Squid processing technology

Through the cooperation of the multi-directional cutting mechanism and the conveying mechanism, the problem of uneven cut incision during squid cutting is solved, and the flatness and quality stability of squid blocks are achieved.

CN120052401BActive Publication Date: 2025-08-22WEIHAI SEARENO FOODS CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202510456756.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-12
Publication Date
2025-08-22
Estimated Expiration
2045-04-12

AI Technical Summary

Technical Problem

During the cutting process, squid is prone to bounce due to its slippery and elasticity, resulting in uneven cuts, affecting its beauty and quality.

Method used

The multi-directional cutting mechanism and conveying mechanism are used to achieve multiple lateral cutting and extrusion of squid through the guide channel and conveyor belt assembly, and the size separation is performed in combination with the screening assembly to ensure the flatness of the cut.

Benefits of technology

The incisions are flat and stable during squid cutting, and the aesthetics and quality consistency of squid blocks are improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120052401B_ABST
    Figure CN120052401B_ABST
Patent Text Reader

Abstract

The present invention relates to the field of squid processing technology, and more specifically, to a squid processing process. The process comprises the following steps: Step 1: introducing the squid through the feed port of a guide channel onto a conveying mechanism, wherein the conveying mechanism conveys the squid through the guide channel, and a multi-directional cutting mechanism performs two lateral cuts on the squid in the middle of the guide channel and at the discharge end, thereby forming strips of squid. In the present invention, the squid passes between reciprocating lateral cutting blades, and as it moves forward, it contacts the outer walls of the lateral cutting blades, squid squeezes the outer walls of the cutting blades, thereby clinging to the outer walls of the cutting blades. This prevents the squid from separating from the blades due to its own elasticity, and ensures that the cuts of the squid are more closely aligned with the outer walls of the cutting blades during the slicing process. After the squid has been cut by two laterally opposed cutting blades, the squid strips are cut more smoothly, ensuring the quality and aesthetics of the squid cutting.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of squid processing, in particular to a squid processing technology. Background Art

[0002] In modern squid processing, since squid processing includes both simple freezing processing and deep processing, squid shreds, squid rings, grilled squid strips, smoked squid, squid balls, canned squid, etc. are common processed products. During these processing processes, they generally need to go through the most basic cutting process.

[0003] Because squid is slippery and elastic, it is generally necessary to guide the squid through a narrow channel during cutting, and then use a flush lifting tool to cut the squid. When this downward moving tool cuts the squid, due to the squid's own elasticity, the squid pieces are prone to bounce and fall off the knife during cutting, which can easily cause the squid to deform, resulting in an uneven cut. After multiple cutting processes, this unevenness will be further aggravated, resulting in different sizes and shapes of cuts in the same batch of squid, affecting the appearance and quality of the squid pieces. Summary of the Invention

[0004] The object of the present invention is to provide a squid processing technology to solve the problems raised in the above background technology.

[0005] To achieve the above-mentioned object, a squid processing process is provided, which is used in the cutting process of the squid processing process. The cutting device includes a guide channel and a conveying mechanism installed below the guide channel. The guide channel is provided with a multi-directional cutting mechanism for cutting the guide channel to guide the squid. The rotating shafts of the conveying mechanism and the multi-directional cutting mechanism are both connected to a driving mechanism. It is characterized in that it also includes a re-cutting mechanism, a conveyor belt assembly and a screening assembly. Based on the guide channel, the conveying mechanism, the multi-directional cutting mechanism, the re-cutting mechanism and the screening assembly, the following process steps are performed:

[0006] Step 1: The squid is introduced into the conveying mechanism through the feed port of the guide channel. The conveying mechanism conveys the squid through the guide channel, and the multi-directional cutting mechanism completes two lateral cuts on the squid in the middle of the guide channel and at the discharge end to form strip-shaped squid pieces;

[0007] Step 2: The cut squid strips enter the top of the conveyor belt assembly, and the conveyor belt assembly is used to convey the squid strips forward. During the forward movement, the squid strips are cut into pieces multiple times by the multiple cutting mechanism, and the squid strips are cut into squid pieces. The squid pieces fall onto the screening assembly through the other end of the conveyor belt assembly;

[0008] Step 3: The squid pieces fall onto the screening component, which then screens the squid pieces and separates the squid pieces of similar size.

[0009] Among them, the multi-directional cutting mechanism forms two lateral cutting points that move back and forth in opposite directions in the middle of the guide channel and the discharge end. It can guide and squeeze the squid sideways while cutting it, preventing the squid from being unable to stick to the cutting part and deforming during cutting, making the incision smoother and the squid more stable during the cutting process.

[0010] As a further improvement of the present technical solution, the guide channel is a conical channel, and a window is provided on the middle top wall of the guide channel, the multi-directional cutting mechanism is arranged on the upper side of the guide channel, the multi-directional cutting mechanism includes a driving motor, an eccentric wheel, a pushing assembly, a cutting assembly and a spraying assembly, the driving motor is fixedly arranged above the guide channel through a base, and the output end of the driving motor passes through the base and is vertically downward, the eccentric wheel is arranged on the output end of the driving motor passing through the base, the spraying assembly is arranged at the edge of the base of the driving motor, and the eccentric wheel acts on the spraying assembly, so that the rotation of the eccentric wheel can drive the spraying assembly to rotate cyclically to form a cyclic spraying, the pushing assembly is arranged on the inner side of the guide channel, and the eccentric wheel acts on the pushing assembly, the cutting assembly is arranged in parallel with two groups, and both are rotatably installed between the two side walls of the guide channel, the two groups of cutting assemblies are connected to the driving mechanism, and the two groups of cutting assemblies are respectively located at the output end and the top wall window of the guide channel:

[0011] Among them, the cutting assembly includes a linkage shaft, a movable sleeve shaft and a lateral cutting blade. The linkage shaft is horizontally rotatably installed between the two side walls of the guide channel, and the linkage shaft is connected to the driving mechanism. The movable sleeve shaft is arranged on the outside of the linkage shaft, and a limiting strip is provided at the connection between the movable sleeve shaft and the linkage shaft. The pushing assembly acts on the edge of the movable sleeve shaft so that the movable sleeve shaft can slide back and forth along the outside of the linkage shaft. The lateral cutting blades are arranged in parallel in a group on the outside of the movable sleeve shaft.

[0012] As a further improvement of the present technical solution, the pushing assembly includes a limit seat, a circulating movable frame and an extrusion frame. The two limit seats are a group of mirror-symmetrically arranged on the two side walls of the guide channel. The two ends of the circulating movable frame are respectively slidably installed on the inner sides of the two limit seats. A through groove is provided on the circulating movable frame, and a protrusion passing through the through groove is provided on the eccentric wheel, so that the rotation of the eccentric wheel can drive the circulating movable frame to slide back and forth between the two limit seats. One end of the extrusion frame is fixedly connected to the circulating movable frame, and the other end acts on the movable sleeve shaft, so that the movable sleeve shaft can slide back and forth along the outer side of the linkage shaft.

[0013] As a further improvement of the present technical solution, the movable sleeve shaft includes a sleeve shaft sleeved on the outside of the linkage rotating shaft and an outer ring arranged at the edge of the sleeve shaft, and the outer wall of the outer ring is provided with a concave, and the end of the extrusion frame fits into the concave of the outer ring of the movable sleeve shaft, so that when the extrusion frame moves left and right, it will squeeze the concave of the outer ring, thereby squeezing the movable sleeve shaft to move back and forth outside the linkage rotating shaft.

[0014] As a further improvement of the present technical solution, the spray assembly is located on the upper side of the multi-directional cutting mechanism, and the spray assembly includes a rotating spray barrel, a torsion spring and an extrusion ring. A convex column is provided at the edge of the eccentric wheel. The rotating spray barrel is vertically mounted on the edge of the drive motor base, and the rotating spray barrel is connected to a water pipe outside the rotating spray barrel. The torsion spring is provided at the connection between the rotating spray barrel and the drive motor base. The extrusion ring is sleeved on the outer wall of the rotating spray barrel. The extrusion ring and the convex column on the edge of the eccentric wheel are on the same horizontal plane, and when the eccentric wheel rotates, the convex column will squeeze the extrusion ring to rotate.

[0015] As a further improvement of the present technical solution, the conveyor belt assembly is arranged on one side of the output end of the guide channel, and the conveyor belt assembly is connected to the output end of the guide channel, the re-cutting mechanism is arranged above the conveyor belt assembly, and the re-cutting mechanism includes a mounting top seat, an electric push rod and a vertical cutting assembly, the mounting top seat is arranged above the conveyor belt assembly, the electric push rod is vertically downwardly arranged on the mounting top seat, and the vertical cutting assembly is arranged on the output end of the electric push rod, wherein:

[0016] The re-cutting mechanism is arranged in multiple groups in parallel on the conveyor belt assembly.

[0017] As a further improvement of the present technical solution, the vertical cutting assembly includes a guide frame, a lifting knife and a bottom pad frame. The guide frame is arranged at the connection between the mounting top seat and both sides of the conveyor belt assembly. The two ends of the lifting knife are respectively slidably mounted in the guide frame, and the lifting knife is connected to the output end of the electric push rod. The bottom pad frame is arranged between the guide frames, and the bottom pad frame is in contact with the top surface of the conveyor belt assembly, wherein:

[0018] The top surface of the bottom pad frame is an arc surface, and a groove corresponding to the lifting knife is opened on the top surface of the bottom pad frame.

[0019] As a further improvement of the present technical solution, the screening assembly is arranged at one end of the conveyor belt assembly away from the guide channel, the screening assembly includes a shielding seat, a screening plate and a vibration motor, the shielding seat is arranged at one end of the conveyor belt assembly away from the guide channel, and the edges on both sides of the shielding seat are in contact with the edges on both sides of the conveyor belt assembly, the screening plate is arranged obliquely on the inner side of the shielding seat, and the vibration motor is arranged on the outer wall of the shielding seat, and the vibration generated by the vibration motor drives the screening plate to vibrate, wherein:

[0020] The screening plate is provided with a plurality of screening slots distributed along the inclined surface, and the widths of the plurality of screening slots gradually increase from the side close to the conveyor belt assembly.

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

[0022] In the squid processing technology, the squid is allowed to pass between the reciprocating lateral cutting blades. During the forward movement of the squid, the squid contacts the outer wall of the lateral cutting blade, and the squid will form an extrusion on the outer wall of the cutting blade, thereby clinging to the outer wall of the cutting blade, thereby preventing the squid from coming off the knife due to its own elasticity. When the squid is cut into strips, the cut will fit the outer wall of the cutting blade more closely. After the cutting process of the two lateral opposite cutting blades, the cut pieces of the squid strips are more flat, thereby ensuring the quality and aesthetics of the squid cutting. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0024] Figure 2 A side view of the overall structure of the present invention from another perspective;

[0025] Figure 3 Schematic diagram of the internal structure distribution after the side walls of the guide channel and the conveyor belt assembly are removed in the present invention;

[0026] Figure 4 Schematic diagram of the structural distribution of the guide channel, multi-directional cutting mechanism, multiple cutting mechanism and conveyor belt assembly in the present invention;

[0027] Figure 5 Schematic diagram of the structural distribution of the guide channel, conveying mechanism, multi-directional cutting mechanism and driving mechanism in the present invention;

[0028] Figure 6 This is a schematic diagram of the disassembly of the structure of the multi-directional cutting mechanism of the present invention;

[0029] Figure 7 This is a schematic diagram of the disassembly of the multi-directional cutting mechanism structure from another perspective of the present invention;

[0030] Figure 8 for Figure 7 A magnified view of the structure at point A.

[0031] In the figure: 1. Guide channel; 2. Conveying mechanism; 3. Multi-directional cutting mechanism; 301. Driving motor; 302. Eccentric wheel; 303. Linked rotating shaft; 304. Movable sleeve shaft; 305. Lateral cutting blade; 306. Limiting seat; 307. Circulating movable frame; 308. Extrusion frame; 4. Driving mechanism; 5. Re-cutting mechanism; 501. Mounting top seat; 502. Electric push rod; 503. Guide frame; 504. Lifting knife; 505. Bottom pad frame; 6. Conveyor belt assembly; 7. Screening assembly; 701. Shielding seat; 702. Screening plate; 703. Vibrating motor; 8. Spraying assembly; 801. Rotating spray barrel; 802. Torsion spring; 803. Extrusion ring. DETAILED DESCRIPTION

[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0033] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise" and the like to indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are 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 understood as limiting the present invention.

[0034] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature identified as "first" or "second" may explicitly or implicitly include one or more of the features. In the description of the present invention, "plurality" means two or more, unless otherwise specifically defined.

[0035] Because squid is slippery and elastic, it is generally necessary to guide the squid through a narrow channel during cutting, and then use a flush lifting tool to cut the squid. When the downward moving tool cuts the squid, due to the squid's own elasticity, the squid pieces are prone to bounce and leave the knife during cutting, which easily causes the squid to deform, resulting in uneven incisions. After multiple cutting processes, this unevenness will be further aggravated, resulting in different sizes and shapes of cuts in the same batch of squid, affecting the appearance and quality of the squid pieces. Therefore, the present invention provides a squid processing technology.

[0036] See also Figure 1-8 As shown, the squid processing technology is used in the process of cutting squid. The squid is cut in the middle and at the exit of the guide channel 1. A conveying mechanism 2 is provided below the guide channel 1 for conveying the squid along the inlet of the guide channel 1 toward the exit. A multi-directional cutting mechanism 3 is provided above the middle and exit of the guide channel 1. The multi-directional cutting mechanism 3 is used to perform reciprocating lateral cutting on the squid passing through the guide channel 1. A driving mechanism 4 is provided outside the guide channel 1, and the conveying mechanism 2 and the multi-directional cutting mechanism 3 are both connected to the driving mechanism 4. A conveyor belt assembly 6 is provided on one side of the exit of the guide channel 1. A re-cutting mechanism 5 is provided above the conveyor belt assembly 6, and can re-cut the squid strips cut by the multi-directional cutting mechanism 3. A screening assembly 7 is provided on the side of the conveyor belt assembly 6 away from the guide channel 1, and can screen the squid pieces re-cut by the re-cutting mechanism 5 according to size.

[0037] The specific process steps are as follows:

[0038] Step 1: The squid is introduced into the conveying mechanism 2 through the feed port of the guide channel 1. The conveying mechanism 2 conveys the squid through the guide channel 1, and the multi-directional cutting mechanism 3 completes two lateral cuts on the squid in the middle of the guide channel 1 and at the discharge end to form squid strips;

[0039] Step 2: The cut squid strips enter the conveyor belt assembly 6, which is used to convey the squid strips forward. During the forward movement, the squid strips are cut into pieces by the multiple cutting mechanism 5, and the squid strips are cut into squid pieces. The squid pieces fall onto the screening assembly 7 through the other end of the conveyor belt assembly 6;

[0040] Step 3: The squid pieces fall onto the screening component 7, and the screening component 7 is used to screen the squid pieces, and squid pieces of different sizes are screened out respectively;

[0041] Among them, the multi-directional cutting mechanism 3 forms two lateral cutting points that move back and forth in opposite directions in the middle of the guide channel 1 and the discharge end, which can guide and squeeze the squid sideways while cutting it, preventing the squid from being unable to stick to the cutting part and deforming during cutting, making the incision smoother and the squid more stable during the cutting process.

[0042] Example 1

[0043] like Figure 1-8 As shown, the guide channel 1 is a tapered channel (such as Figure 5 As shown, both sides and the top wall of the guide channel 1 are inclined to form a tapered channel with a large inlet and a small outlet, which can squeeze the squid passing through so that the squid is in a flat state when cut), and a window is provided on the middle top wall of the guide channel 1. The multi-directional cutting mechanism 3 is arranged on the upper side of the guide channel 1. The multi-directional cutting mechanism 3 includes a driving motor 301, an eccentric wheel 302, a pushing assembly, a cutting assembly and a spraying assembly 8. The driving motor 301 is fixed above the guide channel 1 through a base, and the output end of the driving motor 301 passes through the base and is vertically downward. The eccentric wheel 302 is arranged on the upper side of the guide channel 1. The driving motor 301 passes through the output end of the base, the spraying assembly 8 is arranged at the edge of the base of the driving motor 301, and the eccentric wheel 302 acts on the spraying assembly 8, so that the rotation of the eccentric wheel 302 can drive the spraying assembly 8 to rotate cyclically, forming a cyclic spraying. The pushing assembly is arranged inside the guide channel 1, and the eccentric wheel 302 acts on the pushing assembly. Two groups of cutting assemblies are arranged in parallel and are rotatably installed between the two side walls of the guide channel 1. The two groups of cutting assemblies are both connected to the driving mechanism 4. The two groups of cutting assemblies are respectively located at the output end of the guide channel 1 and in the top wall window;

[0044] Among them, the cutting component includes a linkage shaft 303, a movable sleeve shaft 304 and a lateral cutting blade 305. The linkage shaft 303 is horizontally rotatably installed between the two side walls of the guide channel 1, and the linkage shaft 303 is connected to the driving mechanism 4. The movable sleeve shaft 304 is sleeved on the outside of the linkage shaft 303, and a limiting bar is set at the connection between the movable sleeve shaft 304 and the linkage shaft 303. The pushing component acts on the edge of the movable sleeve shaft 304, so that the movable sleeve shaft 304 can slide back and forth along the outside of the linkage shaft 303. Multiple lateral cutting blades 305 are arranged in parallel on the outside of the movable sleeve shaft 304 in a group.

[0045] Furthermore, the pushing component includes a limit seat 306, a circulating movable frame 307 and an extrusion frame 308. The limit seats 306 are mirror-symmetrically arranged on the two side walls of the guide channel 1 in a group. The two ends of the circulating movable frame 307 are respectively slidably mounted on the inner sides of the two limit seats 306. A through groove is provided on the circulating movable frame 307, and a convex column passing through the through groove is provided on the eccentric wheel 302, so that the rotation of the eccentric wheel 302 can drive the circulating movable frame 307 to slide back and forth between the two limit seats 306. One end of the extrusion frame 308 is fixedly connected to the circulating movable frame 307, and the other end acts on the movable sleeve shaft 304, so that the movable sleeve shaft 3 04 can slide back and forth along the outer side of the linkage shaft 303. When the linkage shaft 303 and the movable sleeve shaft 304 rotate, the lateral cutting blade 305 rotates synchronously with the movable sleeve shaft 304, and can cut the squid passing through the bottom of the lateral cutting blade 305. At this time, the movable sleeve shaft 304 is pushed by the pushing component to slide back and forth along the outer side of the linkage shaft 303, so that the lateral cutting blade 305 forms a reciprocating left and right translation. When the lateral cutting blade 305 moves left and right, the squid contacts the outer wall of the lateral cutting blade during the forward movement. The squid will form an extrusion on the outer wall of the cutting blade, thereby clinging to the outer wall of the cutting blade, so that the incision will be smoother during the cutting process.

[0046] Furthermore, the movable sleeve shaft 304 includes a sleeve shaft sleeved on the outside of the linkage rotating shaft 303 and an outer ring arranged at the edge of the sleeve shaft, and the outer wall of the outer ring is provided with a concave, and the end of the extrusion frame 308 fits into the concave of the outer ring of the movable sleeve shaft 304, so that when the extrusion frame 308 moves left and right, it will squeeze the concave of the outer ring, thereby squeezing the movable sleeve shaft 304 to move back and forth outside the linkage rotating shaft 303.

[0047] Furthermore, the spray assembly is located on the upper side of the multi-directional cutting mechanism 3. The spray assembly 8 includes a rotating spray barrel 801, a torsion spring 802 and an extrusion ring 803. A convex column is provided at the edge of the eccentric wheel 302. The rotating spray barrel 801 is vertically mounted on the edge of the base of the drive motor 301, and the rotating spray barrel 801 is connected to a water pipe. The torsion spring 802 is provided at the connection between the rotating spray barrel 801 and the base of the drive motor 301. The extrusion ring 803 is sleeved on the outer wall of the rotating spray barrel 801. The extrusion ring 803 and the convex column on the edge of the eccentric wheel 302 are on the same horizontal plane, and when the eccentric wheel 302 rotates, the convex column will squeeze As the squeezing ring 803 rotates, the eccentric wheel 302 can squeeze the squeezing ring 803 through the edge boss when rotating, causing the rotating spray barrel 801 to rotate and squeeze the torsion spring 802. When the boss passes over the squeezing ring 803, the rotating spray barrel 801 rotates under the torsion of the torsion spring 802. The reciprocating squeezing of the edge boss of the eccentric wheel 302 and the reverse torsion of the torsion spring 802 keep the rotating spray barrel 801 in a reciprocating rotation state. The rotating spray barrel 801 is used to spray water to the multi-directional cutting mechanism 3 downward in a reciprocating manner, thereby flushing and keeping the multi-directional cutting mechanism 3 clean.

[0048] In this embodiment, when in use, the squid is introduced from the entrance of the guide channel 1. With the help of the conveying mechanism 2, the squid will pass through the guide channel 1 and be guided out from the outlet. At this time, under the drive of the driving mechanism 4, the linkage shaft 303 and the movable sleeve shaft 304 rotate, driving the multiple lateral cutting blades 305 to rotate. When the squid passes through the middle window and the outlet of the guide channel 1, the lateral cutting blades 305 will cut the squid. At the same time, the driving motor 301 is started to drive the eccentric wheel 302 to rotate. At this time, the eccentric wheel 302 will drive the circulating movable frame 307 to form a reciprocating movement between the two limit seats 306, and the circulating movable frame 307 will move back and forth between the two limit seats 306. The movement of the movable frame 307 will drive the extrusion frame 308 to squeeze the inner concave part of the outer ring of the movable sleeve shaft 304, thereby squeezing the movable sleeve shaft 304 to move back and forth outside the linkage rotating shaft 303, so that the lateral cutting blade 305 also forms a reciprocating left and right translation. When the lateral cutting blade 305 moves left and right, the squid contacts the outer wall of the lateral cutting blade during the forward movement. The squid will form an extrusion on the outer wall of the cutting blade, thereby clinging to the outer wall of the cutting blade, completing the cutting of the squid, and at the same time the incision will be smoother. After the stripping is completed, it is conveyed to the re-cutting mechanism 5 through the conveyor belt assembly 6 to complete the re-cutting, and finally falls into the screening assembly 7 to complete the screening.

[0049] Example 2

[0050] like Figure 1-8As shown, this embodiment is basically the same as the first embodiment. Preferably, in order to be able to cut the squid into strips or pieces as needed and screen them by size, a conveyor belt assembly 6 is provided here on one side of the output end of the guide channel 1, and the conveyor belt assembly 6 is connected to the output end of the guide channel 1, and the re-cutting mechanism 5 is provided above the conveyor belt assembly 6. The re-cutting mechanism 5 includes a mounting top seat 501, an electric push rod 502 and a vertical cutting assembly. The mounting top seat 501 is provided above the conveyor belt assembly 6, and the electric push rod 502 is vertically downwardly provided on the mounting top seat 501. The vertical cutting assembly is provided on the output end of the electric push rod 502, wherein:

[0051] Multiple groups of re-cutting mechanisms 5 are arranged in parallel on the conveyor belt assembly 6.

[0052] The vertical cutting assembly includes a guide frame 503, a lifting knife 504 and a bottom pad frame 505. The guide frame 503 is set at the connection between the mounting top seat 501 and the two sides of the conveyor belt assembly 6. The two ends of the lifting knife 504 are slidably installed in the guide frame 503, and the lifting knife 504 is connected to the output end of the electric push rod 502. The bottom pad frame 505 is set between the guide frames 503 and the bottom pad frame 505 is in contact with the top surface of the conveyor belt assembly 6.

[0053] The top surface of the bottom pad frame 505 is an arc surface, and a groove corresponding to the lifting knife 504 is opened on the top surface of the bottom pad frame 505. The width of the bottom pad frame 505 is short, and the squid transported by the conveyor belt assembly 6 will not stop when passing through. When the squid is transported by the conveyor belt assembly 6 and slides onto the bottom pad frame 505, the lifting knife 504 cuts the squid vertically under the push of the electric push rod 502.

[0054] The screening assembly 7 is arranged at one end of the conveyor belt assembly 6 away from the guide channel 1. The screening assembly 7 includes a shielding seat 701, a screening plate 702 and a vibration motor 703. The shielding seat 701 is arranged at one end of the conveyor belt assembly 6 away from the guide channel 1, and the edges of both sides of the shielding seat 701 are in contact with the edges of both sides of the conveyor belt assembly 6. The screening plate 702 is tilted and arranged on the inner side of the shielding seat 701. The vibration motor 703 is arranged on the outer wall of the shielding seat 701. The vibration generated by the vibration motor 703 drives the screening plate 702 to vibrate, wherein:

[0055] The screening plate 702 is provided with multiple groups of screening slots distributed along the slope, and the width of the multiple groups of screening slots gradually increases from the side close to the conveyor belt assembly 6, so that the cut squid pieces can gradually fall from small to large when passing through the screening plate 702, forming a collection of squid pieces by size.

[0056] In this embodiment, when squid strips are needed, the re-cutting mechanism 5 is not started, and the squid strips are directly conveyed to the screening assembly 7 through the conveyor belt assembly 6 to complete screening. When squid blocks are needed, the re-cutting mechanism 5 can be started to perform repeated vertical cutting on the squid strips to complete the cutting. The squid blocks are conveyed by the conveyor belt assembly 6 to the screening assembly 7 to complete screening. When the squid strips or squid blocks are conveyed to the screening assembly 7, the vibration motor 703 is started to drive the shielding seat 701 and the screening plate 702 to vibrate. The squid strips or squid blocks are screened on the screening plate 702 through the screening slots from small to large and will be screened according to size.

[0057] 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 to the above embodiments. The above embodiments and descriptions are merely preferred examples of the present invention and are not intended to limit the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. A squid processing process, which is used in the process of cutting squid, wherein the cutting device comprises a guide channel (1) and a conveying mechanism (2) installed below the guide channel (1), wherein the guide channel (1) is provided with a multi-directional cutting mechanism (3) for cutting the guide channel (1) to guide the squid out, and the rotating shafts of the conveying mechanism (2) and the multi-directional cutting mechanism (3) are both connected to a driving mechanism (4), characterized in that: The invention also includes a re-cutting mechanism (5), a conveyor belt assembly (6) and a screening assembly (7), wherein the conveyor belt assembly (6) is arranged on one side of the exit of the guide channel (1), the re-cutting mechanism (5) is arranged above the conveyor belt assembly (6), and the screening assembly (7) is arranged on the side of the conveyor belt assembly (6) away from the guide channel (1). Based on the guide channel (1), the conveying mechanism (2), the multi-directional cutting mechanism (3), the re-cutting mechanism (5) and the screening assembly (7), the following process steps are performed: Step 1: The squid is introduced into the conveying mechanism (2) through the feed port of the guide channel (1); the conveying mechanism (2) conveys the squid through the guide channel (1); and the multi-directional cutting mechanism (3) performs two lateral cuts on the squid at the middle of the guide channel (1) and at the discharge end, thereby forming strip-shaped squid pieces; Step 2: The squid strips that have been cut enter the top of the conveyor belt assembly (6), and the conveyor belt assembly (6) is used to convey the squid strips forward. During the forward movement, the squid strips are cut into pieces multiple times by the re-cutting mechanism (5), so that the squid strips are cut into squid pieces. The squid pieces fall onto the screening assembly (7) through the other end of the conveyor belt assembly (6); Step 3: The squid pieces fall onto the screening component (7), and the screening component (7) is used to screen the squid pieces, and squid pieces of similar size are screened out respectively; The multi-directional cutting mechanism (3) forms two lateral cutting parts that move back and forth in opposite directions at the middle of the guide channel (1) and at the discharge end, which can guide and squeeze the squid sideways while cutting it, thus preventing the squid from being unable to adhere closely to the cutting part and being deformed during cutting. The guide channel (1) is a tapered channel, and a window is provided on the middle top wall of the guide channel (1). The multi-directional cutting mechanism (3) is arranged on the upper side of the guide channel (1). The multi-directional cutting mechanism (3) comprises a driving motor (301), an eccentric wheel (302), a pushing assembly, a cutting assembly and a spraying assembly (8). The driving motor (301) is fixedly arranged above the guide channel (1) through a base, and the output end of the driving motor (301) passes through the base and is vertically downward. The eccentric wheel (302) is arranged on the output end of the driving motor (301) passing through the base. The spraying assembly (8) The component (8) is arranged at the edge of the base of the driving motor (301), and the eccentric wheel (302) acts on the spraying component (8), so that the rotation of the eccentric wheel (302) can drive the spraying component (8) to rotate cyclically, forming a cyclic spraying. The pushing component is arranged inside the guide channel (1), and the eccentric wheel (302) acts on the pushing component. The cutting components are arranged in two groups in parallel and are both rotatably installed between the two side walls of the guide channel (1). The two groups of cutting components are connected to the driving mechanism (4). The two groups of cutting components are respectively located at the output end of the guide channel (1) and in the top wall window: The cutting assembly comprises a linkage shaft (303), a movable sleeve shaft (304) and a lateral cutting blade (305); the linkage shaft (303) is rotatably mounted between the two side walls of the guide channel (1) in the horizontal direction, and the linkage shaft (303) is connected to the driving mechanism (4); the movable sleeve shaft (304) is sleeved on the outside of the linkage shaft (303), and a limit bar is provided at the connection between the movable sleeve shaft (304) and the linkage shaft (303); the pushing assembly acts on the edge of the movable sleeve shaft (304), so that the movable sleeve shaft (304) can slide back and forth along the outside of the linkage shaft (303); and a plurality of lateral cutting blades (305) are arranged in parallel on the outside of the movable sleeve shaft (304) in a group.

2. The squid processing technology according to claim 1, characterized in that: The pushing assembly comprises a limiting seat (306), a circulating movable frame (307) and an extrusion frame (308), wherein two limiting seats (306) are arranged in a mirror-symmetrical manner on both side walls of the guide channel (1), and both ends of the circulating movable frame (307) are respectively slidably mounted on the inner sides of the two limiting seats (306). A through groove is provided on the circulating movable frame (307), and a protrusion passing through the through groove is provided on the eccentric rotating wheel (302), so that the rotation of the eccentric rotating wheel (302) can drive the circulating movable frame (307) to slide back and forth between the two limiting seats (306). One end of the extrusion frame (308) is fixedly connected to the circulating movable frame (307), and the other end acts on the movable sleeve shaft (304), so that the movable sleeve shaft (304) can slide back and forth along the outer side of the linkage rotating shaft (303).

3. The squid processing technology according to claim 2, characterized in that: The movable sleeve shaft (304) comprises a sleeve shaft sleeved on the outside of the linkage rotating shaft (303) and an outer ring arranged at the edge of the sleeve shaft, and the outer wall of the outer ring is provided with an inner concave, and the end of the extrusion frame (308) fits the inner concave of the outer ring of the movable sleeve shaft (304), so that when the extrusion frame (308) moves left and right, it will squeeze the inner concave of the outer ring, thereby squeezing the movable sleeve shaft (304) to move back and forth outside the linkage rotating shaft (303).

4. The squid processing process according to claim 1, characterized in that: The spray assembly (8) is located above and on the side of the multi-directional cutting mechanism (3). The spray assembly (8) includes a rotating spray barrel (801), a torsion spring (802) and an extrusion ring (803). A convex column is provided at the edge of the eccentric wheel (302). The rotating spray barrel (801) is mounted on the edge of the base of the drive motor (301) for vertical rotation. The rotating spray barrel (801) is connected to a water pipe. The torsion spring (802) is provided at the connection between the rotating spray barrel (801) and the base of the drive motor (301). The extrusion ring (803) is sleeved on the outer wall of the rotating spray barrel (801). The extrusion ring (803) and the convex column on the edge of the eccentric wheel (302) are on the same horizontal plane. When the eccentric wheel (302) rotates, the convex column squeezes the extrusion ring (803) to rotate.

5. The squid processing process according to claim 1, characterized in that: The conveyor belt assembly (6) is arranged on one side of the output end of the guide channel (1), and the conveyor belt assembly (6) is connected to the output end of the guide channel (1). The re-cutting mechanism (5) is arranged above the conveyor belt assembly (6). The re-cutting mechanism (5) includes a mounting top seat (501), an electric push rod (502) and a vertical cutting assembly. The mounting top seat (501) is arranged above the conveyor belt assembly (6), the electric push rod (502) is arranged vertically downward on the mounting top seat (501), and the vertical cutting assembly is arranged on the output end of the electric push rod (502), wherein: The re-cutting mechanisms (5) are arranged in multiple groups in parallel on the conveyor belt assembly (6).

6. The squid processing process according to claim 5, characterized in that: The vertical cutting assembly includes a guide frame (503), a lifting knife (504) and a bottom pad frame (505), wherein the guide frame (503) is arranged at the connection between the mounting top seat (501) and the two sides of the conveyor belt assembly (6), and the two ends of the lifting knife (504) are respectively slidably mounted in the guide frame (503), and the lifting knife (504) is connected to the output end of the electric push rod (502), and the bottom pad frame (505) is arranged between the guide frames (503), and the bottom pad frame (505) is in contact with the top surface of the conveyor belt assembly (6), wherein: The top surface of the bottom pad frame (505) is an arc surface, and a groove corresponding to the lifting knife (504) is provided on the top surface of the bottom pad frame (505).

7. The squid processing process according to claim 1, characterized in that: The screening assembly (7) is arranged at one end of the conveyor belt assembly (6) away from the guide channel (1), and the screening assembly (7) comprises a shielding seat (701), a screening plate (702) and a vibration motor (703). The shielding seat (701) is arranged at one end of the conveyor belt assembly (6) away from the guide channel (1), and the two side edges of the shielding seat (701) are in contact with the two side edges of the conveyor belt assembly (6). The screening plate (702) is arranged obliquely on the inner side of the shielding seat (701), and the vibration motor (703) is arranged on the outer wall of the shielding seat (701). The vibration generated by the vibration motor (703) drives the screening plate (702) to vibrate, wherein: The screening plate (702) is provided with a plurality of screening slots distributed along the inclined surface, and the widths of the plurality of screening slots gradually increase from the side close to the conveyor belt assembly (6).

Citation Information

Patent Citations

  • Slicing device of squids

    CN107836502A

  • Shredding device of squid tentacles

    CN110402995A