Finished shrimp sauce subpackaging and cooling device
By designing a dispensing and cooling device, and utilizing a cooling inner tank and limiting block structure, the problem of slow cooling inside the shrimp oil storage tank was solved, achieving rapid cooling and efficient dispensing, thus improving shrimp oil production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- LUHUA BIOMARINE SHANDONG CO LTD
- Filing Date
- 2025-04-30
- Publication Date
- 2026-05-12
AI Technical Summary
虾油生产完毕后存储桶内部冷却较慢,导致分装时间长,影响生产效率。
设计一种成品虾油的分装冷却装置,包括分装架、承载板、压缩弹簧、限位块和冷却内胆,通过冷却进水管和出水管保持冷却内胆的低温,形成冷却通道,增大虾油与冷却内胆的接触面积,并通过限位块和压缩弹簧确保存储桶的稳固和便捷拆卸。
This technology enables rapid cooling of shrimp oil, shortens the production cycle, and improves packaging efficiency and ease of operation.
Smart Images

Figure CN224226640U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of shrimp oil packaging, specifically a packaging and cooling device for finished shrimp oil. Background Technology
[0002] After shrimp oil production is completed, it is usually temporarily placed in storage barrels and then packaged into designated finished product containers according to sales demand. The temperature of shrimp oil after production is relatively high, so it needs to be cooled before packaging. However, due to the large volume of the storage barrels, the shrimp oil near the barrel wall cools down faster, while the shrimp oil inside is difficult to cool down to room temperature quickly. This results in a long overall cooling time, which greatly limits the production efficiency of shrimp oil and prolongs the production cycle. Utility Model Content
[0003] The purpose of this utility model is to provide a packaging and cooling device for finished shrimp oil, which can solve the technical problem that the shrimp oil inside the storage tank cools down slowly, affecting the packaging production efficiency. It can quickly cool the shrimp oil during the packaging process, effectively reduce the temperature of the shrimp oil after packaging, and greatly shorten the normal production cycle of shrimp oil.
[0004] To achieve the above objectives, this utility model employs the following technical solution:
[0005] A packaging and cooling device for finished shrimp oil includes a packaging rack with a support plate for placing storage containers. The support plate is slidably connected to the packaging rack in a vertical direction. A compression spring is provided between the support plate and the packaging rack. Limiting blocks for use with the packaging rack are symmetrically provided on both sides of the support plate. A packaging spherical shell is provided on the packaging rack. An inlet pipe and an outlet pipe are respectively connected to the upper and lower ends of the packaging spherical shell. A drain pipe is provided at the bottom of the storage container. A quick connector for use with the inlet pipe is provided on the drain pipe. A cooling inner liner is provided inside the packaging spherical shell. A cooling water inlet pipe and a cooling water outlet pipe are connected to the cooling inner liner. A cooling channel is formed between the outer wall of the cooling inner liner and the inner wall of the packaging spherical shell. The cooling channel is connected to the inlet pipe and the outlet pipe.
[0006] Furthermore, the packaging rack is symmetrically provided with fixing blocks on both sides, the limiting block is rotatably connected to the bearing plate, and the limiting block contacts the bottom of the fixing block after rotation.
[0007] Furthermore, a rotating shaft is rotatably connected to the support plate, and a protrusion is provided on the top of the rotating shaft to cooperate with the support plate. The limiting block is fixed to the bottom of the rotating shaft.
[0008] Furthermore, the quick connector is sleeved on the outside of the drain pipe, and the quick connector is threadedly connected to the inlet pipe.
[0009] Furthermore, the drain pipe extends into the interior of the inlet pipe, and the drain pipe is equipped with a sealing plate for use with a quick-connect fitting.
[0010] Furthermore, the packaging rack has symmetrical sliding holes on both sides, and the support plate has symmetrical sliders on both sides. The sliders are slidably connected in the sliding holes, and the sliding holes have guide posts that pass through and are slidably connected to the sliders. The compression spring is disposed between the bottom end of the slider and the sliding hole.
[0011] Furthermore, the support plate is provided with multiple arc-shaped plates that contact the outer wall of the storage tank, and the support plate is provided with perforations for the liquid discharge pipe to pass through.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0013] 1. The structure of this utility model is as follows: a support plate for placing storage barrels is set on the dispensing rack, a liquid discharge pipe is provided at the bottom of the storage barrel, a dispensing spherical shell is provided on the dispensing rack, and a liquid inlet pipe and a liquid outlet pipe are respectively provided at the upper and lower ends of the dispensing spherical shell. A quick connector for use with the liquid inlet pipe is provided on the liquid discharge pipe. A cooling inner liner is provided inside the dispensing spherical shell. The cooling inner liner maintains a low temperature through a cooling water inlet pipe and a cooling water outlet pipe. A cooling channel is formed between the inner wall of the dispensing spherical shell and the outer wall of the cooling inner liner. This structure allows the shrimp oil discharged from the liquid discharge pipe of the storage barrel to be dispersed into a thinner layer when it enters the cooling channel inside the dispensing spherical shell, thereby increasing the contact area with the cooling inner liner, realizing rapid cooling operation, greatly reducing the cooling waiting time, improving the overall production efficiency of shrimp oil, and shortening the production cycle of shrimp oil.
[0014] 2. The support plate is slidably connected to the dispensing rack in the vertical direction. A compression spring is provided between the support plate and the dispensing rack. The support plate is equipped with a limiting block that works in conjunction with the dispensing rack. With this structure, the support plate is at a high position under the action of the compression spring. When the storage bucket is placed on the support plate, the support plate descends under the action of gravity, bringing the drain pipe at the bottom of the storage bucket close to the inlet pipe, which facilitates the connection between the drain pipe and the inlet pipe. During this process, the compression spring is compressed. At this time, the position of the support plate is fixed by the limiting block, which ensures the stability of the storage bucket during the dispensing process. After the dispensing is completed, the limitation block is released. Under the action of the compression spring, the support plate drives the storage bucket to slide upward, which separates the drain pipe from the inlet pipe, making it easier to remove the storage bucket from the support plate. This makes the placement and removal of the storage bucket more convenient and further improves the convenience of the dispensing operation. Attached Figure Description
[0015] Appendix Figure 1 This is a three-dimensional structural diagram of the present invention.
[0016] Appendix Figure 2 This is the right view of this utility model.
[0017] Appendix Figure 3 This is an appendix to this utility model. Figure 2 A cross-sectional view along the AA direction.
[0018] Appendix Figure 4 This is an appendix to this utility model. Figure 3 A magnified view of part B in the middle.
[0019] The labels shown in the attached diagram:
[0020] 1. Packaging rack; 2. Storage tank; 3. Support plate; 4. Compression spring; 5. Limiting block; 6. Packaging spherical shell; 7. Inlet pipe; 8. Outlet pipe; 9. Drain pipe; 10. Quick connector; 11. Cooling inner tank; 12. Cooling water inlet pipe; 13. Cooling water outlet pipe; 14. Cooling channel; 15. Fixing block; 16. Rotating shaft; 17. Protrusion; 18. Sealing plate; 19. Sliding hole; 20. Sliding block; 21. Guide post; 22. Arc plate; 23. Perforation. Detailed Implementation
[0021] The present invention will be further illustrated below with reference to specific embodiments. It should be understood that these embodiments are for illustrative purposes only and are not intended to limit the scope of the present invention. Furthermore, it should be understood that after reading the teachings of this invention, those skilled in the art can make various alterations or modifications to the present invention, and these equivalent forms also fall within the scope defined in this application.
[0022] Reference Figure 1 and Figure 2This utility model describes a packaging and cooling device for finished shrimp oil. The main structure includes a packaging rack 1, which consists of two symmetrically arranged vertical plates. A T-shaped base is provided at the bottom of each vertical plate to ensure structural stability. The packaging rack 1 has a support plate 3 for placing storage containers 2. The larger storage containers 2 are used to temporarily store the finished shrimp oil. The storage containers 2 are placed on the support plate 3 under the lifting of a crane or other lifting equipment. The support plate 3 is slidably connected vertically to the packaging rack 1. A compression spring 4 is provided between the support plate 3 and the packaging rack 1. This structure ensures that when no storage containers 2 are placed, the support plate 3 is at a higher position under the action of the compression spring 4. After the storage containers 2 are placed, the support plate 3 slides downwards under gravity, thus reducing the pressure on the compression spring 4. Spring 4 is compressed, causing storage bucket 2 to contact the dispensing component downwards, facilitating the connection between storage bucket 2 and the dispensing component. After dispensing, the weight of storage bucket 2 decreases, and under the action of compression spring 4, the support plate 3 rises, allowing storage bucket 2 on the support plate 3 to quickly separate from the dispensing component, facilitating disassembly of storage bucket 2. This makes the placement and removal of storage bucket 2 more convenient, greatly improving the ease of dispensing operations. Symmetrical limiting blocks 5 are provided on both sides of the support plate 3 to cooperate with the dispensing frame 1. When the support plate 3 descends under gravity to connect storage bucket 2 with the dispensing component, the limiting blocks 5 fix the position of the support plate 3, ensuring the stability of the dispensing process. Dispensing balls are fixed to the dispensing frame 1 by welding or bolts. Shell 6, the dispensing spherical shell 6 is located below the support plate 3. The dispensing spherical shell 6 is a hollow spherical structure. The upper and lower ends of the dispensing spherical shell 6 are respectively fixedly connected by welding or integral molding with an inlet pipe 7 and an outlet pipe 8. The bottom of the storage tank 2 is fixedly connected by welding or integral molding with a drain pipe 9. Both the drain pipe 9 and the outlet pipe 8 are equipped with switch valves to realize the opening and closing control of both. The drain pipe 9 is equipped with a quick connector 10 for use with the inlet pipe 7. When the storage tank 2 descends and the drain pipe 9 approaches the inlet pipe 7, the quick connector 10 is used to connect the two, so that the shrimp oil in the storage tank 2 can flow into the dispensing spherical shell 6 after passing through the drain pipe 9 and the inlet pipe 7. The dispensing spherical shell 6 is equipped with a cooling inner tank 11. The inner liner 11 is also a hollow spherical structure. A cooling water inlet pipe 12 and a cooling water outlet pipe 13 are connected to the inner liner 11. These pipes pass through the sub-shell 6 and connect to the inner liner 11, providing support and ensuring the inner liner 11 is securely fixed within the sub-shell 6. Cooling water enters the inner liner 11 through the cooling water inlet pipe 12 under the action of a water pump, and after cooling, it exits through the cooling water outlet pipe 13, maintaining the inner liner 11 at a low temperature. A cooling channel 14 is formed between the outer wall of the inner liner 11 and the inner wall of the sub-shell 6. This cooling channel 14 is connected to the liquid inlet pipe 7 and the liquid outlet pipe 8, allowing shrimp oil entering the sub-shell 6 to enter the cooling channel 14.The cooling channel 14 has a very thin sandwich structure, which allows the incoming shrimp oil to be fully dispersed, increasing the contact area with the cooling inner tank 11. This enables rapid heat exchange, causing the shrimp oil temperature to drop quickly, greatly reducing cooling waiting time, improving the production and packaging efficiency of shrimp oil, and effectively shortening the shrimp oil production cycle.
[0023] Preferably, the two sides of the dispensing rack 1 are symmetrically fixed with fixing blocks 15 by welding or bolts. The limiting block 5 is rotatably connected to the bearing plate 3. After the limiting block 5 rotates, it contacts the bottom of the fixing block 15. With this structure, after the bearing plate 3 descends, the limiting block 5 rotates to the bottom of the fixing block 15 and contacts the bottom of the fixing block 15. In this way, when the shrimp oil in the storage bucket 2 decreases and the weight decreases, the limiting block 5 is blocked by the fixing block 15 above, so that the bearing plate 3 cannot slide upward under the action of the compression spring 4. This effectively restricts the position of the bearing plate 3 and the storage bucket 2 during the dispensing process. The structure is simple, the operation is convenient, and the stability of the position of the storage bucket 2 during the dispensing process is guaranteed, ensuring the smoothness of the dispensing operation.
[0024] Preferably, a rotating shaft 16 is rotatably connected to the bearing plate 3 via a bearing. The top of the rotating shaft 16 is fixed with a protrusion 17 that works with the bearing plate 3 by welding or integral molding. Specifically, a through hole is provided on the bearing plate 3, through which the rotating shaft 16 passes and is rotatably connected. The cross-sectional dimension of the protrusion 17 is larger than that of the through hole, thereby effectively limiting the vertical position of the rotating shaft 16 and ensuring the stability of the vertical position of the rotating shaft 16. The limiting block 5 is fixed to the bottom of the rotating shaft 16 by welding or bolts. This structure allows the limiting block 5 to be rotatably connected to the bearing plate 3 through the cooperation of the rotating shaft 16 and the protrusion 17, resulting in greater vertical load-bearing strength of the limiting block 5 and improving the vertical limiting effect on the bearing plate 3.
[0025] Preferably, the quick connector 10 is sleeved on the outside of the drain pipe 9. The quick connector 10 can slide and rotate relative to the drain pipe 9. A sealing gasket is provided at the contact position between the quick connector 10 and the drain pipe 9 to ensure the sealing of the relative sliding structure. The quick connector 10 is threadedly connected to the inlet pipe 7. With this structure, when the drain pipe 9 and the inlet pipe 7 are close, only the quick connector 10 needs to be rotated to make the quick connector 10 threadedly connected to the inlet pipe 7 under the action of the threaded connection. At the same time, the quick connector 10 slides on the drain pipe 9, thereby realizing the quick connection between the drain pipe 9 and the inlet pipe 7. The connection and subsequent disassembly are faster and simpler.
[0026] Preferred, refer to Figure 3 and Figure 4The drain pipe 9 extends into the inlet pipe 7. A sealing plate 18 for use with the quick connector 10 is fixed on the drain pipe 9 by welding or integral molding. The diameter of the drain pipe 9 is smaller than that of the inlet pipe 7, so that when the drain pipe 9 extends into the inlet pipe 7, the sealing plate 18 blocks the top of the inlet pipe 7, thereby sealing the gap between the drain pipe 9 and the inlet pipe 7. After the quick connector 10 moves down along the drain pipe 9, it contacts the sealing plate 18, which makes the sealing effect at the connection between the drain pipe 9 and the inlet pipe 7 better. Under the action of the sealing plate 18, the drain pipe 9 remains tightly connected to the inlet pipe 7, and the two are not easy to separate, which further improves the robustness of the connection structure.
[0027] Preferably, the two sides of the sub-assembly rack 1 are symmetrically provided with through sliding holes 19, and the two sides of the support plate 3 are symmetrically fixed with sliders 20 by welding or bolts. The sliders 20 are slidably connected in the sliding holes 19, making the sliding structure of the support plate 3 relative to the sub-assembly rack 1 more stable. The guide post 21 is fixed in the sliding hole 19 by welding or bolts. The guide post 21 passes through the slider 20 and is slidably connected to it. The compression spring 4 is disposed between the bottom end of the slider 20 and the sliding hole 19, and the compression spring 4 is sleeved on the outside of the guide post 21. This structure uses the guide post 21 to provide guidance for the vertical sliding of the slider 20, and the slider 20 can accurately compress the compression spring 4 when sliding, providing accurate power for the subsequent reset sliding of the support plate 3, and improving the firmness of the sliding structure of the support plate 3 relative to the sub-assembly rack 1.
[0028] Preferably, the support plate 3 is fixed with multiple arc-shaped plates 22 that contact the outer wall of the storage tank 2 by welding or bolting. The storage tank 2 is placed inside the multiple arc-shaped plates 22, which improves the stability of the storage tank 2 placed on the support plate 3. The support plate 3 is provided with a through hole 23 for the drain pipe 9 to pass through. The through hole 23 penetrates the support plate 3 and its size is larger than that of the drain pipe 9, so that when the storage tank 2 is placed, the drain pipe 9 at the bottom passes through the through hole 23, thereby allowing the storage tank 2 to be placed completely on the support plate 3. During the placement process, there will be no interference with the drain pipe 9 at the bottom, making the storage tank 2 placed on the support plate 3 more stable.
[0029] Working Principle: This invention features a support plate 3 on a dispensing rack 1 for holding storage tanks 2. A drain pipe 9 is located at the bottom of the storage tank 2. A dispensing spherical shell 6 is mounted on the dispensing rack 1. The upper and lower ends of the dispensing spherical shell 6 are respectively equipped with an inlet pipe 7 and an outlet pipe 8. A quick connector 10 for use with the inlet pipe 7 is provided on the drain pipe 9. A cooling inner liner 11 is located inside the dispensing spherical shell 6. The cooling inner liner 11 maintains a lower temperature through a cooling water inlet pipe 12 and a cooling water outlet pipe 13. A cooling channel 14 is formed between the inner wall of the dispensing spherical shell 6 and the outer wall of the cooling inner liner 11. This structure allows the shrimp oil discharged from the drain pipe 9 of the storage tank 2 to be dispersed into a thinner layer when it enters the cooling channel 14 inside the dispensing spherical shell 6, thereby increasing the contact area with the cooling inner liner 11, achieving rapid cooling, significantly reducing cooling waiting time, improving the overall production efficiency of shrimp oil, and shortening the shrimp oil production cycle. Plate 3 is slidably connected to the dispensing rack 1 vertically. A compression spring 4 is provided between the support plate 3 and the dispensing rack 1. A limiting block 5 is provided on the support plate 3 to cooperate with the dispensing rack 1. With this structure, the support plate 3 is at a high position under the action of the compression spring 4. When the storage bucket 2 is placed on the support plate 3, the support plate 3 descends under the action of gravity, so that the liquid discharge pipe 9 at the bottom of the storage bucket 2 approaches the liquid inlet pipe 7, which facilitates the connection between the liquid discharge pipe 9 and the liquid inlet pipe 7. During this process, the compression spring 4 is compressed. At this time, the position of the support plate 3 is fixed by the limiting block 5 to ensure the firmness of the position of the storage bucket 2 during the dispensing process. After the dispensing is completed, the limitation of the limiting block 5 is released. Under the action of the compression spring 4, the support plate 3 drives the storage bucket 2 to slide upward, so that the liquid discharge pipe 9 separates from the liquid inlet pipe 7, which makes it easier to remove the storage bucket 2 from the support plate 3. This makes the placement and removal of the storage bucket 2 more convenient and further improves the convenience of the dispensing operation.
Claims
1. A packaging and cooling device for finished shrimp oil, comprising a packaging rack (1), wherein the packaging rack (1) is provided with a support plate (3) for placing storage barrels (2), characterized in that: The support plate (3) is slidably connected to the dispensing rack (1) in the vertical direction. A compression spring (4) is provided between the support plate (3) and the dispensing rack (1). Limiting blocks (5) for use with the dispensing rack (1) are symmetrically provided on both sides of the support plate (3). A dispensing spherical shell (6) is provided on the dispensing rack (1). An inlet pipe (7) and an outlet pipe (8) are respectively connected to the upper and lower ends of the dispensing spherical shell (6). A drain pipe (9) is provided at the bottom of the storage tank (2). The drain pipe (9) is provided with a quick connector (10) for use with the inlet pipe (7). The interior of the dispensing spherical shell (6) is provided with a cooling inner liner (11). The cooling inner liner (11) is connected to a cooling water inlet pipe (12) and a cooling water outlet pipe (13). A cooling channel (14) is formed between the outer wall of the cooling inner liner (11) and the inner wall of the dispensing spherical shell (6). The cooling channel (14) is connected to the inlet pipe (7) and the outlet pipe (8).
2. The finished shrimp oil dispensing and cooling device according to claim 1, characterized in that: The packaging rack (1) has symmetrical fixing blocks (15) on both sides. The limiting block (5) is rotatably connected to the bearing plate (3). After the limiting block (5) rotates, it contacts the bottom of the fixing block (15).
3. The finished shrimp oil dispensing and cooling device according to claim 2, characterized in that: A rotating shaft (16) is rotatably connected to the bearing plate (3). The top of the rotating shaft (16) is provided with a protrusion (17) that works with the bearing plate (3). The limiting block (5) is fixed to the bottom of the rotating shaft (16).
4. The finished shrimp oil dispensing and cooling device according to claim 1, characterized in that: The quick connector (10) is sleeved on the outside of the drain pipe (9), and the quick connector (10) is threadedly connected to the inlet pipe (7).
5. The finished shrimp oil dispensing and cooling device according to claim 4, characterized in that: The drain pipe (9) extends into the interior of the inlet pipe (7), and the drain pipe (9) is provided with a sealing plate (18) for use with the quick connector (10).
6. The finished shrimp oil dispensing and cooling device according to claim 1, characterized in that: The packaging rack (1) has symmetrical sliding holes (19) on both sides, and the bearing plate (3) has symmetrical sliders (20) on both sides. The sliders (20) are slidably connected in the sliding holes (19). The sliding holes (19) have guide posts (21) inside them. The guide posts (21) pass through the sliders (20) and are slidably connected to them. The compression spring (4) is located between the bottom end of the sliders (20) and the sliding holes (19).
7. The packaging and cooling device for finished shrimp oil according to claim 1, characterized in that: The support plate (3) is provided with multiple arc-shaped plates (22) that contact the outer wall of the storage tank (2), and the support plate (3) is provided with perforations (23) for the liquid discharge pipe (9) to pass through.