and the air inlet channel of the power supply assembly 20.
[0061] Furthermore, such as Figure 11 As shown, the oil tank 131 of the atomizing module 13, at the end away from the mouthpiece assembly 12, is provided with a first docking hole 1316, a second docking hole 1317, and a third docking hole 1318 for docking with the power supply assembly 20. The first docking hole 1316 communicates with the second sensing air passage 1311 and is used to connect to the airflow switch 23 of the power supply assembly 20. The second docking hole 1317 communicates with the airflow channel 1321 of the atomizing core 1323 and is used to connect to the air intake channel of the power supply assembly 20. The third docking hole 1318 is used for the electrode of the power supply assembly 20 to be inserted. The electrode of the atomizing core 1323 can be disposed on the hole wall of the third docking hole 1318 so that when the electrode of the power supply assembly 20 is inserted into the third docking hole 1318, it can be electrically connected to the electrode of the atomizing core 1323, so that the power supply assembly 20 can supply power to the atomizing assembly 132.
[0062] The above examples illustrate this application only to aid understanding and are not intended to limit its scope. Those skilled in the art to which this application pertains can make various simple deductions, modifications, or substitutions based on the ideas presented.
Claims
1. An atomizer for an atomizing device, characterized in that, include: A liquid storage container having a first liquid storage space and a liquid outlet communicating with the first liquid storage space; The nozzle assembly has a mutually isolated mounting groove, an air outlet channel, and a first sensing air channel. The air outlet channel and the first sensing air channel pass through both ends of the length direction of the nozzle assembly. The liquid storage container is installed in the mounting groove with the liquid outlet facing downwards. The first sensing air channel is used to connect to the airflow switch. The atomizing module includes an oil tank and an atomizing component disposed within the oil tank. A second liquid storage space is defined between the oil tank and the atomizing component, which communicates with the atomizing component. The oil tank is detachably connected to the mouthpiece assembly, and the outlet of the liquid storage container communicates with the second liquid storage space.
2. The atomizer of the atomizing device according to claim 1, characterized in that, The nozzle assembly includes a housing, a sealing assembly, and an air passage tube. The housing includes a nozzle portion and an assembly portion arranged side by side in the same direction. The assembly portion is provided with the mounting groove. At least a portion of the sealing assembly and the air passage tube are disposed within the nozzle portion. The sealing assembly defines the first sensing air passage, and the air passage tube defines the air outlet passage.
3. The atomizer of the atomizing device according to claim 2, characterized in that, The sealing assembly includes a first sealing element and a second sealing element. The first sealing element has a first sub-air passage, and the second sealing element has a second sub-air passage. The two ends of the second sub-air passage are respectively connected to the first sub-air passage and the airflow switch. The first sub-air passage and the second sub-air passage are connected to form the first sensing air passage.
4. The atomizer of the atomizing device according to claim 2, characterized in that, The suction nozzle assembly further includes a liquid suction element. The sealing assembly and the housing define an assembly cavity that is isolated from the first sensing air passage. The sealing assembly has a first air outlet and a second air outlet at its two ends along its length. The liquid suction element is disposed in the assembly cavity, and a through hole is formed inside the liquid suction element to connect the first air outlet and the second air outlet.
5. The atomizer of the atomizing device according to claim 4, characterized in that, The airway tube is disposed within the through hole, and there is a gap between the upper end of the airway tube and the sealing assembly. The liquid suction element is disposed around the gap.
6. The atomizer of the atomizing device according to claim 2, characterized in that, The sealing assembly has a first protrusion and a second protrusion arranged side by side at one end facing the oil tank. Both the first protrusion and the second protrusion are used to insert into the oil tank. The first protrusion has a first opening that connects to the first sensing air passage. The second protrusion has a second opening and a third opening. The second opening connects to the air outlet passage and the atomizing assembly. The third opening is close to the outer periphery of the liquid outlet and connects to the liquid outlet of the liquid storage container and the second liquid storage space.
7. The atomizer of the atomizing device according to claim 2, characterized in that, The housing also includes a suction part, which is located at the end of the nozzle part away from the oil tank. The suction part has a third air outlet and a fourth air outlet that are not connected to each other. The third air outlet is connected to the first sensing air channel, and the fourth air outlet is connected to the air outlet channel.
8. The atomizer of the atomizing device according to any one of claims 1-7, characterized in that, The oil tank is provided with a second sensing air channel, and the atomizing component is provided with an airflow channel. The airflow channel is connected to the air outlet channel and the outside atmosphere. One end of the second sensing air channel is connected to the first sensing air channel, and the other end of the second sensing air channel is used to connect to the airflow switch.
9. The atomizer of the atomizing device according to claim 8, characterized in that, The second sensing airway includes a buffer chamber, which has an air inlet and an air outlet. The air outlet is connected to the air inlet of the first sensing airway, and the air inlet is used to connect to the airflow sensor. The air inlet and the air inlet of the first sensing airway are offset in a first direction, which is perpendicular to the extension direction of the first sensing airway.
10. The atomizer of the atomizing device according to any one of claims 1-7, characterized in that, The atomizing module also includes a liquid storage component disposed in the second liquid storage space. One end of the liquid storage component extends to the bottom of the liquid outlet, and the other end extends to the atomizing component and is in fluid contact with the atomizing component.
11. An atomizing device, characterized in that, The device includes an atomizer and a power supply assembly, wherein the atomizer and the power supply assembly are detachably connected, and the atomizer is the atomizer of the atomizer as described in any one of claims 1-10.