Aerosol product loading bin and heating non-combustion device
By designing the pusher mechanism and sealing cover structure of the aerosol product loading chamber, the problem of complicated aerosol product replacement operation in the heated non-combustible device was solved, realizing convenient loading of aerosol products 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
- 2025-04-28
- Publication Date
- 2026-05-12
AI Technical Summary
The replacement of aerosol products in existing heated non-combustible devices is complicated, and users find it difficult to conveniently fill the heating chamber with aerosol products.
Design an aerosol product loading chamber, comprising an outer shell, a pusher mechanism, and a sealing cover. The pusher mechanism pushes the aerosol product toward the outlet, and the sealing cover controls the opening and closing of the outlet, simplifying the aerosol product loading process.
It enables convenient filling of aerosol products, simplifies user operation procedures, and improves the convenience of heating non-combustible devices.
Smart Images

Figure CN224219498U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of aerosol generation technology, specifically to an aerosol product loading bin and a heating non-combustible device. Background Technology
[0002] Heat-not-burning (HNB) devices are used to heat aerosol products to generate aerosols.
[0003] In a heated notebook (HNB) device, an aerosol product needs to be placed inside the device, which then heats the product to generate an aerosol for the user to inhale. As a consumable, the aerosol product needs to be replaced after the active ingredient is depleted. HNB devices typically have a heating chamber for heating the aerosol product, with one end open for insertion. After inhaling one aerosol product, the user needs to remove it from the heating chamber and replace it with a new one.
[0004] In related technologies, aerosol products typically include a filter, a cooling support section, and a smoke-generating section. During use, the smoke-generating section of the aerosol product needs to be inserted into the heating chamber, and the aerosol is drawn in through the filter. Correspondingly, the storage box for aerosol products is similar to that of traditional cigarettes, using a flip-top cardboard box. When replacing the aerosol product, the user needs to remove it from the storage box and insert it into the heating chamber, just like with traditional cigarettes. This process is overly complicated and inconvenient for users to fill the heating chamber of the heated non-combustible device with aerosol products. Utility Model Content
[0005] The purpose of this application is to provide an aerosol product loading bin and a heating non-combustible device to improve the current problem of inconvenient aerosol product replacement operation.
[0006] This application provides an aerosol product loading chamber for use with a heated non-combustible device (HNTD) to fill the HNTD with aerosol products. The HNTD includes a heating chamber open at one end. The aerosol product loading chamber includes a shell, a pusher mechanism, and a sealing cap. The shell has a communicating receiving cavity and a mounting cavity inside. The mounting cavity is located on one side of the receiving cavity and is used to receive the aerosol products. The shell has a discharge port for engaging with the open end of the heating chamber of the HNTD, and the discharge port communicates with one end of the receiving cavity. The pusher mechanism is movably disposed within the mounting cavity and is used to push the aerosol products in the receiving cavity to one side of the receiving cavity. The sealing cap is movably connected to the shell and is used to selectively open or block the discharge port.
[0007] In one embodiment, the outer shell is provided with an outer shell positioning structure located on the outer periphery of the projectile outlet. The outer shell positioning structure is a protrusion or a groove, used to position the heating non-combustible device so that the projectile outlet is aligned with the heating chamber.
[0008] In one embodiment, the surface of the outer casing is further provided with a loading port, which communicates with the receiving cavity. A switch is movably disposed on the outer casing, which is used to selectively close or open the loading port.
[0009] In one embodiment, the pushing mechanism includes a stop member, which is movably disposed within the housing and selectively abuts the aerosol product adjacent to the aerosol product to be discharged within the receiving cavity against the inner wall of the receiving cavity or releases the aerosol product adjacent to the aerosol product to be discharged within the receiving cavity.
[0010] In one embodiment, the projectile pushing mechanism further includes a driving component, which is movably disposed within the housing; the sealing cover is disposed within the mounting cavity and located on one side of the projectile outlet;
[0011] The driving component is connected to the stop member and the sealing cover respectively, and is used to drive the stop member to move toward the receiving cavity and simultaneously drive the sealing cover to move in the opposite direction, so that when the stop member is driven by the driving component to push an aerosol product to one side wall of the receiving cavity, the sealing cover exits the receiving cavity to open the projectile outlet.
[0012] In one embodiment, the stop member is connected to the free end of the drive member, the middle part of the drive member is movably connected to the sealing cover through a transmission member, and both the drive member and the sealing cover can be slidably installed inside the housing;
[0013] The transmission component includes a rotating shaft, a driving component connecting part, and a sealing cap connecting part. The transmission component is rotatably assembled to the housing via the rotating shaft. The transmission component is rotatably and slidably connected to the sealing cap via the sealing cap connecting part, and is also rotatably and slidably connected to the driving component via the driving component connecting part. The rotating shaft is located between the driving component connecting part and the sealing cap connecting part, so that the driving component can drive the sealing cap and the stop member to move in opposite directions.
[0014] In one embodiment, the drive member connecting portion is a first slide groove, which can constrain the relative movement and rotation of the drive member and the transmission member; and / or, the sealing cover connecting portion is a second slide groove, which can constrain the relative movement and rotation of the sealing cover and the transmission member.
[0015] In one embodiment, the drive member includes a pressing portion that protrudes from the housing.
[0016] In one embodiment, the ejector mechanism further includes a reset member disposed between the housing and the drive member. The reset member is used to apply an elastic reset force to the drive member in the direction opposite to the receiving cavity, so as to keep the sealing cover blocking the ejector port.
[0017] This application embodiment also provides a heat-not-burning device for use in conjunction with the above-mentioned aerosol product loading chamber. The heat-not-burning device includes a heating chamber and a nozzle. A heating chamber positioning structure is provided around the open end face of the heating chamber. The heating chamber positioning structure is used to align the open end of the heating chamber with the projectile outlet.
[0018] According to the aerosol product loading chamber in the above embodiments, a pushing mechanism and a sealing cap are provided inside the outer shell. The pushing mechanism is located in the mounting cavity of the outer shell, and the pushing mechanism pushes the aerosol product in the receiving cavity of the outer shell to one side of the receiving cavity, so that the aerosol product can fall out from the outlet of the outer shell. This facilitates the filling of aerosol products into the heating cavity of the heated non-combustible device. When it is not necessary to fill the heating cavity of the heated non-combustible device with aerosol products, the sealing cap can be used to block the outlet to prevent the aerosol product from falling out. The aerosol product loading chamber provided in this application embodiment is easy to operate when filling the heating cavity of the heated non-combustible device with aerosol products. It eliminates the need for the user to manually remove the aerosol products for filling, simplifying the user's operation process when filling the heating cavity of the heated non-combustible device with aerosol products, improving the convenience for the user, and solving the problem of inconvenience for the user when filling the heating cavity of the heated non-combustible device with aerosol products in the prior art. Attached Figure Description
[0019] Figure 1 An assembly drawing of an aerosol product loading bin and a heating non-combustible device is provided for an embodiment of this application;
[0020] Figure 2 This is a schematic diagram of the structure of a heating non-combustible device provided in an embodiment of this application;
[0021] Figure 3 This is a schematic diagram of a structure for an aerosol product loading bin filled with aerosol products, provided in an embodiment of this application.
[0022] Figure 4 A schematic diagram of another aerosol product loading bin filled with aerosol products, provided in an embodiment of this application;
[0023] Figure 5A schematic diagram of the internal structure of an aerosol product loading bin filled with aerosol products, provided as an embodiment of this application;
[0024] Figure 6 A schematic diagram of the internal structure of an aerosol product loading bin filled with aerosol products, provided for an embodiment of this application;
[0025] Figure 7 This is a schematic diagram of the internal structure of an aerosol product loading bin provided in an embodiment of this application;
[0026] Figure 8 A schematic diagram from another perspective of the internal structure of an aerosol product loading chamber provided in an embodiment of this application;
[0027] Figure 9 for Figure 8 Enlarged view of point A in the middle.
[0028] in:
[0029] 1. Aerosol product loading bin; 10. Outer shell; 110. Receiving cavity; 120. Mounting cavity; 130. Discharge port; 140. Outer shell positioning structure; 150. Loading port; 160. Switching component; 20. Pushing mechanism; 210. Stopping component; 220. Driving component; 221. Pressing part; 230. Transmission component; 231. Rotating shaft part; 232. Driving component connecting part; 233. Sealing cover connecting part; 240. Reset component; 30. Sealing cover;
[0030] 2. Heated non-combustible device; 21. Heating chamber; 22. Suction nozzle; 23. Heating chamber positioning structure;
[0031] 3. Aerosol products. Detailed Implementation
[0032] The present application will be further described in detail below with reference to specific embodiments and accompanying drawings. Similar elements in different embodiments are referred to by associated 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.
[0033] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments, and the operational steps involved in each embodiment can also be rearranged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for clearly describing a particular embodiment and do not imply that they represent the necessary components and / or order.
[0034] 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).
[0035] Please see Figure 1 This application provides an aerosol product loading chamber 1 and a heat-not-burning device 2. The aerosol product loading chamber 1 can be used to store aerosol products 3 and can be used in conjunction with the heat-not-burning device 2. The heat-not-burning device 2 can be used to heat the aerosol products 3 and generate aerosols.
[0036] Please see Figure 2 The following describes the heated non-combustible device 2 provided in the embodiments of this application. In this embodiment, the heated non-combustible device 2 may include a heating chamber 21 and a suction nozzle 22. The heating chamber 21 can be used to heat the aerosol product 3, and the suction nozzle 22 can be used for a user to hold in their mouth and inhale the aerosol through the suction nozzle 22. This application does not limit the specific structure and form of the heated non-combustible device 2. For example, in one embodiment, the heating chamber 21 may have an open end, which can be used to fill the heating chamber 21 with aerosol products 3. The suction nozzle 22 can be rotatably disposed on one side of the open end of the heating chamber 21. During the rotation of the suction nozzle 22 relative to the heating chamber 21, the open end of the heating chamber 21 can be selectively exposed to the heating intensity or the open end of the heating chamber 21 can be covered. When the user needs to fill the heating chamber 21 with aerosol products 3, the suction nozzle 22 can be rotated to expose the open end of the heating chamber 21. After the user has finished filling the aerosol products 3, the suction nozzle 22 can be rotated to cover the open end of the heating chamber 21 so that the heating chamber 21 can heat the aerosol products 3 and allow the aerosol to flow out from the suction nozzle 22.
[0037] Unlike traditional aerosol products, the aerosol product 3 of this application does not contain a filter tip and may only have a columnar aerosol matrix. The aerosol matrix is in a solid or gel state and can generate aerosols when heated. The main component of the aerosol matrix may be tobacco or non-tobacco plants or smoke-generating agents.
[0038] Please see Figure 3 and Figure 4The aerosol product loading chamber 1 provided in this application embodiment includes: an outer shell 10, a pusher mechanism 20, and a sealing cover 30.
[0039] The interior of the outer casing 10 may form a communicating receiving cavity 110 and a mounting cavity 120. The mounting cavity 120 may be located on one side of the receiving cavity 110. The receiving cavity 110 may be used to receive the aerosol product 3, and the mounting cavity 120 may be used to receive the projectile pushing mechanism 20. The outer casing 10 also has a projectile outlet 130 for docking with the open end of the heating cavity 21 of the heated non-combustible device 2. The projectile outlet 130 is connected to one end of the receiving cavity 110.
[0040] It should be noted that the embodiments of this application do not limit the specific structure and form of the receiving cavity 110. For example, in one embodiment, the receiving cavity 110 can be a regularly shaped cavity, specifically a vertical channel. The size of the vertical channel is designed so that only one aerosol product 3 can pass through at a time, that is, the diameter of the vertical channel matches the outer periphery of a single aerosol product. In another embodiment, the receiving cavity 110 can be an irregularly shaped cavity, with a vertical channel only provided at one end near the ejection port 130 to limit the passage of one aerosol product 3 at a time. That is, the diameter of the receiving cavity 110 at the end near the ejection port 130 matches the outer periphery of a single aerosol product 3, while the size of other parts can be larger than a single aerosol product 3. This allows for the convenient loading of more aerosol products. When the aerosol product loading chamber 1 is inverted, multiple aerosol products are neatly arranged at the end near the ejection port 130, and after being sorted by the ejection mechanism 20, they fall out along the ejection port 130. In this embodiment, all the space inside the outer shell 10 except for the mounting cavity 120 can be used as the receiving cavity 110. The specific configuration can be made according to the actual situation and is not limited here.
[0041] In one embodiment, the area of the receiving cavity 110 near the projectile outlet 130 can be configured as a cylindrical space, and the cross-sectional dimension of the cylindrical space is slightly larger than the size of the aerosol product 3. This can prevent two aerosol products 3 from falling into the area of the receiving cavity 110 near the projectile outlet 130 at the same time, which would cause the projectile outlet 130 to be blocked.
[0042] The pusher mechanism 20 is movably disposed in the mounting cavity 120 and is used to push the aerosol product 3 in the mounting cavity 120 to one side of the receiving cavity 110 so that the aerosol product 3 is aligned with the discharge port 130. When the aerosol loading chamber is inverted, the aerosol product 3 in the receiving cavity 110 can fall out from the discharge port 130 under the action of gravity.
[0043] The sealing cap 30 is movably connected to the outer casing 10. The sealing cap 30 can be disposed within the mounting cavity 120 and can be located on one side of the projectile exit port 130. The sealing cap 30 can be used to selectively open or block the projectile exit port 130. It should be noted that this application does not limit the specific movement of the sealing cap 30. For example, in one embodiment, the sealing cap 30 can move horizontally relative to the outer casing 10; in another embodiment, the sealing cap 30 can rotate horizontally relative to the outer casing 10; and in yet another embodiment, the sealing cap 30 can also rotate vertically relative to the outer casing 10. This application does not limit the specific movement of the sealing cap 30.
[0044] When the user needs to fill the heating chamber 21 of the heated non-combustible device 2 with aerosol product 3, the outlet 130 can be aligned with the open end of the heating chamber 21, and the aerosol product loading chamber 1 can be inverted so that the aerosol product 3 in the receiving chamber 110 falls into the heating chamber 21 under the action of gravity, thus completing the loading.
[0045] The aerosol product loading chamber 1 provided in this embodiment of the application, by providing a pushing mechanism 20 and a sealing cap 30 inside the outer shell 10, allows the pushing mechanism 20 to be disposed within the mounting cavity 120 of the outer shell 10. The pushing mechanism 20 pushes the aerosol product 3 within the receiving cavity 110 of the outer shell 10 to one side of the receiving cavity 110, so that the aerosol product 3 can fall out from the outlet 130 of the outer shell 10. This facilitates the filling of the heating cavity 21 of the heated non-combustible device 2 with the aerosol product 3. When it is not necessary to fill the heating cavity 21 of the heated non-combustible device 2 with the aerosol product 3, the sealing cap 30 can be used to block the outlet 130, preventing the aerosol product 3 from falling out from the outlet 130. The aerosol product loading chamber 1 provided in this application embodiment is easy to operate when filling the heating chamber 21 of the heatless non-combustible device 2 with aerosol products 3. It eliminates the need for the user to manually remove the aerosol products 3 for filling, thus simplifying the user's operation process when filling the heating chamber 21 of the heatless non-combustible device with aerosol products 3. This improves the convenience for the user when filling the heating chamber 21 of the heatless non-combustible device with aerosol products 3 and solves the problem of inconvenience for the user when filling the heating chamber 21 of the heatless non-combustible device 2 with aerosol products 3 in the prior art.
[0046] For further information, please refer to the following: Figures 2-4In one embodiment, the heated non-combustible device 2 may also be provided with a heating chamber positioning structure 23, and the outer shell 10 of the aerosol product loading chamber 1 may also be provided with an outer shell positioning structure 140. The outer shell positioning structure 140 can be used in conjunction with the heating chamber positioning structure 23 to position the aerosol product loading chamber 1 and the heated non-combustible device 2, thereby enabling the ejection port 130 to dock with the heating chamber 21. In other words, in this embodiment, the user can dock the ejection port 130 with the heating chamber 21 by docking the outer shell positioning structure 140 and the heating chamber positioning structure 23, thereby improving the convenience for the user to dock the ejection port 130 with the heating chamber 21 and improving the convenience for the user to fill the aerosol product 3 into the heating chamber 21.
[0047] In some other embodiments, the outer shell positioning structure 140 may be disposed on the outer periphery of the ejection port 130, and the heating cavity positioning structure 23 may be disposed around the open end face of the heating cavity 21, so as to further guide the user to align the ejection port 130 and the open end of the heating cavity 21.
[0048] It should be noted that the embodiments of this application do not limit the specific form and structure of the outer shell positioning structure 140 and the heating cavity positioning structure 23. For example, in one embodiment, one of the outer shell positioning structure 140 and the heating cavity positioning structure 23 can be a protrusion and the other can be a groove. The outer shell positioning structure 140 and the heating cavity positioning structure 23 can be aligned by the snap-fit of the protrusion and the groove.
[0049] Furthermore, the embodiments of this application do not limit the specific form of the protrusions and grooves. For ease of explanation, the outer shell positioning structure 140 is used as a protrusion and the heating cavity positioning structure 23 is used as a groove as an example.
[0050] Please see Figure 3 For example, in one embodiment, the outer shell positioning structure 140 can be composed of multiple discrete protrusions, and correspondingly, the heating cavity positioning structure 23 can be composed of multiple discrete grooves. This application does not limit the specific number of the protrusions and grooves. For example, in one embodiment, the number of protrusions and grooves can be one-to-one, as shown in the figure with two. In another embodiment, the number of protrusions and grooves can be one-to-many. For example, in one embodiment, one protrusion can be set to one, and two grooves can be set to two. The protrusion can be matched and docked with any one of the grooves, which can further improve the user's docking efficiency.
[0051] Please see Figure 4For example, in another embodiment, the outer shell positioning structure 140 may be composed of an annular protrusion forming a discharge nozzle, and correspondingly, the heating chamber positioning structure 23 may be an annular groove. When the user needs to connect the aerosol product loading chamber 1 with the electronic atomizing device, the aforementioned discharge nozzle can be directly inserted into the aforementioned annular groove.
[0052] In addition, in some other embodiments, the heating chamber positioning structure 23 can be the heating chamber 21. That is, in this embodiment, the outer shell positioning structure 140 can still use the aforementioned discharge nozzle. In this embodiment, when the user needs to connect the aerosol product loading chamber 1 with the electronic atomizing device, the aforementioned discharge nozzle can be directly inserted into the heating chamber 21. This not only facilitates user operation but also simplifies the structure of the electronic atomizing device.
[0053] Please see Figures 5-9 In one embodiment, the pusher mechanism 20 includes a stop member 210, which is movably disposed within the housing 10 and selectively pushes the aerosol product 3 adjacent to the aerosol product 3 to be discharged into the receiving cavity 110 against the inner wall of the receiving cavity 110 or releases the aerosol product 3 adjacent to the aerosol product 3 to be discharged into the receiving cavity 110. That is, in this embodiment, the pusher mechanism 20 can ensure that only one aerosol product 3 falls into the heating cavity 21 each time it is filled into the heating cavity 21. It should be noted that the embodiments of this application do not limit the specific movement mode of the stop member 210. For example, the movement mode of the sealing cap 30 described above can be referred to, and will not be repeated here.
[0054] Furthermore, in one embodiment, the outer casing 10 is provided with slide rails for sliding the stop member 210 and the sealing cover 30, and the slide rails on which the stop member 210 and the sealing cover 30 are located can be parallel to each other. The push mechanism 20 may further include a drive member 220, which can be movably disposed within the outer casing 10. The drive member 220 can be driven to the stop member 210 and the sealing cover 30 respectively, so as to drive the stop member 210 to move toward the receiving cavity 110, and simultaneously drive the sealing cover 30 to move in the opposite direction.
[0055] In addition, in one embodiment, the push mechanism 20 may further include a reset member 240, which may be disposed between the housing 10 and the drive member 220. The reset member 240 may be used to apply an elastic reset force to the drive member 220 in the direction opposite to the receiving cavity 110, so as to keep the sealing cover 30 blocking the bullet outlet 130. The embodiments of this application do not limit the specific structure and form of the reset member 240. For example, it may be an elastic member or a magnetic member. The specific configuration can be made according to the actual situation.
[0056] The embodiments of this application do not limit the specific structure and form of the driving member 220. For example, in one embodiment, the driving member 220 may include a pressing part 221 exposed in the outer shell 10, which makes it convenient for the user to apply pressure to the pressing part 221 to drive the driving member 220 to move, thereby driving the stop member 210 and the sealing cover 30 to move.
[0057] It should be noted that in this embodiment, both the stop member 210 and the sealing cap 30 can move linearly horizontally relative to the outer shell 10. When the stop member 210 is driven by the drive member 220 into the cavity 110 and pushes an aerosol product 3 against one side wall of the cavity 110, the sealing cap 30 exits the cavity 110 to open the ejection port 130. When the stop member 210 exits the cavity 110, the sealing cap 30 can enter the cavity 110 to block the ejection port 130. In this embodiment, only one drive member 220 can be provided to drive both the stop member 210 and the sealing cap 30 simultaneously, which makes the structure of the entire ejection mechanism 20 more compact. At the same time, the user only needs to control one drive member 220, improving the convenience of user operation.
[0058] In one embodiment, the stop member 210 can be connected to the free end of the drive member 220, and the middle portion of the drive member 220 can be movably connected to the sealing cover 30 via the transmission member 230. Both the drive member 220 and the sealing cover 30 can be slidably installed within the housing 10. It should be noted that the free end of the drive member 220 refers to the operating end away from the user's operation end. In this embodiment, the middle portion of the drive member 220 refers to any position between the free end of the drive member 220 and the operating end.
[0059] In this embodiment, the transmission component 230 may include a rotating shaft portion 231, a driving component connecting portion 232, and a sealing cap connecting portion 233. The transmission component 230 can be rotatably mounted on the housing 10 via the rotating shaft portion 231. The transmission component 230 can be rotatably and slidably connected to the sealing cap 30 via the sealing cap connecting portion 233. Furthermore, the transmission component 230 can be rotatably and slidably connected to the driving component 220 via the driving component connecting portion 232. The rotating shaft portion 231 is located between the driving component connecting portion 232 and the sealing cap connecting portion 233, so that the driving component 220 can drive the sealing cap 30 and the stop member 210 to move in opposite directions.
[0060] For further details, please refer to Figure 9In some embodiments, the drive member connection 232 can be a first slide groove. The first slide groove can constrain the relative movement and rotation of the drive member 220 and the transmission member 230. For ease of explanation, the horizontal direction toward the receiving cavity 110 will be referred to as the first direction, and the direction perpendicular to the first direction toward the ejection port 130 will be referred to as the second direction. When the drive member 220 drives the stop member 210 to move in the first direction, the drive member 220 drives the drive member connection 232 to move in the first direction and in the second direction. Since the position of the drive member 220 is fixed inside the housing 10, the connection between the drive member 220 and the transmission member 230 can slide along the first slide groove to provide sufficient clearance space for the drive member 220 to drive the stop member 210 to move.
[0061] Similarly, in other embodiments, the sealing cap connection 233 can be a second slide groove, which can constrain the relative movement and rotation of the sealing cap 30 and the transmission member 230. The specific principle can be found in the foregoing content and will not be repeated here.
[0062] In addition, please refer to again Figure 5 and Figure 6 In the aerosol product loading chamber 1, the surface of the outer shell 10 may also be provided with a loading port 150, which can communicate with the receiving cavity 110. A switch element 160 may be provided on the outer shell 10, which can be movably mounted on the outer shell 10. The switch element 160 can be used to selectively close or open the loading port 150 to facilitate the user filling the receiving cavity 110 with aerosol product 3. It should be noted that in some other embodiments, both the switch element 160 and the sealing cap 30 can adopt a sealed structure. When the aerosol product loading chamber 1 is only used to store aerosol product 3, the aerosol product 3 in the receiving cavity 110 can be kept in a sealed state, avoiding or reducing the possibility of oxidation of the aerosol product 3 in the receiving cavity 110.
[0063] The working principle of the aerosol product loading chamber 1 provided in the embodiments of this application is as follows:
[0064] As mentioned above, when a user needs to use the aerosol product loading chamber 1 to fill the heated non-combustible device 2 with aerosol product 3, the aerosol product loading chamber 1 can be inverted. At this time, the sealing cover 30 is in the state of sealing the outlet 130, and the aerosol product 3 in the receiving cavity 110 can fall down along the receiving cavity 110 to the top of the sealing cover 30.
[0065] At this time, the user can connect the aerosol product loading chamber 1 with the heated non-combustible device 2, so that the heating chamber 21 and the projectile outlet 130 are aligned and connected through the outer shell positioning structure 140 and the heating chamber positioning structure 23.
[0066] The user can then press the pressing part 221 of the drive member 220, causing the drive member 220 to push the stop member 210 against the second aerosol product 3 located above the sealing cover 30 and prevent it from falling. Simultaneously, the drive member 220 drives the sealing cover 30 to open the ejection port 130, so that the first aerosol product 3 located above the sealing cover 30 falls out from the ejection port 130. That is to say, in this embodiment, the push mechanism 20 can be used to prevent multiple aerosol products 3 from falling out of the ejection port 130, so that only one aerosol product 3 is loaded in one operation.
[0067] When an aerosol product 3 is filled into the heating chamber 21 of the heated non-combustible device 2, the user can release the pressing part 221 of the drive member 220. At this time, the drive member 220 can rebound under the action of the reset member 240, thereby driving the sealing cover 30 to reset, so that the sealing cover 30 re-seals the outlet 130, and at the same time drives the stop member 210 to reset, so that the stop member 210 releases the aerosol product 3.
[0068] In summary, the aerosol product loading chamber 1 provided in this application embodiment, by providing a pushing mechanism 20 and a sealing cap 30 inside the outer shell 10, allows the pushing mechanism 20 to be disposed within the mounting cavity 120 of the outer shell 10. The pushing mechanism 20 pushes the aerosol product 3 within the receiving cavity 110 of the outer shell 10 to one side of the receiving cavity 110, so that the aerosol product 3 can fall out from the outlet 130 of the outer shell 10. This facilitates the filling of the heating cavity 21 of the heated non-combustible device 2 with the aerosol product 3. When it is not necessary to fill the heating cavity 21 of the heated non-combustible device 2 with the aerosol product 3, the sealing cap 30 can be used to block the outlet 130, preventing the aerosol product 3 from falling out from the outlet 130. The aerosol product loading chamber 1 provided in this embodiment of the application facilitates the filling of aerosol products 3 into the heating chamber 21 of the heatless non-combustible device 2. It eliminates the need for the user to manually remove the aerosol products 3 for filling, simplifying the user's operation process and improving convenience. This solves the problem of inconvenience in the prior art when filling the heating chamber 21 of the heatless non-combustible device 2 with aerosol products 3. The heatless non-combustible device 2 provided in this embodiment of the application can cooperate with the aforementioned aerosol product loading chamber 1, making it more convenient for the user to fill the heatless non-combustible device 2 with aerosol products 3.
[0069] The above examples illustrate this application only to aid understanding and are not intended to limit its scope. Those skilled in the art to which this application pertains can make various simple deductions, modifications, or substitutions based on the ideas presented.
Claims
1. An aerosol product loading bin, used in conjunction with a heated non-combustible device to load aerosol products into the heated non-combustible device, characterized in that, The heated non-combustible device includes a heating chamber open at one end, and the aerosol product loading bin includes: The outer casing has a communicating receiving cavity and a mounting cavity inside, the mounting cavity being located on one side of the receiving cavity, the receiving cavity being used to receive aerosol products, and the outer casing having a projectile outlet for docking with the open end of the heating cavity of the heated non-combustible device, the projectile outlet being connected to one end of the receiving cavity; A pushing mechanism, movably disposed within the mounting cavity, is used to push the aerosol product within the receiving cavity to one side of the receiving cavity; and A sealing cap, movably connected to the outer casing, is used to selectively open or block the projectile ejection port.
2. The aerosol product loading bin as described in claim 1, characterized in that, The outer shell is provided with an outer shell positioning structure located on the outer periphery of the projectile outlet. The outer shell positioning structure is a protrusion or a groove, used to position the heating non-combustible device so that the projectile outlet is aligned with the heating chamber.
3. The aerosol product loading bin as described in claim 1, characterized in that, The surface of the outer shell is also provided with a loading port, which is connected to the receiving cavity. A switch is movably disposed on the outer shell, which is used to selectively close or open the loading port.
4. The aerosol product loading bin as described in any one of claims 1-3, characterized in that, The projectile pushing mechanism includes: A stopper is movably disposed within the housing and selectively abuts the aerosol product adjacent to the aerosol product to be discharged within the receiving cavity against the inner wall of the receiving cavity or releases the aerosol product adjacent to the aerosol product to be discharged within the receiving cavity.
5. The aerosol product loading bin as described in claim 4, characterized in that, The projectile pushing mechanism also includes a driving component, which is movably disposed within the mounting cavity; the sealing cover is disposed within the mounting cavity and located on one side of the projectile outlet; The driving component is connected to the stop member and the sealing cover respectively, and is used to drive the stop member to move toward the receiving cavity and simultaneously drive the sealing cover to move in the opposite direction, so that when the stop member is driven by the driving component to push an aerosol product to one side wall of the receiving cavity, the sealing cover exits the receiving cavity to open the projectile outlet.
6. The aerosol product loading bin as described in claim 5, characterized in that, The stop member is connected to the free end of the drive member, and the middle part of the drive member is movably connected to the sealing cover through a transmission member. Both the drive member and the sealing cover can be slidably installed inside the housing. The transmission component includes a rotating shaft, a driving component connecting part, and a sealing cap connecting part. The transmission component is rotatably assembled to the housing via the rotating shaft. The transmission component is rotatably and slidably connected to the sealing cap via the sealing cap connecting part, and is also rotatably and slidably connected to the driving component via the driving component connecting part. The rotating shaft is located between the driving component connecting part and the sealing cap connecting part, so that the driving component can drive the sealing cap and the stop member to move in opposite directions.
7. The aerosol product loading bin as described in claim 6, characterized in that, The drive component connection part is a first sliding groove, which can constrain the relative movement and rotation of the drive component and the transmission component; And / or, the sealing cap connection portion is a second sliding groove, which can constrain the relative movement and rotation of the sealing cap and the transmission component.
8. The aerosol product loading bin as described in claim 5, characterized in that, The drive unit includes a pressing portion that protrudes from the housing.
9. The aerosol product loading bin as described in claim 5, characterized in that, The ejector mechanism further includes a reset member disposed between the outer shell and the drive member. The reset member is used to apply an elastic reset force to the drive member in the direction opposite to the receiving cavity, so as to keep the sealing cover blocking the ejector port.
10. A heating non-combustible device, characterized in that, For use in conjunction with the aerosol product loading chamber according to any one of claims 1-9, the heated non-combustible device includes a heating chamber and a nozzle, and a heating chamber positioning structure is provided around the open end face of the heating chamber. The heating chamber positioning structure is used to cooperate with the loading chamber to align the open end of the heating chamber with the projectile outlet.