Anti-caking plastic particle conveying device

By using a combination of inclined conveying pipes, fan blades and industrial vacuum cleaners in the plastic particle conveying device, the heat dissipation, dust removal and transportation of plastic particles are achieved, and the problems of many motor driving sources, high costs and impurities in the existing devices are solved, reducing maintenance costs and extending the heat dissipation and dust removal time.

CN120039662AInactive Publication Date: 2025-05-27HAILAZIJIE NEW MATERIALS (JIANGSU) CO LTD
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Patent Information

Application Number
CN202510313236.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-17
Publication Date
2025-05-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing plastic particle conveying device requires three sets of different motor drive sources, which increases the maintenance and maintenance costs of the motor drive sources, and the use of cooling pipes and condensers increases the transportation costs. At the same time, the plastic particles may adhere to fine impurities that affect subsequent processes.

Method used

A anti-clustered plastic particle conveying device is designed, and a heat dissipation and dust removal hole is evenly opened in the inclined part of the conveying pipeline. Combined with fan blades and industrial vacuum cleaners, the heat dissipation and dust removal of plastic particles are achieved through wind and suction. At the same time, the conveying shaft and spiral conveying blades are driven by motor drive to rotate, thereby realizing the dispersion, volume-by-volume transportation and transportation of plastic particles.

Benefits of technology

It reduces the use of the drive source mechanism, reduces the maintenance cost and time of daily motor driving sources, improves the heat dissipation and dust removal effect, extends the heat dissipation and dust removal time of plastic particles in the conveying pipeline, reduces the speed of plastic particles rolling downward, and extends the rolling time of plastic particles in the conveying pipeline.

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Abstract

The invention relates to the field of plastic particles, in particular to an anti-caking plastic particle conveying device which comprises a conveying pipeline, heat dissipation and dust removal holes are evenly formed in a middle inclined pipe body of the conveying pipeline, the conveying pipeline penetrates through the inner side of a dust collection frame, and a supporting frame is fixedly installed on the inner wall of the dust collection frame. Two convex blocks at the top end of the supporting frame are rotatably provided with a first rotating shaft through bearings, the outer wall of the first rotating shaft is fixedly provided with multiple sets of first bevel gears, the multiple sets of first bevel gears are engaged with a set of second bevel gears respectively, the multiple sets of second bevel gears are fixedly connected with a set of second rotating shafts respectively, and the multiple sets of second rotating shafts are fixedly connected with a set of fan blades respectively; during use, when particles roll to the inclined position in the middle of the conveying pipeline, the multiple sets of fan blades can rotate at the moment, and wind power generated by rotation of the fan blades can be blown into the conveying pipeline through the heat dissipation and dust removal holes to dissipate heat of the plastic particles.
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Description

Technical Field

[0001] The present invention relates to the field of plastic particles, and specifically to an anti-caking plastic particle conveying device. Background Art

[0002] Plastic particles are raw materials for storing, transporting, and processing plastics in a semi-finished form. Plastics are a type of polymer material. Ethylene, propylene, vinyl chloride, styrene, etc. can be obtained from petroleum. The molecules of these substances can react with each other under certain conditions to form compounds with very large molecular weights, that is, polymers. After the plastic particles are processed, a conveying device is needed for transportation. When the existing plastic particle conveying device is in use, the plastic particles enter the interior of the plastic particle dispersing assembly. The stirring motor is started, and the stirring motor drives the motor gear and the stirring tentacles to rotate. The motor gear drives the transmission gear to rotate. The diameter of the transmission gear is half of the diameter of the motor gear, so that the corresponding stirring tentacles rotate at different speeds, stirring the plastic particles inside to disperse the plastic particles. Then, the plastic particles enter the plastic particle transfer tank through the discharge chute. The anti-caking motor drives the anti-caking drum to rotate. As the anti-caking drum rotates, the plastic particles enter the plastic particle transfer tank one by one, and then reach the position of the conveying inlet. The conveying inlet is inclined to transfer the plastic particles into the conveying housing. The conveying motor drives the conveying inner core to rotate, and the plastic particles move under the action of the conveying inner core and are finally discharged through the conveying outlet. At the same time, during the conveying process, the cooler transports the internal coolant to the cooling pipe, and the cooling pipe performs a heat exchange operation on the conveying housing to achieve the purpose of cooling the plastic particles. Finally, the coolant can be reused after condensing in the condenser. When the existing plastic particle conveying device is in use, in order to implement the three working processes of dispersing plastic particles, preventing plastic particles from caking, and conveying plastic particles, three different motor drive sources are required, which will result in a larger motor drive source for the device, increasing the daily maintenance and maintenance costs of the motor drive source. Secondly, in order to cool the plastic particles, cooling pipes and condensers are used, and the use cost is relatively high, increasing the conveying cost. Secondly, it is inevitable that some fine impurities will adhere to the plastic particles after production. If not cleaned, it will affect the subsequent processes. For this reason, we propose an anti-caking plastic particle conveying device. Summary of the Invention

[0003] The object of the present invention is to provide an anti-caking plastic particle conveying device, including a conveying pipeline. On the middle inclined pipe body of the conveying pipeline, heat dissipation and dust removal holes are evenly opened. The conveying pipeline penetrates through the inside of a dust collection frame. On the inner wall of the dust collection frame, a support frame is fixedly installed. Two bumps at the top of the support frame are rotatably installed with a first rotating shaft through bearings. On the outer wall of the first rotating shaft, multiple groups of first bevel gears are fixedly installed. Each of the multiple groups of first bevel gears meshes with a group of second bevel gears. Each of the multiple groups of second bevel gears is fixedly connected to a second rotating shaft. Each of the multiple groups of second rotating shafts is fixedly connected to a group of fan blades. The top of the conveying pipeline is connected to a metering frame. The metering frame is rotatably installed with a metering roller through a sealed bearing. A material groove is opened on the metering roller. On the outer walls of the metering roller and the first rotating shaft, a group of first sprockets are respectively fixedly installed. The two groups of first sprockets both mesh with a first chain. A dust suction cover is connected to the dust collection frame. One end of the dust suction cover is connected to a dust suction pipe. The other end of the dust suction pipe is connected to the dust suction end of an industrial vacuum cleaner. The industrial vacuum cleaner is fixedly installed on the top of a base. A conveying component is fixedly installed on the top of the base.

[0004] Preferably: The conveying component includes a feeding pipeline. The top of the feeding pipeline is connected to the lower end of the conveying pipeline. The feeding pipeline is rotatably installed with a conveying shaft through a sealed bearing. On the outer wall of the conveying shaft, a spiral conveying blade is fixedly installed. The bottom of the feeding pipeline is connected to a discharge pipe. Two fixed seats are fixedly connected to the outer wall of the feeding pipeline. One end of the conveying shaft is fixedly connected to the driving end of a motor. The motor and the fixed seats are both fixedly installed on the top of the base.

[0005] Preferably: On the outer walls of the conveying shaft and the first rotating shaft, a group of second sprockets are respectively fixedly installed. The two groups of second sprockets both mesh with a second chain.

[0006] Preferably: Multiple support long rods are fixedly installed on the top of the base. The top of the support long rods is fixedly connected to the bottom of a dispersing box. The bottom of the dispersing box is connected to a discharge hopper. The bottom of the discharge hopper is connected to the metering frame. The top of the dispersing box is connected to a feeding hopper.

[0007] Preferably: A stabilizing frame is fixedly installed on the top of the dispersing box. A rotating rod is rotatably installed on the stabilizing frame through a bearing. On the outer walls of the rotating rod and the metering roller, a group of third sprockets are respectively fixedly installed. The two groups of third sprockets both mesh with a third chain. A main shaft and two secondary shafts are rotatably installed on the stabilizing frame and the dispersing box through sealed bearings. On the outer walls of the rotating rod and the main shaft, a group of third bevel gears are respectively fixedly installed. The two groups of third bevel gears mesh with each other. On the outer walls of the two secondary shafts, a group of small gears are respectively fixedly installed. The two groups of small gears both mesh with a large gear. The large gear is fixedly installed on the outer wall of the main shaft.

[0008] Preferably: A first dispersing plate is fixedly installed on the outer wall of the main shaft. A second dispersing plate is fixedly installed on the outer wall of each of the two secondary shafts.

[0009] Preferably, an auxiliary plate is fixedly installed on the outer wall of the main shaft, and the bottom of the auxiliary plate is movably attached to the bottom end position of the inner wall of the dispersion box.

[0010] Preferably, a plurality of anti-caking rods are fixedly installed on the outer wall of the main shaft, and the anti-caking rods are all located in the inner cavity of the discharge hopper.

[0011] Preferably, a plurality of support short rods are fixedly installed on the top end of the base, and the top ends of the support short rods are fixedly connected to the bottom of the dust collection frame.

[0012] Preferably, a plurality of support legs are fixedly installed at the bottom of the base.

[0013] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0014] 1. When the present invention is in use, when the particles roll to the inclined position in the middle of the conveying pipeline, at this time, a plurality of fan blades will rotate. The wind generated by the rotation of the fan blades will be blown into the conveying pipeline through the heat dissipation and dust removal holes, dissipating heat from the plastic particles. Moreover, the wind generated by the rotation of the fan blades is from top to bottom. The wind generated by the fan blades can not only dissipate heat from the plastic particles, but also blow the impurities attached to the surface of the plastic particles out of the conveying pipeline through the heat dissipation and dust removal holes; at the same time, starting the industrial vacuum cleaner will cause the suction hood to generate suction, and thus the impurities can be absorbed. Moreover, the suction of the suction hood is from the lower end of the conveying pipeline to the higher end of the conveying pipeline. In addition to the dust suction function, the suction of the suction hood can also act on the plastic particles in the conveying pipeline through the heat dissipation and dust removal holes, which can reduce the downward rolling speed of the plastic particles in the inclined conveying pipeline. In a conveying pipeline with a limited length, the downward rolling time of the plastic particles is extended, the heat dissipation and dust removal time is prolonged, and the heat dissipation and dust removal effects are improved.

[0015] 2. When the present invention is in use, driven by the motor, in addition to driving the fan blades to rotate to complete the heat dissipation and dust removal work, the driving of the motor can also drive the dispersion plate one and the dispersion plate two to rotate, thereby dispersing the plastic particles inside the dispersion box. In addition, the driving of the motor can also drive the metering roller to rotate, and then gradually discharge the particles into the conveying pipeline. Moreover, the driving of the motor drives the spiral conveying blade to rotate, so as to convey the particles in the feeding pipeline; in short, when the present invention is in use, through the driving of the motor, multiple tasks such as dispersing the plastic particles in the dispersion box, gradually conveying the plastic particles into the conveying pipeline, dissipating heat and removing dust from the plastic particles in the conveying pipeline, and conveying the plastic particles in the feeding pipeline can be completed simultaneously, reducing the use of the driving source mechanism, reducing the daily maintenance cost and time of the driving source such as the motor, and also reducing the operation buttons on the controller, reducing the use difficulty. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic structural diagram of the present invention;

[0017] Figure 2 This is a schematic structural diagram of another angle of the present invention;

[0018] Figure 3 This is a schematic internal view of the breaking-up box;

[0019] Figure 4 This is a schematic internal view of the dust collection frame and the metering frame;

[0020] Figure 5 This is a schematic internal view of the material conveying pipeline.

[0021] In the figure: 1. conveying pipeline; 2. heat dissipation and dust removal holes; 3. dust collection frame; 4. support frame; 5. first rotating shaft; 6. first bevel gear; 7. second bevel gear; 8. second rotating shaft; 9. fan blades; 10. metering frame; 11. metering roller; 12. material trough; 13. first sprocket; 14. first chain; 15. dust suction hood; 16. dust suction pipe; 17. industrial vacuum cleaner; 18. base; 19. conveying assembly; 1901. material conveying pipeline; 1902. conveying shaft; 1903. spiral conveying blade; 1904. discharge pipe; 1905. fixed seat; 1906. motor; 20. second sprocket; 21. second chain; 22. supporting long rod; 23. breaking-up box; 24. discharge hopper; 25. stabilizing frame; 26. rotating rod; 27. third sprocket; 28. third chain; 29. main shaft; 30. third bevel gear; 31. small gear; 32. large gear; 33. first breaking-up plate; 34. second breaking-up plate; 35. auxiliary plate; 36. anti-caking rod; 37. supporting short rod; 38. supporting leg; 39. feed hopper; 40. secondary shaft. Detailed implementation manners

[0022] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0023] Refer to Figure 1 - Figure 5The plastic particle conveying device for preventing caking in the present invention includes a conveying pipeline 1. Uniform heat dissipation and dust removal holes 2 are provided on the inclined pipe body in the middle of the conveying pipeline 1. The conveying pipeline 1 penetrates through the inside of a dust collection frame 3. A support frame 4 is fixedly installed on the inner wall of the dust collection frame 3. Two convex blocks at the top of the support frame 4 are rotatably installed with a first rotating shaft 5 through bearings. Multiple groups of first bevel gears 6 are fixedly installed on the outer wall of the first rotating shaft 5. Multiple groups of the first bevel gears 6 respectively mesh with a group of second bevel gears 7. Multiple groups of the second bevel gears 7 are respectively fixedly connected to a second rotating shaft 8. Multiple groups of the second rotating shafts 8 are all fixedly connected to a group of fan blades 9. The top of the conveying pipeline 1 is connected to a metering frame 10. The metering frame 10 is rotatably installed with a metering roller 11 through a sealed bearing. A material groove 12 is provided on the metering roller 11. A group of first chain wheels 13 are respectively fixedly installed on the outer walls of the metering roller 11 and the first rotating shaft 5. The two groups of the first chain wheels 13 are both meshed with a first chain 14. A dust suction cover 15 is connected to the dust collection frame 3. One end of the dust suction cover 15 is connected to a dust suction pipe 16. The other end of the dust suction pipe 16 is connected to the dust suction end of an industrial vacuum cleaner 17. The industrial vacuum cleaner 17 is fixedly installed on the top of a base 18. A conveying assembly 19 is fixedly installed on the top of the base 18.

[0024] The conveying assembly 19 includes a material conveying pipeline 1901. The top of the material conveying pipeline 1901 is connected to the lower end of the conveying pipeline 1. The material conveying pipeline 1901 is rotatably installed with a conveying shaft 1902 through a sealed bearing. A spiral conveying blade 1903 is fixedly installed on the outer wall of the conveying shaft 1902. The bottom of the material conveying pipeline 1901 is connected to a discharge pipe 1904. Two fixing seats 1905 are fixedly connected to the outer wall of the material conveying pipeline 1901. One end of the conveying shaft 1902 is fixedly connected to the driving end of a motor 1906. The motor 1906 and the fixing seats 1905 are both fixedly installed on the top of the base 18. During use, starting the motor 1906 will drive the conveying shaft 1902 to rotate. The rotation of the conveying shaft 1902 will drive the spiral conveying blade 1903 to rotate. The rotation of the spiral conveying blade 1903 will convey the plastic particles in the material conveying pipeline 1901, and the plastic particles in the material conveying pipeline 1901 will be discharged from the discharge pipe 1904.

[0025] A group of second chain wheels 20 are respectively fixedly installed on the outer walls of the conveying shaft 1902 and the first rotating shaft 5. The two groups of the second chain wheels 20 are both meshed with a second chain 21. During use, when the conveying shaft 1902 rotates and is driven by the two groups of the second chain wheels 20 and the second chain 21, it will drive the first rotating shaft 5 to rotate.

[0026] A plurality of support long rods 22 are fixedly installed at the top end of the base 18. The top ends of the support long rods 22 are fixedly connected to the bottom of the dispersion box 23. The bottom of the dispersion box 23 is connected to the discharge hopper 24. The bottom of the discharge hopper 24 is connected to the metering frame 10. The top end of the dispersion box 23 is connected to the feed hopper 39. When in use, the plastic particles to be conveyed are poured into the dispersion box 23 through the feed hopper 39, and the plastic particles in the dispersion box 23 will enter the metering frame 10 through the discharge hopper 24.

[0027] A stabilizing frame 25 is fixedly installed at the top end of the dispersion box 23. A rotating rod 26 is rotatably installed on the stabilizing frame 25 through a bearing. A set of sprockets three 27 are respectively fixedly installed on the outer walls of the rotating rod 26 and the metering roller 11. The two sets of sprockets three 27 are both engaged with a chain three 28. A main shaft 29 and two sub-shafts 40 are rotatably installed on the stabilizing frame 25 and the dispersion box 23 through a sealed bearing. A set of bevel gears three 30 are respectively fixedly installed on the outer walls of the rotating rod 26 and the main shaft 29. The two sets of bevel gears three 30 are engaged with each other. A set of small gears 31 are respectively fixedly installed on the outer walls of the two sub-shafts 40. The two sets of small gears 31 are both engaged with a large gear 32. The large gear 32 is fixedly installed on the outer wall of the main shaft 29. When in use, when the metering roller 11 rotates and drives the rotating rod 26 to rotate under the transmission of the two sets of sprockets three 27 and the chain three 28, the rotating rod 26 rotates and drives the main shaft 29 to rotate under the transmission of the two sets of engaged bevel gears three 30. The main shaft 29 rotates and drives the two sub-shafts 40 to rotate together under the transmission of the two sets of small gears 31 and the large gear 32.

[0028] A dispersion plate one 33 is fixedly installed on the outer wall of the main shaft 29. A dispersion plate two 34 is fixedly installed on the outer wall of each of the two sub-shafts 40. When in use, under the transmission of the two sets of small gears 31 and the large gear 32, the main shaft 29 and the two sub-shafts 40 will rotate simultaneously. The rotation of the main shaft 29 will drive the dispersion plate one 33 to rotate, and the rotation of the sub-shaft 40 will drive the dispersion plate two 34 to rotate. Since the diameter of the large gear 32 is larger than that of the small gear 31, the dispersion plate one 33 and the dispersion plate two 34 will generate different rotation speeds, stirring the plastic particles inside the dispersion box 23 and dispersing the plastic particles.

[0029] An auxiliary plate 35 is fixedly installed on the outer wall of the main shaft 29. The bottom of the auxiliary plate 35 is movably attached to the bottom end position of the inner wall of the dispersion box 23. During the use process, the rotation of the main shaft 29 will drive the auxiliary plate 35 to rotate. And since the bottom of the auxiliary plate 35 is movably attached to the bottom end position of the inner wall of the dispersion box 23, the auxiliary plate 35 can continuously stir and contact the particles at the bottom end position of the inner wall of the dispersion box 23, ensuring that the particles can smoothly discharge from the discharge port opened at the bottom of the dispersion box 23.

[0030] A plurality of anti - caking rods 36 are fixedly installed on the outer wall of the main shaft 29, and all the anti - caking rods 36 are located in the inner cavity of the discharge hopper 24; the rotation of the main shaft 29 will drive the plurality of anti - caking rods 36 to rotate, so that the anti - caking rods 36 can stir the particles in the discharge hopper 24 to prevent the entering particles from caking in the discharge hopper 24.

[0031] A plurality of support short rods 37 are fixedly installed on the top end of the base 18, and the top ends of the support short rods 37 are fixedly connected to the bottom of the dust collection frame 3; thus, the installation structure of the dust collection frame 3 is stable.

[0032] A plurality of support legs 38 are fixedly installed at the bottom of the base 18; the base 18 can be strongly supported by the plurality of support legs 38.

[0033] The working principle of the present invention: When in use, the particles to be transported are poured into the dispersing box 23 from the feed hopper 39. At the same time, starting the motor 1906 will drive the conveying shaft 1902 to rotate. The rotation of the conveying shaft 1902 and under the transmission of the two sprockets two 20 and the chain two 21 will drive the rotating shaft one 5 to rotate. The rotation of the rotating shaft one 5 and under the transmission of the two sprockets one 13 and the chain one 14 will drive the metering roller 11 to rotate. The rotation of the metering roller 11 and under the transmission of the two sprockets three 27 and the chain three 28 will drive the rotating rod 26 to rotate. The rotation of the rotating rod 26 and under the transmission of the two meshing bevel gears three 30 will drive the main shaft 29 to rotate. The rotation of the main shaft 29 and under the transmission of the two small gears 31 and the large gear 32 will drive the two secondary shafts 40 to rotate together. The rotation of the main shaft 29 will drive the dispersing plate one 33 to rotate, and the rotation of the secondary shaft 40 will drive the dispersing plate two 34 to rotate. Since the diameter of the large gear 32 is larger than the diameter of the small gear 31, different rotation speeds of the dispersing plate one 33 and the dispersing plate two 34 will be generated to stir the plastic particles inside the dispersing box 23 and disperse the plastic particles.

[0034] After being dispersed, the plastic particles will enter the discharge hopper 24. At the same time, the rotation of the main shaft 29 will drive the plurality of anti - caking rods 36 to rotate, so that the anti - caking rods 36 can stir the particles in the discharge hopper 24 to prevent the entering particles from caking in the discharge hopper 24. The plastic particles in the discharge hopper 24 will enter the metering frame 10. Blocked by the metering roller 11, the plastic particles will not enter the conveying pipeline 1 in large quantities. At this time, every time the metering roller 11 rotates one circle, the particles entering the material trough 12 will be discharged from the metering frame 10 into the conveying pipeline 1.

[0035] The particles entering the conveying pipeline 1 will roll along the conveying pipeline 1. When the particles roll to the inclined position in the middle of the conveying pipeline 1, at this time, the first rotating shaft 5 rotates and drives a plurality of second rotating shafts 8 to rotate under the transmission of a plurality of first bevel gears 6 and a plurality of second bevel gears 7. The rotation of the plurality of second rotating shafts 8 will drive the rotation of a plurality of fan blades 9. The wind generated by the rotation of the fan blades 9 will be blown into the conveying pipeline 1 through the heat dissipation and dust removal holes 2 to dissipate heat from the plastic particles. Moreover, the wind generated by the rotation of the fan blades 9 is from top to bottom. The wind generated by the fan blades 9 can not only dissipate heat from the plastic particles, but also blow out the impurities attached to the surface of the plastic particles through the heat dissipation and dust removal holes 2 out of the conveying pipeline 1. At the same time, starting the industrial vacuum cleaner 17 will cause the suction hood 15 to generate suction, and then the impurities can be absorbed. Moreover, the suction of the suction hood 15 is from the lower end of the conveying pipeline 1 to the higher end of the conveying pipeline 1. The suction of the suction hood 15 acts on the plastic particles in the conveying pipeline 1 through the heat dissipation and dust removal holes 2, which can reduce the downward rolling speed of the plastic particles in the inclined conveying pipeline 1, and in the conveying pipeline 1 with a limited length, extend the downward rolling time of the plastic particles and extend the heat dissipation and dust removal time.

[0036] The plastic particles passing through the conveying pipeline 1 will enter the feeding pipeline 1901. At this time, the rotation of the conveying shaft 1902 will drive the rotation of the spiral conveying blade 1903, and the rotation of the spiral conveying blade 1903 will convey the plastic particles in the feeding pipeline 1901, and the plastic particles in the feeding pipeline 1901 will be discharged from the discharge pipe 1904.

[0037] It should be noted that when the device of the present invention is used, both the motor 1906 and the industrial vacuum cleaner 17 need to be externally connected to a suitable power source to provide power support for the use of the motor 1906 and the industrial vacuum cleaner 17. Both the motor 1906 and the industrial vacuum cleaner 17 are externally connected to a suitable controller to control the operation of the motor 1906 and the industrial vacuum cleaner 17 through the externally connected suitable controller. It should be noted that the motor 1906 needs to adopt a motor that meets the driving requirements of the present invention.

[0038] The above content further elaborates on the present invention in combination with specific embodiments. It cannot be determined that the specific implementation of the present invention is only limited to these descriptions. For those of ordinary skill in the technical field to which the present invention belongs, without departing from the concept of the present invention, several simple deductions or substitutions can still be made, which should all be regarded as belonging to the protection scope determined by the claims submitted for the present invention.

Claims

1. An anti-agglomeration plastic particle conveying device, comprising a conveying pipeline (1), characterized in that: Heat dissipation and dust removal holes (2) are evenly arranged on the inclined pipe body in the middle of the conveying pipe (1), the conveying pipe (1) passes through the inner side of the dust collecting frame (3), a support frame (4) is fixedly installed on the inner wall of the dust collecting frame (3), two protrusions at the top of the support frame (4) are rotatably installed with a rotating shaft (5) through bearings, multiple groups of bevel gears (6) are fixedly installed on the outer wall of the rotating shaft (5), multiple groups of bevel gears (6) are respectively meshed with a group of bevel gears (7), multiple groups of bevel gears (7) are respectively fixedly connected to a group of rotating shafts (8), multiple groups of rotating shafts (8) are all fixedly connected to a group of fan blades (9), and a metering frame (10) is connected to the top of the conveying pipe (1). The measuring frame (10) is rotatably mounted with a measuring roller (11) via a sealed bearing, a material trough (12) is provided on the measuring roller (11), a group of sprockets (13) are fixedly mounted on the outer wall of the measuring roller (11) and the rotating shaft (5), and the two groups of sprockets (13) are engaged with a chain (14), a dust hood (15) is connected to the dust collecting frame (3), the dust hood (15) is connected to one end of a dust suction pipe (16), and the other end of the dust suction pipe (16) is connected to the dust suction end of an industrial vacuum cleaner (17), the industrial vacuum cleaner (17) is fixedly mounted on the top of a base (18), and a conveying assembly (19) is fixedly mounted on the top of the base (18).

2. The anti-agglomeration plastic particle conveying device according to claim 1, characterized in that: The conveying assembly (19) comprises a conveying pipeline (1901), the top of which is connected to the lower end of the conveying pipeline (1), the conveying pipeline (1901) is rotatably mounted with a conveying shaft (1902) via a sealed bearing, a spiral conveying blade (1903) is fixedly mounted on the outer wall of the conveying shaft (1902), the bottom of the conveying pipeline (1901) is connected to a discharge pipe (1904), the outer wall of the conveying pipeline (1901) is fixedly connected to two groups of fixing seats (1905), one end of the conveying shaft (1902) is fixedly connected to the driving end of a motor (1906), and the motor (1906) and the fixing seat (1905) are both fixedly mounted on the top of the base (18).

3. The anti-agglomeration plastic particle conveying device according to claim 2, characterized in that: A set of sprocket wheels 2 (20) are fixedly mounted on the outer walls of the conveying shaft (1902) and the rotating shaft 1 (5), and the two sets of sprocket wheels 2 (20) are engaged with chain 2 (21).

4. The anti-agglomeration plastic particle conveying device according to claim 1, characterized in that: A plurality of groups of long supporting rods (22) are fixedly mounted on the top of the base (18); the top of the long supporting rods (22) is fixedly connected to the bottom of a scattering box (23); the bottom of the scattering box (23) is connected to a discharge hopper (24); the bottom of the discharge hopper (24) is connected to a metering frame (10); and the top of the scattering box (23) is connected to a feed hopper (39).

5. The anti-agglomeration plastic particle conveying device according to claim 4, characterized in that: A stabilizing frame (25) is fixedly mounted on the top of the dispersing box (23), a rotating rod (26) is rotatably mounted on the stabilizing frame (25) via a bearing, a group of sprocket wheels (27) are fixedly mounted on the outer wall of the rotating rod (26) and the metering roller (11), and the two groups of sprocket wheels (27) are meshed with a chain (28), a group of main shafts (29) and two groups of secondary shafts (40) are rotatably mounted on the stabilizing frame (25) and the dispersing box (23) via a sealed bearing, a group of bevel gears (30) are fixedly mounted on the outer wall of the rotating rod (26) and the main shaft (29), and the two groups of bevel gears (30) are meshed with each other, a group of small gears (31) are fixedly mounted on the outer wall of the two groups of secondary shafts (40), and the two groups of small gears (31) are meshed with a large gear (32), and the large gear (32) is fixedly mounted on the outer wall of the main shaft (29).

6. The anti-agglomeration plastic particle conveying device according to claim 5, characterized in that: A first scattering plate (33) is fixedly mounted on the outer wall of the main shaft (29), and a second scattering plate (34) is fixedly mounted on the outer walls of the two sets of secondary shafts (40).

7. The anti-agglomeration plastic particle conveying device according to claim 5, characterized in that: An auxiliary plate (35) is fixedly mounted on the outer wall of the main shaft (29), and the bottom of the auxiliary plate (35) is movably fitted to the bottom end of the inner wall of the breaking box (23).

8. The anti-agglomeration plastic particle conveying device according to claim 5, characterized in that: A plurality of groups of anti-agglomeration rods (36) are fixedly mounted on the outer wall of the main shaft (29), and the anti-agglomeration rods (36) are all located in the inner cavity of the discharge hopper (24).

9. The anti-agglomeration plastic particle conveying device according to claim 1, characterized in that: A plurality of groups of short supporting rods (37) are fixedly mounted on the top of the base (18), and the tops of the short supporting rods (37) are fixedly connected to the bottom of the dust collecting frame (3).

10. The anti-agglomeration plastic particle conveying device according to claim 1, characterized in that: A plurality of groups of supporting legs (38) are fixedly mounted on the bottom of the base (18).