Special intelligent transportation equipment for cereal feed
By introducing the linkage of anti-clogging components, drive components, and striking components into the grain feed transportation equipment, the problem of discharge pipe blockage in grain feed transportation is solved, achieving a highly efficient anti-clogging effect, adapting to transportation needs with different viscosity and humidity, and reducing operation and maintenance costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 淄博新牧机械科技有限公司
- Filing Date
- 2026-03-27
- Publication Date
- 2026-04-24
AI Technical Summary
During the transportation of grain feed, fine powder can easily deposit on the wall of the discharge pipe, forming material arches or bridging, which can cause blockage of the discharge pipe, affect the conveying efficiency, and increase operation and maintenance costs.
A special intelligent transportation device for grain feed was designed. Through the linkage of anti-blocking components, driving components and knocking components, the rotation of the spiral conveyor blades drives the anti-blocking plate to rotate in the discharge pipe. Combined with knocking and scraping functions, it prevents blockage. The position of the anti-blocking plate is controlled by the intermittent on and off of the annular electromagnet, so as to achieve multiple anti-blocking effects.
It effectively prevents blockage of the discharge pipe, ensures smooth transport of grain feed, reduces equipment downtime risk and maintenance costs, and adapts to the transportation needs of high-humidity and high-viscosity feed.
Smart Images

Figure CN121913282A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of feed transportation, and more particularly to intelligent transportation equipment for grain feed. Background Technology
[0002] Grain-based feeds (such as powdered or granular materials processed from corn and wheat) are the main energy source for modern livestock and poultry farming. In the feed processing and supply process, transportation equipment plays a crucial role in transporting raw materials from warehouses to production workshops or delivering finished feed to transport vehicles and feed towers. With the increasing scale of livestock farming, the efficiency and stability of feed transportation directly affect production continuity and operating costs.
[0003] Screw conveyors (also known as augers) are a commonly used conveying equipment. Due to their simple structure, convenient operation, large conveying capacity, small footprint, and ability to achieve closed conveying, they are widely used in the unloading stage of grain and feed transportation equipment. However, during the transportation of grain feed, the presence of a certain proportion of fine powder (such as starch, wheat middlings, and bran), or reduced flowability due to environmental humidity, and the compressive stress after being extruded and conveyed by the auger, can cause fine powder to easily deposit and bridge on the pipe wall when the feed enters the vertical or inclined discharge pipe. This forms stable material arches or bridging structures, leading to blockages in the discharge pipe, severely affecting conveying efficiency, and even causing equipment downtime, feed loss, and increased maintenance costs. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this invention provides a specialized intelligent transportation device for grain feed, which solves the problems mentioned in the background section.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a special intelligent transport equipment for grain feed, comprising a support frame, a transport cylinder mounted on the support frame, a partition inside the transport cylinder, a rotating rod rotatably mounted between the inner wall of the transport cylinder and the partition, a spiral conveying blade mounted on the outer side of the rotating rod, an inlet pipe and an outlet pipe respectively connected to the outer side of the transport cylinder, an anti-blocking component for preventing blockage of the outlet pipe mounted on the transport cylinder, and a drive component that works in conjunction with the spiral conveying blade to drive the anti-blocking component on both the partition and the transport cylinder.
[0006] The anti-blocking component includes a vertical rod rotatably disposed inside the conveying cylinder, the bottom end of the vertical rod extending into the interior of the discharge pipe, a fixing ring disposed on the outer side of the vertical rod, two fixing blocks symmetrically distributed on the outer side of the fixing ring, an anti-blocking plate disposed on the fixing block, and a groove provided on the side of the fixing block away from the fixing ring, and an adjusting component for adjusting the position of the anti-blocking plate disposed in the groove.
[0007] The outer side of the transport cylinder is provided with a striking component that works in conjunction with the drive assembly to strike the discharge pipe.
[0008] As a further technical solution of the present invention, a motor is provided on the outside of the transport cylinder, and the output shaft of the motor is connected to one end of the rotating rod.
[0009] As a further technical solution of the present invention, the driving assembly includes a movable rod that slides through the partition plate. A connecting block is provided at one end of the movable rod near the spiral conveying blade, and the end of the connecting block away from the movable rod contacts the spiral conveying blade. The end of the movable rod away from the connecting block passes through the conveying cylinder and is provided with a horizontal plate. A first spring is sleeved on the outside of the movable rod, and the two ends of the first spring are respectively connected to the horizontal plate and the outside of the conveying cylinder.
[0010] As a further technical solution of the present invention, an installation ring is provided on the outer side of the movable rod, a toothed plate is provided on one side of the installation ring, and a gear is provided on the outer side of the vertical rod, and the toothed plate meshes with the gear.
[0011] As a further technical solution of the present invention, the adjustment component includes a magnetic block slidably disposed in the groove, a second spring is provided on one side of the magnetic block, the end of the second spring away from the magnetic block is connected to the inner wall of the groove, a connecting rod is provided on the end of the magnetic block away from the second spring, and the end of the connecting rod away from the magnetic block passes through the groove and is connected to one side of the anti-blocking plate.
[0012] As a further technical solution of the present invention, an annular electromagnet is provided in the groove to magnetically engage with the magnetic block, and the connecting rod moves through the annular electromagnet.
[0013] As a further technical solution of the present invention, a connecting ring is provided on the outer side of the discharge pipe, a rotating ring is rotatably provided on the outer side of the connecting ring, and two symmetrically distributed protrusions are provided on the outer side of the rotating ring.
[0014] As a further technical solution of the present invention, the striking component includes a U-shaped plate disposed on one side of the transport cylinder, and two striking plates symmetrically distributed on the side of the U-shaped plate near the transport cylinder. An mounting plate is disposed on the upper part of the U-shaped plate, and the top end of the mounting plate is connected to the bottom end of the horizontal plate.
[0015] As a further technical solution of the present invention, the transport cylinder is provided with two guide rods symmetrically distributed on the side near the U-shaped plate, and the end of the guide rod away from the transport cylinder slides through the U-shaped plate.
[0016] As a further technical solution of the present invention, the outer thread of the rotating ring is provided with two fastening bolts symmetrically distributed, and the outer side of the connecting ring is provided with four locking holes arranged in a circumferential array. One end of the fastening bolt penetrates into the inner side of the rotating ring and extends into the corresponding locking hole.
[0017] This invention provides a dedicated intelligent transportation device for grain feed, which has the following advantages compared with the prior art: This intelligent grain feed transport equipment is designed with anti-blocking components and drive components working together. The drive component utilizes the rotation of the spiral conveyor blades to automatically trigger operation without an additional power source, driving the vertical rod and anti-blocking plate to rotate back and forth in the discharge pipe. This continuously agitates the grain feed in the discharge pipe, effectively breaking up the material arches and bridging structures formed by the feed, preventing blockage of the discharge pipe from the inside, ensuring smooth grain feed transport, and avoiding feed loss and efficiency reduction caused by equipment downtime.
[0018] This intelligent transport equipment for grain feed is designed with a striking component and a drive component linked together. The reciprocating movement of the moving rod drives the striking plate to continuously collide with the protrusions on the rotating ring. The striking force is transmitted to the inner wall of the discharge pipe, creating vibration and disturbance, which loosens and dislodges the feed accumulated in the pipe. Together with the anti-clogging component, it forms a double anti-clogging protection, further improving the anti-clogging effect. It is especially suitable for scenarios where high humidity and high viscosity feed are prone to clogging, reducing the probability of clogging in the discharge pipe.
[0019] This intelligent transport equipment for grain feed is designed with an adjustment component. The intermittent switching of a ring electromagnet drives the magnetic block and anti-blocking plate to reciprocate and extend. While rotating and disturbing the feed, the anti-blocking plate can also scrape off the feed stuck to the inner wall of the discharge pipe, avoiding blockage and residue caused by long-term adhesion and hardening of the feed, thus ensuring feed quality and reducing cleaning and maintenance costs. Attached Figure Description
[0020] Figure 1 A schematic diagram of a specialized intelligent transportation equipment for grain feed. Figure 2 A schematic diagram of the internal structure of a specialized intelligent transportation equipment for grain feed. Figure 3 This is a schematic diagram of a partial connection structure between the drive component and the vertical rod in a special intelligent transportation equipment for grain feed. Figure 4 A cross-sectional view of the connection structure between the discharge pipe and the anti-clogging component in a special intelligent transportation equipment for grain feed; Figure 5 for Figure 4 Enlarged schematic diagram of section A of the structure; Figure 6A schematic diagram of the connection structure between the discharge pipe and the connecting ring in a special intelligent transportation equipment for grain feed; Figure 7 A schematic diagram of the separation structure of the rotating ring and the connecting ring in a special intelligent transportation equipment for grain feed; Figure 8 A schematic diagram of the structure of the striking component and the protrusion used in a special intelligent transportation equipment for grain feed; Figure 9 for Figure 8 An enlarged schematic diagram of the structure of part B in the middle section.
[0021] In the diagram: 1. Support frame; 2. Conveying cylinder; 3. Partition plate; 4. Rotating rod; 5. Spiral conveyor blade; 6. Feed pipe; 7. Discharge pipe; 8. Anti-blocking component; 81. Vertical rod; 82. Fixing ring; 83. Fixing block; 84. Anti-blocking plate; 85. Adjusting component; 851. Magnetic block; 852. Second spring; 853. Connecting rod; 854. Ring electromagnet; 86. Gear; 9. Drive component; 91. Moving rod; 92. Connecting block; 93. Horizontal plate; 94. First spring; 95. Mounting ring; 96. Toothed plate; 10. Striking component; 101. U-shaped plate; 102. Striking plate; 103. Mounting plate; 104. Guide rod; 11. Motor; 12. Connecting ring; 13. Rotating ring; 14. Protrusion; 15. Fastening bolt; 16. Locking port. Detailed Implementation
[0022] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0023] Please see Figure 1-9 This invention provides a technical solution for a special intelligent transportation device for grain feed: The special intelligent transportation device for grain feed includes a support frame 1, a transportation cylinder 2 is provided on the support frame 1, a partition 3 is provided inside the transportation cylinder 2, a rotating rod 4 is rotatably provided between the inner wall of the transportation cylinder 2 and the partition 3, a spiral conveying blade 5 is provided on the outer side of the rotating rod 4, an inlet pipe 6 and an outlet pipe 7 are respectively connected to the outer side of the transportation cylinder 2, an anti-blocking component 8 is provided on the transportation cylinder 2 to prevent the outlet pipe 7 from being blocked, and a driving component 9 is provided on the partition 3 and the transportation cylinder 2 together to cooperate with the spiral conveying blade 5 to drive the anti-blocking component 8.
[0024] In this embodiment, when transporting grain feed, the grain feed is put into the inside of the transport cylinder 2 through the feed pipe 6. At this time, the rotating rod 4 drives the spiral conveying blade 5 to rotate, which can transport the grain feed in the transport cylinder 2. The transported grain feed is discharged through the discharge pipe 7. During the discharge process, the spiral conveying blade 5 and the drive component 9 work together to drive the anti-blocking component 8 to work synchronously, thereby effectively preventing the discharge pipe 7 from being blocked and ensuring the smooth transport of grain feed.
[0025] like Figure 1 and Figure 2 As shown, a motor 11 is installed on the outside of the transport cylinder 2, and the output shaft of the motor 11 is connected to one end of the rotating rod 4.
[0026] In this embodiment, after the grain feed is put into the inside of the conveyor cylinder 2, the motor 11 starts and drives the rotating rod 4 to rotate. The rotating rod 4 then drives the outer spiral conveying blade 5 to rotate synchronously, thereby stably conveying the grain feed in the conveyor cylinder 2, so that the grain feed moves along the length of the conveyor cylinder 2 and is discharged from the discharge pipe 7.
[0027] like Figure 4 and Figure 5 As shown, the anti-blocking component 8 includes a vertical rod 81 rotatably disposed inside the conveying cylinder 2. The bottom end of the vertical rod 81 extends into the interior of the discharge pipe 7. A fixing ring 82 is provided on the outer side of the vertical rod 81. Two fixing blocks 83 are symmetrically distributed on the outer side of the fixing ring 82. An anti-blocking plate 84 is provided on the fixing block 83.
[0028] like Figure 2 and Figure 3 As shown, the drive assembly 9 includes a movable rod 91 that slides through the partition 3. A connecting block 92 is provided at one end of the movable rod 91 near the spiral conveying blade 5, and the end of the connecting block 92 away from the movable rod 91 contacts the spiral conveying blade 5. The end of the movable rod 91 away from the connecting block 92 passes through the conveying cylinder 2 and is provided with a horizontal plate 93. A first spring 94 is sleeved on the outside of the movable rod 91, and the two ends of the first spring 94 are respectively connected to the horizontal plate 93 and the outside of the conveying cylinder 2.
[0029] like Figure 2 and Figure 3 As shown, a mounting ring 95 is provided on the outer side of the moving rod 91, a toothed plate 96 is provided on one side of the mounting ring 95, and a gear 86 is provided on the outer side of the vertical rod 81, and the toothed plate 96 meshes with the gear 86.
[0030] In this embodiment, during the rotation of the spiral conveying blade 5, the connecting block 92 contacts the spiral conveying blade 5, and the spiral conveying blade 5 applies an axial thrust to the connecting block 92 when rotating, pushing the connecting block 92 and the moving rod 91 to move axially together, and the first spring 94 on the outside of the moving rod 91 is stretched; when the spiral conveying blade 5 rotates to the point of disengaging from the connecting block 92, the first spring 94 resets and pulls the moving rod 91 and the connecting block 92 to move in the opposite direction to reset, thereby causing the moving rod 91 to drive the toothed plate 96 to perform reciprocating linear motion. The toothed plate 96, through meshing with the gear 86, drives the vertical rod 81 to perform reciprocating rotational motion. The vertical rod 81, through the fixing ring 82 and the fixing block 83, drives the anti-blocking plate 84 to rotate synchronously in the discharge pipe 7, disturbing the grain feed in the discharge pipe 7, thereby preventing blockage inside the discharge pipe 7, and thus ensuring the normal discharge of grain feed.
[0031] like Figure 6 , Figure 8 and Figure 9 As shown, a connecting ring 12 is provided on the outer side of the discharge pipe 7, a rotating ring 13 is rotatably provided on the outer side of the connecting ring 12, and two symmetrically distributed protrusions 14 are provided on the outer side of the rotating ring 13.
[0032] like Figure 6 and Figure 7 As shown, the outer side of the rotating ring 13 is provided with two symmetrically distributed fastening bolts 15, and the outer side of the connecting ring 12 is provided with four locking holes 16 arranged in a circumferential array. One end of the fastening bolt 15 passes through the inner side of the rotating ring 13 and extends into the corresponding locking hole 16.
[0033] In this embodiment, when transporting grain feed with high viscosity or high moisture content, the operator can loosen the fastening bolt 15 to remove it from the corresponding locking port 16, thereby releasing the limit on the rotating ring 13. Then, the rotating ring 13 is rotated 90 degrees to change the position of the protrusion 14, and the fastening bolt 15 is screwed back into the new locking port 16 to complete the relocking of the rotating ring 13.
[0034] like Figure 1 , Figure 2 , Figure 8 and Figure 9 As shown, a striking component 10 is provided on the outer side of the conveying cylinder 2, which works with the driving component 9 to strike the discharge pipe 7. The striking component 10 includes a U-shaped plate 101 provided on one side of the conveying cylinder 2. Two striking plates 102 are symmetrically distributed on the side of the U-shaped plate 101 near the conveying cylinder 2. A mounting plate 103 is provided on the upper part of the U-shaped plate 101, and the top of the mounting plate 103 is connected to the bottom of the horizontal plate 93.
[0035] In this embodiment, after the position of the protrusion 14 is switched and the rotating ring 13 is relocked by the fastening bolt 15, the side of the striking plate 102 away from the U-shaped plate 101 maintains corresponding contact with the protrusion 14. When the moving rod 91 moves back and forth axially, it will drive the horizontal plate 93 to move back and forth simultaneously. The horizontal plate 93 drives the U-shaped plate 101 to move back and forth synchronously through the mounting plate 103, thereby driving the two striking plates 102 on the U-shaped plate 101 to move synchronously.
[0036] When the moving rod 91 resets and drives the U-shaped plate 101 to reset towards the protrusion 14, the striking plate 102 will collide with the protrusion 14 on the outer side of the rotating ring 13. The striking force generated by the collision is transmitted to the inner wall of the discharge pipe 7 through the rotating ring 13 and the connecting ring 12 in sequence. This effectively vibrates and disturbs the grain feed that is piled up and bridged in the discharge pipe 7, causing the piled feed to loosen, fall off and be discharged smoothly. As the moving rod 91 continues to move back and forth, the striking plate 102 will continuously and alternately strike the protrusion 14, thereby generating continuous vibration in the discharge pipe 7. This, together with the anti-blocking component 8, forms a double protection against the disturbance of the feed inside the discharge pipe 7, effectively preventing the discharge pipe 7 from becoming blocked, further ensuring the smoothness of the grain feed conveying process, and adapting to the transportation needs of high-viscosity and high-humidity grain feed.
[0037] like Figure 8 and Figure 9 As shown, two guide rods 104 are symmetrically distributed on the side of the transport cylinder 2 near the U-shaped plate 101, and the end of the guide rod 104 away from the transport cylinder 2 slides through the U-shaped plate 101.
[0038] In this embodiment, during the reciprocating movement of the U-shaped plate 101 with the drive assembly 9, the guide rod 104 slides and guides the U-shaped plate 101 and limits its movement, ensuring that the U-shaped plate 101 and the striking plate 102 move stably along a straight line, preventing the U-shaped plate 101 from shifting or shaking during the movement, and enabling the striking plate 102 to stably cooperate with the protrusion 14 to achieve the striking action, thereby improving the reliability and stability of the striking anti-blocking mechanism.
[0039] like Figure 4 and Figure 5 As shown, a groove is provided on the side of the fixing block 83 away from the fixing ring 82. An adjustment component 85 for adjusting the position of the anti-blocking plate 84 is provided in the groove. The adjustment component 85 includes a magnetic block 851 slidably disposed in the groove. A second spring 852 is provided on one side of the magnetic block 851. The end of the second spring 852 away from the magnetic block 851 is connected to the inner wall of the groove. A connecting rod 853 is provided on the end of the magnetic block 851 away from the second spring 852. The end of the connecting rod 853 away from the magnetic block 851 passes through the groove and is connected to one side of the anti-blocking plate 84.
[0040] like Figure 5As shown, a ring electromagnet 854 is provided in the groove, which magnetically engages with the magnetic block 851, and the connecting rod 853 moves through the ring electromagnet 854.
[0041] In this embodiment, to further prevent grain feed from adhering to the inside of the discharge pipe 7, the annular electromagnet 854 can be intermittently energized during the synchronous rotation of the anti-blocking plate 84 and the vertical rod 81. When the annular electromagnet 854 is energized, it generates a magnetic attraction force to attract the magnetic block 851, causing the magnetic block 851 to slide inside the groove against the elastic force of the second spring 852. The magnetic block 851 drives the anti-blocking plate 84 to move to fit against the inner wall of the discharge pipe 7 through the connecting rod 853. Based on the anti-blocking plate 84 disturbing the feed as it rotates with the vertical rod 81, the scraping action between the anti-blocking plate 84 and the inner wall of the discharge pipe 7 is added to scrape off the grain feed adhering to the inner wall of the discharge pipe 7, avoiding blockage caused by long-term adhesion and hardening of the feed, and reducing feed residue. Combined with the vibration anti-blocking of the striking component 10 and the rotation disturbance of the anti-blocking plate 84, a triple anti-blocking protection is formed, further improving the anti-blocking effect and adapting to the transportation needs of grain feed with different viscosity.
[0042] When the annular electromagnet 854 is de-energized, the magnetic attraction disappears, the second spring 852 resets and pushes the magnetic block 851 to slide back in the groove. Then, through the connecting rod 853, it drives the anti-blocking plate 84 to move away from the inner wall of the discharge pipe 7, so that the anti-blocking plate 84 is separated from the inner wall of the discharge pipe 7. By intermittently switching the annular electromagnet 854 on and off, the reciprocating extension and retraction of the anti-blocking plate 84 can be realized. This can efficiently scrape off the material stuck to the wall, and avoid excessive wear caused by continuous friction between the anti-blocking plate 84 and the inner wall of the discharge pipe 7, thus balancing the anti-blocking effect and service life.
[0043] The working principle of this invention is as follows: First, grain feed is fed into the conveying cylinder 2 through the feed pipe 6. The motor 11 drives the spiral conveying blade 5 to rotate through the rotating rod 4, which stably conveys the grain feed in the conveying cylinder 2, causing the grain feed to move along the length of the conveying cylinder 2 and be discharged from the discharge pipe 7. During the rotation of the spiral conveying blade 5, it continuously contacts the connecting block 92 and applies axial thrust, pushing the connecting block 92 and the moving rod 91 to move axially together, stretching the first spring 94 on the outside of the moving rod 91. When the spiral conveying blade 5 disengages from the connecting block 92, the first spring 94 resets and pulls the moving rod 91 and the connecting block 92 to move in the opposite direction, causing the moving rod 91 to drive the toothed plate 96 to perform reciprocating linear motion. The toothed plate 96, through meshing with the gear 86, drives the vertical rod 81 to perform reciprocating rotational motion. The vertical rod 81, through the fixing ring 82 and the fixing block 83, drives the anti-blocking plate 84 to rotate synchronously in the discharge pipe 7, disturbing the grain feed in the discharge pipe 7 and achieving the first layer of anti-blocking.
[0044] Simultaneously, the reciprocating movement of the moving rod 91 drives the horizontal plate 93 to move. The horizontal plate 93, through the mounting plate 103, drives the striking plate 102 to collide with the protrusion 14. The striking force is transmitted to the inner wall of the discharge pipe 7 through the rotating ring 13 and the connecting ring 12, creating vibration disturbance to the feed that is piled up and bridged in the pipe, thus achieving the second layer of anti-blocking. In addition, during the rotation of the anti-blocking plate 84, the annular electromagnet 854 in the adjusting component 85 is intermittently powered on and off. When powered on, the magnetic block 851 overcomes the elastic force of the second spring 852 and slides in the groove. Through the connecting rod 853, it drives the anti-blocking plate 84 to adhere to the inner wall of the discharge pipe 7, scraping off the feed that sticks to the wall. When powered off, the second spring 852 resets and drives the anti-blocking plate 84 to detach from the pipe wall, realizing the reciprocating extension and retraction of the anti-blocking plate 84, forming the third layer of anti-blocking. The triple protection works together to effectively prevent the discharge pipe 7 from being blocked, reduce feed residue, balance the anti-blocking effect with the service life of the equipment, ensure smooth grain feed transportation throughout the process, and adapt to the transportation needs of grain feed with different viscosity and moisture.
[0045] The above description is merely a preferred embodiment of the present invention. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described or explained in this invention are implemented according to conventional methods in the art unless otherwise specified or limited.
Claims
1. A specialized intelligent transport equipment for grain feed, characterized in that, The system includes a support frame (1), on which a transport cylinder (2) is provided. Inside the transport cylinder (2), a partition (3) is provided. A rotating rod (4) is rotatably provided between the inner wall of the transport cylinder (2) and the partition (3). A spiral conveying blade (5) is provided on the outer side of the rotating rod (4). An inlet pipe (6) and an outlet pipe (7) are respectively connected to the outer side of the transport cylinder (2). An anti-blocking component (8) is provided on the transport cylinder (2) to prevent the outlet pipe (7) from being blocked. A drive component (9) is provided on both the partition (3) and the transport cylinder (2) to work in conjunction with the spiral conveying blade (5) to drive the anti-blocking component (8). The anti-blocking component (8) includes a vertical rod (81) rotatably disposed inside the conveying cylinder (2), the bottom end of the vertical rod (81) extending into the interior of the discharge pipe (7), a fixing ring (82) being provided on the outer side of the vertical rod (81), two fixing blocks (83) symmetrically distributed on the outer side of the fixing ring (82), an anti-blocking plate (84) being provided on the fixing block (83), a groove being provided on the side of the fixing block (83) away from the fixing ring (82), and an adjusting component (85) for adjusting the position of the anti-blocking plate (84) being provided in the groove. The outer side of the transport cylinder (2) is provided with a striking component (10) that works with the drive assembly (9) to strike the discharge pipe (7).
2. The intelligent transport equipment for grain feed according to claim 1, characterized in that, A motor (11) is provided on the outside of the transport cylinder (2), and the output shaft of the motor (11) is connected to one end of the rotating rod (4).
3. The intelligent transport equipment for grain feed according to claim 1, characterized in that, The drive assembly (9) includes a movable rod (91) that slides through the partition (3). A connecting block (92) is provided at one end of the movable rod (91) near the spiral conveying blade (5), and the end of the connecting block (92) away from the movable rod (91) is in contact with the spiral conveying blade (5). The end of the movable rod (91) away from the connecting block (92) extends through the transport cylinder (2) and is provided with a horizontal plate (93). A first spring (94) is sleeved on the outside of the movable rod (91), and the two ends of the first spring (94) are respectively connected to the horizontal plate (93) and the outside of the transport cylinder (2).
4. The intelligent transport equipment for grain feed according to claim 3, characterized in that, An installation ring (95) is provided on the outer side of the moving rod (91), a toothed plate (96) is provided on one side of the installation ring (95), and a gear (86) is provided on the outer side of the vertical rod (81), and the toothed plate (96) meshes with the gear (86).
5. The intelligent transport equipment for grain feed according to claim 1, characterized in that, The adjustment assembly (85) includes a magnetic block (851) slidably disposed in the groove. A second spring (852) is provided on one side of the magnetic block (851). The end of the second spring (852) away from the magnetic block (851) is connected to the inner wall of the groove. A connecting rod (853) is provided on the end of the magnetic block (851) away from the second spring (852). The end of the connecting rod (853) away from the magnetic block (851) passes through the groove and is connected to one side of the anti-blocking plate (84).
6. The intelligent transport equipment for grain feed according to claim 5, characterized in that, The groove is provided with an annular electromagnet (854) that magnetically engages with the magnetic block (851), and the connecting rod (853) moves through the annular electromagnet (854).
7. The intelligent transport equipment for grain feed according to claim 1, characterized in that, A connecting ring (12) is provided on the outside of the discharge pipe (7), and a rotating ring (13) is rotatably provided on the outside of the connecting ring (12), and two symmetrically distributed protrusions (14) are provided on the outside of the rotating ring (13).
8. The intelligent transport equipment for grain feed according to claim 3, characterized in that, The striking assembly (10) includes a U-shaped plate (101) disposed on one side of the transport cylinder (2). Two striking plates (102) are symmetrically distributed on the side of the U-shaped plate (101) near the transport cylinder (2). An mounting plate (103) is disposed on the upper part of the U-shaped plate (101), and the top end of the mounting plate (103) is connected to the bottom end of the horizontal plate (93).
9. The intelligent transport equipment for grain feed according to claim 8, characterized in that, The transport cylinder (2) is provided with two guide rods (104) that are symmetrically distributed on the side near the U-shaped plate (101). The end of the guide rod (104) away from the transport cylinder (2) slides through the U-shaped plate (101).
10. The intelligent transport equipment for grain feed according to claim 7, characterized in that, The outer side of the rotating ring (13) is provided with two symmetrically distributed fastening bolts (15), and the outer side of the connecting ring (12) is provided with four locking holes (16) arranged in a circumferential array. One end of the fastening bolt (15) penetrates into the inner side of the rotating ring (13) and extends into the corresponding locking hole (16).