Preparation process of squid sticky powder
By introducing a combination technology of crushing, energy storage and toggling mechanisms into the squid powder preparation process, the problem of difficult separation of high viscous slurry of fresh squid meat is solved, and the production efficiency and product quality are improved.
Patent Information
- Application Number
- CN202510278592.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-10
- Publication Date
- 2025-06-10
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the existing squid powder preparation process, the high viscosity slurry of fresh squid meat is difficult to effectively separate, resulting in low production efficiency and poor product quality.
A process including a crushing mechanism, an energy storage mechanism and a toggle mechanism is adopted. The crushing mechanism cuts the squid meat through a blade. The energy storage mechanism stores energy during the crushing process and releases elastic potential energy after the crushing is completed. The toggle mechanism accelerates the separation of the slurry by shaking the filter plate.
It improves the production efficiency of squid stick powder, enhances the slurry separation effect, and improves the product's viscosity, drying degree and shelf life.
Smart Images

Figure CN120113787A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of squid processing, and specifically, to a preparation process of squid adhesive powder. Background Art
[0002] In the field of food processing, especially in the preparation process of squid adhesive powder, obtaining high-quality squid adhesive powder is the key goal. The preparation of squid adhesive powder generally consists of two steps: First, fresh squid meat is broken up and then made into meat paste; then, the meat paste is extruded through a forming mechanism with holes, and the resulting strip-shaped meat paste is the squid adhesive powder. However, it is not easy to make squid adhesive powder from freshly caught squid. Fresh squid has abundant moisture, which is its natural physiological characteristic. When it is pulverized, the cells rupture, and the moisture mixes fully with the squid tissue, forming a highly viscous slurry. The presence of this slurry increases the complexity of processing.
[0003] Traditional slurry separation methods often rely on simple filter screen filtration. However, due to the high viscosity of fresh squid slurry, filter screen filtration is not only slow but also the separation effect is unsatisfactory. This results in low production efficiency and is difficult to meet the requirements of large-scale production. In previous practices, attempts have been made to adjust the pore size and material of the filter screen, but none of them have fundamentally solved the problem of low slurry separation efficiency. At the same time, due to incomplete separation, it also affects the quality and performance of subsequent squid adhesive powder, such as viscosity, dryness degree, and shelf life. If the crushed squid meat is continuously stirred and extruded during the pulverization process of squid meat, it is easy to interfere with the pulverization process, resulting in incomplete pulverization of squid meat, and the squid meat particles not meeting the requirements for preparing squid adhesive powder. And if manual extrusion filtration is carried out after all the squid meat is pulverized, it will increase additional energy consumption and costs.
[0004] In view of this, we propose a preparation process of squid adhesive powder to improve the deficiencies in the prior art. Summary of the Invention
[0005] The purpose of the present invention is to provide a preparation process of squid adhesive powder to solve the problems raised in the above background art.
[0006] To achieve the above purpose, the present invention aims to provide a preparation process of squid adhesive powder, including the following steps:
[0007] S1. Start the pulverization mechanism, add the squid meat to be pulverized into the interior of the pulverization mechanism and chop it up;
[0008] S2. During the pulverization of the squid meat, the generated slurry slowly separates from the squid meat fragments under the action of gravity, and the squid meat fragments are intercepted by the filtration mechanism;
[0009] S3, in the process of the crushing mechanism chopping the squid meat, the crushing mechanism continuously tightens the energy storage mechanism to store energy;
[0010] S4, after the squid meat is crushed, the energy storage mechanism starts to release the stored energy after the energy storage is completed. In the process of releasing the elastic potential energy, the elastic potential energy released by the energy storage mechanism drives the toggle mechanism to intermittently knock the bottom of the filter mechanism, thereby accelerating the separation speed of the slurry from the squid meat;
[0011] Wherein, the pulverizing mechanism comprises a pulverizing assembly, the pulverizing assembly comprises a pulverizing bin, a reduction motor is arranged on the top of the pulverizing bin, a main rod is arranged on the bottom of the reduction motor, the main rod is coaxially connected with the output shaft of the reduction motor, the main rod is located inside the pulverizing bin, a blade for chopping squid meat is coaxially connected to the main rod, the filtering mechanism comprises a filter plate arranged on the inner wall of the pulverizing bin, the toggle mechanism comprises a toggle assembly arranged at the bottom of the filter plate, the toggle assembly is coaxially connected with the main rod, and the energy storage mechanism comprises an energy storage assembly coaxially connected to the periphery of the toggle assembly;
[0012] The rotation of the main rod drives the blade to chop the squid meat, and the filter plate is used to filter the slurry in the minced squid meat. During the rotation of the main rod, the rotating main rod tightens the energy storage component to store energy. When the energy storage component reaches the maximum value of the stored energy, the main rod drives the energy storage component to rotate synchronously. When the squid meat is crushed, the energy storage component releases the stored elastic potential energy to drive the toggle component to rotate. The rotating toggle component shakes the bottom of the filter plate to speed up the slurry separation.
[0013] As a further improvement of the technical solution, the bottom of the main rod is rotatably connected to a limiting seat, and the outer wall of the limiting seat is fixedly connected to the inner wall of the crushing bin.
[0014] As a further improvement of the technical solution, a guide slope is provided at the top center of the filter plate, and the radius of the guide slope is greater than the radius of the toggle assembly.
[0015] As a further improvement of the present technical solution, the energy storage assembly includes an energy storage seat fixedly connected to the bottom of the filter plate, a coil spring is provided in the energy storage seat, the outer ring of the coil spring is tightly attached to the inner ring of the energy storage seat, the inner ring of the coil spring is fixedly connected to the outer wall of the main rod, the inner ring of the energy storage seat is provided with a plurality of slots, and the outer ring of the coil spring is fixedly connected with a clamping block.
[0016] As a further improvement of the present technical solution, the toggle assembly includes a toggle seat arranged on the periphery of the energy storage seat, the top of the toggle seat is fixedly connected to the bottom of the filter plate, the bottom of the toggle seat is provided with a plurality of protrusions and a plurality of recessed portions, the protrusions and recessed portions are arranged at intervals from each other, the toggle assembly also includes a conversion sleeve arranged on the periphery of the main rod, the outer wall of the conversion sleeve is fixedly connected with a plurality of toggle rods, a first spring is provided between the conversion sleeve and the limit seat, and the first spring is arranged on the periphery of the main rod.
[0017] As a further improvement of the technical solution, the outer wall of the filter plate is provided with a plurality of limit bolts, the inner wall of the crushing bin is provided with a plurality of adjustment grooves, each adjustment groove is provided with a guide rod, and the plurality of limit bolts are slidably connected to the guide rod, and a second spring is provided on both sides of the limit bolts on the periphery of the guide rod.
[0018] As a further improvement of the technical solution, a spline mechanism is provided between the inner wall of the conversion sleeve and the outer wall of the main rod.
[0019] Compared with the prior art, the present invention has the following beneficial effects:
[0020] 1. In the squid sticky powder preparation process, the blade is driven by the rotation of the main rod to chop the squid meat, and the filter plate is used to filter the slurry in the squid minced meat. During the rotation of the main rod, the rotating main rod tightens the energy storage component to store energy. When the energy storage component reaches the maximum value of the stored energy, the main rod drives the energy storage component to rotate synchronously. Specifically, the squid meat to be cut is added to the crushing bin, the power supply of the reduction motor is turned on, the reduction motor drives the main rod coaxially connected to its own output shaft to rotate, and the main rod drives the blade set on its outer wall to rotate to chop the squid meat added to the crushing bin. During the rotation of the main rod, the main rod tightens the coil spring fixedly connected to itself. After the main rod to be rotated tightens the coil spring to the maximum limit, the coil spring will follow the rotating main rod to rotate inside the energy storage seat, and the card block will jump between the various card slots on the inner wall of the energy storage seat, thereby stopping the energy storage of the coil spring. During the period when the main rod rotates forward to tighten the coil spring, relative sliding occurs between the main rod and the toggle assembly.
[0021] 2. In the squid powder preparation process, when the squid meat is crushed, the energy storage component releases the stored elastic potential energy to drive the toggle component to rotate, and the rotating toggle component shakes the bottom of the filter plate to accelerate the separation of the slurry. Specifically, when the squid meat is crushed, the power supply of the reduction motor is turned off, and the main rod rotation driving force is lost, and the coil spring will rotate and reset under the action of its own restoring force. During the process of the coil spring resetting and rotating, the coil spring drives the main rod to rotate. Due to the special spline mechanism design between the main rod and the conversion sleeve, the main rod will slide relative to the conversion sleeve during the forward rotation of the main rod in the conversion sleeve. When the main rod reverses in the conversion sleeve, the main rod will drive the conversion sleeve to rotate together. The rotating conversion sleeve drives each lever to rotate at the bottom of the toggle seat. The rotating lever jumps between the protrusion and the recessed part at the bottom of the toggle seat. During the rotation of the lever, the second spring between the conversion sleeve and the limit seat continuously undergoes a process of compression and resetting, thereby driving the filter plate to shake in the crushing bin, thereby accelerating the separation of slurry from the squid minced meat on the filter plate. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0023] Figure 2 It is a partially cut-away front view of the present invention;
[0024] Figure 3 It is a front view of the stirring assembly of the present invention;
[0025] Figure 4 A bottom view of the energy storage assembly and the toggle assembly of the present invention;
[0026] Figure 5 A bottom view of the energy storage assembly of the present invention;
[0027] Figure 6 It is a front view of the toggle assembly of the present invention;
[0028] Figure 7 For the present invention Figure 2 Enlarged view of point A in the middle.
[0029] The meaning of each number in the figure is:
[0030] 10. Crushing assembly; 11. Crushing chamber; 12. Speed reduction motor; 13. Main rod; 14. Blade; 15. Limit seat; 16. Filter plate; 17. Guide slope;
[0031] 20. Energy storage assembly; 21. Energy storage seat; 22. Coil spring; 23. Card slot; 24. Card block;
[0032] 30. actuating assembly; 31. actuating seat; 32. actuating rod; 33. protruding portion; 34. recessed portion; 35. first spring; 36. conversion sleeve;
[0033] 41. Limit bolt; 42. Adjustment groove; 43. Guide rod; 44. Second spring. Specific implementation mode
[0034] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in the present invention without making creative efforts shall fall within the protection scope of the present invention.
[0035] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.
[0036] In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present invention, "a plurality" means two or more unless otherwise specifically defined.
[0037] Embodiment
[0038] Please refer to Figures 1-7 As shown, the purpose of this embodiment is to provide a preparation process for squid sticky powder, including the following steps:
[0039] S1. Start the crushing mechanism, add the squid meat to be crushed into the interior of the crushing mechanism and cut it up.
[0040] S2. During the crushing of the squid meat, the slurry generated slowly separates from the squid minced meat under the action of gravity, and the squid minced meat is intercepted by the filtering mechanism.
[0041] S3. During the process of cutting up the squid meat by the crushing mechanism, the crushing mechanism continuously tightens the energy storage mechanism for energy storage.
[0042] S4, after the squid meat is crushed, the energy storage mechanism starts to release the stored energy after the energy storage is completed. In the process of releasing the elastic potential energy, the elastic potential energy released by the energy storage mechanism drives the toggle mechanism to intermittently knock the bottom of the filter mechanism, thereby accelerating the separation speed of the slurry from the squid meat;
[0043] The crushing mechanism includes a crushing assembly 10, the crushing assembly 10 includes a crushing bin 11, a reduction motor 12 is provided at the top of the crushing bin 11, a main rod 13 is provided at the bottom of the reduction motor 12, the main rod 13 is coaxially connected to the output shaft of the reduction motor 12, the main rod 13 is located inside the crushing bin 11, and a blade 14 for chopping squid meat is coaxially connected to the main rod 13, the filtering mechanism includes a filter plate 16 arranged on the inner wall of the crushing bin 11, the toggle mechanism includes a toggle assembly 30 arranged at the bottom of the filter plate 16, the toggle assembly 30 is coaxially connected to the main rod 13, and the energy storage mechanism includes an energy storage assembly 20 coaxially connected to the periphery of the toggle assembly 30;
[0044] The main rod 13 rotates to drive the blade 14 to chop the squid meat. After chopping, a viscous slurry will be produced in the fresh squid meat. The filter plate 16 is used to filter the slurry in the minced squid meat. During the rotation of the main rod 13, the rotating main rod 13 tightens the energy storage component 20 to store energy. When the energy storage component 20 reaches the maximum value of the stored energy, the main rod 13 drives the energy storage component 20 to rotate synchronously. When the squid meat is crushed, the energy storage component 20 releases the stored elastic potential energy to drive the toggle component 30 to rotate. The rotating toggle component 30 shakes the bottom of the filter plate 16 to speed up the slurry separation.
[0045] In order to collect the kinetic energy of rotation when the main rod 13 drives the blade 14 to rotate and crush the squid meat, after the squid meat is crushed, the filter plate 16 is shaken to speed up the separation of the slurry in the squid meat. However, the energy that can be stored by the energy storage mechanism is limited. If the maximum energy storage capacity of the energy storage mechanism is reached, continuing to store energy will exceed the limit of the energy storage mechanism and damage it. Therefore, an energy storage component 20 that can store energy and automatically stops after reaching the maximum energy storage limit is provided.
[0046] like Figure 4 and Figure 5 As shown, the specific structure of the energy storage assembly 20 is disclosed. The energy storage assembly 20 includes an energy storage seat 21 fixedly connected to the bottom of the filter plate 16. A coil spring 22 is provided in the energy storage seat 21. The outer ring of the coil spring 22 is in close contact with the inner ring of the energy storage seat 21. The inner ring of the coil spring 22 is fixedly connected to the outer wall of the main rod 13. The inner ring of the energy storage seat 21 is provided with a plurality of slots 23. The outer ring of the coil spring 22 is fixedly connected with a clamping block 24.
[0047] Furthermore, the squid meat to be cut is added into the crushing bin 11, and the power supply of the reduction motor 12 is turned on. The reduction motor 12 drives the main rod 13 coaxially connected to its own output shaft to rotate, and the main rod 13 drives the blade 14 arranged on its outer wall to rotate, so as to cut the squid meat added into the crushing bin 11. During the rotation of the main rod 13, the main rod 13 tightens the coil spring 22 fixedly connected to itself. After the main rod 13 to be rotated tightens the coil spring 22 to the maximum limit, the coil spring 22 will follow the rotating main rod 13 to rotate inside the energy storage seat 21, and the block 24 will jump between the various slots 23 on the inner wall of the energy storage seat 21, thereby stopping the energy storage of the coil spring 22. During the period when the main rod 13 rotates forward to tighten the coil spring 22, relative sliding occurs between the main rod 13 and the toggle assembly 30.
[0048] After all the squid meat to be added to the crushing bin 11 reaches the particle size requirement for preparing squid sticky powder. In order to speed up the separation of the slurry in the squid minced meat on the filter plate 16, a toggle assembly 30 is provided to drive the filter plate 16 to shake up and down on the inner wall of the crushing bin 11.
[0049] Figure 4 and Figure 6 The working state of the wave assembly is shown, and the specific mechanism of the toggle assembly 30 is disclosed below. The toggle assembly 30 includes a toggle seat 31 arranged on the periphery of the energy storage seat 21, the top of the toggle seat 31 is fixedly connected to the bottom of the filter plate 16, and the bottom of the toggle seat 31 is provided with a plurality of protrusions 33 and a plurality of recesses 34, and the protrusions 33 and the recesses 34 are arranged at intervals from each other. The toggle assembly 30 also includes a conversion sleeve 36 sleeved on the periphery of the main rod 13, and the outer wall of the conversion sleeve 36 is fixedly connected with a plurality of toggle rods 32. A first spring 35 is provided between the conversion sleeve 36 and the limit seat 15, and the first spring 35 is sleeved on the periphery of the main rod 13;
[0050] Further, after the squid meat is crushed, the power supply of the reduction motor 12 is turned off. Losing the driving force for the rotation of the main rod 13, the coil spring 22 will rotate and reset under the action of its own restoring force. During the reset rotation of the coil spring 22, the coil spring 22 drives the main rod 13 to rotate. Due to the special spline mechanism design between the main rod 13 and the conversion sleeve 36, when the main rod 13 rotates forward within the conversion sleeve 36, the main rod 13 will have relative sliding with the conversion sleeve 36. When the main rod 13 rotates backward within the conversion sleeve 36, the main rod 13 will drive the conversion sleeve 36 to rotate together. The rotating conversion sleeve 36 drives each shift lever 32 to rotate at the bottom of the shift seat 31. The rotating shift lever 32 bounces between the protruding part 33 and the concave part 34 at the bottom of the shift seat 31. During the rotation of the shift lever 32, the second spring 44 between the conversion sleeve 36 and the limit seat 15 continuously undergoes the processes of compression and reset, thereby driving the filter plate 16 to vibrate up and down within the crushing chamber 11. At the same time, the rotating main rod 13 drives the blade 14 to rotate together, and the rotating blade 14 stirs the squid minced meat on the filter plate 16, accelerating the speed of separating the slurry from the squid minced meat on the filter plate 16.
[0051] During the process of crushing squid meat, if the squid meat and the slurry enter the inside of the shifting assembly 30, it will increase the frictional resistance during the operation of the energy storage assembly 20 and the shifting assembly 30;
[0052] As Figure 2 shown, the bottom of the main rod 13 is rotatably connected to the limit seat 15, and the outer wall of the limit seat 15 is fixedly connected to the inner wall of the crushing chamber 11; a guiding slope 17 is provided at the center of the top of the filter plate 16, and the radius of the guiding slope 17 is greater than the radius of the shifting assembly 30.
[0053] The improvement lies in that: since the radius of the guiding slope 17 is greater than the radius of the shift seat 31, most of the slurry that falls through the filter plate 16 will only drip downward along the outer wall of the shift seat 31, and very little slurry can enter the inside of the shifting assembly 30.
[0054] When the shift lever 32 bounces between the protruding part 33 and the concave part 34 at the bottom of the shift seat 31, in order to enhance the shaking effect on the filter plate 16, therefore, the connection part between the filter plate 16 and the crushing chamber 11 is set as a slidable mechanism that can be adjusted up and down.
[0055] Figure 7 shows the connection part between the filter plate 16 and the crushing chamber 11. A plurality of limit bolts 41 are provided on the outer wall of the filter plate 16, a plurality of adjustment slots 42 are opened on the inner wall of the crushing chamber 11, a guide rod 43 is provided in each adjustment slot 42, and a plurality of limit bolts 41 are all slidably connected to the guide rod 43. Second springs 44 are provided on both sides of the limit bolts 41 around the periphery of the guide rod 43.
[0056] The improvement lies in that the limit bolt 41 on the filter plate 16 can slide up and down in the adjustment groove 42, which can more effectively receive and transmit vibration energy, making the jitter of the entire filter plate 16 more uniform and sufficient. At the same time, it can disperse the stress generated by vibration, reduce the stress concentration at the connection, extend the service life of the mechanism, and ensure the long-term stability of the jitter effect.
[0057] In order to enable the main rod 13 to slide relative to the conversion sleeve 36 during the forward rotation of the main rod 13 within the conversion sleeve 36, when the main rod 13 rotates in reverse within the conversion sleeve 36, the main rod 13 can drive the conversion sleeve 36 to rotate together.
[0058] Therefore, a spline mechanism is provided between the inner wall of the conversion sleeve 36 and the outer wall of the main rod 13.
[0059] The improvement lies in that when the main rod 13 rotates forward: the tooth shape and mating design of the spline result in a certain gap or special inclined plane shape between the spline teeth on the main rod 13 and the spline teeth on the conversion sleeve 36 in the forward rotation direction. This causes the applied torque to be insufficient to overcome the frictional force and inclined plane resistance during forward rotation, so that the main rod 13 can slide relative to the conversion sleeve 36. When the main rod 13 rotates in reverse: the shape and mating of the spline teeth are closely fitted and interlocked in the reverse rotation direction. At this time, the torque generated by reverse rotation can be effectively transmitted, enabling the main rod 13 to drive the conversion sleeve 36 to rotate synchronously together.
[0060] In summary, the working principle of this solution is as follows: First, start the reduction motor 12 to chop the squid meat to be crushed inside the crushing bin 11;
[0061] During the crushing of the squid meat, the generated slurry begins to slowly separate from the squid minced meat under the action of gravity, and the squid minced meat is intercepted by the filter plate 16;
[0062] During the process of the blade 14 chopping the squid meat, the crushing mechanism continuously stores energy for the energy storage mechanism, and the main rod 13 tightens the coil spring 22 fixedly connected to itself. After the main rod 13 to be rotated tightens the coil spring 22 to the maximum extent, the coil spring 22 will rotate inside the energy storage seat 21 following the rotating main rod 13, and at the same time, the locking block 24 will jump between the respective card slots 23 on the inner wall of the energy storage seat 21, thus stopping the energy storage of the coil spring 22. During the period when the main rod 13 rotates forward to tighten the coil spring 22, relative sliding occurs between the main rod 13 and the conversion sleeve 36;
[0063] After the squid meat is crushed, since the coil spring 22 loses the driving force of the rotation of the main rod 13, the energy stored in the coil spring 22 starts to be released. The coil spring 22 will rotate and reset under the action of its own restoring force. During the process of the coil spring 22 resetting and rotating, the coil spring 22 drives the main rod 13 to rotate. Due to the special spline mechanism design between the main rod 13 and the conversion sleeve 36, when the main rod 13 rotates forward in the conversion sleeve 36, the main rod 13 will slide relative to the conversion sleeve 36. When the main rod 13 rotates backward in the conversion sleeve 36, the main rod 13 will drive the conversion sleeve 36 to rotate together. The rotating conversion sleeve 36 drives each dial rod 32 to rotate at the bottom of the dialing seat 31. The rotating dial rod 32 bounces between the protruding part 33 and the concave part 34 at the bottom of the dialing seat 31. During the rotation of the dial rod 32, the second spring 44 between the conversion sleeve 36 and the limit seat 15 continuously experiences the processes of compression and reset, thereby driving the filter plate 16 to vibrate up and down in the crushing chamber 11. At the same time, the rotating main rod 13 drives the blade 14 to rotate together. The rotating blade 14 stirs the squid minced meat on the filter plate 16, accelerating the speed of separating the slurry from the squid minced meat on the filter plate 16.
[0064] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A process for preparing squid sticky powder, characterized in that: The steps include: S1, start the crushing mechanism, add the squid meat to be crushed into the crushing mechanism and chop it; S2. During the squid meat pulverization process, the generated slurry is slowly separated from the squid meat under the action of gravity, and the squid meat is intercepted by the filtering mechanism; S3, in the process of the crushing mechanism chopping the squid meat, the crushing mechanism continuously tightens the energy storage mechanism to store energy; S4, after the squid meat is crushed, the energy storage mechanism starts to release the stored energy after the energy storage is completed. In the process of releasing the elastic potential energy, the elastic potential energy released by the energy storage mechanism drives the toggle mechanism to intermittently knock the bottom of the filter mechanism, thereby accelerating the separation speed of the slurry from the squid meat; The pulverizing mechanism comprises a pulverizing assembly (10), the pulverizing assembly (10) comprises a pulverizing bin (11), a reduction motor (12) is arranged at the top of the pulverizing bin (11), a main rod (13) is arranged at the bottom of the reduction motor (12), the main rod (13) is coaxially connected to the output shaft of the reduction motor (12), the main rod (13) is located inside the pulverizing bin (11), a blade (14) for shredding squid meat is coaxially connected to the main rod (13), the filtering mechanism comprises a filter plate (16) arranged on the inner wall of the pulverizing bin (11), the toggle mechanism comprises a toggle assembly (30) arranged at the bottom of the filter plate (16), the toggle assembly (30) is coaxially connected to the main rod (13), and the energy storage mechanism comprises an energy storage assembly (20) coaxially connected to the periphery of the toggle assembly (30); The main rod (13) rotates to drive the blade (14) to chop the squid meat, and the filter plate (16) is used to filter the slurry in the minced squid meat. During the rotation of the main rod (13), the rotating main rod (13) tightens the energy storage component (20) to store energy. When the energy storage component (20) reaches the maximum value of the stored energy, the main rod (13) drives the energy storage component (20) to rotate synchronously. When the squid meat is crushed, the energy storage component (20) releases the stored elastic potential energy to drive the toggle component (30) to rotate. The rotating toggle component (30) shakes the bottom of the filter plate (16) to accelerate the separation of the slurry.
2. The squid sticky powder preparation process according to claim 1, characterized in that: The bottom of the main rod (13) is rotatably connected to a limiting seat (15), and the outer wall of the limiting seat (15) is fixedly connected to the inner wall of the crushing bin (11).
3. The squid sticky powder preparation process according to claim 1, characterized in that: A guide slope (17) is provided at the top center of the filter plate (16), and the radius of the guide slope (17) is greater than the radius of the toggle assembly (30).
4. The squid sticky powder preparation process according to claim 1, characterized in that: The energy storage assembly (20) comprises an energy storage seat (21) fixedly connected to the bottom of the filter plate (16); a coil spring (22) is arranged inside the energy storage seat (21); the outer ring of the coil spring (22) is tightly attached to the inner ring of the energy storage seat (21); the inner ring of the coil spring (22) is fixedly connected to the outer wall of the main rod (13); the inner ring of the energy storage seat (21) is provided with a plurality of slots (23); and the outer ring of the coil spring (22) is fixedly connected to a clamping block (24).
5. The squid sticky powder preparation process according to claim 4, characterized in that: The toggle assembly (30) comprises a toggle seat (31) arranged on the periphery of the energy storage seat (21), the top of the toggle seat (31) is fixedly connected to the bottom of the filter plate (16), the bottom of the toggle seat (31) is provided with a plurality of protrusions (33) and a plurality of recesses (34), the protrusions (33) and the recesses (34) are arranged at intervals from each other, the toggle assembly (30) further comprises a conversion sleeve (36) sleeved on the periphery of the main rod (13), the outer wall of the conversion sleeve (36) is fixedly connected to a plurality of toggle rods (32), a first spring (35) is provided between the conversion sleeve (36) and the limit seat (15), the first spring (35) is sleeved on the periphery of the main rod (13).
6. The squid sticky powder preparation process according to claim 1, characterized in that: The outer wall of the filter plate (16) is provided with a plurality of stop bolts (41), the inner wall of the crushing bin (11) is provided with a plurality of adjustment slots (42), each adjustment slot (42) is provided with a guide rod (43), the plurality of stop bolts (41) are slidably connected to the guide rod (43), and the outer periphery of the guide rod (43) is provided with a second spring (44) on both sides of the stop bolt (41).
7. The process for preparing squid sticky powder according to claim 5, characterized in that: A spline mechanism is provided between the inner wall of the conversion sleeve (36) and the outer wall of the main rod (13).