A sausage casing storage rack for preventing adhesion

By introducing telescopic components and reciprocating drive units into the casing storage rack, the problem of casing sticking during storage is solved, keeping the casings in motion and ensuring normal use.

CN224268079UActive Publication Date: 2026-05-26河南广洋生物科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
河南广洋生物科技有限公司
Filing Date
2025-07-08
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing sausage casing storage racks are prone to causing sausage casings to stick together during storage, affecting subsequent use.

Method used

Design a sausage casing storage rack that includes a telescopic component and a reciprocating drive unit. The reciprocating drive unit controls the telescopic movement of the hooks to keep the sausage casings in a mobile state and prevent them from sticking.

Benefits of technology

It effectively prevents sausage casings from sticking together during storage, ensuring the proper use of the casings.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a sausage casing storage rack for preventing adhesion, including a storage side frame and a storage cross frame. The storage side frame is fixed to both ends of the storage cross frame. A hanging plate is provided at the bottom of the storage cross frame via a sliding component. A telescopic component is provided at the bottom of the hanging plate, and a hook is provided at the bottom of the telescopic component. This utility model utilizes the telescopic component and a reciprocating drive unit. Driven by the reciprocating drive unit, the telescopic component extends and retracts, causing the hooks and the sausage casings on them to move. The reciprocating movement of the telescopic component, moving the hooks closer and further away, keeps the sausage casings on the hooks in motion, preventing them from sticking together during storage. This solves the problem of existing sausage casing storage racks where sausage casings are stationary or stuck together, affecting their subsequent use.
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Description

Technical Field

[0001] This utility model relates to the field of sausage casing storage technology, and in particular to a sausage casing storage rack for preventing adhesion. Background Technology

[0002] Sausage casings are thin films extracted from the small intestines of animals such as pigs or cows. They are all-natural films and are mainly used to manufacture meat products such as sausages. After extraction, sausage casings need to be stored using storage racks. The casings are hung on the storage racks, which are then placed in a storage room for storage. The storage racks are generally made of metal and are designed with multiple layers to store a large number of casings.

[0003] Since the casing storage rack simply hangs the casings for storage, the casings remain stationary. Due to the material properties of the casings, if they are close together, they may stick together. Subsequent use will require manual tearing apart of the stuck parts, which may even cause the casings to break and affect subsequent meat processing.

[0004] Therefore, how to provide a sausage casing storage rack to prevent adhesion is a problem that urgently needs to be solved by those skilled in the art. Utility Model Content

[0005] One objective of this invention is to provide a casing storage rack for preventing adhesion. This invention solves the problem that existing casing storage racks cause casings to stick together when they are stored in a static state and when they are close together, affecting their normal use.

[0006] A sausage casing storage rack for preventing adhesion according to an embodiment of the present invention includes a storage side frame and a storage cross frame. The storage side frame is fixed to both ends of the storage cross frame. A hanging plate is provided at the bottom of the storage cross frame via a sliding component. A telescopic component is provided at the bottom of the hanging plate. A hook is provided at the bottom of the telescopic component. A reciprocating drive unit is provided on one side of the hanging plate near the telescopic component. The reciprocating drive unit is provided on the telescopic component to control the reciprocating extension and retraction of the telescopic component.

[0007] The sliding assembly includes a track groove, a track slider, a sliding groove, and a hanging block. The track groove is embedded in the bottom of the storage crossbar. The track slider is slidably connected to the inside of the track groove. One end of the track slider extends out of the track groove and is fixed to the top of the hanging plate. The hanging block is set on the side of the track groove near the hanging plate. The sliding groove is opened at the top of the hanging plate corresponding to the position of the hanging block. The hanging block is slidably connected to the inside of the sliding groove.

[0008] Each of the storage crossbeams and hanging plates has two sets of corresponding sliding components. The two sets of sliding components are arranged close to the storage side frame, and the two sets of sliding components are arranged axially symmetrically with the vertical axis of symmetry of the hanging plate and the storage crossbeam as the axis of symmetry.

[0009] The telescopic assembly includes more than one number of diamond-shaped telescopic adjustment components, which are arranged linearly on the hanging plate.

[0010] The rhomboid telescopic adjustment assembly includes a rhomboid telescopic frame, a first connecting shaft, and a second connecting shaft. The rhomboid telescopic frame is movably connected by the first connecting shaft and the second rotating shaft. The second connecting shaft is located on the axis of symmetry of the rhomboid telescopic frame. The first connecting shaft is located at the end face of the rhomboid telescopic frame, and the hook is fixed on the second connecting shaft. There is more than one second connecting shaft. Among the more than one second connecting shaft, the middle one is fixed to the bottom of the hanging plate.

[0011] A guide groove is provided at the connection position between the side and the bottom of the hanging plate, and one of the more than one number of second connecting shafts, the one closest to the outside and corresponding to the position of the guide groove, is movably connected inside the guide groove.

[0012] The reciprocating drive unit includes a connecting rod, a drive groove, a drive block, a turntable, and a drive motor. The connecting rod is fixed on one of the more than one number of second connecting shafts, the outermost one corresponding to the guide groove position. The drive groove is opened on the side of the connecting rod away from the hanging plate, and the drive groove is located on the axis of symmetry of the connecting rod. The drive block moves inside the drive groove and is fixed on the turntable. The turntable is fixed on the output shaft of the drive motor. The drive motor is mounted on the side of the hanging plate through a mounting bracket.

[0013] The top of the storage frame is provided with a corrugated plate for guiding the flow.

[0014] The beneficial effects of this utility model are:

[0015] By setting up a telescopic component and a reciprocating drive unit, the telescopic component extends and retracts under the drive of the reciprocating drive unit. The extension and retraction of the telescopic component causes the hook and the casing on the hook to move. The telescopic component drives the hook to move closer and further away, which in turn moves the casing on the hook closer or further away, keeping the casing on the hook in motion. This prevents the casing from sticking together during storage, solving the problem that existing casing storage racks are stationary when storing casings and that the casings are too close together, causing them to stick together and affecting the normal use of the casings.

[0016] By setting up a sliding component, the sliding component drives the hanging plate and the telescopic component, hook and reciprocating drive unit on the hanging plate to move synchronously. In this way, the hook can be moved out of the storage cross frame and storage side frame, making it convenient to hang the sausage casing on the hook. This achieves the effect of moving the hook out of the storage cross frame and storage side frame to make it convenient to hang the sausage casing on the hook. Attached Figure Description

[0017] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:

[0018] Figure 1 This is a schematic diagram of the overall three-dimensional structure of a sausage casing storage rack for preventing adhesion proposed in this utility model.

[0019] Figure 2 This is a cross-sectional three-dimensional structural diagram of the reciprocating drive unit position in a sausage casing storage rack for preventing adhesion, as proposed in this utility model.

[0020] Figure 3 This is a three-dimensional cross-sectional view of the telescopic component in a sausage casing storage rack for preventing adhesion, as proposed in this utility model.

[0021] Figure 4 This is a three-dimensional cross-sectional view of the second connecting shaft position in a sausage casing storage rack for preventing adhesion, as proposed in this utility model.

[0022] Figure 5 This is a three-dimensional cross-sectional view of another location of the reciprocating drive unit in a casing storage rack for preventing adhesion, as proposed in this utility model.

[0023] Figure 6 This is a cross-sectional three-dimensional structural diagram of the sliding component position in a sausage casing storage rack for preventing adhesion, as proposed in this utility model.

[0024] The attached diagram shows: 1. Storage side frame; 2. Storage cross frame; 3. Hanging plate; 4. Telescopic assembly; 5. Hook; 6. Reciprocating drive unit; 7. Track groove; 8. Track slider; 9. Sliding groove; 10. Hanging block; 11. Diamond telescopic adjustment assembly; 12. Diamond telescopic frame; 13. First connecting shaft; 14. Second connecting shaft; 15. Guide groove; 16. Connecting rod; 17. Drive groove; 18. Drive block; 19. Turntable; 20. Drive motor; 21. Corrugated plate. Detailed Implementation

[0025] The present invention will now be described in further detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the present invention, and therefore only show the components relevant to the present invention.

[0026] refer to Figure 1-6 It includes a storage side frame 1 and a storage cross frame 2. The storage side frame 1 is fixed to both ends of the storage cross frame 2. A corrugated plate 21 for guiding the flow is provided on the side of the storage cross frame 2 away from the hanging plate. It is used to guide the liquid dripping from the casing. It should be noted that the top of the storage cross frame 2 near the top is not provided with a corrugated plate 21.

[0027] Example 1

[0028] refer to Figure 1-6 The storage crossbeam 2 has a hanging plate 3 at its bottom via a sliding assembly. A telescopic assembly 4 is located at the bottom of the hanging plate 3, and hooks 5 are located at the bottom of the telescopic assembly 4. The telescopic assembly 4's extension and retraction cause the hooks 5 to move closer or further apart, maintaining a balanced distance between them during movement. The telescopic assembly 4 includes more than one number of rhomboid telescopic adjustment components 11. Here, three sets of rhomboid telescopic adjustment components 11 are provided, forming a single telescopic assembly 4. These more than one number of rhomboid telescopic adjustment components 11 are linearly arranged on the hanging plate 3. The axis of symmetry of the middle set of rhomboid telescopic adjustment components 11 coincides with the axis of symmetry of the hanging plate 3. It should be noted that the number of rhomboid telescopic adjustment components 11 is not limited to three sets. Each rhomboid telescopic adjustment component 11 includes a rhomboid telescopic frame 12, a first connecting shaft 13, and a second connecting shaft 14. Figure 3 As shown, the rhomboid telescopic frame 12 is movably connected by the first connecting shaft 13 and the second rotating shaft to form a rhomboid structure. The second connecting shaft 14 is set on the axis of symmetry of the rhomboid telescopic frame 12. The first connecting shaft 13 is located at the end face of the rhomboid telescopic frame 12. The hook 5 is fixed on the second connecting shaft 14. There is more than one second connecting shaft 14. The middle second connecting shaft 14 among the more than one number of second connecting shafts 14 is fixed to the bottom of the hanging plate 3. A guide groove 15 is provided at the connection between the side and the bottom of the hanging plate 3. The second connecting shaft 14 closest to the outside and corresponding to the position of the guide groove 15 among the more than one number of second connecting shafts 14 is movably connected to the inside of the guide groove 15.

[0029] refer to Figure 1-6A reciprocating drive unit 6 is provided on one side of the hanging plate 3 near the telescopic assembly 4. The reciprocating drive unit 6 is mounted on the telescopic assembly 4 to control the reciprocating extension and retraction of the telescopic assembly 4. The reciprocating drive unit 6 includes a connecting rod 16, a driving groove 17, a driving block 18, a turntable 19, and a drive motor 20. The connecting rod 16 is fixed on one of the more than one number of second connecting shafts 14, the outermost one corresponding to the guide groove 15. The connecting rod 16 is fixed on the second connecting shaft 14 located inside the guide groove 15 to connect the three sets of diamond-shaped telescopic frames 12 together. The reciprocating drive unit 6 is located on... At the middle position of the three sets of diamond telescopic frames 12, the reciprocating drive unit 6 drives the three sets of diamond telescopic frames 12 to move synchronously via the connecting rod 16. The drive groove 17 is opened on the side of the connecting rod 16 away from the hanging plate 3, and the drive groove 17 is located on the axis of symmetry of the connecting rod 16. The drive block 18 moves inside the drive groove 17 and is fixed on the turntable 19. The drive block 18 is set on the turntable 19 away from the axis of the turntable 19. The turntable 19 is fixed on the output shaft of the drive motor 20. The drive motor 20 is mounted on the side of the hanging plate 3 via the mounting bracket.

[0030] During operation, the reciprocating drive unit 6 requires the drive motor 20 to be started. The start of the drive motor 20 drives the turntable 19 to rotate, which in turn drives the drive block 18 to rotate. The drive block 18 rotates around the axis of the turntable 19 as the turntable 19 rotates. The rotation of the drive block 18 then drives the drive groove 17 to rotate, which in turn moves the connecting rod 16. The movement of the connecting rod 16 causes the second connecting shaft 14, located inside the guide groove 15, to move along the guide groove 15. The guide groove 15 limits and guides the second connecting shaft 14 at this position. The second connecting shaft 14 at the center of the diamond-shaped telescopic frame 12 remains stationary because it is fixed to the hanging plate 3. The movement of the second connecting shaft 14 inside the guide groove 15 pushes... When the rhomboid telescopic frame 12 is pushed by a force on its end face, the rhomboid telescopic frame 12 moves on the first connecting shaft 13 and the second connecting shaft 14, causing the rhomboid shape to change when the rhomboid telescopic frame 12 contracts. Then, more than one number of the second connecting shafts 14 move closer to each other and more than one number of the second connecting shafts 14 move further away from each other. When more than one number of the second connecting shafts 14 move closer to each other, the hooks 5 will move closer to each other, so that the casings on the hooks 5 will move closer to each other. The reverse operation will cause the hooks 5 to move further away from each other, and the hooks 5 moving further away from each other will cause the casings to move further away from each other. This makes the casings move closer or further away from each other, so that the casings are in a mobile state, thereby avoiding the casings from sticking together and affecting the subsequent use of the casings.

[0031] Example 2

[0032] refer to Figure 1-6Each of the storage crossbeams 2 and hanging plates 3 has two sets of corresponding sliding components. The two sets of sliding components are set close to the storage side frame 1 and are symmetrical about the vertical axis of symmetry of the hanging plates 3 and the storage crossbeams 2. The sliding components include a track groove 7, a track slider 8, a sliding groove 9, and a hanging block 10. The track groove 7 is embedded in the bottom of the storage crossbeam 2. The track slider 8 is slidably connected inside the track groove 7 and stabilizes one side of the hanging plate 3. One end of the track slider 8 extends out of the track groove 7 and is fixed to the top of the hanging plate 3. The hanging block 10 is set on the track groove 7 near the side of the hanging plate 3. The sliding groove 9 is opened at the top of the hanging plate 3 at the position corresponding to the hanging block 10. The hanging block 10 is slidably connected inside the sliding groove 9. The cooperation of the hanging block 10 and the sliding groove 9 stabilizes the other side of the hanging plate 3.

[0033] During operation, first pull the hanging plate 3. The movement of the hanging plate 3 will drive the track slider 8 and the sliding groove 9 to move synchronously. While the track slider 8 slides inside the track groove 7, the hanging plate slides inside the sliding groove 9. In this way, the hanging plate 3 will move outward from the storage side frame 1 and the storage cross frame 2 under the pull until most of the hanging plate 3 has moved outward from the storage cross frame 2 and the storage side frame 1. The extent of this movement can be adjusted according to actual use, which will not be elaborated here. The movement of the hanging plate 3 is also synchronized with the movement of the telescopic component 4 and the drive hook 5 to move outward from the storage side frame 1 and the storage cross frame 2. This makes it easy to hang the casings on the hook 5 without having to reach into the storage side frame 1 and the storage cross frame 2 by hand. This allows for quick and convenient hanging of the casings.

[0034] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A casing storage rack for preventing blocking, characterized by, It includes a storage side frame (1) and a storage cross frame (2), wherein the storage side frame (1) is fixed to both ends of the storage cross frame (2); The bottom of the storage crossbeam (2) is provided with a hanging plate (3) via a sliding component. The bottom of the hanging plate (3) is provided with a telescopic component (4). The bottom of the telescopic component (4) is provided with a hook (5). A reciprocating drive unit (6) is provided on one side of the hanging plate (3) near the telescopic component (4). The reciprocating drive unit (6) is located on the telescopic component (4) to control the reciprocating extension and retraction of the telescopic component (4).

2. A casing storage rack for preventing blocking according to claim 1, characterized in that, The sliding assembly includes a track groove (7), a track slider (8), a sliding groove (9), and a hanging block (10). The track groove (7) is embedded in the bottom of the storage crossbar (2). The track slider (8) is slidably connected to the inside of the track groove (7). One end of the track slider (8) extends out of the track groove (7) and is fixed to the top of the hanging plate (3). The hanging block (10) is set on the side of the track groove (7) near the hanging plate (3). The sliding groove (9) is opened at the top of the hanging plate (3) corresponding to the position of the hanging block (10). The hanging block (10) is slidably connected to the inside of the sliding groove (9).

3. A sausage casing storage rack for preventing adhesion according to claim 2, characterized in that, Each of the storage crossbeams (2) and hanging plates (3) has two sets of sliding components. The two sets of sliding components are set close to the storage side frame (1) and are symmetrical about the vertical axis of symmetry of the hanging plates (3) and the storage crossbeams (2).

4. A sausage casing storage rack for preventing adhesion according to claim 3, characterized in that, The telescopic assembly (4) includes more than one number of diamond-shaped telescopic adjustment assemblies (11), which are arranged linearly on the hanging plate (3).

5. A sausage casing storage rack for preventing adhesion according to claim 4, characterized in that, The rhomboid telescopic adjustment assembly (11) includes a rhomboid telescopic frame (12), a first connecting shaft (13), and a second connecting shaft (14). The rhomboid telescopic frame (12) is movably connected through the first connecting shaft (13) and the second rotating shaft. The second connecting shaft (14) is set on the axis of symmetry of the rhomboid telescopic frame (12). The first connecting shaft (13) is located at the end face of the rhomboid telescopic frame (12). The hook (5) is fixed on the second connecting shaft (14). There is more than one second connecting shaft (14). The middle second connecting shaft (14) among the more than one second connecting shaft (14) is fixed to the bottom of the hanging plate (3).

6. A sausage casing storage rack for preventing adhesion according to claim 5, characterized in that, The side and bottom of the hanging plate (3) are provided with a guide groove (15), and the second connecting shaft (14) that is closest to the outside and corresponds to the position of the guide groove (15) among more than one number of second connecting shafts (14) is movably connected inside the guide groove (15).

7. A sausage casing storage rack for preventing adhesion according to claim 6, characterized in that, The reciprocating drive unit (6) includes a connecting rod (16), a drive groove (17), a drive block (18), a turntable (19), and a drive motor (20). The connecting rod (16) is fixed on one of the second connecting shafts (14) that is closest to the outermost part and corresponds to the position of the guide groove (15) among more than one number of second connecting shafts (14). The drive groove (17) is opened on the side of the connecting rod (16) away from the hanging plate (3), and the drive groove (17) is located on the axis of symmetry of the connecting rod (16). The drive block (18) moves inside the drive groove (17) and is fixed on the turntable (19). The turntable (19) is fixed on the output shaft of the drive motor (20). The drive motor (20) is mounted on the side of the hanging plate (3) by a mounting bracket.

8. A sausage casing storage rack for preventing adhesion according to claim 7, characterized in that, The top of the storage crossbeam (2) is provided with a corrugated plate (21) for guiding the flow.