Mincing mechanism for fish ball processing

By introducing a viewing window and an air pump-assisted push design into the fish ball processing device, the problems of safety hazards and low efficiency have been solved, and both safety and efficiency have been improved.

CN223958262UActive Publication Date: 2026-03-03BIJIA MOUNTAIN FOOD LTD IN JINZHOU
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-05
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

Traditional fish ball processing equipment lacks safety protection measures, resulting in a high risk of personnel accidentally touching the grinding parts, making it difficult to control the amount of raw materials added, which affects the quality stability and grinding efficiency.

Method used

A feeding hopper with a rotatable cover and a viewing window was designed, equipped with an air pipe interface and an air pump. The amount of material added can be observed through the viewing window. The cover provides sealing protection, and the air pump assists in pushing the raw materials. Combined with the auger and cross blades for cutting, the cross blades further shred the material, ensuring both safety and efficiency.

Benefits of technology

It effectively prevents safety accidents, ensures accurate addition of raw materials, improves the quality stability and processing efficiency of fish ball products, and reduces production costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a mincing mechanism for fish ball processing, which comprises a machine body, the top end of the machine body is provided with a feeding hopper, the top end of the feeding hopper is rotatably connected with a cover plate, the bottom end of the cover plate is provided with a rubber plug, the rubber plug is clamped on the inner wall of the upper part of the feeding hopper, and the middle part of the cover plate is inserted with an air pipe interface. The bottom of the air pipe connector extends into the feeding hopper. By means of the rotatable cover plate and the rubber plug which are specially designed at the top end of the feeding hopper, the cover plate is closed when not in use, personnel are effectively prevented from mistakenly touching the running auger component, the safety accident risk is greatly reduced, and personnel safety is guaranteed; by means of the visual windows on the two sides of the feeding hopper, an operator can accurately control the adding amount of raw materials, and the quality stability of fish ball products is improved; by means of ventilation and pressurization of the air pipe connector and the air pump, raw materials are assisted to smoothly enter a mincing area, pushing resistance is overcome, mincing efficiency is improved, the fish ball processing flow is more efficient, and yield increase and cost reduction are facilitated.
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Description

Technical Field

[0001] This utility model relates to the field of fish ball processing technology, and in particular to a grinding mechanism for fish ball processing. Background Technology

[0002] In the process of fish ball processing, the grinding of raw materials is one of the key steps, and traditional fish ball grinding equipment often has many shortcomings.

[0003] For example, the feeding process lacks effective safety protection measures. The feeding hopper is often left open, which can easily lead to personnel accidentally touching the operating crushing components, such as the high-speed rotating auger, causing safety accidents and posing a serious threat to the personal safety of operators. Moreover, traditional equipment makes it difficult to accurately control the amount of raw materials added, lacks a visual observation window, and can only rely on experience for operation. This can easily result in too much or too little raw material being added, affecting the quality stability of the fish balls. In addition, when raw materials enter the crushing area, they are often not pushed smoothly due to their own stickiness or the friction inside the device, affecting the crushing efficiency and making the processing time-consuming and labor-intensive, which cannot meet the needs of modern high-efficiency production.

[0004] Therefore, we propose a grinding mechanism for fish ball processing. Utility Model Content

[0005] The main purpose of this utility model is to provide a grinding mechanism for fish ball processing. In order to prevent safety accidents caused by personnel accidentally touching the grinding parts due to the lack of protection when feeding materials, the difficulty in controlling the amount of raw materials added affecting the quality stability, and the problem of poor material feeding reducing processing efficiency, the present invention can improve the safety, quality stability and processing efficiency of fish ball processing and effectively solve the problems in the background art.

[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0007] A fish ball processing grinding mechanism includes a machine body, a feeding hopper at the top of the machine body, a cover plate rotatably connected to the top of the feeding hopper, a rubber plug at the bottom of the cover plate and the rubber plug being engaged with the upper inner wall of the feeding hopper, an air pipe interface inserted into the middle of the cover plate and the bottom of the air pipe interface extending into the interior of the feeding hopper, viewing windows on both sides of the upper part of the feeding hopper, a fixing block welded to the upper part of one end of the feeding hopper, a connecting block welded to the lower part of one end of the cover plate, a screw hole opened in the middle of the top of the fixing block, and a threaded through hole for bolt connection opened in the middle of the connecting block near the screw hole, one end of the bolt passing through the threaded through hole and threadedly connected to the screw hole;

[0008] The machine body is connected to an auger via a bushing for horizontal rotation, and the outer wall of the auger is welded with multiple cross-shaped blades.

[0009] By adopting the above technical solution, when it is necessary to add raw materials such as fish meat to be processed into the grinding mechanism, first rotate the cover plate that is rotatably connected to the top of the feeding hopper to open it. At this time, the internal condition of the feeding hopper can be observed through the viewing windows set on both sides of the upper part of the feeding hopper, so as to accurately control the amount of raw materials added. The cover plate is closed when not in use, which can prevent personnel from accidentally touching the inside of the machine body and avoid potential safety hazards, such as injury caused by touching the running auger or other components.

[0010] After opening the cover, put the raw material to be processed into the feeding hopper, and then close the cover. At this time, the rubber plug at the bottom of the cover will be engaged with the upper inner wall of the feeding hopper, which will play a good sealing role and prevent the raw material from leaking. Then, the cover and the feeding hopper are further fixed by bolts. Specifically, one end of the bolt passes through the threaded through hole opened on the connecting block to be connected to the bolt, and is threaded to the screw hole opened in the middle of the top of the fixing block, ensuring that the cover will not be opened accidentally during the processing.

[0011] Connect the air pipe interface to the air pump through the air pipe. After the raw materials are added, the air pump can be started as needed. Air is introduced into the machine body through the air pipe interface to pressurize it, which can help push the raw materials into the machine body more smoothly, overcome possible resistance, and enable the raw materials to enter the grinding area better.

[0012] When the shredding mechanism is activated, the auger begins to rotate horizontally inside the machine body via the bushing. As the auger rotates, it pushes the raw materials in the hopper into the machine body. During this process, the pressurized environment established inside the machine body through the air pipe interface and air pump may further assist in pushing the raw materials, allowing them to enter the shredding area more quickly and evenly. Multiple cross-shaped blades welded to the outer wall of the auger will cut the pushed raw materials. As the auger continues to rotate, the raw materials are continuously cut and shredded by the blades as they are pushed, ultimately processing the raw materials into the fine powder required for fish balls, so as to provide suitable raw materials for the subsequent fish ball making process.

[0013] Furthermore, a motor is fixedly installed at one end of the machine body, and the output shaft of the motor passes through the machine body and is fixedly connected to one end of the auger.

[0014] By adopting the above technical solution, the motor is started and the output shaft of the motor begins to rotate. Since the output shaft of the motor passes through the machine body and is fixedly connected to one end of the auger, the auger will rotate horizontally inside the machine body through the bushing as the output shaft of the motor rotates.

[0015] Furthermore, a shaft head is provided at the end of the auger away from the motor, and a cross blade is installed on the outside of the shaft head.

[0016] By adopting the above technical solution, the raw materials, after being initially shredded by the single-blade cutter, continue to be pushed along the auger axis. When they reach the end of the auger furthest from the motor, that is, the location of the shaft head, the cross-blade installed on the outside of the shaft head begins to further shred the initially shredded raw materials. Due to the structural characteristics of the cross-blade cutter, it can shred the raw materials more finely and thoroughly, further processing the smaller pieces previously shredded by the single-blade cutter into finer powder that meets the requirements for making fish balls.

[0017] Furthermore, a nut is threaded onto the outer wall of the machine body away from the motor, and a meat discharge plate is installed inside the nut.

[0018] By adopting the above technical solution, when the shredded raw material is pushed to the meat discharge plate, it will be squeezed out of the machine body through the holes on the meat discharge plate, thereby completing the discharge process and obtaining raw material shreds that can be used for subsequent fish ball production.

[0019] Furthermore, two symmetrical bases are fixedly connected to the bottom of the body.

[0020] By adopting the above technical solution, the base provides support for the machine body.

[0021] Compared with the prior art, the present invention has the following beneficial effects:

[0022] (1) The present invention provides a shredding mechanism for fish ball processing. By setting a rotatable cover plate at the top of the feeding hopper and installing a rubber plug at the bottom of the cover plate, the cover plate can be closed when not in use, which effectively prevents personnel from accidentally touching the auger and other components inside the machine body, greatly reducing the probability of safety accidents, providing a safe and reliable working environment for operators, and ensuring the safety of personnel in the fish ball processing process.

[0023] (2) The present invention provides a grinding mechanism for fish ball processing. With the help of the viewing windows on both sides of the feeding hopper, the operator can intuitively observe the condition of the raw materials inside the feeding hopper, thereby accurately controlling the amount of raw materials added, ensuring that the amount of raw materials processed each time meets the production standards, and effectively improving the stability of the quality of fish ball products. At the same time, by using the air pipe interface to connect the air pump to pressurize the machine body, the raw materials can enter the grinding area more smoothly, overcome the resistance in the process of pushing the raw materials, significantly improve the grinding efficiency, and make the entire fish ball processing process more efficient and faster, which is conducive to increasing the production output of fish balls and reducing production costs. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the structure of a shredding mechanism for processing fish balls according to this utility model.

[0025] Figure 2This utility model relates to a grinding mechanism for processing fish balls. Figure 1 Enlarged view of point A in the middle.

[0026] Figure 3 This is a schematic diagram of the internal structure of a shredding mechanism for processing fish balls according to this utility model.

[0027] In the diagram: 1. Machine body; 2. Feed hopper; 3. Cover plate; 4. Rubber plug; 5. Air pipe interface; 6. Fixing block; 7. Connecting block; 8. Bolt; 9. Screw hole; 10. Screw auger; 11. Straight blade; 12. Motor; 13. Shaft head; 14. Cross blade; 15. Nut; 16. Meat discharge plate; 17. Base; 18. Viewing window. Detailed Implementation

[0028] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0029] To prevent safety accidents caused by unprotected feeding in fish ball processing grinding devices, resulting in personnel accidentally touching the grinding components, difficulties in controlling the amount of raw materials added affecting quality stability, and poor raw material feeding reducing processing efficiency, thereby improving the safety, quality stability, and processing efficiency of fish ball processing, such as... Figure 1 , Figure 2 , Figure 3 As shown, a fish ball processing grinding mechanism includes a machine body 1. A feeding hopper 2 is provided at the top of the machine body 1. A cover plate 3 is rotatably connected to the top of the feeding hopper 2. A rubber plug 4 is provided at the bottom of the cover plate 3 and is engaged with the upper inner wall of the feeding hopper 2. An air pipe interface 5 is inserted into the middle of the cover plate 3 and the bottom of the air pipe interface 5 extends into the interior of the feeding hopper 2. Viewing windows 18 are provided on both sides of the upper part of the feeding hopper 2. A fixing block 6 is welded to the upper part of one end of the feeding hopper 2. A connecting block 7 is welded to the lower part of one end of the cover plate 3. A screw hole 9 is opened in the middle of the top of the fixing block 6. A threaded through hole for connecting with a bolt 8 is opened in the middle of the connecting block 7 near the screw hole 9. One end of the bolt 8 passes through the threaded through hole and is threadedly connected to the screw hole 9.

[0030] The inside of the machine body 1 is connected to a screw conveyor 10 via a bushing for horizontal rotation. The outer wall of the screw conveyor 10 is welded with multiple cross-shaped blades 11.

[0031] When using the machine, when it is necessary to add raw materials such as fish meat to be processed into the grinding mechanism, first rotate the cover plate 3 that is rotatably connected to the top of the feeding hopper 2 to open it. At this time, the internal condition of the feeding hopper 2 can be observed through the viewing windows 18 set on both sides of the upper part of the feeding hopper 2, so as to accurately control the amount of raw materials added. The cover plate 3 is closed when not in use, which can prevent personnel from accidentally touching the inside of the machine body 1 and avoid potential safety hazards, such as injury caused by touching the running auger 10 or other components.

[0032] After opening the cover plate 3, put the raw material to be processed into the feeding hopper 2, and then close the cover plate 3. At this time, the rubber plug 4 at the bottom of the cover plate 3 will be engaged with the upper inner wall of the feeding hopper 2, which will play a good sealing role and prevent the raw material from leaking. Then, the cover plate 3 and the feeding hopper 2 are further fixed by bolts 8. Specifically, one end of the bolt 8 passes through the threaded through hole opened on the connecting block 7 to connect with the bolt 8, and is threadedly connected to the screw hole 9 opened at the top center of the fixing block 6, ensuring that the cover plate 3 will not be opened accidentally during the processing.

[0033] Connect the air pipe interface 5 to the air pump through the air pipe. After the raw materials are added, the air pump can be started as needed. Air is introduced into the machine body 1 through the air pipe interface 5 to pressurize it. This can help push the raw materials into the machine body 1 more smoothly, overcome possible resistance, and enable the raw materials to enter the shredding area better.

[0034] When the shredding mechanism is started, the auger 10 begins to rotate horizontally inside the machine body 1 via the bushing. As the auger 10 rotates, it pushes the raw materials in the feeding hopper 2 into the machine body 1. During this process, the air-pressurized environment established inside the machine body 1 through the air pipe interface 5 and the air pump may further assist in pushing the raw materials, allowing them to enter the shredding area more quickly and evenly. Multiple cross-shaped blades 11 welded to the outer wall of the auger 10 will cut the pushed raw materials. As the auger 10 continues to rotate, the raw materials are continuously cut and shredded by the blades 11 as they are pushed, ultimately processing the raw materials into the fine powder required for fish balls, so as to provide suitable raw materials for the subsequent fish ball making process.

[0035] For example, such as Figure 1 , Figure 2 , Figure 3 As shown, the present invention also includes a motor 12 fixedly installed at one end of the body 1, the output shaft of the motor 12 passing through the body 1 and fixedly connected to one end of the auger 10.

[0036] When in use, start the motor 12, and the output shaft of the motor 12 will start to rotate. Since the output shaft of the motor 12 passes through the body 1 and is fixedly connected to one end of the auger 10, the auger 10 will rotate horizontally inside the body 1 through the bushing as the output shaft of the motor 12 rotates.

[0037] For example, such as Figure 1 , Figure 3 As shown, the present invention also includes a shaft head 13 at the end of the auger 10 away from the motor 12, and a cross blade 14 is mounted on the outside of the shaft head 13.

[0038] During use, the raw material, after being initially shredded by the single-blade 11, continues to be pushed along the axial direction of the auger 10. When it reaches the end of the auger 10 away from the motor 12, that is, the location of the shaft head 13, the cross blade 14 installed on the outside of the shaft head 13 begins to further shred the initially shredded raw material. Due to the structural characteristics of the cross blade 14, it can shred the raw material more finely and thoroughly, further processing the smaller pieces formed by the single-blade 11 into finer powder that meets the requirements for making fish balls.

[0039] For example, such as Figure 1 , Figure 3 As shown, the present invention also includes a nut 15 threadedly connected to the outer wall of the machine body 1 away from the motor 12, and a meat discharge plate 16 is installed inside the nut 15.

[0040] When in use, when the shredded raw material is pushed to the meat discharge plate 16, it will be squeezed out of the machine body 1 through the holes on the meat discharge plate 16, thereby completing the discharge process and obtaining raw material shreds that can be used for subsequent fish ball making.

[0041] For example, such as Figure 1 As shown, the present invention also includes two symmetrical bases 17 fixedly connected to the bottom of the body 1.

[0042] When in use, the base 17 provides support for the body 1.

[0043] It should be noted that this utility model is a shredding mechanism for fish ball processing. The cover plate 3, which is rotatably connected to the top of the feeding hopper 2, is rotated to open it. During this process, the internal condition of the feeding hopper 2 can be observed through the viewing windows 18 set on both sides of the upper part of the feeding hopper 2, so as to accurately control the amount of raw materials added later. The prepared raw materials to be processed are put into the opened feeding hopper 2. After the raw materials are added, the cover plate 3 is closed. At this time, the rubber plug 4 at the bottom of the cover plate 3 will be locked into the upper inner wall of the feeding hopper 2 to play a sealing role. One end of the bolt 8 is passed through the threaded through hole of the connecting block 7 and connected to the threaded hole 9 at the top center of the fixing block 6 to ensure that the cover plate 3 will not be opened accidentally during the processing. The air pipe interface 5 is connected to the air pump through the air pipe. After the raw materials are added, the air pump can be started as needed to pressurize the machine body 1 through the air pipe interface 5 to help push the raw materials into the machine body 1 more smoothly, overcome possible resistance, and enable the raw materials to enter the shredding area better.

[0044] When motor 12 is turned on, the output shaft of motor 12 begins to rotate. Since the output shaft of motor 12 passes through the machine body 1 and is fixedly connected to one end of auger 10, auger 10 will rotate horizontally inside the machine body 1 through the bushing as the output shaft of motor 12 rotates. When auger 10 rotates, it will push the raw material in the feeding hopper 2 into the machine body 1. During this process, the existing ventilation and pressurization environment inside the machine body 1 will further assist in pushing the raw material, so that the raw material can enter the shredding area more quickly and evenly. The multiple cross-shaped blades 11 welded to the outer wall of auger 10 will cut the pushed raw material. As auger 10 continues to rotate, the raw material is continuously cut and shredded by the blades 11 as it is continuously pushed, completing the initial shredding operation.

[0045] As the raw material, after being initially minced by the blade 11, continues to be pushed along the axial direction of the auger 10, it reaches the end of the auger 10 furthest from the motor 12, i.e., the shaft head 13. At this point, the cross blade 14, installed outside the shaft head 13, begins to further mince the initially minced raw material. Due to the structural characteristics of the cross blade 14, it can mince the raw material more finely and thoroughly, further processing the smaller pieces formed by the blade 11 into finer powder that meets the requirements for fish ball making. When the powdered raw material is pushed to the discharge plate 16, it will be extruded through the holes on the discharge plate 16 into the machine body 1, thus completing the discharge process and obtaining raw material powder that can be used for subsequent fish ball making.

[0046] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A mincing mechanism for fish ball processing, comprising a machine body (1), characterized in that, The top end of the fuselage (1) is provided with a feeding hopper (2), the top end of the feeding hopper (2) is rotatably connected with a cover plate (3), the bottom end of the cover plate (3) is provided with a rubber plug (4), the rubber plug (4) is clamped on the inner wall of the upper part of the feeding hopper (2), the middle part of the cover plate (3) is inserted with an air pipe interface (5), the bottom of the air pipe interface (5) extends to the inside of the feeding hopper (2), the upper part of the feeding hopper (2) is provided with a visible window (18) on both sides, the upper part of one end of the feeding hopper (2) is welded with a fixed block (6), the lower part of one end of the cover plate (3) is welded with a connecting block (7), the middle part of the top end of the fixed block (6) is provided with a screw hole (9), the middle part of the connecting block (7) close to the screw hole (9) is provided with a threaded hole connected with a matched bolt (8), one end of the bolt (8) penetrates through the threaded hole and is threadedly connected with the screw hole (9). The inside of the fuselage (1) is horizontally rotatably connected with an auger (10) through a shaft sleeve, the outer wall of the auger (10) is welded with a plurality of intersected one-blade knives (11).

2. The mincing mechanism for fish ball processing according to claim 1, characterized in that: One end of the fuselage (1) is fixedly installed with a motor (12), the output shaft of the motor (12) penetrates through the fuselage (1) and is fixedly connected with one end of the auger (10).

3. The mincing mechanism for fish ball processing according to claim 2, characterized in that: The end of the auger (10) away from the motor (12) is provided with a shaft head (13), the outer part of the shaft head (13) is installed with a cross knife (14).

4. The mincing mechanism for fish ball processing according to claim 1, characterized in that: The outer wall of the fuselage (1) away from the motor (12) is threadedly connected with a nut (15), the inside of the nut (15) is installed with a meat plate (16).

5. The mincing mechanism for fish ball processing according to claim 1, characterized in that: The bottom of the fuselage (1) is fixedly connected with two symmetrical bases (17).