High-strength food storage bin
By setting reinforcement ribs and internal screening devices on the inner and outer sides of the food storage bin, the stability and load-bearing capacity of the storage bin are solved, and the structural strength is improved and efficient screening of material classification and storage is achieved.
Patent Information
- Application Number
- CN202422625147.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2034-10-29
AI Technical Summary
The existing food storage bins have poor stability and load-bearing capacity, which easily deform when storing foods with larger weights, reducing service life.
A number of first reinforcement ribs are arranged on the inner side of the silo to form a triangular structure, and a number of second reinforcement ribs are arranged on the outer side to enhance the structural strength of the silo; at the same time, a screening and storage device is arranged inside, including a material silo, storage silo and screening components, and solid-liquid separation and particle screening are realized through the first and second sliding pipes.
The structural strength of the silo body is improved, the possibility of deformation is reduced, the service life is improved, and efficient material classification and storage is achieved through the screening device, which improves the screening efficiency and adaptability.
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Figure CN223224992U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of storage equipment, and in particular to a high-strength food storage warehouse. Background Art
[0002] As the awareness of food storage safety continues to increase at home and abroad, the requirements for food storage facilities are also getting higher and higher. A food storage silo is a device used to store food, designed to maintain the freshness, quality and safety of food.
[0003] In existing technology, storage bins are typically constructed from sheet materials, such as steel or aluminum alloys, spliced or welded together to enclose them. Multiple partitions are installed within the bins to separate the interior into multiple storage areas for food and other materials. However, these bins suffer from poor stability and load-bearing capacity. When storing heavy food, they are prone to deformation, reducing their overall service life. Therefore, further improvements are needed. Utility Model Content
[0004] In order to improve the structural strength of the storage bin, the present application provides a high-strength food storage bin.
[0005] The high-strength food storage warehouse provided in this application adopts the following technical solutions:
[0006] A high-strength food storage bin comprises a bin body and a screening and storage device arranged inside the bin body. A plurality of groups of first reinforcing ribs are provided on the inner side of the bin body. The first reinforcing ribs comprise first ribs and second ribs. One end of the first rib is connected to one end of the second rib, and the ends of the first rib and the second rib that are away from each other are both connected to the inner wall of the bin body.
[0007] By adopting the above-mentioned technical solution and setting up multiple groups of first reinforcing ribs, the ends of the first rib and the second rib that are away from each other are connected to the inner wall of the warehouse body, so that the combination of the first rib, the second rib and the inner wall of the warehouse body forms a triangle shape, which is used to improve the structural strength of the warehouse body, reduce the possibility of the warehouse body being deformed under pressure, and thereby improve the service life of the overall structure.
[0008] Optionally, multiple groups of second reinforcing ribs are provided on the outside of the silo body, and the second reinforcing ribs include third ribs, fourth ribs and fifth ribs, one end of the third rib and one end of the fourth rib are connected to the outer wall of the silo body, one end of the fifth rib is connected to the third rib, and the other end is connected to the fourth rib.
[0009] By adopting the above technical solution and setting a plurality of second reinforcing ribs, the second reinforcing ribs formed by the combination of the third rib, the fourth rib and the fifth rib can further improve the structural strength of the warehouse body and reduce the possibility of deformation of the warehouse body.
[0010] Optionally, the screening and storage device includes a silo, a storage bin and a screening assembly, the silo and the storage bin are both arranged in the bin body, the silo is located on the top of the storage bin, and the screening assembly is arranged between the silo and the storage bin for screening materials.
[0011] By adopting the above technical solution, through the setting of the silo, storage bin and screening component, the material to be stored is put into the silo, screened by the screening component and then falls into the storage bin for storage. The screening component can screen the material.
[0012] Optionally, the screening assembly includes a first chute and a second chute, both of which are arranged in the silo body, a sieve plate is provided between the first chute and the second chute, a plurality of screening holes are provided on the plate surface of the sieve plate, and the first chute and the second chute are connected to each other through the screening holes of the sieve plate; the inlet end of the first chute is connected to the outlet end of the silo, and the outlet end of the first chute is connected to the storage bin.
[0013] By adopting the above technical solution and setting up the first chute and the second chute, in the first screening situation, when there is liquid in the material in the silo, the material mixed with the liquid falls from the silo into the first chute, and the liquid can enter the second chute through the screening holes of the sieve plate and be discharged outward from the outlet end of the second chute, thereby achieving the effect of solid-liquid separation; in the other screening situation, when the material has large particles and small particles, after the material enters the first chute from the silo, the particles smaller than the screening holes (large particle materials) fall into the second chute, and the particles larger than the screening holes (small particle materials) cannot pass through the screening holes and are transported toward the outlet end of the first chute, thereby separating the large particle materials and the small particle materials, thereby achieving the screening effect.
[0014] Optionally, the sieve plate is arranged at an angle, and the height of the sieve plate gradually decreases from the side close to the inlet end of the first slide pipe to the side close to the outlet end of the first slide pipe; the sieve plate is connected to a vibration motor for driving the sieve plate to vibrate.
[0015] By adopting the above technical solution, the screen plate is set to be inclined, and the material's own weight is used to enable the material to flow from the inlet end of the first chute to the outlet end of the first chute; by setting a vibration motor, the transported material can be vibrated to improve the screening effect.
[0016] Optionally, the number of the first chute, the second chute and the silo is set to be corresponding, the inlet end of each first chute is connected to the outlet end of the corresponding silo, and each second chute is connected to the corresponding first chute; the outlet ends of the multiple first chutes are commonly connected to a discharge pipe, the number of the storage silos is set to be multiple, and the outlet end of the discharge pipe and the outlet ends of the multiple second chutes are connected to different storage silos.
[0017] By adopting the above-mentioned technical solution, by correspondingly setting the number of first chutes, second chutes and silos, the materials in multiple silos can be screened at the same time, and the screened materials are uniformly discharged from the discharge pipe to the storage silo for storage, thereby improving the screening efficiency; the number of storage silos is set to multiple, when the material has large particles and small particles, the large particle material is discharged outward from the outlet end of the first chute, and the small particle material is discharged outward from the outlet end of the second chute, and the outlet end of the discharge pipe and the outlet ends of multiple second chutes are connected to different storage silos, so that the large particle material and the small particle material are stored separately, thereby achieving the screening effect.
[0018] Optionally, an adjustment plate is slidably installed on the surface of the sieve plate, and a plurality of adjustment holes are opened on the plate surface of the adjustment plate, and the plurality of adjustment holes are arranged corresponding to the plurality of screening holes; the adjustment plate is provided with a driving component for driving the adjustment plate to slide along the surface of the sieve plate.
[0019] By adopting the above-mentioned technical solution, through the setting of the adjustment plate and the driving assembly, the adjustment plate is driven to slide a certain distance, which can change the connection area between the screening hole and the adjustment hole, and then change the size of the screening hole to allow particles of different sizes to fall. The operator can adjust the size of the screening hole according to actual needs to screen particles of different sizes, thereby improving the adaptability of the overall structure.
[0020] Optionally, the driving member includes a driving block, a connecting rod and an adjusting member. The driving block is slidably installed on the warehouse body and can be raised and lowered. One end of the connecting rod is hinged to the adjusting plate and the other end is hinged to the driving block. The adjusting member is arranged on the driving block for adjusting the height of the driving block.
[0021] By adopting the above-mentioned technical solution, through the setting of the driving block, the connecting rod and the adjusting member, when the size of the screening hole is adjusted, the height of the driving block is adjusted by the adjusting member. Under the action of the connecting rod, the driving block can drive the adjusting plate to move, so as to change the connecting area between the screening hole and the adjusting hole, and then change the size of the screening hole to screen particles of different sizes.
[0022] In summary, this application includes at least one of the following beneficial technical effects:
[0023] 1. By providing multiple groups of first reinforcing ribs, the ends of the first and second ribs, which are away from each other, are connected to the inner wall of the silo. The first ribs, the second ribs, and the inner wall of the silo form a triangular shape, thereby improving the structural strength of the silo, reducing the possibility of deformation of the silo under pressure, and thus extending the service life of the entire structure.
[0024] 2. By providing a plurality of first chutes, second chutes, and silos, the materials in the plurality of silos can be screened simultaneously, and the screened materials are uniformly discharged from the discharge pipe to the storage silo for storage, thereby improving the screening efficiency. The number of storage silos is set to be multiple. When the materials are divided into large particles and small particles, the large particles are discharged outwardly from the outlet end of the first chutes, and the small particles are discharged outwardly from the outlet end of the second chutes. The outlet end of the discharge pipe and the outlet ends of the plurality of second chutes are connected to different storage silos, so that the large particles and the small particles are stored separately, thereby achieving the screening effect.
[0025] 3. By setting the adjustment plate and the driving assembly, the adjustment plate is driven to slide a certain distance, which can change the connection area between the screening hole and the adjustment hole, and then change the size of the screening hole to allow particles of different sizes to fall. The operator can adjust the size of the screening hole according to actual needs to screen particles of different sizes, thereby improving the adaptability of the overall structure. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 It is a schematic diagram of the overall structure of Example 1;
[0027] Figure 2 is a partial cross-sectional view of the first reinforcing rib in Example 1;
[0028] Figure 3 is a partial cross-sectional view of the second reinforcing rib in Example 1;
[0029] Figure 4 is a partial cross-sectional view of the first and second slide pipes according to embodiment 1;
[0030] Figure 5 is a partial cross-sectional view of the adjustment plate according to embodiment 2;
[0031] Figure 6 It is a structural diagram of the driving component of Example 2.
[0032] Explanation of the accompanying drawings: 1. Bin body; 11. Screening storage area; 12. Sliding groove; 13. Slide rail; 131. Second connecting hole; 2. Screening storage device; 21. Bin; 22. First chute; 23. Second chute; 24. Screen plate; 241. Screening hole; 25. Discharge pipe; 26. Adjustment plate; 261. Adjustment hole; 262. Mounting block; 263. Mounting rod; 3. First reinforcing rib; 31. First rib; 32. Second rib; 4. Second reinforcing rib; 41. Third rib; 42. Fourth rib; 43. Fifth rib; 5. Drive assembly; 51. Drive block; 52. Connecting rod; 53. Adjustment bolt. DETAILED DESCRIPTION
[0033] The following is combined with Figure 1 -Attached Figure 6 This application is described in further detail.
[0034] Example 1:
[0035] The embodiment of the present application discloses a high-strength food storage bin.
[0036] Reference Figure 1 A high-strength food storage warehouse includes a warehouse body 1 and a screening storage device 2. The warehouse body 1 is formed by welding multiple profiles. The profiles can be steel or aluminum alloy. In this embodiment, the warehouse body 1 is formed by welding multiple steels.
[0037] Reference Figure 2 , multiple groups of first reinforcing ribs 3 are fixedly installed on the inner wall of the warehouse body 1, and the multiple groups of first reinforcing ribs 3 are arranged at intervals in the horizontal direction. The number of first reinforcing ribs 3 in each group is multiple and arranged at intervals in the height direction; the first reinforcing ribs 3 include first ribs 31 and second ribs 32, one end of the first rib 31 is connected to one end of the second rib 32, and the ends of the first rib 31 and the second rib 32 away from each other are both connected to the inner wall of the warehouse body 1, and the end of the first rib 31 close to the inner wall of the warehouse body 1 is located above the end of the second rib 32 close to the inner wall of the warehouse body 1; the first rib 31 and the second rib 32 are integrally formed, and the first rib 31 and the warehouse body 1, as well as the second rib 32 and the warehouse body 1 are fixedly connected by welding.
[0038] Reference Figure 3, multiple groups of second reinforcing ribs 4 are fixedly installed on the outer wall of the warehouse body 1, and the multiple groups of second reinforcing ribs 4 are arranged at intervals along the height direction. The number of second reinforcing ribs 4 in each group is multiple and arranged at intervals along the horizontal direction; the second reinforcing ribs 4 include third ribs 41, fourth ribs 42 and fifth ribs 43, one end of the third rib 41 and one end of the fourth rib 42 are connected to the outer wall of the warehouse body 1, one end of the fifth rib 43 is connected to the third rib 41, and the other end is connected to the fourth rib 42, both ends of the third rib 41, both ends of the fourth rib 42 and both ends of the fifth rib 43 are located in the same horizontal plane, the third rib 41, the fourth rib 42 and the fifth rib 43 are integrally formed, and the third rib 41 and the warehouse body 1, and the fourth rib 42 and the warehouse body 1 are fixedly connected by welding.
[0039] Reference Figure 1 A screening storage area 11 is formed between two adjacent groups of first reinforcing ribs 3. Multiple groups of first reinforcing ribs 3 divide the interior of the warehouse body 1 into multiple screening storage areas 11. The number of screening storage devices 2 is set corresponding to the number of screening storage areas 11, and each screening device is set in the corresponding screening storage area 11.
[0040] Reference Figure 1 、 Figure 4 The screening and storage device 2 includes a silo 21, a storage bin and a screening assembly. The silo 21 and the storage bin are both arranged in the silo body 1. The silo 21 is located at the top of the storage bin. The screening assembly is arranged between the silo 21 and the storage bin for screening materials. The screening assembly includes a first chute 22 and a second chute 23. The first chute 22 and the second chute 23 are both fixedly installed on the inner wall of the silo body 1 located in the screening and storage area 11. A sieve plate 24 is fixedly installed between the first chute 22 and the second chute 23. A plurality of screening holes 241 are opened on the plate surface of the sieve plate 24. The plurality of screening holes 241 are evenly distributed along the plate surface of the sieve plate 24. The first chute 22 and the second chute 23 are connected to each other through the screening holes 241 of the sieve plate 24.
[0041] Reference Figure 1 、 Figure 4 The sieve plate 24 is arranged at an angle, and the height of the sieve plate 24 gradually decreases from the side close to the inlet end of the first slide pipe 22 to the side close to the outlet end of the first slide pipe 22; the sieve plate 24 is connected to a vibration motor (not shown in the figure) for driving the sieve plate 24 to vibrate.
[0042] Reference Figure 1 、 Figure 4In this embodiment, the number of first chutes 22, second chutes 23 and silos 21 is correspondingly provided, the inlet end of each first chute 22 is connected to the outlet end of the corresponding silo 21, and each second chute 23 is connected to the corresponding first chute 22 through the sieve plate 24; the outlet ends of the multiple first chutes 22 are commonly connected to a discharge pipe 25, and the number of storage silos (not shown in the figure) is provided in plurality, and the outlet end of the discharge pipe 25 and the outlet ends of the multiple second chutes 23 are connected to different storage silos.
[0043] The implementation principle of Example 1 of the present application is: by setting multiple groups of first reinforcing ribs 3 on the inner wall of the warehouse body 1 and multiple groups of second reinforcing ribs 4 on the outer wall of the warehouse body 1, the first reinforcing ribs 3 are triangular in structure, which can improve the strength and stability of the warehouse body 1 in the vertical direction, and the second reinforcing ribs 4 can improve the strength and stability of the warehouse body 1 in the horizontal direction, thereby improving the structural strength of the warehouse body 1 and reducing the possibility of deformation of the warehouse body 1 under pressure.
[0044] By setting up multiple first chutes 22 and multiple second chutes 23, multiple silos 21 can discharge materials at the same time. Multiple first chutes 22 can screen the materials discharged from multiple silos 21. The screened materials are uniformly discharged from the discharge pipe 25 to the storage bin for storage, thereby improving screening efficiency.
[0045] Example 2:
[0046] The embodiment of the present application discloses a high-strength food storage bin.
[0047] Reference Figure 5 、 Figure 6 The difference between the high-strength food storage bin disclosed in the embodiment of this application and embodiment 1 is that:
[0048] In this embodiment, an adjustment plate 26 is installed on the lower surface of the sieve plate 24 in each first slide pipe 22, and the upper surface of the adjustment plate 26 is in contact with the lower surface of the sieve plate 24. The adjustment plate 26 is slidably connected to the sieve plate 24, and the adjustment plate 26 can slide in the length direction of the first slide pipe 22; the plate surface of the adjustment plate 26 is provided with a plurality of adjustment holes 261, and the plurality of adjustment holes 261 are arranged corresponding to the plurality of screening holes 241, and the adjustment plate 26 is provided with a driving component 5 for driving the adjustment plate 26 to slide.
[0049] Reference Figure 5 、 Figure 6, a mounting block 262 is fixedly installed on the lower surface of the adjustment plate 26, and a mounting rod 263 is installed on the mounting block 262. One end of the mounting rod 263 is fixedly connected to the mounting block 262, and the other end passes through the outside of the warehouse body 1. The side wall of the warehouse body 1 and the side wall of the second slide 23 are both provided with a sliding groove 12 for the mounting rod 263 to pass through, and the two ends of the sliding groove 12 extend along the length direction of the first slide 22; the driving member includes a driving block 51, a connecting rod 52 and an adjusting member. A slide rail 13 is fixedly installed on the outer wall of the warehouse body 1, and the two ends of the slide rail 13 extend along the height direction. The driving block 51 is slidably installed on the slide rail 13. The driving block 51 is slidably installed on the warehouse body 1 through the slide rail 13 and can be lifted and lowered.
[0050] There are multiple connecting rods 52, and the multiple connecting rods 52 are arranged corresponding to the adjustment plate 26 of the first slide pipe 22. One end of the connecting rod 52 is hinged to the driving block 51, and the other end is hinged to the mounting rod 263 of the corresponding adjustment plate 26; a first connecting hole (not shown in the figure) is opened on the surface of the driving block 51, and a plurality of second connecting holes 131 are opened on the surface of the slide rail 13. The plurality of second connecting holes 131 are arranged at intervals along the length direction of the slide rail 13, and the adjusting member is configured as an adjusting bolt 53. The adjusting bolt 53 is sequentially passed through the first connecting hole and the second connecting hole 131 and is threadedly connected to the first connecting hole.
[0051] The implementation principle of Example 2 of the present application is: driving the driving block 51 to slide along the length direction of the slide rail 13. The driving block 51 can drive all the adjustment plates 26 to slide at the same time through multiple connecting rods 52 to change the connection area between the adjustment hole 261 and the screening hole 241, and then change the size of the screening hole 241. The operator can adjust the size of the screening hole 241 according to actual needs to screen particles of different sizes and improve the adaptability of the overall structure.
[0052] The above are preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A high-strength food storage warehouse, characterized by: The invention comprises a silo body (1) and a screening storage device (2) arranged inside the silo body (1); a plurality of groups of first reinforcing ribs (3) are provided on the inner side of the silo body (1); the first reinforcing ribs (3) include a first rib (31) and a second rib (32); one end of the first rib (31) is connected to one end of the second rib (32); and the ends of the first rib (31) and the second rib (32) that are away from each other are both connected to the inner wall of the silo body (1).
2. A high-strength food storage bin according to claim 1, characterized in that: The outer side of the silo body (1) is provided with a plurality of groups of second reinforcing ribs (4), the second reinforcing ribs (4) include a third rib (41), a fourth rib (42) and a fifth rib (43), one end of the third rib (41) and one end of the fourth rib (42) are both connected to the outer side wall of the silo body (1), one end of the fifth rib (43) is connected to the third rib (41), and the other end is connected to the fourth rib (42).
3. The high-strength food storage bin according to claim 1, characterized in that: The screening storage device (2) comprises a silo (21), a storage bin and a screening assembly, wherein the silo (21) and the storage bin are both arranged in a bin body (1), the silo (21) is located at the top of the storage bin, and the screening assembly is arranged between the silo (21) and the storage bin for screening materials.
4. The high-strength food storage bin according to claim 3, characterized in that: The screening assembly comprises a first chute (22) and a second chute (23), both of which are arranged in a silo body (1); a sieve plate (24) is arranged between the first chute (22) and the second chute (23); a plate surface of the sieve plate (24) is provided with a plurality of screening holes (241); the first chute (22) and the second chute (23) are connected to each other through the screening holes (241) of the sieve plate (24); the inlet end of the first chute (22) is connected to the outlet end of the silo (21), and the outlet end of the first chute (22) is connected to the storage bin.
5. The high-strength food storage bin according to claim 4, characterized in that: The sieve plate (24) is arranged at an angle, and the height of the sieve plate (24) gradually decreases from the side close to the inlet end of the first slide pipe (22) to the side close to the outlet end of the first slide pipe (22); the sieve plate (24) is connected to a vibration motor for driving the sieve plate (24) to vibrate.
6. The high-strength food storage bin according to claim 4, characterized in that: The number of the first chute (22), the second chute (23) and the silo (21) is correspondingly set to multiple, the inlet end of each first chute (22) is connected to the outlet end of the corresponding silo (21), and each second chute (23) is connected to the corresponding first chute (22); the outlet ends of the multiple first chute (22) are commonly connected to a discharge pipe (25), the number of the storage silos is set to multiple, and the outlet end of the discharge pipe (25) and the outlet ends of the multiple second chute (23) are connected to different storage silos.
7. The high-strength food storage bin according to claim 4, characterized in that: An adjusting plate (26) is slidably mounted on the surface of the sieve plate (24), and a plurality of adjusting holes (261) are provided on the plate surface of the adjusting plate (26), wherein the plurality of adjusting holes (261) are arranged corresponding to the plurality of screening holes (241); and a driving assembly (5) is provided on the adjusting plate (26) for driving the adjusting plate (26) to slide along the surface of the sieve plate (24).
8. The high-strength food storage bin according to claim 7, characterized in that: The driving assembly comprises a driving block (51), a connecting rod (52) and an adjusting member. The driving block (51) is slidably mounted on the bin body (1) and can be raised and lowered. One end of the connecting rod (52) is hinged to the adjusting plate (26), and the other end is hinged to the driving block (51). The adjusting member is arranged on the driving block (51) to adjust the height of the driving block (51).