Kit for detecting fat-soluble vitamins
By employing a double-layer vacuum insulation structure and a rotating ring quick-release sealing mechanism, combined with a composite shock-absorbing structure, the shortcomings of traditional fat-soluble vitamin detection kits in temperature control and buffer protection are overcome. This achieves uniform and stable temperature and safe transportation of the kits, making them suitable for efficient storage of biological agents and precision reagents.
Patent Information
- Application Number
- CN202520974262.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-19
- Publication Date
- 2026-04-07
- Estimated Expiration
- 2035-05-19
AI Technical Summary
Traditional reagent kits for detecting fat-soluble vitamins have shortcomings in terms of low efficiency of temperature control systems, insufficient buffer protection, and poor ease of operation, making it difficult to meet the stringent storage requirements of fat-soluble vitamins.
It adopts a double-layer vacuum insulation structure, replaceable ice pack temperature control and rotating ring quick-release sealing mechanism, combined with composite shock absorption structure and real-time temperature monitoring to achieve precise temperature control and stable storage.
It achieves uniform and stable temperature control of the reagent kit, prevents damage from transportation vibrations, simplifies the operation process, and is suitable for efficient storage of biological agents and precision reagents.
Smart Images

Figure CN224090828U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of pharmaceutical storage technology, specifically a reagent kit for detecting fat-soluble vitamins. Background Technology
[0002] In the field of biomedical testing, the accurate detection of fat-soluble vitamins places stringent requirements on sample storage conditions. Traditional reagent kits suffer from three major technical bottlenecks: First, the temperature control system is inefficient. Conventional insulation structures often employ a single-layer insulation design, combined with a fixed ice box for passive cooling. This approach suffers from uneven cold distribution, large temperature fluctuations, and short insulation time, making it difficult to meet the stringent 2-8℃ storage requirements of fat-soluble vitamin testing reagents. Second, the buffering and protection mechanisms are insufficient. Existing technologies often use single-layer foam supports or spring shock-absorbing structures, which are prone to resonance amplification effects during transportation vibrations, leading to reagent bottle collisions and breakage. Third, the ease of operation is poor. Traditional sealing structures often use bolt fastening or snap-fit connections, resulting in cumbersome processes for changing ice boxes and handling reagents. While existing technologies may already offer solutions to these problems, this project aims to provide an alternative or replacement technical solution. Utility Model Content
[0003] To achieve the above objectives, this utility model is implemented through the following technical solution: a kit for detecting fat-soluble vitamins, comprising: an insulated outer box, an insulated inner box, a storage box, an insulated cooling structure, and a buffer storage structure. The insulated outer box, the insulated inner box, and the storage box are interconnected through the insulated cooling structure. The buffer storage structure is installed inside the storage box. The insulated cooling structure includes: a U-shaped sealing plate, a sealed vacuum box, a well-shaped diversion bracket, two pairs of rotating rings, multiple arc-shaped sliders, two pairs of sealed bearings, and multiple replaceable ice packs.
[0004] The heat-insulating inner box is installed inside the heat-insulating outer box. The U-shaped sealing plate is installed on both the heat-insulating inner box and the heat-insulating outer box. The well-shaped diversion bracket is installed inside the heat-insulating inner box. The storage box is installed in the middle of the well-shaped diversion bracket. The U-shaped sealing plate has two pairs of circular rotating grooves. The two pairs of rotating rings are respectively inserted into the inner side of the two pairs of circular rotating grooves through the sealing bearing. The two pairs of rotating rings have rotating limiting grooves. Multiple arc-shaped sliders are evenly installed on the sealed cover vacuum box, and the multiple arc-shaped sliders are respectively movably inserted into the inner side of the multiple rotating limiting grooves. The replaceable ice packs are evenly installed inside the well-shaped diversion bracket.
[0005] It should be noted that, as described above, a vacuum is created between the U-shaped sealing plate, the heat-insulating outer box, and the heat-insulating inner box. The heat-insulating outer box, the heat-insulating inner box, and the storage box are sealed by the vacuum box with a sealing cover. Multiple replaceable ice packs are evenly installed on the inner side of the well-shaped diverter bracket, thereby creating a vacuum separation between the heat from the outside and the inside of the well-shaped diverter bracket. At the same time, the storage box inside the well-shaped diverter bracket is cooled by the low-temperature replaceable ice packs. Multiple arc-shaped sliders on the vacuum box with the sealing cover are evenly inserted into the inner side of the rotating limiting groove on the rotating ring. By rotating the two pairs of rotating rings, the multiple arc-shaped sliders are fixed in place by the rotating limiting groove after rotation. The vacuum of the vacuum box with the sealing cover provides insulation. The well-shaped diverter bracket can be cooled according to different needs, thereby ensuring the temperature around the storage box.
[0006] Preferably, the buffer storage structure includes: a pair of mesh support plates, two pairs of support connecting rods, a U-shaped fitted rubber block, and a honeycomb fitted rubber ring;
[0007] The two pairs of supporting connecting rods are respectively connected to the two pairs of mesh supporting plates on both sides. The herringbone-shaped rubber block is fitted onto the two pairs of mesh supporting plates and the two pairs of supporting connecting rods. The honeycomb rubber ring is fitted onto the herringbone-shaped rubber block.
[0008] It should be noted that, as described above, the mesh support plates are connected by two pairs of supporting connecting rods, and the two pairs of supporting connecting rods are protected by a spiral-shaped set of adhesive blocks and a spider web set of adhesive rings. At the same time, multiple reagent bottles are evenly inserted into a pair of mesh support plates to buffer and cool the pair of mesh support plates.
[0009] Preferably, the U-shaped sealing plate has a temperature detection groove, and an observation glass tube is provided on the inner side of the temperature detection groove.
[0010] Preferably, a temperature detection liquid is provided on the inner side of the observation glass tube.
[0011] Preferably, a vacuum space is provided between the heat-insulating outer box and the heat-insulating inner box.
[0012] Preferably, the sealed cover vacuum box is provided with a spiral sealing ring. Beneficial effects
[0013] This invention provides a reagent kit for detecting fat-soluble vitamins. Compared with existing technologies, this fat-soluble vitamin detection kit features: a double-layered vacuum chamber formed by an insulated outer box and an insulated inner box, combined with a triple-sealing structure of a sealed lid and vacuum box, creating a fully enclosed thermal barrier that effectively blocks external heat conduction; a replaceable ice pack built into a well-shaped distribution bracket achieves precise temperature control through phase change heat absorption, and a quick-release sealing mechanism composed of a rotating ring and an arc slider ensures directional transfer of cold energy to the storage box while allowing for rapid replacement of the ice pack module to meet different temperature zone requirements; a composite shock-absorbing structure using a double-layered mesh support plate and honeycomb rubber rings, combined with the elastic wrapping of a U-shaped rubber block, forms a three-dimensional shock-resistant protective net, ensuring stable storage of the reagent bottle and effectively absorbing transport vibrations; real-time temperature monitoring is achieved through a detection liquid temperature indicator on the sealing plate, and the low thermal conductivity of the vacuum environment ensures a constant and controllable storage environment. This device, through the synergistic innovation of vacuum insulation, phase change refrigeration and mechanical buffering, is particularly suitable for material storage scenarios with stringent temperature sensitivity requirements, such as biological agents and precision reagents. Attached Figure Description
[0014] Figure 1 This is a front cross-sectional view of the kit for detecting fat-soluble vitamins according to the present invention.
[0015] Figure 2 This is a bottom cross-sectional view of the kit for detecting fat-soluble vitamins according to the present invention.
[0016] Figure 3 This is a top cross-sectional view of the kit for detecting fat-soluble vitamins according to the present invention.
[0017] In the diagram: 1. Insulated outer box; 2. Insulated inner box; 3. Storage box; 4. U-shaped sealing plate; 5. Sealed vacuum box with lid; 6. Well-shaped diversion bracket; 7. Rotating ring; 8. Arc slider; 9. Replaceable ice pack; 10. Mesh support plate; 11. Support connecting rod; 12. U-shaped set of rubber blocks; 13. Honeycomb set of rubber rings. Detailed Implementation
[0018] Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0019] Those skilled in the art should connect all electrical components and their compatible power supplies in this case via wires. Appropriate controllers and encoders should be selected according to the actual situation to meet control requirements. The specific connection and control sequence should refer to the working principle described below, where the electrical components are connected in sequence. The detailed connection methods are well-known in the art. The following mainly introduces the working principle and process, and will not describe the electrical control further. Example
[0020] The present invention will now be described in detail with reference to the accompanying drawings, such as... Figure 1-3 As shown, the heat-insulating outer box 1, heat-insulating inner box 2, and storage box 3 are interconnected through the heat-insulating cooling structure. The buffer storage structure is installed inside the storage box 3. The heat-insulating cooling structure includes: a U-shaped sealing plate 4, a sealed vacuum box 5, a well-shaped diversion bracket 6, two pairs of rotating rings 7, multiple arc-shaped sliders 8, two pairs of sealed bearings, and multiple replaceable ice packs 9. The heat-insulating inner box 2 is installed inside the heat-insulating outer box 1. The U-shaped sealing plate 4 is installed on both the heat-insulating inner box 2 and the heat-insulating outer box 1. The well-shaped diversion bracket 6 is installed inside the heat-insulating inner box 2. The storage box 3 is installed in the middle of the well-shaped diversion bracket 6. The U-shaped sealing plate 4 has two pairs of rotating ring grooves. The two pairs of rotating rings 7 are respectively inserted into the inner sides of the two pairs of rotating ring grooves through the sealed bearings. The two pairs of rotating rings 7 have rotation limiting grooves. The multiple arc-shaped sliders 8 are evenly installed on the storage box 3. The vacuum box 5 is sealed with a lid, and multiple arc-shaped sliders 8 are respectively movably inserted into the inner side of multiple rotating limiting grooves. The replaceable ice packs 9 are evenly installed on the inner side of the well-shaped diversion bracket 6. The buffer storage structure includes: a pair of mesh support plates 10, two pairs of support connecting rods 11, a U-shaped set of rubber blocks 12, and a honeycomb set of rubber rings 13. The two pairs of support connecting rods 11 are respectively connected to a pair of mesh support plates 10. The U-shaped set of rubber blocks 12 are fitted onto a pair of mesh support plates 10 and two pairs of support connecting rods 11. The honeycomb set of rubber rings 13 are fitted onto the U-shaped set of rubber blocks 12. A temperature detection groove is opened on the U-shaped sealing plate 4. An observation glass tube is provided on the inner side of the temperature detection groove. A temperature detection liquid is provided on the inner side of the observation glass tube. A vacuum space is set between the heat-insulating outer box 1 and the heat-insulating inner box 2. A U-shaped sealing rubber ring is provided on the vacuum box 5 with a lid.
[0021] According to the appendix Figure 1-3It is concluded that a vacuum state is created between the U-shaped sealing plate 4, the heat-insulating outer box 1, and the heat-insulating inner box 2. The heat-insulating outer box 1, the heat-insulating inner box 2, and the storage box 3 are sealed by the sealing cover vacuum box 5. By evenly installing multiple replaceable ice packs 9 on the inner side of the well-shaped diversion bracket 6, the heat from the outside is separated from the heat inside the well-shaped diversion bracket 6 by a vacuum. At the same time, the storage box 3 inside the well-shaped diversion bracket 6 is cooled by the low-temperature replaceable ice packs 9. Multiple arc-shaped sliders 8 on the sealing cover vacuum box 5 are evenly inserted into the inner side of the rotating limiting groove on the rotating ring 7. By rotating two The rotating ring 7 is used to fix multiple arc-shaped sliders 8 in a fixed manner through the rotating limiting groove after rotation. The vacuum of the vacuum box 5 is sealed to provide heat insulation. The well-shaped diversion bracket 6 can be cooled according to different needs to ensure the temperature around the storage box 3. The mesh support plate 10 is connected by two pairs of support connecting rods 11. At the same time, the two pairs of support connecting rods 11 are protected by the spiral-shaped set of rubber blocks 12 and the spider web set of rubber rings. Multiple reagent bottles are evenly inserted into a pair of mesh support plates 10 to buffer and cool the pair of mesh support plates 10.
[0022] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A kit for detecting fat-soluble vitamins, comprising: The system comprises an insulated outer box, an insulated inner box, a storage box, an insulated cooling structure, and a buffer storage structure. The insulated outer box, the insulated inner box, and the storage box are interconnected through the insulated cooling structure. The buffer storage structure is installed inside the storage box. The insulated cooling structure includes: a U-shaped sealing plate, a sealed vacuum box, a well-shaped diversion bracket, two pairs of rotating rings, multiple arc-shaped sliders, two pairs of sealed bearings, and multiple replaceable ice packs. The heat-insulating inner box is installed inside the heat-insulating outer box. The U-shaped sealing plate is installed on both the heat-insulating inner box and the heat-insulating outer box. The well-shaped diversion bracket is installed inside the heat-insulating inner box. The storage box is installed in the middle of the well-shaped diversion bracket. The U-shaped sealing plate has two pairs of circular rotating grooves. The two pairs of rotating rings are respectively inserted into the inner side of the two pairs of circular rotating grooves through the sealing bearing. The two pairs of rotating rings have rotating limiting grooves. Multiple arc-shaped sliders are evenly installed on the sealed cover vacuum box, and the multiple arc-shaped sliders are respectively movably inserted into the inner side of the multiple rotating limiting grooves. The replaceable ice packs are evenly installed inside the well-shaped diversion bracket.
2. The kit for detecting fat-soluble vitamins according to claim 1, characterized in that, The buffer storage structure includes: a pair of mesh support plates, two pairs of support connecting rods, a U-shaped set of rubber blocks, and a honeycomb set of rubber rings; The two pairs of supporting connecting rods are respectively connected to the two pairs of mesh supporting plates. The herringbone-shaped rubber block is fitted onto the two pairs of mesh supporting plates and the two pairs of supporting connecting rods. The honeycomb rubber ring is fitted onto the herringbone-shaped rubber block.
3. The kit for detecting fat-soluble vitamins according to claim 2, characterized in that, A temperature detection groove is provided on the U-shaped sealing plate, and an observation glass tube is provided on the inner side of the temperature detection groove.
4. The kit for detecting fat-soluble vitamins according to claim 3, characterized in that, The observation glass tube is provided with a temperature detection liquid on its inner side.
5. The kit for detecting fat-soluble vitamins according to claim 4, characterized in that, A vacuum space is set between the heat-insulating outer box and the heat-insulating inner box.
6. The kit for detecting fat-soluble vitamins according to claim 5, characterized in that, The vacuum box with the sealing cover is equipped with a U-shaped sealing ring.