Packaging device for inhibiting oxidative rancidity of scorpions
By setting up a deoxidation mechanism and a sealing mechanism in the whole scorpion packaging can, and using deoxidation fillers and sealing coatings to inhibit oxidative rancidity, the rancidity problem of the whole scorpion caused by oxygen contact during the packaging process is solved, and the storage stability of the product is improved.
Patent Information
- Application Number
- CN202423095295.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2025-10-14
- Estimated Expiration
- 2034-12-16
AI Technical Summary
Whole scorpions are easily turned rancid due to contact with oxygen during packaging and transportation, affecting product quality. Existing sealed packaging is difficult to effectively prevent oxidation in situations such as collisions.
The deoxidation mechanism and sealing mechanism in the tank body are used to absorb oxygen through the deoxidation filler, and the sealing coating is used to expand and seal the air holes when oxygen enters, preventing oxygen from entering the scorpion storage area. The partition divides the inner cavity of the tank into multiple areas to achieve overall deoxidation.
Effectively inhibit scorpion oxidation and rancidity, improve product quality stability, prevent oxygen from entering other storage areas, and extend shelf life.
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Figure CN223432730U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of packaging technology, and in particular to a packaging device for inhibiting oxidative rancidity of scorpions. Background Art
[0002] The whole scorpion is the dried whole insect of the Scorpionidae family. In traditional Chinese medicine, it is used to treat infantile convulsions, convulsions, facial paralysis due to stroke, hemiplegia, tetanus, rheumatism, hemiplegia, sores, etc., and has high medicinal value.
[0003] Before scorpions are incorporated into medicinal formulas and made available to physicians, they are not preserved alive and require processing and packaging by manufacturers. One packaging method is canned packaging. This packaging currently presents the following problems during its preparation, sale, and use:
[0004] The whole scorpion contains fatty acids and other substances. If they are exposed to oxygen during long-term storage, they are prone to becoming rancid, which affects the product quality. Although manufacturers will fill the cans with other atmospheres to remove oxygen and seal the whole scorpions during preparation to achieve an isolation and protection effect, due to limitations in packaging technology, collisions during transportation, etc., the sealing of the cans is sometimes inevitably damaged, causing the whole scorpion to become rancid faster. Therefore, this application proposes a new technical solution. Utility Model Content
[0005] In order to improve the stability of the quality of whole scorpions, the present application provides a packaging device that inhibits the oxidation and rancidity of whole scorpions.
[0006] The present application provides a packaging device for inhibiting oxidative rancidity of scorpions, which adopts the following technical solution:
[0007] A packaging device for inhibiting oxidative rancidity of scorpions comprises a can body, a can cover cooperating with the can body, a deoxidation mechanism, a blocking mechanism, and a plurality of partitions. The can body is hollow with an open upper end. The plurality of partitions are arranged and distributed along the depth direction of the can body. The partitions divide the inner cavity of the can body into a plurality of regional spaces for storing scorpions. The deoxidation mechanism is arranged inside the can body and passes through each of the partitions and communicates with each of the regional spaces for storing scorpions. The blocking mechanism is arranged on the inner wall of the can body and is used to prevent air entering the open end of the can body from entering the regional spaces formed by other partitions.
[0008] Optionally, the deoxidizing mechanism comprises a flow pipe and a deoxidizing filler, the flow pipe is fixedly connected to the inner wall of the tank body, the side of the tank cover facing the inner cavity of the tank body is provided with a filling cavity for storing the deoxidizing filler, the upper end of the flow pipe penetrates the inner wall of the tank cover and extends into the filling cavity, the lower end of the flow pipe extends to the bottom of the tank body, a plurality of air vents are provided on the flow pipe near the opening end of the tank body, the air vents are located above the partition closer to the opening end of the tank body, the blocking mechanism is arranged corresponding to the air vents, and a gap is left between the blocking mechanism and the air vents, and a through hole is provided on the flow pipe corresponding to the position of each region storing scolopendra subspinipes.
[0009] Optionally, the blocking mechanism comprises a plurality of supporting rods, a film and a blocking coating, the supporting rods are fixedly connected to the inner wall of the tank body, the film is fixedly connected to one end of the supporting rods away from the tank body, the blocking coating is coated on the side of the film facing the air vents, and a gap is left between the film and the air vents, the blocking coating expands when encountering air and blocks the air vents.
[0010] Optionally, the partition comprises a supporting plate, a fixing ring and a partition film, the supporting plate is arranged in a ring structure, the partition film is fixedly connected to the surface of the supporting plate, the outer edge of the supporting plate is fixedly connected to the inner ring of the fixing ring, and the outer wall of the fixing ring is fixedly connected to the inner wall of the tank body.
[0011] Optionally, the upper edge of the fixing ring extends in the direction away from the fixing ring and is provided with an elastic plate, the elastic plate is arranged in an arc shape and protrudes in the direction of the inner wall of the tank body, and the protruding surface of the elastic plate is fixedly connected to the inner wall of the tank body.
[0012] Optionally, the upper end of the flow pipe is arranged in a bellows, the inner side of the tank cover is provided with an access hole communicating with the filling cavity, and the bellows is fixedly penetrated in the access hole.
[0013] In summary, the present application has the following beneficial technical effects: the deoxidizing mechanism can inhibit the spoilage of scolopendra subspinipes stored in the tank body, the blocking mechanism can prevent air from entering other region spaces formed by the partitions, thereby inhibiting the oxidation and spoilage of scolopendra subspinipes, and the stability of the quality of scolopendra subspinipes is improved. BRIEF DESCRIPTION OF DRAWINGS
[0014] Figure 1 is a schematic diagram of the overall structure of an embodiment of the present application.
[0015] Figure 2 is a sectional view of the embodiment of the present application.
[0016] Figure 3 is Figure 2 is a partial enlarged schematic view of part A of
[0017] Explanation of reference signs: 1, tank body; 2, tank cover; 3, deoxidizing mechanism; 4, plugging mechanism; 5, partition; 31, flow pipe; 32, filling cavity; 33, access hole; 34, air hole; 35, through hole; 41, support rod; 42, film; 51, support plate; 52, fixing ring; 53, partition film; 54, elastic plate. DETAILED DESCRIPTION
[0018] The following will be described in detail with reference to the accompanying drawings. Figure 1-3 The present application is further described in detail.
[0019] The present application discloses a packaging device for inhibiting the oxidation and rancidity of scorpions.
[0020] Reference Figure 1 With Figure 2 The packaging device for inhibiting the oxidation and rancidity of scorpions comprises a tank body 1, a tank cover 2 cooperating with the tank body 1, a deoxidizing mechanism 3, a plugging mechanism 4, and a plurality of partitions 5. The tank body 1 is hollow and has an open upper end. In this embodiment, the tank cover 2 is sealed to the open upper end of the tank body 1. A dustproof cover can also be additionally buckled above the tank cover 2.
[0021] The plurality of partitions 5 are arranged and distributed along the depth direction of the tank body 1. The partitions 5 divide the inner cavity of the tank body 1 into a plurality of region spaces for storing scorpions. The deoxidizing mechanism 3 is arranged inside the tank body 1 and penetrates through each partition 5, so that each region space for storing scorpions and the deoxidizing mechanism 3 can be in communication, thereby achieving a deoxidizing effect on the whole inner cavity of the tank body 1. The plugging mechanism 4 is arranged on the inner wall of the tank body 1 and is used to prevent oxygen entering the open end of the tank body 1 from entering the region spaces formed by the other partitions 5.
[0022] Through the above arrangement, when the open end of the tank body 1 is damaged and air enters the region space formed by the uppermost partition 5, the plugging mechanism 4 can prevent air from continuing to enter the region spaces formed by the other partitions 5. It should be noted that in this embodiment, during the packaging process, a small part of scorpions is first placed at the bottom of the tank body 1, then the partitions 5 are placed in the tank body 1, and then a small part of scorpions is continuously placed, so that the scorpions contact the upper surface of the lowermost partition 5, and then the next layer of partition 5 is placed, and so on. Finally, the uppermost partition 5 and the region space formed by the open end of the tank body 1 do not store scorpions, and then the opening of the tank body 1 is sealed.
[0023] Reference Figure 2 The deoxidizing mechanism 3 comprises a flow pipe 31 and a deoxidizing filler. The side of the tank cover 2 facing the inner cavity of the tank body 1 is provided with a filling cavity 32 for storing the deoxidizing filler. In this embodiment, the deoxidizing filler is an iron-based deoxidizing agent, which can absorb oxygen and slow down the oxidation of scorpions. The deoxidizing filler is packaged by a cotton air-permeable material, and then the deoxidizing filler is inserted into the filling cavity 32.
[0024] The flow pipe 31 is fixedly connected to the inner wall of the tank body 1, and the fixing manner can be through adhesive bonding. The upper end of the flow pipe 31 is provided in the inner wall of the tank cover 2 and extends into the filling cavity 32, and the lower end of the flow pipe 31 extends to the bottom of the tank body 1. Among them, the upper end of the flow pipe 31 is provided as a bellows, and the inner side of the tank cover 2 is provided with an access hole 33 communicating with the filling cavity 32, the end of the bellows is fixedly provided in the access hole 33, and the fixing manner can be through adhesive bonding. By using the bellows, the upper end of the flow pipe 31 can be easily inserted into the filling cavity 32.
[0025] Referring to Figure 2 With Figure 3 , the flow pipe 31 is provided with a plurality of air holes 34 at a position close to the opening end of the tank body 1, and the air holes 34 are located above the partition 5 (the uppermost partition 5) closer to the opening end of the tank body 1, and the sealing mechanism 4 is provided in position corresponding to the air holes 34, and the flow pipe 31 is provided with a through hole 35 at a position corresponding to each region space for storing scorpions, so that the region spaces formed by other partitions 5 can communicate with the flow pipe 31 through the through hole 35, and the deoxidizing filler can deoxidize other region spaces for storing scorpions.
[0026] Referring to Figure 3 , the sealing mechanism 4 includes a plurality of supporting rods 41, a film 42 and a sealing coating. In this embodiment, the supporting rods 41 are four, and the supporting rods 41 are horizontal and the ends thereof are fixed to the inner wall of the tank body 1 by adhesive, and the four supporting rods 41 are distributed around the region provided with a plurality of air holes 34, and the film 42 is fixed to one end of the supporting rods 41 away from the tank body 1 by adhesive, and the sealing coating is coated on the side of the film 42 facing the air holes 34, and a gap is left between the film 42 and the plane where the air holes 34 are located, so that the gas in the tank body 1 can flow normally.
[0027] Among them, in this embodiment, the sealing coating is a bentonite coating. If the opening end of the tank body 1 is damaged, the air outside enters the tank body 1, and the bentonite coating will swell and become larger when it meets the moisture in the air, so as to block the air holes 34, isolate the air outside from the cavity of the flow pipe 31, and the air outside cannot enter the region spaces for storing scorpions through the flow pipe 31 except for the uppermost partition 5, so as to effectively inhibit the oxidation and rancidity of the scorpions. It should be noted that in this embodiment, the diameter of the air holes 34 should be obviously smaller than the diameter of the through hole 35, and the diameter of the air holes 34, the setting range and the spacing distance between the air holes 34 and the sealing coating all need to be obtained by the staff through experiments, and finally the effect that the bentonite coating swells and becomes larger when it meets the moisture in the air to block the air holes 34 is achieved.
[0028] Referring to Figure 2The partition 5 comprises a supporting plate 51, a fixing ring 52 and a partition film 53. The supporting plate 51 is annularly arranged. The partition film 53 is circular in cross section and is flatly bonded to the upper surface of the supporting plate 51. The outer edge of the supporting plate 51 is integrally formed with the inner edge of the fixing ring 52. The upper edge of the fixing ring 52 extends along the circumference of the fixing ring 52 and is provided with an elastic plate 54 extending away from the fixing ring 52. The elastic plate 54 is arc-shaped and protrudes towards the inner wall of the tank 1. The arc-shaped protruding surface of the elastic plate 54 is bonded to the inner wall of the tank 1. The outer wall of the fixing ring 52 is also bonded to the inner wall of the tank 1. It should be noted that the elastic plate 54 is made of a deformable material. The outer diameter of the fixing ring 52 is slightly smaller than the inner diameter of the tank 1. The inner diameter of the supporting plate 51 is larger than the length of the scolopendra, so that the partition film 53 can be broken to take out the scolopendra from the opening of the tank 1 when the scolopendra needs to be taken out.
[0029] Through the above arrangement, the elastic plate 54 is fixed when the fixing ring 52 is fixed to the inner wall of the tank 1. The size deviation between the fixing ring 52 and the inner diameter of the tank 1 is prevented from causing the partition film 53 to wrinkle, thereby affecting the service life.
[0030] It should be noted that in the present embodiment, the outer edge of each fixing ring 52 needs to be provided with a groove for the through pipe 31 to pass through. The groove and the through pipe 31 need to be sealed, for example, by glue.
[0031] The above are preferred embodiments of the present application, which do not limit the protection scope of the present application. Any equivalent changes made according to the structure, shape and principle of the present application should be covered by the protection scope of the present application.
Claims
1. A packaging device for inhibiting oxidative rancidity of scorpions, characterized by: The invention comprises a tank body (1), a tank cover (2) matched with the tank body (1), a deoxidation mechanism (3), a blocking mechanism (4) and a plurality of partitions (5), wherein the tank body (1) is hollow and has an upper end with an opening, and the plurality of partitions (5) are arranged and distributed along the depth direction of the tank body (1), and the partitions (5) divide the inner cavity of the tank body (1) into a plurality of regional spaces for storing whole scorpions, the deoxidation mechanism (3) is arranged inside the tank body (1) and passes through each of the partitions (5) and is connected with each of the regional spaces for storing whole scorpions, and the blocking mechanism (4) is arranged on the inner wall of the tank body (1) and is used to prevent air entering the open end of the tank body (1) from entering the regional spaces formed by other partitions (5).
2. The packaging device for inhibiting oxidative rancidity of scorpions according to claim 1, characterized in that: The deoxidation mechanism (3) includes a circulation tube (31) and a deoxidation filler. The circulation tube (31) is fixedly connected to the inner wall of the tank body (1). The tank cover (2) is provided with a filling cavity (32) for storing the deoxidation filler on one side facing the inner cavity of the tank body (1). The upper end of the circulation tube (31) penetrates the inner wall of the tank cover (2) and extends into the filling cavity (32). The lower end of the circulation tube (31) extends to the bottom of the tank body (1). The circulation tube (31) is provided with a plurality of air holes (34) at a position close to the open end of the tank body (1), and the air holes (34) are located above the partition (5) closer to the open end of the tank body (1). The blocking mechanism (4) is provided at a position corresponding to the air holes (34), and a gap is left between the blocking mechanism (4) and the air holes (34). The circulation tube (31) is provided with a through hole (35) at a position corresponding to each area space for storing the scorpion.
3. The packaging device for inhibiting oxidative rancidity of scorpions according to claim 2, characterized in that: The blocking mechanism (4) comprises a plurality of support rods (41), a film (42) and a blocking coating, wherein the support rods (41) are fixedly connected to the inner wall of the tank body (1), and the film (42) is fixedly connected to one end of the support rods (41) facing away from the tank body (1). The blocking coating is applied to the side of the film (42) facing the air vent (34), and a gap is left between the film (42) and the air vent (34). The blocking coating expands when encountering air and blocks the air vent (34).
4. The packaging device for inhibiting oxidative rancidity of scorpions according to claim 1, characterized in that: The separator (5) comprises a support plate (51), a fixing ring (52) and a separation membrane (53); the support plate (51) is arranged in an annular structure; the separation membrane (53) is fixedly connected to the surface of the support plate (51); the outer edge of the support plate (51) is fixedly connected to the inner ring of the fixing ring (52); and the outer wall of the fixing ring (52) is fixedly connected to the inner wall of the tank body (1).
5. The packaging device for inhibiting oxidative rancidity of scorpions according to claim 4, characterized in that: An elastic plate (54) extends from the upper edge of the fixing ring (52) in a direction away from the fixing ring (52). The elastic plate (54) is arc-shaped and protrudes toward the inner wall of the tank body (1). The protruding surface of the elastic plate (54) is fixedly connected to the inner wall of the tank body (1).
6. The packaging device for inhibiting oxidative rancidity of scorpions according to claim 2, characterized in that: The upper end of the circulation pipe (31) is configured as a bellows, an access hole (33) communicating with the filling cavity (32) is provided on the inner side of the tank cover (2), and the bellows is fixedly inserted into the access hole (33).