Atomization device
The vaporization device addresses pressure spikes by incorporating an air gap to prevent air compression during supplement bottle installation, ensuring stable pressure and secure aerosol delivery.
Patent Information
- Application Number
- CN202422174260.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-04
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-09-04
AI Technical Summary
When the existing atomization device is installed with a replenishing bottle, the pressure in the liquid storage space will instantly increase, resulting in the aerosol matrix being extruded.
The atomization device is provided with a first exhaust gap between the first mounting member and the atomizer, so that the installation through holes communicate with the external environment, ensuring that the air in the installation through holes is discharged through the exhaust gap, and preventing the air from being compressed into the liquid storage space.
Effectively prevent the pressure in the liquid storage space from instantly increasing, ensure air pressure stability, prevent the leakage of aerosol matrix, and improve installation stability and exhaust efficiency.
Smart Images

Figure CN223094805U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of atomizing devices, and more particularly, relates to an atomizing device. Background Art
[0002] An atomizing device is an atomizing equipment that can convert an aerosol matrix into an aerosol. The atomizing device in the related art includes an atomizer, a mounting structure, and a liquid replenishing bottle capable of storing an aerosol matrix. The atomizer has a liquid storage space and a communication port. An atomizing core is installed in the liquid storage space, and the communication port communicates with the liquid storage space; the mounting structure is fixedly installed on the surface of the atomizer. An installation through-hole is provided on the surface of the mounting structure close to the atomizer, and the installation through-hole communicates with the communication port; the liquid replenishing bottle is detachably installed in the installation through-hole, and the aerosol matrix in the liquid replenishing bottle is injected into the liquid storage space through the communication port.
[0003] During the process of the liquid replenishing bottle gradually approaching the communication port, the air in the installation through-hole will be compressed into the liquid storage space. This installation method will not only instantaneously increase the pressure in the liquid storage space, but also cause the aerosol matrix in the atomizing core to be extruded under the action of air pressure. Summary of the Utility Model
[0004] The purpose of the embodiment of this application is to provide an atomizing device, aiming to solve the technical problem that the pressure in the liquid storage space will instantaneously increase when installing the liquid replenishing bottle in the related art.
[0005] To achieve the above object, according to one aspect of this application, an atomizing device is provided, including: an atomizer having a liquid storage space and a communication port; a liquid replenishing bottle for storing an aerosol matrix, and the aerosol matrix in the liquid replenishing bottle can be injected into the liquid storage space through the communication port; a first mounting member installed on the atomizer, the surface of the first mounting member close to the communication port is a mounting surface, and an installation through-hole is provided on the mounting surface, the installation through-hole communicates with the communication port, and the liquid replenishing bottle can be installed into the installation through-hole; there is a first exhaust gap between the mounting surface and the atomizer, and the installation through-hole communicates with the external environment through the first exhaust gap.
[0006] Optionally, an installation groove is provided on the atomizer, and the first mounting member is installed in the installation groove; the installation groove has an adjacent installation groove bottom and installation groove wall, and the first exhaust gap is located between the mounting surface and the installation groove bottom; there is a second exhaust gap between the first mounting member and the installation groove wall, and the first exhaust gap communicates with the external environment through the second exhaust gap.
[0007] Optionally, the installation groove further has an installation groove opening opposite to the installation groove bottom, the first mounting member seals the installation groove opening, and the installation through-hole extends to the side of the installation groove opening far from the installation groove bottom; an exhaust hole is provided on one of the first mounting member and the atomizer, and the second exhaust gap communicates with the external environment through the exhaust hole.
[0008] Optionally, the exhaust hole is provided on the surface of the first mounting member away from the communication port.
[0009] Optionally, the replenishing liquid bottle has a bottle mouth, and the surface of the replenishing liquid bottle where the bottle mouth is provided is the bottle mouth surface; the atomizing device further includes a sealing ring located in the mounting through hole. The sealing ring has a first sealing surface and a second sealing surface arranged oppositely. The first sealing surface can cover the bottle mouth surface; the replenishing liquid bottle has a in-place position. When the replenishing liquid bottle is in the in-place position, the replenishing liquid bottle is located on the side of the sealing ring away from the communication port. The replenishing liquid bottle communicates with the communication port through the sealing ring. The first sealing surface covers the bottle mouth surface and abuts tightly against the bottle mouth surface, and the second sealing surface abuts tightly against the bottom of the mounting groove.
[0010] Optionally, the sealing ring can move in the mounting through hole along a preset direction, and the preset direction is parallel to the extending direction of the mounting through hole; the sealing ring further has a sealing peripheral surface, which is adjacent to the first sealing surface and adjacent to the second sealing surface; during the process that the replenishing liquid bottle located in the mounting through hole approaches the communication port, the bottle mouth surface contacts the first sealing surface to push the sealing ring closer to the communication port, and the sealing peripheral surface abuts tightly against the inner wall of the mounting through hole.
[0011] Optionally, the atomizing device further includes a connecting member and a reset member. The connecting member is connected to the sealing ring and can move along a preset direction; the reset member is located in the liquid storage space and is connected to the connecting member. The reset member can move the sealing ring away from the communication port by pushing the connecting member; during the process that the replenishing liquid bottle located in the mounting through hole moves away from the communication port, the reset member moves the sealing ring away from the communication port by pushing the connecting member.
[0012] Optionally, the atomizing device further includes a second mounting member located in the liquid storage space and connected to the connecting member. The second mounting member can approach or move away from the communication port along a preset direction; the reset member has a first end and a second end arranged oppositely. The first end is connected to the second mounting member, and the second end can contact the inner wall surface of the liquid storage space; when the replenishing liquid bottle is in the in-place position, the reset member is in a compressed state, and the second end abuts tightly against the inner wall surface of the liquid storage space.
[0013] Optionally, the reset member is a reset spring, and a limiting post is installed on the inner wall surface of the liquid storage space. The reset spring can be sleeved on the limiting post; when the replenishing liquid bottle is in the in-place position, the reset spring is sleeved on the limiting post.
[0014] Optionally, the connecting member includes a connecting body and a connecting head. The connecting body is located within the installation through-hole, and the sealing ring is fixedly sleeved on the connecting body. The connecting body is provided with a communication hole for communicating the liquid replenishing bottle with the communication port. The connecting head is installed on the connecting body. The atomizer is provided with a through-hole. The connecting head passes through the through-hole and penetrates into the liquid storage space, and can push the second installation member to move away from the communication port. When the liquid replenishing bottle located within the installation through-hole approaches the communication port, the connecting head pushes the second installation member to move away from the communication port. When the liquid replenishing bottle located within the installation through-hole moves away from the communication port, the second installation member pushes the connecting body to move away from the communication port.
[0015] Optionally, the connecting head is provided with a first connecting structure, and the second installation member is provided with a second connecting structure. One of the first connecting structure and the second connecting structure is a connecting bump, and the other is a connecting groove. The connecting head is connected to the second installation member by inserting the connecting bump into the connecting groove.
[0016] Optionally, the atomization device further includes a blocking member. The blocking member is located within the liquid storage space. The blocking member can block the communication port and can move away from the communication port to communicate the communication port with the liquid storage space. When the atomization device is in the upright state, the blocking member blocks the communication port by its own gravity. When the atomization device is in the inverted state, the blocking member moves away from the communication port by its own gravity.
[0017] Optionally, the second installation member has a limiting structure located on the side of the blocking member away from the communication port. When the liquid replenishing bottle located within the installation through-hole moves away from the communication port, the limiting structure can apply a thrust force towards the communication port to the blocking member. When the liquid replenishing bottle is removed from the installation through-hole, the limiting structure applies a thrust force towards the communication port to the blocking member.
[0018] The beneficial effects of the atomization device provided by the present application are as follows: During the process of installing the liquid replenishing bottle into the installation through-hole in the present application, the liquid replenishing bottle will push the air within the installation through-hole to diffuse towards the communication port. Due to the existence of the first exhaust gap, the air within the installation through-hole will be discharged to the external environment through the first exhaust gap, effectively preventing all the air within the installation through-hole from being compressed into the liquid storage space, thereby effectively preventing the pressure within the liquid storage space from increasing instantaneously due to the operation of installing the liquid replenishing bottle. The provided first exhaust gap plays a role in exhausting and relieving pressure, ensuring the stability of the air pressure within the liquid storage space. Description of the Drawings
[0019] To more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0020] Figure 1 Structural schematic diagram of the atomizing device provided in the embodiment of the present application;
[0021] Figure 2 Side view schematic diagram of the atomizing device provided in the embodiment of the present application;
[0022] Figure 3 For Figure 2 Cross-sectional view taken along A-A in
[0023] Figure 4 Side view schematic diagram of the atomizing device provided in the embodiment of the present application with the base and the housing hidden;
[0024] Figure 5 For Figure 4 Cross-sectional view taken along B-B in
[0025] Figure 6 For Figure 5 Enlarged view of part A in
[0026] Figure 7 For Figure 5 Enlarged view of part B in
[0027] Figure 8 Structural schematic diagram after assembling components such as part of the atomizer, the first mounting member, the sealing ring, the connecting member, the reset member, the second mounting member, and the plugging member provided in the embodiment of the present application;
[0028] Figure 9 Top view schematic diagram after assembling components such as part of the atomizer, the first mounting member, the sealing ring, the connecting member, the reset member, the second mounting member, and the plugging member provided in the embodiment of the present application;
[0029] Figure 10 Side view schematic diagram after assembling components such as part of the atomizer, the first mounting member, the sealing ring, the connecting member, the reset member, the second mounting member, and the plugging member provided in the embodiment of the present application;
[0030] Figure 11 For Figure 10 Cross-sectional view taken along C-C in
[0031] Figure 12A cross-sectional schematic view after assembling a partial structure, a first mounting member, a sealing ring, a connecting member, a reset member, and a second mounting member provided in an embodiment of the present application.
[0032] The label details involved in the above-mentioned drawings are as follows:
[0033] 100, atomizer; 110, liquid storage space; 120, communication port; 130, atomization core; 140, mounting groove; 141, bottom of the mounting groove; 142, wall of the mounting groove;
[0034] 200, liquid replenishing bottle; 210, surface of the bottle mouth;
[0035] 300, first mounting member; 310, mounting surface; 320, mounting through hole; 330, exhaust hole;
[0036] 400, sealing ring; 410, first sealing surface; 420, second sealing surface; 430, sealing peripheral surface;
[0037] 500, connecting member; 510, connecting body; 520, connecting head;
[0038] 600, reset member; 700, second mounting member; 710, connecting convex block; 720, limiting structure; 800, limiting post; 900, plugging member;
[0039] 1000, protective shell; 1100, base; 1200, outer shell. Detailed implementation manners
[0040] In order to make the technical problems, technical solutions, and beneficial effects to be solved by the present application clearer and more understandable, the present application will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0041] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or indirectly connected to the other element. Without conflict, the embodiments in the present application and the features in the embodiments can be combined with each other. The present application will be described in detail below with reference to the drawings and embodiments.
[0042] It should be understood that the orientation or positional relationship indicated by terms such as "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present application.
[0043] In addition, the terms "first" and "second" are only used for descriptive purposes and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present application, "a plurality of" means more than two, unless otherwise specifically defined.
[0044] As described in the background art, an atomizing device is an atomizing equipment that can convert an aerosol matrix into an aerosol. The atomizing device in the related art includes an atomizer, a mounting structure, and a liquid replenishing bottle capable of storing the aerosol matrix. The atomizer has a liquid storage space and a communication port. An atomizing core is installed in the liquid storage space, and the communication port communicates with the liquid storage space. The mounting structure is fixedly installed on the surface of the atomizer. An installation through hole is provided on the surface of the mounting structure close to the atomizer, and the installation through hole communicates with the communication port. The liquid replenishing bottle is detachably installed in the installation through hole, and the aerosol matrix in the liquid replenishing bottle is injected into the liquid storage space through the communication port. During the process of the liquid replenishing bottle gradually approaching the communication port, the air in the installation through hole will be compressed into the liquid storage space. This installation method will not only cause the pressure in the liquid storage space to increase instantaneously, but also cause the aerosol matrix in the atomizing core to be extruded under the action of air pressure.
[0045] Referring to Figures 1 to 12 , to solve the above problems, according to one aspect of the present application, an embodiment of the present application provides an atomizing device. The atomizing device includes an atomizer 100, a liquid replenishing bottle 200, and a first mounting member 300. Among them, the atomizer 100 has a liquid storage space 110 and a communication port 120; the liquid replenishing bottle 200 is used to store the aerosol matrix, and the aerosol matrix in the liquid replenishing bottle 200 can be injected into the liquid storage space 110 through the communication port 120; the first mounting member 300 is installed on the atomizer 100. The surface of the first mounting member 300 close to the communication port 120 is a mounting surface 310. An installation through hole 320 is provided on the mounting surface 310, and the installation through hole 320 communicates with the communication port 120. The liquid replenishing bottle 200 can be installed into the installation through hole 320; there is a first exhaust gap between the mounting surface 310 and the atomizer 100, and the installation through hole 320 communicates with the external environment through the first exhaust gap.
[0046] In an embodiment of the present application, the atomizer 100 includes an atomization core 130, which is installed in the liquid storage space 110 and can convert the aerosol matrix in the liquid storage space 110 into aerosol; the external environment is the external atmospheric environment. In addition, the atomization device further includes a protective shell 1000, a base 1100, and an outer shell 1200, wherein the protective shell 1000 is detachably installed on the atomizer 100. When the liquid replenishing bottle 200 is installed in the installation through hole 320, the liquid replenishing bottle 200 is located inside the protective shell 1000; the base 1100 is detachably installed on the protective shell 1000 and is used to support the liquid replenishing bottle 200; the outer shell 1200 is detachably sleeved on the protective shell 1000.
[0047] During the process of installing the liquid replenishing bottle 200 in the present application into the installation through hole 320, the liquid replenishing bottle 200 will push the air in the installation through hole 320 to diffuse towards the direction of the communication port 120. Due to the existence of the first exhaust gap, the air in the installation through hole 320 will be discharged to the external environment through the first exhaust gap, effectively preventing all the air in the installation through hole 320 from being compressed into the liquid storage space 110, thereby effectively preventing the pressure in the liquid storage space 110 from increasing instantaneously due to the operation of installing the liquid replenishing bottle 200. The provided first exhaust gap plays a role in exhausting and relieving pressure, ensuring the stability of the air pressure in the liquid storage space 110.
[0048] Refer to Figure 3 , Figure 5 , Figure 6 , Figure 11 and Figure 12 , in an embodiment, the atomizer 100 is provided with an installation groove 140, and the first installation member 300 is installed in the installation groove 140; the installation groove 140 has an adjacent installation groove bottom 141 and installation groove wall 142, and the first exhaust gap is located between the installation surface 310 and the installation groove bottom 141; there is a second exhaust gap between the first installation member 300 and the installation groove wall 142, and the first exhaust gap communicates with the external environment through the second exhaust gap.
[0049] In this embodiment, the communication port 120 is provided on the installation groove bottom 141; a convex block is installed on the surface of the first installation member 300, and a groove for inserting the convex block is provided on the installation groove wall 142. The first installation member 300 is installed in the installation groove 140 by inserting the convex block into the groove; in other embodiments, the first installation member 300 can also be installed in the installation groove 140 by means of thread fitting. The second exhaust gap is located between the outer peripheral surface of the first installation member 300 and the installation groove wall 142, and the second exhaust gap communicates with the first exhaust gap. In addition, a limiting strip arranged along a preset direction is installed on the groove wall of the installation groove 140, and a limiting groove arranged along the preset direction is provided on the surface of the first installation member 300, and the limiting strip is inserted into the limiting groove.
[0050] During the process of installing the liquid replenishing bottle 200 in the present application into the installation through hole 320, due to the existence of the first exhaust gap and the second exhaust gap, the air in the installation through hole 320 will be discharged to the external environment after passing through the first exhaust gap and the second exhaust gap in sequence, effectively preventing all the air in the installation through hole 320 from being compressed into the liquid storage space 110. The first exhaust gap and the second exhaust gap used in combination in the present application jointly play a role in exhausting and relieving pressure; the provided installation groove 140 not only provides a stable installation position for the first installation member 300, improves the stability of the first installation member 300 installed on the atomizer 100, but also helps to form an exhaust passage in cooperation with the first exhaust gap and the second exhaust gap, optimize the air flow management, and ensure the stability of the air pressure in the liquid storage space 110. In addition, the provided installation groove 140 also plays a role in protecting the first installation member 300 and reducing the volume of the atomization device.
[0051] Refer to Figure 3 、 Figure 5 、 Figure 6 、 Figure 8 、 Figure 9 、 Figure 11 and Figure 12 , in an embodiment, the installation groove 140 further has an installation notch disposed opposite to the installation groove bottom 141, the first installation member 300 seals the installation notch, and the installation through hole 320 extends to the side of the installation notch away from the installation groove bottom 141; an exhaust hole 330 is provided on one of the first installation member 300 and the atomizer 100, and the second exhaust gap communicates with the external environment through the exhaust hole 330.
[0052] In this embodiment, the first installation member 300 has a sealing cover that completely covers the installation notch and fits with the surface of the atomizer 100 where the installation notch is provided; the installation through hole 320 penetrates through the sealing cover.
[0053] During the process of installing the liquid replenishing bottle 200 into the installation through-hole 320, due to the existence of the first exhaust gap, the second exhaust gap, and the exhaust hole 330, the air in the installation through-hole 320 will be discharged outward successively through the first exhaust gap, the second exhaust gap, and the exhaust hole 330, effectively preventing all the air in the installation through-hole 320 from being compressed into the liquid storage space 110. The design of the first mounting member 300 in the present application for blocking the installation notch can not only effectively control the flow path of the air flow, enabling the air in the installation through-hole 320 to be discharged outward more smoothly through the first exhaust gap, the second exhaust gap, and the exhaust hole 330, which helps to improve the exhaust efficiency; at the same time, it also enhances the structural stability between the first mounting member 300 and the atomizer 100, effectively preventing the first mounting member 300 from loosening or being damaged due to vibration or impact during use; in addition, this design effectively blocks dust or debris from entering the second exhaust gap through the installation notch and then entering the liquid storage space 110, ensuring the cleanliness of the liquid storage space 110.
[0054] Refer to Figure 3 , Figure 5 and Figure 9 , in an embodiment, the exhaust hole 330 is provided on the surface of the first mounting member 300 away from the communication port 120. In this embodiment, the exhaust hole 330 is a through-hole and is provided on the blocking cover; the exhaust hole 330 communicates with the second exhaust gap and communicates with the external environment.
[0055] The design of the exhaust hole 330 in the present application being provided on the first mounting member 300 not only helps to form a smoother air flow path, enabling the air in the installation through-hole 320 to be discharged outward more smoothly, but also simplifies the overall design, reduces the manufacturing difficulty and cost. In addition, this design effectively avoids damaging the structure of the atomizer 100 and ensures the reliability of the atomizer 100. In other embodiments, the exhaust hole 330 can also be provided on the installation groove wall 142 of the atomizer 100. In addition, to improve the exhaust efficiency, the number of the exhaust holes 330 is multiple, and the multiple exhaust holes 330 are arranged at intervals along the circumferential direction of the first mounting member 300.
[0056] Refer to Figure 3 , Figure 5 , Figure 11 and Figure 12 , in an embodiment, an external thread is installed on the surface of the liquid replenishing bottle 200, and an internal thread is installed on the hole wall of the installation through-hole 320. The liquid replenishing bottle 200 is installed into the installation through-hole 320 through the thread fit of the external thread and the internal thread.
[0057] The above design not only makes the installation and disassembly of the replenishing liquid bottle 200 simple and convenient, but also enhances the sealing performance between the replenishing liquid bottle 200 and the installation through-hole 320 and the reliability of the connection. In other embodiments, a first magnetic member may be installed on the replenishing liquid bottle 200, and a second magnetic member is installed on the hole wall of the installation through-hole 320. The replenishing liquid bottle 200 is installed into the installation through-hole 320 through the mutually magnetically attracted first magnetic member and second magnetic member.
[0058] Referring to Figure 3 , Figures 5 to 7 , Figure 11 and Figure 12 , in one embodiment, the replenishing liquid bottle 200 has a bottle mouth, and the surface of the replenishing liquid bottle 200 where the bottle mouth is provided is the bottle mouth surface 210; the atomization device further includes a sealing ring 400, the sealing ring 400 is located in the installation through-hole 320, and the sealing ring 400 has a first sealing surface 410 and a second sealing surface 420 which are oppositely arranged, and the first sealing surface 410 can cover the bottle mouth surface 210; the replenishing liquid bottle 200 has a in-place position, when the replenishing liquid bottle 200 is in the in-place position, the replenishing liquid bottle 200 is located on the side of the sealing ring 400 away from the communication port 120, the first sealing surface 410 covers the bottle mouth surface 210 and is in tight contact with the bottle mouth surface 210, and the second sealing surface 420 is in tight contact with the installation groove bottom 141.
[0059] In this embodiment, the aerosol matrix inside the replenishing liquid bottle 200 flows out through the bottle mouth of the replenishing liquid bottle 200; the sealing ring 400 is usually made of an elastic material such as rubber, polyurethane or silica gel, so that the first sealing surface 410 is in tight contact with the bottle mouth surface 210, and the second sealing surface 420 is in tight contact with the installation groove bottom 141. The first sealing surface 410 is usually the surface of the sealing ring 400, and a communication through-hole for the bottle mouth to communicate with the communication port 120 is provided on the first sealing surface 410; the second sealing surface 420 is usually also the surface of the sealing ring 400, and the communication through-hole penetrates through the second sealing surface 420.
[0060] The first sealing surface 410 and the second sealing surface 420 used in cooperation in this application play a dual-sealing role, effectively preventing the replenishing liquid bottle 200 in the in-place position from communicating with the installation through-hole 320. This design not only effectively prevents the aerosol matrix in the replenishing liquid bottle 200 in the in-place position from flowing into the installation through-hole 320, thereby effectively preventing the leakage of the aerosol matrix, but also ensures that the aerosol matrix in the replenishing liquid bottle 200 in the in-place position can be accurately injected into the liquid storage space 110 through the communication port 120.
[0061] Referring to Figure 3 , Figures 5 to 7 , Figure 11 and Figure 12, in one embodiment, the sealing ring 400 can move within the mounting through-hole 320 along a preset direction, which is parallel to the extending direction of the mounting through-hole 320; the sealing ring 400 also has a sealing peripheral surface 430, which is adjacently arranged with the first sealing surface 410 and the second sealing surface 420; during the process of the liquid replenishing bottle 200 located within the mounting through-hole 320 approaching the communication port 120, the bottle mouth surface 210 contacts the first sealing surface 410 to push the sealing ring 400 closer to the communication port 120, and the sealing peripheral surface 430 abuts tightly against the hole wall of the mounting through-hole 320.
[0062] In this embodiment, the preset direction can refer to the positive direction of the preset direction or the reverse direction of the preset direction. The preset direction marked in the drawings is only for illustration; at the same time, the preset direction can be a linear direction or not, which is not limited herein. The provided sealing peripheral surface 430 plays a sealing role, effectively preventing the aerosol matrix in the liquid replenishing bottle 200 from flowing into the space between the seal and the hole wall of the mounting through-hole 320, not only ensuring the stability of the liquid replenishing bottle 200 within the mounting through-hole 320, but also effectively preventing the leakage of the aerosol matrix. In addition, the provided sealing peripheral surface 430 is used in cooperation with the first sealing surface 410 and the second sealing surface 420, which can form multiple seals, effectively preventing the aerosol matrix in the liquid replenishing bottle 200 in the in-place position from flowing into the mounting through-hole 320. In addition, during the process of the liquid replenishing bottle 200 located within the mounting through-hole 320 approaching the communication port 120, the first sealing surface 410 covers the bottle mouth surface 210.
[0063] Refer to Figure 3 , Figure 5 , Figure 8 And Figures 10 to 12 , in one embodiment, the atomizing device further includes a connecting member 500 and a reset member 600. The connecting member 500 is connected to the sealing ring 400 and can move along the preset direction; the reset member 600 is located within the liquid storage space 110 and is connected to the connecting member 500. The reset member 600 can move the sealing ring 400 away from the communication port 120 by pushing the connecting member 500; during the process of the liquid replenishing bottle 200 located within the mounting through-hole 320 moving away from the communication port 120, the reset member 600 moves the sealing ring 400 away from the communication port 120 by pushing the connecting member 500. The provided reset member 600 not only helps to push the sealing ring 400 to move away from the communication port 120 together with the liquid replenishing bottle 200, ensuring the sealing effect during the subsequent installation of the liquid replenishing bottle 200, but also can push the liquid replenishing bottle 200 to move away from the communication port 120, helping the liquid replenishing bottle 200 to disengage from the mounting through-hole 320.
[0064] Refer to Figure 3 , Figure 5, Figure 8 and Figures 10 to 12 , in one embodiment, the atomizing device further includes a second mounting member 700 which is located in the liquid storage space 110 and is connected to the connecting member 500. The second mounting member 700 can approach or move away from the communication port 120 along a preset direction; the reset member 600 has a first end and a second end which are oppositely arranged. The first end is connected to the second mounting member 700, and the second end can contact the inner wall surface of the liquid storage space 110; when the replenishing bottle 200 is in the in-place position, the reset member 600 is in a compressed state, and the second end abuts tightly against the inner wall surface of the liquid storage space 110.
[0065] In this embodiment, the reset member 600 can be any one of a reset spring, a reset silica gel, a reset airbag or a reset spring piece. During the process that the replenishing bottle 200 in this application approaches the communication port 120, the replenishing bottle 200 will contact the first sealing surface 410 and will apply a thrust to the connecting member 500 through the sealing ring 400. The connecting member 500 will transmit this thrust to the second mounting member 700, and the second mounting member 700 will drive the reset member 600 to be compressed; during the process that the replenishing bottle 200 in this application moves away from the communication port 120, the compressed reset member 600 will apply a thrust to the second mounting member 700. Under the action of the thrust, the second mounting member 700 will push the connecting member 500 to move, and the connecting member 500 will push the replenishing bottle 200 to move away from the communication port 120. In other embodiments, the reset member 600 can also be a reset cylinder. The cylinder body of the reset cylinder is fixedly installed on the inner wall surface of the liquid storage space 110, and the piston rod of the reset cylinder is connected to the second mounting member 700.
[0066] Referring to Figure 3 , Figure 5 , Figure 11 and Figure 12 , in one embodiment, an installation groove is provided on the surface of the second mounting member 700 away from the communication port 120. The reset member 600 is located in the installation groove, and the first end is connected to the bottom of the installation groove. The provided installation groove 140 not only serves to install the reset member 600, but also serves to reduce the volume of the atomizing device.
[0067] Referring to Figure 3 , Figure 5 , Figure 11 and Figure 12 , in one embodiment, the reset member 600 is a reset spring, and a limiting post 800 is installed on the inner wall surface of the liquid storage space 110. The reset spring can be sleeved on the limiting post 800; when the replenishing bottle 200 is in the in-place position, the reset spring is sleeved on the limiting post 800.
[0068] In this embodiment, the limiting post 800 is fixedly installed on the inner wall surface of the liquid storage space 110 and is arranged along a preset direction. The arranged limiting post 800 not only restricts the movement range of the return spring, ensuring that the reset member 600 can smoothly push the second mounting member 700 to move, but also guides the return spring to be compressed.
[0069] Referring to Figure 3 , Figure 5 , Figure 11 and Figure 12 , in one embodiment, the connecting member 500 includes a connecting body 510 and a connecting head 520. The connecting body 510 is located in the installation through hole 320. The sealing ring 400 is fixedly sleeved on the connecting body 510. A communication hole for communicating the liquid replenishing bottle 200 with the communication port 120 is provided on the connecting body 510; the connecting head 520 is installed on the connecting body 510. A through hole is provided on the atomizer 100. The connecting head 520 passes through the through hole and penetrates into the liquid storage space 110, and can push the second mounting member 700 to move in a direction away from the communication port 120; when the liquid replenishing bottle 200 located in the installation through hole 320 approaches the communication port 120, the connecting head 520 pushes the second mounting member 700 to move in a direction away from the communication port 120; when the liquid replenishing bottle 200 located in the installation through hole 320 moves away from the communication port 120, the second mounting member 700 pushes the connecting body 510 to move in a direction away from the communication port 120.
[0070] In this embodiment, the connecting body 510 can move in the installation through hole 320 along a preset direction; the sealing ring 400 is fixedly sleeved on the connecting body 510 by an interference fit or adhesive bonding; the arranged connecting body 510 serves to install the sealing ring 400. The communication hole is a through hole to enable the liquid replenishing bottle 200 to communicate with the communication port 120. For the convenience of manufacturing and processing, the connecting head 520 and the connecting body 510 are an integral part.
[0071] In the present application, when the liquid replenishing bottle 200 approaches the communication port 120, the liquid replenishing bottle 200 will contact the first sealing surface 410 and apply a thrust to the connecting body 510 through the sealing ring 400. The connecting body 510 will transmit this thrust to the second mounting member 700 through the connecting head 520, and the second mounting member 700 will drive the reset member 600 to be compressed; in the present application, when the liquid replenishing bottle 200 moves away from the communication port 120, the reset member 600 in the compressed state will apply a thrust to the second mounting member 700. Under the action of the thrust, the second mounting member 700 will push the connecting body 510 to move away from the communication hole through the connecting head 520, and the connecting body 510 will push the liquid replenishing bottle 200 to move away from the communication port 120.
[0072] In addition, to ensure the stability of the movement of the second mounting member 700 in the liquid storage space 110, the number of the connectors 520 is multiple, and the multiple connectors 520 are arranged at intervals along the circumference of the connecting body 510. In order to prevent the aerosol matrix in the liquid storage space 110 from leaking into the mounting through hole 320 through the connecting hole, a sealing seat is fixedly installed on the inner wall surface of the liquid storage space 110, and a sealing hole connected to the penetration hole is provided on the sealing seat. The connector 520 passes through the penetration hole and the sealing hole throat in sequence and penetrates into the liquid storage space 110, and the connector 520 and the hole wall of the sealing hole are transition fit or interference fit.
[0073] Reference Figure 3 , Figure 5 , Figure 11 as well as Figure 12 In one embodiment, a connection groove is provided on the surface of the second mounting member 700 near the connecting port 120, and the connector 520 is inserted into the connection groove and contacts the bottom of the connection groove. The connection groove not only limits the random shaking of the connector 520, but also reduces the volume of the atomizing device. In other embodiments, the connector 520 can be fixedly connected to the bottom of the connection groove.
[0074] Reference Figure 3 , Figure 5 , Figure 11 as well as Figure 12 In one embodiment, a first connecting structure is provided on the connecting head 520, and a second connecting structure is provided on the second mounting member 700. One of the first connecting structure and the second connecting structure is a connecting protrusion 710, and the other is a connecting groove. The connecting head 520 is connected to the second mounting member 700 by inserting the connecting protrusion 710 into the connecting groove.
[0075] In this embodiment, the connection protrusion 710 is fixedly mounted on the second mounting member 700, the connection groove is provided on the connecting head 520, the connection groove forms a first connection structure, and the connection protrusion 710 forms a second connection structure; the connection protrusion 710 and the connection groove used in the present application can connect the connecting head 520 with the second mounting member 700, which not only improves the stability of the movement of the connecting member 500 and the second mounting member 700, but also enhances the connection strength between the connecting member 500 and the second mounting member 700. In other embodiments, the connection protrusion 710 can also be mounted on the connecting head 520, the connection groove is provided on the second mounting member 700, the connection protrusion 710 forms a first connection structure, and the connection groove forms a second connection structure.
[0076] Reference Figure 3 , Figure 5 , Figure 11 as well as Figure 12, in one embodiment, the atomizing device further includes a plugging member 900 located in the liquid storage space 110. The plugging member 900 can plug the communication port 120 and move away from the communication port 120 to enable the communication port 120 to communicate with the liquid storage space 110. When the atomizing device is in the upright state, the plugging member 900 plugs the communication port 120 by its own gravity. When the atomizing device is in the inverted state, the plugging member 900 moves away from the communication port 120 by its own gravity.
[0077] When the replenishing liquid bottle 200 in this application needs to be removed and replaced, first make the atomizing device in the upright state. At this time, the plugging member 900 plugs the communication port 120 by its own gravity, thus avoiding the aerosol matrix in the liquid storage space 110 from flowing into the installation through-hole 320 through the communication port 120 and effectively preventing the leakage of the aerosol matrix. When the replenishing liquid bottle 200 in this application needs to inject the aerosol matrix into the liquid storage space 110, first make the atomizing device in the inverted state. At this time, the plugging member 900 moves away from the communication port 120 under the action of its own gravity to enable the communication port 120 to communicate with the liquid storage space 110. At the same time, the aerosol matrix in the replenishing liquid bottle 200 also flows into the liquid storage space 110 under the action of its own gravity. In addition, to enhance the plugging effect of the plugging member 900, the plugging member 900 is a spherical steel ball.
[0078] Refer to Figure 3 , Figure 5 , Figure 11 and Figure 12 , in one embodiment, the second mounting member 700 has a limiting structure 720 located on the side of the plugging member 900 away from the communication port 120. During the process of the replenishing liquid bottle 200 located in the installation through-hole 320 moving away from the communication port 120, the limiting structure 720 can apply a thrust force towards the communication port 120 to the plugging member 900. When the replenishing liquid bottle 200 is detached from the installation through-hole 320, the limiting structure 720 applies a thrust force towards the communication port 120 to the plugging member 900. The provided limiting structure 720 improves the plugging effect of the plugging member 900.
[0079] In summary, implementing the atomization device provided in this embodiment has at least the following beneficial technical effects: During the process of installing the liquid replenishing bottle 200 into the installation through-hole 320, the liquid replenishing bottle 200 will push the air in the installation through-hole 320 to diffuse towards the communication port 120. Due to the existence of the first exhaust gap, the air in the installation through-hole 320 will be discharged to the external environment through the first exhaust gap, effectively preventing all the air in the installation through-hole 320 from being compressed into the liquid storage space 110, thereby effectively preventing the pressure in the liquid storage space 110 from increasing instantaneously due to the operation of installing the liquid replenishing bottle 200. The provided first exhaust gap plays a role in exhausting and relieving pressure, ensuring the stability of the air pressure in the liquid storage space 110.
[0080] The above are only the preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. An atomizing device, characterized in that, Comprising: An atomizer having a liquid storage space and a communication port; A replenishing bottle for storing an aerosol matrix, and the aerosol matrix in the replenishing bottle can be injected into the liquid storage space through the communication port; A first mounting member mounted on the atomizer. The surface of the first mounting member close to the communication port is a mounting surface. A mounting through hole is provided on the mounting surface, and the mounting through hole communicates with the communication port. The replenishing bottle can be mounted into the mounting through hole; a first exhaust gap is provided between the mounting surface and the atomizer, and the mounting through hole communicates with the external environment through the first exhaust gap.
2. The atomizing device according to claim 1, wherein An installation groove is provided on the atomizer, and the first mounting member is mounted in the installation groove; The installation groove has an adjacent installation groove bottom and installation groove walls. The first exhaust gap is located between the mounting surface and the installation groove bottom; a second exhaust gap is provided between the first mounting member and the installation groove walls, and the first exhaust gap communicates with the external environment through the second exhaust gap.
3. The atomizing device according to claim 2, characterized in that The installation groove further has an installation groove opening opposite to the installation groove bottom. The first mounting member seals the installation groove opening, and the mounting through hole extends to the side of the installation groove opening far from the installation groove bottom; An exhaust hole is provided on one of the first mounting member and the atomizer, and the second exhaust gap communicates with the external environment through the exhaust hole.
4. The atomizing device according to claim 3, characterized in that, The exhaust hole is provided on the surface of the first mounting member far from the communication port.
5. The atomizing device according to any one of claims 2 to 4, characterized in that The replenishing bottle has a bottle mouth, and the surface of the replenishing bottle provided with the bottle mouth is a bottle mouth surface; the atomization device further includes a sealing ring. The sealing ring is located in the mounting through hole and has a relatively arranged first sealing surface and second sealing surface. The first sealing surface can cover the bottle mouth surface; The replenishing bottle has a in-place position. When the replenishing bottle is in the in-place position, the replenishing bottle is located on the side of the sealing ring far from the communication port. The replenishing bottle communicates with the communication port through the sealing ring. The first sealing surface covers the bottle mouth surface and abuts against the bottle mouth surface, and the second sealing surface abuts against the installation groove bottom.
6. The atomization device according to claim 5, characterized in that, The sealing ring can move in the mounting through hole along a preset direction, and the preset direction is parallel to the extending direction of the mounting through hole; the sealing ring further has a sealing peripheral surface, and the sealing peripheral surface is adjacent to the first sealing surface and adjacent to the second sealing surface; During the process that the replenishing bottle in the mounting through hole approaches the communication port, the bottle mouth surface contacts the first sealing surface to push the sealing ring close to the communication port, and the sealing peripheral surface abuts against the hole wall of the mounting through hole.
7. The atomization device according to claim 6, characterized in that, The atomization device further includes a connecting member and a reset member. The connecting member is connected to the sealing ring and can move along the preset direction; the reset member is located in the liquid storage space and is connected to the connecting member. The reset member can move the sealing ring in a direction away from the communication port by pushing the connecting member; During the process of the replenishing liquid bottle located within the installation through-hole moving away from the communication port, the reset member causes the sealing ring to move away from the communication port by pushing the connecting member to move.
8. The atomization device according to claim 7, characterized in that, The atomizing device further includes a second mounting member, which is located within the liquid storage space and is connected to the connecting member. The second mounting member can move closer to or away from the communication port along the preset direction. The reset member has a first end and a second end that are oppositely arranged. The first end is connected to the second mounting member, and the second end can contact the inner wall surface of the liquid storage space. When the replenishing liquid bottle is in the in-place position, the reset member is in a compressed state, and the second end abuts tightly against the inner wall surface of the liquid storage space.
9. The atomizing device according to claim 8, wherein, The reset member is a reset spring, and a limiting post is mounted on the inner wall surface of the liquid storage space. The reset spring can be sleeved on the limiting post. When the replenishing liquid bottle is in the in-place position, the reset spring is sleeved on the limiting post.
10. The atomizing device according to claim 8, characterized in that, The connecting member includes a connecting body and a connecting head. The connecting body is located within the installation through-hole, the sealing ring is fixedly sleeved on the connecting body, and a communication hole for connecting the replenishing liquid bottle and the communication port is provided on the connecting body. The connecting head is mounted on the connecting body. A through-hole is provided on the atomizer. The connecting head passes through the through-hole and penetrates into the liquid storage space, and can push the second mounting member to move away from the communication port. During the process of the replenishing liquid bottle located within the installation through-hole moving closer to the communication port, the connecting head pushes the second mounting member to move away from the communication port. During the process of the replenishing liquid bottle located within the installation through-hole moving away from the communication port, the second mounting member pushes the connecting body to move away from the communication port.
11. The atomizing device according to claim 10, wherein, A first connection structure is provided on the connecting head, and a second connection structure is provided on the second mounting member. One of the first connection structure and the second connection structure is a connection bump, and the other is a connection groove. The connecting head is connected to the second mounting member by inserting the connection bump into the connection groove.
12. The atomizing device according to claim 8, wherein The atomizing device further includes a blocking member, which is located within the liquid storage space. The blocking member can block the communication port and can move away from the communication port to communicate the communication port with the liquid storage space. When the atomizing device is in the upright state, the blocking member blocks the communication port by its own gravity. When the atomizing device is in the inverted state, the blocking member moves away from the communication port by its own gravity.
13. The atomizing device according to claim 12, wherein, The second mounting member has a limiting structure, which is located on the side of the blocking member away from the communication port. During the process of the replenishing liquid bottle located within the installation through-hole moving away from the communication port, the limiting structure can apply a thrust force towards the communication port to the blocking member. When the replenishing liquid bottle is detached from the installation through-hole, the limiting structure applies a thrust force towards the communication port to the blocking member.