Fish bait processing system
By designing a fish bait processing system, which utilizes components such as conveyor belts and crushing rollers to achieve automated transportation and crushing, the problem of insufficient automation in fish bait processing has been solved, and production efficiency and quality stability have been improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2026-03-31
AI Technical Summary
Existing fish bait processing technologies lack sufficient automation, resulting in low production efficiency and requiring extensive manual intervention, leading to poor large-scale production and inconsistent quality of fish bait.
A fish bait processing system was designed, including a transport device, a crushing device, and a storage device. The system achieves automated transport, crushing, and storage through components such as conveyor belts, crushing rollers, and vibration components, reducing manual intervention.
It improves the production efficiency of fish bait, prevents blockages during transportation and storage, ensures the uniformity and quality stability of fish bait, and reduces raw material waste.
Smart Images

Figure CN224055143U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of fish bait processing equipment, and specifically to a fish bait processing system. Background Technology
[0002] High-quality fish bait, through the scientific formulation of odor components and physical properties, can significantly enhance the fish-attracting effect and the probability of hooking fish, thus having a decisive impact on the final catch and the selective fishing of target fish species. However, existing fish bait processing technologies generally suffer from insufficient automation and low production efficiency, requiring a large number of manual interventions. For example, fish bait raw materials need to be manually fed into the crushing device for crushing, and manual intervention is required to prevent the filter screen of the crushing device from clogging. This seriously restricts the large-scale production and quality stability of fish bait. To address these issues, we propose a fish bait processing system. Utility Model Content
[0003] The present invention aims to provide a fish bait processing system to solve the problems of insufficient automation and low production efficiency in fish bait processing.
[0004] To achieve the above objectives, the present invention adopts the following technical solution: a fish bait processing system, including a transport device, a crushing device, and a storage device. A connecting component is provided between the transport device and the crushing device, which is used to enclose the input end of the crushing device and the output end of the transport device. A conveying component is provided between the crushing device and the storage device, which is used to transport the fish bait processed by the crushing device to the storage device for storage. The transport device includes a conveyor frame, with a feeding hopper at the upper end of the conveyor frame. A guide plate is provided at the end of the feeding hopper near the conveyor frame. The conveyor frame is equipped with a transport component, which includes a conveyor belt, a drive roller, a driven roller, two side frames, and several partition plates. The drive roller is located at the end of the conveyor frame near the feeding hopper, and the driven roller is located at the end of the conveyor frame away from the drive roller. The conveyor belt is located on the outer wall of the drive roller and the driven roller. The conveyor frame is equipped with a driving component, which can drive the drive roller to rotate. The two side frames are symmetrically arranged on both sides of the conveyor belt. Several partition plates are evenly arranged on the outer wall of the conveyor belt, and the partition plates are located between the two side frames. The partition plates can contact the guide plate.
[0005] The beneficial effects of this solution are as follows: The conveyor frame is used to install the transport components, which transport various fish feeds to the feed inlet of the crushing device for crushing. The feed funnel is used to evenly spread the fish feed powder on the conveyor belt. The driven roller cooperates with the driving roller to tension the conveyor belt. The drive unit is used to drive the driving roller to rotate, thereby driving the transmission belt to rotate and transport the fish feed to the feed inlet of the crushing device. Since the transport device transports the fish feed from a low position to a high position, in order to prevent the fish feed from sliding down during the transport process, the fish feed is fixed inside by the frame and partition plate to ensure that the fish feed can be transported smoothly. During the rotation of the conveyor belt, the partition plate will contact the guide plate, which will cause the guide plate to vibrate, thereby shaking out the fish feed located at the discharge port of the feed funnel, preventing the fish feed from clogging the discharge port of the feed funnel, reducing manual intervention in the transport components, and improving the efficiency of fish feed production.
[0006] Preferably, as an improvement, the upper end of the conveyor frame is provided with a mounting frame, and the feed hopper is located inside the mounting frame. The feed hopper includes a vertical part and a concentrating part. The vertical part is located inside the mounting frame, and the concentrating part is located at the end of the vertical part near the conveyor frame. The vertical part and the concentrating part are connected. The vertical part is set as a cuboid, and the concentrating part is set as a triangular prism. The end of the concentrating part near the conveyor frame is provided with a discharge port. A guide plate is located at the discharge port. The end of the feed hopper away from the guide plate is provided with a scraper. The frame is set as a wave shape, and the frame can contact the side wall of the guide plate.
[0007] The beneficial effects are as follows: the mounting frame is used to install the feeding funnel; the vertical part is used to store fish bait, increasing the volume of the feeding funnel; the concentrating part is used to concentrate the fish bait to the discharge port, and the discharge port is used to discharge the fish bait in the feeding funnel. By setting the concentrating part as a triangular prism, the fish bait on the two inclined sides is subjected to different supporting forces, which is conducive to the discharge of fish bait and avoids blockage when the feeding funnel is discharged. The scraper is used to scrape off the fish bait that is higher than the partition plate, which not only prevents the fish bait from slipping during transportation and causing waste, but also ensures that the weight of the fish bait between each partition is basically the same, making it easier for operators to control the weight of the fish bait during transportation. Setting the frame as wavy increases the number of contacts between the frame and the guide plate, which not only increases the discharge speed of the feeding funnel by increasing the vibration frequency of the guide plate, but also makes the fish bait in the partition more compact by vibrating the conveyor belt, thereby improving the conveying efficiency of the transport device.
[0008] Preferably, as an improvement, the driving component includes a first motor, a first driving wheel, a first driven wheel, and a first belt. The first motor is located inside the conveyor frame, and the output end of the first motor extends through the conveyor frame. The first driving wheel is located at the output end of the first motor. The first driven wheel is located at the end of the driving roller near the first driving wheel. The first belt is located on the outer wall of the first driving wheel and the first driven wheel.
[0009] Preferably, as an improvement, the crushing device includes a support frame, with a crushing barrel at the upper end of the support frame. The crushing barrel has a first inlet and a first outlet. A filter screen is provided inside the first outlet. The crushing barrel contains a crushing component and a screening component. The screening component includes a rotating shaft, a power component, and several mounting frames. The rotating shaft is located inside the crushing barrel, and the power component is located on the outer wall of the crushing barrel and can drive the rotating shaft to rotate. Several mounting frames are evenly arranged on the outer wall of the rotating shaft. Each mounting frame has several screening steel plates on the inner wall away from the rotating shaft, and the gap between each screening steel plate is equal to the maximum aperture of the filter screen. Each screening steel plate has a semi-circular groove along the direction of rotation of the rotating shaft. A brush is provided at the end of the mounting frame away from the rotating shaft, and the brush can abut against the filter screen. A crushing platform is symmetrically arranged on the inner wall of the crushing barrel. Several cutting blades that are offset from the crushing blades on the outer wall of the crushing roller are provided on the upper end of the crushing platform. Several lifting steel plates are evenly arranged on the inner wall of each mounting frame near the rotating shaft, and the lifting steel plates are inclined.
[0010] The beneficial effects are as follows: The filter screen is used to filter the crushed bait. Bait particles smaller than the filter screen aperture leak out of the crushing barrel, while bait particles larger than the filter screen aperture are located at the top of the filter screen. By setting the gap between the screening steel plates to match the filter screen aperture, it is ensured that the crushed bait particles can only pass through the screening steel plates after reaching the target particle size, thus preventing substandard particles from being mixed into the finished product. Semi-circular grooves are opened on the screening steel plates to catch larger bait particles, so that the bait is thrown into the crushing zone along with the screening steel plates for further crushing. The brush at the end of the mounting frame is in close contact with the filter screen and continuously scrapes the surface of the filter screen during rotation, effectively preventing bait from adhering to or clogging the mesh, maintaining filtration efficiency. The rotating shaft drives the mounting frame and screening steel plates to rotate, causing substandard bait particles to be screened out by the screening steel plates and remain in the semi-circular groove. Then, under the action of centrifugal force, they are thrown back into the crushing zone for secondary crushing, forming a closed-loop process of "crushing-screening-re-crushing", which significantly improves the crushing uniformity and enhances the crushing effect of the fish bait.
[0011] Preferably, as an improvement, the crushing assembly includes a second motor, a second driving wheel, a second driven wheel, a second belt, and two sets of crushing rollers. The second motor is located at the upper end of the support frame, the second driving wheel is located at the output end of the second motor, the two sets of crushing rollers are symmetrically arranged inside the crushing barrel, and the two sets of crushing rollers are located above the screening assembly. Each crushing roller has several crushing blades on its outer wall, and the crushing blades on the outer walls of the two sets of crushing rollers are staggered. Each set of crushing rollers has a gear at the end away from the second motor, and the two gears mesh with each other. The second driven wheel is located at the end of one set of crushing rollers close to the second motor, and the second belt is located on the outer wall of the second driving wheel and the second driven wheel.
[0012] The beneficial effects are as follows: The crushing blades of the two sets of crushing rollers are arranged in an alternating manner, forming a dual force of shearing and extrusion when rotating in opposite directions, which greatly improves the crushing efficiency of the bait. Through the synchronous drive of meshing gears, it is ensured that the two sets of crushing rollers rotate at the same speed and in opposite directions, avoiding the problem of material accumulation or uneven crushing caused by the difference in speed. The two sets of crushing rollers are set above the screening component, so that the bait falls directly to the screening area after being crushed, and is naturally classified by gravity, so that the larger bait is located on the surface of the filter screen. Then, in conjunction with the screening component, the larger bait is re-crushed, improving the crushing effect of the fish bait.
[0013] Preferably, as an improvement, the power component includes a third driving wheel, a third driven wheel, and a third belt. The third driving wheel is located on the outer wall of one of the gears, the third driven wheel is located at the end of the shaft away from the second motor, and the third belt is located on the outer walls of the third driving wheel and the third driven wheel.
[0014] Preferably, as an improvement, the storage device includes a storage bin and an extension frame. The storage bin is located at the upper end of the extension frame, with a second inlet at the upper end and a second outlet at the lower end. A bearing plate is provided on the outer wall of the storage bin, and a vibration assembly is provided on the outer wall of the bearing plate. The vibration assembly includes a third motor, a rotating block, a reciprocating ring, a half-tooth, and a striking rod. A first rotating rod is provided at the upper end of the bearing plate, and a rotating gear is provided on the outer wall of the first rotating rod. The striking rod is located at the end of the first rotating rod away from the rotating gear and can contact the outer wall of the storage bin. The third motor is located at the lower end of the bearing plate, and the rotating block is located at the output end of the third motor. A limiting rod is provided at the end of the rotating block away from the third motor. A second rotating rod passes through the bearing plate, and the reciprocating ring is located at the end of the second rotating rod away from the rotating gear, with the limiting rod located inside the reciprocating ring. A half-tooth is located at the end of the second rotating rod away from the reciprocating ring and meshes with the rotating gear.
[0015] The beneficial effects are as follows: the third motor drives the rotating block to rotate in a circular motion, causing the limiting rod to move back and forth within the reciprocating ring. At the same time, the reciprocating ring swings back and forth under the action of the limiting rod, thereby driving the second rotating rod to rotate back and forth. This causes the half-tooth connected to the second rotating rod to swing back and forth, causing the rotating gear meshing with the half-tooth to rotate back and forth. Finally, the first rotating rod drives the striking rod to swing back and forth, causing the striking rod to strike the outer wall of the storage bin, thereby generating vibration inside the storage bin. This promotes the discharge of material from the storage bin and prevents blockage. Furthermore, because the striking rod strikes the outer wall of the storage bin repeatedly from both ends, the vibration points inside the storage bin are staggered, avoiding the compaction of the fish bait in the storage bin by a single vibration direction, which would further aggravate the blockage.
[0016] Preferably, as an improvement, the end of the first rotating rod away from the bearing plate is set as a rhombus, and the striking rod has a rhombus groove that matches the first rotating rod, and the rhombus groove is engaged with the first rotating rod.
[0017] The beneficial effect is that setting the end of the first rotating rod away from the bearing plate as a rhombus can increase the firmness of the connection with the striking rod and prevent the striking rod from slipping during reciprocating rotation.
[0018] Preferably, as an improvement, the connecting assembly includes a cloth cover, a hanging rod, a support plate, and two sets of support rods. One end of the cloth cover is located on the outer wall of the first feed inlet. The two sets of support rods are symmetrically located at the end of the conveying device near the crushing device. Each support rod has a slot on its outer wall. The hanging rod is located at the end of the cloth cover away from the first feed inlet and can be engaged with the slot. The support plate is located at the end of the cloth cover away from the first feed inlet. The end of the conveying device near the crushing device has symmetrical hooks that can be engaged with the support plate.
[0019] The beneficial effects are as follows: The connecting component is used to cover the first feed inlet of the crushing barrel and the output end of the conveying device, preventing the conveying device from feeding fish bait raw materials into the crushing device, thus preventing leakage of fish bait raw materials and reducing waste of fish bait raw materials. At the same time, it can also prevent fish bait powder from spreading into the production environment when the crushing device is crushing, which would make the fish bait production environment harsh. The cloth cover is used to connect the conveying device and the crushing device to prevent the fish bait powder from spreading. The hanging rod and support plate are used to support the end of the cloth cover near the conveying device. The strut is used to support the hanging rod to prevent the hanging rod from shifting. The hook is used to hook the support plate. By covering the output end of the conveying device with the hanging rod and support plate, the fish bait powder is prevented from spreading, improving the fish bait production environment and reducing waste of fish bait raw materials.
[0020] Preferably, as an improvement, the conveying assembly includes a conveying pipe, an auger, and a fourth motor. The conveying pipe is located between the first discharge port and the second inlet port. The auger is located inside the conveying pipe. A fourth driven wheel is provided at one end of the auger that extends through the conveying pipe. The fourth motor is located on the outer wall of the conveying pipe. A fourth driving wheel is provided at the output end of the fourth motor. A fourth belt is provided on the outer wall of the fourth driving wheel and the fourth driven wheel.
[0021] The beneficial effects are as follows: the fourth motor drives the fourth drive wheel to rotate, and in conjunction with the fourth belt and the fourth driven wheel, the auger rotates in the conveying pipe. The spiral auger transports the fish bait in the conveying pipe to the storage bin, thereby completing the storage of the processed fish bait. Attached Figure Description
[0022] Figure 1 This is a three-dimensional structural diagram of the fish bait processing system according to an embodiment of the present invention;
[0023] Figure 2 This is a three-dimensional structural schematic diagram of the transportation device according to an embodiment of the present utility model;
[0024] Figure 3 This is a three-dimensional structural diagram of the feed funnel according to an embodiment of the present invention;
[0025] Figure 4 This is a three-dimensional structural diagram of the material storage device and the crushing device according to an embodiment of the present utility model;
[0026] Figure 5 This is a cross-sectional view of the crushing bucket according to an embodiment of the present invention;
[0027] Figure 6 This is a three-dimensional structural schematic diagram of the pulverizing device according to an embodiment of the present invention;
[0028] Figure 7 This is a three-dimensional structural diagram of the mounting frame according to an embodiment of the present utility model;
[0029] Figure 8 for Figure 1 A magnified schematic diagram of the partial structure at point A in the middle;
[0030] Figure 9 for Figure 1 A magnified view of the structure at point B in the middle;
[0031] Figure 10 This is a partial cross-sectional view of the conveying pipe according to an embodiment of the present utility model;
[0032] Figure 11 for Figure 10 A magnified schematic diagram of the local structure at point C;
[0033] Figure 12This is a three-dimensional structural schematic diagram of the vibration component according to an embodiment of the present invention. Detailed Implementation
[0034] The following detailed description illustrates the specific implementation method:
[0035] The reference numerals in the accompanying drawings include: 1. Conveyor frame; 2. Feed hopper; 3. Guide plate; 4. Conveyor belt; 5. Driven roller; 6. Frame; 7. Divider plate; 8. Mounting frame; 9. Vertical section; 10. Concentrating section; 11. First motor; 12. First drive wheel; 13. First driven wheel; 14. First belt; 15. Scraper; 16. Support roller; 17. Support frame; 18. Crushing barrel; 19. Filter screen; 20. Rotating shaft; 21. Mounting frame; 22. Screening steel sheet; 23. Semicircular trough; 24. Brush; 25. Second motor; 26. Second drive wheel; 27. Second driven wheel; 28. Second belt; 29. Crushing roller; 30. Crushing blade; 31. Gear; 32. Third drive wheel; 33. Third driven wheel; 34. ... 35. Three belts 36. Crushing table 37. Cutting blade 38. Lifting steel sheet 39. First feed inlet 40. First discharge outlet 41. Cloth cover 42. Hanging rod 43. Support plate 44. Support rod 45. Hook 46. Elevating frame 47. Storage bin 48. Column 49. Support column 50. Reinforcing column 51. Second feed inlet 52. Second discharge outlet 53. Bearing plate 54. Third motor 55. Rotating block 56. Reciprocating ring 57. Half tooth 58. Striking rod 59. First rotating rod 60. Rotating gear 60. Rubber layer 61. Second rotating rod 62. Limiting rod 63. Conveying pipe 64. Screw 65. Fourth motor 66. Fourth driving wheel 67. Fourth driven wheel 68. Fourth belt 69.
[0036] Example
[0037] The basic implementation examples are as follows: Figure 1-12 As shown, Figure 1 The fish feed processing system shown includes a transport device, a crushing device, and a storage device. A connecting assembly is provided between the transport device and the crushing device to enclose the feed inlet of the crushing device and the output end of the transport device. A conveying assembly is provided between the crushing device and the storage device to transport the processed fish feed to the storage device for storage. Figure 2 The conveying device shown includes a conveyor frame 1, which is a rectangular frame with the left support leg being taller than the right support leg. Casters are fixedly installed on the lower ends of the two left support legs. A mounting frame 9 is fixedly installed on the upper right side of the conveyor frame 1, and a feed funnel 2 is fixedly installed inside the mounting frame 9. Figure 3The feed hopper 2 shown includes a vertical section 10 and a concentrating section 11. The vertical section 10 is fixedly installed on the inner wall of the mounting frame 9, and the concentrating section 11 is fixedly installed at the lower end of the vertical section 10, and the vertical section 10 and the concentrating section 11 are connected. Of course, the vertical section 10 and the concentrating section 11 can also be made by an integral molding process. The vertical section 10 is set as a cuboid, and the concentrating section 11 is set as a triangular prism, and the lower end of the triangular prism of the concentrating section 11 is set as an obtuse angle. A discharge port 40 is opened at the lower end of the concentrating section 11. A guide plate 3 is fixedly installed on the lower right side of the discharge port 40, and the lower end of the guide plate 3 abuts against the outer wall of the conveyor belt 4. The guide plate 3 is made of plastic plate. By setting the lower end of the concentrating section 11 as an obtuse angle, the fish feed located on the left and right sides of the inclined side is subjected to different supporting forces, which is conducive to the discharge of fish feed. A scraper 16 is fixedly installed on the lower left side of the feed hopper 2. The outer wall of the conveyor frame is provided with a transport component, such as... Figure 2 The conveyor assembly shown includes a conveyor belt 4, a drive roller 5, a driven roller 6, two side frames 7, and several partition plates 8. The drive roller 5 is fixedly installed at the right end of the conveyor frame 1, and the driven roller 6 is fixedly installed at the left end of the conveyor frame 1. The conveyor belt 4 is tensioned and installed on the outer wall of the drive roller 5 and the driven roller 6. The conveyor frame 1 contains a driving component that can drive the drive roller 5 to rotate. The driving component includes a first motor 12, a first drive wheel 13, a first driven wheel 14, and a first belt 15. The first motor 12 is fixedly installed on the inner right side wall of the conveyor frame 1, and the output end of the first motor 12 extends through the conveyor frame 1. The first drive wheel 13 is fixedly installed at the output end of the first motor 12. The first driven wheel 14 is fixedly installed at the front end of the drive roller 5. The first belt 15 is tensioned and sleeved on the outer wall of the first drive wheel 13 and the first driven wheel 14. Two frame frames 7 are symmetrically fixedly installed on both sides of the outer wall of the conveyor belt 4. The frame frames 7 are wavy and can contact the side wall of the guide plate 3. Several partition plates 8 are evenly fixedly installed on the outer wall of the conveyor belt 4. Each partition plate 8 is located between two frame frames 7 and can contact the guide plate 3. The frame frames 7 and partition plates 8 are made of rubber and can deform with the rotation of the conveyor belt 4. Several support rollers 17 are rotatably installed on the upper end of the conveyor frame 1. The support rollers 17 are used to support the rotation of the conveyor belt 4.
[0038] like Figure 4 The pulverizing device shown includes a support frame 18, and a pulverizing barrel 19 is fixedly installed on the upper end of the support frame 18, such as... Figure 5 The grinding barrel 19 shown has a trough at its lower end, and a filter screen 20 is fixedly installed inside the trough. The filter screen 20 can filter fish bait smaller than its pore size. The grinding barrel 19 has a first feed inlet 39 at its upper end, and a first discharge outlet 40 wrapped around the filter screen 20 is fixedly installed at its lower end. The grinding barrel 19 contains a grinding component and a screening component, such as... Figure 4 ,like Figure 5 and Figure 6The crushing assembly shown includes a second motor 26, a second driving wheel 27, a second driven wheel 28, a second belt 29, and two sets of crushing rollers 30, as shown. Figure 6 The second motor 26 shown is fixedly mounted on the upper left side of the support frame 18, and the second drive wheel 27 is fixedly mounted on the output end of the second motor 26, as shown. Figure 5 The two sets of crushing rollers 30 shown are symmetrically and rotatably mounted on the inner wall of the crushing barrel 19. Several crushing blades 31 are fixedly mounted on the outer wall of each crushing roller 30, and the crushing blades 31 on the outer walls of the two sets of crushing rollers 30 are staggered. Figure 4 As shown, gears 32 are fixedly installed at the front end of the crushing roller 30 that rotates through the crushing barrel 19, and the two gears 32 mesh with each other, as shown. Figure 6 As shown, the second driven wheel 28 is fixedly installed on the right end of the crushing roller 30 located on the front side, and the second belt 29 is tensioned and sleeved on the outer wall of the second driving wheel 27 and the second driven wheel 28.
[0039] like Figure 5 The screening assembly shown includes a rotating shaft 21, a power component, and several mounting frames 22. The rotating shaft 21 is located inside the crushing barrel 19, and the power component is located on the outer wall of the crushing barrel 19. The power component can drive the rotating shaft 21 to rotate. Figure 6 Several mounting frames 22 are evenly fixedly installed on the outer wall of the rotating shaft 21, as shown. Figure 7 The mounting frame 22 shown is U-shaped, and a partition plate 8 is fixedly installed on the inner wall of the mounting frame 22. Several screening steel sheets 23 are evenly fixedly installed on the upper end of the partition plate 8, and the gap between each screening steel sheet 23 is equal to the maximum aperture of the filter screen 20. Each screening steel sheet 23 has a semi-circular groove 24 opened in the direction of rotation of the rotating shaft 21. A brush 25 is fixedly installed on the upper end of the mounting frame 22, and the brush 25 can abut against the surface of the filter screen 20. Several raised steel sheets 38 are fixedly installed between the left and right inner walls of the mounting frame 22, and the raised steel sheets 38 are inclined and located below the partition plate 8. Figure 5 The grinding barrel 19 shown has grinding platforms 36 symmetrically fixedly installed on its left and right inner walls. Each grinding platform 36 has several cutting blades 37 fixedly installed at its upper end, which are offset from the grinding blades 31 on the outer wall of the grinding roller 30. Figure 4 The power components shown include a third driving wheel 33, a third driven wheel 34, and a third belt 35. The third driving wheel 33 is fixedly installed on the rotating shaft 21 and rotates through the front end of the crushing barrel 19. The third driven wheel 34 is fixedly installed on the front end of the right gear 32. The third belt 35 is tensioned and sleeved on the outer wall of the third driving wheel 33 and the third driven wheel 34.
[0040] A connecting assembly is provided between the conveying device and the crushing device. This assembly covers the feed inlet 39 of the crushing device and the output end of the conveying device. The connecting assembly includes a cloth cover 41, a hanging rod 42, a support plate 43, and two sets of support rods 44. Figure 1The lower end of the cloth cover 41 shown is fixedly sleeved onto the feed inlet 39 of the crushing device, and two sets of support rods 44 are symmetrically fixedly installed on the upper left side of the transport frame, as shown. Figure 8 The support rod 44 shown has several evenly spaced slots on its outer wall. The hanging rod 42 is fixedly installed on the upper right side of the fabric cover 41, and the hanging rod 42 can engage with the slots. The support plate 43 is fixedly installed on the lower right side of the fabric cover 41. Figure 9 The transport device shown has hooks 45 fixedly installed symmetrically on the left end, and the outer wall of the support plate 43 has through holes that match the hooks 45.
[0041] like Figure 10 The storage device shown includes a booster frame 46 and a storage bin 47. The storage bin 47 is located on the upper end of the booster frame 46. The booster frame 46 includes one upright column 48, one support column 49, and one reinforcing column 50. The upright columns 48 are fixedly installed on the outer wall of the storage bin 47. The reinforcing columns 50 are fixedly installed between the upright columns 48 by welding. One end of each support column 49 is hinged to the outer wall of each upright column 48, and the other end of each support column 49 is fixedly connected to the outer wall of the storage bin 47. The upper end of the storage bin 47 is cylindrical, and a second inlet 51 is opened at the upper end of the storage bin 47. The lower end of the storage bin 47 is conical, and a second outlet 52 is opened at the lower end of the storage bin 47. Figure 11 The storage silo 47 shown has a support plate 53 fixedly installed on its outer wall. A vibration assembly is provided on the outer wall of the support plate 53. The vibration assembly includes a second motor 26, a rotating block 55, a reciprocating ring 56, a half-tooth 57, and a striking rod 58. A first rotating rod 59 is rotatably mounted on the upper end of the support plate 53. A rotating gear 60 is fixedly installed on the outer wall of the first rotating rod 59. The upper end of the first rotating rod 59 is rhomboid. A rhomboid groove matching the upper end of the first rotating rod 59 is opened through the middle of the striking rod 58. The striking rod 58 is engaged with the upper end of the first rotating rod 59 through the rhomboid groove. A second rotating rod 62 is rotatably mounted through the support plate 53. A half-tooth 57 is fixedly mounted on the upper end of the second rotating rod 62 and meshes with the rotating gear 60. Figure 12 As shown, a rubber layer 61 is symmetrically fixedly installed on the right end of the striking rod 58, and the rubber layer 61 can contact the outer wall of the storage bin 47. A fixing groove is opened at the lower end of the bearing plate 53, and the second motor 26 is fixedly installed in the fixing groove. The rotating block 55 is fixedly installed at the output end of the second motor 26. A limit rod 63 is fixedly installed at the lower end of the rotating block 55. A rotating sleeve is rotatably sleeved on the outer wall of the limit rod 63. The reciprocating ring 56 is fixedly installed at the lower end of the second rotating rod 62, and the limit rod 63 is located on the inner wall of the reciprocating ring 56.
[0042] The conveying assembly includes a conveying pipe 64, an auger 65, and a fourth motor 66. The two ends of the conveying pipe 64 are respectively fixedly sleeved and installed on the outer walls of the first discharge port 40 and the second inlet port 51. Figure 11The auger 65 shown is rotatably mounted on the inner wall of the conveying pipe 64 along the axial direction of the conveying pipe 64, as... Figure 6 The auger 65 shown rotates through the lower end of the conveying pipe 64 and is fixedly installed with the fourth driven wheel 68. The fourth motor 66 is fixedly installed on the outer wall of the conveying pipe 64 by a fixing ring. The output end of the fourth motor 66 is fixedly installed with the fourth driving wheel 67. The outer walls of the fourth driving wheel 67 and the fourth driven wheel 68 are tensioned together with the fourth belt 69.
[0043] The specific implementation process is as follows:
[0044] In use, the operator first engages the hanging rod 42 at the upper end of the cloth cover 41 with the support rod 44 at the upper end of the conveyor frame 1, and then engages the support plate 43 at the lower end of the cloth cover 41 with the hook 45, thereby completely covering the conveyor belt 4 at the end of the conveyor frame 1 to prevent the fish bait powder from spreading, improve the environment for producing fish bait, and reduce the waste of fish bait raw materials. The operator then starts the first motor 12 to make the transmission belt rotate and pours the fish bait to be crushed into the feed funnel 2. Under the action of gravity, the fish bait flows into the conveyor belt 4 through the discharge port 40. The feed is divided into several fixed spaces by the frame 7 and the partition plate 8. The fish feed is fixed in each fixed space, which facilitates the transport of the fish feed from a low position to a high position and prevents the fish feed from sliding down. During the transport of the fish feed, the frame 7 and the partition plate will collide with the guide plate 3, which will cause the guide plate 3 and the outlet 40 to vibrate, thereby shaking out the fish feed accumulated at the outlet 40, preventing the fish feed from clogging the outlet 40, improving the transport efficiency of the fish feed, and finally transporting the fish feed. At the highest point, the conveyor belt 4 flips, allowing the fish bait to enter the crushing bin 19. The operator starts the second motor 26, causing the crushing and screening components to rotate. Because the gears 32 at the ends of the two crushing rollers 30 mesh, the crushing rollers 30 rotate synchronously in opposite directions. The crushing blades 31 on the two crushing rollers 30 create a shearing action, initially crushing the fish bait material fed into the inlet 39. The initially crushed fish bait falls onto the surface of the filter screen 20 under gravity, with larger and heavier fish bait pieces being more easily crushed. First, the feed particles reach the surface of the filter screen 20, causing the filter screen 20 to become clogged and affecting its filtering effect. At this time, the rotating shaft 21 drives the mounting frame 22 to rotate above the filter screen 20, and works with the brush 25 to clean the surface of the filter screen 20 to prevent clogging. Then, under the action of the screening steel plate 23, the substandard feed particles are screened out and remain in the semi-circular groove 24. Then, under the action of centrifugal force, they are thrown back into the crushing area for secondary crushing, forming a closed-loop process of "crushing-screening-re-crushing", which significantly improves the uniformity of crushing and improves the crushing effect of the fish bait.
[0045] Finally, the fish feed passing through the filter screen 20 is conveyed to the storage bin 47 for storage via the conveying component. When the fish feed needs to be packaged, the operator opens the second discharge port 52 and starts the third motor 54 to drive the rotating block 55 to rotate in a circular motion. This causes the limiting rod 63 to reciprocate within the reciprocating ring 56. Simultaneously, the reciprocating ring 56 oscillates under the action of the limiting rod 63, thereby driving the second rotating rod 62 to reciprocate. This, in turn, causes the half-tooth 57 connected to the second rotating rod 62 to reciprocate, thus engaging with the half-tooth 57. The rotating gear 60 reciprocates, and finally drives the striking rod 58 to reciprocate through the first rotating rod 59. This causes the two ends of the striking rod 58 to strike the outer wall of the storage bin 47 in turn, thereby causing vibration inside the storage bin 47. This promotes the discharge of fish feed from the storage bin 47 and prevents blockage. Furthermore, since the striking rod 58 strikes the outer wall of the storage bin 47 repeatedly through its two ends, the vibration points inside the storage bin 47 are staggered, preventing a single vibration direction from compacting the fish feed inside the storage bin 47 and further aggravating blockage.
[0046] The above descriptions are merely embodiments of this utility model. Commonly known technical solutions and / or characteristics are not described in detail here. It should be noted that those skilled in the art can make various modifications and improvements without departing from the technical solution of this utility model. These modifications and improvements should also be considered within the scope of protection of this utility model, and will not affect the effectiveness of the implementation of this utility model or the practicality of the patent. The scope of protection claimed in this application should be determined by the content of its claims, and the specific embodiments described in the specification can be used to interpret the content of the claims.
Claims
1. A fish bait processing system characterized by: The application relates to a fish bait feed processing device which comprises a conveying device, a crushing device and a storage device, a connecting assembly is arranged between the conveying device and the crushing device, the connecting assembly is used for wrapping the input end of the crushing device and the output end of the conveying device, a conveying assembly is arranged between the crushing device and the storage device, the conveying assembly is used for conveying the fish bait feed processed by the crushing device into the storage device for storage, the conveying device comprises a conveying frame, an inlet hopper is arranged at the upper end of the conveying frame, a guide plate is arranged at the end of the inlet hopper close to the conveying frame, the conveying frame is provided with a conveying assembly, the conveying assembly comprises a conveying belt, a driving roller, a driven roller, two side frames and a plurality of partition plates, the driving roller is arranged at the end of the conveying frame close to the inlet hopper, the driven roller is arranged at the end of the conveying frame away from the driving roller, the conveying belt is arranged on the outer wall of the driving roller and the driven roller, the conveying frame is provided with a driving member, the driving member can drive the driving roller to rotate, the two side frames are symmetrically arranged on the two sides of the conveying belt, and the plurality of partition plates are uniformly arranged on the outer wall of the conveying belt and located between the two side frames, and the partition plates can be in contact with the guide plate.
2. The fish bait processing system of claim 1, wherein: The upper end of the conveying frame is provided with a mounting frame, the inlet hopper is arranged in the mounting frame, the inlet hopper comprises a vertical part and a concentrating part, the vertical part is arranged in the mounting frame, the concentrating part is arranged at the end of the vertical part close to the conveying frame, the vertical part is in communication with the concentrating part, the vertical part is arranged as a cuboid, the concentrating part is arranged as a triangular column, a discharging port is arranged at the end of the concentrating part close to the conveying frame, the guide plate is arranged at the discharging port, a scraping plate is arranged at the end of the inlet hopper away from the guide plate, the side frame is arranged in a wavy shape and can be in contact with the side wall of the guide plate.
3. A fish bait processing system according to claim 2, wherein: The driving member comprises a first motor, a first driving wheel, a first driven wheel and a first belt, the first motor is arranged in the conveying frame and the output end of the first motor penetrates through the conveying frame, the first driving wheel is arranged at the output end of the first motor, the first driven wheel is arranged at the end of the driving roller close to the first driving wheel, and the first belt is arranged on the outer wall of the first driving wheel and the first driven wheel.
4. The fish bait processing system of claim 3, wherein: The crushing device comprises a supporting frame, a crushing barrel is arranged at the upper end of the supporting frame, the crushing barrel is provided with a first inlet and a first outlet, a filter screen is arranged in the first outlet, the crushing barrel is provided with a crushing assembly and a screening assembly, the screening assembly comprises a rotating shaft, a power member and a plurality of mounting frames, the rotating shaft is arranged in the crushing barrel, the power member is arranged on the outer wall of the crushing barrel and can drive the rotating shaft to rotate, the plurality of mounting frames are uniformly arranged on the outer wall of the rotating shaft, a plurality of screening steel sheets are arranged on the inner wall of each mounting frame away from the rotating shaft, the gap between each screening steel sheet is equal to the maximum aperture of the filter screen, each screening steel sheet is provided with a semicircular groove in the rotating direction of the rotating shaft, a brush is arranged at the end of each mounting frame away from the rotating shaft and can abut against the filter screen, the inner wall of the crushing barrel is symmetrically provided with crushing tables, the upper end of each crushing table is provided with a plurality of cutting blades staggered with the crushing blades on the outer wall of the crushing roller, and a plurality of lifting steel sheets are uniformly arranged on the inner wall of each mounting frame close to the rotating shaft and are arranged in an inclined mode.
5. The fish bait processing system of claim 4, wherein: The crushing assembly comprises a second motor, a second driving wheel, a second driven wheel, a second belt and two sets of crushing rollers. The second motor is arranged at the upper end of the support frame. The second driving wheel is arranged at the output end of the second motor. The two sets of crushing rollers are symmetrically arranged in the crushing barrel and located above the screening assembly. The outer wall of each crushing roller is provided with a plurality of crushing blades. The crushing blades on the outer walls of the two sets of crushing rollers are arranged alternately. The ends of the two sets of crushing rollers away from the second motor are each provided with a gear. The two gears are meshed with each other. The second driven wheel is arranged at the end of one set of crushing rollers close to the second motor. The second belt is arranged on the outer walls of the second driving wheel and the second driven wheel.
6. A fish bait processing system according to claim 5, wherein: The power component comprises a third driving wheel, a third driven wheel and a third belt. The third driving wheel is arranged on the outer wall of one of the gears. The third driven wheel is arranged at the end of the rotating shaft away from the second motor. The third belt is arranged on the outer walls of the third driving wheel and the third driven wheel.
7. A fish bait processing system according to claim 6, wherein: The storage device comprises a storage bin and a heightening frame. The storage bin is arranged at the upper end of the heightening frame. The upper end of the storage bin is provided with a second feeding port. The lower end of the storage bin is provided with a second discharging port. The outer wall of the storage bin is provided with a bearing plate. The outer wall of the bearing plate is provided with a vibrating assembly. The vibrating assembly comprises a third motor, a rotating block, a reciprocating ring, a half tooth and a knocking rod. The upper end of the bearing plate is provided with a first rotating rod. The outer wall of the first rotating rod is provided with a rotating gear. The knocking rod is arranged at the end of the first rotating rod away from the rotating gear and can contact the outer wall of the storage bin. The third motor is arranged at the lower end of the bearing plate. The output end of the third motor is provided with a rotating block. The end of the rotating block away from the third motor is provided with a limiting rod. The bearing plate is provided with a second rotating rod. The reciprocating ring is arranged at the end of the second rotating rod away from the rotating gear and located in the limiting rod. The half tooth is arranged at the end of the second rotating rod away from the reciprocating ring and meshed with the rotating gear.
8. The fish bait processing system of claim 7, wherein: The end of the first rotating rod away from the bearing plate is in the shape of a rhombus. The knocking rod is provided with a rhombic slot matched with the first rotating rod. The rhombic slot is clamped with the first rotating rod.
9. The fish bait processing system of claim 8, wherein: The connecting assembly comprises a cloth cover, a hanging rod, a support plate and two sets of support rods. One end of the cloth cover is arranged on the outer wall of the first feeding port. The two sets of support rods are symmetrically arranged at the end of the conveying device close to the crushing device. The outer wall of each support rod is provided with a clamping slot. The hanging rod is arranged at the end of the cloth cover away from the first feeding port and can be clamped with the clamping slot. The support plate is arranged at the end of the cloth cover away from the first feeding port. The end of the conveying device close to the crushing device is symmetrically provided with a hook which can be clamped with the support plate.
10. The fish bait processing system of claim 9, wherein: The conveying assembly comprises a conveying pipe, an auger and a fourth motor. The conveying pipe is arranged between the first discharging port and the second feeding port. The auger is arranged in the conveying pipe. The end of the auger penetrating out of the conveying pipe is provided with a fourth driven wheel. The fourth motor is arranged on the outer wall of the conveying pipe. The output end of the fourth motor is provided with a fourth driving wheel. The outer walls of the fourth driving wheel and the fourth driven wheel are provided with a fourth belt.