An automatic feeding device during the processing of pea starch

By designing an adaptive pea starch feeding device, the problems of uneven pea starch feeding and blockage are solved, stable production and efficient product quality are achieved, and suitable for pea starch processing.

CN120212718BActive Publication Date: 2025-08-05YOSIN BIOTECHNOLOGY (YANTAI) CO LTD
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Patent Information

Application Number
CN202510685221.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-27
Publication Date
2025-08-05
Estimated Expiration
2045-05-27

AI Technical Summary

Technical Problem

The existing pea starch feeding device cannot flexibly adjust according to the actual state of pea starch such as moisture level and fluidity, resulting in uneven feeding, blockage and equipment failure, affecting production efficiency and product quality.

Method used

An automatic feeding device including a stretching mechanism and an anti-trajectory mechanism is designed to adapt to pea starch in different states by adjusting the shape and airflow distribution of the lead tape to ensure uniform feeding and drying effect.

Benefits of technology

It realizes adaptive feeding of pea starch, avoids clogging, improves production stability and product quality, and reduces equipment failures and manual operation requirements.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of starch processing, and specifically relates to an automatic feeding device in the process of pea starch processing. It includes a feeding cylinder connected to a traveling vibrating screen. The cylinder is provided with a feeding port and a discharging port, and inside it there are a guiding plate and a curved plate. A guiding belt is arranged between the two, one end of the guiding belt is connected to a clamping plate, and the other end is wound around a reel through a tensioning roller. An electric slide plate and a blower are arranged at the discharging port, and the blower can blow air into the cylinder. The stretching mechanism includes a screw motor and a deflection frame. The screw motor drives the guiding belt to move through the clamping plate, and the deflection block on the deflection frame can change the shape of the guiding belt. Anti-slip mechanisms are arranged on both sides of the feeding cylinder, which are alternately moved by a main clamping plate and a sub-clamping plate to limit the guiding belt before and after deformation. This device can achieve efficient and stable feeding of pea starch, can be automatically adjusted according to the state of pea starch, improve the drying uniformity and feeding efficiency, reduce material waste, lower the equipment maintenance cost, and is applicable to the processing of pea starch under various working conditions.
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Description

Technical Field

[0001] The present invention relates to the field of starch processing, and specifically to an automatic feeding device during the processing of pea starch. Background Art

[0002] In the industrial production process of pea starch, the feeding link is a crucial part, and its efficiency and accuracy directly affect the stability of the entire production process and product quality. Traditional feeding methods for pea starch mostly use manual operation or simple mechanical devices. Manual feeding not only has low efficiency and is difficult to meet the requirements of large-scale production, but also in the operation process, due to different operation habits and proficiency levels of workers, it is easy to cause inaccurate feeding amounts, which in turn affect the subsequent processes of starch processing. For example, during the drying process of pea starch, uneven feeding amounts will cause uneven distribution of materials in the drying equipment. Some starch may be over-dried, affecting its quality, while some may be under-dried, resulting in agglomeration.

[0003] Some existing automatic feeding devices, although they improve the feeding efficiency to a certain extent, still have many problems. Some devices cannot be flexibly adjusted according to the actual state of pea starch, such as moisture content, fluidity, etc., resulting in difficulty in ensuring smooth and uniform feeding when dealing with pea starch in different states.

[0004] The existing automatic feeding devices have poor adaptability to pea starch in different states. Most devices can only operate according to a fixed mode and cannot be intelligently adjusted according to the characteristics of pea starch such as moisture content and fluidity. When dealing with materials under different working conditions, problems such as blockage and poor conveying often occur, which not only reduces production efficiency but also increases the risk of equipment failure, affecting the production stability of enterprises. Therefore, it is necessary to design an automatic feeding device during the processing of pea starch. Summary of the Invention

[0005] Based on this, in order to solve the problems of the existing technology, it is necessary to provide an automatic feeding device during the processing of pea starch.

[0006] To solve the problems of the existing technology, the technical solution adopted by the present invention is as follows:

[0007] An automatic feeding device during the processing of pea starch, including a feeding cylinder fixedly connected to the output end of a traveling vibrating screen. The feeding cylinder is formed with a feeding port and a discharging port, and further includes:

[0008] On one side of the inside of the feeding cylinder near the feeding port, a guiding plate is provided. At the lower end of the guiding plate, a curved plate is provided. On the side where the curved plate and the guiding plate are close to each other, a guiding belt is provided. One side of the guiding belt is slidably connected to the curved plate, and the other side is slidably connected to the guiding plate. A clamping plate is fixedly connected to one end of the guiding belt away from the discharging port. A tensioning roller is rotatably provided beside the discharging port. A winding shaft is rotatably provided below the tensioning roller. One end of the guiding belt near the discharging port bypasses the tensioning roller and is wound and connected to the winding shaft. An electric sliding plate for blocking the discharging port is provided at the discharging port. A blower is provided on the side of the electric sliding plate close to the feeding port. When the blower is started, it blows air into the inside of the feeding cylinder. An extending mechanism is also provided on the feeding cylinder. The extending mechanism includes a screw motor provided at one end of the feeding cylinder away from the discharging port and a number of deflection frames fixedly provided below the guiding belt. At the upper end of the deflection frame, a deflection block abutting against the guiding belt is rotatably provided. When the screw motor is started, it drives the guiding belt to move through the clamping plate. A set of anti-displacement mechanisms are respectively provided on both sides of the feeding cylinder. The anti-displacement mechanism includes two main clamping plates and two sub-clamping plates that move alternately. The main clamping plate and the sub-clamping plate respectively limit the guiding belt before and after deformation.

[0009] Further, a flow dividing cover is fixedly connected to the upper end of the inside of the feeding cylinder. The upper end of the flow dividing cover is communicated with the output end of the blower, and a number of air holes are formed in an equidistant array at the lower end.

[0010] Further, the extending mechanism further includes a pull rod and two limiting rods. One end of the pull rod is fixedly connected to the clamping plate, and the other end is fixedly connected to the output end of the screw motor. The two limiting rods are respectively arranged on both sides of the pull rod. One end of the limiting rod is fixedly connected to the clamping plate, and the other end is key-connected to the feeding cylinder.

[0011] Further, the extending mechanism further includes two reset gears, two connecting gears, two reset racks, two reset baffles, two reset springs, two reset shafts and two positioning baffles. The two reset gears are respectively fixedly connected to both ends of the winding shaft. The two connecting gears are respectively arranged beside the two reset gears. The connecting gear is rotatably connected to the side wall of the feeding cylinder and meshes with the reset gear. The two reset racks are respectively arranged beside the two connecting gears. The reset rack meshes with the connecting gear. The upper ends of the two reset racks are respectively fixedly connected to the reset baffle. The lower ends of the two reset shafts are respectively fixedly connected to the two reset baffles. Positioning baffles fixedly connected to the side wall of the feeding cylinder are respectively arranged above the two reset racks. The reset shaft is key-connected to the positioning baffle. The two reset springs are respectively sleeved outside the two reset shafts. The upper end of the reset spring is fixedly connected to the positioning baffle, and the lower end is fixedly connected to the reset baffle.

[0012] Further, the stretching mechanism further includes a plurality of positioning arc blocks and a plurality of positioning rollers. The plurality of positioning arc blocks are arranged at equal intervals along the inner side of the feeding cylinder. The two ends of each positioning arc block are fixedly connected to the side wall of the feeding cylinder. The lower end of the positioning arc block is in sliding contact with the upper end of the guiding belt. The plurality of positioning rollers are respectively arranged beside the plurality of positioning arc blocks and are in sliding contact with the lower end of the guiding belt. The two ends of each positioning roller are rotatably connected to the side wall of the feeding cylinder.

[0013] Further, the stretching mechanism further includes a main motor, a first bevel gear, a second bevel gear, a plurality of main pulleys, a plurality of main roller shafts, a plurality of first pulleys, a plurality of second pulleys and a plurality of auxiliary roller shafts. The main motor is arranged beside the curved plate. The first bevel gear is rotatably arranged beside the main motor through a bevel gear frame. The first bevel gear is coaxially fixedly connected to the output end of the main motor. The second bevel gear is rotatably connected to the bevel gear frame and meshes with the first bevel gear. The plurality of main roller shafts are respectively rotatably connected to the lower parts of the plurality of deflecting frames. The plurality of main pulleys are respectively fixedly connected to the middle parts of the plurality of main roller shafts. Two adjacent main pulleys are respectively connected by belt transmission. The main pulley close to the main motor is coaxially fixedly connected to the second bevel gear. The two sides of each main pulley are respectively provided with a first pulley fixedly connected to the main roller shaft. The plurality of auxiliary roller shafts are respectively rotatably connected to the upper parts of the plurality of deflecting frames and are fixedly connected to the corresponding deflecting blocks. The plurality of second pulleys are respectively arranged above the plurality of first pulleys and are fixedly connected to the corresponding auxiliary roller shafts. The second pulley is connected to the first pulley by belt transmission.

[0014] Further, the anti-displacement mechanism further includes a cylinder and a plurality of guiding rollers. The cylinder is fixedly connected to the feeding cylinder through a bracket. The plurality of guiding rollers are arranged at equal intervals along the long side direction of the feeding cylinder. One end of each guiding roller is fixedly connected to the feeding cylinder, and the other end is slidably connected to the main clamping plate. The output end of the cylinder is fixedly connected to the main clamping plate.

[0015] Further, the anti-displacement mechanism further includes a clamping motor, a driving pulley, two driven pulleys, two driven gears and four driven racks. The clamping motor is fixedly connected to the side wall of the feeding cylinder through a motor frame. The driving pulley is coaxially fixedly connected to the output end of the clamping motor. The driving pulley is rotatably connected to the side wall of the feeding cylinder. The two driven pulleys are respectively arranged on both sides of the driving pulley and are respectively rotatably connected to the side wall of the feeding cylinder. The two driven gears are respectively coaxially fixedly connected to the two driven pulleys. The two sides of each driven gear are respectively provided with a driven rack. The driven rack meshes with the driven gear. The driven rack is slidably connected to the side wall of the feeding cylinder and one end is fixedly connected to the auxiliary clamping plate.

[0016] The beneficial effects of the present invention compared with the prior art are:

[0017] First: The device can flexibly change the shape of the feeding belt according to the actual state of pea starch, such as the degree of moisture absorption and fluidity. When the fluidity of pea starch decreases, the feeding belt is adjusted to a wavy shape to break up agglomerated particles, accelerate the drying speed, and avoid blockage. When the fluidity of pea starch is good, the feeding belt is changed to a straight shape to improve the feeding efficiency. This adaptive ability enables the device to be applicable to the treatment of pea starch under different working conditions, expands the application range of the device, improves the flexibility and adaptability of production, and meets different production requirements.

[0018] Second: By setting a flow divider cover at the upper end inside the feeding cylinder, the device can evenly disperse the airflow generated by the fan, enabling pea starch at all parts of the feeding belt to fully contact the airflow, achieving a more uniform drying effect, avoiding problems such as insufficient drying or over-drying of some pea starch caused by uneven airflow distribution, effectively ensuring the quality of pea starch, reducing product quality fluctuations caused by drying problems, and improving the stability of production and the product qualification rate.

[0019] Third: By setting a stretching mechanism to restrict the feeding belt, during the process of adjusting the feeding belt, the feeding belt can be adjusted in length through a reel to achieve automatic reset of the feeding belt without manual intervention, improving the automation degree of the device, reducing the workload and error probability of manual operation. At the same time, the main clamping plate and the auxiliary clamping plate also ensure that after the feeding belt switches between different shapes, starch leakage does not occur at the edge of the feeding belt. Brief Description of the Drawings

[0020] Figure 1 is a three-dimensional structural schematic diagram of the embodiment;

[0021] Figure 2 is a structural schematic diagram of the main clamping plate and the auxiliary clamping plate in the embodiment;

[0022] Figure 3 is a front view of the embodiment;

[0023] Figure 4 is a three-dimensional structural schematic diagram of the feeding cylinder in the embodiment;

[0024] Figure 5 is Figure 4 the enlarged view of the structure at A in

[0025] Figure 6 is a plane half-sectional view of the feeding cylinder in the embodiment;

[0026] Figure 7 is Figure 6 the enlarged view of the structure at B in

[0027] Figure 8 is a three-dimensional half-sectional view of the feeding cylinder in the embodiment;

[0028] Figure 9 yes Figure 8 A magnified view of the structure at point C in the middle;

[0029] Figure 10 3D is a schematic diagram of the three-dimensional structure of the deflection frame and the deflection block in the embodiment.

[0030] The numbers in the figure are:

[0031] 1. Traveling vibrating screen; 2. Feeding drum; 3. Guide plate; 4. Curved plate; 5. Feeding port; 6. Discharge port; 7. Guide belt; 8. Electric slide; 9. Fan; 10. Diverter hood; 11. Extension mechanism; 12. Screw motor; 13. Pull rod; 14. Limit rod; 15. Clamp; 16. Scroll; 17. Reset gear; 18. Connecting gear; 19. Reset rack; 20. Reset baffle; 21. Reset spring; 22. Reset shaft; 23. Positioning baffle; 24. Tension roller ; 25. Positioning arc block; 26. Positioning roller; 27. Main motor; 28. First bevel gear; 29. Second bevel gear; 30. Main pulley; 31. Main roller shaft; 32. First pulley; 33. Second pulley; 34. Auxiliary roller shaft; 35. Deflection frame; 36. Deflection block; 37. Anti-slip mechanism; 38. Cylinder; 39. Guide roller; 40. Main clamping plate; 41. Clamping motor; 42. Driving pulley; 43. Driven pulley; 44. Driven gear; 45. Driven rack; 46. Auxiliary clamping plate. DETAILED DESCRIPTION

[0032] In order to further understand the features, technical means, specific objectives and functions achieved by the present invention, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments.

[0033] refer to Figures 1 to 10 An automatic feeding device for pea starch processing comprises a feeding cylinder 2 fixedly connected to the output end of a traveling vibrating screen 1, a feeding port 5 and a discharge port 6 being formed on the feeding cylinder 2, and further comprising:

[0034] A guide plate 3 is provided on one side of the feeding cylinder 2 near the feeding port 5 (refer to Figure 6), a curved plate 4 is provided at the lower end of the material guiding plate 3. A material guiding belt 7 is provided on the side of the curved plate 4 close to the material guiding plate 3. One side of the material guiding belt 7 is slidably connected to the curved plate 4, and the other side is slidably connected to the material guiding plate 3. A clamping plate 15 is fixedly connected to the end of the material guiding belt 7 away from the discharge port 6. A tensioning roller 24 is rotatably provided beside the discharge port 6. A winding shaft 16 is rotatably provided below the tensioning roller 24. The end of the material guiding belt 7 close to the discharge port 6 bypasses the tensioning roller 24 and is wound and connected to the winding shaft 16. An electric slide plate 8 for blocking the discharge port 6 is provided at the discharge port 6. A blower 9 is provided on the side of the electric slide plate 8 close to the feeding port 5. When the blower 9 is started, it blows air into the feeding cylinder 2. An extension mechanism 11 is also provided on the feeding cylinder 2. The extension mechanism 11 includes a screw motor 12 provided at one end of the feeding cylinder 2 away from the discharge port 6 and a number of deflection frames 35 fixedly provided below the material guiding belt 7. A deflection block 36 that abuts against the material guiding belt 7 is rotatably provided at the upper end of the deflection frame 35. When the screw motor 12 is started, it drives the material guiding belt 7 to move through the clamping plate 15. A set of anti-displacement mechanisms 37 are respectively provided on both sides of the feeding cylinder 2. The anti-displacement mechanism 37 includes two main clamping plates 40 and two sub-clamping plates 46 that move alternately. The main clamping plate 40 and the sub-clamping plate 46 respectively limit the material guiding belt 7 before and after deformation.

[0035] When the device is operating, pea starch enters the feeding cylinder 2 and falls from the feeding port 5 onto the material guiding plate 3. Subsequently, the pea starch will fall along the material guiding plate 3 onto the material guiding belt 7. Subsequently, the traveling vibrating screen 1 will be started during this process and drive the feeding cylinder 2 to vibrate. During this process, the blower 9 will be started and dry the pea starch through air flow to prevent the pea starch from agglomerating. Finally, the pea starch leaves the feeding cylinder 2 from the discharge port 6 after the electric slide plate 8 rises.

[0036] During the above process, the extension mechanism 11 can change the shape of the material guiding belt 7 by changing the inclination angles of a number of deflection blocks 36. The material guiding belt 7 needs to be selected between a wavy shape and a straight shape before the pea starch enters the feeding cylinder 2 according to the state of the pea starch:

[0037] When the fluidity of pea starch decreases due to reasons such as moisture absorption, the guiding belt 7 can be adjusted into a wavy shape. The wavy guiding belt 7 causes the material to continuously experience the processes of rising and falling during movement, which generates forces in different directions. Under the action of these forces, the agglomerated pea starch granules are more easily dispersed, making the pea starch more dispersed. At the same time, the drying gas blown by the blower 9 can more fully contact the pea starch under the action of the wavy guiding belt 7, accelerating the drying speed and further improving the fluidity of the pea starch. In addition, the wavy structure can divide the pea starch into multiple small parts, and each wave crest and wave trough can accommodate a certain amount of pea starch. In this way, even if the fluidity of the pea starch is poor, it is not easy to accumulate in large quantities at a certain place, but is relatively evenly distributed on the guiding belt 7. Moreover, when the pea starch flows from the wave crest to the wave trough, it will be affected by gravity and inertial forces, which helps to push the pea starch to continue moving forward, thereby maintaining the continuous flow of the pea starch and avoiding the blockage problem caused by the accumulation of pea starch.

[0038] When the pea starch is in a dry state and has good fluidity, the guiding belt 7 can be changed into a straight shape. The straight guiding belt 7 can provide a more direct and smooth flow path for the pea starch, reduce the residence time of the pea starch on the guiding belt 7, and improve the feeding efficiency.

[0039] When the guiding belt 7 changes from a straight shape to a wavy shape, since one end of the guiding belt 7 close to the reel 16 is wound around the outside of the reel 16, when the guiding belt 7 undergoes a curved deformation, the guiding belt 7 releases the part wound around the reel 16 by driving the reel 16 to rotate, and then changes its own length to adapt to this deformation. The main clamping plate 40 and the auxiliary clamping plate 46 on the anti-displacement mechanism 37 will limit the guiding belt 7 before and after the deformation, preventing the edge of the guiding belt 7 from deforming when loaded with pea starch, resulting in the pea starch leaking downward through the guiding belt 7.

[0040] In order to correctly divide the airflow generated by the blower 9, the following features are specifically set:

[0041] A flow dividing cover 10 is fixedly connected to the upper end inside the feeding cylinder 2 (refer to Figure 6), the upper end of the flow deflector 10 is connected to the output end of the fan 9, and a number of air holes are formed in the lower end at equal intervals in an array. After the fan 9 is started, the generated air flow will enter the interior of the flow deflector 10 through the upper end of the flow deflector 10. Due to the air holes formed in the lower end of the flow deflector 10 at equal intervals in an array, the air flow will be evenly dispersed and blown onto the pea starch inside the feeding cylinder 2 at a stable and uniform flow rate. This can ensure that the pea starch at all parts on the guiding belt 7 can fully contact the air flow, achieve a more uniform drying effect, avoid the problem that some pea starch is not fully dried or over-dried due to uneven air flow distribution, and at the same time, it also helps to improve the effect of the air flow on breaking up the agglomerated pea starch, making the state of the pea starch on the guiding belt 7 more ideal.

[0042] In order to limit the movement of the clamping plate 15 and prevent the guiding belt 7 from running off during movement, the following features are specifically set:

[0043] The stretching mechanism 11 further includes a pull rod 13 and two limiting rods 14. One end of the pull rod 13 is fixedly connected to the clamping plate 15 (refer to Figure 8 ), and the other end is fixedly connected to the output end of the screw motor 12. The two limiting rods 14 are respectively arranged on both sides of the pull rod 13. One end of the limiting rod 14 is fixedly connected to the clamping plate 15, and the other end is key-connected to the feeding cylinder 2. After the screw motor 12 is started, the output end of the screw motor 12 drives the clamping plate 15 to move through the pull rod 13, so as to realize the stretching or contraction operation of the guiding belt 7. The setting of the two limiting rods 14 can limit the direction of the clamping plate 15 during movement, ensure that the clamping plate 15 can only move along the direction parallel to the limiting rod 14, prevent the clamping plate 15 from shifting or shaking during movement, and further ensure that the guiding belt 7 does not run off during movement, enabling the guiding belt 7 to change its shape according to a predetermined trajectory and manner. Whether it changes from a straight shape to a wavy shape or changes back from a wavy shape to a straight shape, it can be carried out stably and reliably.

[0044] In order to endow the reel 16 with the ability to reset, the following features are specifically set:

[0045] The stretching mechanism 11 further includes two reset gears 17, two connecting gears 18, two reset racks 19, two reset baffles 20, two reset springs 21, two reset shafts 22 and two positioning baffles 23. The two reset gears 17 are respectively fixedly connected to both ends of the reel 16 (refer to Figure 5), Two connecting gears 18 are respectively arranged beside the two reset gears 17. The connecting gear 18 is rotationally connected to the side wall of the feeding cylinder 2 and meshes with the reset gear 17. Two reset racks 19 are respectively arranged beside the two connecting gears 18. The reset rack 19 meshes with the connecting gear 18. The upper ends of the two reset racks 19 are respectively fixedly connected with a reset baffle 20. The lower ends of the two reset shafts 22 are respectively fixedly connected with the two reset baffles 20. Above the two reset racks 19, positioning baffles 23 fixedly connected to the side wall of the feeding cylinder 2 are respectively arranged. The reset shaft 22 is key-connected to the positioning baffle 23. Two reset springs 21 are respectively sleeved outside the two reset shafts 22. The upper end of the reset spring 21 is fixedly connected to the positioning baffle 23, and the lower end is fixedly connected to the reset baffle 20. When the guide belt 7 changes from a straight shape to a wavy shape, the guide belt 7 drives the reel 16 to rotate. The reset gears 17 at both ends of the reel 16 rotate accordingly. Through meshing with the connecting gear 18, it drives the reset rack 19 to move upward, and the reset spring 21 is compressed. When it is necessary to change the guide belt 7 from a wavy shape back to a straight shape, the elastic force of the reset spring 21 pushes the reset baffle 20 and the reset rack 19 to move downward. Through the transmission of the connecting gear 18 and the reset gear 17, the reel 16 rotates in the reverse direction, and the guide belt 7 is re-wound on the reel 16, realizing the reset of the guide belt 7, ensuring that the guide belt 7 can flexibly switch between different shapes and has good reset ability, providing guarantee for the stable operation of the device.

[0046] In order to limit the guide belt 7 and prevent the guide belt 7 from moving erratically, the following features are specifically set:

[0047] The stretching mechanism 11 further includes a plurality of positioning arc blocks 25 and a plurality of positioning rollers 26. The plurality of positioning arc blocks 25 are arranged at equal intervals along the inner side of the feeding cylinder 2 (refer to Figure 7 and Figure 8 ), The two ends of the positioning arc block 25 are respectively fixedly connected to the side wall of the feeding cylinder 2. The lower end of the positioning arc block 25 is in sliding contact with the upper end of the guide belt 7. The plurality of positioning rollers 26 are respectively arranged beside the plurality of positioning arc blocks 25 and are in sliding contact with the lower end of the guide belt 7. The two ends of the positioning roller 26 are respectively rotationally connected to the side wall of the feeding cylinder 2. During the movement and shape change of the guide belt 7, the positioning arc block 25 can limit the guide belt 7 from above, preventing the guide belt 7 from moving upward erratically, ensuring that the guide belt 7 is always at an appropriate height position. The positioning roller 26 contacts the guide belt 7 from below. While restricting the downward movement of the guide belt 7, it reduces the friction force when the guide belt 7 moves through rolling, enabling the guide belt 7 to move and change shape more smoothly in the feeding cylinder 2. Moreover, the setting of the positioning arc block 25 and the positioning roller 26 can also support the guide belt 7 to a certain extent, ensuring the stability of the guide belt 7 when carrying pea starch.

[0048] In order to drive the deflection blocks 36 to deflect, the following features are also provided:

[0049] The stretching mechanism 11 also includes a main motor 27, a first bevel gear 28, a second bevel gear 29, a plurality of main pulleys 30, a plurality of main roller shafts 31, a plurality of first pulleys 32, a plurality of second pulleys 33 and a plurality of auxiliary roller shafts 34. The main motor 27 is arranged on the side of the curved plate 4. The first bevel gear 28 is rotatably arranged on the side of the main motor 27 through the bevel gear rack. The first bevel gear 28 is coaxially fixed to the output end of the main motor 27. The second bevel gear 29 is rotatably connected to the bevel gear rack and meshes with the first bevel gear 28. The plurality of main roller shafts 31 are respectively rotatably connected to the lower part of the plurality of deflection racks 35. The plurality of main pulleys 30 are respectively fixedly connected to the middle of several main roller shafts 31, and two adjacent main pulleys 30 are respectively connected by belt transmission. The main pulley 30 near the main motor 27 is fixedly connected to the second bevel gear 29 coaxially. On both sides of the main pulley 30, a first pulley 32 fixedly connected to the main roller shaft 31 is respectively provided. Several secondary roller shafts 34 are respectively rotatably connected to the upper part of several deflection frames 35 and fixedly connected to the corresponding deflection blocks 36. Several second pulleys 33 are respectively arranged above the several first pulleys 32 and fixedly connected to the corresponding secondary roller shafts 34. The second pulleys 33 are connected to the first pulleys 32 by belt transmission. When the shape of the guide belt 7 needs to be changed, the main motor 27 is started, and the output end of the main motor 27 drives the first bevel gear 28 to rotate. The first bevel gear 28 transmits power to the main pulley 30 near the main motor 27 by meshing with the second bevel gear 29. The main pulley 30 drives the adjacent main pulleys 30 to rotate in sequence through the belt, thereby rotating each main roller shaft 31. When the main roller 31 rotates, the second pulley 33 is driven to rotate through the first pulley 32 and the belt, thereby rotating the auxiliary roller 34. The rotation of the auxiliary roller 34 drives the deflection block 36 connected to the auxiliary roller 34 to deflect. Through the coordinated deflection of multiple deflection blocks 36, the shape of the guide belt 7 is changed, so that it can be flexibly switched between wavy and straight shapes to adapt to pea starch in different states.

[0050] In order to drive the main card plate 40 to move, the following features are also specifically provided:

[0051] The anti-slip mechanism 37 also includes a cylinder 38 and a plurality of guide rollers 39. The cylinder 38 is fixedly connected to the feeding drum 2 through a bracket. The plurality of guide rollers 39 are arranged in an array at equal intervals along the long side direction of the feeding drum 2. One end of the guide roller 39 is fixedly connected to the feeding drum 2, and the other end is slidably connected to the main card plate 40. The output end of the cylinder 38 is fixedly connected to the main card plate 40. When the guide belt 7 becomes straight, in order to prevent the edge of the guide belt 7 from slipping, the cylinder 38 is started, and the output end of the cylinder 38 pushes the main card plate 40 to move along the direction of the guide roller 39. The setting of the guide roller 39 can provide a stable guide for the movement of the main card plate 40, ensuring that the main card plate 40 can accurately move to the predetermined position (refer to Figure 2), the edges of the material guiding belt 7 before and after deformation are limited to restrict the movement of the material guiding belt 7 in the horizontal direction, thereby effectively preventing pea starch from escaping from the edges of the material guiding belt 7 and ensuring the smooth progress of the feeding process and the stability of the material.

[0052] In order to drive the auxiliary clamping plate 46 to move, the following features are specifically set:

[0053] The anti-escape mechanism 37 further includes a clamping motor 41, a driving pulley 42, two driven pulleys 43, two driven gears 44 and four driven racks 45. The clamping motor 41 is fixedly connected to the side wall of the feeding cylinder 2 through a motor bracket. The driving pulley 42 is coaxially fixedly connected to the output end of the clamping motor 41. The driving pulley 42 is rotatably connected to the side wall of the feeding cylinder 2. The two driven pulleys 43 are respectively arranged on both sides of the driving pulley 42 and are rotatably connected to the side wall of the feeding cylinder 2. The two driven gears 44 are respectively coaxially fixedly connected to the two driven pulleys 43. Driven racks 45 are respectively arranged on both sides of each driven gear 44. The driven racks 45 are engaged with the driven gears 44. The driven racks 45 are slidably connected to the side wall of the feeding cylinder 2 and one end is fixedly connected to the auxiliary clamping plate 46. When the material guiding belt 7 becomes wavy, the clamping motor 41 is started and drives the driving pulley 42 to rotate (reference Figure 2 ), the driving pulley 42 drives the two driven pulleys 43 to rotate through a belt. The driven pulleys 43 drive the driven gears 44 coaxially fixedly connected thereto to rotate. The driven gears 44 drive the driven racks 45 to slide along the side wall of the feeding cylinder 2 through the engagement with the driven racks 45. The movement of the driven racks 45 drives the auxiliary clamping plate 46 to move until the end of the auxiliary clamping plate 46 close to the clamping motor 41 abuts against the outside of the wavy material guiding belt 7, further enhancing the restraining ability of the material guiding belt 7 and ensuring that the material guiding belt 7 can stably carry pea starch under various working conditions, preventing pea starch from leaking downward from the edges of the material guiding belt 7 because the edges of the material guiding belt 7 cannot be closely attached to the inner wall of the feeding cylinder 2 during the process of loading pea starch.

[0054] The working principle of this device is that when pea starch enters the feeding cylinder 2, it will fall from the feeding port 5 onto the guiding plate 3 and then slide along the guiding plate 3 onto the material guiding belt 7. During this process, the traveling vibrating screen 1 is started and drives the feeding cylinder 2 to vibrate, which helps the pea starch to be evenly distributed on the material guiding belt 7. At the same time, the fan 9 is started, and the generated air flow is evenly dispersed through the shunt cover 10 and blown onto the pea starch to dry it and prevent the pea starch from agglomerating.

[0055] When it is necessary to adjust the shape of the material guiding belt 7 according to the state of pea starch, if the fluidity of pea starch decreases due to moisture absorption or other reasons, the main motor 27 starts. Through the transmission of components such as the first bevel gear 28, the second bevel gear 29, the main pulley 30, the main roller shaft 31, the first pulley 32, the second pulley 33 and the auxiliary roller shaft 34, a number of deflection blocks 36 are driven to deflect, so that the material guiding belt 7 changes from a straight shape to a wavy shape. At this time, one end of the material guiding belt 7 close to the reel 16 is wound around the outside of the reel 16. When the material guiding belt 7 undergoes a curved deformation, it drives the reel 16 to rotate and release the wound part to adapt to its own length change. At the same time, the cylinder 38 and the engaging motor 41 in the anti-displacement mechanism 37 are started respectively. The cylinder 38 pushes the main clamping plate 40, and the engaging motor 41 drives the auxiliary clamping plate 46 to move. The main clamping plate 40 and the auxiliary clamping plate 46 limit the material guiding belt 7 before and after deformation to prevent the leakage of pea starch. The wavy material guiding belt 7 makes the material continuously experience rising and falling during the movement process, generating forces in different directions, breaking up the agglomerated pea starch particles, and the drying gas blown by the fan 9 can more fully contact the pea starch, accelerating the drying speed, improving the fluidity, and also avoiding the accumulation and blockage of materials.

[0056] When the pea starch is in a dry state and has good fluidity, the main motor 27 rotates in the reverse direction. Through the transmission components, the deflection blocks 36 deflect in the reverse direction, changing the material guiding belt 7 into a straight shape, providing a more direct and smooth flow path for the pea starch, reducing the residence time of the pea starch on the material guiding belt 7, and improving the feeding efficiency. During the process of changing the shape of the material guiding belt 7, the pull rod 13 and the limit rod 14 in the stretching mechanism 11 ensure the stability of the movement of the clamping plate 15. The positioning arc block 25 and the positioning roller 26 limit and support the material guiding belt 7. The reset mechanism composed of components such as the reset gear 17, the connecting gear 18, the reset rack 19, and the reset spring 21 can make the material guiding belt 7 reset smoothly after the shape change. Finally, when the pea starch is dried and its fluidity reaches an appropriate state, the electric slide 8 rises, and the pea starch leaves the feeding cylinder 2 from the discharge port 6, completing the entire automatic feeding process.

[0057] The above embodiments only represent one or several implementation manners of the present invention. The description is relatively specific and detailed, but it cannot be understood as a limitation to the scope of the patent of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present invention, several deformations and improvements can still be made, and these all belong to the protection scope of the present invention. Therefore, the protection scope of the patent of the present invention shall be subject to the appended claims.

Claims

1. An automatic feeding device for pea starch processing, comprising a feeding cylinder fixedly connected to the output end of a traveling vibrating screen, with a feeding port and a discharge port formed on the feeding cylinder, characterized in that: Also includes: A guide plate is provided on one side of the feeding barrel near the feeding port, a curved plate is provided at the lower end of the guide plate, a guide belt is provided on the side where the curved plate and the guide plate are close to each other, one side of the guide belt is slidably connected to the curved plate, and the other side is slidably connected to the guide plate, an end of the guide belt away from the discharge port is fixedly connected with a splint, a tightening roller is rotatably provided beside the discharge port, a reel is rotatably provided below the tightening roller, an end of the guide belt near the discharge port passes around the tightening roller and is wound around the reel, an electric slide plate for sealing the discharge port is provided at the discharge port, and the electric slide plate is close to the feeding port A fan is provided on one side, and when the fan is started, air is blown into the feeding barrel. An extension mechanism is also provided on the feeding barrel, and the extension mechanism includes a screw motor provided at the end of the feeding barrel away from the discharge port and a plurality of deflection frames fixedly provided below the guide belt. A deflection block that abuts against the guide belt is rotatably provided on the upper end of the deflection frame. When the screw motor is started, the guide belt is driven to move through the splint. A group of anti-channeling mechanisms are respectively provided on both sides of the feeding barrel, and the anti-channeling mechanisms include two main clamping plates and two auxiliary clamping plates that move alternately. The main clamping plates and the auxiliary clamping plates respectively limit the guide belt before and after deformation; The extension mechanism also includes a pull rod and two limit rods, one end of the pull rod is fixedly connected to the splint, and the other end is fixedly connected to the output end of the screw motor. The two limit rods are respectively arranged on both sides of the pull rod, one end of the limit rod is fixedly connected to the splint, and the other end is connected to the feeding barrel key; The extending mechanism also includes two reset gears, two connecting gears, two reset racks, two reset baffles, two reset springs, two reset shafts and two positioning baffles, the two reset gears are respectively fixedly connected to the two ends of the scroll shaft, the two connecting gears are respectively arranged on the sides of the two reset gears, the connecting gears are rotatably connected to the side walls of the feeding barrel and mesh with the reset gears, the two reset racks are respectively arranged on the sides of the two connecting gears, the reset racks are meshed with the connecting gears, the upper ends of the two reset racks are respectively fixedly connected with the reset baffles, the lower ends of the two reset shafts are respectively fixedly connected to the two reset baffles, and the tops of the two reset racks are respectively provided with positioning baffles fixedly connected to the side walls of the feeding barrel, the reset shaft is key-connected to the positioning baffle, and the two reset springs are respectively sleeved on the outside of the two reset shafts, the upper end of the reset spring is fixedly connected to the positioning baffle, and the lower end is fixedly connected to the reset baffle; The stretching mechanism also includes a plurality of positioning arc blocks and a plurality of positioning rollers. The plurality of positioning arc blocks are arranged in an array at equal intervals along the inner side of the feeding barrel. The two ends of the positioning arc blocks are respectively fixed to the side walls of the feeding barrel. The lower ends of the positioning arc blocks slide against the upper ends of the guide belts. The plurality of positioning rollers are respectively arranged beside the plurality of positioning arc blocks and slide against the lower ends of the guide belts. The two ends of the positioning rollers are respectively rotatably connected to the side walls of the feeding barrel. The extension mechanism also includes a main motor, a first bevel gear, a second bevel gear, a plurality of main pulleys, a plurality of main roller shafts, a plurality of first pulleys, a plurality of second pulleys and a plurality of secondary roller shafts, the main motor is arranged on the side of the curved plate, the first bevel gear is rotatably arranged on the side of the main motor through the bevel gear rack, the first bevel gear is coaxially fixed with the output end of the main motor, the second bevel gear is rotatably connected to the bevel gear rack and meshes with the first bevel gear. The plurality of main roller shafts are respectively rotatably connected to the lower ends of the plurality of deflection frames, and the plurality of main pulleys are respectively fixedly connected to the middle ends of the plurality of main roller shafts. The two adjacent main pulleys are respectively connected by belt transmission, and the main pulley near the main motor is coaxially fixedly connected to the second bevel gear. Both sides of the main pulley are respectively provided with a first pulley fixedly connected to the main roller shaft, and the plurality of secondary roller shafts are respectively rotatably connected to the upper ends of the plurality of deflection frames and fixedly connected to the corresponding deflection blocks. The plurality of second pulleys are respectively arranged above the plurality of first pulleys and fixedly connected to the corresponding secondary roller shafts, and the second pulley is driven by a belt.

2. The automatic feeding device in the pea starch processing process according to claim 1, characterized in that: The upper end of the feeding barrel is fixedly connected with a diverter cover, the upper end of the diverter cover is connected with the output end of the fan, and the lower end is formed with a plurality of air holes in an array at equal intervals.

3. The automatic feeding device in the pea starch processing process according to claim 1, characterized in that: The anti-channeling mechanism also includes a cylinder and several guide rollers. The cylinder is fixedly connected to the feeding barrel through a bracket. The several guide rollers are arranged in an array at equal intervals along the long side of the feeding barrel. One end of the guide roller is fixedly connected to the feeding barrel, and the other end is slidably connected to the main clamping plate. The output end of the cylinder is fixedly connected to the main clamping plate.

4. The automatic feeding device in the pea starch processing process according to claim 1, characterized in that: The anti-slip mechanism also includes a locking motor, a driving pulley, two driven pulleys, two driven gears and four driven racks. The locking motor is fixedly connected to the side wall of the feeding barrel through a motor frame, the driving pulley is fixedly connected to the output end of the locking motor coaxially, the driving pulley is rotatably connected to the side wall of the feeding barrel, the two driven pulleys are respectively arranged on both sides of the driving pulley and are respectively rotatably connected to the side walls of the feeding barrel, the two driven gears are respectively fixedly connected to the two driven pulleys coaxially, and a driven rack is respectively provided on both sides of each driven gear, the driven rack is meshed with the driven gear, the driven rack is slidably connected to the side wall of the feeding barrel and one end is fixedly connected to the auxiliary clamping plate.

Citation Information

Patent Citations

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