Intelligent feed processing and conveying device
By designing an intelligent transmission chain that drives the hopper, top unloading unit, and vibration unit, the problem of feed residue in bucket elevators is solved, achieving efficient feed conveying and removal and reducing waste.
Patent Information
- Application Number
- CN202510854762.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-25
- Publication Date
- 2025-11-14
AI Technical Summary
Existing bucket elevator conveyors leave behind a large amount of feed raw materials that cannot be conveyed to the mixing equipment during use, and these materials are difficult to remove, resulting in feed waste.
An intelligent feed processing and conveying device was designed. It uses a transmission chain to drive the hopper to make circular motion and is equipped with a top unloading unit and a vibration unit. The top unloading unit is used to unload the feed raw materials, and the vibration unit is used to compact the feed at the bottom to improve the hopper's holding efficiency. Protective components prevent feed particles from falling off. The vibration unit discharges unused feed by vibrating the striking rod.
This technology enables the efficient transport of feed ingredients accumulated at the bottom to the mixing equipment and timely discharge of unused feed, thereby increasing the hopper's capacity and conveying efficiency and reducing feed waste.
Smart Images

Figure CN120942813A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of feed upward conveying equipment, specifically an intelligent feed processing and conveying device. Background Technology
[0002] In feed processing plants, raw materials for feed need to be conveyed upwards to the mixing equipment. Since the inlet height of the mixing equipment is relatively large, using a screw conveyor would occupy a large area. In this case, a bucket elevator conveyor is used to transport the raw materials of feed upwards for feeding.
[0003] Existing bucket elevators use a closed frame containing a ring chain and several buckets. The frame has an inlet and a outlet at the bottom and top, respectively. Feed enters through the inlet, is collected by the buckets, and then, driven by the ring chain, is poured into the outlet. While this method saves space and allows for feeding at any height, it leaves a large amount of feed (approximately 5-8 buckets) inside the closed frame. This feed cannot be transferred to the mixing equipment and is difficult to remove from the closed frame, resulting in significant waste. Summary of the Invention
[0004] The purpose of this invention is to provide an intelligent feed processing and conveying device to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: an intelligent feed processing and conveying device, comprising: a conveying device frame and two rotating shafts rotatably assembled inside the conveying device frame, the two rotating shafts being arranged vertically; a motor is fixedly mounted on the outer wall of the conveying device frame, and the output end of the motor is assembled with the end of one of the rotating shafts via a coupling; a drive sprocket is fixedly sleeved on the outer surface of each rotating shaft, and a transmission chain is driven between the two drive sprockets; a plurality of equidistant hoppers are distributed outside the transmission chain, and the plurality of hoppers can perform circular motion following the transmission of the transmission chain; a protective component is provided outside the transmission chain to prevent feed raw material particles from being wrapped around the drive sprockets and the transmission chain; a discharge port is provided at the bottom of the conveying device frame, and the discharge port is a converging port; a detachable sealing plate is also provided at the bottom of the discharge port; and a feed inlet is connected to the outer bottom of the conveying device frame.
[0006] It also includes: a top unloading unit for unloading feed materials transported to the top, the top unloading unit being disposed on the top outer side of the conveying device frame;
[0007] The vibration unit is used to compact the feed material located at the bottom of the conveying device frame, so that the hopper can easily hold it. The vibration unit is located on the lower inner side of the conveying device frame.
[0008] Preferably, the protective component includes a lifting frame fixedly mounted inside the frame of the conveying device, with the rotating shaft rotatably passing through the lifting frame. The lifting frame surrounds the transmission chain, and the lifting frame and the transmission chain are equidistantly distributed. An annular groove is formed on the periphery of the lifting frame. A flexible metal ring is slidably attached to the outer surface of the lifting frame, and the flexible metal ring covers the annular groove. Several sets of fastening plates are fixedly installed on the outside of the lifting frame, with two fastening plates in each set, arranged opposite to each other. The fastening plates are used to restrict the displacement direction of the flexible metal ring. Several equally spaced openings are formed on the outer surface of the flexible metal ring, the length of which is the same as the width of the annular groove. A T-shaped block is slidably inserted into the interior of each opening, and the two ends of the T-shaped block are fixed to the pins of the hopper and the transmission chain, respectively.
[0009] Preferably, a partition frame is also fixedly installed inside the lifting frame. The partition frame is located in the middle of the lifting frame and is connected to the lifting frame on all four sides. The outer walls of both the lifting frame and the conveying device frame are provided with at least one set of air injection slots. Each set of air injection slots has two slots. An air injection pipe is fixedly installed inside each set of air injection slots. The two ends of the air injection pipe are respectively placed outside the conveying device frame and inside the lifting frame. An air pump is fixedly installed outside the conveying device frame, and the output end of the air pump is connected to the air injection pipe.
[0010] Preferably, the top unloading unit includes two symmetrically distributed slide rods fixedly mounted at the top of the conveying device frame in an inclined manner. The slide rods form an acute angle with the lifting frame, and the lifting frame is located between the two slide rods. A sliding sleeve block is slidably fitted on the outside of each slide rod, and a receiving frame is fixedly arranged between the two sliding sleeve blocks. A tension spring is fixedly arranged between the top of each sliding sleeve block and the conveying device frame, and the tension spring is movably sleeved on the outside of the slide rod. A connecting pipe is fixedly connected to the bottom of the receiving frame, and the connecting pipe slidably extends out of the outside of the conveying device frame. A sliding plate is covered at the upper end of the receiving frame, and a screen plate is fixedly embedded inside the sliding plate.
[0011] Preferably, a cylindrical strip is fixedly provided along the opening edge of the hopper, and there are two screen plates symmetrically distributed inside the sliding plate. The lifting frame is the center of symmetry of the two screen plates. The outer surface of the cylindrical strip only contacts the sliding plate and not the screen plates. The sliding plate slides over the upper end of the receiving frame, and the sliding direction of the sliding plate is perpendicular to the sliding rod. A moving component is provided between the sliding plate and the receiving frame, and the moving component is used to drive the sliding plate to slide back and forth.
[0012] Preferably, the moving component includes a drive motor fixed to the front end of the receiving frame, and a turntable is fixedly provided at the output end of the drive motor. A pin is fixedly provided at one end of the sliding plate near the drive motor. An elliptical groove is provided on the upper end surface of the turntable, and the end of the pin is slidably embedded in the elliptical groove.
[0013] Preferably, the vibration unit includes a limiting sleeve located on the inner wall of the conveying device frame, and the axis of the limiting sleeve is parallel to the axis of the rotating shaft. A sliding plate is slidably mounted inside the limiting sleeve. A first spring is fixedly mounted at one end of the sliding plate near the lifting frame, and a striking rod that slides through the limiting sleeve is fixedly mounted at the other end of the first spring. The exposed end of the striking rod abuts against the inner wall of the conveying device frame. A mounting base is fixedly mounted between the limiting sleeve and the conveying device frame. The limiting sleeve is located above one of the rotating shafts distributed below, and an actuating component is provided on the outer surface of the rotating shaft.
[0014] Preferably, the actuating component includes at least one set of arc-shaped trapezoidal blocks distributed around the lower outer periphery of the rotating shaft. The number of arc-shaped trapezoidal blocks is several and they are distributed equidistantly around the circumference. Each arc-shaped trapezoidal block has a connecting rod fixedly installed on the side closest to the rotating shaft. The end face of the arc-shaped trapezoidal block away from the lifting frame is close to the inner wall of the conveying device frame. The distance between the arc-shaped trapezoidal block and the conveying device frame is between 1-2 mm. The arc-shaped trapezoidal block is in the shape of a right-angled trapezoid.
[0015] Preferably, the exposed end of the striking rod is dome-shaped or has rounded corners.
[0016] Preferably, the mounting base is inclined.
[0017] Compared with the prior art, the beneficial effects of the present invention are:
[0018] This invention uses a top unloading unit to transport feed materials accumulated at the bottom of the conveying device frame upwards and transfer them to the interior of the mixing equipment. Furthermore, the discharge port facilitates the discharge of unused feed materials accumulated at the bottom of the conveying device frame. Simultaneously, the vibration unit accelerates the discharge process of unused feed materials and increases the density of feed materials accumulated at the bottom of the conveying device frame during transfer, thereby increasing the amount of feed that can be held in each hopper. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0020] Figure 2 This is a schematic diagram of the internal structure of the conveying device frame of the present invention;
[0021] Figure 3 This is a schematic diagram of the arc-shaped ladder block and connecting rod structure of the present invention;
[0022] Figure 4 For the present invention Figure 3 Enlarged view of point A in the middle;
[0023] Figure 5 This is a schematic diagram of the internal structure of the lifting frame of the present invention;
[0024] Figure 6 For the present invention Figure 5 Enlarged view at point B in the middle;
[0025] Figure 7 This is a schematic diagram of the T-block and cylindrical strip structure of the present invention;
[0026] Figure 8 For the present invention Figure 7 Enlarged view of point C in the middle.
[0027] In the diagram: 1. Conveying device frame; 2. Discharge port; 3. Feed port; 4. Lifting frame; 5. Rotating shaft; 6. Motor; 7. Drive sprocket; 8. Transmission chain; 9. Partition frame; 10. Hopper; 11. Mounting base; 12. Limiting sleeve; 13. Sliding plate; 14. First spring; 15. Striking rod; 16. Arc-shaped step block; 17. Connecting rod; 18. Receiving frame; 19. Connecting pipe; 20. Sliding block; 21. Sliding rod; 22. Tension spring; 23. Sliding plate; 24. Screen plate; 25. Cylindrical strip; 26. Pin; 27. Drive motor; 28. Turntable; 29. Elliptical groove; 30. Annular groove; 31. Flexible metal ring; 32. Fastening plate; 33. Opening groove; 34. T-block. Detailed Implementation
[0028] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0029] Example 1: Please refer to Figures 1-8 The diagram illustrates an intelligent feed processing and conveying device, comprising: a conveying device frame 1 and two rotating shafts 5 rotatably mounted inside the conveying device frame 1, the two rotating shafts 5 being arranged vertically. A motor 6 is fixedly mounted on the outer wall of the conveying device frame 1, and the output end of the motor 6 is connected to the end of one of the rotating shafts 5 via a coupling. A drive sprocket 7 is fixedly fitted onto the outer surface of each rotating shaft 5, and a transmission chain 8 is connected between the two drive sprockets 7. Several equidistant hoppers 10 are distributed outside the transmission chain 8. Bucket 10 can follow the transmission of the transmission chain 8 to make a circular motion. The transmission chain 8 is equipped with a protective component to prevent feed raw material particles from getting wrapped around the drive sprocket 7 and the transmission chain 8, affecting the normal transmission of the drive sprocket 7 and the transmission chain 8. The bottom of the conveying device frame 1 is equipped with a discharge port 2, which is a converging port. The bottom of the discharge port 2 is also equipped with a detachable sealing plate. The bottom outer side of the conveying device frame 1 is connected to the feed inlet 3, through which feed raw materials are added into the interior of the conveying device frame 1.
[0030] It also includes: a top unloading unit for unloading feed materials transported to the top, the top unloading unit being located on the top outer side of the conveyor frame 1;
[0031] The vibration unit is used to compact the feed material located at the bottom of the conveying device frame 1, so that the hopper 10 can easily pick it up. The vibration unit is located on the lower inner side of the conveying device frame 1.
[0032] The protective components include a lifting frame 4 fixedly mounted inside the frame 1 of the conveying device, with a rotating shaft 5 rotatably passing through the lifting frame 4. The lifting frame 4 surrounds the transmission chain 8, and the lifting frame 4 and transmission chain 8 are equidistantly distributed, meaning their overall shapes are identical. An annular groove 30 is provided on the outer periphery of the lifting frame 4. A flexible metal ring 31 is slidably attached to the outer surface of the lifting frame 4, covering the annular groove 30. Several sets of fastening plates 32 are fixedly installed on the outside of the lifting frame 4, with two fastening plates 32 in each set, arranged opposite each other. The fastening plates 32 are used to restrict the displacement direction of the flexible metal ring 31. The outer surface of the flexible metal ring 31 has... Several equally spaced opening slots 33, the length of which is the same as the width of the annular slot 30, are provided. Each opening slot 33 has a T-shaped block 34 slidably inserted inside it. The two ends of the T-shaped block 34 are fixed to the pins of the hopper 10 and the transmission chain 8, respectively. When the drive sprocket 7 drives the transmission chain 8, the transmission chain 8 can move synchronously with the flexible metal ring 31 and several hoppers 10 through the T-shaped block 34, so that the several hoppers 10 can move up and down. During the movement, since the distance between the hopper 10 and the flexible metal ring 31 is small, the deflection angle that can occur is very small, that is, the feed raw materials can be dug up from the bottom of the inner side of the conveying device frame 1 and transported upward.
[0033] A partition frame 9 is also fixedly installed inside the lifting frame 4. The partition frame 9 is located in the middle of the lifting frame 4, and the partition frame 9 is connected to the lifting frame 4 on all four sides. The outer walls of both the lifting frame 4 and the conveying device frame 1 are provided with at least one set of air injection slots. Each set of air injection slots has two slots. An air injection pipe is fixedly installed inside each set of air injection slots. The two ends of the air injection pipe are respectively placed outside the conveying device frame 1 and inside the lifting frame 4. An air pump is fixedly installed outside the conveying device frame 1, and the output end of the air pump is connected to the air injection pipe. When the air pump is running, it can inject air into the connected area between the lifting frame 4 and the partition frame 9 through the air injection pipe, so that the air pressure in the connected area between the lifting frame 4 and the partition frame 9 is slightly greater than the internal air pressure of the conveying device frame 1, thereby preventing small particles of feed raw materials from entering the interior of the lifting frame 4 through the gap between the protective component and the lifting frame 4.
[0034] The top unloading unit includes two symmetrically distributed slide rods 21 fixedly mounted at the top of the conveyor frame 1 at an inclined angle. The slide rods 21 form an acute angle with the lifting frame 4, and the lifting frame 4 is located between the two slide rods 21. A sliding sleeve block 20 is slidably fitted on the outside of each slide rod 21, and a receiving frame 18 is fixedly installed between the two sliding sleeve blocks 20. A tension spring 22 is fixedly installed between the top of each sliding sleeve block 20 and the conveyor frame 1, and the tension spring 22 is movably sleeved on the outside of the slide rod 21. A connecting pipe 19 is fixedly connected to the bottom of the receiving frame 18, and the connecting pipe 19 slidably extends out of the outside of the conveyor frame 1. The upper end of 18 is covered with a sliding plate 23, and a screen plate 24 is fixedly installed inside the sliding plate 23. The screen plate 24 can screen the feed raw material particles poured out of the hopper 10 to prevent the feed particles from entering the mixing equipment if they are too large, thus prolonging the time for the feed to be mixed evenly. When the hopper 10 rotates clockwise to the highest point and flips down, the feed raw material in the hopper 10 can be inverted on the surface of the screen plate 24. Only particles of suitable size can enter the interior of the receiving frame 18. Moreover, the opening edge of the hopper 10 can push the inclined surface of the sliding plate 23 against the receiving frame 18, thus preventing the receiving frame 18 from affecting the normal operation of the hopper 10.
[0035] The vibration unit includes a limiting sleeve 12 located on the inner wall of the conveying device frame 1, and the axis of the limiting sleeve 12 is parallel to the axis of the rotating shaft 5. A sliding plate 13 is slidably mounted inside the limiting sleeve 12. A first spring 14 is fixedly installed at one end of the sliding plate 13 near the lifting frame 4, and a striking rod 15 that slides through the limiting sleeve 12 is fixedly installed at the other end of the first spring 14. The exposed end of the striking rod 15 abuts against the inner wall of the conveying device frame 1. A mounting base 11 is fixedly installed between the limiting sleeve 12 and the conveying device frame 1. The limiting sleeve 12 is located above a rotating shaft 5 distributed below, and an actuating component is provided on the outer surface of the rotating shaft 5. The actuating component can rotate synchronously with the rotating shaft 5, and can continuously push the striking rod 15 into the limiting sleeve 12 and then release it instantly during rotation.
[0036] The actuating component includes at least one set of arc-shaped step blocks 16 distributed around the lower rotating shaft 5. There are several arc-shaped step blocks 16, which are equidistantly distributed in a circle. Each arc-shaped step block 16 is fixedly provided with a connecting rod 17 on the side near the rotating shaft 5. The end face of the arc-shaped step block 16 away from the lifting frame 4 is close to the inner wall of the conveying device frame 1. The distance between the arc-shaped step block 16 and the conveying device frame 1 is between 1-2 mm. When the arc-shaped step block 16 rotates with the rotating shaft 5, it can push the striking rod 15 through its inclined surface, so that the striking rod 15 moves toward the inside of the limiting sleeve 12. As the arc-shaped step block 16 continues to rotate, it can release the pushed striking rod 15 instantly, so that the striking rod 15 can elastically strike the inner wall of the conveying device frame 1 under the action of the first spring 14.
[0037] The exposed end of the striking rod 15 is dome-shaped or rounded, which facilitates the movement of the curved step block 16 on the striking rod 15 during rotation.
[0038] The mounting base 11 is inclined to prevent feed materials from accumulating on the upper surface of the mounting base 11 or between the mounting base 11 and the conveying device frame 1.
[0039] Example 2: Please refer to Figure 5 and Figure 6 This embodiment is a further explanation of Embodiment 1. A cylindrical strip 25 is fixedly provided on the opening edge of the hopper 10. There are two sieve plates 24, which are symmetrically distributed inside the sliding plate 23. The lifting frame 4 is the center of symmetry of the two sieve plates 24. The outer surface of the cylindrical strip 25 only contacts the sliding plate 23 and does not contact the sieve plates 24. The sliding plate 23 slides and covers the upper end of the receiving frame 18. The sliding direction of the sliding plate 23 is perpendicular to the sliding rod 21. That is, the sliding plate 23 can only slide back and forth against the upper end of the receiving frame 18. A moving part is provided between the sliding plate 23 and the receiving frame 18. The moving part is used to drive the sliding plate 23 to slide back and forth. Under the action of the moving part, the sliding plate 23 can be driven to slide back and forth against the upper end of the receiving frame 18 with the sieve plates 24. During the sliding process of the sliding plate 23 with the sieve plates 24, the screening speed of the sieve plates 24 on the feed raw materials can be accelerated.
[0040] The moving part includes a drive motor 27 fixed to the front end of the receiving frame 18, and a turntable 28 is fixedly provided at the output end of the drive motor 27. A pin 26 is fixedly provided on one end face of the sliding plate 23 near the drive motor 27. An elliptical groove 29 is provided on the upper end face of the turntable 28, and the end of the pin 26 is slidably embedded in the inside of the elliptical groove 29. When the drive motor 27 drives the turntable 28 to rotate, the pin 26 is restricted by the elliptical groove 29, and the sliding plate 23 carrying the screen plate 24 can slide back and forth in front of the upper end face of the receiving frame 18 through the pin 26.
[0041] Working principle: Workers can continuously add feed materials to be transferred into the conveyor frame 1 through the feed inlet 3. The motor 6 drives the transmission chain 8 clockwise through the drive sprocket 7. During the transmission process, several hoppers 10 can sequentially pick up the feed materials at the bottom of the inner side of the conveyor frame 1 and transfer them to the top. When the hopper 10 at the top flips down, it can turn the feed materials inside onto the upper end of the screen plate 24. Under the drive of the drive motor 27 to the turntable 28, the screen plate 24 can frequently move back and forth, so that the screen plate 24 can screen the feed materials on top of it. The feed materials with qualified particle size enter the receiving frame 18 and are finally transported into the mixing equipment through the connecting pipe 19. The large-particle feed materials will fall back to the bottom of the inner side of the conveyor frame 1, thereby ensuring the mixing degree of the feed mixing equipment and preventing the feed materials that form clumps from entering the mixing equipment and affecting the efficiency of the feed mixing process.
[0042] When the several arc-shaped step blocks 16 rotate, they can frequently push and release the striking rod 15. In conjunction with the action of the first spring 14, the striking rod 15 frequently strikes the side wall of the conveying device frame 1. Through the transmission of vibration, the feed material at the bottom inside the conveying device frame 1 can be compacted, making it easier for the hopper 10 to pick up the feed material. Moreover, when discharging the unused feed material accumulated at the bottom inside the conveying device frame 1, it is only necessary to open the sealing plate. With the continuous rotation of the rotating shaft 5, the frequent striking of the striking rod 15 can accelerate the discharge of unused feed material, preventing the feed material from clogging or sticking to the inner wall of the conveying device frame 1.
[0043] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0044] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An intelligent feed processing and conveying device, characterized in that, include: The conveying device frame (1) and two rotating shafts (5) are rotatably assembled inside the conveying device frame (1). Each rotating shaft (5) has a drive sprocket (7) fixedly sleeved on its outer surface, and a transmission chain (8) is connected between the two drive sprockets (7). Several equidistant hoppers (10) are distributed on the outside of the transmission chain (8). Several hoppers (10) can follow the transmission of the transmission chain (8) to make a circular motion. Protective components are provided on the outside of the transmission chain (8). A discharge port (2) is provided at the bottom of the conveying device frame (1), and a feed port (3) is connected to the outside of the bottom of the conveying device frame (1). Also includes: A top unloading unit is used to unload feed materials transported to the top, and the top unloading unit is located on the top outside of the conveying device frame (1); The vibration unit is used to compact the feed material located at the bottom of the conveying device frame (1) so that the hopper (10) can hold it. The vibration unit is located on the lower inner side of the conveying device frame (1).
2. The intelligent feed processing and conveying device according to claim 1, characterized in that: The protective component includes a lifting frame (4) fixedly mounted inside the frame (1) of the conveying device, and the rotating shaft (5) rotates through the lifting frame (4). The lifting frame (4) is fitted around the transmission chain (8). An annular groove (30) is provided on the periphery of the lifting frame (4). A flexible metal ring (31) is slidably attached to the outer surface of the lifting frame (4), and the flexible metal ring (31) covers the annular groove (30). Several sets of fastening plates (32) are fixedly provided on the outside of the lifting frame (4). The fastening plates (32) are used to limit the displacement direction of the flexible metal ring (31). Several equally spaced opening slots (33) are provided on the outer surface of the flexible metal ring (31). A T-shaped block (34) is slidably inserted into the interior of each opening slot (33), and the two ends of the T-shaped block (34) are fixed to the pins of the hopper (10) and the transmission chain (8), respectively.
3. The intelligent feed processing and conveying device according to claim 2, characterized in that: The lifting frame (4) is also fixedly provided with a partition frame (9). The outer walls of the lifting frame (4) and the conveying device frame (1) are provided with at least one set of air injection slots. Each set of air injection slots is fixedly equipped with an air injection pipe. An air pump is fixedly provided on the outside of the conveying device frame (1), and the output end of the air pump is connected to the air injection pipe.
4. The intelligent feed processing and conveying device according to claim 2, characterized in that: The top unloading unit includes two symmetrically distributed slide rods (21) fixedly mounted on the top of the conveying device frame (1) in an inclined manner, and the lifting frame (4) is located between the two slide rods (21). Each slide rod (21) is slidably fitted with a sliding sleeve block (20), and a receiving frame (18) is fixedly arranged between the two sliding sleeve blocks (20). A tension spring (22) is fixedly arranged between the top of each sliding sleeve block (20) and the conveying device frame (1). A connecting pipe (19) is connected to the bottom of the receiving frame (18), and the connecting pipe (19) slides out of the outside of the conveying device frame (1). A sliding plate (23) is covered at the upper end of the receiving frame (18), and a screen plate (24) is fixedly installed inside the sliding plate (23).
5. The intelligent feed processing and conveying device according to claim 4, characterized in that: A cylindrical strip (25) is fixedly provided on the opening edge of the hopper (10). There are two screen plates (24), which are symmetrically distributed inside the sliding plate (23). The sliding plate (23) slides and covers the upper end of the receiving frame (18). The sliding direction of the sliding plate (23) is perpendicular to the sliding rod (21). A moving part is provided between the sliding plate (23) and the receiving frame (18). The moving part is used to drive the sliding plate (23) to slide back and forth.
6. The intelligent feed processing and conveying device according to claim 5, characterized in that: The moving component includes a drive motor (27) fixed to the side wall of the receiving frame (18), and a turntable (28) is fixedly provided at the output end of the drive motor (27). A pin (26) is fixedly provided on one end face of the sliding plate (23) near the drive motor (27). An elliptical groove (29) is opened on the upper end face of the turntable (28), and the end of the pin (26) is slidably embedded in the interior of the elliptical groove (29).
7. The intelligent feed processing and conveying device according to claim 2, characterized in that: The vibration unit includes a limiting sleeve (12) located on the inner wall of the conveying device frame (1). A sliding plate (13) is slidably mounted inside the limiting sleeve (12). A first spring (14) is fixedly provided at one end of the sliding plate (13) near the lifting frame (4), and a striking rod (15) that slides through the limiting sleeve (12) is fixedly provided at the other end of the first spring (14). The exposed end of the striking rod (15) abuts against the inner wall of the conveying device frame (1). A mounting base (11) is fixedly provided between the limiting sleeve (12) and the conveying device frame (1), and a triggering component is provided on the outer surface of the rotating shaft (5).
8. The intelligent feed processing and conveying device according to claim 7, characterized in that: The actuating component includes at least one set of arc-shaped steps (16) distributed around the lower pivot (5). The number of arc-shaped steps (16) is several and they are distributed equidistantly around the circumference. Each arc-shaped step (16) has a connecting rod (17) fixedly provided on the side near the pivot (5).
9. The intelligent feed processing and conveying device according to claim 7, characterized in that: The exposed end of the striking rod (15) is dome-shaped.
10. The intelligent feed processing and conveying device according to claim 7, characterized in that: The mounting base (11) is inclined.
Citation Information
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