Solid fragrance container
By designing a threaded connection structure with a liftable upper and lower shell in the solid fragrance container, combined with fixing and anti-detachment components, the problem of inflexible control of fragrance release in existing technologies is solved, enabling precise adjustment of fragrance release and improving user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHUHAI HERMESIN ENTERPRISES CO LTD
- Filing Date
- 2025-08-14
- Publication Date
- 2026-07-21
AI Technical Summary
Existing solid fragrance containers cannot flexibly control the amount of fragrance released according to user needs, resulting in an inability to adjust the fragrance concentration, which limits the applicability of the product and the user experience.
By designing a liftable upper and lower shell in the solid fragrance container, and using a threaded connection structure to achieve linear adjustment of the evaporation gap between the upper and lower shells, combined with fixing and anti-detachment components, the evaporation area of the fragrance paste is controlled, thereby regulating the fragrance release rate.
It achieves precise control over the amount of fragrance released, allowing users to flexibly adjust the fragrance concentration according to their needs, thus enhancing the user experience.
Smart Images

Figure CN224523665U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of fragrance container technology, and in particular to a solid fragrance container. Background Technology
[0002] Solid air fresheners are a common type of air purifier, widely used in homes, offices, and vehicles to improve ambient odor and create a comfortable atmosphere. As people's quality of life improves, higher demands are being placed on the functionality and user experience of air fresheners.
[0003] Most existing solid fragrance containers adopt a simple opening and closing structure or a fixed design. The fragrance release rate mainly depends on the ambient temperature and air circulation, which makes it impossible for users to flexibly control the fragrance concentration according to actual needs, thus limiting the applicability of the product and the user experience. Utility Model Content
[0004] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes a solid fragrance container that enables precise control of fragrance release, allowing users to flexibly adjust the fragrance concentration according to their needs and enhance the user experience.
[0005] A solid fragrance container according to an embodiment of the present invention includes: a lower shell, wherein a first connecting cylinder is provided on the lower shell; an upper shell, wherein the upper shell is vertically and movably disposed on the lower shell, the upper shell and the lower shell enclosing a cavity, the upper shell being provided with a second connecting cylinder, the first connecting cylinder and the second connecting cylinder being threadedly connected, the first connecting cylinder driving the upper shell to rise and fall when rotating relative to the second connecting cylinder; and a fixing component, wherein the fixing component is disposed on the upper shell, the fixing component is located in the cavity, and the fixing component is used to fix the fragrance paste.
[0006] It has at least the following beneficial effects: The upper shell is vertically mounted on the lower shell, and the two together enclose a cavity. A first connecting cylinder is located inside the lower shell, and a second connecting cylinder is correspondingly located inside the upper shell. The first and second connecting cylinders are threaded together. When the first connecting cylinder rotates relative to the second connecting cylinder, it drives the upper shell to move axially along the lower shell, thereby adjusting the width of the evaporation gap between them. A fixing component is installed inside the upper shell and extends into the cavity, used to fix the aromatic paste inside the cavity. By rotating the lower or upper shell, the threaded connection structure is axially displaced, achieving linear adjustment of the evaporation gap between the upper and lower shells, thereby controlling the evaporation area of the aromatic paste. Thus, by rotating the upper shell to adjust the width of the evaporation gap between it and the lower shell, the exposed area of the aromatic paste is controlled. That is, when it is necessary to enhance the fragrance, the evaporation gap is increased by loosening the threads to enhance fragrance release; when it is necessary to weaken the fragrance, the evaporation gap is reduced by tightening the threads to reduce evaporation efficiency. Therefore, the mechanical structure achieves active control of the fragrance release rate, allowing users to flexibly adjust the fragrance concentration according to their needs and improve the user experience.
[0007] According to some embodiments of the present invention, the fixing component includes multiple fixing posts, all of which are disposed on the upper shell and are evenly distributed around the second connecting cylinder.
[0008] According to some embodiments of this utility model, the fixing column is inclined in a direction away from the second connecting cylinder.
[0009] According to some embodiments of this utility model, the cross-sectional area of the fixed column gradually decreases along the direction closer to the lower shell.
[0010] According to some embodiments of the present invention, the lower shell includes a first panel and an annular sidewall, the annular sidewall being disposed on the first panel and located in the cavity; the upper shell includes a second panel and a first boss, the first boss being disposed on the second panel, and the annular sidewall sealing the upper shell and the lower shell when it abuts against the first boss.
[0011] According to some embodiments of the present invention, an annular flange is provided on the first panel, the annular flange is located between the annular sidewall and the first connecting cylinder, the annular flange is located in the cavity, and the annular flange and the annular sidewall enclose to form a sealing groove, and a sealing tenon is provided on the upper shell, the sealing tenon being inserted into the sealing groove.
[0012] According to some embodiments of the present invention, a second boss is provided on the first panel, the second boss is located between the annular flange and the first connecting cylinder, and the second boss is located in the cavity.
[0013] According to some embodiments of the present invention, it also includes an anti-detachment component, which is connected to the upper shell and the lower shell, and is used to prevent the upper shell and the lower shell from separating.
[0014] According to some embodiments of the present invention, the anti-detachment component includes: a first anti-detachment member disposed on the wall surface of the first connecting cylinder; and a second anti-detachment member disposed on the wall surface of the second connecting cylinder. When the first anti-detachment member and the second anti-detachment member cooperate with each other, they restrict the upper shell and the lower shell from separating axially.
[0015] According to some embodiments of the present invention, the first anti-detachment component is an elastic claw distributed along the circumference of the first connecting cylinder, and the second anti-detachment component is a groove disposed on the wall surface of the second connecting cylinder.
[0016] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments, wherein:
[0018] Figure 1 This is a schematic diagram of the structure of the solid fragrance container according to an embodiment of the present invention;
[0019] Figure 2 for Figure 1 Schematic diagram of the middle and lower shell structure;
[0020] Figure 3 for Figure 1 Schematic diagram of the upper and middle shell;
[0021] Figure 4 for Figure 1 A cross-sectional schematic diagram.
[0022] Icon labels:
[0023] The lower shell 100, the first connecting cylinder 110, the first panel 120, the annular sidewall 130, the annular flange 140, the sealing groove 141, and the second boss 150 are all included.
[0024] Upper shell 200, second connecting cylinder 210, clearance groove 211, second panel 220, first boss 221, sealing tenon 222;
[0025] Cavity 300;
[0026] Fixing component 400, fixing post 410;
[0027] Anti-detachment component 500, first anti-detachment component 510, elastic claw 511, second anti-detachment component 520, and slot 521. Detailed Implementation
[0028] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0029] In the description of this utility model, the use of "first" and "second" is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance or implicitly indicating the number of technical features or the order of the technical features.
[0030] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0031] Reference Figure 1 , Figure 2 and Figure 3 This utility model discloses a solid fragrance container, including a lower shell 100, an upper shell 200, and a fixing component 400. The upper shell 200 is vertically mounted on the lower shell 100, and the upper shell 200 and the lower shell 100 together form a cavity 300. The lower shell 100 is provided with a first connecting cylinder 110, and the upper shell 200 is provided with a second connecting cylinder 210. The first connecting cylinder 110 and the second connecting cylinder 210 are threadedly connected. When the first connecting cylinder 110 rotates relative to the second connecting cylinder 210, it drives the upper shell 200 to rise and fall. The fixing component 400 is mounted on the upper shell 200 and is located in the cavity 300. The fixing component 400 is used to fix the fragrance paste.
[0032] like Figure 4 As shown, the upper shell 200 is vertically mounted on the lower shell 100, and the two together enclose a cavity 300. A first connecting cylinder 110 is provided inside the lower shell 100, and a second connecting cylinder 210 is correspondingly provided inside the upper shell 200. The first connecting cylinder 110 and the second connecting cylinder 210 are threaded together. When the first connecting cylinder 110 rotates relative to the second connecting cylinder 210, it drives the upper shell 200 to move axially along the lower shell 100, thereby adjusting the width of the evaporation gap formed between them. A fixing component 400 is installed inside the upper shell 200 and extends into the cavity 300, used to fix the aromatic paste inside the cavity 300. By rotating the lower shell 100 or the upper shell 200, the threaded connection structure is axially displaced, achieving linear adjustment of the evaporation gap between the upper shell 200 and the lower shell 100, thereby controlling the evaporation area of the aromatic paste. Therefore, by rotating the upper shell 200 to adjust the evaporation gap width between it and the lower shell 100, the exposed area of the fragrance paste can be controlled. That is, when it is necessary to enhance the fragrance, the evaporation gap is increased by loosening the thread to enhance the fragrance release. When it is necessary to weaken the fragrance, the evaporation gap is reduced by tightening the thread to reduce the evaporation efficiency. Thus, the mechanical structure realizes the active regulation of the fragrance release rate, allowing users to flexibly adjust the fragrance concentration according to their needs and improve the user experience.
[0033] In some specific embodiments of this utility model, the fixing component 400 includes a plurality of fixing posts 410, all of which are disposed on the upper shell 200 and are evenly distributed around the second connecting cylinder 210.
[0034] In some specific embodiments, an annular limiting space is formed between the fixing post 410 and the second connecting cylinder 210. The shape of this annular limiting space is adapted to the shape of the aromatic paste. When the aromatic paste is fitted onto the second connecting cylinder 210, multiple fixing posts 410 are evenly surrounding the periphery of the aromatic paste, forming a stable radial constraint. In another specific embodiment, the radial dimension of the aromatic paste is larger than the distance between the fixing posts 410 and the second connecting cylinder 210, allowing the aromatic paste to be clamped between the fixing posts 410 in an interference fit manner, ensuring both secure fixation and easy disassembly and replacement. It should be noted that the fixing posts 410 surrounding the outside of the second connecting cylinder 210 not only achieve reliable positioning but also maintain unobstructed flow between the aromatic paste and the evaporation gap, ensuring the aroma release effect.
[0035] Furthermore, the contact surface of the fixing post 410 may be provided with anti-slip texture or elastic protrusions to enhance the clamping force on the fragrance paste.
[0036] In some specific embodiments of this utility model, the fixing column 410 is inclined in a direction away from the second connecting cylinder 210. For example... Figure 3 As shown, the fixing posts 410 extend at a preset angle away from the second connecting cylinder 210, creating a gradually expanding limiting space between each fixing post 410 and the second connecting cylinder 210. The distance between the ends of the fixing posts 410 is greater than the distance between their roots, which facilitates the installation and positioning of the fragrance paste and generates radial clamping force through elastic deformation. When the fragrance paste is inserted along the inclined direction, the elastic deformation of the fixing posts 410 can automatically clamp the fragrance paste, ensuring stable fixation of pastes of different sizes.
[0037] In some specific embodiments of this utility model, the cross-sectional area of the fixing column 410 gradually decreases along the direction approaching the lower shell 100. For example... Figure 3 As shown, the cross-sectional area of the fixing post 410 gradually decreases along the direction close to the lower shell 100. The root of the fixing post 410 near the upper shell 200 has a larger cross-section to maintain structural strength, while the tip of the fixing post 410 near the lower shell 100 enhances the elastic deformation capacity through cross-section reduction. Therefore, when the fragrance paste is installed, the tip of the fixing post 410 can generate moderate elastic deformation to form an adaptive clamping force while the paste is inserted.
[0038] In some specific embodiments of this utility model, the lower shell 100 includes a first panel 120 and an annular sidewall 130, the annular sidewall 130 is disposed on the first panel 120 and is located in the cavity 300; the upper shell 200 includes a second panel 220 and a first boss 221, the first boss 221 is disposed on the second panel 220, and the annular sidewall 130 seals the upper shell 200 and the lower shell 100 when it abuts against the first boss 221.
[0039] like Figure 2 and Figure 4 As shown, the lower shell 100 is composed of a first panel 120 and an annular sidewall 130. The first panel 120 extends along its periphery to form the annular sidewall 130, wherein the annular sidewall 130 and the first panel 120 have an included angle. In this specific embodiment, the first panel 120 extends vertically along its periphery to form the annular sidewall 130. The upper shell 200 is composed of a second panel 220 and a first boss 221. The first boss 221 is disposed on the second panel 220 and extends along the periphery of the first panel 120. The first boss 221 and the second panel 220 also have an included angle. In this specific embodiment, the first boss 221 and the second panel 220 have a smooth transition. Therefore, when the upper shell 200 and the lower shell 100 are mated, the free end of the annular sidewall 130 forms an interference fit with the first boss 221, and a continuous pressing force is generated through the elastic deformation of the annular sidewall 130, thereby achieving an airtight seal between the upper shell 200 and the lower shell 100.
[0040] In some specific embodiments of this utility model, an annular flange 140 is provided on the first panel 120. The annular flange 140 is located between the annular sidewall 130 and the first connecting cylinder 110. The annular flange 140 is located in the cavity 300. The annular flange 140 and the annular sidewall 130 enclose to form a sealing groove 141. The upper shell 200 is provided with a sealing tenon 222, which is used to be inserted into the sealing groove 141.
[0041] like Figure 2 As shown, the first panel 120 is provided with an annular sidewall 130 and a first connecting cylinder 110. In this specific embodiment, the annular sidewall 130 and the first connecting cylinder 110 are arranged coaxially, and an annular flange 140 extending into the cavity 300 is formed between the annular sidewall 130 and the first connecting cylinder 110. The annular flange 140 and the annular sidewall 130 enclose an annular sealing groove 141 with a U-shaped cross section. Correspondingly, the upper shell 200 is provided with a sealing tenon 222, and the sealing groove 141 extends into the cavity 300. When the upper shell 200 and the lower shell 100 are mated, the sealing tenon 222 is inserted into the sealing groove 141 axially and forms an interference fit with the annular flange 140 and the annular sidewall 130, thereby constituting a sealing structure for realizing the sealing of the upper shell 200 and the lower shell 100.
[0042] Specifically, the sealing tenon 222 is connected to the first boss 221. The sealing tenon 222 is located inside the first boss 221. When the upper shell 200 and the lower shell 100 are connected, the free end of the annular sidewall 130 forms an interference fit with the first boss 221. At the same time, the sealing tenon 222 is inserted into the sealing groove 141 along the axial direction and forms an interference fit with the annular flange 140 and the annular sidewall 130.
[0043] In some specific embodiments of this utility model, a second boss 150 is provided on the first panel 120. The second boss 150 is located between the annular flange 140 and the first connecting cylinder 110, and the second boss 150 is located in the cavity 300.
[0044] like Figure 2 and Figure 4 As shown, the second protrusion 150 is disposed within the cavity 300 and located between the annular flange 140 and the first connecting cylinder 110. In this specific embodiment, the second protrusion 150 and the first connecting cylinder 110 are arranged coaxially. When the upper shell 200 and the lower shell 100 are completely closed, the second protrusion 150 and the inner wall of the cavity 300 form an auxiliary sealing structure. By extending the evaporation path and establishing a transition chamber pressure, the escape rate of volatile components in the aromatic paste is slowed down, thus maintaining the stability of the aromatic paste even under long-term sealed conditions. It is worth noting that when the upper shell 200 is rotated to adjust the aroma release, the second protrusion 150 can buffer airflow changes, reduce the sudden increase in instantaneous evaporation caused by the increase in evaporation gap, and ensure that the aroma release is uniform and controllable.
[0045] In some specific embodiments of this utility model, an anti-detachment component 500 is also included. The anti-detachment component 500 is connected to the upper shell 200 and the lower shell 100, and is used to prevent the upper shell 200 from separating from the lower shell 100. It should be noted that the upper shell 200 is adjusted in height by the cooperation of the first connecting cylinder 110 and the second connecting cylinder 210, thereby controlling the size of the evaporation gap. To ensure that the upper shell 200 always maintains a reliable connection with the lower shell 100 during use, the technical solution of this utility model provides the anti-detachment component 500. The anti-detachment component 500 can effectively prevent the upper shell 200 from accidentally separating from the lower shell 100 during rotational adjustment, which ensures both ease of use and structural stability of the product.
[0046] In some specific embodiments of this utility model, the anti-detachment component 500 includes a first anti-detachment member 510 and a second anti-detachment member 520. The first anti-detachment member 510 is disposed on the wall surface of the first connecting cylinder 110, and the second anti-detachment member 520 is disposed on the wall surface of the second connecting cylinder 210. When the first anti-detachment member 510 and the second anti-detachment member 520 cooperate with each other, they restrict the upper shell 200 and the lower shell 100 from separating axially. Figure 2 and Figure 3 As shown, a first anti-detachment component 510 is provided on the wall surface of the first connecting cylinder 110, and a second anti-detachment component 520 is provided at the corresponding position of the second connecting cylinder 210. When the upper shell 200 and the lower shell 100 are assembled in place, the first anti-detachment component 510 and the second anti-detachment component 520 form an axial limiting fit, which effectively prevents the upper shell 200 and the lower shell 100 from accidentally separating during use. While ensuring the rotation adjustment function, it also ensures the structural integrity and safety of the product.
[0047] In some specific embodiments of this utility model, the first anti-detachment component 510 is an elastic claw 511 distributed circumferentially along the first connecting cylinder 110, and the second anti-detachment component 520 is a groove 521 provided on the wall surface of the second connecting cylinder 210. For example... Figure 2 , Figure 3 and Figure 4 As shown, the anti-detachment component 500 includes multiple circumferentially distributed elastic claws 511 disposed on the top of the first connecting cylinder 110, and multiple sets of axially arranged slots 521 disposed on the inner wall of the second connecting cylinder 210. Each set of slots 521 is composed of multiple circumferentially distributed slots 521. When the first connecting cylinder 110 is inserted into the second connecting cylinder 210, the elastic claws 511 and the slots 521 form a multi-level mating structure. Specifically, four elastic claws 511 are evenly distributed along the periphery of the first connecting cylinder 110, and three sets of slots 521 are arranged at equal intervals along the axial direction of the second connecting cylinder 210. Each set of slots 521 contains four slots 521 evenly distributed circumferentially. It should be noted that in this specific embodiment, the inner wall of the second connecting cylinder 210 is provided with four clearance grooves 211 along the axial direction. The slots 521 in each set of slots 521 are located in the same clearance groove 211. The clearance grooves 211 are used to avoid thread interference between the slots 521 and the inner wall of the second connecting cylinder 210. When the upper shell 200 is rotated to adjust the evaporation gap, the elastic claws 511 engage sequentially with the sets of slots 521 at different axial positions, forming a stepped locking structure, thereby effectively preventing the upper shell 200 and the lower shell 100 from separating in the axial direction, while providing clear gear feedback.
[0048] Specifically, the cross-section of the elastic claw 511 is trapezoidal, and the elastic claw 511 and the slot 521 form an interference fit.
[0049] The following is a specific embodiment of the solid fragrance container of this utility model:
[0050] A first connecting cylinder 110 extends vertically from the middle of the lower shell 100. The outer wall of the first connecting cylinder 110 is provided with external threads, and the top of the first connecting cylinder 110 is provided with four circumferentially distributed elastic claws 511. The lower shell 100 includes a first panel 120, and an annular sidewall 130 and an annular flange 140 vertically disposed on the first panel 120. The annular flange 140 is disposed on the inner side of the annular sidewall 130, and an annular sealing groove 141 is formed between the annular flange 140 and the annular sidewall 130. A second boss 150 is also provided between the first connecting cylinder 110 and the annular flange 140. The annular flange 140, the annular sidewall 130, the second boss 150 and the first connecting cylinder 110 are all located on the same side of the first panel 120.
[0051] A second connecting cylinder 210 extends vertically from the middle of the upper shell 200. The inner wall of the second connecting cylinder 210 is provided with internal threads. The first connecting cylinder 110 passes through the second connecting cylinder 210, and the upper shell 200 is adjusted for lifting and lowering through the threaded engagement. The inner wall of the second connecting cylinder 210 is provided with multiple sets of axially arranged slots 521. When the upper shell 200 is rotated, the elastic claws 511 engage with the slots 521 at different heights in sequence, forming a stepped anti-detachment structure. The upper shell 200 includes a second panel 220 and a first boss 221 provided on the second panel 220. A sealing tenon 222 is provided on the inner side of the first boss 221. When the upper shell 200 is connected to the lower shell 100, the free end of the annular sidewall 130 forms an interference fit with the first boss 221. At the same time, the sealing tenon 222 is inserted into the sealing groove 141 along the axial direction and forms an interference fit with the annular flange 140 and the annular sidewall 130. The inner side of the upper shell 200 is provided with eight fixing posts 410 for fixing the aromatic paste. In use, the upper shell 200 is rotated to adjust the size of the evaporation gap between it and the lower shell 100, thereby controlling the amount of aroma release. At the same time, the anti-detachment structure ensures that the upper shell 200 will not separate from the lower shell 100 during the adjustment process.
[0052] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0053] Of course, this utility model is not limited to the above-described embodiments. Those skilled in the art can make equivalent modifications or substitutions without departing from the spirit of this utility model. All such equivalent modifications or substitutions are included within the scope defined by the claims of this application.
Claims
1. A container for a solid fragrance, characterized in that, include: The lower shell (100) is provided with a first connecting cylinder (110); An upper shell (200) is vertically mounted on a lower shell (100). The upper shell (200) and the lower shell (100) together form a cavity (300). The upper shell (200) is provided with a second connecting cylinder (210). The first connecting cylinder (110) and the second connecting cylinder (210) are threaded together. When the first connecting cylinder (110) rotates relative to the second connecting cylinder (210), it drives the upper shell (200) to move up and down. A fixing component (400) is disposed on the upper shell (200) and located in the cavity (300). The fixing component (400) is used to fix the aromatic paste.
2. The solid fragrance container according to claim 1, characterized in that, The fixing component (400) includes a plurality of fixing posts (410), all of which are disposed on the upper shell (200) and are evenly distributed around the second connecting cylinder (210).
3. The solid fragrance container according to claim 2, characterized in that, The fixing column (410) is inclined away from the second connecting cylinder (210).
4. The solid fragrance container according to claim 3, characterized in that, The cross-sectional area of the fixed column (410) gradually decreases along the direction close to the lower shell (100).
5. The solid fragrance container according to claim 1, characterized in that, The lower shell (100) includes a first panel (120) and an annular sidewall (130), the annular sidewall (130) being disposed on the first panel (120) and located in the cavity (300); The upper shell (200) includes a second panel (220) and a first boss (221). The first boss (221) is disposed on the second panel (220). When the annular sidewall (130) abuts against the first boss (221), it seals the upper shell (200) and the lower shell (100).
6. The solid fragrance container according to claim 5, characterized in that, The first panel (120) is provided with an annular flange (140), which is located between the annular sidewall (130) and the first connecting cylinder (110). The annular flange (140) is located in the cavity (300). The annular flange (140) and the annular sidewall (130) enclose to form a sealing groove (141). The upper shell (200) is provided with a sealing tenon (222), which is used to be inserted into the sealing groove (141).
7. The solid fragrance container according to claim 6, characterized in that, The first panel (120) is provided with a second boss (150), which is located between the annular flange (140) and the first connecting cylinder (110) and is located in the cavity (300).
8. The solid fragrance container according to claim 1, characterized in that, It also includes an anti-detachment component (500), which is connected to the upper shell (200) and the lower shell (100), and is used to prevent the upper shell (200) from separating from the lower shell (100).
9. The solid fragrance container according to claim 8, characterized in that, The anti-detachment component (500) includes: The first anti-detachment component (510) is disposed on the wall surface of the first connecting cylinder (110); The second anti-detachment component (520) is disposed on the wall surface of the second connecting cylinder (210). When the first anti-detachment component (510) and the second anti-detachment component (520) cooperate with each other, they restrict the upper shell (200) and the lower shell (100) from separating axially.
10. The solid fragrance container according to claim 9, characterized in that, The first anti-detachment component (510) is an elastic claw (511) distributed circumferentially along the first connecting cylinder (110), and the second anti-detachment component (520) is a groove (521) provided on the wall of the second connecting cylinder (210).