Atomizing bomb and atomizing device
By designing a heating container composed of thermally conductive and visual sections in the atomization device, and setting up spacers and transparent windows, the problems of invisible residual amount of aerosol-forming substrate and large heat loss are solved, achieving efficient atomization effect and convenient user experience.
Patent Information
- Application Number
- CN202421329927.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-12
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-06-12
AI Technical Summary
In the existing atomization device, the remaining amount of the aerosol-forming matrix is not visible, and the heat loss is large, making it difficult to meet user needs.
Atomizing bomb is designed, and its heating container consists of a thermal conduction section and a visible section. A spacer is provided between the thermal conduction section and the visible section. At least the part corresponding to the visible section is provided with a viewing window or is made of transparent material. The nozzle assembly connects the mist outlet passage from the accommodating chamber to the outside world.
The remaining amount of aerosol-forming substrate is observed through the visual section, which is convenient and timely replenished; the spacer between the thermally conductive section and the visual section reduces heat transfer, reduces heat loss, and improves the working efficiency of the atomizing bomb.
Smart Images

Figure CN222982490U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of atomization devices, and particularly relates to an atomization cartridge and an atomization device. Background Art
[0002] With the continuous development of technology, atomization devices are increasingly accepted and used by people. In related technologies, an atomization device generally includes an atomization component and a battery electrically connected to the atomization component. The atomization component can heat an aerosol-forming matrix stored therein under the electric drive of the battery to atomize it into an aerosol. However, in common atomization components, it is usually impossible to directly know the remaining amount of the aerosol-forming matrix inside, which is not conducive to timely replenishment of the aerosol-forming matrix. Moreover, the structure is complex. During operation, part of the heat is easily transferred to parts such as its mouthpiece, resulting in large heat loss and difficulty in meeting user requirements. Summary of the Utility Model
[0003] The technical object of the utility model is to provide an atomization cartridge and an atomization device, aiming to solve the problems of non-visualization of the remaining amount of the aerosol-forming matrix and large heat loss when the atomization device in related technologies is used.
[0004] To solve the above technical problems, the utility model is implemented as follows: In the first aspect, an atomization cartridge for an atomization device is provided. The atomization cartridge includes: a cover body, a heating container fixed inside the cover body, and a mouthpiece assembly covering one end of the cover body. The heating container includes a heat-conducting section and a visual section, and an isolation member is arranged between the heat-conducting section and the visual section; the heat-conducting section, the visual section, and the isolation member jointly enclose a containing cavity for storing an aerosol-forming matrix; at least a part of the cover body corresponding to the visual section is provided with a viewing window or made of a transparent material; the mouthpiece assembly covers the opening at one end of the visual section far from the heat-conducting section, and the mouthpiece assembly has a mist outlet channel communicating the containing cavity to the outside.
[0005] Further, the heat-conducting section and the visual section respectively form heat-insulating gaps with the cover body.
[0006] Further, the isolation member has a supporting portion located in the heat-insulating gap, one side of the supporting portion abuts against the cover body, and the other side abuts against the heat-conducting section and / or the visual section.
[0007] Further, the isolation member is a silica gel member.
[0008] Further, the heat-conducting coefficient of the heat-conducting section is greater than that of the visual section.
[0009] Further, the heat-conducting section is a ceramic member or an alloy member, and / or the transparent part in the visual section is glass.
[0010] Further, a heating element is provided on the heat conduction section, and an avoidance position is formed on the heating element; the avoidance position is adapted to the power supply connection part of the power supply assembly for the power supply connection part to be inserted and conduct electricity.
[0011] Further, the heating element is located at the bottom side and / or the circumferential side of the heat conduction section.
[0012] Further, a filter screen is provided in the mist outlet channel.
[0013] In a second aspect, an atomizing cartridge is provided. The atomizing cartridge includes a cover body, a heating container fixed in the cover body, and a mouthpiece assembly covering one end of the cover body; the heating container includes an integrally formed heat conduction section and a visible section, and the heat conduction coefficient of the heat conduction section is greater than that of the visible section; the heat conduction section and the visible section jointly enclose a containing cavity for storing an aerosol-forming matrix; at least a part of the cover body corresponding to the visible section is provided with a viewing window or made of a transparent material; the mouthpiece assembly covers an opening at one end of the visible section far from the heat conduction section, and the mouthpiece assembly has a mist outlet channel communicating the containing cavity to the outside.
[0014] In a third aspect, an atomizing device is provided, which includes a power supply assembly and the above-mentioned atomizing cartridge. Among them, the power supply assembly is provided with a receiving groove, and one end of the atomizing cartridge far from the mouthpiece assembly is detachably inserted into the receiving groove.
[0015] Further, the power supply assembly and the atomizing cartridge are magnetically coupled or snap-coupled.
[0016] Compared with the related art, the beneficial effects of the atomizing cartridge and the atomizing device in the present utility model are as follows: the heating container is set into a combined structure with a heat conduction section and a visible section. When the atomizing cartridge works, the aerosol-forming matrix can be heated through the heat conduction section. The remaining amount of the aerosol-forming matrix in the containing cavity can be observed through the visible section, so as to facilitate the user to replenish in time when the aerosol-forming matrix is almost consumed. Moreover, an isolation member is provided between the heat conduction section and the visible section, which can reduce the heat transfer from the heat conduction section to the visible section, thereby reducing heat loss and improving the working efficiency of the atomizing cartridge; and the temperature of the aerosol will not be too high when it reaches above the mouthpiece, and the user experience is better. In addition, the overall structure of the atomizing cartridge of the present application is simple, and it can be made delicate and small, which is convenient to carry. Description of the Drawings
[0017] Figure 1 is a schematic diagram of the overall structure of the atomizing cartridge in an embodiment of the present utility model;
[0018] Figure 2 is a cross-sectional view of the atomizing cartridge along the Figure 1 A-A direction;
[0019] Figure 3 is a schematic diagram of the overall structure of the atomizing cartridge from another perspective in an embodiment of the present utility model;
[0020] Figure 4 is the explosion diagram of the atomizing cartridge in the embodiment of the present utility model;
[0021] Figure 5 is the overall structural schematic diagram of the atomizing device in the embodiment of the present utility model;
[0022] Figure 6 is the sectional view of the atomizing device in the embodiment of the present utility model.
[0023] In the drawings, each reference numeral represents:
[0024] 1. Cover body; 11. Window;
[0025] 2. Heating container; 21. Heat conduction section; 211. Heating element; 2111. Avoidance position; 22. Visual section; 23. Isolation member; 231. Isolation part; 232. Support part; 2a. Accommodation cavity; 2b. Heat insulation gap;
[0026] 3. Mouthpiece assembly; 31. Mouthpiece; 311. Filter screen; 32. Upper cover; 321. First limiting edge; 322. Second limiting edge; 3221. Limiting buckle; 33. Magnet; 34. Installation cavity; 3a. Mist outlet channel;
[0027] 4. Power supply assembly; 41. Battery; 411. Spring electrode; 42. Housing. Detailed implementation manners
[0028] The following details the embodiments of the present utility model. The examples of the embodiments are shown in the drawings, where the same or similar reference numerals represent the same or similar elements or elements with the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are intended to explain the present utility model, and should not be construed as limiting the present utility model. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts fall within the scope of protection of the present utility model.
[0029] In the description of the present utility model, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "circumferential", "radial", etc. are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as limiting the present utility model.
[0030] In addition, the terms "first" and "second" are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present utility model, "a plurality of" means two or more unless otherwise specifically defined.
[0031] Embodiment 1;
[0032] As Figures 1-5 shown, in this embodiment, the atomizing cartridge includes a cover body 1, a heating container 2 fixed within the cover body 1, and a mouthpiece assembly 3 covering one end of the cover body 1; the heating container 2 includes an integrally formed heat conducting section 21 and a visible section 22, and the heat conductivity coefficient of the heat conducting section 21 is greater than that of the visible section 22; the heat conducting section 21 and the visible section 22 jointly enclose a containing cavity 2a for storing an aerosol-forming matrix; at least a part of the cover body 1 corresponding to the visible section 22 is provided with a viewing window 11 or made of a transparent material; the mouthpiece assembly 3 covers the opening at one end of the visible section 22 away from the heat conducting section 21, and the mouthpiece assembly 3 has a mist outlet channel 3a communicating the containing cavity 2a to the outside.
[0033] In this embodiment, the heat conducting section 21, the visible section 22, and the connection between the heat conducting section 21 and the visible section 22 can be integrally formed, with low production and processing costs. At least a part of the cover body 1 corresponding to the visible section 22 is provided with a viewing window 11 or made of a transparent material; thus, the remaining amount of the aerosol-forming matrix in the containing cavity 2a can be observed through the visible section 11, facilitating the user to replenish in time when the aerosol-forming matrix is almost consumed. The heat conductivity coefficient of the heat conducting section 21 is greater than that of the visible section 22; which is beneficial to reducing the heat transferred to the visible section 22, that is, concentrating the heat at the lower end of the heating container 2 (i.e., where the heat conducting section 21 is located) to heat the aerosol-forming matrix, reducing heat loss and having high heating efficiency.
[0034] Embodiment 2:
[0035] As Figures 1-5 shown, in this embodiment, the atomizing cartridge is for an atomizing device. The atomizing cartridge includes: a cover body 1, a heating container 2 fixed within the cover body 1, and a mouthpiece assembly 3 covering one end of the cover body 1. The heating container 2 includes a heat conducting section 21 and a visible section 22, and a separator 23 is provided between the heat conducting section 21 and the visible section 22; the heat conducting section 21, the visible section 22, and the separator 23 jointly enclose a containing cavity 2a for storing an aerosol-forming matrix; at least a part of the cover body 1 corresponding to the visible section 22 is provided with a viewing window 11 or made of a transparent material; the mouthpiece assembly 3 is fixedly covered with the opening at one end of the visible section 22 away from the heat conducting section 21, and the mouthpiece assembly 3 has a mist outlet channel 3a communicating the containing cavity 2a to the outside.
[0036] Specifically, the aerosol-forming matrix can be paste-like or liquid-like. The heating container 2 is arranged to have a combined structure of a heat-conducting section 21 and a visible section 22. When the atomizing cartridge works, the aerosol-forming matrix can be heated through the heat-conducting section 21. The remaining amount of the aerosol-forming matrix in the accommodating cavity 2a can be observed through the visible section 22, so as to facilitate the user to replenish it in time when the aerosol-forming matrix is almost consumed. Moreover, an isolating member 23 is arranged between the heat-conducting section 21 and the visible section 22. The existence of the isolating member 23 can reduce the heat transferred from the heat-conducting section 21 to the visible section 22, thereby reducing heat loss and improving the working efficiency of the atomizing cartridge.
[0037] In this embodiment, the heat-conducting section 21 and the visible section 22 respectively form a heat-insulating gap 2b with the cover 1. The heat-insulating gap 2b can prevent the heat-conducting section 21 and the visible section 22 from directly contacting the cover 1, that is, it reduces the contact area between the cover 1 and the entire heating container 2, which is beneficial to reducing the heat transferred to the cover 1, that is, further reducing heat loss and improving the atomizing efficiency of the atomizing cartridge.
[0038] Furthermore, in this embodiment, the isolating member 23 has a supporting portion 232 located in the heat-insulating gap 2b. One side of the supporting portion 232 abuts against the cover 1, and the other side abuts against the heat-conducting section 21 and / or the visible section 22. While reducing the contact area between the heating container 2 and the cover 1, it can also improve the connection stability between the heating container 2 and the cover 1. In one implementation, the isolating member 23 may include an isolating portion 231 and a supporting portion 232 connected to the isolating portion 231. The isolating portion 231 is connected between the visible section 22 and the heat-conducting section 21; the supporting portion 232 abuts against the outer wall of the heat-conducting section 21 and the inner side of the cover 1, and abuts against the outer wall of the visible section 22 and the inner side of the cover 1, that is, a more stable heat-insulating gap 2b is formed between the heat-conducting section 21 and the visible section 22 and the cover 1 respectively, which is beneficial to improving the installation position stability between the heating container 2 and the cover 1.
[0039] In this embodiment, the isolating member 23 can be a silicone member. The isolating member 23 made of silicone material can not only connect the heat-conducting section 21 and the visible section 22 together, but also play a role of buffering and sealing during the use of the atomizing cartridge. Of course, in some other implementations, the isolating member 23 can also be made of high-temperature resistant soft materials (such as carbon fiber, hard plastic), which is not limited here. Of course, in some other embodiments, the isolating member 23 can also be a structure formed by sintering or adhesive materials, that is, the heat-conducting section 21 and the visible section 22 can be hermetically bonded by direct sintering or adhesive materials, which is not limited here.
[0040] In this embodiment, a heating element 211 is provided on the heat-conducting section 21, and an avoidance position 2111 is formed on the heating element 211; the avoidance position 2111 is adapted to the power supply connection part of the power supply assembly 4 for the power supply connection part to be inserted and conduct. The heating element 211, that is, the heating circuit, can be plated with a heating circuit on the heat-conducting section 21. The power supply connection part can refer to the spring electrode 411 electrically connected to the battery. When the power supply connection part of the power supply assembly 4 is inserted into the avoidance position 2111, the contact can contact and conduct with the spring electrode 411, and the heating circuit is energized, so that the heating circuit can generate heat, and the generated heat can be quickly transmitted to the heat-conducting section 21 and the aerosol-forming matrix, thereby realizing the heating and atomization of the aerosol-forming matrix.
[0041] Further, in this embodiment, the heating element 211 is located on the bottom side and / or the circumferential side of the heat-conducting section 21. In some specific embodiments, heating circuits can be plated on both the bottom side and the circumferential side of the heat-conducting section 21, so as to increase the heating area, enable the bottom side and the circumferential side of the heat-conducting section 21 to quickly heat up, which is beneficial to increasing the atomization amount, bringing a better atomization experience to the user, and can also reduce the residue of the aerosol-forming matrix and improve the utilization efficiency of the aerosol-forming matrix. Of course, in some other implementation manners, the heating element 211 can also be provided only on the circumferential side or the bottom side of the heat-conducting section 21. As Figure 3 shown, a heating circuit is plated on the bottom of the heat-conducting section 21. Since the heat-conducting section 21 itself has good heat-conducting performance, therefore, only setting the heating element 211 on the bottom side or the circumferential side can still enable the heat to be output from positions such as the bottom side and the circumferential side of the heat-conducting section 21 to jointly heat the aerosol-forming matrix.
[0042] In this embodiment, the heat conductivity of the heat-conducting section 21 is greater than that of the visible section 22, so that the heat can be concentrated at the lower end of the heating container 2 to heat the aerosol-forming matrix, and the heat transferred to the visible section 22 can be reduced, and the heating efficiency is high.
[0043] Further, in some implementation manners, the heat-conducting section 21 can be a ceramic part or an alloy part and other materials with high heat conductivity and suitable for coating and printing, such as: stainless steel SUS430, stainless steel SUS304, alumina ceramic, etc., which can quickly conduct heat, reduce the preheating waiting time, and improve the user experience. In this embodiment, the visible section 22 can be an overall transparent cavity structure or a partially transparent cavity structure, and the transparent part can be glass, which is not limited here.
[0044] In one embodiment, the visible section 22 can be made of a transparent member entirely using a material with a low thermal conductivity and being transparent and visible. Such materials can be quartz, glass, etc., with low raw material costs and processing costs. The visible section 22 and the nozzle assembly 3 can be sealed with glue. The visible section 22 can not only observe the remaining amount of paste / liquid atomization but also reduce the upward heat transfer and lower the temperature of the atomized gas during suction; it can also prevent the glue-sealed part of the two from releasing toxic substances due to high temperature effects.
[0045] Further, in this embodiment, the nozzle assembly 3 includes an upper cover 32 and a nozzle 31. The upper cover 32 is provided with an installation cavity 34 adapted to the nozzle 31. One end of the nozzle 31 passes through the installation cavity 34 and enters the accommodation cavity 2a. The connection between the nozzle 31 and the installation cavity 34 can be sealed with glue. A filter screen 311 is provided in the mist outlet channel 3a, that is, the filter screen 311 can be provided at the bottom of the nozzle 31, so as to filter out solid particles in the channel and improve the suction experience of users.
[0046] Further, in this embodiment, as Figure 4 and 5 shown, the bottom side of the upper cover 32 is connected with a first limiting edge 321 and a second limiting edge 322 spaced apart from each other. In the radial direction of the mist outlet channel 3a, the first limiting edge 321 is located inside the second limiting edge 322. The shape of the first limiting edge 321 is adapted to the shape and size of the visible section 22. The outer side wall of the visible section 22 abuts against the side of the first limiting edge 321 away from the second limiting edge 322, and the top end of the visible section 22 also abuts against the bottom side of the upper cover 32.
[0047] In some specific embodiments, glue can be used to fix the visible section 22 and the upper cover 32, further improving the sealing effect between the two. The second limiting edge 322 is exactly adapted to the shape and size of the cover body 1, and the inner side of the cover body 1 can abut against the outer side of the second limiting edge 322.
[0048] In some specific embodiments, between the second limiting edge 322 and the cover body 1, one of them can be provided with a limiting groove, and the other can be provided with a limiting buckle 3221 corresponding to the limiting groove. Through the limiting cooperation between the limiting groove and the limiting buckle 3221, the positions of the second limiting edge 322 and the cover body 1 in the height direction and the horizontal direction can be restricted, further improving the connection stability between the second limiting edge 322 and the cover body 1. A guiding inclined surface can also be provided on the limiting buckle 3221, and the setting of the guiding inclined surface facilitates users to assemble the upper cover 32 and the cover body 1 in place more quickly and simply.
[0049] It should be noted that in Embodiment 1, the visible section 22 and the heat-conducting section 21 are of an integrally formed structure; in Embodiment 2, the visible section 22 and the heat-conducting section 21 are of a split structure, and a heat insulator 23 is provided between the visible section 22 and the heat-conducting section 21 to reduce heat conduction. Except for the heat insulator 23, the other parts of the atomizing cartridges in the above Embodiment 1 and Embodiment 2 may adopt the same structure (including but not limited to materials, shapes, configurations of components, etc.), and the embodiments of the present application do not make specific limitations thereto.
[0050] Embodiment 3:
[0051] As Figure 5 and 6 shown, there is also provided an atomizing device, which includes a power supply assembly 4 and the atomizing cartridge in the above embodiments. The power supply assembly 4 is provided with a receiving groove, and one end of the atomizing cartridge away from the nozzle assembly is detachably inserted into the receiving groove. Specifically, the power supply assembly 4 and the atomizing cartridge are magnetically coupled or snap-fitted, with good connection stability, convenient replacement of the atomizing cartridge, easy to carry, and the power supply assembly 4 can supply power to the atomizing cartridge.
[0052] In some specific embodiments, the cover 1 is made of a ferromagnetic material; the power supply assembly 4 includes a battery 41 and a housing 42. The battery 41 is fixed to one end of the housing 42, and a receiving groove adapted to the shape of the atomizing cartridge is formed at the other end of the housing 42. The setting of the receiving groove can, to a certain extent, limit the position of the atomizing cartridge; a magnetic structure may also be provided on the power supply assembly 4 such that when the atomizing cartridge is received in the receiving groove, the magnetic structure attracts the cover 1 to ensure a firm connection between the power supply assembly 4 and the atomizing cartridge.
[0053] Specifically, the cover 1 in this embodiment may be an iron cover, and the magnetic structure includes a magnet 33; when the atomizing cartridge is installed in place with the power supply assembly 4, the magnet 33 can attract the cover 1, thereby improving the connection stability between the cover 1 and the upper cover 32.
[0054] It can be understood that in some other embodiments, magnets 33 may also be provided in both the atomizing cartridge and the power supply assembly. Specifically, in the atomizing cartridge, the bottom side of the upper cover 32 is connected with spaced-apart first limiting edges 321 and second limiting edges 322. In the radial direction of the mist outlet channel 3a, the first limiting edge 321 is located inside the second limiting edge 322, and a groove adapted to the shape of the magnet 33 is formed between the first limiting edge 321 and the second limiting edge 322. The magnet 33 can be embedded in the groove, and the magnet 33 on the power supply assembly 4 corresponds to the magnet 33 on the atomizing cartridge, and can be specifically arranged on the end wall of the port of the receiving groove close to the diameter.
[0055] In still other embodiments, the power supply component 4 and the atomization cartridge can be fixed by snap connection. That is, at the connection between the cover 1 and the housing 42, a protrusion can be provided on one of them, and a card slot adapted to the protrusion can be opened on the other. Through the snap fit of the protrusion and the card slot, a stable connection between the two can be achieved. A certain guiding surface can be provided on the card slot and / or the protrusion, so that when the atomization cartridge needs to be removed, the protrusion can be smoothly withdrawn from the card slot by applying opposite forces to the cover 1 and the housing 42 respectively, and then the atomization cartridge and the power supply component 4 can be separated as a whole.
[0056] When installing the atomization component, the following sequence can be adopted: first, cover and connect the upper cover 32 with the visible section 22, and seal and fix it with glue at the connection; put on the isolation piece 23 and connect the heat conduction section 21 to integrate the visible section 22, the isolation piece 23 and the heat conduction section 21; put on the cover 1 from the bottom of the heat conduction section 21; insert the mouthpiece 31 from above the upper cover 32, and seal it with glue at the connection between the mouthpiece 31 and the installation cavity 34 to obtain the atomization cartridge; finally, install the atomization cartridge into the power supply component 4.
[0057] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. An atomizing bomb, characterized in that: The atomizing bomb comprises a cover body, a heating container fixed in the cover body, and a nozzle assembly covering one end of the cover body; The heating container comprises a heat conducting section and a visible section, wherein an isolating member is disposed between the heat conducting section and the visible section; the heat conducting section, the visible section and the isolating member together enclose a containing cavity for storing an aerosol-forming substrate; At least the portion of the cover body corresponding to the visible section is provided with a window or is made of a transparent material; The nozzle assembly covers the opening of one end of the visible section away from the heat-conducting section, and the nozzle assembly has a mist outlet channel connecting the accommodating cavity to the outside.
2. The atomizing bomb according to claim 1, characterized in that: The heat-conducting section and the visible section respectively form a heat-insulating gap with the cover body.
3. The atomizing bomb according to claim 2, characterized in that: The isolating member has a supporting portion located in the thermal insulation gap, one side of the supporting portion abuts against the cover body, and the other side of the supporting portion abuts against the heat conducting section and / or the visible section.
4. The atomizing bomb according to any one of claims 1 to 3, characterized in that: The thermal conductivity of the heat-conducting segment is greater than the thermal conductivity of the visible segment.
5. The atomizing bomb according to any one of claims 1 to 3, characterized in that: The cover body is made of ferromagnetic material, and at least the portion corresponding to the visible section is provided with the window; and / or, The isolating member is a silicone member; and / or, The heat conducting section is a ceramic part or an alloy part; and / or, The transparent part in the visible section is glass.
6. The atomizing bomb according to any one of claims 1 to 3, characterized in that: A heating element is arranged on the heat-conducting section, and a relief position is formed on the cover body at a position corresponding to the heating element. The relief position is adapted to the power supply connection part of the power supply component and is used for the power supply connection part to be inserted and connected.
7. The atomizing bomb according to claim 6, characterized in that: The heating element is located at the bottom side and / or the peripheral side of the heat conducting section.
8. The atomizing bomb according to any one of claims 1 to 3, characterized in that: A filter is arranged in the mist outlet channel.
9. An atomizing bomb, characterized in that: The atomizing bomb comprises a cover body, a heating container fixed in the cover body, and a nozzle assembly covering one end of the cover body; The heating container comprises an integrally formed heat-conducting section and a visible section, the heat-conducting section having a thermal conductivity greater than that of the visible section; the heat-conducting section and the visible section together enclose a containing cavity for storing an aerosol-forming matrix; At least the portion of the cover body corresponding to the visible section is provided with a window or is made of a transparent material; The nozzle assembly covers the opening of one end of the visible section away from the heat-conducting section, and the nozzle assembly has a mist outlet channel connecting the accommodating cavity to the outside.
10. An atomizing device, characterized in that: It comprises a power supply component and an atomizer bomb as described in any one of claims 1 to 9, wherein the power supply component is provided with a receiving groove, and one end of the atomizer bomb is away from one end of the nozzle assembly and can be detachably inserted into the receiving groove.