Liquid storage bottle and atomization equipment
By designing the movable mechanism of the liquid storage bottle, the atomizing core can be quickly wetted during installation, solving the problem of long waiting time after liquid storage bottle installation in existing technologies and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HG INNOVATION LTD
- Filing Date
- 2025-04-29
- Publication Date
- 2026-04-21
AI Technical Summary
The existing liquid storage bottle requires a long waiting time after installation for the atomizing core to be fully wetted, resulting in a poor user experience, especially during the first use, which may lead to problems such as burnt core, leakage, or poor atomization.
A liquid storage bottle is designed, which includes a movable mechanism that can move from a first position to a second position under the action of external force, changing the volume of the liquid storage chamber, and connecting to the atomizing device through the liquid outlet channel to achieve rapid wetting of the atomizing core.
By squeezing the atomizing matrix in the storage chamber, it quickly penetrates into the atomizing core, reducing user waiting time, improving user experience, and avoiding the core lubrication problem during first use.
Smart Images

Figure CN224140191U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of atomization technology, and in particular to a liquid storage bottle and an atomization device. Background Technology
[0002] The main principle of an atomizing device is that the atomizing liquid permeates the atomizing coil, which then heats and atomizes the atomizing medium for the user to inhale. Some existing atomizing devices can be used with external, replaceable reservoirs for replenishing the liquid. However, after inserting the reservoir into the atomizing device, a considerable waiting time is required for the atomizing medium to fully saturate the atomizing coil, especially if the coil itself is not pre-saturated. Otherwise, problems such as coil burnt-out, leakage, or poor atomization may occur during initial use. This extended waiting time after installing the reservoir before the atomizing device can be used effectively results in a poor user experience. Utility Model Content
[0003] The technical problem to be solved by this application is to provide an improved liquid storage bottle and atomizing device that can reduce the time users spend waiting for the coil to be lubricated after installing the liquid storage bottle.
[0004] In some embodiments, a liquid storage bottle is provided for use with an atomizing device. The liquid storage bottle includes a bottle body and a movable mechanism. The movable mechanism is disposed in the internal cavity of the bottle body, and the movable mechanism and the bottle body together define a first liquid storage cavity. The movable mechanism has a liquid outlet channel that can communicate with the first liquid storage cavity for liquid delivery. The movable mechanism can move relative to the bottle body from a first position to a second position under the action of an external force. The volume of the first liquid storage cavity corresponding to the second position is smaller than the volume of the first liquid storage cavity corresponding to the first position.
[0005] In some embodiments, the movable mechanism includes a first movable member and a second movable member; the first movable member and the bottle body together enclose and define the first liquid storage cavity; the first movable member can move relative to the bottle body from the first position to the second position under the action of the second movable member, thereby changing the volume of the first liquid storage cavity.
[0006] In some embodiments, the first movable member has a through hole, and the second movable member has the liquid outlet channel; the second movable member is at least partially disposed in the through hole; the second movable member is capable of moving relative to the first movable member from a third position to a fourth position under the action of an external force; in the third position, the first liquid storage chamber and the liquid outlet channel are not in communication; in the fourth position, the first liquid storage chamber and the liquid outlet channel are in fluid communication.
[0007] In some embodiments, the second movable member includes a movable rod and a blocking portion; the movable rod is at least partially inserted into the through hole, and the movable rod forms the liquid outlet channel; the blocking portion is connected to one end of the movable rod near the first liquid storage chamber; in the third position, the blocking portion is at least partially located in the through hole and seals with the through hole to isolate the liquid outlet channel from the first liquid storage chamber; in the fourth position, the blocking portion extends completely into the first liquid storage chamber, and the movable rod extends at least partially into the first liquid storage chamber, so that the liquid outlet channel and the first liquid storage chamber are in fluid communication.
[0008] In some embodiments, the active mechanism further includes a first seal, which is disposed on the outer periphery of the sealing portion, and the sealing portion is sealed and engaged with the through hole through the first seal.
[0009] In some embodiments, the end of the movable rod away from the sealing portion has a laterally extending protrusion; in the third position, the protrusion and the end face of the first movable member away from the first liquid storage cavity are spaced apart from each other; in the fourth position, the protrusion and the end face of the first movable member away from the first liquid storage cavity abut against each other.
[0010] In some embodiments, the movable mechanism further includes an elastic reset member disposed between the first movable member and the second movable member, the elastic reset member being used to reset the second movable member from the fourth position to the third position; and / or, the first movable member being maintained in the second position after moving from the first position to the second position.
[0011] In some embodiments, the movable mechanism further includes at least one second sealing member disposed on the outer periphery of the first movable member, the first movable member being sealed to the inner wall surface of the bottle body by the second sealing member.
[0012] In some embodiments, the difference between the volume of the first liquid storage chamber corresponding to the second position and the volume of the first liquid storage chamber corresponding to the first position is 1.5 ml to 2.5 ml.
[0013] In some embodiments, an atomizing device is provided, comprising an atomizing apparatus and a liquid storage bottle as described in any of the above embodiments, the atomizing apparatus having a second liquid storage chamber and a driving component, the second liquid storage chamber being in fluid communication with the liquid outlet channel of the liquid storage bottle, and the driving component being used to drive the movable mechanism to move from the first position to the second position.
[0014] According to the above embodiment, the liquid storage bottle has a liquid outlet channel that can communicate with the first liquid storage chamber. The first liquid storage chamber can deliver atomizing matrix to the atomizing device through the liquid outlet channel, thereby realizing the function of replenishing the liquid for the atomizing device. Furthermore, the movable mechanism can move from a first position to a second position relative to the bottle body under the action of external force. The volume of the first liquid storage chamber corresponding to the second position is smaller than the volume of the first liquid storage chamber corresponding to the first position. When the liquid storage bottle filled with atomizing matrix is first installed with the atomizing device, the movable mechanism will compress the space of the first liquid storage chamber, thereby generating a squeezing force on the atomizing matrix in the first liquid storage chamber, forcing more atomizing matrix to flow to the second liquid storage chamber at a faster speed and penetrate into the atomizing core, thereby achieving the purpose of rapid core lubrication. Therefore, it can effectively reduce the waiting time for the user to lubricate the core when using it for the first time and improve the user experience. Attached Figure Description
[0015] Figure 1 These are schematic diagrams of the atomizing device in some embodiments;
[0016] Figure 2 yes Figure 1 The exploded structural diagram of the atomizing device shown is shown.
[0017] Figure 3 yes Figure 1 A schematic diagram of the longitudinal cross-sectional structure of the atomizing device shown.
[0018] Figure 4 These are schematic diagrams of the liquid storage bottle in the first state in some embodiments;
[0019] Figure 5 These are schematic diagrams of the liquid storage bottle in the second state in some embodiments;
[0020] Figure 6 This is a schematic diagram of the liquid storage bottle in the third state in some embodiments;
[0021] Figure 7 These are exploded structural diagrams of the liquid storage bottle in some embodiments;
[0022] Figure 8 These are schematic diagrams of the atomizing device in other embodiments;
[0023] Figure 9 This is a structural schematic diagram of the liquid storage bottle in the first state in some other embodiments;
[0024] Figure 10 This is a structural schematic diagram of the liquid storage bottle in the second state in some other embodiments;
[0025] Figure 11 This is a structural schematic diagram of the liquid storage bottle in a third state in some other embodiments;
[0026] The accompanying figure is labeled as follows:
[0027] 1-Liquid storage bottle, 10-First liquid storage chamber, 11-Bottle body, 111-Neck of bottle, 112-Bottle body, 113-Limiting part, 12-Moving mechanism, 120-Liquid outlet channel, 121-First moving part, 1211-First moving section, 1212-Second moving section, 1210-Through hole, 122-Second moving part, 1221-Moving rod, 1222-Sealing part, 123-First sealing element, 124-Second sealing element, 125-Protrusion, 126-Elastic reset element;
[0028] 2-Atomizing device, 20-Atomizing core, 21-Power supply unit, 22-Liquid storage device, 23-Drive component. Detailed Implementation
[0029] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0030] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.
[0031] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).
[0032] Please see Figures 1 to 3In some embodiments, an atomizing device is provided, comprising an atomizing unit 2 and a storage bottle 1. The storage bottle 1 is used in conjunction with the atomizing unit 2. The storage bottle 1 is used to replenish the atomizing unit 2 with liquid. Specifically, the storage bottle 1 and the atomizing unit 2 are detachably connected. The storage bottle 1 has a first storage chamber 10 for storing the atomizing matrix. The atomizing unit 2 includes an atomizing core 20, a power supply unit 21, and a second storage chamber. Optionally, the power supply unit 21 may also be detachably connected to the atomizing unit 2. When the storage bottle 1 and the atomizing unit 2 are installed together, the first storage chamber 10 and the second storage chamber can be connected, thereby guiding the atomizing matrix stored in the first storage chamber 10 into the second storage chamber. The atomizing core 20 is connected to the power supply unit 21, and the atomizing core 20, when energized, can heat and atomize the atomizing matrix from the second storage chamber to generate an aerosol / vapor for the user to inhale. The power supply unit 21 may include components such as a battery. In some embodiments, a liquid storage component 22 is provided in the second liquid storage chamber. The liquid storage component 22 may be a porous fiber structure such as liquid storage cotton. The liquid storage component 22 has a liquid-locking function and can absorb and store liquid atomizing matrix, thereby controlling the amount and rate of liquid flow of the atomizing matrix to the atomizing core 20.
[0033] Please see Figures 4 to 6 , Figures 4 to 6 Schematic diagrams of the liquid storage bottle 1 in three different states according to some embodiments are shown. The liquid storage bottle 1 includes a bottle body 11 and a movable mechanism 12. The movable mechanism 12 is disposed in the internal cavity of the bottle body 11, and the movable mechanism 12 and the bottle body 11 together enclose and define a first liquid storage cavity 10. The term "upper" as used herein may refer to... Figures 4 to 6 The middle arrow indicates the U-direction; the "down" direction can be referenced. Figures 4 to 6 The middle arrow indicates the direction D; "horizontal" can be referenced. Figures 4 to 6 The middle arrow indicates the LR direction.
[0034] The movable mechanism 12 has a liquid outlet channel 120. The liquid outlet channel 120 can communicate with the first liquid storage chamber 10. When the liquid storage bottle 1 is installed with the atomizing device 2, the liquid outlet channel 120 is connected to the second liquid storage chamber. However, the connection between the liquid outlet channel 120 and the first liquid storage chamber 10 needs to be activated by the movement of the movable mechanism 12. The movable mechanism 12 can move relative to the bottle body 11 from a first position to a second position under the action of external force. Figure 4 The diagram shows the state of the active mechanism 12 when it is in the first position. Figure 6 This shows the state of the active mechanism 12 when it is in the second position; Figure 5 It is the intermediate transition state of activity organization 12 from the first position to the second position.
[0035] Combination Figure 4 and Figure 6As can be seen, the movable mechanism 12 can move downward relative to the bottle 11 to the second position under the action of external force. The atomizing device 2 has a driving component 23, which is used to drive the movable mechanism 12 from the first position to the second position. That is, as Figure 4 As shown, in the initial sealed state without external force, the liquid outlet channel 120 and the first liquid storage chamber 10 are not connected, so the atomizing matrix in the first liquid storage chamber 10 cannot flow out of the bottle body 11; when the liquid storage bottle 1 and the atomizing device 2 are installed together, as Figure 6 As shown, the movable mechanism 12 is displaced by the drive component 23, causing the liquid outlet channel 120 and the first liquid storage chamber 10 to be fluidly connected, thereby making the first liquid storage chamber 10, the liquid outlet channel 120 and the second liquid storage chamber fluidly connected in sequence. The atomizing matrix stored in the first liquid storage chamber 10 can flow to the second liquid storage chamber through the liquid outlet channel 120, realizing the function of replenishing the liquid for the atomizing device 2.
[0036] At the same time, combined Figure 4 and Figure 6 As can be seen, due to the displacement of the moving mechanism 12, the second position (reference) Figure 6 The height H2 of the first liquid storage chamber 10 corresponding to the first position is less than that of the first position (reference). Figure 4 The height H1 of the first liquid storage chamber 10 corresponding to the second position is smaller than the volume of the first liquid storage chamber 10 corresponding to the first position. That is, when the liquid storage bottle 1 filled with atomizing matrix is first installed with the atomizing device 2, the moving mechanism 12 will compress the space of the first liquid storage chamber 10, thereby generating a squeezing force on the atomizing matrix in the first liquid storage chamber 10. This forces more atomizing matrix to flow into the second liquid storage chamber and penetrate into the atomizing core 20 at a faster speed when the liquid storage bottle 1 is first installed with the atomizing device 2, thereby achieving the purpose of rapid core lubrication. Therefore, it can effectively reduce the waiting time for the user to lubricate the core during the first use and improve the user experience.
[0037] In some embodiments, the difference between the volume of the first liquid storage chamber 10 corresponding to the second position and the volume of the first liquid storage chamber 10 corresponding to the first position is 1.5 ml to 2.5 ml. That is, when the liquid storage bottle 1 is initially installed in the atomizing device 2, the change in volume of the first liquid storage chamber 10 is 1.5 ml to 2.5 ml.
[0038] like Figures 4 to 6As shown, in some embodiments, the movable mechanism 12 includes a first movable member 121 and a second movable member 122. The first movable member 121 and the bottle body 11 together define a first liquid storage cavity 10. The first movable member 121 can move relative to the bottle body 11 from a first position to a second position under the thrust provided by the second movable member 122, thereby changing the volume of the first liquid storage cavity 10. That is, the first movable member 121 can move downward a certain distance relative to the bottle body 11 to the second position under the action of external force, thereby compressing the volume of the first liquid storage cavity 10.
[0039] Please refer to the following: Figure 7 The first movable member 121 has a through hole 1210, and the second movable member 122 has a liquid outlet channel 120. Specifically, the through hole 1210 penetrates the upper and lower end faces of the first movable member 121. The second movable member 122 is at least partially disposed in the through hole 1210; that is, in some embodiments, the second movable member 122 may be partially disposed in the through hole 1210; or, in other embodiments, the second movable member 122 may be entirely disposed in the through hole 1210. Furthermore, the second movable member 122 can move relative to the first movable member 121 from a third position to a fourth position under the action of an external force. The third and fourth positions refer to the relative positions of the second movable member 122 and the first movable member 121, which are distinct from the first and second positions. Figures 4 to 6 As shown, the second movable member 122 can move downward relative to the first movable member 121 to a fourth position. In the third position, the liquid outlet channel 120 and the first liquid storage chamber 10 are not in communication. In the fourth position, the liquid outlet channel 120 and the first liquid storage chamber 10 are in fluid communication.
[0040] At any given instant, when the first movable member 121 is in the first or second position, the corresponding second movable member 122 can be in the third or fourth position, with multiple possible combinations. The following describes two embodiments in detail. For example... Figure 4 As shown, when the first movable part 121 is in the first position, the second movable part 122 is in the third position; as Figure 5 As shown, when the first movable part 121 is still in the first position, the second movable part 122 reaches the fourth position; as Figure 6 As shown, when the first movable part 121 reaches the second position, the second movable part 122 is in the fourth position. Figure 9 As shown, when the first movable part 121 is in the first position, the second movable part 122 is in the third position; as Figure 10 As shown, when the first movable part 121 reaches the second position, the second movable part 122 is still in the third position; as Figure 11 As shown, when the first movable part 121 is in the second position, the second movable part 122 reaches the fourth position.
[0041] Specifically, in combination Figures 4 to 6 As shown, Figure 4 , Figure 5 and Figure 6 The illustrations show three different states during the installation of the liquid storage bottle 1 onto the atomizing device 2 in several embodiments, with the first movable member 121 and the second movable member 122 positioned at different locations. The driving component 23 drives the second movable member 122 to move, and when the second movable member 122 moves to a certain position, it pushes the first movable member 121 downwards. That is, the first movable member 121 can move relative to the bottle body 11 from a first position to a second position under the push of the second movable member 122. Specifically, a certain distance is pre-set between the second movable member 122 and the first movable member 121 as space for their relative movement. When the liquid storage bottle 1 is installed onto the atomizing device 2, the driving component 23 first pushes the second movable member 122 downwards, causing the second movable member 122 to move a certain distance downwards relative to the first movable member 121, reaching... Figure 5 As shown, the second movable member 122 and the first movable member 121 abut against each other, and the second movable member 122 is in the fourth position. Under the thrust of the driving component 23, the second movable member 122 continues to drive the first movable member 121 downward together, reaching... Figure 6 As shown, the first movable component 121 is in the second position. That is, during the installation of the liquid storage bottle 1, the second movable component 122 first reaches the fourth position and remains in the fourth position, and the first movable component 121 then reaches the second position. In this way, the liquid outlet channel 120 and the first liquid storage chamber 10 can be connected before the volume of the first liquid storage chamber 10 is compressed, which can reduce the liquid pressure on the movable mechanism 12 (referring to the liquid pressure generated when the first liquid storage chamber 10 is compressed).
[0042] Of course, such as Figures 9 to 11 As shown, Figures 9 to 11Schematic diagrams of the liquid storage bottle 1 in three different states are shown in other embodiments. In other embodiments, the driving component 23 may drive the first movable member 121 and the second movable member 122 to move downwards simultaneously, so that the first movable member 121 reaches the second position first, that is, first compresses the volume of the first liquid storage chamber 10, and the second movable member 122 then reaches the fourth position. A limiting part 113 is provided on the inner wall surface of the bottle body 11. When the first movable member 121 moves downwards to the second position, the first movable member 121 abuts against the limiting part 113, thereby fixing the first movable member 121 in the second position. Subsequently, the driving component 23 continues to push the second movable member 122 downwards relative to the first movable member 121 to the fourth position, so that the liquid outlet channel 120 and the first liquid storage chamber 10 are connected. Thus, since the volume of the first liquid storage chamber 10 is pre-compressed, when the subsequent liquid outlet channel 120 is connected to the first liquid storage chamber 10, the liquid pressure in the first liquid storage chamber 10 is released instantly, which can obtain instantaneous acceleration, which is beneficial to improve the instantaneous liquid guiding speed and thus achieve rapid lubrication of the core.
[0043] like Figures 4 to 6 , Figures 9 to 11 As shown, in some embodiments, the second movable member 122 includes a movable rod 1221 and a sealing portion 1222. The movable rod 1221 at least partially passes through the through hole 1210, and the movable rod 1221 forms a liquid outlet channel 120. For details, please refer to [the relevant documentation / reference needed]. Figure 7 The hollow area inside the movable rod 1221 forms a liquid outlet channel 120, and the side of the movable rod 1221 has an opening communicating with the liquid outlet channel 120. A sealing part 1222 is connected to the end of the movable rod 1221 near the first liquid storage chamber 10 (i.e., the lower end of the movable rod 1221). In the third position, the sealing part 1222 is at least partially located within the through hole 1210, and seals with the through hole 1210 to isolate the liquid outlet channel 120 from the first liquid storage chamber 10. Specifically, as shown... Figure 4 In some embodiments shown, when the second movable member 122 is in the third position, the upper half of the sealing portion 1222 and the port of the through hole 1210 near the first liquid storage chamber 10 (i.e., the lower port of the through hole 1210) are sealed together, and the lower half of the sealing portion 1222 is located inside the first liquid storage chamber 10. The sealing portion 1222 serves as an isolation component between the liquid outlet channel 120 on the movable rod 1221 and the first liquid storage chamber 10. Alternatively, in other embodiments, when the second movable member 122 is in the third position, the sealing portion 1222 may also be entirely located inside the through hole 1210, and the sealing portion 1222 may also serve as an isolation component between the liquid outlet channel 120 on the movable rod 1221 and the first liquid storage chamber 10. Figure 5 and Figure 6 ,as well as Figure 11As shown, when the second movable member 122 is in the fourth position, the sealing part 1222 is fully inserted into the first liquid storage chamber 10, and the sealing part 1222 and the first movable member 121 are separated from each other. In other words, a gap is formed between the sealing part 1222 and the first movable member 121. At the same time, the movable rod 1221 is partially inserted into the first liquid storage chamber 10, thereby, the liquid outlet channel 120 and the first liquid storage chamber 10 are in fluid communication.
[0044] like Figures 4 to 6 , Figures 9 to 11 As shown, in some embodiments, the movable mechanism 12 further includes a first sealing element 123, which is disposed on the outer periphery of the sealing portion 1222. The sealing portion 1222 is sealed and engaged with the through hole 1210 through the first sealing element 123. Specifically, a groove may be provided on the outer periphery of the first sealing element 123, and the first sealing element 123 is installed in the groove. The first sealing element 123 may be an elastic element, such as a silicone element, a rubber element, or a silicone rubber element.
[0045] like Figures 4 to 7 As shown, in some embodiments, the end of the movable rod 1221 away from the sealing portion 1222 has a laterally extending protrusion 125. For example... Figure 4 As shown, in the third position, the protrusion 125 and the end face of the first movable member 121 away from the first liquid storage cavity 10 (i.e., the upper end face of the first movable member 121) are spaced apart from each other. That is, in the third position, there is space for relative displacement between the protrusion 125 and the first movable member 121. The protrusion 125 moves downward relative to the first movable member 121 as the movable rod 1221 moves downward, until it reaches the fourth position. Figure 5 and Figure 6 As shown, in the fourth position, the protrusion 125 and the end face of the first movable member 121 away from the first liquid storage cavity 10 (that is, the upper end face of the first movable member 121) abut against each other, thereby restricting the displacement between the movable rod 1221 of the first movable member 121 and the second movable member 122. At this time, the movable rod 1221 continues to move downward, which will push the first movable member 121 downward to the second position.
[0046] like Figures 4 to 7 , Figures 9 to 11 As shown, in some embodiments, the movable mechanism 12 further includes at least one second seal 124. That is, the number of second seals 124 can be one or more. The second seal 124 is disposed on the outer periphery of the first movable member 121, and the first movable member 121 is sealed to the inner wall surface of the bottle body 11 through the second seal 124. The second seal 124 seals the gap between the first movable member 121 and the inner wall surface of the bottle body 11, preventing liquid in the first liquid storage chamber 10 from leaking out of the bottle body 11 through the gap.
[0047] like Figures 4 to 7 , Figures 9 to 11 As shown, in some embodiments, the movable mechanism 12 further includes an elastic reset member 126 disposed between the first movable member 121 and the second movable member 122. The elastic reset member 126 is used to reset the second movable member 122 from the fourth position to the third position. The elastic reset member 126 can be a spring with elastic deformation capability. When the liquid storage bottle 1 is installed on the atomizing device 2, the driving component 23 drives the movable rod 1221 of the second movable member 122 to move downward from the third position to the fourth position, and the elastic reset member 126 is compressed to store elastic potential energy. When the liquid storage bottle 1 is removed from the atomizing device 2, the driving component 23 and the movable rod 1221 of the second movable member 122 separate, the movable rod 1221 loses external force, and the elastic reset member 126 releases the stored elastic potential energy and converts it into kinetic energy, pushing the movable rod 1221 upward to reset to the equilibrium position (i.e., the third position). Therefore, when the liquid storage bottle 1 is removed from the atomizing device 2, the second movable part 122 can automatically reset to the third position, that is, automatically isolate the liquid outlet channel 120 and the first liquid storage chamber 10, so as to prevent the liquid in the first liquid storage chamber 10 from leaking to the outside of the bottle body 11 after the liquid storage bottle 1 is removed.
[0048] like Figures 4 to 6 , Figures 9 to 11 As shown, in some embodiments, the first movable member 121 remains in the second position after moving from the first position to the second position. That is, the first movable member 121 does not return to the first position after moving to the second position. In other words, the volume of the first liquid storage chamber 10 remains in the state after being compressed the first time. Therefore, when the liquid storage bottle 1 is installed on the atomizing device 2 for the second time, the volume of the first liquid storage chamber 10 no longer changes, thus preventing a sudden large flow of liquid output and avoiding excessive wetting of the atomizing core 20, which has already been soaked in the atomizing matrix, leading to liquid overflow and leakage. Similarly, the same applies when the liquid storage bottle 1 is subsequently installed on the atomizing device 2 for the third, fourth, and subsequent times.
[0049] like Figures 4 to 6 As shown, in some embodiments, the bottle body 11 includes a neck 111 and a body 112, wherein the lateral dimension of the neck 111 is smaller than the lateral dimension of the body 112. The movable mechanism 12 is at least partially located inside the body 112 and is in a sealing fit with the inner wall surface of the body 112. Figures 4 to 6 As shown, in some embodiments, a portion of the movable mechanism 12 is located inside the bottle body 112 and seals against the inner wall of the bottle body 112, while another portion of the movable mechanism 12 is located inside the neck 111 and seals against the inner wall of the neck 111. Alternatively, in other embodiments, the movable mechanism 12 may be entirely located inside the bottle body 112 and seals against the inner wall of the bottle body 112. The portion of the movable mechanism 12 located inside the bottle body 112 is used to compress the volume of the first liquid storage chamber 10, thereby achieving rapid lubrication of the core.
[0050] like Figures 4 to 6 As shown, in some embodiments, the movable mechanism 12 includes a first movable part 1211 and a second movable part 1212 connected together. The lateral dimension of the first movable part 1211 is smaller than the lateral dimension of the second movable part 1212. The first movable part 1211 is sealed to the inner wall surface of the bottle neck 111, and the second movable part 1212 is sealed to the inner wall surface of the bottle body 112. The second movable part 1212 and the bottle body 112 together define the first liquid storage cavity 10. Specifically, the first movable member 121 may include the first movable part 1211 and the second movable part 1212 connected together. The movable mechanism 12 may further include two second seals 124. One second seal 124 is disposed on the outer periphery of the first movable part 1211, and the first movable part 1211 is sealed to the inner wall surface of the bottle neck 111 through the second seal 124. The other second seal 124 is disposed on the outer periphery of the second movable part 1212, and the second movable part 1212 is sealed to the inner wall surface of the bottle body 112 through the second seal 124. The two second seals 124 are respectively located on the upper and lower sides of the first movable part 121, sealing the gap between the outer periphery of the first movable part 121 and the inner wall surface of the bottle body 11, preventing liquid in the first liquid storage chamber 10 from leaking to the outside of the bottle body 11. Similarly, the second seal 124 can be an elastic element, such as a silicone element, a rubber element, or a silicone rubber element.
[0051] like Figure 3 As shown, in some embodiments, the driving component 23 is a hollow tubular structure. This tubular driving component 23 can push the movable rod 1221 away from one end of the sealing part 1222. Furthermore, the tubular driving component 23 has a cavity that connects to the liquid outlet channel 120 and the second liquid storage chamber, serving as a flow channel between the liquid outlet channel 120 and the second liquid storage chamber. Because the annular outer wall of the driving component 23 presses against the movable rod 1221, it does not affect the construction of a larger flow channel, and the pressing and pushing process is more stable. Figure 8 As shown, in some other embodiments, the driving component 23 is a solid column. The solid column driving component 23 can be inserted into the liquid outlet channel 120 to push the sealing part 1222 downward and drive the movable rod 1221 downward together. The volume of the driving component 23 is smaller than the volume of the liquid outlet channel 120 to reserve some space for the atomized matrix in the first liquid storage chamber 10 to flow in the liquid outlet channel 120.
[0052] The above-described specific examples are for illustrative purposes only and are not intended to limit the scope of this invention. Those skilled in the art to which this invention pertains can make various simple deductions, modifications, or substitutions based on the concept of this invention.
Claims
1. A liquid storage bottle (1) for use in conjunction with an atomising device, characterised in that, The liquid storage bottle (1) includes a bottle body (11) and a moving mechanism (12); The movable mechanism (12) is disposed in the internal cavity of the bottle body (11), and the movable mechanism (12) and the bottle body (11) together enclose and define the first liquid storage cavity (10); The active mechanism (12) has a liquid outlet channel (120) that can communicate with the first liquid storage chamber (10) for liquid guiding; The movable mechanism (12) is able to move from a first position to a second position relative to the bottle body (11) under the action of an external force; The volume of the first liquid storage chamber (10) corresponding to the second position is smaller than the volume of the first liquid storage chamber (10) corresponding to the first position.
2. The liquid reservoir bottle (1) according to claim 1, characterized in that The active mechanism (12) includes a first active component (121) and a second active component (122); The first movable component (121) and the bottle body (11) together enclose and define the first liquid storage cavity (10). The first movable component (121) can move from the first position to the second position relative to the bottle body (11) under the action of the second movable component (122), thereby changing the volume of the first liquid storage cavity (10).
3. The liquid reservoir bottle (1) according to claim 2, characterized in that The first movable member (121) has a through hole (1210), and the second movable member (122) has the liquid outlet channel (120); the second movable member (122) is at least partially disposed in the through hole (1210); The second movable member (122) can move from a third position to a fourth position relative to the first movable member (121) under the action of an external force; In the third position, the first liquid storage chamber (10) and the liquid outlet channel (120) are not connected; in the fourth position, the first liquid storage chamber (10) and the liquid outlet channel (120) are in fluid communication.
4. The liquid reservoir bottle (1) according to claim 3, characterized in that The second movable component (122) includes a movable rod (1221) and a sealing part (1222); The movable rod (1221) is at least partially inserted into the through hole (1210), and the movable rod (1221) forms the liquid outlet channel (120); the sealing part (1222) is connected to the end of the movable rod (1221) near the first liquid storage chamber (10); In the third position, the sealing part (1222) is at least partially located inside the through hole (1210) and is sealed to the through hole (1210) to isolate the liquid outlet channel (120) from the first liquid storage chamber (10); in the fourth position, the sealing part (1222) extends completely into the first liquid storage chamber (10), and the movable rod (1221) extends at least partially into the first liquid storage chamber (10) to make the liquid outlet channel (120) and the first liquid storage chamber (10) in fluid communication.
5. The liquid reservoir bottle (1) according to claim 4, characterized in that The active mechanism (12) further includes a first sealing element (123), which is disposed on the outer periphery of the sealing part (1222), and the sealing part (1222) is sealed and fitted by the first sealing element (123) and the through hole (1210).
6. The liquid storage bottle (1) according to claim 4, characterized in that, The movable rod (1221) has a laterally extending protrusion (125) at one end away from the sealing part (1222); in the third position, the protrusion (125) and the end face of the first movable member (121) away from the first liquid storage cavity (10) are spaced apart from each other; in the fourth position, the protrusion (125) and the end face of the first movable member (121) away from the first liquid storage cavity (10) abut against each other.
7. The liquid reservoir bottle (1) according to claim 3, characterized in that The movable mechanism (12) further includes an elastic reset member (126) disposed between the first movable member (121) and the second movable member (122), the elastic reset member (126) being used to reset the second movable member (122) from the fourth position to the third position; And / or, the first movable element (121) remains in the second position after moving from the first position to the second position.
8. The liquid storage bottle (1) according to claim 2, characterized in that The movable mechanism (12) further includes at least one second sealing member (124) disposed on the outer periphery of the first movable member (121), and the first movable member (121) is sealed to the inner wall surface of the bottle body (11) by the second sealing member (124).
9. The liquid storage bottle (1) according to claim 2, characterized in that The difference between the volume of the first liquid storage chamber (10) corresponding to the second position and the volume of the first liquid storage chamber (10) corresponding to the first position is 1.5 ml to 2.5 ml.
10. An atomising device characterised in that, The device includes an atomizing device and a liquid storage bottle (1) according to any one of claims 1 to 9. The atomizing device has a second liquid storage chamber and a driving component (23). The second liquid storage chamber and the liquid outlet channel (120) of the liquid storage bottle (1) are in fluid communication. The driving component (23) is used to drive the movable mechanism (12) to move from the first position to the second position.