WO2026011815A1 - 气溶胶生成装置 - Google Patents
气溶胶生成装置Info
- Publication number
- WO2026011815A1 WO2026011815A1 PCT/CN2025/081831 CN2025081831W WO2026011815A1 WO 2026011815 A1 WO2026011815 A1 WO 2026011815A1 CN 2025081831 W CN2025081831 W CN 2025081831W WO 2026011815 A1 WO2026011815 A1 WO 2026011815A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- module
- chamber
- hole
- docking
- aerosol generating
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/10—Devices using liquid inhalable precursors
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/40—Constructional details, e.g. connection of cartridges and battery parts
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/40—Constructional details, e.g. connection of cartridges and battery parts
- A24F40/42—Cartridges or containers for inhalable precursors
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/85—Maintenance, e.g. cleaning
Definitions
- This application relates to the field of aerosol generation technology, and in particular to an aerosol generation device.
- an aerosol generating device is a device capable of atomizing liquid formulations to form aerosols.
- an aerosol generating device includes an atomizer, a spare reservoir, and a power supply component.
- the spare reservoir is connected to the atomizer via a liquid circuit to replenish the liquid matrix in the atomizer's reservoir.
- the power supply component is electrically connected to the atomizer to provide power for atomizing the liquid matrix.
- the spare reservoir is detachably connected to the atomizer so that it can be replaced after the liquid matrix in the spare reservoir is depleted.
- the atomizing coils in existing atomizers which are used to atomize liquid substrates, have a limited atomization capacity.
- the sum of the liquid substrate reserves in the spare tank and the liquid substrate reserves in the atomizer is basically the upper limit of the atomizing coil's atomization capacity.
- the atomizing coil's lifespan is not long enough to support it in continuing to atomize the liquid substrate in the new spare tank to achieve the desired effect. This not only results in waste after replacing the spare tank, but also leads to a decrease in the user experience.
- the purpose of this application is to provide an aerosol generating device that allows the first module and the second module to operate independently, and also allows the first module with the atomizing core to be detached from the third module when the second module is replaced, so that the second module can be replaced simultaneously, thereby providing an aerosol generating device that meets user expectations during repeated use.
- At least one embodiment of this application provides an aerosol generating apparatus, which includes:
- the first module includes a first chamber for storing a liquid matrix and an atomizing core for atomizing the liquid matrix to generate an aerosol.
- the first chamber is in fluid communication with the atomizing core.
- the first module has a first end and a second end that are disposed opposite to each other.
- the second module has a second chamber for storing a liquid matrix.
- the second module is independent of the first module and can be connected to a first end of the first module. When the second module is connected to the first module, a fluid channel can be established between them to replenish the liquid matrix from the second chamber to the first chamber.
- a third module is detachably connected to the second end of the first module.
- the third module includes a power source, which is used to establish a power supply path between the third module and the atomizing core when the third module is connected to the first module.
- the second module is configured to provide user operation to establish a connection with the first module, and to enable the first module to detach from the third module.
- the second module cannot be disassembled from the first module after the connection is established.
- connection between the second module and the first module is detachable; wherein
- the method of disassembling the second module after it is connected to the first module is different from the method of disassembling the third module after it is connected to the first module;
- the disassembly force of the second module after it is connected to the first module is greater than the disassembly force of the third module after it is connected to the first module.
- the third module also includes a housing that is open at the proximal end, the housing having an internal receiving cavity disposed adjacent to the proximal end of the housing;
- the first module is removably held in the receiving cavity, and a portion of the second module is removably held in the receiving cavity, with a portion exposed outside the housing for user operation.
- the aerosol generating apparatus further includes a fourth module configured to be partially housed within the receiving cavity and to expose a first end of the first module upon removal from the receiving cavity.
- the second module is configured to move relative to the first module between a first position and a second position
- the fluid channel is disconnected when the second module is in the first position and connected when the second module is in the second position.
- the first module includes a first docking component
- the second module includes a second docking component, wherein the first docking component and the second docking component remain connected as the second module moves between the first position and the second position;
- the interference force between the first docking component and the second docking component is less than the interference force between the first module and the third module, such that when the second module moves between the first position and the second position, the first module and the third module remain relatively stationary.
- the interference force between the first docking component and the second docking component is greater than the gravity of the second module, so that the second module can be held in the first position.
- the second module includes a flow guide column facing away from the second chamber, and the fluid channel includes a first flow guide hole formed on the side wall of the flow guide column and a second flow guide hole disposed inside the flow guide column and in fluid communication with the second chamber.
- the first module includes a flexible plug, on which a first mating hole is formed;
- the first convex ring is present on either the wall of the first docking hole or the outer wall of the guide column.
- the first flow guide hole and the first chamber are located on opposite sides of the first convex ring, and the first convex ring provides a sealing connection between the flexible plug and the flow guide post.
- a portion of the flow guide post protrudes through the first docking hole and exposes the first flow guide hole outside the first docking hole.
- a second protruding ring is provided on either the wall of the first docking hole or the outer wall of the guide post.
- the second protruding ring is located between the first guide hole and the second chamber, and provides a sealing connection between the flexible plug and the guide post when the second module moves between the first position and the second position.
- the first module includes a cup body and a fibrous element disposed within the first chamber for holding a liquid matrix, the cup body defining at least a portion of the boundary of the first chamber;
- the second module includes a flow guide column, and at least one of the fluid channels includes a first flow guide hole formed on the wall of the flow guide column and a second flow guide hole disposed inside the flow guide column and in fluid communication with the second chamber;
- the first flow guide hole is located in the cup body and is spaced apart from the fiber element.
- the cup body has a second docking hole that connects to the first chamber, and the wall of the second docking hole has a protrusion.
- the first module includes a cup body that defines at least a portion of the boundary of the first chamber
- the second module includes a shell that defines at least a portion of the boundary of the second chamber
- One of the cup body and the shell is provided with a first stop edge and a second stop edge, and the other is provided with a fastening element;
- the latching member After the second module is connected to the first module, the latching member is located between the first stop edge and the second stop edge, and when the second module moves between the first position and the second position, the latching member moves between the first stop edge and the second stop edge;
- the second module is configured to disengage from the third module by acting on the latching member through the first stop edge.
- the first module has an air guide tube and an auxiliary air channel, the air guide tube being connected to the air guide tube of the atomizing core to guide the aerosol;
- the auxiliary airway connects the first chamber and the air delivery tube to balance the air pressure in the first chamber and the air delivery tube.
- the second module includes a suction nozzle.
- the aerosol generating device includes a first module, a second module, and a third module.
- the first module includes a first chamber for storing a liquid matrix and an atomizing core for atomizing the liquid matrix to generate aerosol.
- the first chamber and the atomizing core are in fluid communication, and the first module has a first end and a second end disposed opposite to each other.
- the second module has a second chamber for storing a liquid matrix inside.
- the second module is independent of the first module and can be connected to the first end of the first module. When the second module and the first module are connected, a fluid channel for replenishing the liquid matrix from the second chamber to the first chamber can be established between them.
- the third module is detachably connected to the second end of the first module.
- the third module includes a power supply.
- the power supply is used to establish a power supply path between the third module and the atomizing core when the third module and the first module are connected.
- the second module is configured to provide user operation to establish a connection with the first module and to drive the first module to detach from the third module. Therefore, users can not only choose to connect the second module to the first module, but also operate the second module to detach the first module from the third module when the second module needs to be replaced, so that the first module and the second module can be replaced at the same time, and the atomizing core in the first module can maintain the desired effect.
- Figure 1 is a schematic diagram of an aerosol generating apparatus provided in some embodiments of this application.
- Figure 2 is a schematic diagram of the second module driving the first module to detach from the third module together, according to some embodiments of this application;
- Figure 3 is a schematic diagram showing the separation of the first module and the second module provided in some embodiments of this application;
- FIG. 4 is a schematic diagram of the third module provided in some embodiments of this application.
- Figure 6 is a schematic diagram of the second module located in a second position according to some embodiments of this application.
- Figure 7 is a schematic diagram of the second retainer provided in some embodiments of this application.
- Figure 8 is a schematic diagram of a flexible plug provided in some embodiments of this application.
- Figure 9 is a schematic diagram of the first module provided in some embodiments of this application.
- Figure 10 is an exploded view of the first module provided in some embodiments of this application.
- Figure 11 is another cross-sectional view of an aerosol generating apparatus provided in some embodiments of this application.
- Figure 12 is a schematic diagram of the limiting element provided in some embodiments of this application.
- First module 11. Cup body; 111. First chamber; 112. Fastener; 113. Spring arm; 114. Second docking hole; 115. Protrusion; 116. Fixing hole; 117. Through hole; 118. Guide groove; 12. Atomizing core; 13. Fiber element; 131. Strip rib; 14. First docking assembly; 141. Flexible plug; 1411. First docking hole; 1412. First convex ring; 1413. Second convex ring; 1414. Notch; 1415. Tubular part; 1416. Docking hole; 142. First retainer; 15. Air guide channel; 16. First magnetic component; 17. Auxiliary air channel; 18. First electrode; 19. Air hole; 2. Second module; 21. Housing; 211. Second chamber; 212.
- first,” “second,” and “third” used in this application are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number or order of the indicated technical features. All directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationship or movement of the components in a specific orientation (as shown in the accompanying drawings). If the specific orientation changes, the directional indication will also change accordingly. Furthermore, the terms “comprising” and “having,” and any variations thereof, are intended to cover non-exclusive inclusion.
- a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or devices.
- the aerosol generating device includes a first module 1, a second module 2, and a third module 3, which are independent of each other.
- the second module 2 is assembled and connected to a first end of the first module 1
- the third module 3 is assembled and connected to a second end of the first module 1.
- the first end and the second end can be arranged opposite to each other, so that the first module 1, the second module 2, and the third module 3 can be arranged longitudinally.
- the first end and the second end can also be located on two adjacent sides of the first module 1.
- the first module 1 includes a first chamber 111 and an atomizing core 12 capable of atomizing a liquid matrix to form an aerosol, wherein the first chamber 111 and the atomizing core 12 are in fluid communication;
- the second module 2 includes a second chamber 211 having an internal storage for storing a liquid matrix, wherein after the first module 1 and the second module 2 are connected, a fluid channel is formed between the second module 2 and the first module 1 for fluid communication between the first chamber 111 and the second chamber 211;
- the third module 3 includes a power supply 31 for providing power to the atomizing core 12 for atomizing the liquid matrix.
- the liquid matrix can contain a liquid containing tobacco-based substances with volatile tobacco aroma components, or it can contain a liquid containing non-tobacco substances.
- the liquid matrix can contain water, pharmaceutical solutions, solvents, ethanol, plant extracts, fragrances, flavorings, or vitamin mixtures, etc.
- Fragrances can include areca nut extract, menthol, peppermint, spearmint oil, various fruit flavorings, etc., but are not limited to these.
- Flavorings can contain ingredients that can provide users with various fragrances or flavors.
- Vitamin mixtures can be mixtures containing at least one of vitamins A, B, C, and E, but are not limited to these.
- aerosol generating devices can be used in different fields, such as medical and electronic aerosol atomization.
- the atomizing core 12 includes a liquid-absorbing element and a heating element, the heating element being disposed on the liquid-absorbing element.
- the liquid-absorbing element can be a porous body for guiding the liquid matrix into the atomization range of the heating element.
- the heating element is used to heat the atomized aerosol matrix, thereby generating an aerosol.
- the porous body can be a fiber, such as cotton fiber, polypropylene fiber, polyester fiber, or nylon fiber.
- the porous body can be porous ceramic or porous metal; this application does not limit the structure and composition of the porous body.
- the atomizing core 12 may include an ultrasonic element capable of generating ultrasonic waves, which atomizes the liquid matrix to form an aerosol.
- the atomizing core 12 may also include other elements capable of atomizing the liquid matrix to form an aerosol.
- the first chamber 111 can store a liquid matrix, and the amount of liquid matrix stored may be less than or equal to 2 ml, but is not limited thereto; the liquid matrix in the second chamber 211 can enter the first chamber 111 to supply liquid matrix to the first chamber 111.
- the first chamber 111 is mainly used to guide the liquid matrix in the second chamber 211 to the atomizing core 12 for atomization.
- the first module 1 further includes a fiber element 13 disposed in the first chamber 111, capable of adsorbing the liquid matrix and retaining at least a portion of the adsorbed liquid matrix.
- the fiber element 13 includes, but is not limited to, one of the following materials: cotton fiber, polypropylene fiber, polyester fiber, nylon fiber, porous ceramic material, polymer fiber, or various combinations of the above materials.
- the first module 1 also includes a cup body 11, which defines at least a portion of the boundary of the first chamber 111.
- the fiber element 13 is housed within the cup body 11.
- An air-guiding channel 15 can be formed between the fiber element 13 and the cup body 11 by constructing the outer surface of the fiber element 13 or the inner wall of the cup body 11. This air-guiding channel 15 connects the two opposite ends of the fiber element 13 in the longitudinal direction. On the one hand, the air-guiding channel 15 can ensure a uniform air pressure distribution in the first chamber 111, allowing the liquid matrix in the fiber element 13 to be smoothly transported towards the atomizing core 12.
- it can provide clearance for the expanded fiber element 13, liquid matrix, and gas when the fiber element 13, the gas in the first chamber 111, and the liquid matrix expand due to heat or under the pressure difference between the inside and outside of the first chamber 111, preventing the liquid matrix from leaking out of the first chamber 111.
- the sidewall of the fiber element 13 has strip-shaped ribs 131, which abut against the inner wall of the cup body 11, thereby creating the air guiding channel 15 between the other part of the sidewall of the fiber element 13 and the inner wall of the cup body 11, or creating the air guiding channel 15 between two adjacent strip-shaped ribs 131.
- the strip-shaped ribs 131 can extend longitudinally to connect two oppositely arranged end faces of the fiber element 13.
- the first module 1 may further include an air guide tube that communicates with the atomizing core 12 for guiding the aerosol generated by the atomizing core 12 outside the first module 1.
- the air guide tube may pass through the first chamber 111, and the fiber element 13 may be arranged around the air guide tube.
- the atomizing core 12 may be disposed in the air guide tube.
- the capacity of the second chamber 211 is greater than that of the first chamber 111.
- the second chamber 211 can store a liquid matrix of less than or equal to 10 ml, but is not limited thereto.
- the liquid matrix stored in the second chamber 211 may have the same flavor as the liquid matrix stored in the first chamber 111, or it may have a different flavor.
- the second module 2 includes a housing 21 that defines at least a portion of the boundary of the second chamber 211.
- a fluid channel can be established between the second module 2 and the first module 1 to replenish the liquid matrix from the second chamber 211 to the first chamber 111.
- a power supply path is established between the power supply 31 and the atomizing core 12.
- first module 1 and the second module 2 are independent of each other, meaning that the first module 1 and the second module 2 need to be assembled together under the user's operation. Therefore, the user can choose the second module 2 connected to the first module 1.
- Different second modules 2 can be different; for example, the second chamber 211 in different second modules 2 can have different capacities, or the second chamber 211 in different second modules 2 can store liquid bases of different flavors; of course, different second modules 2 can also be completely identical.
- the third module 3 and the first module 1 are independent of each other, so that the first module 1 and the third module 3 can be assembled together under the user's operation.
- the second module 2 is configured to be operable so that it can be connected to the first module 1.
- the user can also operate the second module 2 to drive the first module 1 and detach it from the third module 3.
- the second module 2 and the first module 1 can therefore be removed and replaced together.
- the aerosol generating apparatus further includes a fourth module, wherein a first end of the first module 1 is configured to be detachably connected to the fourth module, and the first end of the first module 1 is exposed after the fourth module is removed for connection to the second module 2.
- the fourth module in the initial state of the aerosol generating device, is detachably connected to the first end of the first module 1.
- the fourth module is first removed from the first module 1, and then the second module 2 is connected to the first end in place of the fourth module.
- the fourth module When the fourth module is connected to the first module 1, it can seal the first chamber 111 to prevent the liquid matrix in the first chamber 111 from leaking through the first end.
- the second module 2 further includes a suction nozzle 22.
- the suction nozzle 22 can be integrally formed with the housing 21, or the suction nozzle 22 can be fixed on the housing 21.
- the suction nozzle 22 is used for the user's mouth to hold.
- the suction nozzle 22 has an air intake 221. The user sucks in the aerosol generated by the first module 1 by sucking in the air intake 221. Therefore, the air intake 221 is in fluid communication with the air guide tube in the first module 1.
- the fourth module when the fourth module is connected to the first module 1, it can keep the air duct clean and reduce air convection between the first module 1 and the outside, which is beneficial for preventing leakage and deterioration of the liquid matrix in the first chamber 111.
- the fourth module can also seal the air duct, thereby preventing the air pressure inside the first module 1 from being affected by the external air pressure, which helps to prevent the fiber element 13 in the first chamber 111 from expanding and prevent the liquid matrix in the first chamber 111 from leaking; for example, when the air pressure around the aerosol generating device decreases in the initial state, it can prevent the liquid matrix in the first chamber 111 from automatically flowing out.
- the second module 2 and the first module 1 are not detachable after being connected, making it impossible or difficult to separate the two modules after they are connected.
- the connection between the second module 2 and the first module 1 can also be detachable, so that the two modules can be separated from each other by appropriate operation or tools after they are connected.
- the connection between the second module 2 and the first module 1 is detachable.
- the method of detachment after the second module 2 is connected to the first module 1 differs from the method of detachment after the third module 3 is connected to the first module 1, or the detachment force after the second module 2 is connected to the first module 1 is greater than the detachment force after the third module 3 is connected to the first module 1. Therefore, during the process of the second module 2 driving the first module 1 to detach from the third module 3, the second module 2 and the first module 1 can maintain their connection.
- the fourth module is optional rather than mandatory.
- the disassembly method of the second module 2 after it is connected to the first module 1 is different from the disassembly method of the third module 3 after it is connected to the first module 1.
- the second module 2 and the first module 1 are connected by a snap-fit connection, while the third module 3 and the first module 1 are connected by a magnetic attraction connection.
- the first module 1 further includes a first magnetic component 16
- the third module 3 further includes a second magnetic component 33.
- first magnetic component 16 and the second magnetic component 33 When the first magnetic component 16 and the second magnetic component 33 are brought close together, they have a magnetic attraction force, ensuring a stable connection between the first module 1 and the third module 3.
- one of the first module 1 and the second module 2 has a first stop edge 231 and a second stop edge 232, while the other has a latching member 112.
- the latching member 112 After the second module 2 is connected to the first end of the first module 1, the latching member 112 is located between the first stop edge 231 and the second stop edge 232.
- the second module 2 is configured to drive the first module 1 to disengage from the third module 3 by the first stop edge 231 acting on the latching member 112.
- the housing 21 is provided with a latching groove 23.
- the first stop edge 231 and the second stop edge 232 are arranged opposite to each other and define part of the boundary of the latching groove 23.
- the cup body 11 is provided with a spring arm 113 and a latching member 112 provided on the spring arm 113.
- the spring arm 113 When the spring arm 113 is deformed by pressing it laterally, the latching member 112 can be disengaged from the latching groove 23. Then, when a longitudinal force is applied, the second module 2 can disengage from the first module 1.
- the first stop edge 231 and the second stop edge 232 can also be components of the cup body 11, and the buckle 112 and the spring arm 113 can therefore be components of the housing 21.
- the method of disassembling the second module 2 after it is connected to the first module 1 is different from the method of disassembling the third module 3 after it is connected to the first module 1.
- the first module 1 when the first module 1 is moved longitudinally in a direction away from the third module 3, the first module 1 can detach from the third module 3.
- the second module 2 needs to be rotated relative to the first module 1 in a preset direction to detach from the first module 1.
- the disassembly force after the second module 2 is connected to the first module 1 is greater than the disassembly force after the third module 3 is connected to the first module 1.
- connection method between the second module 2 and the first module 1 can be the same as the connection method between the third module 3 and the first module 1, and/or the disassembly direction after the second module 2 is connected to the first module 1 can be the same as the disassembly direction after the third module 3 is connected to the first module 1.
- the fluid passage between the second chamber 211 of the second module 2 and the first chamber 111 of the first module 1 can be mainly opened when the user uses the aerosol generating device, and disconnected when the user puts the aerosol generating device down.
- the second module 2 is configured to be movable relative to the first module 1 between a first position and a second position; wherein the fluid passage between the second chamber 211 and the first chamber 111 is disconnected when the second module 2 is in the first position and connected when the second module 2 is in the second position.
- the second module 2 moves longitudinally between the first position and the second position, but is not limited thereto.
- the first end of the first module 1 has a first docking component 14, and the second module has a second docking component 24.
- the interference force between the first docking component 14 and the second docking component 24 is less than the interference force between the first module 1 and the third module 3, so that when the second module 2 moves between the first position and the second position, the first module 1 and the third module 3 remain relatively stationary.
- the first module 1 and the third module 3 remain relatively stationary.
- first module 1 and the second module 2 are arranged longitudinally, and the second module 2 is located above the first module 1 longitudinally, when the first module 1 and the second module 2 are connected, the first module 1 needs to provide an upward force to overcome the gravity of the second module 2 and support the second module 2.
- the first position is located vertically above the second position.
- the interference force between the first docking component 14 and the second docking component 24 is greater than the gravity of the second module 2, so that the second module 2 can be maintained in the first position, so that the fluid channel between the second chamber 211 and the first chamber 111 remains disconnected, and prevents the fluid channel between the second chamber 211 and the first chamber 111 from automatically opening.
- At least one fluid channel is configured to provide a liquid path for the liquid matrix in the second chamber 211 to flow into the first chamber 111, wherein the liquid path is configured to disconnect when the air pressure in the second chamber 211 is lower than the air pressure in the first chamber 111; at least one fluid channel is configured to provide an air path for guiding air communication between the second chamber 211 and the first chamber 111, such that the air pressure between the second chamber 211 and the first chamber 111 is balanced, wherein the air path is disconnected when the second module 2 is in a first position and connected when the second module 2 is in a second position.
- the liquid path and the gas path can overlap at least partially, with at least partially allowing gas flow through the liquid path or at least partially allowing the liquid matrix to flow through the gas path.
- the liquid path and the gas path can also be independent of each other.
- the first docking assembly 14 includes a flexible plug 141 made of a flexible material, such as silicone.
- the flexible plug 141 has a first docking hole 1411, and the wall of the first docking hole 1411 has a first protruding ring 1412.
- the second docking assembly 24 includes a flow guide column 241. At least one fluid channel includes a first flow guide hole 2411 formed on the sidewall of the flow guide column 241 and a second flow guide hole 2412 disposed inside the flow guide column 241 and in fluid communication with the second chamber 211.
- the first flow guide hole 2411 and the first chamber 111 are located on opposite sides of the first protruding ring 1412, and the first protruding ring 1412 provides a sealing connection between the flexible plug 141 and the flow guide column 241, thus isolating the first chamber 111 from the first flow guide hole 2411, thereby disconnecting the gas path and the liquid path.
- the first guide hole 2411 extends out of the first docking hole 1411 and is located outside the first docking hole 1411, thus connecting the gas path and the liquid path.
- the wall of the first mating hole 1411 may also have a second protruding ring 1413.
- the first guide hole 2411 is located between the first protruding ring 1412 and the second protruding ring 1413, and the second protruding ring 1413 is located between the second chamber 211 and the first guide hole 2411.
- the second protruding ring 1413 provides a sealing connection between the flexible plug 141 and the guide column 241 to prevent the liquid matrix in the second chamber 211 from leaking through the first guide hole 2411.
- the first protruding ring 1412 and the second protruding ring 1413 are located on the same side of the first guide hole 2411, and the second protruding ring 1413 still provides a sealing connection between the flexible plug 141 and the guide column 241 to prevent the liquid matrix in the second chamber 211 from leaking through the first guide hole 2411.
- first convex ring 1412 and/or the second convex ring 1413 may be disposed on the outer wall of the guide column 241.
- the first docking assembly 14 further includes a first retainer 142.
- the first retainer 142 connects the flexible plug 141 and the cup body 11, with at least a portion of the flexible plug 141 located between the first retainer 142 and the cup body 11.
- the first retainer 142 serves to maintain the connection between the flexible plug 141 and the cup body 11 and to prevent longitudinal displacement of the flexible plug 141 relative to the cup body 11.
- the first retainer 142 supports the second module 2.
- the second docking assembly 24 may further include a second retainer 242 and a sealing plug 243, the sealing plug 243 being made of a flexible material, such as silicone.
- the hardness of the second retainer 242 is greater than that of the sealing plug 243.
- At least a portion of the sealing plug 243 is disposed between the housing 21 and the second retainer 242 to provide a seal between the housing 21 and the second retainer 242, and the second retainer 242 and the sealing plug 243 cooperate to seal the end of the second chamber 211 facing the first module 1.
- the flow guide 241 and the second retainer 242 may be integrally formed, or the flow guide 241 may be disposed on the second retainer 242.
- the first guide hole 2411 is located in the cup body 11 and is spaced apart from the fiber element 13 to prevent the fiber element 13 from blocking the first guide hole 2411, thereby affecting the air guiding column 241 and the air passage.
- the end of the guide column 241 can abut against the fiber element 13.
- the cup body 11 has a second docking hole 114 that connects to the first chamber 111.
- the first guide hole 2411 can be located in the second docking hole 114, and the first guide hole 2411 is spaced apart from the hole wall of the second docking hole 114, so that the first guide hole 2411 is connected to the first chamber 111 for air conduction.
- the hole wall of the second docking hole 114 may have a protrusion 115.
- the protrusion 115 abuts against the guide column 241, so that there is a gap between the hole wall of the second docking hole 114 and the guide column 241 that connects to the first chamber 111.
- the protrusion 115 can be a strip extending longitudinally. Preferably, the length of the strip-shaped protrusion 115 is less than the depth of the second docking hole 114 to reduce the resistance to the movement of the guide column 241 in the second docking hole 114. There can be multiple protrusions 115, and the multiple protrusions 115 are evenly distributed along the hole wall of the second docking hole 114, which helps to make the central axis of the guide column 241 coincide with the central axis of the second docking hole 114.
- the second docking hole 114 is set corresponding to the first docking hole 1411, and the central axis of the second docking hole 114 and the central axis of the first docking hole 1411 can coincide.
- the diameter of the second docking hole 114 is larger than the outer diameter of the guide column 241.
- the diameter of the second docking hole 114 can be larger than the diameter of the first docking hole 1411.
- the first module 1 has an auxiliary airway 17, which guides air to connect the first chamber 111 and the air guide tube, so as to balance the air pressure in the first chamber 111 and the air guide tube, thereby preventing leakage of the liquid matrix in the first chamber 111.
- the cup body 11 is provided with a fixing hole 116 and a through hole 117 for fluid communication with the first chamber 111.
- the flexible plug 141 has a tubular portion 1415 with a notch 1414 on its sidewall.
- the air guide tube communicates with the tubular portion 1415.
- At least a portion of the tubular portion 1415 is embedded in the fixing hole 116 and held in place.
- the notch 1414 on the tubular portion 1415 is a component of the auxiliary airway 17. Specifically, at least a portion of the tubular portion 1415 is embedded in the fixing hole 116 of the cup body 11 and held in place.
- the flexible plug 141 is partially disposed on the surface of the cup body 11 facing the second module 2, and a guide groove 118 is formed on the surface of the cup body 11 facing the second module 2.
- One end of the guide groove 118 is connected to the through hole 117, and the other end of the guide groove 118 extends to the connecting fixing hole 116, and then connects to the notch 1414 on the tubular part 1415.
- the guide groove 118 and the through hole 117 are also components of the auxiliary air passage 17.
- the gas in the first chamber 111 sequentially enters the tubular portion 1415 through the through hole 117, the guide groove 118, and the notch 1414, and then enters the air duct or the second module 2/fourth module.
- the air pressure in the first chamber 111 is less than the air pressure in the air duct
- the gas in the second module 2/fourth module or the air duct can first enter the tubular portion 1415, and then sequentially flow into the first chamber 111 through the notch 1414, the guide groove 118, and the through hole 117. Therefore, the air pressure balance between the first chamber 111 and the air duct can be maintained. Since the second chamber 211 is connected to the first chamber 111 by airflow, the second chamber 211 can also be basically balanced with the air pressure in the air duct when the air path is open.
- the third module 3 further includes a proximal open housing 32, with a receiving cavity 321 inside the housing 32, the receiving cavity 321 being disposed adjacent to the proximal end of the housing 32; wherein, the first module 1 is removably held in the receiving cavity 321, and a portion of the second module 2 is removably held in the receiving cavity 321, partially exposed outside the housing 32 for user operation.
- the user can separate and detach the first module 1, which is completely covered by the housing 32, from the third module 3 and remove it from the receiving cavity 321 by operating the portion of the second module 2 exposed outside the housing 32.
- the first module 1 also includes a first electrode 18 electrically connected to the atomizing core 12.
- the first electrode 18 is fixed on the bottom of the first module 1.
- the third module 3 also includes a second electrode 34 electrically connected to the power supply 31. When the first module 1 and the third module 3 are connected, the first electrode 18 abuts against the second electrode 34 and the first electrode 18 and the second electrode 34 remain electrically connected.
- a vent 19 fluidly communicating with the atomizing core 12 is provided on the bottom of the first module 1.
- An air inlet 212 of the aerosol generating device is provided on the outer casing 32, and the air inlet 212 fluidly communicates with the vent 19 of the first module 1. Outside air enters the interior of the outer casing 32 through the air inlet 212, then enters the first module 1 through the vent 19, and combines with the liquid matrix to form a mist under the action of the atomizing core 12, thus forming an aerosol.
- a regulating valve 213 may be provided on the outer casing 32 to regulate the amount of air entering the outer casing 32 through the air inlet 212, thereby adjusting the suction resistance of the aerosol generating device.
- the second module 2 further includes a connecting pipe 25 with an internal air passage.
- the connecting pipe 25 is disposed inside the housing 21, and one end of the connecting pipe 25 is connected to the air intake 221, while the other end passes through the second docking assembly 24 and is exposed to the outside to dock with the first docking assembly 14.
- the connecting pipe 25 is press-fitted with the sealing plug 243 when passing through the second docking assembly 24, so that the two are sealed to prevent leakage of the liquid matrix in the second chamber 211.
- the flexible plug 141 has a mating hole 1416 that corresponds to and communicates with the tubular portion 1415.
- the end of the connecting tube 25 is embedded in the mating hole 1416 of the flexible plug 141 and is press-fitted with the mating hole 1416 to make the two connected in a sealed manner to prevent aerosol leakage.
- a strip-shaped groove 251 is provided on the inner wall of the connecting tube 25, extending to the distal end of the connecting tube 25. This groove guides the condensate in the connecting tube 25 into the tubular portion 1415, allowing it to flow onto the atomizing core 12 and then into the first chamber 111 along the auxiliary air passage 17.
- the extension length of the strip-shaped groove 251 can be greater than or equal to half the length of the connecting tube 25, or less than or equal to four-fifths of the length of the connecting tube 25; no specific limitation is made here.
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Abstract
本申请涉及一种气溶胶生成装置,包括:第一模组,包括第一腔室和能够使液体基质雾化形成气溶胶的雾化芯,第一腔室与雾化芯流体连通;第二模组,内部具有用于存储液体基质的第二腔室,第二模组独立于第一模组且连接在第一模组的第一端上,且第二模组与第一模组之间形成有用于流体连通第一腔室和第二腔室的流体通道;和第三模组,独立于第一模组且与第一模组的第二端可拆卸地连接,第三模组包括电源,电源用于为雾化芯提供电力;其中,第一端与第二端相对设置,且第一模组被配置为可在第二模组的带动下脱离第三模组。
Description
相关申请的交叉引用参考
本申请要求于2024年7月9日提交中国专利局,申请号为202410917351.2,名称为“气溶胶生成装置”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
本申请涉及气溶胶产生技术领域,特别涉及一种气溶胶生成装置。
气溶胶生成装置是一种能够使液体制剂雾化形成气溶胶的装置。然而,在一些示例性现有技术中,存在一种气溶胶生成装置,包括雾化器、备用储油仓和电源组件,备用储油仓与雾化器之间通过液路连通,以对雾化器中的油仓进行液体基质补给,电源组件与雾化器之间具有电路连接,以通过该电路为雾化器提供雾化液体基质的电力。备用储油仓与雾化器可拆卸地连接,以在备用油仓中的液体基质耗尽后更换备用储油仓。
然而,现有雾化器中的用于雾化液体基质的雾化芯,其雾化量是有限制的,备用储油仓中的液体基质储备量与雾化器中的液体基质储备量之和基本上已经达到雾化芯雾化的上限,在备用油仓中的液体基质耗尽时,雾化芯的使用寿命所剩不多,不足以支撑其按照期望效果继续雾化新的备用油仓中的液体基质,从而不仅在更换新的备用油仓后造成浪费,而且还导致用户的体验降低。
申请内容
本申请的目的是提供一种气溶胶生成装置,既能够使第一模组和第二模组相互独立,又能够在更换第二模组时,使具有雾化芯的第一模组脱离第三模组,从而可以同时更换第二模组,使得气溶胶生成装置在反复使用过程中提供符合用户期望的体验。
本申请至少一个实施例提供了一种气溶胶生成装置,该气溶胶生成装置包括:
第一模组,包括用于存储液体基质的第一腔室和用于雾化液体基质产生气溶胶的雾化芯,所述第一腔室与所述雾化芯流体连通,所述第一模组具有相对设置的第一端和第二端;
第二模组,内部具有用于存储液体基质的第二腔室,所述第二模组独立于所述第一模组且能够连接于所述第一模组的第一端上,且当所述第二模组与所述第一模组处于连接状态下时可在二者之间建立从所述第二腔室向所述第一腔室补充液体基质的流体通道;和
第三模组,与所述第一模组的第二端可拆卸地连接,所述第三模组包括电源,所述电源用于当所述第三模组与所述第一模组处于连接状态下时与所述雾化芯之间建立电力提供路径;
其中,所述第二模组被配置为可提供给用户操作从而与所述第一模组建立连接,并且能够带动所述第一模组脱离所述第三模组。
作为一个示例,所述第二模组与所述第一模组建立连接之后不可相互拆卸。
作为一个示例,所述第二模组与所述第一模组之间的连接为可拆卸地连接;其中
所述第二模组与所述第一模组连接后的拆卸方式不同于所述第三模组与所述第一模组连接后的拆卸方式;或者
所述第二模组与所述第一模组连接后的拆卸作用力大于所述第三模组与所述第一模组连接后的拆卸作用力。
作为一个示例,所述第三模组还包括近端敞开的外壳,所述外壳内部具有毗邻所述外壳近端设置的接纳腔;
其中,所述第一模组可移除地保持在所述接纳腔中,所述第二模组的局部可以移除保持在所述接纳腔中,局部暴露在所述外壳之外,以供用户操作。
作为一个示例,所述气溶胶生成装置还包括第四模组,所述第四模组被配置为能够局部收容在所述接纳腔内,且从所述接纳腔移除后暴露所述第一模组的第一端。
作为一个示例,所述第二模组被配置为可相对所述第一模组在第一位置和第二位置之间移动;
其中,所述流体通道在所述第二模组位于所述第一位置时断开,在所述第二模组位于所述第二位置时导通。
作为一个示例,所述第一模组包括第一对接组件,所述第二模组包括第二对接组件,在所述第二模组在所述第一位置和所述第二位置之间移动的过程中,所述第一对接组件与所述第二对接组件保持连接;
其中,所述第一对接组件与所述第二对接组件之间的干涉作用力小于所述第一模组与所述第三模组之间的干涉作用力,使得在所述第二模组在所述第一位置和所述第二位置之间移动时,所述第一模组与所述第三模组保持相对静止。
作为一个示例,所述第一对接组件与所述第二对接组件之间的干涉作用力大于所述第二模组的重力,以使所述第二模组能够保持在所述第一位置。
作为一个示例,所述第二模组包括背离所述第二腔室的导流柱,所述流体通道包括开设在所述导流柱侧壁上的第一导流孔和设置在所述导流柱内部且与所述第二腔室流体连通的第二导流孔。
作为一个示例,所述第一模组包括柔性塞,所述柔性塞上开设有第一对接孔;
其中,所述第一对接孔的孔壁和所述导流柱的外壁二者中的一者上具有第一凸环;
在所述第二模组位于所述第一位置时,所述第一导流孔和所述第一腔室位于所述第一凸环的相对两侧,且所述第一凸环提供所述柔性塞与所述导流柱之间的密封性连接,在所述第二模组位于所述第二位置时,所述导流柱的局部穿出所述第一对接孔并使所述第一导流孔暴露于所述第一对接孔之外。
作为一个示例,所述第一对接孔的孔壁和所述导流柱的外壁二者中的一者上具有第二凸环,所述第二凸环位于所述第一导流孔与所述第二腔室之间,且在所述第二模组在所述第一位置和所述第二位置之间移动时,所述第二凸环提供所述柔性塞与所述导流柱之间的密封性连接。
作为一个示例,所述第一模组包括杯体和设置在所述第一腔室内、用于保持液体基质的纤维元件,所述杯体界定所述第一腔室的至少部分边界;
所述第二模组包括导流柱,至少一个所述流体通道包括开设在所述导流柱壁上的第一导流孔和设置在所述导流柱内部且与所述第二腔室流体连通的第二导流孔;
在所述第二模组位于所述第二位置时,所述第一导流孔位于所述杯体中且与所述纤维元件相间隔设置。
作为一个示例,所述杯体的壁上开设有连通所述第一腔室的第二对接孔,所述第二对接孔的孔壁上具有凸起;
在所述第二模组位于所述第二位置时,所述凸起抵接所述导流柱,使得所述第二对接孔的孔壁与所述导流柱之间具有连通所述第一腔室的间隙,且所述第一导流孔位于所述第二对接孔中,并对应所述间隙设置。
作为一个示例,所述第一模组包括界定所述第一腔室至少部分边界的杯体,所述第二模组包括界定所述第二腔室至少部分边界的壳体;
所述杯体和所述壳体二者中的一者上设置有第一止挡沿和第二止挡沿,另一者上设置有卡扣件;
所述第二模组连接在所述第一模组上后,所述卡扣件位于所述第一止挡沿和所述第二止挡沿之间,且在所述第二模组在所述第一位置和所述第二位置之间移动时,所述卡扣件在所述第一止挡沿和所述第二止挡沿之间移动;
其中,所述第二模组被配置为通过所述第一止挡沿作用于所述卡扣件来带动所述第一模组脱离所述第三模组。
作为一个示例,所述第一模组中具有导气管和辅助气道,所述导气管与所述雾化芯导气连通,以导流所述气溶胶;
所述辅助气道导气连通所述第一腔室和所述导气管,以使所述第一腔室与所述导气管中气压平衡。
作为一个示例,所述第二模组包括吸嘴。
以上实施例提供的气溶胶生成装置,包括第一模组、第二模组和第三模组;第一模组包括用于存储液体基质的第一腔室和用于雾化液体基质产生气溶胶的雾化芯,第一腔室与雾化芯流体连通,且第一模组具有相对设置的第一端和第二端;第二模组内部具有用于存储液体基质的第二腔室,第二模组独立于第一模组且能够连接于第一模组的第一端上,且当第二模组与第一模组处于连接状态下时可在二者之间建立从第二腔室向所述第一腔室补充液体基质的流体通道;第三模组与第一模组的第二端可拆卸地连接,第三模组包括电源,电源用于当第三模组与第一模组处于连接状态下时与雾化芯之间建立电力提供路径;其中,第二模组被配置为可提供给用户操作从而与第一模组建立连接,并且能够带动第一模组脱离第三模组。因此,用户不仅可以选择第二模组来与第一模组连接,而且还可以在需要更换第二模组时,通过操作第二模组来带动第一模组脱离第三模组,使得第一模组和第二模组可以同时更换,使得第一模组中的雾化芯能够保持期望的效果工作。
为了更清楚地说明本申请具体实施例或现有技术中的技术方案,下面将对具体实施例或现有技术描述中所需要使用的附图作简单地介绍。在所有附图中,类似的元件或部分一般由类似的附图标记标识。附图中,各元件或部分并不一定按照实际的比例绘制。
图1是本申请一些实施例所提供的气溶胶生成装置的示意图;
图2是本申请一些实施例所提供的第二模组带动第一模组一起脱离第三模组的示意图;
图3是本申请一些实施例所提供的第一模组与第二模组相分离的示意图;
图4是本申请一些实施例所提供的第三模组的示意图;
图5是本申请一些实施例所提供的第二模组位于第一位置的示意图;
图6是本申请一些实施例所提供的第二模组位于第二位置的示意图;
图7是本申请一些实施例所提供的第二保持件的示意图;
图8是本申请一些实施例所提供的柔性塞的示意图;
图9是本申请一些实施例所提供的第一模组的示意图;
图10是本申请一些实施例所提供的第一模组的分解示意图;
图11是本申请一些实施例所提供的气溶胶生成装置的另一剖视图;
图12是本申请一些实施例所提供的限位元件的示意图;
图中:
1、第一模组;11、杯体;111、第一腔室;112、卡扣件;113、弹
臂;114、第二对接孔;115、凸起;116、固定孔;117、贯通孔;118、导流槽;12、雾化芯;13、纤维元件;131、条形凸筋;14、第一对接组件;141、柔性塞;1411、第一对接孔;1412、第一凸环;1413、第二凸环;1414、缺口;1415、管状部;1416、对接孔;142、第一保持件;15、导气通道;16、第一磁性件;17、辅助气道;18、第一电极;19、气孔;
2、第二模组;21、壳体;211、第二腔室;212、进气孔;213、调
节阀;22、吸嘴;221、吸气口;23、卡扣槽;231、第一止挡沿;232、第二止挡沿;24、第二对接组件;241、导流柱;2411、第一导流孔;2412、第二导流孔;242、第二保持件;243、密封塞;25、连接管;251、条形槽;
3、第三模组;31、电源;32、外壳;321、接纳腔;33、第二磁性
件;34、第二电极。
1、第一模组;11、杯体;111、第一腔室;112、卡扣件;113、弹
臂;114、第二对接孔;115、凸起;116、固定孔;117、贯通孔;118、导流槽;12、雾化芯;13、纤维元件;131、条形凸筋;14、第一对接组件;141、柔性塞;1411、第一对接孔;1412、第一凸环;1413、第二凸环;1414、缺口;1415、管状部;1416、对接孔;142、第一保持件;15、导气通道;16、第一磁性件;17、辅助气道;18、第一电极;19、气孔;
2、第二模组;21、壳体;211、第二腔室;212、进气孔;213、调
节阀;22、吸嘴;221、吸气口;23、卡扣槽;231、第一止挡沿;232、第二止挡沿;24、第二对接组件;241、导流柱;2411、第一导流孔;2412、第二导流孔;242、第二保持件;243、密封塞;25、连接管;251、条形槽;
3、第三模组;31、电源;32、外壳;321、接纳腔;33、第二磁性
件;34、第二电极。
下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅是本申请的一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
本申请中的术语“第一”、“第二”、“第三”仅用于描述目的,而不能理解为指示或暗示相对重要性或者隐含指明所指示的技术特征的数量或者次序。本申请实施例中所有方向性指示(诸如上、下、左、右、前、后……)仅用于解释在某一特定姿态(如附图所示)下各部件之间的相对位置关系或者运动情况等,如果该特定姿态发生改变时,则该方向性指示也相应地随之改变。此外,术语“包括”和“具有”以及它们任何变形,意图在于覆盖不排他的包含。例如包含了一系列步骤或单元的过程、方法、系统、产品或设备没有限定于已列出的步骤或单元,而是可选地还包括没有列出的步骤或单元,或可选地还包括对于这些过程、方法、产品或设备固有的其它步骤或单元。
在本文中提及“实施例”意味着,结合实施例描述的特定特征、结构或特性可以包含在本申请的至少一个实施例中。在说明书中的各个位置出现该短语并不一定均是指相同的实施例,也不是与其它实施例互斥的独立的或备选的实施例。本领域技术人员显式地和隐式地理解的是,本文所描述的实施例可以与其它实施例相结合。
需要说明的是,当元件被称为“固定于”另一个元件,它可以直接在另一个元件上或者也可以存在居中的元件。当一个元件被认为是“连接”另一个元件,它可以是直接连接到另一个元件,或者其间可能同时存在一个或者多个居中元件。本文所使用的术语“垂直的”、“水平的”、“左”、“右”以及类似的表述只是为了说明的目的,并不表示是唯一的实施方式。
请参照图1-图9,本申请的一些实施例提供了一种气溶胶生成装置,气溶胶生成装置包括相互独立的第一模组1、第二模组2和第三模组3,其中,第二模组2通过组装连接在第一模组1的第一端,第三模组3通过组装连接在第一模组1的第二端,第一端和第二端可以相对设置,使得第一模组1、第二模组2和第三模组3可以沿纵向排布。当然,第一端和第二端也可以位于第一模组1相邻的两个侧面上。
第一模组1包括第一腔室111和能够使液体基质雾化形成气溶胶的雾化芯12,第一腔室111与雾化芯12流体连通;第二模组2包括内部具有用于存储液体基质的第二腔室211,在第一模组1与第二模组2连接后,第二模组2与第一模组1之间形成有用于流体连通第一腔室111和第二腔室211的流体通道;第三模组3包括电源31,电源31用于为雾化芯12雾化液体基质提供电力。
其中,液体基质可包含含有挥发性烟草香味成分的含烟草物质的液体,还可以为包含非烟草物质的液体。液体基质可包含水、药液、溶剂、乙醇、植物提取物、香料、香味剂或者维生素混合物等,香料可以包含槟榔提取液、薄荷醇、欧薄荷、绿薄荷油、各种水果香成分等,但不限于此。香味剂可包含可以向使用者提供各种香味或风味的成分。维生素混合物可以是混合有维生素A、维生素B、维生素C以及维生素E中的至少一者的混合物,但不限于此。基于液体基质的不同属性,气溶胶生成装置可用于不同的领域,比如,医疗、电子气溶胶雾化等。
在一些实施例中,雾化芯12包括吸液元件和加热元件,加热元件设置在吸液元件上。吸液元件可以为多孔体,用于将液体基质引导至加热元件的雾化范围中。加热元件用于加热雾化气溶胶基质,从而产生气溶胶。多孔体可以为纤维,例如为棉纤维,聚丙烯纤维,涤纶纤维或者尼龙纤维等。多孔体可以为多孔陶瓷或者多孔金属,本申请对多孔体的结构和成份不做限定。
在一些实施例中,雾化芯12可以包括能够产生超声波的超声元件,雾化芯12利用超声波使液体基质雾化形成气溶胶。当然,雾化芯12还可以包括其他的能够使使液体基质雾化形成气溶胶的元件。
在一些实施例中,第一腔室111能够存储液体基质,其存储液体基质的量可以小于或者等于2ml,但不以此为限;第二腔室211中的液体基质能够进入第一腔室111中,以为第一腔室111供给液体基质。在其他实施例中,第一腔室111主要用于将第二腔室211中的液体基质导向雾化芯12,以供雾化芯12雾化。
为了防止第一模组1漏液,第一模组1还包括纤维元件13,纤维元件13设置在第一腔室111中,能够吸附液体基质,并能够保持被其吸附的至少部分液体基质。纤维元件13包括但不限于下列材料之一种:棉纤维,聚丙烯纤维,涤纶纤维,尼龙纤维,多孔陶瓷材料,高分子纤维,或者为上述材料的各种组合。
请参照图5、图6、图10-图12,第一模组1还包括杯体11,杯体11界定第一腔室111的至少部分边界,纤维元件13容纳在杯体11之中。可以通过构造纤维元件13的外表面或者构造杯体11的内壁,使得纤维元件13与杯体11之间具有导气通道15,该导气通道15可以连通纤维元件13在纵向上的相对两端:一方面,导气通道15可以使第一腔室111中气压分布均匀,使得纤维元件13中的液体基质能够顺畅地被纤维元件13朝向雾化芯12传送;另一方面,能够在纤维元件13、第一腔室111中的气体、液体基质受热膨胀时,或者纤维元件13、第一腔室111中的气体、液体基质在第一腔室111内外气压差下膨胀时,为膨胀后的纤维元件13、液体基质和气体提供让位空间,防止液体基质泄漏出第一腔室111。
在如图12所示的实施例中,纤维元件13的侧壁上具有条形凸筋131,条形凸筋131用于抵接杯体11的内壁,从而使得纤维元件13的侧壁的其他部分与杯体11的内壁之间具有所述的导气通道15,或者使得在相邻两条条形凸筋131之间具有所述的导气通道15。条形凸筋131可以沿纵向延伸至连接纤维元件13的两个相对设置的端面。
第一模组1还可以包括导气管,导气管与雾化芯12导气连通,用于将雾化芯12产生气溶胶导送至第一模组1之外。导气管可以从第一腔室111中穿过,纤维元件13可以环绕导气管设置。在一个示例中,雾化芯12可以设置在导气管中。
在一些实施例中,第二腔室211的容量大于第一腔室111的容量,第二腔室211可以存储小于或者等于10ml的液体基质,但不以此为限。第二腔室211中存储的液体基质可以与第一腔室111中存储的液体基质具有相同的口味,也可以具有不相同的口味。请参照图5和图6,第二模组2包括壳体21,壳体21界定第二腔室211的至少部分边界。
在第二模组2与第一模组1处于连接状态下时,第二模组2与第一模组1之间能够建立从第二腔室211向第一腔室111补充液体基质的流体通道。在第一模组1和第三模组3处于连接状态下时,电源31与雾化芯12之间建立电力提供路径。
需要说明的是,第一模组1和第二模组2相互独立,使得第一模组1和第二模组2需要在用户的操作下组装在一起,因此,用户可以选择与第一模组1相连接的第二模组2。不同的第二模组2可以不同,例如不同的第二模组2中的第二腔室211可以具有不同的容量,或者不同的第二模组2中的第二腔室211中可以存储不同口味的液体基质;当然,不同的第二模组2也可以完全相同。
同理,第三模组3和第一模组1相互独立,使得第一模组1和第三模组3可以在用户的操作下组装在一起。
其中,第二模组2被配置为可被操作,以通过操作第二模组2来使第二模组2与第一模组1连接,用户还可以通过操作第二模组2,使得来带动第一模组1,使第一模组1脱离第三模组3,第二模组2与第一模组1因此可以被一起移除和被更换。
在一些实施例中,气溶胶生成装置还包括第四模组,第一模组1的第一端被配置为能够与第四模组可拆卸地连接,且第一模组1的第一端在第四模组移除后暴露,以与第二模组2连接。
换言之,在初始状态的气溶胶生成装置中,第四模组与第一模组1的第一端可拆卸地连接,在需要使用气溶胶生成装置时,或者在需要对第一腔室111供应液体基质时,首先从第一模组1上移除第四模组,然后再使第二模组2代替第四模组连接在第一端上。
第四模组与第一模组1连接时,能够密封第一腔室111,防止第一腔室111中液体基质通过第一端泄漏。
在一些实施例中,可以参照图5和图6,第二模组2还包括吸嘴22,吸嘴22可以与壳体21一体成型,或者吸嘴22可以固定在壳体21上,吸嘴22用于供用户的嘴部含衔,吸嘴22上具有吸气口221,用户通过抽吸吸气口221来抽吸第一模组1产生的气溶胶,故吸气口221与第一模组1中的导气管流体连通。
基于此,第四模组与第一模组1连接时,既能够保持导气管清洁,又能够减少第一模组1与外界的空气对流,对于防止第一腔室111中的液体基质泄漏和变质有益。在一些实施例中,第四模组还能够密封导气管,从而能够防止第一模组1内部的气压受外界的气压影响,有助于防止第一腔室111中的纤维元件13膨胀和防止第一腔室111中的液体基质泄漏;例如,在初始状态的气溶胶生成装置的周围气压降低时,能够防止第一腔室111中的液体基质自动地向外流出。
在一些实施例中,第二模组2与第一模组1之间的建立连接后不可相互拆卸,使得第二模组2在与第一模组1连接后,二者不可分离或者难以分离。当然,第二模组2与第一模组1之间的连接也可以为可拆卸地连接,从而第二模组2在与第一模组1连接后,通过适当的操作或者工具,二者可相互分离。
在一些实施例中,第二模组2与第一模组1之间的连接为可拆卸地连接,但是第二模组2与第一模组1连接后的拆卸方式不同于第三模组3与第一模组1连接后的拆卸方式,或者第二模组2与第一模组1连接后的拆卸作用力大于第三模组3与第一模组1连接后的拆卸作用力,从而在第二模组2带动第一模组1脱离第三模组3的过程中,第二模组2和第一模组1能够保持连接。在此实施例中,第四模组是可选而非必选的。
具体的,在一实施例中,第二模组2与第一模组1连接后的拆卸方式不同于第三模组3与第一模组1连接后的拆卸方式,包括第二模组2与第一模组1的连接方式不同于第三模组3与第一模组1的连接方式。例如:第二模组2与第一模组1之间采用卡扣连接的方式连接,第三模组3与第一模组1之间采用磁吸连接的方式连接。请参照图2-图5,第一模组1还包括第一磁性件16,第三模组3还包括第二磁性件33,第一磁性件16和第二磁性件33相互靠近时二者之间具有磁吸力使得第一模组1与第三模组3保持稳定地连接。请参照图2和图3,第一模组1和第二模组2二者中的一者上具有第一止挡沿231和第二止挡沿232,另一者上设置有卡扣件112,在第二模组2连接在第一模组1的第一端后,卡扣件112位于第一止挡沿231和第二止挡沿232之间,且第二模组2被配置为通过第一止挡沿231作用于卡扣件112来带动第一模组1脱离第三模组3。在如图2和图3所示的实施例中,壳体21上设置有卡扣槽23,第一止挡沿231和第二止挡沿232相对设置且界定该卡扣槽23的部分边界,杯体11上设置有弹臂113和设置在弹臂113上的卡扣件112,在横向上挤压弹臂113使弹臂113变形时,卡扣件112可退出卡扣槽23,然后再施加沿纵向上的作用力,第二模组2可脱离第一模组1。当然,第一止挡沿231和第二止挡沿232也可以为杯体11的构成部分,卡扣件112和弹臂113因此可以为壳体21的构成部分。
在一实施例中,第二模组2与第一模组1连接后的拆卸方式不同于第三模组3与第一模组1连接后的拆卸方式,包括第二模组2与第一模组1连接后的拆卸方向不同于第三模组3与第一模组1连接后的拆卸方向。例如,在使第一模组1沿纵向朝向远离第三模组3的方向运动时,第一模组1可以脱离第三模组3,而需要使第二模组2相对第一模组1按照预设方向旋转时,才能够使第二模组2脱离第一模组1。
在一些实施例中,第二模组2与第一模组1连接后的拆卸作用力大于第三模组3与第一模组1连接后的拆卸作用力,第二模组2与第一模组1相互连接时彼此干涉,从而使得二者能够保持稳定地连接,需要从第一模组1上移除第二模组2时,拆卸作用力需要克服第二模组2与第一模组1之间的干涉作用力。同理,需要从第三模组3上移除第一模组1时,拆卸作用力需要克服第三模组3与第一模组1之间的干涉作用力。因此,在施加沿使第一模组1与第三模组3相分离方向的作用力时,第一模组1与第三模组3分离先于第二模组2与第一模组1分离发生,且第一模组1与第三模组3分离相分离时,第一模组1和第二模组2能够保持连接。在此实施例中,第二模组2与第一模组1的连接方式可以与第三模组3与所述第一模组1的连接方式相同,和/或,第二模组2与第一模组1连接后的拆卸方向可以与第三模组3与第一模组1连接后的拆卸方向相同。
第二模组2的第二腔室211与第一模组1的第一腔室111之间的流体通道可以主要在用户使用气溶胶生成装置时导通,而在用户搁置气溶胶生成装置时断开。
基于此,在一些实施例中,可以参照图5和图6,第二模组2被配置为可相对第一模组1在第一位置和第二位置之间移动;其中,第二腔室211与第一腔室111之间的流体通道在第二模组2位于第一位置时断开,在第二模组2位于第二位置时导通。优选第二模组2在第一位置和第二位置之间沿纵向移动,但不以此为限。
进一步的,可以参照图5和图6,第一模组1的第一端具有第一对接组件14,第二模组具有第二对接组件24,在第二模组2在第一位置和第二位置之间移动的过程中,第一对接组件14与第二对接组件24保持连接,从而保持相互干涉。其中,第一对接组件14与第二对接组件24之间的干涉作用力小于第一模组1与第三模组3之间的干涉作用力,使得在第二模组2在第一位置和第二位置之间移动时,第一模组1与第三模组3保持相对静止,从而在第二腔室211与第一腔室111之间的流体通道由断开切换至导通,或者由导通切换至断开的过程中,第一模组1与第三模组3保持相对静止。
更进一步的,由于第一模组1与第二模组2沿纵向排布,且第二模组2位于第一模组1的纵向上方,第一模组1与第二模组2连接时,第一模组1需要提供向上的力来克服第二模组2的重力支撑第二模组2。
其中,第一位置位于第二位置的纵向上方,在第二模组2位于第一位置时,第一对接组件14与第二对接组件24之间的干涉作用力大于第二模组2的重力,从而使第二模组2能够保持在第一位置,使得第二腔室211与第一腔室111之间的流体通道保持断开,和防止第二腔室211与第一腔室111之间的流体通道自动导通。
在本申请中,第二腔室211与第一腔室111之间的流体通道可以至少局部一条,在如图5和图6所示的实施例中,第二腔室211与第一腔室111之间的流体通道具有两条。
在一些实施例中,至少一流体通道被配置为提供液路,来使第二腔室211中的液体基质流入第一腔室111中,其中,液路被配置为在第二腔室211中的气压低于第一腔室111中的气压时断开;至少一个流体通道被配置为提供气路,来导气连通第二腔室211与第一腔室111,使得第二腔室211与第一腔室111之间气压平衡,其中,气路在第二模组2位于第一位置时断开,在第二模组2位于第二位置时导通。
其中,为了简化结构,液路和气路的至少局部可以重合,液路的至少局部允许气流通过,或者气路的至少局部允许液体基质通过。当然,液路和气路也可以相互独立。
在一些实施例中,可以参照图5和图6,第一对接组件14包括柔性塞141,柔性塞141由柔性材料制成,例如由硅胶制成,柔性塞141上开设有第一对接孔1411,第一对接孔1411的孔壁上具有第一凸环1412;第二对接组件24包括导流柱241,至少一个流体通道包括开设在导流柱241侧壁上的第一导流孔2411和设置在导流柱241内部且与第二腔室211流体连通的第二导流孔2412。请参照图5,在第二模组2位于第一位置时,第一导流孔2411和第一腔室111位于第一凸环1412的相对两侧,且第一凸环1412提供柔性塞141与导流柱241之间的密封性连接,使得第一腔室111与第一导流孔2411相隔绝,气路由此断开,液路也可以由此断开。请参照图6,在第二模组2位于第二位置时,第一导流孔2411穿出第一对接孔1411并位于第一对接孔1411之外,气路由此导通,液路也可以由此导通。
在如图5、图6和图8所示的实施例中,第一对接孔1411的孔壁上还可以具有第二凸环1413,在第二模组2位于第一位置时,第一导流孔2411位于第一凸环1412和第二凸环1413之间,第二凸环1413位于第二腔室211与第一导流孔2411之间,且第二凸环1413提供柔性塞141与导流柱241之间的密封性连接,以防止第二腔室211中的液体基质通过第一导流孔2411泄漏。在第二模组2位于第二位置时,第一凸环1412和第二凸环1413位于第一导流孔2411的同一侧,且第二凸环1413依然提供柔性塞141与导流柱241之间的密封性连接,来防止第二腔室211中的液体基质通过第一导流孔2411泄漏。
需要说明的是,在其他实施例中,第一凸环1412和/或第二凸环1413可以设置在导流柱241的外壁上。
在如图5和图6所示的实施例中,第一对接组件14还包括第一保持件142,第一保持件142连接柔性塞141和杯体11,且柔性塞141的至少局部位于第一保持件142和杯体11之间,第一保持件142用于使柔性塞141与杯体11保持连接,且用于防止柔性塞141相对杯体11发生纵向位移。在第二模组2与第一模组1连接时,第一保持件142支撑第二模组2。
第二对接组件24还可以包括第二保持件242和密封塞243,密封塞243可以由柔性材料制成,例如可以由硅胶制成。第二保持件242的硬度大于密封塞243的硬度。其中,密封塞243的至少局部设置在壳体21与第二保持件242之间,以在壳体21与第二保持件242之间提供密封,且第二保持件242与密封塞243相互配合,密封第二腔室211的朝向第一模组1的一端。其中,导流柱241与第二保持件242可以一体成型,或者导流柱241可以设置在第二保持件242上。
在一些实施例中,可以参照图6,在第二模组2位于第二位置时,第一导流孔2411位于杯体11中且与纤维元件13相间隔设置,以防止纤维元件13封堵第一导流孔2411从而影响导流柱241导气和气路。当然,在第二模组位2于第二位置时,导流柱241的端部可以抵接纤维元件13。
请参照图5、图6和图10,杯体11的壁上开设有连通第一腔室111的第二对接孔114,在第二模组2位于第二位置时,第一导流孔2411可以位于第二对接孔114中,并且第一导流孔2411与第二对接孔114的孔壁相间隔,从而使得第一导流孔2411与第一腔室111导气连通。
为了防止第二模组2在位于第二位置时,导流柱241相对第二对接孔114歪斜造成第二对接孔114的孔壁封堵第一导流孔2411,请参照图5和图10,第二对接孔114的孔壁上可以具有凸起115,在第二模组2位于第二位置时,凸起115抵接导流柱241,使得第二对接孔114的孔壁与导流柱241之间具有连通第一腔室111的间隙。
该凸起115可以为沿纵向延伸的条状,优选该条状的凸起115的长度可小于第二对接孔114的深度,以降低导流柱241在第二对接孔114中移动的阻力。该凸起115可以具有多个,且多个凸起115沿第二对接孔114的孔壁均匀分布,有助于使导流柱241的中轴线与第二对接孔114的中轴线重合。
请参照图5和图6,第二对接孔114对应第一对接孔1411设置,第二对接孔114的中轴线和第一对接孔1411的中轴线可以重合。第二对接孔114的孔径大于导流柱241的外径。第二对接孔114的孔径可以大于第一对接孔1411的孔径。
在一些实施例中,可以参照图11,第一模组1中具有辅助气道17,辅助气道17导气连通第一腔室111和导气管,以使第一腔室111与导气管中气压平衡,来防止第一腔室111中液体基质泄漏。
请参照图8和图10,杯体11上设置有固定孔116和流体连通第一腔室111的贯通孔117,柔性塞141上具有侧壁具有缺口1414的管状部1415,导气管连通管状部1415,管状部1415的至少局部嵌入在固定孔116中保持,管状部1415上的缺口1414为辅助气道17的构成部分。其中,管状部1415的至少局部嵌入在杯体11的固定孔116中保持。
柔性塞141的局部设置在杯体11朝向第二模组2的表面上,且杯体11朝向第二模组2的表面上开设有导流槽118,导流槽118,的一端连通贯通孔117,导流槽118,的另一端延伸至连通固定孔116,进而连通管状部1415上的缺口1414,导流槽118和贯通孔117亦为辅助气道17的构成部分。
因此,在第一腔室111中的气压大于导气管中的气压时,第一腔室111中的气体依次通过贯通孔117、导流槽118和缺口1414进入管状部1415中,然后再进入导气管内或者第二模组2/第四模组中。在第一腔室111中的气压小于导气管中的气压时,第二模组2/第四模组中或者导气管中的气体可以先进入管状部1415内,然后依次通过缺口1414、导流槽118和贯通孔117流入第一腔室111中。因此,能够维持第一腔室111与导气管中气压平衡。由于第二腔室211与第一腔室111可以通过气流导气连通,因此,在气路导通时,第二腔室211也基本上可以与导气管中气压平衡。
在一些实施例中,可以参照图4-图6,第三模组3还包括近端敞开的外壳32,外壳32内部具有接纳腔321,接纳腔321毗邻外壳32的近端设置;其中,第一模组1可移除地保持在接纳腔321中,第二模组2的局部可以移除保持在接纳腔321中,局部暴露在外壳32之外,以供用户操作。用户可以通过操作第二模组2暴露在外壳32之外的部分来使完全被外壳32遮挡的第一模组1与第三模组3分开和脱离接纳腔321。
请参照图2-图4,第一模组1还包括与雾化芯12电连接的第一电极18,第一电极18固定在第一模组1的底部上,第三模组3还包括与电源31电连接的第二电极34,在第一模组1与第三模组3连接时,第一电极18抵接第二电极34且第一电极18与第二电极34保持电连接。
在一些实施例中,第一模组1的底部上开设有流体连通雾化芯12的气孔19,气溶胶生成装置的进气孔212设置在外壳32上,进气孔212流体连通第一模组1的气孔19,外界的空气通过进气孔212进入外壳32内部,然后通过气孔19进入第一模组1中,然后在与液体基质在雾化芯12的作用下形成的气雾结合形成气溶胶。外壳32上可以设置有调节阀213,调节阀213进入调节通过进气孔212进入外壳32中的进气量,进而调节气溶胶生成装置的吸阻。
在一些实施例中,请参照图5和图6,第二模组2还包括内部具有气道的连接管25,连接管25设置在壳体21之内,且连接管25的一端与吸气口221连通,另一端从第二对接组件24中穿过并暴露在外,以与第一对接组件14对接。
其中,连接管25在穿过第二对接组件24时与密封塞243过盈配合,使得二者密封性连接,来防止第二腔室211中的液体基质泄漏
柔性塞141上具有与管状部1415对应设置且连通的对接孔1416,在第二模组2与第一模组1连接时,连接管25的端部嵌入在柔性塞141的对接孔1416中,并与对接孔1416过盈配合,使得二者密封性连接,以防止气溶胶泄漏。
为了防止气溶胶形成的冷凝液大量在连接管25的内壁聚集,导致用户在抽吸吸气口221时将冷凝液吸入口腔中。请参照图5和图6,连接管25的内壁上开设有条形槽251,条形槽251延伸至连接管25的远端,用于将连接管25中的冷凝液导入管状部1415中,进而冷凝液可以流入雾化芯12上,会在沿辅助气道17流入第一腔室111中。条形槽251的延伸长度可以大于或者等于连接管25长度的1/2,可以小于或者等于连接管25长度的4/5,在此不做具体限定。
需要说明的是,本申请的说明书及其附图中给出了本申请的较佳的实施例,但并不限于本说明书所描述的实施例,进一步地,对本领域普通技术人员来说,可以根据上述说明加以改进或变换,而所有这些改进和变换都应属于本申请所附权利要求的保护范围。
Claims (16)
- 一种气溶胶生成装置,其特征在于,包括:第一模组,包括用于存储液体基质的第一腔室和用于雾化液体基质产生气溶胶的雾化芯,所述第一腔室与所述雾化芯流体连通,所述第一模组具有相对设置的第一端和第二端;第二模组,内部具有用于存储液体基质的第二腔室,所述第二模组独立于所述第一模组且能够连接于所述第一模组的第一端上,且当所述第二模组与所述第一模组处于连接状态下时可在二者之间建立从所述第二腔室向所述第一腔室补充液体基质的流体通道;和第三模组,与所述第一模组的第二端可拆卸地连接,所述第三模组包括电源,所述电源用于当所述第三模组与所述第一模组处于连接状态下时与所述雾化芯之间建立电力提供路径;其中,所述第二模组被配置为可提供给用户操作从而与所述第一模组建立连接,并且能够带动所述第一模组脱离所述第三模组。
- 根据权利要求1所述的气溶胶生成装置,其特征在于,所述第二模组与所述第一模组建立连接之后不可相互拆卸。
- 根据权利要求1所述的气溶胶生成装置,其特征在于,所述第二模组与所述第一模组之间的连接为可拆卸地连接;其中所述第二模组与所述第一模组连接后的拆卸方式不同于所述第三模组与所述第一模组连接后的拆卸方式;或者所述第二模组与所述第一模组连接后的拆卸作用力大于所述第三模组与所述第一模组连接后的拆卸作用力。
- 根据权利要求1或2或3所述的气溶胶生成装置,其特征在于,所述第三模组还包括近端敞开的外壳,所述外壳内部具有毗邻所述外壳近端设置的接纳腔;其中,所述第一模组可移除地保持在所述接纳腔中,所述第二模组的局部可以移除保持在所述接纳腔中,局部暴露在所述外壳之外,以供用户操作。
- 根据权利要求4所述的气溶胶生成装置,其特征在于,所述气溶胶生成装置还包括第四模组,所述第四模组被配置为能够局部收容在所述接纳腔内,且从所述接纳腔移除后暴露所述第一模组的第一端。
- 根据权利要求1所述的气溶胶生成装置,其特征在于,所述第二模组被配置为可相对所述第一模组在第一位置和第二位置之间移动;其中,所述流体通道在所述第二模组位于所述第一位置时断开,在所述第二模组位于所述第二位置时导通。
- 根据权利要求6所述的气溶胶生成装置,其特征在于,所述第一模组包括第一对接组件,所述第二模组包括第二对接组件,在所述第二模组在所述第一位置和所述第二位置之间移动的过程中,所述第一对接组件与所述第二对接组件保持连接;其中,所述第一对接组件与所述第二对接组件之间的干涉作用力小于所述第一模组与所述第三模组之间的干涉作用力,使得在所述第二模组在所述第一位置和所述第二位置之间移动时,所述第一模组与所述第三模组保持相对静止。
- 根据权利要求7所述的气溶胶生成装置,其特征在于,所述第一对接组件与所述第二对接组件之间的干涉作用力大于所述第二模组的重力,以使所述第二模组能够保持在所述第一位置。
- 根据权利要求6所述的气溶胶生成装置,其特征在于,所述第二模组包括背离所述第二腔室的导流柱,所述流体通道包括开设在所述导流柱侧壁上的第一导流孔和设置在所述导流柱内部且与所述第二腔室流体连通的第二导流孔。
- 根据权利要求9所述的气溶胶生成装置,其特征在于,所述第一模组包括柔性塞,所述柔性塞上开设有第一对接孔;其中,所述第一对接孔的孔壁和所述导流柱的外壁二者中的一者上具有第一凸环;在所述第二模组位于所述第一位置时,所述第一导流孔和所述第一腔室位于所述第一凸环的相对两侧,且所述第一凸环提供所述柔性塞与所述导流柱之间的密封性连接,在所述第二模组位于所述第二位置时,所述导流柱的局部穿出所述第一对接孔并使所述第一导流孔暴露于所述第一对接孔之外。
- 根据权利要求10所述的气溶胶生成装置,其特征在于,所述第一对接孔的孔壁和所述导流柱的外壁二者中的一者上具有第二凸环,所述第二凸环位于所述第一导流孔与所述第二腔室之间,且在所述第二模组在所述第一位置和所述第二位置之间移动时,所述第二凸环提供所述柔性塞与所述导流柱之间的密封性连接。
- 根据权利要求6所述的气溶胶生成装置,其特征在于,所述第一模组包括杯体和设置在所述第一腔室内、用于保持液体基质的纤维元件,所述杯体界定所述第一腔室的至少部分边界;所述第二模组包括导流柱,至少一个所述流体通道包括开设在所述导流柱壁上的第一导流孔和设置在所述导流柱内部且与所述第二腔室流体连通的第二导流孔;在所述第二模组位于所述第二位置时,所述第一导流孔位于所述杯体中且与所述纤维元件相间隔设置。
- 根据权利要求12所述的气溶胶生成装置,其特征在于,所述杯体的壁上开设有连通所述第一腔室的第二对接孔,所述第二对接孔的孔壁上具有凸起;在所述第二模组位于所述第二位置时,所述凸起抵接所述导流柱,使得所述第二对接孔的孔壁与所述导流柱之间具有连通所述第一腔室的间隙,且所述第一导流孔位于所述第二对接孔中,并对应所述间隙设置。
- 根据权利要求6-13任一项所述的气溶胶生成装置,其特征在于,所述第一模组包括界定所述第一腔室至少部分边界的杯体,所述第二模组包括界定所述第二腔室至少部分边界的壳体;所述杯体和所述壳体二者中的一者上设置有第一止挡沿和第二止挡沿,另一者上设置有卡扣件;所述第二模组连接在所述第一模组上后,所述卡扣件位于所述第一止挡沿和所述第二止挡沿之间,且在所述第二模组在所述第一位置和所述第二位置之间移动时,所述卡扣件在所述第一止挡沿和所述第二止挡沿之间移动;其中,所述第二模组被配置为通过所述第一止挡沿作用于所述卡扣件来带动所述第一模组脱离所述第三模组。
- 根据权利要求1所述的气溶胶生成装置,其特征在于,所述第一模组中具有导气管和辅助气道,所述导气管与所述雾化芯导气连通,以导流所述气溶胶;所述辅助气道导气连通所述第一腔室和所述导气管,以使所述第一腔室与所述导气管中气压平衡。
- 根据权利要求1所述的气溶胶生成装置,其特征在于,所述第二模组包括吸嘴。
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| CN220529280U (zh) * | 2023-07-26 | 2024-02-27 | 深圳麦克韦尔科技有限公司 | 储液组件、发热组件、电源组件及电子雾化装置 |
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