Vibration discharging device for processing breeding feed
By designing a feed processing device that includes heating and diversion, stirring and mixing, and regulating discharge, the problems of adhesion and dust in the processing of wet feed were solved, and an efficient and stable unloading process was achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ANHUI TAIKEYU TECHNOLOGY CO LTD
- Filing Date
- 2023-10-16
- Publication Date
- 2026-04-17
AI Technical Summary
Existing vibrating unloading devices tend to stick or accumulate when handling wet or semi-wet feed, affecting discharge efficiency. They also generate a lot of dust, which can easily clog the screen, resulting in a decrease in overall efficiency.
The system employs a structural design that includes a vibrating feeder box, a heating box, a mixing opening box, a stirring and mixing component, and a shaking discharge component. Through heating and diversion, stirring and mixing, drying and adjusting the size of the discharge port, combined with a dust collection device, the system achieves effective feed discharge.
It effectively prevents feed from sticking and piling up, improves discharge efficiency, reduces dust, and ensures stable operation and efficient operation of the equipment.
Smart Images

Figure CN121872124A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of feed processing equipment technology, specifically a vibrating unloading device for processing feed for animal husbandry. Background Technology
[0002] With the rapid development of high-density, intensive aquaculture in my country, an increasing number of farmed animals are experiencing excessive fat accumulation in their livers. Aquatic animals suffering from fatty liver typically exhibit low stress tolerance, high mortality rates, and low feed utilization. Bullfrogs are highly susceptible to liver disease during farming, and factors such as high-density farming, frequent feeding, nutritionally unbalanced feed, and unstable environmental conditions often cause liver lesions in farmed bullfrogs and may further induce other diseases.
[0003] Currently, existing vibratory unloading devices for frog farming feed processing typically involve adding pre-mixed feed or additives into the inlet, allowing it to mix with other feeds inside. After simple mixing, the feed is discharged directly into a collection bucket through an inclined outlet for later use. However, during this process, if bile acids or other additives are added and the feed is relatively wet or semi-wet, they can easily stick or accumulate inside the device during mixing and discharge, affecting discharge and feed processing efficiency. In such cases, the machine needs to be stopped for manual cleaning, reducing overall work efficiency and increasing time costs.
[0004] For example, the prior art discloses a vibrating unloading device for bullfrog feed processing with application number CN217911529U. During trenching, the feed is quickly screened by the up-and-down reciprocating motion of the screen. After screening, the feed falls onto the guide plate and is discharged from the outlet by the guide plate. This technology is only suitable for processing dry feed, and the processing is relatively simple. There is a lot of dust during the discharge process, and the screen is easy to clog, which further reduces the efficiency of vibrating unloading. Therefore, those skilled in the art provide a vibrating unloading device for processing aquaculture feed to solve the problems mentioned in the background art. Summary of the Invention
[0005] To address the shortcomings of existing technologies, this invention provides a vibratory unloading device for processing feed for animal husbandry, which solves the problems that existing vibratory unloading devices have a relatively simple processing method during feed processing, generate a lot of dust during shaking and discharge, and are prone to screen clogging during screening, further reducing the efficiency of the device's vibratory unloading.
[0006] To achieve the above objectives, the present invention is implemented through the following technical solution:
[0007] The technical solution adopted by this invention to solve its technical problem is: a vibrating unloading device for processing feed for animal husbandry, including a vibrating feed box, a hopper fixedly connected to the upper end of the vibrating feed box, a guide plate installed at the bottom of the vibrating feed box, a display screen on the outer surface of the vibrating feed box, a speed-regulating feed assembly movably installed at one end of the vibrating feed box, a mixing opening box installed inside the vibrating feed box, a heating box installed inside the vibrating feed box and connected to the mixing opening box, and an auxiliary component movably arranged inside the mixing opening box. The vibrating feeder box is equipped with a traction control component that rotates inside. The mixing opening box is equipped with a stirring and mixing component that rotates inside. One end of the heating box is equipped with a control component that moves movably. The vibrating feeder box is equipped with a shaking and unloading component that rotates inside. The heating box is equipped with a transfer shaking component that rotates inside. The bottom of the heating box is rotatably connected to several opening and closing plates. One end of the lower surface of each opening and closing plate is provided with an arc-shaped stop. A toothed rod that slides laterally inside the vibrating feeder box and works in conjunction with the arc-shaped stop is provided. One end of the toothed rod is provided with a through-hole.
[0008] Preferably, the speed-regulating material assembly includes a discharge port opened at one end of the vibrating material machine box and a limiting plate movably installed inside the discharge port. One end of the limiting plate is fixedly connected to a control hook, and a plurality of limiting clips that cooperate with the control hook are symmetrically and obliquely arranged at one end of the vibrating material machine box.
[0009] Preferably, the auxiliary components include several sealing frames disposed at the bottom of the inner side of the mixing opening box, and a stirring box movably inserted into the inner side of the sealing frames. Several temperature control rods are interspersed on the upper surface of the stirring box. The stirring box and the sealing frames form a closed space and a temperature controller is disposed inside, which is connected to the temperature control rods for use.
[0010] Preferably, the transfer shaking assembly includes a second rotating shaft that is rotatably installed inside the heating box. A plurality of second cams are equidistantly fitted on the outer surface of the second rotating shaft. One end of the second rotating shaft passes through the heating box and is fixedly fitted with a second pulley. A plurality of limiting rods are symmetrically arranged inside the heating box. A transfer bridge is movably installed between the limiting rods on both sides and engages with the second cams. The limiting rods pass through the mixing opening box and extend to the upper end where a second spring is fitted. One end of the second rotating shaft passes through the heating box and is fixedly fitted with a worm gear.
[0011] Preferably, one end of the heating box is provided with two limiting slots, and a limiting swing frame that is movably installed inside the limiting slots is inserted and cooperates with the limiting slots. A linkage frame is fixedly connected through the middle of the limiting swing frame. Multiple rack plates are vertically fixedly connected to the upper surface of the linkage frame and are used to mesh with gears. The linkage frame passes through the heating box and enters its inner side to cooperate with the transfer bridge. Two limiting slide rods are vertically inserted through the middle of the linkage frame. A first spring is movably fitted on the lower outer surface of the linkage frame through the limiting slide rods. The upper part of the limiting slide rods is fixedly connected to the outer wall of the mixing opening box.
[0012] Preferably, the mixing assembly includes multiple sets of mixing plates that are rotatably installed inside the mixing opening box, and a gear that is fixedly fitted on one end of the mixing plates, and is used in conjunction with the stirring box.
[0013] Preferably, the vibrating unloading assembly includes a first rotating shaft rotatably disposed inside the vibrating feeder housing and a vibrating plate obliquely rotatably disposed inside the vibrating feeder housing. The vibrating feeder housing is provided with a baffle plate corresponding to the vibrating plate. A first cam that vibrates and engages with the vibrating plate is fixedly fitted on the outer surface of the first rotating shaft. A first pulley that is connected to a second pulley via a belt is fixedly fitted on one end of the first rotating shaft.
[0014] Preferably, the traction control assembly includes a guide plate disposed on the inner wall of the vibratory feeder housing, a traction gear plate rotatably disposed on the inner side of the guide plate, a rotating rod rotatably mounted at one end of the vibratory feeder housing, the rotating rod being fixedly fitted inside the guide plate and the traction gear plate, a shaft head disposed on the inner wall of the vibratory feeder housing, a V-shaped rod movably fitted on the outer surface of the shaft head for use with the traction gear plate, a traction rod obliquely fixedly connected to the bottom end of the V-shaped rod and inserted into the through-hole, and a drive motor fixedly mounted on the outside of the vibratory feeder housing, the output shaft of the drive motor being fixedly connected to the rotating rod.
[0015] Preferably, the vibratory feeder box is equipped with a dust collection hood that corresponds to the vibrating plate, and a vacuum cleaner is installed on the inner wall of the vibratory feeder box, with the vacuum cleaner connected to the dust collection hood.
[0016] Preferably, a worm gear is rotatably mounted on one end of the heating box and is used in conjunction with a worm wheel. The worm gear is connected to a rotating rod via a coupling.
[0017] The beneficial effects of this invention are:
[0018] (1) The vibration unloading device for processing feed for aquaculture described in this invention drives the second cam to rotate under the rotation of the second rotating shaft and continuously collide with the transfer bridge. After the transfer bridge is impacted by the second cam, it moves down and back again, causing the limiting rod to move. When the limiting rod moves, it continuously compresses the second spring and at the same time drives the stirring box to move up and down in the sealed frame. Thus, the feed introduced is heated and diverted by the temperature control rod and flows to the position of the mixing plate. The up and down movement of the transfer bridge drives the linkage frame to move. After the linkage frame moves, it drives the limiting swing frame to move up and down in the limiting slot. Then, the rack plate moves continuously under the drive of the linkage frame. When the rack plate moves, it can drive the gear to rotate repeatedly. When the gear rotates, it can drive the linkage frame to rotate. When the linkage frame rotates, it can fully stir and mix the preheated feed with liquid or other forms of mixture and discharge it into the heating box below for a short drying process.
[0019] (2) The vibratory unloading device for processing feed for aquaculture described in this invention compresses two first springs when the linkage frame moves downward and slides on the outer surface of the limiting slide bar. When the intermediate bridge resets, the first springs can push the linkage frame to reset. This process is repeated. When the mixed feed enters the heating box, it disperses. After the traction control component driven by the drive motor is turned, the rotating rod rotates. The rotated rod drives the traction toothed disc to rotate circumferentially inside the rotating rod. Whenever the traction toothed disc rotates to a predetermined position, it pushes the V-shaped rod to swing on the shaft head. After the V-shaped rod swings, it drives the traction rod to move. After the traction rod moves, it moves in the opening and drives the toothed rod to move in the vibratory feed box. When the toothed rod moves, it continuously abuts against the arc-shaped stop. When the toothed rod moves, the arc-shaped stop loses its supporting force, causing the opening and closing plate to rotate and reset continuously. This allows the dried mixed feed to gradually slide down from the opening and closing plate and fall onto the vibratory plate, which is beneficial for the mixing and drying of the processed feed, prevents adhesion residue, and ensures discharge.
[0020] (3) The vibratory unloading device for processing feed for aquaculture described in this invention drives the second pulley to rotate by the rotation of the second rotating shaft. Then the second pulley drives the first pulley to rotate by the belt. After the first pulley rotates, it drives the first rotating shaft to rotate. After the first rotating shaft rotates, it drives the first cam to rotate continuously and pushes the vibrating plate to shake up and down, shaking off the scattered material. When the vacuum cleaner is running, the material dust that falls onto the vibrating plate is sucked into the vacuum hood for treatment, ensuring that there is less material dust. By pulling up the control hook, the limiting plate moves within the discharge port, which can also adjust the size and closing of the discharge. When the appropriate position is reached, the rotation control hook and the limiting card collide, which is beneficial to adjust the size and efficiency of the discharge opening and can reduce dust. Attached Figure Description
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present invention;
[0023] Figure 2 This is a cross-sectional structural diagram of the present invention;
[0024] Figure 3 This is a schematic diagram of the auxiliary component structure of the present invention;
[0025] Figure 4 This is a schematic diagram of the mixing assembly and the transfer shaking assembly of the present invention;
[0026] Figure 5 This is a schematic diagram of the heating box structure of the present invention;
[0027] Figure 6 For the present invention Figure 2 Enlarged structural diagram at point A in the middle;
[0028] Figure 7 For the present invention Figure 4 Enlarged structural diagram at point B;
[0029] Figure 8 This is a top view of the structure of the present invention;
[0030] In the diagram: 1. Vibrating feeder housing; 2. Guide plate; 3. Hopper; 4. Display screen; 5. Discharge port; 551. Speed-regulating feed assembly; 552. Traction control assembly; 553. Mixing assembly; 554. Auxiliary assembly; 556. Transfer and vibration assembly; 557. Vibration unloading assembly; 6. Limiting clip; 7. Limiting plate; 8. Vibrating plate; 9. Vacuum cleaner; 10. Vacuum hood; 11. Limiting slide bar; 12. Baffle plate; 13. Limiting slot; 14. Heating box; 15. Mixing opening box; 16. Worm gear; 17. Worm; 18. Opening and closing plate; 19. Traction rod; 20. Gear; 2 1. Arc-shaped stop block; 22. First cam; 23. First rotating shaft; 24. First pulley; 25. Limiting swing arm; 26. Second pulley; 27. Linkage frame; 28. Rack plate; 29. First spring; 30. Gear; 31. Temperature controller; 32. Second spring; 33. Temperature control rod; 34. Stirring box; 35. Second cam; 36. Transfer bridge; 37. Mixing plate; 38. Traction gear plate; 39. Rotating rod; 40. V-shaped rod; 41. Through port; 42. Shaft head; 43. Limiting rod; 44. Drive motor; 45. Control hook; 46. Second rotating shaft; 47. Sealing frame. Detailed Implementation
[0031] This invention provides a vibratory unloading device for processing feed for livestock. Existing vibratory unloading devices have relatively simple processing methods, generate a lot of dust during shaking and discharge, and the screen is prone to clogging during screening, which further reduces the efficiency of the device's vibratory unloading.
[0032] To better understand the above technical solutions, the following will provide a detailed explanation of the technical solutions in conjunction with the accompanying drawings and specific implementation methods.
[0033] Example 1
[0034] The present invention provides a vibratory unloading device for processing feed for animal husbandry, such as... Figures 1-8As shown, the device includes a vibrating feeder housing 1, a hopper 3 fixedly connected to the upper end of the vibrating feeder housing 1, a guide plate 2 installed at the bottom of the vibrating feeder housing 1, a display screen 4 on the outer surface of the vibrating feeder housing 1, a mixing opening box 15 installed inside the vibrating feeder housing 1, and an auxiliary component 554 movably arranged inside the mixing opening box 15. The auxiliary component 554 includes several sealing frames 47 disposed at the bottom of the inner side of the mixing opening box 15, and an agitator box 34 movably inserted into the inner side of the sealing frames 47. The upper surface of the agitator box 34... Several temperature control rods 33 are interspersed throughout the vibrating feeder box 1. The stirring box 34 and the sealing frame 47 form a closed space, and a temperature controller 31 is installed inside, which is connected to the temperature control rods 33. A heating box 14 is installed inside the vibrating feeder box 1 and is connected to the mixing opening box 15. A drive motor 44 is fixedly installed on the outside of the vibrating feeder box 1. The output shaft of the drive motor 44 is fixedly connected to the rotating rod 39. A mixing assembly 553 is rotatably installed on the inside of the mixing opening box 15. The mixing assembly 553 includes a rotating rod. Multiple sets of mixing plates 37 are interlocked and installed inside the mixing opening box 15, and a gear 30 is fixedly fitted onto one end of the mixing plates 37 and works in conjunction with the stirring box 34. Several opening and closing plates 18 are rotatably connected to the bottom of the heating box 14. An arc-shaped stop block 21 is provided at one end of the lower surface of the opening and closing plate 18. A toothed rod 20 that works in conjunction with the arc-shaped stop block 21 is laterally slidably arranged inside the vibrating feeder box 1. One end of the toothed rod 20 has an opening 41. Two limiting slots 13 are provided at one end of the heating box 14. Furthermore, a limiting swing bracket 25 is movably provided on the inner side, which is inserted and cooperates with the limiting slot 13. A linkage frame 27 is fixedly connected through the middle of the limiting swing bracket 25. Multiple rack plates 28 are vertically fixedly connected to the upper surface of the linkage frame 27 and are used to mesh with the gear 30. The linkage frame 27 passes through the heating box 14 and enters its inner side to cooperate with the transfer bridge 36. Two limiting slide rods 11 are vertically inserted through the middle of the linkage frame 27. The limiting slide rods 11 are movably fitted with a first spring 29 through the lower outer surface of the linkage frame 27.The upper part of the limiting slide bar 11 is fixedly connected to the outer wall of the mixing opening box 15. The material to be mixed or bile acid processing material is poured from the hopper 3 into the mixing opening box 15. The operation of the drive motor 44 drives the rotating rod 39 to rotate. The rotation of the rotating rod 39 drives the worm gear 17 to rotate. The rotation of the worm gear 17 drives the worm wheel 16 to rotate, which in turn drives the second rotating shaft 46 to rotate. The rotation of the second rotating shaft 46 drives the second cam 35 to rotate and continuously collides with the intermediate bridge 36. After being impacted by the second cam 35, the intermediate bridge 36 moves back and forth, causing the limiting rod 43 to move. When the limiting rod 43 moves, it continuously compresses the second spring 32 and simultaneously drives the agitator. Box 34 continuously moves up and down within the sealed frame 47, causing the introduced feed to be heated and diverted by the temperature control rod 33 before flowing to the mixing plate 37. The up-and-down movement of the transfer bridge 36 drives the linkage frame 27 to move. The linkage frame 27 then causes the limiting swing frame 25 to move up and down within the limiting slot 13. Furthermore, driven by the linkage frame 27, the rack plate 28 continuously moves, driving the gear 30 to rotate repeatedly. The rotation of the gear 30, in turn, drives the linkage frame 27 to rotate. During the rotation of the linkage frame 27, the preheated feed is thoroughly mixed with liquid or other forms of feed before being discharged into the heating box 14 below for a brief drying process.
[0035] Example 2
[0036] Based on Example 1, such as Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 8As shown, a transfer vibration assembly 556 is rotatably installed inside the heating box 14. The transfer vibration assembly 556 includes a second rotating shaft 46 that is rotatably installed inside the heating box 14. Several second cams 35 are equidistantly fitted on the outer surface of the second rotating shaft 46. One end of the second rotating shaft 46 passes through the heating box 14 and is fixedly fitted with a second pulley 26. Several limiting rods 43 are symmetrically arranged inside the heating box 14. A transfer bridge 36 is movably installed between the limiting rods 43 on both sides and abuts against the second cams 35. The limiting rods 43 pass through... A mixing opening box 15 extends to the upper end and is fitted with a second spring 32. One end of a second rotating shaft 46 passes through a heating box 14 and is fixedly fitted with a worm gear 16. A worm 17 is rotatably mounted on one end of the heating box 14 and works in conjunction with the worm gear 16. The worm 17 is connected to a rotating rod 39 via a coupling. A traction control assembly 552 is rotatably mounted inside the vibrating feeder box 1. The traction control assembly 552 includes a guide plate 2 disposed on the inner wall of the vibrating feeder box 1. A traction gear 38 is rotatably mounted on the inner side of the guide plate 2. A traction gear 38 is rotatably mounted on one end of the vibrating feeder box 1. Rotating rod 39 is located inside the guide plate 2 and is fixedly mounted with the traction toothed plate 38. A shaft head 42 is provided on the inner wall of the vibratory feeder housing 1. A V-shaped rod 40, which mates with the traction toothed plate 38, is movably mounted on the outer surface of the shaft head 42. A traction rod 19, which intersects with the through-hole 41, is obliquely fixedly connected to the bottom end of the V-shaped rod 40. After the traction control component 552, driven by the drive motor 44, is turned, rotating rod 39 rotates. The rotated rod 39 drives the traction toothed plate 38 to rotate circumferentially within the rotating rod 39. Whenever the traction toothed plate 38 rotates to a predetermined position... The V-shaped rod 40 will swing on the shaft head 42. After the V-shaped rod 40 swings, it will drive the traction rod 19 to move. After the traction rod 19 moves, it will move in the opening 41 and drive the toothed rod 20 to move in the vibrating feed box 1. When the toothed rod 20 moves, it will continuously collide with the arc-shaped stop 21. When the toothed rod 20 moves, the arc-shaped stop 21 loses its supporting force, causing the opening and closing plate 18 to rotate and reset continuously. This allows the dried mixed feed to gradually slide down from the opening and closing plate 18 and fall onto the vibrating plate 8, which is beneficial for the treatment before vibration unloading and prevents material accumulation and uneven discharge.
[0037] Example 3
[0038] Based on Example 1, such as Figure 1 , Figure 2 , Figure 4 , Figure 5As shown, a speed-regulating material assembly 551 is movably installed at one end of the vibrating feeder housing 1. The speed-regulating material assembly 551 includes a discharge port 5 at one end of the vibrating feeder housing 1 and a limiting plate 7 movably installed inside the discharge port 5. A control hook 45 is fixedly connected to one end of the limiting plate 7. Several limiting clips 6 that cooperate with the control hook 45 are symmetrically and obliquely arranged at one end of the vibrating feeder housing 1. A vibrating unloading assembly 557 is rotatably installed inside the vibrating feeder housing 1. The vibrating unloading assembly 557 includes a first rotating shaft 23 rotatably installed inside the vibrating feeder housing 1 and a vibrating plate 8 obliquely rotatably installed inside the vibrating feeder housing 1. A baffle plate 12 corresponding to the vibrating plate 8 is provided inside the vibrating feeder housing 1. A first cam 22 that vibrates and cooperates with the vibrating plate 8 is fixedly fitted on the outer surface of the first rotating shaft 23. A first pulley 24 that is connected to the second pulley 26 via a belt is fixedly fitted at one end of the first rotating shaft 23. The vibrating feeder housing 1 is equipped with a dust collection hood 10, which corresponds to the vibrating plate 8. A dust collector 9 is installed on the inner wall of the vibrating feeder housing 1. The dust collector 9 is connected to the dust collection hood 10. The rotation of the second rotating shaft 46 drives the second pulley 26 to rotate. Then, the second pulley 26 drives the first pulley 24 to rotate via a belt. After the first pulley 24 rotates, it drives the first rotating shaft 23 to rotate. After the first rotating shaft 23 rotates, it drives the first cam 22 to rotate continuously and push the vibrating plate 8 to shake up and down, shaking off the scattered material. When the dust collector 9 is running, the material dust that falls on the vibrating plate 8 is sucked into the dust collection hood 10 for treatment, ensuring that there is less material dust. By pulling up the control hook 45, the limit plate 7 can move within the discharge port 5. It can also adjust the size and closing of the discharge. When the appropriate position is reached, the rotation control hook 45 is in contact with the limit card 6, which helps to improve the unloading efficiency and quality, avoid material accumulation, ensure orderly discharge, and reduce dust.
[0039] In use, the vacuum cleaner 9 and drive motor 44 are switched on by an external controller. The materials to be mixed or bile acid processing materials are then poured into the hopper 3 and into the mixing opening box 15. The drive motor 44 rotates the rotating rod 39, which in turn rotates the worm gear 17, which in turn rotates the worm wheel 16, causing the second rotating shaft 46 to rotate. The rotation of the second rotating shaft 46 causes the second cam 35 to rotate and continuously contact the intermediate bridge 36. The intermediate bridge 36, impacted by the second cam 35, reciprocates downwards, causing the limiting rod 43 to move. The limiting rod 43 continuously compresses the second spring 32, simultaneously causing the stirring box 34 to move up and down within the sealing frame 47. The activity involves heating and diverting the imported feed via temperature control rod 33 to the mixing plate 37. The up-and-down movement of the transfer bridge 36 drives the linkage frame 27, which in turn moves the limiting swing frame 25 within the limiting slot 13. Driven by the linkage frame 27, the rack plate 28 continuously moves, causing the gear 30 to rotate repeatedly. This rotation, in turn, drives the linkage frame 27 to rotate. During this rotation, the preheated feed is thoroughly mixed with liquid or other forms of feed before being discharged into the lower heating box 14 for a brief drying process. As the linkage frame 27 moves downwards, it compresses the two first springs 29, causing them to slide on the outer surface of the limiting slide rod 11. When bridge 36 resets, the first spring 29 can push the linkage frame 27 to reset. This process repeats. When the mixed feed enters the heating box 14, it disperses. After the traction control component 552 driven by the drive motor 44 is turned, the rotating rod 39 rotates. The rotated rotating rod 39 drives the traction toothed disc 38 to rotate circumferentially within the rotating rod 39. Whenever the traction toothed disc 38 rotates to a predetermined position, it pushes the V-shaped rod 40 to swing on the shaft head 42. After the V-shaped rod 40 swings, it drives the traction rod 19 to move. After the traction rod 19 moves, it moves within the opening 41 and drives the toothed rod 20 to move within the vibrating feeder box 1. When the toothed rod 20 moves, it continuously abuts against the arc-shaped stop 21. When the toothed rod 20 moves, the arc-shaped stop 21 loses its supporting force, causing the opening and closing plate 18 to continuously rotate and reset, thus ensuring that the drying process is smooth. The mixed feed gradually slides down from the opening plate 18 and falls onto the vibrating plate 8. The rotation of the second rotating shaft 46 drives the second pulley 26 to rotate, which in turn drives the first pulley 24 to rotate via a belt. The rotation of the first pulley 24 then drives the first rotating shaft 23 to rotate, which in turn drives the first cam 22 to rotate continuously, causing the vibrating plate 8 to vibrate up and down, shaking off the scattered feed. When the vacuum cleaner 9 is running, the dust falling onto the vibrating plate 8 is sucked into the vacuum hood 10 for processing, ensuring minimal dust accumulation. The upward control hook 45 moves the limiting plate 7 within the discharge port 5, adjusting the discharge size and closing position. When the appropriate position is reached, the rotation control hook 45 engages with the limiting plate 6.This completes the entire vibration unloading operation.
[0040] The foregoing has shown and described 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 embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by the present invention. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A vibrating discharge device for feed processing for farming, characterized by: The device includes a vibrating feeder housing (1), with a hopper (3) fixedly connected to the upper end of the vibrating feeder housing (1), a guide plate (2) installed at the bottom of the vibrating feeder housing (1), a display screen (4) on the outer surface of the vibrating feeder housing (1), a speed-regulating feed assembly (551) movably installed at one end of the vibrating feeder housing (1), a mixing opening box (15) installed inside the vibrating feeder housing (1), a heating box (14) installed inside the vibrating feeder housing (1) and connected to the mixing opening box (15), an auxiliary assembly (554) movably installed inside the mixing opening box (15), and a rotating assembly inside the vibrating feeder housing (1). The device includes a traction control assembly (552), a mixing assembly (553) rotatably mounted inside the mixing opening box (15), a shaking unloading assembly (557) rotatably mounted inside the vibrating feeder box (1), a transfer shaking assembly (556) rotatably mounted inside the heating box (14), a number of opening and closing plates (18) rotatably connected to the bottom of the heating box (14), an arc-shaped stop (21) is provided at one end of the lower surface of the opening and closing plate (18), and a toothed rod (20) that cooperates with the arc-shaped stop (21) is slidably mounted inside the vibrating feeder box (1), with a through-hole (41) at one end of the toothed rod (20).
2. A vibrating discharge device for processing of feed for farming according to claim 1, characterized in that: The speed-regulating material assembly (551) includes a discharge port (5) opened at one end of the vibrating material box (1) and a limiting plate (7) movably installed inside the discharge port (5). One end of the limiting plate (7) is fixedly connected to a control hook (45). A number of limiting clips (6) that cooperate with the control hook (45) are symmetrically and obliquely arranged at one end of the vibrating material box (1).
3. A vibrating discharge device for processing of feed for farming according to claim 1, characterized in that: The auxiliary component (554) includes several sealing frames (47) disposed at the bottom of the inner side of the mixing opening box (15) and a stirring box (34) movably inserted into the inner side of the sealing frame (47). Several temperature control rods (33) are interspersed on the upper surface of the stirring box (34). The stirring box (34) and the sealing frame (47) form a closed space and a temperature controller (31) is disposed inside, which is connected to the temperature control rods (33) for use.
4. A vibrating discharge device for the processing of fodder for farming according to claim 3, characterized in that: The transfer shaking assembly (556) includes a second rotating shaft (46) that is rotatably installed inside the heating box (14). Several second cams (35) are equidistantly mounted on the outer surface of the second rotating shaft (46). One end of the second rotating shaft (46) passes through the heating box (14) and is fixedly mounted with a second pulley (26). Several limiting rods (43) are symmetrically arranged inside the heating box (14). A transfer bridge (36) is movably installed between the limiting rods (43) on both sides and engages with the second cams (35). The limiting rods (43) pass through the mixing opening box (15) and extend to the upper end where a second spring (32) is mounted. One end of the second rotating shaft (46) passes through the heating box (14) and is fixedly mounted with a worm gear (16).
5. A vibrating discharge device for processing of feed for farming according to claim 1, characterized in that: Two limiting slots (13) are provided at one end of the heating box (14), and a limiting swing frame (25) that is inserted and engaged with the limiting slots (13) is movably provided on the inner side. A linkage frame (27) is fixedly connected through the middle of the limiting swing frame (25). Multiple rack plates (28) are vertically fixedly connected to the upper surface of the linkage frame (27) and mesh with the gear (30). The linkage frame (27) passes through the heating box (14) and enters its inner side to cooperate with the transfer bridge (36). Two limiting slide rods (11) are vertically inserted through the middle of the linkage frame (27). A first spring (29) is movably fitted through the lower outer surface of the linkage frame (27). The upper part of the limiting slide rod (11) is fixedly connected to the outer wall of the mixing opening box (15).
6. A vibrating discharge device for processing of feed for farming according to claim 3, characterized in that: The mixing assembly (553) includes multiple sets of mixing plates (37) that are rotatably installed inside the mixing opening box (15) and a gear (30) that is fixedly fitted on one end of the mixing plate (37) and is used in conjunction with the stirring box (34).
7. A vibrating discharge device for processing of feed for farming according to claim 1, characterized in that: The vibrating unloading assembly (557) includes a first rotating shaft (23) rotatably disposed inside the vibrating material box (1) and a vibrating plate (8) obliquely rotatably disposed inside the vibrating material box (1). The vibrating material box (1) is provided with a baffle plate (12) corresponding to the vibrating plate (8). The outer surface of the first rotating shaft (23) is fixedly fitted with a first cam (22) that vibrates and cooperates with the vibrating plate (8). One end of the first rotating shaft (23) is fixedly fitted with a first pulley (24) that is connected to the second pulley (26) by a belt.
8. The vibratory unloading device for processing aquatic feed according to claim 7, characterized in that: The traction control assembly (552) includes a guide plate (2) disposed on the inner wall of the vibratory feeder box (1). A traction gear plate (38) is rotatably disposed on the inner side of the guide plate (2). A rotating rod (39) is rotatably installed at one end of the vibratory feeder box (1). The rotating rod (39) is located inside the guide plate (2) and is fixedly fitted with the traction gear plate (38). A shaft head (42) is disposed on the inner wall of the vibratory feeder box (1). A V-shaped rod (40) that cooperates with the traction gear plate (38) is movably fitted on the outer surface of the shaft head (42). A traction rod (19) that is inserted into the opening (41) is obliquely fixedly connected to the bottom end of the V-shaped rod (40). A drive motor (44) is fixedly installed on the outside of the vibratory feeder box (1). The output shaft of the drive motor (44) is fixedly connected to the rotating rod (39).
9. A vibratory unloading device for processing aquatic feed according to claim 1, characterized in that: The vibrating material box (1) is equipped with a dust collection hood (10) inside, which corresponds to the vibrating plate (8). A vacuum cleaner (9) is installed on the inner wall of the vibrating material box (1), and the vacuum cleaner (9) is connected to the dust collection hood (10).
10. A vibratory unloading device for processing feed for animal husbandry according to claim 4, characterized in that: A worm gear (17) is rotatably mounted on one end of the heating box (14) and is used in conjunction with a worm wheel (16). The worm gear (17) is connected to the rotating rod (39) via a coupling.
Citation Information
Patent Citations
Vibration discharging device for bullfrog feed processing
CN217911529U