Scorpio anti-oxidation packaging device
By designing a multi-cavity structure and deoxygenating filler in the whole scorpion packaging device, combined with barrier components, the oxidation problem of whole scorpions during storage was solved, thereby improving the quality stability and medicinal value of whole scorpions.
Patent Information
- Application Number
- CN202520389810.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-07
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2035-03-07
AI Technical Summary
Whole scorpions are susceptible to oxidation during storage, and existing sealing technologies are limited, leading to a decline in quality.
Design a whole scorpion anti-oxidation packaging device, which adopts a multi-independent cavity structure inside the can, combined with deoxygenating filler and barrier components. Gas exchange is achieved through the connecting components, and the barrier components seal the gaps to reduce oxygen entry.
This method effectively reduces oxidation of whole scorpions, improves the stability of storage quality, prevents rancidity, and ensures the medicinal value of whole scorpions.
Smart Images

Figure CN223721467U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the packaging technical field, in particular to a scorpion anti-oxidation packaging device. BACKGROUND
[0002] Scorpion is the dried whole worm of Chelicerata, which is used for infantile convulsion, convulsion, hemiplegia, tetanus, rheumatism, headache, sore, etc. in traditional Chinese medicine, and has high medicinal value.
[0003] When selling scorpions, manufacturers usually process and dry scorpions first, and then package and store them after making them into dry scorpions. One of the packaging methods is in the form of canning. Since scorpions contain fatty acids and other substances in their bodies, if they are in contact with oxygen for a long time, they are prone to spoilage, affecting the quality of scorpions. Although manufacturers will fill other gases into the can to replace oxygen and seal the package when packaging, the sealing technology is limited, and it is inevitable that there will be uncontrollable factors such as collision during transportation, affecting the sealing of the can body and accelerating the spoilage of scorpions. Therefore, a new technical solution is proposed. CONTENT OF THE UTILITY MODEL
[0004] In order to improve the stability of the quality of scorpions, the application provides a scorpion anti-oxidation packaging device.
[0005] A scorpion anti-oxidation packaging device, comprising a can body, a can cover in sealing cooperation with the opening of the can body,
[0006] A plurality of partitions are arranged in the interior of the can body and are used to divide the inner cavity of the can body into a plurality of independent cavities for storing scorpions;
[0007] A convex structure is arranged on the inner side of the can cover and is provided with a filling cavity for storing deoxidizing fillers;
[0008] A communication assembly is arranged in the inner cavity of the can body and is used to communicate the filling cavity with the gas in each independent cavity in the can body;
[0009] A blocking assembly is arranged at the opening of the can body and is used to block the air leaking from the can cover into the can body;
[0010] The opening end of the can body is provided with a step surface in cooperation with the convex structure, the can body is provided with a ring groove at the step surface, the ring groove is arranged along the circumference of the can body, and the blocking assembly is arranged in the ring groove.
[0011] Optionally, the barrier assembly comprises a supporting plate and a barrier coating, the supporting plate is annular and arranged in the annular groove, the lower surface of the supporting plate is fixedly connected with a plurality of convex points, the convex points are supported on the bottom surface of the annular groove, so that a gap is left between the lower surface of the supporting plate and the bottom surface of the annular groove, the barrier coating is coated on the lower surface of the supporting plate, a plurality of through holes are formed in the supporting plate, and the barrier coating expands and seals the gap between the annular groove and the convex structure of the can cover when the barrier coating contacts air.
[0012] Optionally, a partition ring is fixedly connected in the filling cavity, the filling cavity is divided into an inner cavity and an outer cavity by the partition ring, a horizontal plate with a circular cross section is fixedly connected at the outer cavity of the filling cavity and is used to divide the outer cavity into an upper cavity and a lower cavity, a plurality of first communication holes are formed in the convex structure at the position of the upper cavity, and the upper cavity is communicated with the annular groove through the first communication holes.
[0013] Optionally, the communication assembly comprises a first communication pipe and a second communication pipe, and the first communication pipe and the second communication pipe are arranged in the tank body along the depth direction of the tank body.
[0014] The upper end of the first communication pipe is communicated with the inner cavity of the filling cavity, the first communication pipe penetrates through each partition plate and extends to the bottom of the tank body, a plurality of second communication holes are formed in the first communication pipe, the second communication holes are arranged and distributed from the position below the partition plate closer to the opening of the tank body of the first communication pipe, and each second communication hole corresponds to an independent cavity.
[0015] The upper end of the second communication pipe is communicated with the lower cavity of the filling cavity, and the lower end of the second communication pipe is arranged in an open manner and the end portion is located above the partition plate closer to the opening of the tank body.
[0016] Optionally, a closed-cell sponge is arranged on the upper surface of the supporting plate, and the closed-cell sponge is arranged in the annular groove.
[0017] Optionally, a notch is formed in the side edge of the partition plate, the first communication pipe is arranged in the notch, an elastic sealing ring is fixedly connected to the outer edge of the partition plate and the notch, the elastic sealing ring at the outer edge of the partition plate abuts against the inner wall of the tank body, the elastic sealing ring at the notch abuts against the first communication pipe, and a convex rib is fixedly connected to the upper surface of the partition plate.
[0018] Optionally, the upper end of the first communication pipe is arranged in a corrugated pipe, a mounting hole is formed in the position of the inner cavity of the convex structure, and the corrugated pipe at the upper end of the first communication pipe is arranged in the mounting hole.
[0019] In summary, the application has the following beneficial technical effects: when the rim of the lid is damaged and external air enters the annular groove, the blocking assembly blocks the gap between the rim of the lid and the opening of the tank body, reducing the entry of air into the inner cavity of the tank body. In addition, the inner cavity of the tank body is divided into multiple independent cavities by the partition plate, reducing the oxidation amount of scorpions in the tank body and improving the stability of the quality of scorpions. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 is a schematic diagram of the overall structure of an embodiment of the application;
[0021] Figure 2 is a sectional view of an embodiment of the application;
[0022] Figure 3 is Figure 2 is a partial enlarged schematic diagram of part A in FIG. 1.
[0023] BRIEF DESCRIPTION OF DRAWINGS 1, tank body; 2, tank lid; 3, partition plate; 4, protruding structure; 5, communication assembly; 6, blocking assembly; 11, step surface; 12, annular groove; 61, support plate; 62, through hole; 63, protruding point; 64, closed-cell sponge; 21, separation ring; 22, transverse plate; 23, inner cavity; 24, outer cavity; 25, upper cavity; 26, lower cavity; 41, communication hole one; 51, communication tube one; 52, communication tube two; 53, communication hole two; 42, mounting hole; 31, protruding rib; 32, elastic sealing ring. DETAILED DESCRIPTION
[0024] The following will be described in detail below with reference to the accompanying Figures 1-3 The application will be described in further detail.
[0025] An embodiment of the application discloses a scorpion anti-oxidation packaging device.
[0026] Referring to Figure 1 With Figure 2 The scorpion anti-oxidation packaging device comprises a tank body 1, a tank lid 2 in sealing cooperation with the opening of the tank body 1, a plurality of partition plates 3 for dividing the inner cavity of the tank body 1 into a plurality of independent cavities for storing scorpions, a protruding structure 4 fixed to the inner side of the tank lid 2, a filling cavity opened in the protruding structure 4, a communication assembly 5 for respectively communicating the filling cavity with the gas in each cavity for storing scorpions in the tank body 1, and a blocking assembly 6 for blocking the air leaked into the tank body 1.
[0027] Referring to Figure 2 With Figure 3In the embodiment, the convex structure 4 is a cylindrical structure and has a diameter slightly larger than the inner diameter of the opening of the can body 1. Thus, a step surface 11 is formed at the opening end of the can body 1 to cooperate with the convex structure 4. The edge of the convex structure 4 of the can cover 2 can abut against the step surface 11 at the opening end of the can body 1. The can body 1 is provided with a ring groove 12 at the step surface 11. The ring groove 12 is formed along the circumference of the can body 1. The blocking assembly 6 is arranged in the ring groove 12 to block the air entering the can body 1 from the edge of the can cover 2.
[0028] The filling cavity has a circular cross section and is coaxial with the convex structure 4. In the embodiment, the filling cavity stores a deoxidizing filler. The deoxidizing filler is an iron-based deoxidizing agent, an additive capable of absorbing oxygen and slowing down the oxidation of scorpions. The deoxidizing filler is packaged by a cotton air-permeable material and is inserted into the filling cavity. A cover is fixed to the convex structure 4 to close the filling cavity. The cover can be fixed by screwing.
[0029] Through the above arrangement, when the edge of the can cover 2 is damaged and the external air enters the ring groove 12, the blocking assembly 6 blocks the gap between the edge of the can cover 2 and the opening of the can body 1, thereby reducing the air entering the cavity of the can body 1. In addition, the cavity of the can body 1 is divided into multiple independent cavities by the partition plate 3, thereby reducing the amount of oxidation of the scorpions in the can body 1 and improving the stability of the quality of the scorpions.
[0030] Referring to Figure 2 With Figure 3 The blocking assembly 6 includes a support plate 61 and a blocking coating (not shown in the figure). The support plate 61 is in the shape of a ring and is arranged in the ring groove 12. The inner diameter of the support plate 61 is greater than the diameter of the convex structure 4. The support plate 61 is provided with a plurality of through holes 62. The blocking coating is coated on the lower surface of the support plate 61. A plurality of convex points 63 are fixed to the lower surface of the support plate 61 along the circumference thereof. The support plate 61 is supported on the bottom surface of the ring groove 12 by the convex points 63, so that a gap is left between the blocking coating on the support plate 61 and the bottom of the ring groove 12. The blocking coating is a bentonite coating. When the bottle cap is damaged, the external air enters the ring groove 12. The bentonite coating expands when it meets the moisture in the air, thereby blocking the gap between the ring groove 12 and the convex structure 4 and reducing the air entering the cavity of the can body 1. In addition, in order to slow down or isolate part of the external air from entering the cavity of the can body 1, a closed-cell sponge 64 is bonded to the upper surface of the support plate 61, so that the closed-cell sponge 64 is placed in the ring groove 12.
[0031] The present application separates the inner cavity of the tank body 1 into multiple independent cavities by the partition plate 3. In consideration of the case that the bottle cap is broken and a small amount of external air enters the uppermost independent cavity in addition to the blocking of the barrier coating, and all the cavities in the tank body 1 are deoxidized by the deoxidizing filler in the filling cavity, in order to prevent the air entering the uppermost independent cavity from entering other cavities through the filling cavity, the filling cavity is regionally separated, and the specific manner is as follows:
[0032] Referring to Figure 2 With Figure 3 , the filling cavity is fixed with a partition ring 21, which is annular and coaxial with the convex structure 4. The filling cavity is separated into two independent closed cavities, i.e. an inner cavity 23 and an outer cavity 24, by the partition ring 21. A cross-section annular transverse plate 22 is fixed at the outer cavity 24. The transverse plate 22 is coaxial with the convex structure 4, and the outer circle of the transverse plate 22 is fixed to the inner wall of the outer cavity 24, and the inner circle of the transverse plate 22 is fixed to the outer wall of the partition ring 21. Thus, the outer cavity 24 is separated into two independent closed cavities, i.e. an upper cavity 25 and a lower cavity 26, by the transverse plate 22.
[0033] A plurality of communication holes one 41 are communicated and arranged on the convex structure 4 at the position of the upper cavity 25. The communication holes one 41 are arranged circumferentially along the convex structure 4, and communicate the inner cavity of the upper cavity 25 with the ring groove 12. The communication holes one 41 are arranged above the support plate 61, so that the external air entering the ring groove 12 can enter the upper cavity 25 after being blocked by the barrier coating, and is deoxidized by the deoxidizing filler in the upper cavity 25, thereby reducing the air entering the inner cavity of the tank body 1.
[0034] Referring to Figure 2 , the communication assembly 5 includes a communication pipe one 51 and a communication pipe two 52. Both the communication pipe one 51 and the communication pipe two 52 are arranged in the tank body 1 along the depth direction of the tank body 1. In this embodiment, the communication pipe one 51 can be fixed to the inner wall of the tank body 1 by glue. The upper end of the communication pipe one 51 is communicated with the inner cavity 23 of the filling cavity. The pipe body of the communication pipe one 51 penetrates through each partition plate 3, and the bottom of the communication pipe one 51 extends to the bottom of the tank body 1. The pipe body of the communication pipe one 51 is communicated with a plurality of communication holes two 53. Since the uppermost independent cavity in the tank body 1 formed by the partition plate 3 closer to the opening end does not realize gas flow through the communication pipe one 51 and the filling cavity, the communication holes two 53 are arranged from the position below the partition plate 3 closer to the opening of the tank body 1 of the communication pipe one 51. The plurality of communication holes two 53 are arranged along the length direction of the communication pipe one 51, so that each independent cavity except the uppermost independent cavity corresponds to one communication hole two 53.
[0035] The upper end of the communication pipe two 52 is fixedly communicated with the lower cavity 26 of the filling cavity, the lower end of the communication pipe two 52 is open, and the lower end port of the communication pipe two 52 is located above the baffle 3 closer to the opening of the tank body 1, so that the uppermost independent cavity in the tank body 1 is in gas communication with the filling cavity through the communication pipe two 52.
[0036] In order to facilitate the communication between the upper end of the communication pipe one 51 and the inner cavity 23 of the filling cavity, the upper end of the communication pipe one 51 is provided as an extendable bellows (the details of the bellows are not shown in the figure), the convex structure 4 is provided with a mounting hole 42 at the position of the inner cavity 23, and the bellows of the upper end of the communication pipe one 51 is arranged in the mounting hole 42 and can be fixed by glue.
[0037] Referring to Figure 2 In order to facilitate the placement of the baffle 3 in the tank body 1, a convex rib 31 is integrally formed on the upper surface of the baffle 3 for easy removal, and in order to also adjust the size of the space of the independent cavity formed by the baffle 3 (but it is necessary to always keep one communication hole two 53 in an independent cavity), a resilient sealing ring 32 is fixedly attached to the outer edge of the baffle 3, and the baffle 3 can be relatively fixed to the inner wall of the tank body 1 by tightly pressing the resilient sealing ring 32 on the outer edge of the baffle 3 against the inner wall of the tank body 1; it should be noted that the friction between the resilient sealing ring 32 and the inner wall of the tank body 1 is much greater than the weight of the scorpion placed on the baffle 3, so that in addition to the weight of the scorpion, the baffle 3 will not be displaced without external force.
[0038] Secondly, notches are formed in the side edges of the baffle 3 for the communication pipe one 51 to pass through, and the notches are also attached with the above-mentioned resilient sealing ring 32, and the resilient sealing ring 32 tightly presses against the pipe body of the communication pipe one 51, so that the gap between the notches and the pipe body of the communication pipe one 51 is sealed.
[0039] It should be noted that in the present embodiment, in addition to the above-mentioned arrangement of the present application, the opening end of the tank cover 2 and the tank body 1 still needs to be sealed by the prior art, for example, heat-sensitive glue is pre-placed on the inner side edge of the tank cover 2, and after heating, it is adhered to the opening edge of the tank body 1, and the tank cover 2 also needs to be covered with a heat-shrinkable film, which shrinks tightly against the tank body 1 after heating.
[0040] The above are the preferred embodiments of the present application, which do not limit the protection scope of the present application, therefore: any equivalent changes made on the structure, shape, principle of the present application should be covered within the protection scope of the present application.
Claims
1. A scorpion antioxidant packaging device, comprising a can body (1), a can cover (2) in sealing cooperation with the opening of the can body (1), characterized in that, Also include: A plurality of partitions (3) are arranged in the tank body (1) inside, and for the tank body (1) cavity is divided into a plurality of independent cavity for storing scorpion; The convex structure (4) is arranged in the inside of the tank cover (2) and is provided with a filling cavity, which is used for storing deoxidizing filler; The communication assembly (5) is arranged in the tank body (1) cavity, and is used for respectively communicating the filling cavity with the gas in each independent cavity in the tank body (1); The blocking assembly (6) is arranged at the opening of the tank body (1), and is used for blocking the air from the tank cover (2) into the tank body (1); Wherein, the opening end of the tank body (1) is provided with a step surface (11) matched with the convex structure (4), the tank body (1) is provided with a ring groove (12) at the step surface (11), the ring groove (12) is arranged along the circumference of the tank body (1), and the blocking assembly (6) is arranged in the ring groove (12).
2. The scorpion antioxidant packaging device according to claim 1, characterized in that: The blocking assembly (6) includes a support plate (61) and a blocking coating, the support plate (61) is annular and arranged in the ring groove (12), the lower surface of the support plate (61) is fixedly connected with a plurality of convex points (63), the convex points (63) are supported on the bottom surface of the ring groove (12), so that a gap is left between the lower surface of the support plate (61) and the bottom surface of the ring groove (12), the blocking coating is coated on the lower surface of the support plate (61), and the support plate (61) is provided with a plurality of through holes (62). The blocking coating contacts air and expands to block the gap between the ring groove (12) and the convex structure (4) of the tank cover (2).
3. The scorpion antioxidant packaging device according to claim 2, characterized in that: The filling cavity is fixedly connected with a partition ring (21), which divides the filling cavity into an inner cavity (23) and an outer cavity (24), the outer cavity (24) of the filling cavity is fixedly connected with a horizontal plate (22) with a circular cross section, which is used to divide the outer cavity (24) into an upper cavity (25) and a lower cavity (26), the convex structure (4) is provided with a plurality of communication holes (41) at the position of the upper cavity (25), which communicates the upper cavity (25) with the ring groove (12), the communication holes (41) are located above the support plate (61), and the top of the communication assembly (5) is connected to the filling cavity.
4. The scorpion antioxidant packaging device according to claim 3, characterized in that: The communication assembly (5) includes a communication pipe one (51) and a communication pipe two (52), the communication pipe one (51) and the communication pipe two (52) are arranged in the tank body (1) along the depth direction of the tank body (1); The upper end of the communication pipe one (51) is communicated with the inner cavity (23) of the filling cavity, the communication pipe one (51) penetrates through each partition (3) and its bottom extends to the bottom of the tank body (1), the communication pipe one (51) is provided with a plurality of communication holes (53), the communication holes (53) are arranged from the lower position of the communication pipe one (51) which is closer to the opening of the tank body (1), and each communication hole (53) corresponds to an independent cavity. The upper end of the communicating pipe two (52) is communicated with the lower cavity (26) of the filling cavity, and the lower end of the communicating pipe two (52) is provided with an opening and located above the partition (3) closer to the opening of the tank (1).
5. The scorpion antioxidant packaging device according to claim 2, characterized in that: The upper surface of the supporting plate (61) is provided with a closed-cell sponge (64) arranged in the annular groove (12).
6. The scorpion antioxidant packaging device according to claim 4, characterized in that: The partition (3) is provided with a notch at the side edge, the communicating pipe one (51) is arranged in the notch, the outer edge of the partition (3) and the notch are fixedly connected with elastic sealing rings (32), the elastic sealing ring (32) at the outer edge of the partition (3) is tightly arranged on the inner wall of the tank (1), the elastic sealing ring (32) at the notch is tightly arranged on the communicating pipe one (51), and the upper surface of the partition (3) is fixedly connected with a convex rib (31) facilitating taking out.
7. The scorpion antioxidant packaging device according to claim 4, characterized in that: The upper end of the communicating pipe one (51) is provided with a corrugated pipe, the protruding structure (4) is provided with a mounting hole (42) at the position of the inner cavity (23), and the corrugated pipe at the upper end of the communicating pipe one (51) is arranged in the mounting hole (42).