Atomization device
The detachable storage component design solves the problem of liquid leakage during transportation of the atomization equipment, improves user experience and equipment efficiency, and promotes resource recycling.
Patent Information
- Application Number
- CN202422514458.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-16
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-10-16
AI Technical Summary
During transportation, atomizing equipment is prone to leakage due to changes in temperature and air pressure, affecting user experience and usage results.
A detachable storage component is designed to be connected to the bracket. The storage component can move along the axial direction of the atomization device to store the liquid to be atomized. It can be separated from the bracket during transportation to reduce leakage. When connected, the liquid is delivered to the heating part of the atomizer.
It reduces the chance of leakage of the atomizing equipment during transportation, increases the number of aerosol puffs, improves user experience, and reduces usage costs and environmental pollution.
Smart Images

Figure CN223403269U_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the field of atomization technology, and specifically relates to atomization equipment. Background Art
[0002] Atomizers are increasingly used in modern life, including medical atomizers, air humidifiers, miniature electronic atomizers, and e-cigarettes. Currently, the liquid storage structure of atomizers is typically fixed inside the atomizer and cannot be removed, requiring only pre-filling during production. However, during transportation, atomizers are susceptible to temperature, air pressure, and other factors, leading to leakage and a reduced user experience. Utility Model Content
[0003] In view of this, the present application provides an atomization device, which includes:
[0004] A host, comprising a bracket and an atomizer, wherein the atomizer is fixed to the bracket; and
[0005] At least one storage element is detachably connected to the bracket, and the storage element is movable in an axial direction perpendicular to the atomization device so that the storage element is arranged on the bracket or detached from the bracket. The storage element and the atomizer are arranged in an axial direction perpendicular to the atomization device, and the storage element can be used to store the liquid to be atomized; wherein, when the storage element is connected to the bracket, the storage element is used to transport the liquid to be atomized to the heating part of the atomizer.
[0006] The atomization device provided in the present application is capable of installing and removing the storage component from the side of the atomization device by providing a storage component detachably connected to the bracket, so that the storage component is separated from the bracket during transportation, thereby reducing the chance of leakage of the atomization device during transportation and increasing the number of aerosol puffs inhaled by the atomization device, thereby improving the user experience.
[0007] In addition, users can replace and reuse storage components individually according to their own needs, which reduces user usage costs, promotes resource recycling, and reduces environmental pollution.
[0008] In summary, the present application reduces the chance of leakage of the atomizing device during transportation by providing a detachable storage component, increases the number of puffs of aerosol inhaled by the atomizing device, and improves the user experience.
[0009] In which, the storage component includes a main body and a first sealing component, the main body has a storage space for storing the liquid to be atomized, and a connecting hole connected to the storage space, and the first sealing component is used to block at least part of the connecting hole; when the storage component is connected to the bracket, the liquid to be atomized in the storage space flows through the connecting hole and the first sealing component in sequence to the heating part of the atomizer.
[0010] The first sealing member has a sealing film, the bracket is provided with a ejector pin, and the ejector pin is arranged corresponding to the sealing film; when the storage member is connected to the bracket, the ejector pin can penetrate the sealing film.
[0011] The sealing film includes a film body and an auxiliary portion provided between the film bodies. The auxiliary portion is provided corresponding to the ejector pin portion and extends along the radial direction of the film body. The thickness of the auxiliary portion is smaller than the thickness of the film body.
[0012] The storage element further comprises a protruding portion protruding from the outer peripheral side wall of the main body, the communicating hole passes through the protruding portion, and the outer peripheral side wall of the protruding portion is provided with a sealing portion, which is used to seal the connection between the bracket and the protruding portion.
[0013] In which, the main body also has an injection hole connected to the storage space, and the storage component also includes a cover body and a second sealing component. The cover body is installed on the injection hole, and the storage space is formed between the cover body and the main body. The second sealing component blocks the connection between the cover body and the main body.
[0014] There are multiple storage elements, and the multiple storage elements are arranged along an axial direction perpendicular to the atomization device.
[0015] The atomizing device further comprises a housing having a receiving space, the main unit is arranged in the receiving space, and a peripheral side wall of the housing is provided with an assembly groove communicating with the receiving space, and the assembly groove is used to accommodate at least part of the storage element.
[0016] In which, the side wall of the assembly groove is provided with a first fixing part, and the storage component is provided with a second fixing part. One of the first fixing part and the second fixing part is a groove, and the other is a protrusion. The first fixing part and the second fixing part can be snap-connected to fix the storage component to the shell.
[0017] The storage element is provided with a limiting portion, and the limiting portion is used to abut against the peripheral side wall of the housing provided with the assembly groove, thereby limiting the position of the storage element along the axial direction perpendicular to the housing. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required for use in the embodiments of the present application will be described below.
[0019] Figure 1 A schematic diagram of the process of installing a storage element in an atomization device provided in one embodiment of the present application.
[0020] Figure 2 A schematic diagram of the process of installing two storage components in an atomization device provided in one embodiment of the present application.
[0021] Figure 3 This is an exploded view of the structure of the atomization device provided in one embodiment of the present application.
[0022] Figure 4 This is a cross-sectional schematic diagram of an atomization device provided in one embodiment of the present application.
[0023] Figure 5 A cross-sectional schematic diagram from another perspective of the atomization device provided in one embodiment of the present application.
[0024] Figure 6 This is a front view of a storage element provided in accordance with one embodiment of the present application.
[0025] Figure 7 A side view of a storage element provided in accordance with one embodiment of the present application.
[0026] Figure 8 A top view of a storage element provided in accordance with one embodiment of the present application.
[0027] Figure 9 This is an exploded view of the structure of a storage device provided in one embodiment of the present application.
[0028] Explanation of reference numerals: atomizing device 1, host 10, bracket 11, atomizer 12, liquid storage part 121, heating part 122, airway tube 123, circuit board 13, pneumatic sensor 14, storage part 20, main body 21, connecting hole 211, first sealing part 22, sealing film 221, membrane body 2211, auxiliary part 2212, protrusion 23, sealing part 24, cover body 25, second sealing part 26, second fixing part 27, limiting part 28, outer shell 30, assembly groove 31, first fixing part 32, nozzle 40, battery module 50. DETAILED DESCRIPTION
[0029] The following are preferred implementations of the present application. It should be noted that ordinary technicians in this technical field can make several improvements and modifications without departing from the principles of the present application. These improvements and modifications are also considered to be within the scope of protection of the present application.
[0030] The following is a detailed explanation of the technical issues: The liquid storage structure of the atomizer device is usually sealed inside the atomizer and cannot be removed, requiring pre-filling during the production phase. During transportation, the atomizer device is subject to fluctuations in temperature and atmospheric pressure. Especially during air transportation, the air pressure fluctuates greatly, which can easily cause the liquid to be atomized in the liquid storage structure to seep into the atomizer's airway or even outside the atomizer. This phenomenon is known as atomizer leakage and significantly reduces the user experience and usability.
[0031] In view of this, in order to solve the above problems, please refer to Figure 1-Figure 5 The present application provides an atomization device 1, which includes a host 10 and a storage unit 20. The host 10 includes a bracket 11 and an atomizer 12, and the atomizer 12 is fixed to the bracket 11. At least one storage unit 20 is detachably connected to the bracket 11, and the storage unit 20 can be moved along the axial direction perpendicular to the atomization device 1, so that the storage unit 20 is arranged on the bracket 11 or detached from the bracket 11. The storage unit 20 and the atomizer 12 are arranged along the axial direction perpendicular to the atomization device 1, and the storage unit 20 can be used to store the liquid to be atomized; wherein, when the storage unit 20 is connected to the bracket 11, the storage unit 20 is used to transport the liquid to be atomized to the heating part 122 of the atomizer 12.
[0032] The atomizing device 1 provided in this embodiment and below is mainly used in the fields of medical treatment, furniture, electronic cigarettes, etc. to atomize the liquid to be atomized into an aerosol for the user to use or inhale. This embodiment is only schematically described by applying the atomizing device to the field of electronic cigarettes.
[0033] The atomizing device 1 includes a main unit 10 and a storage unit 20, and may also include other components. Optionally, the atomizing device 1 also includes a housing 30, a nozzle 40, a battery module 50 and other components. The structure of the atomizing device 1 is described in detail below.
[0034] The housing 30 has a storage space for accommodating the components of the atomizing device 1. The main unit 10 is disposed within the storage space. The storage unit 20 is detachably connected to the housing 30, and the battery module 50 is detachably connected to the housing 30. At least a portion of the storage unit 20 can be disposed within the storage space. At least a portion of the battery module 50 can be disposed within the storage space.
[0035] The nozzle 40 is the part that the user's mouth directly contacts. The nozzle 40 is installed at the end of the shell 30. The nozzle 40 is provided with an air outlet, which can be connected to the air guide channel of the host 10 bracket 11, so as to suck out the aerosol in the air guide channel for the user to use or inhale.
[0036] The host 10 includes an atomizer 12, a bracket 11, and a circuit board 13. The circuit board 13 and the atomizer 12 are both fixed to the bracket 11. The circuit board 13 extends along the axial direction of the atomizing device 1. The circuit board 13 has a charging circuit and a charging port electrically connected to the charging circuit. The charging port is exposed from the housing 30 so that the charging port can be used to connect a charging cable, that is, the charging port is connected to an external power source. The circuit board 13 is also electrically connected to the heating part 122 of the atomizer 12. The circuit board 13 is used to control the working parameters of the heating part 122, so that the atomizer 12 can atomize the liquid to be atomized and generate an aerosol for the user to use or inhale.
[0037] The battery module 50 is detachably connected to the circuit board 13 of the main unit 10 and is used to provide power to the various components of the atomizer device 1. The battery module 50 is detachably connected to the circuit board 13 and can be moved in a direction perpendicular to the axial direction of the atomizer device 1 to connect or disconnect the battery module 50 from the circuit board 13. When the battery module 50 is connected to the circuit board 13, the battery module 50 is used to provide power to the atomizer device 1. The battery module 50 and the storage element 20 are arranged along the axial direction of the atomizer device 1.
[0038] In addition, the host 10 also includes a pneumatic sensor 14 electrically connected to the circuit board 13, and the pneumatic sensor 14 is provided on the bracket 11. The pneumatic sensor 14 can also be understood as a microphone, and the pneumatic sensor 14 is used to control the atomizer 12 to start working through the circuit board 13.
[0039] The nebulizer 12 has an airway tube 123 connected to the suction nozzle 40. The airway tube 123 is connected to the suction nozzle 40 through the air guide channel connected to the bracket 11. The airway tube 123 is used to allow the liquid to be atomized to be aerosolized and then pass through the airway tube 123 and the air guide channel together with the external air and be discharged to the outside of the atomizing device 1 through the suction nozzle 40. In addition, the nebulizer 12 also includes a liquid storage unit 121, a heating unit 122, and an airway tube 123. The liquid storage unit 121 is used to store the liquid to be atomized. The liquid storage unit 121 can be a liquid storage cotton, a liquid storage tank, etc. The liquid storage part 121 is sleeved on the airway tube 123, and the heating part 122 is arranged in the airway tube 123. The liquid to be atomized in the liquid storage part 121 can be transmitted from the liquid storage part 121 to the heating part 122 through the through hole of the airway tube 123. When the heating part 122 is working, it can atomize the liquid to be atomized into an aerosol and transmit it to the airway tube 123, and then transmit it to the nozzle 40 through the airway tube 123 and the air guide channel.
[0040] The bracket 11 has an air-guiding channel connecting the mouthpiece 40 and the airway tube 123. It also has a trigger channel connecting the mouthpiece 40 and the pneumatic sensor 14. The pneumatic sensor 14 detects the air pressure within the trigger channel, thereby controlling the atomizer 12 to start operation via the circuit board 13. Furthermore, the bracket 11 is equipped with an air intake control unit, which controls whether the airway tube 123 is connected to the outside world or isolated from the outside world. The air intake control unit is exposed from the housing 30, allowing the user to easily control it.
[0041] The storage element 20 and the atomizer 12 are arranged perpendicular to the axial direction of the atomizer device 1, so that the storage element 20 can be easily removed from the side of the atomizer device 1. For example, the storage element 20 and the atomizer 12 are arranged radially of the atomizer device 1, and / or the storage element 20 and the atomizer 12 are arranged circumferentially of the atomizer device 1. The connection between the storage element 20 and the bracket 11 can be adhesive connection, snap connection, threaded connection, etc., which is not limited in this embodiment.
[0042] Specifically, the storage element 20 is used to transport the liquid to be atomized to the liquid storage portion 121 of the atomizer 12. The liquid to be atomized in the liquid storage portion 121 can flow to the heating portion 122 of the atomizer 12. When the atomizer device 1 is in an initial, unused state, the liquid storage portion 121 of the atomizer 12 is filled with the liquid to be atomized. As the user continues to use the atomizer device 1, the liquid to be atomized in the liquid storage portion 121 decreases. At this time, the storage element 20 can transport the liquid to be atomized to the liquid storage portion 121 to replenish the liquid to be atomized in the liquid storage portion 121.
[0043] The atomization device 1 provided in this embodiment is capable of installing and removing the storage component 20 from the side of the atomization device 1 by providing a storage component 20 detachably connected to the bracket 11, so that the storage component 20 is separated from the bracket 11 during transportation, thereby reducing the probability of leakage of the atomization device 1 during transportation of the liquid to be atomized, and increasing the number of puffs of aerosol inhaled by the atomization device 1, thereby improving the user experience.
[0044] Furthermore, users can replace and reuse the storage element 20 individually according to their own needs, thereby reducing the user's usage cost, promoting the recycling of resources, and reducing environmental pollution.
[0045] In summary, this embodiment reduces the probability of leakage of the atomizing device 1 during transportation by providing a detachable storage component 20, and also increases the number of puffs of aerosol inhaled by the atomizing device 1, thereby improving the user experience.
[0046] Please refer to Figure 6-Figure 9In one embodiment, the storage element 20 includes a main body 21 and a first sealing member 22. The main body 21 has a storage space for storing the liquid to be atomized and a connecting hole 211 connected to the storage space. The first sealing member 22 is used to block at least part of the connecting hole 211. When the storage element 20 is connected to the bracket 11, the liquid to be atomized in the storage space flows through the connecting hole 211 and the first sealing member 22 in sequence to the heating part 122 of the atomizer 12.
[0047] The first sealing member 22 can also be understood as a sealing plug that blocks the connecting hole 211. The first sealing member 22 can block all or part of the connecting hole 211. The connecting hole 211 is used to connect the storage space with the outside world and also to connect the storage space with the liquid storage portion 121 of the atomizer 12. The first sealing member 22 is detachably connected to the wall of the connecting hole 211. The connection between the first sealing member 22 and the wall of the connecting hole 211 can be by adhesive connection, snap connection, threaded connection, etc., which is not limited in this embodiment.
[0048] When the storage element 20 is separated from the bracket 11, the first sealing member 22 blocks the communication hole 211, and the liquid to be atomized in the storage space cannot flow to the heating portion 122 of the atomizer 12, thereby reducing the probability of leakage of the liquid to be atomized during transportation of the atomizer device 1. In other words, during transportation of the atomizer device 1, the storage element 20 is separated from the bracket 11, the first sealing member 22 blocks the communication hole 211, and the communication hole 211 of the storage element 20 is not connected to the liquid storage portion 121 of the atomizer 12.
[0049] When the user uses the atomization device 1, the user can install the storage component 20 on the bracket 11 so that the connecting hole 211 of the storage component 20 is connected to the liquid storage part 121 of the atomizer 12. At this time, the first sealing component 22 blocks part of the connecting hole 211. Therefore, the liquid to be atomized in the storage space can flow through the connecting hole 211 and the first sealing component 22 in sequence until it flows to the liquid storage part 121 of the atomizer 12, and then flows from the liquid storage part 121 of the atomizer 12 to the heating part 122 of the atomizer 12.
[0050] In summary, this embodiment provides a storage element 20 consisting of a main body 21 and a first sealing element 22, which not only enables the storage element 20 to have a higher sealing performance during transportation to avoid liquid leakage, but also allows the liquid to be atomized in the storage space to flow to the heating part 122 of the atomizer 12 when the storage element 20 is connected to the bracket 11, thereby increasing the number of aerosol inhaled by the atomization device 1 and improving the user experience.
[0051] Please refer to Figure 6-Figure 9In one embodiment, the first sealing member 22 has a sealing film 221, and the bracket 11 is provided with a pin portion, which is arranged corresponding to the sealing film 221; when the storage member 20 is connected to the bracket 11, the pin portion can penetrate the sealing film 221.
[0052] The ejector pin is used to penetrate the sealing film 221 . In other words, the ejector pin is used to puncture or penetrate at least a portion of the sealing film 221 so that the liquid to be atomized in the storage space can flow through the first sealing component 22 to the heating portion 122 of the atomizer 12 .
[0053] When the storage unit 20 is separated from the bracket 11, the sealing film 221 covers and blocks the connecting hole 211. At this time, the ejector pin does not penetrate the sealing film 221, and the sealing film 221 blocks the connecting hole 211. The connecting hole 211 of the storage unit 20 is not connected to the liquid storage part 121 of the atomizer 12, so that the storage unit 20 has a higher sealing performance during transportation and avoids leakage.
[0054] When the user uses the atomizing device 1, the user can install the storage element 20 on the bracket 11 so that the ejector pin is aligned with the sealing film 221, thereby allowing the ejector pin to penetrate the sealing film 221. Since the sealing film 221 is in a damaged state after being penetrated by the ejector pin, the sealing film 221 only partially blocks the communication hole 211. Therefore, the liquid to be atomized in the storage space can flow through the communication hole 211 and the sealing film 221 in sequence until it flows to the liquid storage portion 121 of the atomizer 12, and then flows from the liquid storage portion 121 of the atomizer 12 to the heating portion 122 of the atomizer 12.
[0055] In summary, this embodiment, by providing the ejector portion on the bracket 11, reduces the probability of the ejector portion being lost, improves user convenience, and reduces operational difficulty. Furthermore, the use of the ejector portion in conjunction with the sealing membrane 221 facilitates simple and convenient operation, facilitates the control of the slow flow of the atomized liquid within the storage space to the heating portion 122 of the atomizer 12, effectively locking the atomized liquid and preventing leakage.
[0056] In addition, when the liquid to be atomized in the storage space first slowly flows to the liquid storage part 121 of the atomizer 12, and then flows from the liquid storage part 121 of the atomizer 12 to the heating part 122 of the atomizer 12, this arrangement also solves the leakage problem caused by the inability of the liquid storage part 121 to lock the liquid, further improving the user experience.
[0057] Please refer to Figure 6-Figure 9In one embodiment, the sealing film 221 includes a film body 2211 and an auxiliary portion 2212 arranged between the film bodies 2211, the auxiliary portion 2212 is arranged corresponding to the ejector pin portion, the auxiliary portion 2212 extends along the radial direction of the film body 2211, and the thickness of the auxiliary portion 2212 is less than the thickness of the film body 2211.
[0058] The auxiliary portion 2212 can be a gap that passes through the sealing film 221, or it can be a sheet thinner than the film body 2211. The number of the auxiliary portion 2212 is one or more. The auxiliary portion 2212 is connected between the two film bodies 2211. The formation of the mold body matches the shape of the connecting hole 211. For example, the film body 2211 is circular, the auxiliary portion 2212 is in the shape of a straight line, and the auxiliary portion 2212 approximately divides the film body 2211 into two semicircles. For another example, the mold body is circular, the number of the auxiliary portion 2212 is multiple, and the multiple auxiliary portions 2212 are in the shape of a cross, and the auxiliary portion 2212 approximately divides the film body 2211 into six sectors.
[0059] When the storage element 20 is connected to the bracket 11, the ejector portion can pass through the auxiliary portion 2212. Specifically, when the storage element 20 is separated from the bracket 11, the membrane 2211 covers and blocks the connecting hole 211. At this time, the ejector portion does not pass through the auxiliary portion 2212. When the user uses the atomization device 1, the user can install the storage element 20 on the bracket 11 so that the ejector portion corresponds to the auxiliary portion 2212, thereby allowing the ejector portion to pass through the auxiliary portion 2212. Since the sealing membrane 221 is in a damaged state after the auxiliary portion 2212 is penetrated by the ejector portion, the membrane 2211 only blocks part of the connecting hole 211. Therefore, the liquid to be atomized in the storage space can flow through the connecting hole 211 and the auxiliary portion 2212 in sequence until it flows to the liquid storage portion 121 of the atomizer 12, and then flows from the liquid storage portion 121 of the atomizer 12 to the heating portion 122 of the atomizer 12.
[0060] In summary, this embodiment reduces operational difficulty and improves user convenience by providing an auxiliary portion 2212 on the sealing film 221 to assist the ejector portion in piercing the sealing film 221. Furthermore, the provision of the auxiliary portion 2212 facilitates controlling the slow flow of the atomized liquid within the storage space to the heating portion 122 of the atomizer 12, effectively locking the atomized liquid and further preventing leakage.
[0061] Please refer to Figure 6-Figure 9 In one embodiment, the storage element 20 further includes a protrusion 23 protruding from the outer peripheral side wall of the main body 21, the connecting hole 211 passes through the protrusion 23, and the outer peripheral side wall of the protrusion 23 is provided with a sealing portion 24, and the sealing portion 24 is used to seal the connection between the bracket 11 and the protrusion 23.
[0062] The communication hole 211 extends through the inner wall of the main body 21 to connect to the storage space. The communication hole 211 also extends through the outer wall of the protrusion 23 to connect to the outside world or the heating unit 122 of the atomizer 12. The protrusion 23 is detachably connected to the bracket 11. When the protrusion 23 is connected to the bracket 11, the sealing portion 24 is provided at the connection between the bracket 11 and the protrusion 23. Optionally, the sealing portion 24 is disposed around the outer peripheral sidewall of the protrusion 23. Further optionally, the sealing portion 24 includes multiple sealing rings, each of which is disposed around the outer peripheral sidewall of the protrusion 23, and the multiple sealing rings are arranged along the axial direction of the protrusion 23.
[0063] In summary, this embodiment improves the connection performance and sealing performance between the storage element 20 and the bracket 11 by providing the protrusion 23 and the sealing portion 24, so as to avoid leakage when the storage element 20 transports the liquid to be atomized to the atomizer 12, thereby improving the user experience.
[0064] Please refer to Figure 6-Figure 9 In one embodiment, the main body 21 further has a liquid injection hole connected to the storage space, and the storage element 20 further includes a cover body 25 and a second sealing member 26. The cover body 25 is installed on the liquid injection hole, and the storage space is formed between the cover body 25 and the main body 21. The second sealing member 26 blocks the connection between the cover body 25 and the main body 21.
[0065] When it is necessary to inject the liquid to be atomized into the storage space, the cover 25 and the second sealing member 26 can be removed from the main body 21, and the liquid to be atomized can be injected into the storage space through the injection hole until the liquid to be atomized in the storage space reaches a preset volume. Then, the injection of the liquid to be atomized is stopped. Then, the second sealing member 26 and the cover 25 can be reinstalled on the main body 21, thereby completing the liquid injection step of the storage element 20.
[0066] The radial dimension of the injection hole is larger than the radial dimension of the connecting hole 211, so that more liquid to be atomized can flow into the storage space through the injection hole, thereby improving the injection efficiency. In addition, the liquid to be atomized in the storage space is controlled to flow slowly through the connecting hole 211 to the heating part 122 of the atomizer 12, thereby effectively locking the liquid to be atomized and further avoiding leakage.
[0067] In summary, this embodiment, by providing the cover 25 and the second sealing member 26, facilitates the injection of the atomized liquid into the storage element 20, reduces the difficulty of the injection operation, and improves the injection efficiency. Furthermore, the provision of the second sealing member 26 improves the connection and sealing performance between the cover 25 and the main body 21, thereby preventing leakage from the storage element 20 and improving the user experience.
[0068] Please refer to Figure 2-Figure 3In one embodiment, there are multiple storage elements 20 , and the multiple storage elements 20 are arranged along an axial direction perpendicular to the atomization device 1 .
[0069] For example, multiple storage elements 20 are arranged along the radial direction of the atomization device 1. Another example is that multiple storage elements 20 are arranged along the circumferential direction of the atomization device 1. This embodiment limits the arrangement of the multiple storage elements 20, allowing them to be inserted from the side of the atomization device 1. This reduces the chance of interference between the multiple storage elements 20 and improves the ease of use of the atomization device 1.
[0070] Please refer to Figure 1-Figure 2 In one embodiment, the atomization device 1 further includes a housing 30 having a receiving space, the host 10 is disposed in the receiving space, and the peripheral side wall of the housing 30 is provided with an assembly groove 31 connected to the receiving space, and the assembly groove 31 is used to accommodate at least part of the storage element 20.
[0071] At least a portion of the storage component 20 can enter the receiving space through the assembly groove 31, so that the storage component 20 can be connected to the bracket 11, and the storage component 20 can deliver the liquid to be atomized to the heating part 122 of the atomizer 12. The assembly groove 31 passes through the peripheral side wall of the shell 30, so that the storage component 20 can be moved in the axial direction perpendicular to the atomization device 1 and assembled and disassembled on the bracket 11. The storage component 20 is detachably connected to the shell 30, which can also be understood as the storage component 20 being detachably connected to the groove wall of the assembly groove 31. For example, when the storage component 20 is connected to the bracket 11, part of the storage component 20 is arranged in the assembly groove 31, and another part of the storage component 20 is arranged outside the assembly groove 31. For another example, when the storage component 20 is connected to the bracket 11, all of the storage components 20 are arranged in the assembly groove 31. In summary, this embodiment provides an assembly groove 31 on the peripheral side wall of the shell 30 to accommodate at least part of the storage unit 20, which is conducive to firmly fixing the storage unit 20 to the shell 30, thereby improving the connection performance between the storage unit 20 and the bracket 11, and further improving the reliability of the atomization device 1.
[0072] Please refer to Figures 1-9 In one embodiment, the side wall of the assembly groove 31 is provided with a first fixing portion 32, and the storage element 20 is provided with a second fixing portion 27. One of the first fixing portion 32 and the second fixing portion 27 is a groove, and the other is a protrusion. The first fixing portion 32 and the second fixing portion 27 can be snap-connected to fix the storage element 20 to the shell 30.
[0073] The assembly slot 31 is formed by the inner sidewalls and inner top wall of the outer shell 30. For example, the first fixing portion 32 is provided on the inner top wall of the outer shell 30, and the second fixing portion 27 is provided on the top wall of the storage element 20. For another example, the first fixing portion 32 is provided on the inner sidewall of the outer shell 30, and the second fixing portion 27 is provided on the sidewall of the storage element 20. There are one or more first fixing portions 32 and one or more second fixing portions 27, and the number of first fixing portions 32 and second fixing portions 27 is equal. Specifically, the first fixing portion 32 is a groove, and the second fixing portion 27 is a protrusion; alternatively, the first fixing portion 32 is a protrusion, and the second fixing portion 27 is a groove. When the storage element 20 is provided in the assembly slot 31 and connected to the bracket 11, the first fixing portion 32 and the second fixing portion 27 are snap-fitted together to secure the storage element 20 to the assembly slot 31, that is, to secure the storage element 20 to the outer shell 30. When the storage element 20 is separated from the bracket 11 , the first fixing portion 32 is separated from the second fixing portion 27 .
[0074] In summary, this embodiment improves the connection performance between the storage element 20 and the housing 30 by providing the first fixing portion 32 and the second fixing portion 27 , thereby improving the connection performance between the storage element 20 and the bracket 11 , and further improving the reliability of the atomization device 1 .
[0075] Please refer to Figure 6-Figure 9 In one embodiment, the storage element 20 is provided with a limiting portion 28, and the limiting portion 28 is used to abut against the peripheral side wall of the housing 30 provided with the assembly groove 31, thereby limiting the position of the storage element 20 along the axial direction perpendicular to the housing 30.
[0076] The main body 21 of the storage element 20 is provided with a stopper 28. The stopper 28 may be a flange, a boss, or the like. Optionally, there are one or more stoppers 28, and the stoppers 28 are provided along the axial direction of the storage element 20 and / or along the radial direction of the storage element 20. The circumferential sidewalls of the housing 30 correspond to the stoppers 28. When the storage element 20 is positioned within the assembly slot 31 and connected to the bracket 11, the circumferential sidewalls of the housing 30 abut against the stoppers 28. When the storage element 20 is separated from the bracket 11, the circumferential sidewalls of the housing 30 separate from the stoppers 28.
[0077] In summary, this embodiment not only limits the position of the storage element 20 along the axial direction perpendicular to the shell 30 by setting the limiting portion 28, thereby improving the accuracy of the installation of the storage element 20, but also plays a positioning role for the storage element 20 in the assembly groove 31, thereby reducing the difficulty of installing the storage element 20, thereby improving the convenience of use of the atomization device 1.
[0078] Unless otherwise specified or incompatible therewith, terms and phrases used in this application shall have the following meanings:
[0079] In this application, the terms "first," "second," etc. are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of technical features indicated. Therefore, a feature specified as "first" or "second" may explicitly or implicitly include at least one of the features.
[0080] In this application, "one or several" refers to any one, any two, or any two or more of the listed items. Among them, "several" refers to any two or any two or more.
[0081] In the present application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise" and the like to indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on the present application.
[0082] In this application, unless otherwise expressly specified or limited, terms such as "mounted," "connected," "connect," and "fixed" should be understood broadly. For example, they may refer to connection, detachable connection, or integration. They may refer to mechanical connection or electrical connection. They may refer to direct connection or indirect connection through an intermediary. They may refer to internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.
[0083] Mentioning "embodiments" and "implementation methods" in this application means that the specific features, structures or characteristics described in conjunction with the embodiments may be included in at least one embodiment of the present application. The appearance of the phrases in various places in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described in this application can be combined with other embodiments. In addition, it should be understood that the features, structures or characteristics described in the various embodiments of the present application can be arbitrarily combined to form another embodiment that does not deviate from the spirit and scope of the technical solution of the present application, unless there is a contradiction between them.
[0084] The above is part of the implementation methods of the present application. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present application. These improvements and modifications are also considered to be within the scope of protection of the present application.
Claims
1. An atomizing device, characterized in that: The atomizing device comprises: A host, comprising a bracket and an atomizer, wherein the atomizer is fixed to the bracket; and At least one storage element is detachably connected to the bracket, and the storage element is movable in an axial direction perpendicular to the atomization device so that the storage element is arranged on the bracket or detached from the bracket. The storage element and the atomizer are arranged in an axial direction perpendicular to the atomization device, and the storage element can be used to store the liquid to be atomized; wherein, when the storage element is connected to the bracket, the storage element is used to transport the liquid to be atomized to the heating part of the atomizer.
2. The atomizing device according to claim 1, characterized in that The storage element includes a main body and a first sealing element. The main body has a storage space for storing the liquid to be atomized and a communication hole communicating with the storage space. The first sealing element is used to block at least a portion of the communication hole. When the storage element is connected to the bracket, the liquid to be atomized in the storage space flows sequentially through the communicating hole and the first sealing element to the heating portion of the atomizer.
3. The atomizing device according to claim 2, characterized in that The first sealing member has a sealing film, and the bracket is provided with a ejector pin portion, which is arranged corresponding to the sealing film; when the storage member is connected to the bracket, the ejector pin portion can penetrate the sealing film.
4. The atomizing device according to claim 3, characterized in that The sealing film includes a film body and an auxiliary portion provided between the film bodies. The auxiliary portion is provided corresponding to the ejector pin portion and extends along the radial direction of the film body. The thickness of the auxiliary portion is smaller than the thickness of the film body.
5. The atomizing device according to claim 2, characterized in that The storage element further includes a protruding portion protruding from the outer peripheral side wall of the main body, the communicating hole passes through the protruding portion, and a sealing portion is provided on the outer peripheral side wall of the protruding portion, and the sealing portion is used to seal the connection between the bracket and the protruding portion.
6. The atomizing device according to claim 2, characterized in that The main body also has a liquid injection hole connected to the storage space. The storage component also includes a cover body and a second sealing component. The cover body is installed on the liquid injection hole, and the storage space is formed between the cover body and the main body. The second sealing component blocks the connection between the cover body and the main body.
7. The atomizing device according to claim 1, characterized in that There are multiple storage elements, and the multiple storage elements are arranged along an axial direction perpendicular to the atomization device.
8. The atomizing device according to claim 1, characterized in that The atomizing device further comprises a shell having a receiving space, the main unit is arranged in the receiving space, and a peripheral side wall of the shell is provided with an assembly groove communicating with the receiving space, the assembly groove being used to accommodate at least a portion of the storage element.
9. The atomizing device according to claim 8, characterized in that The side wall of the assembly groove is provided with a first fixing portion, and the storage component is provided with a second fixing portion. One of the first fixing portion and the second fixing portion is a groove, and the other is a protrusion. The first fixing portion and the second fixing portion can be snap-connected to fix the storage component to the shell.
10. The atomizing device according to claim 8, characterized in that The storage element is provided with a limiting portion, and the limiting portion is used to abut against the peripheral side wall of the housing provided with the assembly groove, thereby limiting the position of the storage element along the axial direction perpendicular to the housing.