Atomizing device
Patent Information
- Application Number
- CN202610954147.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-06-29
- Publication Date
- 2026-09-01
AI Technical Summary
[0004]然而,手动拨动开关结构操作繁琐,且若用户在抽吸时未及时开启开关,将导致雾化芯无油干烧,不仅造成糊芯、产生异味,还可能带来安全隐患;泵控供油结构可在一定程度上实现自动供油并减少漏油风险,但微型泵本身体积较大,难以适配小型化电子烟设备,且制造成本高、功耗大,显著降低产品的经济性与市场竞争力
[0008]在本申请实施例中,通过操作调节件即可切换第一状态和第二状态,无需额外开关或电子控制部件。在第二状态下,雾化基质的油路完全封闭,有效防止因高温膨胀、低温收缩或高海拔负压导致的漏油问题;在第一状态下,供油自动建立,避免用户因忘记开启油路而引发发热丝干烧或糊芯。整个装置结构紧凑、装配简便、成本低廉,既提升了密封可靠性与环境适应性,又实现了直观便捷的操作体验,解决了大容量明油电子烟在防漏与易用性之间难以兼顾的技术难题。
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Figure CN122664501A_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of atomizing devices, and specifically relates to an atomizing device. Background Technology
[0002] As atomizing devices develop towards larger capacity and longer battery life, large-capacity fuel tanks face significant technical challenges in practical use. Due to the large volume of the fuel chamber, the internal air pressure is prone to drastic fluctuations when the ambient temperature changes (such as high-temperature expansion or low-temperature contraction) or when in a negative pressure environment (such as high-altitude areas), leading to abnormal internal pressure, which in turn damages the sealing structure and causes fuel leakage, seriously affecting product reliability and user experience.
[0003] To address the aforementioned risk of oil leakage, relevant technologies typically employ manual toggle switch structures or pump-controlled oil supply structures to control the oil supply.
[0004] However, the manual toggle switch structure is cumbersome to operate, and if the user does not turn on the switch in time when vaping, the atomizer core will dry-burn without oil, which will not only cause the core to burn and produce an odor, but may also pose a safety hazard. The pump-controlled oil supply structure can achieve automatic oil supply and reduce the risk of oil leakage to a certain extent, but the micro pump itself is large in size, making it difficult to adapt to miniaturized electronic cigarette devices, and the manufacturing cost is high and the power consumption is high, which significantly reduces the product's economic efficiency and market competitiveness. Summary of the Invention
[0005] The purpose of this application is to provide an atomizing device that can solve at least some of the above-mentioned problems.
[0006] To solve the above-mentioned technical problems, this application provides the following solution: an atomizing device, comprising: a housing having a receiving space; an atomizing component disposed within the receiving space; a liquid storage component having a liquid storage space and a liquid outlet communicating with the liquid storage space, the liquid outlet being used to fluidly communicate with the atomizing component to supply liquid to the atomizing component, at least a portion of the liquid storage component being disposed within the receiving space; and an adjusting member having a liquid passage, one end of the adjusting member being located outside the housing, and the other end of the adjusting member passing through the housing and located within the liquid outlet, the portion of the adjusting member outside the housing being operable to switch the adjusting member between a first state and a second state; in the first state, the liquid passage communicating with the liquid storage space and the atomizing component; in the second state, the adjusting member blocking the fluid passage between the liquid storage space and the atomizing component.
[0007] In this embodiment, the outer shell constitutes the main body of the device, forming an internal receiving space. One end is connected to the nozzle, and the other end is used to connect to the power module. The atomizing device is disposed within the receiving space. At least a portion of the liquid storage component is also disposed within the receiving space. The liquid storage component has a liquid storage space for storing the atomizing matrix and an outlet for the atomizing matrix to flow out. The adjusting member has a liquid passage for the atomizing matrix to flow through. One end of the adjusting member is disposed outside the outer shell, and the user can adjust the adjusting member by operating the part of the adjusting member disposed outside the outer shell to switch the state of the adjusting member. When the adjusting member is in the first state, the liquid passage is aligned with the outlet of the liquid storage component, so that the liquid storage component and the atomizing component are in fluid communication, and the atomizing matrix can flow out of the liquid storage space through the liquid passage and flow to the atomizing component; when the adjusting member is rotated to the second state, the liquid passage is offset from the outlet position, and the solid part of the adjusting member covers and blocks the outlet of the liquid storage component, blocking the outflow path of the atomizing matrix.
[0008] In this embodiment, the first and second states can be switched by operating the adjustment mechanism, without the need for additional switches or electronic control components. In the second state, the oil path of the atomizing matrix is completely sealed, effectively preventing oil leakage caused by high-temperature expansion, low-temperature contraction, or negative pressure at high altitudes. In the first state, the oil supply is automatically established, preventing the heating coil from burning out or the coil from catching fire due to the user forgetting to turn on the oil path. The entire device is compact, easy to assemble, and inexpensive, improving sealing reliability and environmental adaptability while providing an intuitive and convenient operating experience, solving the technical challenge of balancing leak prevention and ease of use in large-capacity open-oil electronic cigarettes.
[0009] In some embodiments, the adjusting member includes a first adjusting portion and a second adjusting portion connected to each other, at least a portion of the first adjusting portion being located inside the liquid outlet, and the second adjusting portion being disposed outside the housing; wherein the liquid passage is formed in the first adjusting portion.
[0010] In some embodiments, the housing has an air intake passage, and the first adjustment member has an air intake section exposed in the air intake passage, the air intake section having a first air intake hole; in the first state, the first air intake hole connects the air intake passage and the atomizing component; in the second state, the adjustment member blocks the connection between the air intake passage and the atomizing component.
[0011] In some embodiments, the adjusting member further has a second air inlet, which is formed in the second adjusting part; in the first state, the second air inlet connects the outside world with the air intake passage; in the second state, the second air inlet blocks the connection between the outside world and the air intake passage.
[0012] In some embodiments, the housing has a through hole that communicates with the air intake passage; in the first state, the second air intake hole and the through hole are in fluid communication; in the second state, the second air intake hole and the through hole are misaligned.
[0013] In some embodiments, the first air inlet is arranged in the same direction as the liquid passage, and the second air inlet is arranged orthogonally to the first air inlet.
[0014] In some embodiments, the atomizing device includes a first support and a second support, both of which are disposed within the receiving space. The first support and the second support together define a transverse liquid guiding channel, which connects the atomizing component and the liquid outlet. At least a portion of the air intake path is formed in the gap between the first support, the second support, and the housing.
[0015] In some embodiments, the adjusting member further includes two sealing rings, which are disposed opposite to each other on both sides of the liquid passage along the length direction of the first adjusting part, and protrude from the first adjusting part along the outer peripheral surface of the sealing rings.
[0016] In some embodiments, the liquid storage assembly includes a liquid storage element and a first sealing element. The liquid storage element has a liquid storage space and a liquid outlet, and the liquid storage element is inverted. The first sealing element is disposed within the liquid outlet and has an elongated hole along the height direction of the atomizing device. The first adjusting part is rod-shaped and inserted into the housing and the first sealing element along a direction perpendicular to the height of the atomizing device. The adjusting part is rotatably connected to the liquid storage element and the first sealing element about the axis of the first adjusting part. In the first state, the extension direction of the liquid passage is consistent with the extension direction of the elongated hole, allowing fluid to pass through the elongated hole. In the second state, the extension direction of the liquid passage intersects with the extension direction of the elongated hole, preventing fluid from passing through the elongated hole.
[0017] In some embodiments, the atomizing device further includes a liquid guiding element and a sealing guide element. One end of the sealing guide element is connected to the elongated hole, and the other end is connected to the liquid guiding element. The liquid guiding element is disposed in the transverse liquid guiding channel and is in fluid communication with the transverse liquid guiding channel. In the first state, the atomizing matrix in the liquid storage device can flow from the sealing guide element to the liquid guiding element. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the adjusting component in the first state of the atomizing device in the embodiments of this application; Figure 2 This is a schematic diagram of the adjusting component in the second state of the atomizing device in the embodiments of this application; Figure 3 This is a cross-sectional structural diagram of the adjusting component in the atomizing device in the first state in the embodiments of this application; Figure 4 This is a cross-sectional structural diagram of the adjusting component in the atomizing device in the second state in an embodiment of this application; Figure 5 This is a schematic diagram of the structure of the adjusting component in the embodiments of this application; Figure 6 This is a schematic diagram of the outer shell structure in an embodiment of this application; Figure 7 This is a schematic diagram of the structure of the first sealing element in the embodiments of this application.
[0019] Explanation of reference numerals in the attached figures: 10. Outer shell; 11. Through hole; 20. Atomizing component; 21. First support; 22. Second support; 30. Liquid storage component; 31. Liquid outlet; 32. First sealing element; 321. Elongated hole; 33. Liquid storage component; 40. Adjusting element; 41. Liquid passage; 42. First adjusting part; 43. First air inlet; 44. Second air inlet; 45. Sealing strip; 46. Second adjusting part; 50. Liquid guiding element; 60. Sealing guide element; 70. Liquid suction element; 71. Liquid suction element. Detailed Implementation
[0020] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0021] The terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such use of data can be interchanged where appropriate so that embodiments of this application can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class and the number of objects is not limited; for example, a first object can be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.
[0022] The atomizing device provided in this application will be described in detail below with reference to the accompanying drawings, through specific embodiments and application scenarios.
[0023] See Figures 1 to 7This application provides an atomizing device, comprising: a housing 10 having a receiving space; an atomizing component 20 disposed within the receiving space; a liquid storage component 30 having a liquid storage space and a liquid outlet 31 communicating with the liquid storage space, the liquid outlet 31 being fluidly communicating with the atomizing component 20 to supply liquid to the atomizing component 20, at least a portion of the liquid storage component 30 being disposed within the receiving space; and an adjusting member 40 having a liquid passage 41, one end of the adjusting member 40 being located outside the housing 10, and the other end of the adjusting member 40 passing through the housing 10 and located within the liquid outlet 31, the portion of the adjusting member 40 outside the housing 10 being operable to switch the adjusting member 40 between a first state and a second state; in the first state, the liquid passage 41 communicating with the liquid storage space and the atomizing component 20; in the second state, the adjusting member 40 blocking the fluid passage between the liquid storage space and the atomizing component 20.
[0024] In this embodiment, the outer casing 10 constitutes the main body of the device, forming an internal receiving space. One end is connected to the nozzle, and the other end is used to connect to the power module. The atomizing device is disposed within the receiving space. At least a portion of the liquid storage component 30 is also disposed within the receiving space. The liquid storage component 30 has a liquid storage space for storing the atomizing matrix and an outlet 31 for the atomizing matrix to flow out. The adjusting member 40 has a liquid passage 41 for the atomizing matrix to flow through. One end of the adjusting member 40 is disposed outside the outer casing 10, and the user can adjust the adjusting member 40 by operating the part of the adjusting member 40 disposed outside the outer casing 10 to switch the state of the adjusting member 40. When the adjusting member 40 is in the first state, the liquid passage 41 is aligned with the liquid outlet 31 of the liquid storage component 30, so that the liquid storage component 30 and the atomizing component 20 are in fluid communication. The atomizing matrix can flow out of the liquid storage space and flow to the atomizing component 20 through the liquid passage 41. When the adjusting member 40 is subjected to force, such as rotation, pulling or flicking to switch to the second state, the liquid passage 41 is deviated from the position of the liquid outlet 31, and the solid part of the adjusting member 40 covers and blocks the liquid outlet 31 of the liquid storage component 30, blocking the outflow path of the atomizing matrix.
[0025] In this embodiment, the first and second states can be switched by operating the adjustment component 40, without the need for additional switches or electronic control components. In the second state, the oil path of the atomizing matrix is completely sealed, effectively preventing oil leakage caused by high-temperature expansion, low-temperature contraction, or negative pressure at high altitudes. In the first state, the oil supply is automatically established, preventing the heating coil from burning out or the coil from catching fire due to the user forgetting to turn on the oil path. The entire device is compact, easy to assemble, and inexpensive, improving sealing reliability and environmental adaptability while providing an intuitive and convenient operating experience, solving the technical challenge of balancing leak prevention and ease of use in large-capacity open-oil electronic cigarettes.
[0026] In some embodiments, the adjusting member 40 includes a first adjusting part 42 and a second adjusting part 46 connected to each other, at least a portion of the first adjusting part 42 is located inside the liquid outlet 31, and the second adjusting part 46 is disposed outside the housing 10; wherein, the liquid passage 41 is formed in the first adjusting part 42.
[0027] In this embodiment, the first adjustment part 42 is disposed within the receiving space of the outer casing 10 and inserted into the liquid outlet 31, and has a liquid passage 41 formed thereon. Understandably, in the first state, the atomizing matrix in the liquid storage space can flow out through the liquid passage 41. The second adjustment part 46 is located on the outside of the outer casing 10 and is used for user operation. When the first adjustment part 42 is adjusted to the first state along with the adjustment member 40, the liquid passage 41 connects the liquid storage assembly 30 and the atomizing assembly 20, allowing the atomizing matrix to flow into the atomizing assembly 30; when rotated to the second state, the first adjustment part 42 blocks the liquid outlet 31, blocking the outflow path of the atomizing matrix.
[0028] In this embodiment, the external operation is directly converted into the on / off control of the internal oil circuit through the linkage of the first adjusting part 42 and the second adjusting part 46. In the second state, the outlet 31 is reliably sealed, effectively preventing oil leakage caused by changes in cavity pressure; in the first state, the oil circuit is automatically opened, avoiding the risk of dry burning. The overall design requires no electronic components or complex mechanisms, is easy to operate, has good sealing performance, and balances reliability and user experience.
[0029] In some embodiments, the housing 10 has an air intake passage, and the first adjustment part 42 has an air intake section exposed in the air intake passage, and the air intake section has a first air intake hole 43; in a first state, the first air intake hole 43 connects the air intake passage and the atomizing component 20; in a second state, the adjustment member 40 blocks the connection between the air intake passage and the atomizing component 20.
[0030] In this embodiment, the outer casing 10 has an air intake passage, which provides a pathway for airflow. The first adjusting part 42 has an air intake section exposed in the air intake passage. It is understood that when airflow passes through the air intake passage, it will also flow through the air intake section. Furthermore, a first air inlet 43 is located in the air intake section; that is, when airflow passes through the air intake passage, it will also flow through the first air inlet 43. This allows the first air inlet 43 and the second air inlet 44 to communicate through an internal or external air passage within the outer casing 10. When the adjusting part 40 is in the first state, the liquid passage 41 connects the liquid storage assembly 30 and the atomizing assembly 20, while the first air inlet 43 connects the air intake passage and the atomizing assembly 20. When the adjusting part 40 is in the second state, the first adjusting part 42 blocks the liquid outlet 31 of the liquid storage assembly 30, thus sealing the oil passage.
[0031] In this embodiment, the opening and closing of the oil and air circuits are controlled simultaneously by a single adjustment action. In the first state, the gas and liquid channels are open simultaneously to ensure normal atomization; in the second state, the oil circuit is physically closed to effectively prevent oil leakage caused by changes in environmental pressure, while also avoiding ineffective air intake.
[0032] In some embodiments, the adjusting member 40 further has a second air inlet 44, which is formed in the second adjusting part 46; in a first state, the second air inlet 44 connects the outside world with the air intake passage; in a second state, the second air inlet 44 blocks the connection between the outside world and the air intake passage.
[0033] In this embodiment, the second adjustment part 46 is located on the outside of the outer casing 10, and a second air inlet 44 is provided thereon. The second air inlet 44 is provided to connect the outside world with the air intake path. When the adjustment part 40 is in the first state, the liquid passage 41 connects the liquid storage component 30 and the atomizing component 20, and the first air inlet 43 connects the air intake path and the atomizing component 20; when the adjustment part 40 is in the second state, the first adjustment part 42 blocks the oil passage of the liquid outlet 31 of the liquid storage component 30, and the second air inlet 44 also blocks the connection between the outside world and the air intake path.
[0034] In this embodiment, the second air inlet 44 enables the air passage to be open in the first state and blocked in the second state. The overall structure is compact and easy to operate, requiring no additional actuators, which significantly improves the sealing reliability and safety of the large-capacity open oil device.
[0035] In some embodiments, the housing 10 has a through hole 11 that communicates with the air intake passage; in a first state, the second air intake hole 44 and the through hole 11 are in fluid communication; in a second state, the second air intake hole 44 and the through hole 11 are misaligned.
[0036] In this embodiment, the outer casing 10 has a through hole 11. When the adjusting member 40 is in the first state, the second air inlet 44 and the through hole 11 are connected, connecting the outside world and the air intake path. The airflow can also flow through the first air inlet 43, forming a complete air intake path. At the same time, the liquid passage 41 connects the liquid storage component 30 and the atomizing component 30. When the adjusting member 40 is in the second state, the liquid passage 41 is deviated from the liquid outlet 31 of the liquid storage component 30, and the oil passage is blocked by the first adjusting part 42. At the same time, the through hole 11 and the second air inlet 44 are misaligned, and the air passage is also blocked.
[0037] In this embodiment, the oil path and air path can be controlled synchronously by rotating the adjusting member 40. In the first state, the external airflow smoothly enters the atomizing component 20 through the second air inlet 44, through hole 11, air intake path and first air inlet 43, while the oil supply is normal, ensuring stable atomization; in the second state, the oil path is physically blocked, and the air path is also blocked due to the misalignment of through hole 11 and second air inlet 44. The above-mentioned layout is reasonable and does not require additional air guide pipes.
[0038] In some embodiments, the first air inlet 43 is arranged in the same direction as the liquid passage 41, and the second air inlet 44 is arranged orthogonally to the first air inlet 43.
[0039] In this embodiment, the liquid passage 41 is arranged in the same direction as the first air inlet 43, and the second air inlet 44 is arranged orthogonally to the first air inlet 43. The outer casing 10 is provided with a through hole 11. Under certain conditions, the second air inlet 44, the through hole 11, and the first air inlet 43 can be sequentially connected to form a continuous fluid channel. When the adjusting member 40 is in the first state, the liquid passage 41 connects the liquid storage component 30 and the atomizing component 30, and simultaneously the first air inlet 43 and the second air inlet 44 form a continuous air path through the through hole 11. When the adjusting member 40 is in the second state, the first adjusting part 42 blocks the liquid outlet 31, and the oil path is closed.
[0040] In this embodiment, based on the arrangement of the extension directions of the first air inlet 43, the liquid passage 41, and the second air inlet 44, the opening and closing of the oil passage and the air passage can be controlled synchronously by a single adjustment action. The second air inlet 44 and the first air inlet 43 are orthogonally arranged, realizing the function of air passage being open in the first state and air passage being blocked in the second state.
[0041] In some embodiments, the atomizing device includes a first support 21 and a second support 22, both of which are disposed within the receiving space. The first support 21 and the second support 22 together define a transverse liquid guiding channel, which connects the atomizing component 20 and the liquid outlet 31. At least a portion of the air intake path is formed in the gap between the first support 21, the second support 22 and the outer casing 10.
[0042] In this embodiment, the first support 21 and the second support 22 can be used to divide the area within the atomizing device, support other components within the atomizing device, and cooperate with the outer casing 10 or other components to seal against leakage. This embodiment does not impose any limitations on these aspects. Both the first support 21 and the second support 22 are located on the side of the atomizing assembly 20 furthest downstream of the atomizing device. Furthermore, the first support 21 and the second support 22 together form a transverse liquid guiding channel, through which the atomizing matrix flowing from the liquid outlet 31 flows towards the atomizing assembly 20.
[0043] It should be noted that there is a certain gap between the first bracket 21, the second bracket 22 and the outer casing 10, and part of the air intake passage is formed in the above-mentioned gap.
[0044] Furthermore, a liquid suction component 70 can be placed inside the transverse liquid guiding channel. The liquid suction component 70 can be used to absorb excess atomizing matrix and prevent leakage of atomizing matrix.
[0045] In some embodiments, the adjusting member 40 further includes two sealing rings 45. Along the length direction of the first adjusting part 42, the two sealing rings 45 are disposed opposite to each other on both sides of the liquid passage 41, and protrude from the outer peripheral surface of the sealing rings 45 into the first adjusting part 42.
[0046] In this embodiment, two sealing rings 45 are arranged opposite each other on both sides of the liquid passage 41 along the length direction of the first adjusting part 42. The two sealing rings 45 are connected end to end around the circumference of the first adjusting part 42 and protrude from its outer surface in the radial direction of the first adjusting part 42, forming a sealing fit with the inner wall of the adjacent component. When the adjusting part 40 is in the first state, the liquid passage 41 connects the liquid storage component 30 and the atomizing component 20, and the air passage is open. At this time, the sealing rings 45 isolate the two sides of the liquid passage 41 from other parts, realizing the oil passage closure and preventing leakage of the atomizing matrix. When the adjusting part 40 is in the second state, the liquid passage 41 is deviated from the liquid outlet 31, and the sealing rings 45 isolate the two sides of the liquid passage 41 from other parts, realizing the oil passage closure.
[0047] In this embodiment, by providing sealing rings 45 on both sides of the liquid passage 41, the leakage path of the atomizing matrix from the liquid passage 41 to the outside can be effectively blocked regardless of whether the adjusting member 40 is switched to the first state or the second state, significantly improving the sealing reliability. The sealing rings 45 and the liquid passage 41 are integrated into the same adjusting part, eliminating the need for additional sealing components and resulting in a compact structure.
[0048] Furthermore, in practical applications, the number of sealing rings 45 can be increased according to the actual situation, but at least sealing rings 45 must be provided on both sides of the liquid passage 41.
[0049] In some embodiments, the liquid storage assembly 30 includes a liquid storage element 33 and a first sealing element 32. The liquid storage element 33 has a liquid storage space and a liquid outlet 31, and the liquid storage element 33 is inverted. The first sealing element 32 is disposed in the liquid outlet 31, and the first sealing element 32 has an elongated hole 321 along the height direction of the atomizing device. The first adjusting part 42 is rod-shaped and is inserted into the housing 10 and the first sealing element 32 along the height direction perpendicular to the atomizing device. The adjusting part 40 is rotatably connected to the liquid storage element 33 and the first sealing element 32 about the axis of the first adjusting part 42. In a first state, the extension direction of the liquid passage 41 is consistent with the extension direction of the elongated hole 321, allowing fluid to pass through the elongated hole 321. In a second state, the extension direction of the liquid passage 41 intersects with the extension direction of the elongated hole 321, preventing fluid from passing through the elongated hole 321.
[0050] In this embodiment, the liquid storage component 33 has a liquid storage space and a liquid outlet 31. The atomizing matrix is stored in the liquid storage space, and the liquid outlet 31 is provided to achieve fluid communication between the liquid storage component 33 and the atomizing matrix. Further, the liquid storage component 33 is inverted, and the liquid outlet 31 faces upstream of the atomizing device. The first sealing component 32 is installed inside the liquid outlet 31 and has an elongated hole 321 along the length direction of the atomizing device. When the adjusting component 40 is in the first state, the second air inlet 44, the through hole 11 and the first air inlet 43 are connected in sequence to achieve communication with the outside. At the same time, the extension direction of the liquid passage 41 is consistent with the extension direction of the elongated hole 321, allowing fluid to pass through the elongated hole 321, thereby realizing the flow of the atomizing matrix from the liquid storage space through the elongated hole, realizing the oil circuit connection. When the adjusting component 40 is in the second state, the extension direction of the liquid passage 41 intersects with the extension direction of the elongated hole 321, and the first adjusting part 42 thereby blocks the elongated hole 321, and the oil circuit is disconnected. The second air inlet 44 and the through hole 11 are misaligned, blocking the air passage.
[0051] In this embodiment, the oil supply is controlled by aligning the elongated hole 321 of the first sealing member 32 with the oil inlet hole of the first adjusting part 42. Furthermore, the air path and oil path share the same adjusting action, synchronously conducting in the first state to ensure gas-liquid coordination during suction; in the second state, the oil path is closed and the air path is blocked to prevent ineffective air intake and oil leakage.
[0052] In some embodiments, the atomizing device further includes a liquid guiding member 50 and a sealing guide member 60. One end of the sealing guide member 60 is connected to the elongated hole 321, and the other end is connected to the liquid guiding member 50. The liquid guiding member 50 is disposed in the transverse liquid guiding channel and is in fluid communication with the transverse liquid guiding channel. In the first state, the atomizing matrix in the liquid storage member 33 can flow from the sealing guide member 60 to the liquid guiding member 50.
[0053] In this embodiment, one end of the sealing guide 60 is connected to the elongated orifice 321, and the other end is connected to the liquid guide 50, forming a transmission channel for the atomizing matrix from the liquid storage unit 33 to the transverse liquid guide channel. When the adjusting member 40 is in the first state, the liquid passage 41 is connected to the elongated orifice 321, and the atomizing matrix in the liquid storage unit 33 flows sequentially through the elongated orifice 321, the liquid passage 41, the sealing guide 60, the liquid guide 50, and the transverse liquid guide channel to the atomizing assembly 20; when the adjusting member 40 is in the second state, the liquid passage 41 deviates from the elongated orifice 321, the oil circuit is disconnected, and the atomizing matrix cannot flow out.
[0054] In this embodiment, the oil supply path is extended to the liquid guide 50 by the sealing guide 60 to ensure stable and directional delivery of the atomizing matrix and avoid leakage of the atomizing matrix.
[0055] Furthermore, the liquid guiding component 50 may include a first liquid guiding part and a second liquid guiding part. The first liquid guiding part may be an oil-guiding cotton, and the first liquid guiding part is sleeved on the outer periphery of the second liquid guiding part. The second liquid guiding part is in communication with the sealing guide 60. When the adjusting component 40 is in the first state, the liquid passage 41 is aligned with the elongated hole 321 of the first sealing component 32. The atomizing matrix in the liquid storage component 30 flows sequentially through the elongated hole 321, the liquid passage 41, the sealing guide 60, and the second liquid guiding part to the first liquid guiding part to supply the atomizing component 20. When the adjusting component 40 is in the second state, the liquid passage 41 is deviated from the elongated hole 321, the oil circuit is disconnected, and the atomizing matrix cannot flow out.
[0056] In this embodiment, the second liquid guiding part and the first liquid guiding part are fitted together to form a liquid guiding path, which facilitates the flow of the atomizing matrix to the atomizing assembly 30; the sealing guide 60 ensures that the oil supply channel is sealed and connected, avoiding leakage midway. In the second state, the adjusting part 40 blocks the oil passage, effectively preventing oil leakage caused by changes in cavity pressure; in the first state, the atomizing matrix flows sequentially through the second liquid guiding part and the first liquid guiding part, and then flows through the transverse liquid guiding channel to the atomizing assembly 20.
[0057] In practical applications, in the first state, after the atomizing matrix in the liquid storage space flows out of the elongated orifice 321, it flows to the liquid guide 50, and then is guided by the liquid guide 50 to the transverse liquid guide channel. The liquid absorber 70, which is disposed in the transverse liquid guide channel, absorbs the atomizable matrix. The atomizing assembly 30 may include an atomizing core and a liquid absorber 71 disposed on the outer periphery of the atomizing core. The atomizing matrix absorbed by the liquid absorber 70 can be absorbed by the liquid absorber 71, and then atomized by the atomizing core for use by the user. It can be understood that, in the embodiments of this application, after the atomizing matrix flows out of the elongated orifice 321, it flows sequentially to the liquid guide 50, the transverse liquid guide channel, and the liquid absorber 71 of the atomizing assembly 30, and finally flows to the atomizing core.
[0058] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. Furthermore, it should be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may also include performing functions substantially simultaneously or in the reverse order, depending on the functions involved. For example, the described methods may be performed in a different order than described, and various steps may be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.
[0059] The embodiments of this application have been described above with reference to the accompanying drawings. However, this application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of this application without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of this application.
Claims
1. An atomizing device, characterized in that, include: The outer casing (10) has a receiving space; Atomizing component (20) is disposed within the accommodating space; A liquid storage component (30) has a liquid storage space and a liquid outlet (31) communicating with the liquid storage space. The liquid outlet (31) is used to communicate with the atomizing component (20) to supply liquid to the atomizing component (20). At least a portion of the liquid storage component (30) is disposed within the receiving space. An adjusting member (40) having a liquid passage (41) has one end located outside the housing (10) and the other end passing through the housing (10) and located inside the liquid outlet (31). The portion of the adjusting member (40) outside the housing (10) is operable to switch the adjusting member (40) between a first state and a second state. In the first state, the liquid passage (41) connects the liquid storage space and the atomizing component (20). In the second state, the regulating member (40) blocks the fluid passage between the liquid storage space and the atomizing component (20).
2. The atomizing device according to claim 1, characterized in that, The adjusting member (40) includes a first adjusting part (42) and a second adjusting part (46) connected to each other, at least part of the first adjusting part (42) is located inside the liquid outlet (31), and the second adjusting part (46) is disposed outside the outer shell (10); The liquid passage (41) is located in the first adjustment section (42).
3. The atomizing device according to claim 2, characterized in that, The outer casing (10) has an air intake passage, and the first adjustment part (42) has an air intake section exposed in the air intake passage, and the air intake section has a first air intake hole (43). In the first state, the first air inlet (43) connects the air intake passage to the atomizing component (20). In the second state, the adjusting member (40) blocks the connection between the air intake passage and the atomizing component (20).
4. The atomizing device according to claim 3, characterized in that, The adjusting member (40) also has a second air inlet (44), which is located in the second adjusting part (46). In the first state, the second air inlet (44) is connected to the outside and the air intake passage; In the second state, the second air inlet (44) blocks the connection between the outside and the air intake passage.
5. The atomizing device according to claim 4, characterized in that, The outer casing (10) has a through hole (11) that connects to the air intake passage; In the first state, the second air inlet (44) and the through hole (11) are in fluid communication; In the second state, the second air inlet (44) and the through hole (11) are misaligned.
6. The atomizing device according to claim 4, characterized in that, The first air inlet (43) is arranged in the same direction as the liquid passage (41), and the second air inlet (44) is arranged orthogonally to the first air inlet (43).
7. The atomizing device according to claim 3, characterized in that, The atomizing device includes a first support (21) and a second support (22), both of which are disposed within the accommodating space. The first support (21) and the second support (22) together define a transverse liquid guiding channel, which connects the atomizing component (20) and the liquid outlet (31). At least a portion of the air intake path is formed in the gap between the first support (21), the second support (22), and the outer shell (10).
8. The atomizing device according to claim 2, characterized in that, The adjusting member (40) also includes two sealing rings (45). Along the length direction of the first adjusting part (42), the two sealing rings (45) are disposed opposite to each other on both sides of the liquid passage (41), and protrude from the first adjusting part (42) along the outer peripheral surface of the sealing rings (45).
9. The atomizing device according to any one of claims 2 to 8, characterized in that, The liquid storage assembly (30) includes a liquid storage element (33) and a first sealing element (32). The liquid storage element (33) has the liquid storage space and the liquid outlet (31). The liquid storage element (33) is arranged upside down. The first sealing element (32) is disposed in the liquid outlet (31). The first sealing element (32) has an elongated hole (321) along the height direction of the atomizing device. The first adjusting part (42) is rod-shaped and is inserted into the outer shell (10) and the first sealing element (32) along the height direction perpendicular to the atomizing device. The adjusting member (40) is rotatably connected to the liquid storage member (33) and the first sealing member (32) about the axis of the first adjusting part (42). In the first state, the extension direction of the liquid passage (41) is consistent with the extension direction of the elongated hole (321) to allow fluid to pass through the elongated hole (321). In the second state, the extension direction of the liquid passage (41) intersects with the extension direction of the elongated hole (321) to prevent fluid from passing through the elongated hole (321).
10. The atomizing device according to claim 9, characterized in that, The atomizing device further includes a liquid guiding component (50) and a sealing guide component (60). One end of the sealing guide component (60) is connected to the elongated hole (321), and the other end is connected to the liquid guiding component (50). The liquid guiding component (50) is disposed in the transverse liquid guiding channel and is in fluid communication with the transverse liquid guiding channel. In the first state, the atomizing matrix in the liquid storage component (33) can flow from the sealing guide (60) to the liquid guiding component (50).