Reinforcing line position rib structure for preventing deformation of barrel body

By adopting a combined structure of ring-shaped and vertical strip reinforcement on the steel drum and combining with hydraulic stretch forming process, the problem of easy deformation of the steel drum during transportation and storage is solved, and the deformation resistance and safety performance of the barrel body are significantly improved.

CN222833231UActive Publication Date: 2025-05-06YINGKOU FUXING BARREL CO LTD
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Patent Information

Application Number
CN202421912914.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-08
Publication Date
2025-05-06
Estimated Expiration
2034-08-08

AI Technical Summary

Technical Problem

During transportation and storage, steel drums are susceptible to external impacts and pressures, causing deformation of the barrel body, affecting service life and safety performance. The existing reinforcement rib design has limited effect when dealing with complex external forces, and it is prone to stress concentration problems in the welded parts.

Method used

A combined structure of multiple annular reinforcement ribs and vertical reinforcement ribs arranged from top to bottom is adopted to form a reinforcement line, and is formed on the side wall of the barrel through a hydraulic stretching one-piece molding process to avoid strength reduction and sealing problems caused by welding or bonding.

Benefits of technology

It effectively improves the annular strength and deformation resistance of the barrel body, reduces stress concentration, extends service life, improves production efficiency and product quality, and avoids the increase in materials and production costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of packaging containers, and discloses a reinforcing line position rib structure for preventing deformation of a barrel body, which comprises a plurality of annular reinforcing ribs arranged from top to bottom, a plurality of vertical reinforcing ribs arranged between two adjacent annular reinforcing ribs, and a crossed reinforcing rib comprising a reinforcing tube; by arranging the annular reinforcing ribs and the vertical reinforcing ribs, the overall strength of the packaging steel drum is enhanced, the packaging steel drum is not prone to deformation, the packaging steel drum is different from reinforcing ribs formed through outward extrusion in the prior art, materials can be poured out conveniently, material residues are reduced, cleaning is convenient, the crossed reinforcing ribs support the packaging steel drum in the space, and the packaging steel drum is not prone to deformation. The packaging steel drum is not prone to deformation after being extruded, and the compressive strength of the packaging steel drum is further improved; and the reinforcing rod is rotated to be separated from the butt joint sleeve, so that most structures can be detached, and cleaning is facilitated.
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Description

Technical Field

[0001] The utility model relates to the technical field of packaging containers, in particular to a reinforcing linear rib structure for preventing a barrel body from being deformed. Background Art

[0002] Storage and transportation steel drums are often subjected to external impact and pressure during transportation and storage, which can easily cause the drum body to deform, thus affecting its service life and safety performance. The traditional steel drum design has certain deficiencies in strength and durability, especially when subjected to large external forces, the drum body is prone to dents and deformation, thus affecting the safe storage and transportation of the contents.

[0003] At present, there are two common methods to prevent barrel deformation in the market: one is to increase the thickness of the barrel material, and the other is to set reinforcing ribs on the barrel. However, increasing the thickness of the barrel material will significantly increase the production cost and increase the weight of the barrel, which is not conducive to handling and transportation; and the existing reinforcing ribs are mostly simple annular or longitudinal ribs. Although they can improve the strength of the barrel to a certain extent, they are limited in effect when dealing with complex external forces, and are prone to stress concentration at the welding site, resulting in local damage. Utility Model Content

[0004] The utility model aims to provide a reinforcing linear rib structure for preventing a barrel from being deformed, so as to solve the problems raised in the above-mentioned background technology.

[0005] In order to achieve the above purpose, the utility model provides the following technical solutions:

[0006] A reinforcing line rib structure for preventing a barrel body from deforming comprises a plurality of annular reinforcing ribs arranged from top to bottom, a plurality of vertical reinforcing ribs being installed between two adjacent annular reinforcing ribs, and cross reinforcing ribs. The cross reinforcing ribs comprise reinforcing tubes, and reinforcing rods are penetrated through and threadedly connected to the left and right side surfaces of the reinforcing tubes, a docking sleeve is movably installed on the outside of one end of the reinforcing rod, and a docking seat is installed on one end of the docking sleeve.

[0007] As a further solution of the utility model: a partition is installed at the middle position inside the reinforcing tube, and a through hole is opened inside the end of the reinforcing rod away from the reinforcing tube.

[0008] As a further solution of the utility model: a gear is installed at one end of the reinforcing rod close to the reinforcing tube, mounting seats are installed at both ends of the upper surface of the reinforcing tube, a positioning plate is installed inside the mounting seat, a positioning rod is installed on the lower surface of the positioning plate, a positioning block is installed at the lower end of the positioning rod, a pull ring is installed on the upper surface of the positioning plate, a pull rope is installed on the outside of the pull ring, a sealing plug is installed on one end of the pull rope, a spring is installed on the upper surface of the positioning plate outside the pull ring, and sliding rods are movably connected through the four corners of the positioning plate.

[0009] As a further solution of the utility model: the distances between two adjacent annular reinforcing ribs are equal, and the plurality of vertical reinforcing ribs are evenly arranged.

[0010] As a further solution of the utility model: the gear is located inside the reinforcement tube, the positioning rod movably penetrates the upper surface of the reinforcement tube, and the positioning block is located between two adjacent teeth on the gear.

[0011] As a further solution of the utility model: the sealing bolt penetrates through and is threadedly connected to the upper surface of the mounting seat, the upper end of the spring is installed on the inner upper surface of the mounting seat, and the sliding rod is installed on the inner upper and lower side surfaces of the mounting seat.

[0012] Compared with the prior art, the beneficial effects of the utility model are:

[0013] 1. The annular reinforcement ribs and vertical reinforcement ribs of the utility model form reinforcement lines. The packaging steel drum hydraulically forms the reinforcement lines on the side walls of the barrel body. This is a hydraulic stretching one-time forming process, which avoids the strength reduction and sealing problems caused by welding or bonding, simplifies the manufacturing process, improves production efficiency and product quality, and evenly distributes the stress of the reinforcement lines, thereby improving the structural performance and safety of use.

[0014] 2. The utility model enhances the anti-deformation ability. The annular reinforcement line can effectively improve the annular strength and rigidity of the barrel body, enhance the barrel body's ability to resist internal pressure and external force, and prevent deformation and rupture. By setting the reinforcement line position ribs, the overall strength and anti-deformation ability of the barrel body are effectively improved, and the service life is extended. Through the hydraulic stretching one-time forming process, the annular reinforcement line is directly formed on the outer wall of the barrel body, avoiding the traditional welding and bonding process, simplifying the manufacturing process, and improving production efficiency and product quality. The one-piece forming process is adopted, and there is no need to increase the thickness of the barrel body material, reducing material and production costs.

[0015] 3. Improve safety performance: The reinforcement line disperses the external force, reduces stress concentration, improves the safety performance of the barrel, and prevents leakage of contents. The presence of the reinforcement line can maintain the cylindrical shape of the barrel, prevent deformation during loading, unloading, transportation and use, and ensure the sealing and safety of the barrel.

[0016] 4. Lightweight and practical: While enhancing the strength, it does not significantly increase the weight of the barrel, making it easy to carry and transport. The annular reinforcement line can disperse the stress on the barrel surface to a larger area, reduce stress concentration, and extend the service life of the barrel.

[0017] 5. Optimize material utilization: The design of the annular reinforcement line has been precisely calculated and optimized in layout, which significantly improves the structural performance and service life of the barrel without significantly increasing the amount of material used, saving material costs. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a structural schematic diagram of a reinforcing linear rib structure for preventing the barrel from deforming;

[0019] Figure 2 It is a schematic diagram of the structure of the cross reinforcement ribs in the reinforcement line rib structure for preventing the barrel from deforming;

[0020] Figure 3 It is a partial cross-sectional view of a reinforcing linear rib structure for preventing the barrel from deforming;

[0021] Figure 4 The figure is a schematic diagram of a reinforcing rib structure of a reinforcing linear rib structure for preventing the barrel from deforming.

[0022] In the figure: 1. annular reinforcement ribs; 2. vertical reinforcement ribs; 3. cross reinforcement ribs; 4. reinforcement tubes; 5. reinforcement rods; 6. docking sleeves; 7. docking seats; 8. partitions; 9. through holes; 10. gears; 11. mounting seats; 12. positioning plates; 13. positioning rods; 14. positioning blocks; 15. pull rings; 16. pull ropes; 17. sealing plugs; 18. springs; 19. slide bars; 20. packaging steel drums. DETAILED DESCRIPTION

[0023] See also Figure 1 and Figure 4In the embodiment of the utility model, a reinforcing line rib structure for preventing the barrel body from deforming comprises a plurality of annular reinforcing ribs 1 arranged from top to bottom, the spacing between two adjacent annular reinforcing ribs 1 is equal, a plurality of vertical reinforcing ribs 2 are installed between two adjacent annular reinforcing ribs 1, and the plurality of vertical reinforcing ribs 2 are evenly arranged; the annular reinforcing ribs 1 and the vertical reinforcing ribs 2 form a reinforcing line, and the packaging steel barrel 20 hydraulically forms the reinforcing line on the side wall of the barrel body, which is a hydraulic stretching one-time forming process, avoids the strength reduction and sealing problems caused by welding or bonding, simplifies the manufacturing process, improves production efficiency and product quality, and has uniform stress distribution on the reinforcing line, improves structural performance and safety of use, and the specific position is planned according to the height of the barrel body and design requirements. Usually, an annular reinforcing line is set at a certain distance, and the density of the annular reinforcing line is increased at the key position where stress is concentrated (such as the transition area between the bottom and the top of the barrel body) to provide additional support and reinforcement, and the width of the annular reinforcing line is determined according to the size of the barrel body and the use requirements. Generally speaking, the width is between 5 and 20 mm to ensure sufficient load-bearing capacity and stability, and the height of the annular reinforcement line should be appropriate, which can provide effective reinforcement without affecting the overall appearance and use of the barrel. The height is generally between 2 and 10 mm.

[0024] The cross-section of the reinforcing wire is trapezoidal or arc-shaped to improve the stress dispersion ability and reduce stress concentration. The connection between the annular reinforcing wire and the outer wall of the barrel body adopts a rounded transition design to avoid stress concentration and improve the fatigue life and fracture resistance of the structure. The cross-sectional shape of the reinforcing wire can be rectangular, trapezoidal or semicircular. The appropriate cross-sectional shape is selected according to the specific application requirements and manufacturing process to optimize stress distribution and manufacturing cost.

[0025] The reinforcing line ribs are arranged at intervals along the height direction of the barrel body, and a certain distance is maintained between each line rib to ensure that the barrel body is evenly stressed in all directions and to improve the overall strength and stability.

[0026] exist Figure 2 and Figure 4 Middle: The reinforcing line rib structure includes a cross reinforcing rib 3, the cross reinforcing rib 3 includes a reinforcing tube 4, both left and right surfaces of the reinforcing tube 4 are penetrated and threadedly connected with a reinforcing rod 5, one end of the reinforcing rod 5 is movably installed with a docking sleeve 6, and one end of the docking sleeve 6 is installed with a docking seat 7;

[0027] The docking seat 7 is installed on the inner side wall of the packaging steel drum 20, and the two docking seats 7 are symmetrically installed. The compressive strength of the packaging steel drum 20 is further improved by the reinforcing tube 4 and the reinforcing rod 5, so that the packaging steel drum 20 is not easily deformed when being squeezed;

[0028] The entire cross reinforcement rib 3 can be arranged left to right or front to back, and the number can be increased or decreased according to demand.

[0029] exist Figure 2 Middle: A partition plate 8 is installed at the middle position inside the reinforcing tube 4, and a through hole 9 is opened inside the end of the reinforcing rod 5 away from the reinforcing tube 4;

[0030] A rod is passed through the through hole 9 to facilitate the rotation of the reinforcing rod 5 , thereby driving the reinforcing rod 5 to move away from the end of the reinforcing tube 4 to the inside of the docking sleeve 6 .

[0031] exist Figure 2 and Figure 3 Middle: A gear 10 is installed at one end of the reinforcing rod 5 close to the reinforcing tube 4, and the gear 10 is located inside the reinforcing tube 4. Mounting seats 11 are installed at both left and right ends of the upper surface of the reinforcing tube 4. A positioning plate 12 is installed inside the mounting seat 11, and a positioning rod 13 is installed on the lower surface of the positioning plate 12. The positioning rod 13 movably penetrates the upper surface of the reinforcing tube 4, and a positioning block 14 is installed at the lower end of the positioning rod 13. The positioning block 14 is located between two adjacent teeth on the gear 10. A pull ring 15 is installed on the upper surface of the positioning plate 12, and a pull rope 16 is installed on the outside of the pull ring 15. A sealing plug 17 is installed at one end of the pull rope 16. The sealing plug 17 penetrates and is threadedly connected to the upper surface of the mounting seat 11. A spring 18 is installed on the upper surface of the positioning plate 12, and the upper end of the spring 18 is installed on the inner upper surface of the mounting seat 11. The four corners of the positioning plate 12 are movably penetrated and connected with sliding rods 19, and the sliding rods 19 are installed on the upper and lower side surfaces of the mounting seat 11.

[0032] When the end of the reinforcing rod 5 moves to the inside of the docking sleeve 6, the positioning block 14 is opposite to the gear 10, and the sealing bolt 17 is loosened, and the positioning block 14 will be stuck between two adjacent teeth on the gear 10, thereby ensuring that the position of the reinforcing rod 5 will not change.

[0033] The annular reinforcement line is directly formed on the outer wall of the barrel body through a hydraulic stretching one-time forming process. This process can ensure the geometric accuracy and consistency of the reinforcement line, while avoiding the strength reduction and sealing problems caused by welding or bonding. The forming mold is designed and manufactured according to the geometric parameters of the annular reinforcement line to ensure accurate forming during the hydraulic stretching process. The mold material must have high strength and wear resistance to ensure stability and accuracy in long-term use. The one-piece molding process is adopted to make the line ribs seamlessly connected to the barrel body to avoid local stress concentration and material performance degradation caused by welding.

[0034] What is described above is only a preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes within the technical scope disclosed by the present invention according to the technical scheme and the utility model concept of the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A reinforcing linear rib structure for preventing a barrel from deforming, comprising a plurality of annular reinforcing ribs (1) arranged from top to bottom, a plurality of vertical reinforcing ribs (2) being installed between two adjacent annular reinforcing ribs (1), characterized in that: It also includes cross reinforcement ribs (3), the cross reinforcement ribs (3) include reinforcement tubes (4), the left and right side surfaces of the reinforcement tubes (4) are penetrated by reinforcement rods (5) and threadedly connected, one end of the reinforcement rod (5) is externally movably mounted with a docking sleeve (6), and one end of the docking sleeve (6) is mounted with a docking seat (7).

2. A reinforcing linear rib structure for preventing barrel deformation according to claim 1, characterized in that: A partition plate (8) is installed at the middle position inside the reinforcing tube (4), and a through hole (9) is opened inside the end of the reinforcing rod (5) away from the reinforcing tube (4).

3. A reinforcing linear rib structure for preventing barrel deformation according to claim 1, characterized in that: A gear (10) is installed at one end of the reinforcing rod (5) close to the reinforcing tube (4), and mounting seats (11) are installed at both left and right ends of the upper surface of the reinforcing tube (4). A positioning plate (12) is installed inside the mounting seat (11), and a positioning rod (13) is installed on the lower surface of the positioning plate (12). A positioning block (14) is installed at the lower end of the positioning rod (13). A pull ring (15) is installed on the upper surface of the positioning plate (12), and a pull rope (16) is installed on the outside of the pull ring (15). A sealing bolt (17) is installed at one end of the pull rope (16). A spring (18) is installed on the upper surface of the positioning plate (12) outside the pull ring (15), and sliding rods (19) are movably connected through the four corners of the positioning plate (12).

4. A reinforcing linear rib structure for preventing barrel deformation according to claim 1, characterized in that: The spacing between two adjacent annular reinforcing ribs (1) is equal, and the plurality of vertical reinforcing ribs (2) are evenly arranged.

5. The reinforcing linear rib structure for preventing barrel deformation according to claim 3, characterized in that: The gear (10) is located inside the reinforcing tube (4), the positioning rod (13) movably penetrates the upper surface of the reinforcing tube (4), and the positioning block (14) is located between two adjacent teeth on the gear (10).

6. A reinforcing linear rib structure for preventing barrel deformation according to claim 3, characterized in that: The sealing bolt (17) penetrates through and is threadedly connected to the upper surface of the mounting seat (11), the upper end of the spring (18) is mounted on the inner upper surface of the mounting seat (11), and the sliding rod (19) is mounted on the inner upper and lower side surfaces of the mounting seat (11).