An atomizing device
Patent Information
- Application Number
- CN202521747679.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-15
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-08-15
AI Technical Summary
在这种情况下,处于预装配状态的续液部件很容易被进一步推向雾化部件,从而意外地进入使用状态
[0009] Compared with related technologies, the technical solution provided in this application brings significant benefits: the core advantage of this application lies in providing a simple and effective mechanical locking structure for the atomizing device in a pre-assembled state by introducing an independent blocking component. During pre-assembly, this blocking component acts as a physical "wedge" or "block," placed between the atomizing component and the refill component, directly blocking any possible relative movement between the two. Therefore, regardless of any stage from the product's manufacture to delivery to the user, or during daily use before formal use, even if the device as a whole is subjected to accidental pressure or impact from various directions, the external force will be absorbed by the blocking component and will not be converted into effective displacement to drive the refill component towards the atomizing component for further assembly. This design improves the user experience and fundamentally ensures that the functional interfaces of the atomizing component and the refill component will not experience unexpected contact or connection.
Smart Images

Figure CN224722691U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electronic atomization technology, and in particular to an atomization device. Background Technology
[0002] In recent years, atomizing devices, as a common portable device, have seen increasing market demand and technological development. Typically, an atomizing device mainly consists of an atomizing component and a corresponding liquid replenishment component. The atomizing component generally houses power and control components such as a battery and control circuitry, while the liquid replenishment component stores the liquid matrix to be used.
[0003] In the production, sales and use of products, in order to improve the convenience of users unpacking and the product display effect, manufacturers tend to pre-assemble the refilling component and the atomizing component, rather than packaging them completely separately.
[0004] However, the inventors discovered significant drawbacks in this pre-assembly method. During product storage, logistics transportation, or user handling, the atomizing device is inevitably subject to external pressure or accidental pressing. In such cases, the pre-assembled refill component can easily be pushed further towards the atomizing component, thus accidentally entering the usable state.
[0005] Such unintended full assembly can lead to a series of problems: First, it may cause the circuits of the atomizing component and the liquid replenishment component to be connected prematurely, resulting in unnecessary power loss; second, unintended full assembly seriously affects the product's factory quality, reliability, and the user's first-time user experience.
[0006] Therefore, how to provide an atomizing device that can both facilitate convenient pre-assembly and reliably prevent accidental full assembly before the user's formal use is a technical problem that urgently needs to be solved by those skilled in the art. Utility Model Content
[0007] This application aims to address a common technical problem in the field of existing atomizing devices. Specifically, for user convenience and sales demonstration purposes, atomizing devices typically pre-assemble the atomizing component and the refill component. However, this pre-assembled structure is particularly vulnerable to unavoidable external pressure during warehousing, logistics, or daily carrying. The refill component, located in the pre-assembled position, can be accidentally pushed into its fully mating position with only a small amount of external force. This unintended assembly can lead to premature circuit activation, power loss, and a series of other problems, severely compromising the product's reliability and the user's initial experience. Therefore, providing a technical solution that can achieve pre-assembly while effectively resisting accidental pressing is an urgent need in this field.
[0008] To achieve the above objectives, this application provides an atomizing device, including an atomizing component, a liquid-replenishing component independent of the atomizing component, and a blocking component; the atomizing component includes a first housing; the first housing has a first liquid storage chamber and an atomizing core disposed therein, the first liquid storage chamber being used to store a liquid matrix, and the atomizing core being used to atomize the liquid matrix to generate an aerosol; the liquid-replenishing component includes a second housing; the second housing has a second liquid storage chamber formed therein for storing a liquid matrix; the second housing has a first extension arm and a second extension arm disposed at relatively intervals; the blocking component is detachably connected to the atomizing device; The liquid replenishing component can be combined with the atomizing component and the combination state between the two includes a pre-assembled state. In the pre-assembled state, the first liquid storage chamber and the second liquid storage chamber are not connected, and the first extension arm and the second extension arm hold the first housing. When the blocking component is connected to the atomizing device and the two are in a pre-assembled state, the blocking component is at least partially placed between the first housing and the second housing to prevent the liquid replenishment component from moving relative to the atomizing component or to prevent the two from switching from the pre-assembled state to the use state.
[0009] Compared with related technologies, the technical solution provided in this application brings significant benefits: the core advantage of this application lies in providing a simple and effective mechanical locking structure for the atomizing device in a pre-assembled state by introducing an independent blocking component. During pre-assembly, this blocking component acts as a physical "wedge" or "block," placed between the atomizing component and the refill component, directly blocking any possible relative movement between the two. Therefore, regardless of any stage from the product's manufacture to delivery to the user, or during daily use before formal use, even if the device as a whole is subjected to accidental pressure or impact from various directions, the external force will be absorbed by the blocking component and will not be converted into effective displacement to drive the refill component towards the atomizing component for further assembly. This design improves the user experience and fundamentally ensures that the functional interfaces of the atomizing component and the refill component will not experience unexpected contact or connection. Attached Figure Description
[0010] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0011] Figure 1 This is a three-dimensional schematic diagram of an atomizing device provided in an embodiment of this application; Figure 2 yes Figure 1 Schematic diagram of the liquid replenishment component of the atomizing device; Figure 3 yes Figure 2 Schematic diagram of the first locking groove of the fluid replenishment component; Figure 4 yes Figure 2 Schematic diagram of the second locking groove of the fluid replenishment component; Figure 5 This is a schematic diagram of the atomizing component, the first surface, and the first snap-fit of the atomizing device; Figure 6 This is a schematic diagram of the atomizing component, the second surface, and the second snap-fit of the atomizing device; Figure 7 This is a schematic diagram of the atomizing component's protrusions, guide slopes, and air outlet; Figure 8 This is a schematic diagram of the first blocking component; Figure 9 This is a schematic diagram of the second blocking component; Figure 10 and Figure 11 This is a schematic diagram of the pre-assembled state; Figure 12 and Figure 13 This is a schematic diagram showing the first and second blocking components removed in a pre-assembled state. Figure 14 This is a diagram showing the device in use.
[0012] Icon labels: 1. Atomizing device; 11. Liquid replenishment component; 111. Liquid outlet; 112. Receiving cavity; 1131. First extension arm; 1132. Second extension arm; 1141. First locking groove; 1142. Second locking groove; 12. Atomizing component; 121. Liquid inlet; 122. Nozzle; 123. Body; 1231. First surface; 1232. Second surface; 1233. Protrusion; 12331a. First latch one; 12331b. First latch two; 12331c. First latch three; 12331d. First latch four; 12332a. Second latch one; 12332b. Second latch two; 12332c. Second latch three; 12332d. Second latch four; 12333. Guide slope; 124. Base; 1241. Air inlet; 125. Air outlet; 131. First blocking member; 1311. Handle portion; 1312. First support portion; 1313. First positioning portion; 132. Second blocking member; 1321. Second support portion; 1322. Second positioning portion; 141. First gap; 142. Second gap. Detailed Implementation
[0013] The present application will now be described in further detail with reference to the accompanying drawings and embodiments. It should be particularly noted that the following embodiments are for illustrative purposes only and do not limit the scope of the application. Similarly, the following embodiments are only some, not all, embodiments of the present application, and all other embodiments obtained by those skilled in the art without inventive effort are within the scope of protection of the present application.
[0014] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0015] Please see Figure 1 , Figure 1 This is a three-dimensional schematic diagram of an atomizing device according to an embodiment of this application.
[0016] like Figure 1 The atomizing device 1 shown includes a liquid replenishing component 11, an atomizing component 12, a first blocking component 131, and a second blocking component 132, wherein the blocking component is detachably connected to the atomizing device 1.
[0017] The liquid replenishment component 11 includes a second housing and a second liquid storage chamber (not shown in the figure), the second liquid storage chamber being used to store the liquid matrix. The atomizing component 12 includes a first housing, a first liquid storage chamber, and an atomizing core (not shown in the figure), the atomizing core being used to atomize the liquid matrix to generate an aerosol. In the pre-assembled state, the first liquid storage chamber and the second liquid storage chamber are not interconnected.
[0018] The first blocking member 131 is disposed at the upper end of the atomizing member 12, and the second blocking member 132 is disposed at the lower end of the atomizing member 12. In some embodiments, the atomizing device 1 further includes a power supply assembly (not shown) for supplying power to the atomizing member 12.
[0019] When the blocking member is connected to the atomizing device 1 and the connection between the two is in a pre-assembled state, at least a portion of the blocking member is placed between the first housing and the second housing to prevent the liquid replenishing component 11 from moving relative to the atomizing component 12 or to prevent the connection between the two from switching from the pre-assembled state to the use state.
[0020] Please continue reading. Figures 2 to 4 It shows the internal and external structure of the fluid replenishment component 11 in more detail.
[0021] Figure 2This is a schematic diagram of the liquid replenishing component 11 according to an embodiment of this application. The liquid matrix in the second liquid storage chamber of the liquid replenishing component 11 can flow out from the outlet 111 to supply the atomizing component 12. The liquid replenishing component 11 also has a first extension arm 1131 and a second extension arm 1132 arranged at relatively intervals. The portion enclosed by the first extension arm 1131 and the second extension arm 1132 is a receiving cavity 112, the cross-section of which has a U-shaped inner wall profile to facilitate mating with the first housing of the atomizing component 12. In the pre-assembled state, the first extension arm 1131 and the second extension arm 1132 hold the first housing of the atomizing component 12.
[0022] Figure 3 This is a schematic diagram of the first locking groove 1141 of the fluid replenishment component 11. Figure 4 The diagram shows the second locking groove 1142 of the liquid replenishing component 11. Specifically, on the inner wall of the receiving cavity 112, the liquid replenishing component 11 also includes a first locking groove 1141 and a second locking groove 1142. In this embodiment, the first locking groove 1141 and the second locking groove 1142 are designed to be easy to snap together. This structure is convenient to cooperate with the atomizing component 12 in this embodiment.
[0023] In some embodiments, the liquid replenishing component 11 is movable relative to the atomizing component 12, thereby switching from a pre-assembled state to a used state; in the used state, the first liquid storage chamber and the second liquid storage chamber are connected, and the first extension arm 1131 and the second extension arm 1132 continue to hold the first housing.
[0024] Please continue reading. Figure 5 and Figure 6 , Figure 5 and Figure 6 The structural schematic diagrams of the atomizing component 12 in the embodiments of this application are shown from different angles.
[0025] In this embodiment, the first housing of the atomizing component 12 is divided into three main structures: a top nozzle 122, a middle body 123, and a bottom base 124. The body 123 connects the nozzle 122 and the base 124, forming the main body of the atomizing component 12. The first liquid storage chamber and the atomizing core (not shown in the figure) are located inside the body 123. The first liquid storage chamber is used to store the liquid matrix, and the atomizing core is used to heat and atomize the liquid matrix into an aerosol. The nozzle 122 is flat and has an outlet 125 for discharging the atomized aerosol. The atomized aerosol is discharged from the outlet 125 for the user to inhale. The base 124 of the atomizing component 12 has a stable bottom profile to provide support for the atomizing component 12. A liquid inlet 121 is provided at the bottom of the body 123, through which the liquid matrix enters the first liquid storage chamber.
[0026] It should be noted that when the liquid replenishing component 11 and the atomizing component 12 are in a pre-assembled state, the liquid outlet 111 on the liquid replenishing component 11 and the liquid inlet 121 on the atomizing component 12 do not form a fluid passage. That is, the liquid matrix in the second liquid storage chamber cannot flow into the first liquid storage chamber through the liquid outlet 111 and the liquid inlet 121. Specifically, this can be achieved by keeping a certain safe distance between the liquid outlet 111 and the liquid inlet 121 in space, or by allowing the liquid outlet 111 and the liquid inlet 121 to cooperate without puncturing the sealing membrane.
[0027] In some embodiments, the atomizing device 1 includes a connector and a plug-in interface. The connector may be a liquid inlet 121, and the plug-in interface may be a liquid outlet 111. One of the first and second housings is provided with a connector in fluid communication with a corresponding liquid storage chamber, and the other housing is provided with a plug-in interface in fluid communication with a corresponding liquid storage chamber, with at least one of the connector and plug-in interface being in a closed state. In the pre-assembled state, the connector is positioned close to the plug-in interface or inserted into the plug-in interface.
[0028] When the refill component 11 and the atomizing component 12 are in use, the liquid matrix flows out from the outlet 111 of the refill component 11, enters the first liquid storage chamber inside the body 123 through the inlet 121, and then enters the atomizing core. Driven by the power supply, the atomizing core heats and atomizes the liquid matrix to form an aerosol. The aerosol is then transported upward along the preset airflow channel inside the body 123 and finally discharged from the air outlet 125 of the mouthpiece 122 for the user to inhale.
[0029] In some embodiments, to achieve a two-stage connection with the refill component 11, the body 123 of the atomizing component 12 has a first surface 1231 and a second surface 1232 disposed opposite to each other. The atomizing device 1 also includes a locking mechanism. The locking mechanism includes a first latch and a first latching groove 1141 disposed on the first surface 1231, a second latch and a second latching groove 1142 disposed on the second surface 1232, and a second latching groove 1142 disposed on the second extension arm 1132. Specifically, as... Figure 5 and Figure 6 As shown, both the first surface 1231 and the second surface 1232 are provided with a first latch and a second latch, which are used to engage with the first latching groove 1141 and the second latching groove 1142 of the liquid replenishment component 11. Please continue reading. Figure 5 and Figure 6 The first latch is closer to the inner side or middle of the body 123, that is, closer to the receiving cavity 112 of the liquid replenishment component 11. In this embodiment, the first latch may be provided with two on the first surface 1231 and two on the second surface 1232, for a total of four latch structures (e.g., Figure 5 and 6There are four latching structures: a first latch 12331a, a second latch 12331b, a third latch 12331c, and a fourth latch 12331d. The second latch is further away from the inner side of the body 123, that is, away from the receiving cavity 112 of the liquid replenishment component 11. In this embodiment, two second latches can be provided on the first surface 1231 and two surfaces 1232, for a total of four latching structures (as shown in the figure, there are two second latches 12332a, two second latches 12332b, three second latches 12332c, and four second latches 12332d).
[0030] In the pre-assembly state, both the first locking slot 1141 and the second locking slot 1142 are engaged with the first locking buckle. At this time, the first extension arm 1131 is locked on the first surface 1231, and the second extension arm 1132 is locked on the second surface 1232. The liquid inlet 121 and the liquid outlet 111 do not form a flow path. The first extension arm 1131 and the second extension arm 1132 are held on both sides of the body 123. In the use state, both the first locking slot 1141 and the second locking slot 1142 are engaged with the second locking buckle. At this time, the first extension arm 1131 is locked on the first surface 1231, and the second extension arm 1132 is locked on the second surface 1232. The liquid inlet 121 and the liquid outlet 111 form a fluid channel, and the liquid matrix can flow from the second liquid storage chamber into the first liquid storage chamber. In the use state, the first extension arm 1131 and the second extension arm 1132 are still held on both sides of the body 123.
[0031] Please combine Figure 5 and Figure 6 And refer to the following: Figure 7 In order to achieve a smooth and reliable connection between the liquid replenishment component 11 and the atomizing component 12, this embodiment preferably has a specific design for the shape of the first snap fastener and the second snap fastener.
[0032] Preferably, in the embodiments of this application, both the first snap-fit and the second snap-fit are snap-fit structures protruding from the first surface 1231 and the second surface 1232, such as... Figure 7 As shown, its specific structure is a 1233 protrusion structure.
[0033] To facilitate the smooth assembly of the liquid replenishing component 11 and the atomizing component 12, a guide slope 12333 is integrally formed on each protrusion 12333. The inclination direction of the guide slope 12333 is designed such that the cross-sectional area of the protrusion 1233 gradually increases along its engagement path with the liquid replenishing component 11. The design of this embodiment allows the first locking groove 1141 and the second locking groove 1142 to slide smoothly along the guide slope 12333 during the assembly process of the liquid replenishing component 11.
[0034] Please see Figure 8 , Figure 8 This is a schematic diagram of the structure of the first blocking member 131 in this embodiment. The first blocking member 131 is a key component in this application embodiment that provides isolation and limitation of the upper end of the atomizing device 1 in the pre-assembled state. Its structure is designed as an integral part including a handle part 1311, a first support part 1312 and a first positioning part 1313.
[0035] In this embodiment, the first support portion 1312 is a cylindrical structure. In the pre-assembled state, the first blocking member 131 is sleeved on the nozzle 122 of the atomizing component 12, and its first support portion 1312 serves to seal the air outlet 125. The first support portion 1312 can prevent the leakage of residual aerosol inside the atomizing component 12, and also prevent external dust or impurities from entering the air outlet 125.
[0036] The handle portion 1311 of the first blocking member 131 is a bridging structure, extending from the outer wall of the first support portion 1312 and bridging the first support portion 1312 and the first positioning portion 1313. In actual use, the user can grasp and pull the exposed first support portion 1312 upwards with their fingers. Under the action of external force, the handle portion 1311 connected to the first support portion 1312 will also move upwards, thereby causing the first positioning portion 1313 connected to the other end of the handle portion 1311 to disengage from its mating position with the fluid replenishing component 11.
[0037] The first positioning portion 1313 of the first blocking member 131 is connected to the distal end of the handle portion 1311. Its shape can be configured to accommodate the fluid-retaining member 111's receiving cavity 112 (see...). Figure 2 The first positioning part 1313 is U-shaped or arc-shaped wing-shaped and adapted to the upper opening profile of the liquid replenishing component 11. In the pre-assembled state, the first positioning part 1313 is embedded and accommodated in the upper edge of the receiving cavity 112 of the liquid replenishing component 11, thereby physically preventing the upper end of the liquid replenishing component 11 from engaging with the upper end of the atomizing component 12.
[0038] Please see Figure 9 , Figure 9 This is a schematic diagram of the structure of the second blocking member 132 in this embodiment. The second blocking member 132 is used to block the air inlet 1241 on the base 124 of the atomizing component 12 in the pre-assembled state (e.g., Figure 13 (As shown). Specifically, the second blocking member 132 mainly includes a second support part 1321 and a second positioning part 1322.
[0039] Preferably, in this embodiment, the second support 1321 is in the form of an annular base, and its overall outline is consistent with the base 124 of the atomizing component 12 (see...). Figure 6The shape is compatible with the atomizing component 12. In the pre-assembled state, the main function of the second support 1321 is to block the air inlet 1241 of the base 124 of the atomizing component 12. The second support 1321 can effectively prevent external contaminants such as dust or liquid from entering the atomizing component 12 before the product is officially used. In addition, the second support 1321 also supports the base 124, playing a role in stabilizing the support in the pre-assembled state.
[0040] The second positioning portion 1322 of the second blocking member 132 extends upward integrally from the inner wall of the second support portion 1321, and in this embodiment is a rectangular rib or positioning block. In the pre-assembled state, the second positioning portion 1322 is inserted into the second gap 142 between the atomizing component 12 and the lower part of the liquid replenishing component 11 (see...). Figure 14 It is placed inside and comes into contact with the atomizing component 12 and the replenishing component 11, thereby preventing the replenishing component 11 from moving toward the atomizing component 12 due to external force before the atomizing device 1 is put into formal use.
[0041] Please see Figure 10 and Figure 11 , Figure 10 and Figure 11 The pre-assembly state of the atomizing device 1 in this embodiment is shown from different perspectives. This state is the default state of the product before it leaves the factory and is used by the user.
[0042] like Figure 10 and Figure 11 As shown, in the pre-assembled state, the first positioning portion 1313 of the first blocking member 131 is embedded in the first gap 141 formed between the liquid replenishing member 11 and the upper edge of the atomizing member 12 (see...). Figure 13 Inside, the second positioning portion 1322 of the second blocking member 132 abuts against the lower edge of the receiving cavity 112 of the fluid replenishing member 11, and occupies the second gap 142 between the lower edges of the two (see...). Figure 14 The coordinated operation of the first positioning part 1313 and the second positioning part 1322 at the upper and lower ends can effectively absorb external forces, thereby preventing the atomizing device 1 from entering the working state under unexpected circumstances.
[0043] Please continue reading. Figure 12 and Figure 13 , Figure 12 and Figure 13 The atomizing device 1 after the removal of the first blocking member 131 and the second blocking member 132 are shown from different perspectives. This state can be regarded as an intermediate state transitioning from the pre-assembled state to the use state.
[0044] like Figure 12As shown, when the first blocking member 131 is removed, the space originally occupied by the first positioning part 1313 is exposed, namely the first gap 141 between the nozzle 122 of the atomizing member 12 and the upper edge of the liquid replenishing member 11. This first gap 141 is the space necessary for the liquid replenishing member 11 to move further toward the atomizing member 12.
[0045] Similarly, as Figure 13 As shown, when the second blocking member 132 is removed, the space originally occupied by the second positioning part 1322 is exposed, namely the second gap 142 between the lower edges of the atomizing member 12 and the replenishing member 11. This second gap 142 is also the space necessary for the replenishing member 11 to move further toward the atomizing member 12.
[0046] In this embodiment, the first gap 141 and the second gap 142 are spatially located at the upper and lower parts of the interface between the atomizing component 12 and the refill component 11, respectively. Because of these two gaps, the user can apply a simple pressing action to allow the refill component 11 to fill the gap, moving it from the engaged state with the first latch to the engaged state with the second latch, thus entering the usage state.
[0047] Please see Figure 14 , Figure 14 This is a schematic diagram of the usage state of the atomizing device 1 in this embodiment of the application. This state is the usage state achieved by the user after removing all obstructions and applying final pressure to the liquid replenishment component 11.
[0048] like Figure 14 As shown, in the operating state, the refill component 11 has moved its maximum stroke along its assembly direction. Its inner wall has completely passed over the second snap-fit (i.e., protrusion 1233) on the atomizing component 12 and engaged with it. This engagement provides a stable and reliable fit between the refill component 11 and the atomizing component 12.
[0049] During this process, the original first gap 141 and second gap 142 are filled by the movement of the liquid replenishing component 11. Therefore, in the use state, there is no first gap 141 and second gap 142. At this time, the receiving cavity 112 of the liquid replenishing component 11 is tightly fitted with the body 123 and base 124 of the atomizing component 12.
[0050] Please refer to the following: Figures 2 to 14 The specific process of the two-stage assembly of the liquid replenishment component 11 and the atomizing component 12 in this embodiment is as follows: First, during the pre-assembly process, the first locking groove 1141 and the second locking groove 1142 of the liquid replenishing component 11 will first contact the guide slope 12333 of the first locking buckle. With the application of external force, under the guidance of the guide slope 12333 of the first locking buckle, the first locking groove 1141 and the second locking groove 1142 will undergo slight elastic deformation, thus smoothly passing over the top of the protrusion 1233 of the first locking buckle and engaging with it. At this time, the atomizing device 1 enters a stable pre-assembly state protected by the first blocking member 131 and the second blocking member 132. In this state, the first positioning part 1313 of the first blocking member 131 fills the first gap 141, and the second positioning part 1322 of the second blocking member 132 fills the second gap 142. Therefore, the inlet 121 and the outlet 111 will not form a connected fluid passage, and the liquid replenishing component 11 will not prematurely connect to the atomizing component 12 due to external force.
[0051] Before entering the usage state, the user can remove the first blocking member 131 and the second blocking member 132, which are detachably connected to the atomizing component 12, and continuously apply pressure to the liquid replenishing component 11, causing the liquid replenishing component 11 to move towards the atomizing component 12. At this time, the first locking groove 1141 and the second locking groove 1142 will leave the first locking buckle and continue to move along the assembly direction until they contact the guide slope 12333 of the second locking buckle. Under the guidance of the guide slope 12333 of the second locking buckle, the first locking groove 1141 and the second locking groove 1142 will undergo slight elastic deformation, thereby smoothly passing over the top of the protrusion 1233 of the second locking buckle and engaging with it, thus putting the entire atomizing device 1 into the usage state. At this time, the liquid inlet 121 and the liquid outlet 111 form a fluid channel. In this state, the first gap 141 and the second gap 142 are filled by the liquid replenishing component 11.
[0052] In summary, the atomizing device 1 provided in this application embodiment, by introducing the first blocking member 131 and the second blocking member 132, constructs a reliable pre-assembly locking system, thereby bringing a series of significant beneficial effects: Firstly, during the product storage, transportation, and shelf display stages, the first blocking member 131 and the second blocking member 132 act as physical barriers, working together between the liquid replenishing component 11 and the atomizing component 12. They not only provide double restraint on the liquid replenishing component 11 from both vertical and horizontal directions to prevent unnecessary displacement, but also effectively resist accidental external squeezing or pressing due to their structural strength. This fundamentally avoids the possibility that the liquid replenishing component 11, in a non-use state, might accidentally slide from its pre-assembled state (engaged with the first snap-fit) to its usable state (engaged with the second snap-fit).
[0053] Secondly, without removing the first blocking member 131 and the second blocking member 132, the atomizing device 1 cannot enter the operating state. This ensures that a safe physical distance is always maintained between the liquid inlet 121 of the atomizing component 12 and the liquid outlet 111 of the replenishing component 11. This design directly avoids a series of quality problems such as liquid matrix leakage or premature circuit conduction that may result from accidental complete assembly, greatly improving the product's factory reliability and stability, and guaranteeing that users receive a brand-new, undamaged product upon unpacking.
[0054] Finally, this design provides users with a clear and intuitive operating procedure. After receiving the product, users need to manually remove the two visible "safety locks," the first blocking component 131 and the second blocking component 132, and perform a clear "press-to-lock" action to make the product usable. This two-step activation process of "removal-press" is not only simple and easy to understand in operation, but also psychologically establishes a clear boundary for users from "safe and unopened" to "officially used," thereby significantly optimizing the user's first-time user experience.
[0055] It should be noted that the terms "first," "second," and "third" in this application are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.
[0056] The above description is only a part of the embodiments of this application and does not limit the scope of protection of this application. Any equivalent device or equivalent process transformation made based on the content of this application specification and drawings, or direct or indirect application in other related technical fields, are similarly included in the patent protection scope of this application.
Claims
1. An atomizing device, characterized in that, It includes an atomizing component, a liquid replenishing component independent of the atomizing component, and a blocking component; An atomizing component includes a first housing; the first housing is provided with a first liquid storage chamber and an atomizing core, the first liquid storage chamber is used to store a liquid matrix, and the atomizing core is used to atomize the liquid matrix to generate an aerosol; A liquid replenishment component includes a second housing; a second liquid storage chamber for storing a liquid matrix is formed within the second housing. The second housing has a first extension arm and a second extension arm that are arranged at a relative interval; The blocking component is detachably connected to the atomizing device; The liquid replenishing component can be combined with the atomizing component, and the combination state between the two includes a pre-assembly state. In the pre-assembly state, the first liquid storage chamber and the second liquid storage chamber are not connected, and the first extension arm and the second extension arm hold the first housing. When the blocking member is connected to the atomizing device and the engagement state between the two is the pre-assembled state, the blocking member is at least partially placed between the first housing and the second housing to prevent the liquid replenishing component from moving relative to the atomizing component or to prevent the engagement state between the two from switching from the pre-assembled state to the use state.
2. The atomizing device according to claim 1, characterized in that, One of the first housing and the second housing is provided with a connector that is in fluid communication with the corresponding liquid storage chamber, and the other housing is provided with a plug interface that is in fluid communication with the corresponding liquid storage chamber. At least one of the connector and the plug interface is in a closed state. In the pre-assembled state, the connector is positioned close to the socket or inserted into the socket.
3. The atomizing device according to claim 1, characterized in that, The first housing has a first surface and a second surface disposed opposite to each other; In the pre-assembled state, the first extension arm is locked to the first surface, and the second extension arm is locked to the second surface.
4. The atomizing device according to claim 3, characterized in that, The atomizing device further includes a locking mechanism, which includes a first snap fastener and a first snap groove on the first surface, a second snap fastener and a second snap groove on the second surface, and a second snap groove on the second extension arm.
5. The atomizing device according to claim 1, characterized in that, The liquid replenishing component is movable relative to the atomizing component, thereby switching from the pre-assembled state to the use state; in the use state, the first liquid storage chamber and the second liquid storage chamber are connected, and the first extension arm and the second extension arm continue to hold the first housing.
6. The atomizing device according to claim 1, characterized in that, The first housing is provided with an air outlet, and the blocking member includes a first blocking member that is detachably connected to the first housing; When the first blocking member is connected to the first housing, the first blocking member can block the air outlet and a portion of the first blocking member is placed between the first housing and the second housing.
7. The atomizing device according to claim 1, characterized in that, The first housing is provided with an air inlet, and the blocking member includes a second blocking member that is detachably connected to the first housing; When the second blocking member is connected to the first housing, the second blocking member can block the air inlet and a portion of the second blocking member is placed between the first housing and the second housing.
8. The atomizing device according to claim 1, characterized in that, The first extension arm and the second extension arm hug the first housing along the width direction of the atomizing device.
9. The atomizing device according to claim 1, characterized in that, A receiving cavity is formed between the first extension arm and the second extension arm, the inner wall profile of the receiving cavity being adapted to at least a portion of the outer wall profile of the first housing, and / or the cross-section of the receiving cavity is U-shaped.