Anti-blocking plastic particle automatic charging device and method

By using a combination technology of lifting screw and through rod in the automatic plastic pellet charging device, the problems of damage and blockage of plastic pellets during the device transfer process are solved, and safe charging of plastic pellets and effective avoiding blockage are achieved.

CN119975914AInactive Publication Date: 2025-05-13NANJING NINGYUAN PLASTIC TECH CO LTD
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Patent Information

Application Number
CN202510198985.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing automatic plastic pellet charging device is prone to damage plastic pellets during the transfer process and is prone to clogging problems.

Method used

The lifting screw on the slotted frame is used to run, which drives the lifting block and the lifting substrate to lift, so that the pushing platform, the central rotating frame and the vertical twisting dragon are lifted, and the through rod pushes the pore plate opens to realize the large space input of the material and avoids damage and blockage of plastic particles.

Benefits of technology

It effectively avoids a large amount of damage to plastic particles, and achieves the effect of preventing clogging, ensuring uniform loading of plastic particles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The anti-blocking plastic particle automatic loading device comprises a carrier transmission assembly and a transfer loading component, an anti-blocking transfer mechanism is arranged above the side of the carrier transmission assembly, and a bearing feeding assembly assembled through bolts is arranged at the top end of the anti-blocking transfer mechanism; a mixed vibration mechanism assembled through bolts is arranged above the periphery of the bearing and feeding assembly. According to the device, a lifting block and a lifting base plate are driven to be lifted after output operation of a lifting lead screw on a grooving frame, after lifting, when a pushing and lifting table, a center rotating frame and a vertical auger are lifted, a pore plate is jacked open through a penetrating rod, and after jacking open, materials can be input in the maximum space; and in the input process, the transfer effect can be achieved in batches, so that a large amount of damage to plastic particles can be effectively avoided, and meanwhile, in the process, the effect of effectively avoiding blockage can also be achieved.
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Description

Technical Field

[0001] The invention relates to the technical field of plastic particles, in particular to an anti-clogging automatic loading device and method for plastic particles. Background Art

[0002] Plastic particles refer to granular plastics, which are generally divided into more than 200 types and subdivided into thousands of types. Common plastic particles include general plastics, engineering plastics, and special plastics. General plastics: polypropylene, polyethylene, polyvinyl chloride, polystyrene, polyester, polyurethane, etc. Engineering plastics: nylon, polytetrafluoroethylene, polyoxymethylene, polycarbonate silicone, etc. Special plastics: thermosetting plastics, functional polymer plastics, such as artificial kidneys. Injection molding is currently the most widely used plastic processing method. It can manufacture various precision parts and large-scale products. In the injection molding process, plastic particles need to be first After heating and melting, it enters the injection molding machine, and then the screw of the injection molding machine presses the molten plastic into the mold for molding. Extrusion molding is generally used to produce various plastic pipes, plates, rods, etc. In this process, the plastic particles are heated to a molten state and molded by the screw and mold of the extruder. Blow molding is mainly used to produce various plastic hollow containers, such as bottles, boxes, etc. In this process, the plastic particles are melted and blown into shape through the mold. Plastic particles can also be used in the production process of various plastic products, such as plastic packaging bags, plastic medicine boxes, plastic barrels, etc.

[0003] When the existing automatic loading device for plastic particles is in use, such as application number CN202321056175.5 which discloses an anti-clogging automatic loading device for plastic particles, the device includes a box body, a suction pump is connected to the left side of the top of the box body by screws, the top of the suction pump is connected to a suction hose, the bottom of the box body is connected to a discharge pipe, a feeding mechanism is installed through the top of the box body, a circular plate is fixedly sleeved on the surface of the box body, and the four corners of the bottom of the circular plate are connected to support legs by screws. The utility model can stir the plastic in the inner cavity of the box, drive the plastic to flow downward evenly, and drive the plastic in the inner cavity of the discharge pipe to roll through the rotation of the small spiral blades, so that the plastic in the inner cavity of the discharge pipe is discharged evenly, avoiding plastic blockage, which is conducive to the uniform discharge and filling of plastic particles. The filling box is placed on the top of the pallet, and the filled plastic is weighed, which brings convenience to the operator. At the same time, the height of the pallet can be adjusted to support packaging boxes of different heights. However, in the above technology, the plastic particles are easily damaged during the transfer process. For this reason, we propose an anti-blocking plastic particle automatic loading device and method to solve the above problem. Summary of the invention

[0004] In view of the above problems, the present invention proposes an anti-clogging automatic loading device and method for plastic particles. The anti-clogging automatic loading device and method for plastic particles mainly utilize the lifting screw on the slotted frame to drive the lifting block and the lifting base plate to lift after the output operation. After lifting, the pushing platform, the central rotating frame and the vertical auger are lifted, so that the penetrating rod pushes the porous plate open. After pushing open, the material can be input with the maximum space. During the input process, the transfer effect can be achieved in batches, thereby effectively avoiding a large number of damages to the plastic particles. At the same time, in this process, the effect of effectively avoiding blockage can also be achieved.

[0005] To achieve the above object, the present invention provides the following technical solutions: A blockage-proof automatic loading device and method for plastic particles, comprising a carrier transmission assembly and a transfer loading component, wherein an blockage-proof transfer mechanism is arranged above the side of the carrier transmission assembly, and a bolt-assembled load-bearing feed assembly is arranged at the top of the blockage-proof transfer mechanism, a bolt-assembled mixing vibration mechanism is arranged above the four sides of the load-bearing feed assembly, and a transfer loading component is arranged above one end of the blockage-proof transfer mechanism and is socket-connected to the output end of the load-bearing feed assembly.

[0006] As a further technical solution, the carrier transmission assembly includes a pad, a lifting base, a first chassis, a first motor, a rotating roller and a conveyor belt. The lifting base is arranged above the pad, and the first chassis connected to the output end of the first motor is arranged on the outer side of one end of the lifting base, the output end of the first chassis is provided with a rotating roller, and the conveyor belt is arranged on the outer side of the rotating roller.

[0007] As a further technical solution, the anti-blocking transfer mechanism includes a lifting pad frame, a bolt base, a slotted frame, a second motor, a first gear set, a lifting screw, a lifting block, a lifting base plate, a bolt pad, a pushing platform, a central rotating frame and a vertical auger. The lifting pad frame is arranged above the side of the lifting base plate, a bolt base is arranged above one end of the lifting pad frame, and a slotted frame connected to the output end of the second motor is arranged above the bolt base, the output end of the second motor is provided with a first gear set, and the output end of the first gear set is provided with a lifting screw.

[0008] As a further technical solution, a lifting block is provided at the output end of the lifting screw, and a lifting base plate is provided at the top of the lifting block, a bolt pad is provided above the lifting base plate, and a pushing platform is provided above the bolt pad, and a central rotating frame for installing a vertical auger is provided above the middle of the pushing platform.

[0009] As a further technical solution, the load-bearing feed assembly includes a top duct, an assembly duct, a through rod, a porous plate, an annular duct, a splitter rod, a load-bearing cabin, an inward-inclined cover and a bottom-entry duct, the top duct is arranged at the top end of the slotted frame, the inner side of the top duct is provided with an assembly duct with bolt sleeves, and the inner side of the assembly duct is provided with a through rod, the top end of the through rod is provided with a porous plate, the top end of the assembly duct is provided with an annular duct, and the inner side of the annular duct is provided with a splitter rod, the top end of the annular duct is provided with a load-bearing cabin, and the top end of the load-bearing cabin is provided with an inward-inclined cover, and the bottom end of the assembly duct is provided with a bottom-entry duct.

[0010] As a further technical solution, the hybrid vibration mechanism includes a lifting frame, a top plate, a third motor, a rotating column, an outer shell cabin, an inner lining base and an eccentric rod. The lifting frame is bolted to the top of the side of the top duct, a top plate is arranged at the top of the lifting frame, and a third motor is arranged at the top of the top plate, a rotating column is arranged at the output end of the third motor, and an outer shell cabin is arranged below the side of the rotating column, an inner lining base is arranged inside the outer shell cabin, and an eccentric rod is arranged at the output end of the inner lining base.

[0011] As a further technical solution, the transfer and loading component includes an end-to-end base, a side cabin, a pneumatic valve plate, a second chassis, a first driving wheel group, a second driving wheel group, a bearing plate, a cross pipe, an output pipe, an active section, an angle plate, a transverse auger and a transverse baffle. The end-to-end base is arranged above the other end of the lifting pad frame, a side cabin is arranged on one side of the end-to-end base, and a pneumatic valve plate is arranged at the output end of the side cabin, a second chassis is arranged on the outer side of the end-to-end base, and the output end of the second chassis is provided with the first driving wheel group, and the output end of the first driving wheel group is provided with the second driving wheel group.

[0012] As a further technical solution, the output end of the second driving wheel group passes through the bearing disk and is connected to a transverse auger, and a transverse baffle is provided on the outer side of the transverse auger, a transverse tube is provided on the outer side of the bearing disk, and an output tube is provided on the output end of the transverse tube.

[0013] As a further technical solution, when in use, the output power of the first motor is started to drive the output end to operate, so that after the output power of the first motor is running, it can drive the rotating roller that raises the output end of the substrate to perform output operation, so that after the output operation of the rotating roller, the conveyor belt is operated, so that the packaging container is moved to the target location, and then the material to be processed is input into the carrying cabin, and then the output power of the third motor above the top plate is used to drive the output end to operate, so that after the output power of the third motor is operated, the rotating column drives the outer shell cabin to rotate, and after the outer shell cabin rotates, the output power of the lining base inside the outer shell cabin drives the output end to operate and then drives the eccentric rod to rotate, so that the plastic particles in the carrying cabin can achieve an effective vibration mixing effect, and the outer shell cabin can achieve an effective mixing effect on the particles in the carrying cabin, so that after the carrying cabin and the inclination cover are mixed, the plastic particles are input into the bottom inlet duct through the porous plate above the assembly duct so that the particles can achieve the effect of rotational input, and when the bottom inlet duct and the annular duct are connected, the plastic particles are mixed and mixed. When the channel, the diverter rod and the assembly duct are blocked, the second motor output power on the outer side above the slotted frame is used to drive the output end to operate, so that the second motor output power can drive the first gear group to engage and drive after the operation, so that after the first gear group engages and drives, the lifting screw on the slotted frame outputs and operates, so that the lifting block drives the lifting base plate to lift, and after lifting, the push-up platform, the central rotating frame and the vertical auger can push open, penetrate the rods and the aperture plate to achieve the effect of opening a large range of input, and the central rotating frame and the vertical auger are spirally operated to achieve the effect of transfer. When discharging is required, the pneumatic valve plate on the side cabin is used to output and operate to achieve the effect of opening the output pipe, and the output power of the first active wheel group on the second chassis drives the output end to operate, so that the output power of the first active wheel group drives the output of the second active wheel group to operate, so that the transverse auger and the transverse baffle on the transverse tube transfer the plastic particles, and after the transfer, the material is output to the target container through the transverse auger and the transverse baffle under the output pipe to achieve the effect of loading.

[0014] Compared with the prior art, the present invention has the following beneficial effects: The device of the invention mainly utilizes the lifting screw on the slotted frame to drive the lifting block and the lifting base plate to lift after the output operation. After lifting, the push-up platform, the central rotating frame and the vertical auger are lifted, so that the penetrating rod pushes the porous plate open. After opening, the material can be input with the maximum space. During the input process, the transfer effect can be achieved in batches, thereby effectively avoiding a large number of damages to the plastic particles. At the same time, in this process, it can also effectively avoid blockage. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1It is a structural schematic diagram of an anti-clogging plastic granule automatic loading device and method; Figure 2 It is a schematic diagram of the structure in the present invention when viewed from above; Figure 3 It is a schematic structural diagram of a cross section in the present invention; Figure 4 It is a structural schematic diagram of the anti-blocking transfer mechanism in the present invention; Figure 5 It is a structural schematic diagram of the lifting screw rod and the lifting block in the present invention; Figure 6 It is a schematic structural diagram of the material-carrying feed assembly in the present invention; Figure 7 It is a structural schematic diagram of the hybrid vibration mechanism in the present invention; Figure 8 It is a structural schematic diagram of the transfer and loading component in the present invention; Fig. 9 It is a schematic diagram of the structure of the movable joint bar and the angle plate in the present invention.

[0016] In the figure: 1. carrier transmission assembly; 101. pad; 102. lifting base plate; 103. first chassis; 104. first motor; 105. rotating roller; 106. conveyor belt; 2. anti-blocking transfer mechanism; 201. lifting pad frame; 202. bolt base; 203. slotting frame; 204. second motor; 205. first gear set; 206. lifting screw rod; 207. lifting block; 208. lifting base plate; 209. bolt pad; 2010. lifting platform; 2011. central rotating frame; 2012. vertical auger; 3. bearing feed assembly; 301. top duct; 302. assembly duct; 303. penetration rod; 304. aperture plate; 305. annular Duct; 306, splitter rod; 307, bearing cabin; 308, inclination cover; 309, bottom-entry duct; 4, mixed vibration mechanism; 401, lifting frame; 402, top plate; 403, third motor; 404, rotating column; 405, outer shell cabin; 406, lining base; 407, eccentric rod; 5, transfer loading component; 501, end-to-end base; 502, side cabin; 503, pneumatic valve plate; 504, second chassis; 505, first driving wheel group; 506, second driving wheel group; 507, bearing plate; 508, cross pipe; 509, output pipe; 5010, movable joint strip; 5011, angle plate; 5012, transverse auger; 5013, transverse baffle. DETAILED DESCRIPTION

[0017] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside" and the like indicate positions or positional relationships based on the positions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limiting the present invention. In addition, the terms "first", "second", and the like are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first", "second", and the like may explicitly or implicitly include one or more of the features. In the description of the present invention, unless otherwise specified, "multiple" means two or more.

[0018] In the description of the present invention, it should be noted that, unless otherwise clearly specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection, or it can be indirectly connected through an intermediate medium, or it can be the internal communication of two components. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood by specific circumstances.

[0019] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0020] See also Figure 1-9 In an embodiment of the present invention, an anti-blocking automatic loading device for plastic particles includes a carrier transmission assembly 1 and a transfer loading component 5. An anti-blocking transfer mechanism 2 is arranged above the side of the carrier transmission assembly 1, and a bolt-assembled load-bearing feed assembly 3 is arranged at the top of the anti-blocking transfer mechanism 2. A bolt-assembled mixing vibration mechanism 4 is arranged above the four sides of the load-bearing feed assembly 3, and a transfer loading component 5 which is sleeved and connected to the output end of the load-bearing feed assembly 3 is arranged above one end of the anti-blocking transfer mechanism 2.

[0021] The carrier transmission assembly 1 includes a cushion block 101, a lifting base plate 102, a first chassis 103, a first motor 104, a rotating roller 105 and a conveyor belt 106. The lifting base plate 102 is arranged above the cushion block 101, and the first chassis 103 connected to the output end of the first motor 104 is arranged on the outer side of one end of the lifting base plate 102, the output end of the first chassis 103 is arranged with a rotating roller 105, and the outer side of the rotating roller 105 is arranged with a conveyor belt 106.

[0022] In the embodiment of the present invention, when in use, the first motor 104 is started to output power to drive the output end to operate, so that after the first motor 104 outputs power and operates, it can drive the rotating roller 105 at the output end of the raised substrate 102 to operate for output, and after the rotating roller 105 operates for output, the conveyor belt 106 is operated, so that the packaging container is moved to the target location.

[0023] The anti-blocking transfer mechanism 2 includes a lifting pad frame 201, a bolt base 202, a slotted frame 203, a second motor 204, a first gear set 205, a lifting screw 206, a lifting block 207, a lifting base plate 208, a bolt pad 209, a lifting platform 2010, a central rotating frame 2011 and a vertical auger 2012. The lifting pad frame 201 is arranged above the side of the lifting base plate 102, a bolt base 202 is arranged above one end of the lifting pad frame 201, and a slotted frame 203 connected to the output end of the second motor 204 is arranged above the bolt base 202, the output end of the second motor 204 is provided with a first gear set 205, and the output end of the first gear set 205 is provided with a lifting screw 206.

[0024] In an embodiment of the present invention, when the bottom duct 309 is blocked by the annular duct 305, the dividing rod 306 and the assembly duct 302, the second motor 204 on the upper outer side of the slotted frame 203 is used to output power to drive the output end to operate, so that after the second motor 204 outputs power and runs, it can drive the first gear set 205 to engage and transmit. After the first gear set 205 engages and transmits, the lifting screw rod 206 on the slotted frame 203 outputs and runs, so that the lifting block 207 drives the lifting base plate 208 to lift.

[0025] A lifting block 207 is provided at the output end of the lifting screw rod 206, and a lifting base plate 208 is provided at the top of the lifting block 207, a bolt pad 209 is provided above the lifting base plate 208, and a pushing platform 2010 is provided above the bolt pad 209, and a central rotating frame 2011 for installing a vertical auger 2012 is provided above the middle of the pushing platform 2010.

[0026] In the embodiment of the present invention, after lifting, the lifting platform 2010, the central rotating frame 2011 and the vertical auger 2012 can push open, penetrate the rod 303 and the porous plate 304 to achieve a wide range of input effect, and enable the central rotating frame 2011 and the vertical auger 2012 to spirally run to achieve a transfer effect.

[0027] The load-bearing feed assembly 3 includes a top duct 301, an assembly duct 302, a through rod 303, a porous plate 304, an annular duct 305, a splitter rod 306, a bearing cabin 307, an inclination cover 308 and a bottom duct 309. The top duct 301 is arranged at the top end of the slotted frame 203. The inner side of the top duct 301 is provided with an assembly duct 302 which is bolted, and the inner side of the assembly duct 302 is provided with a through rod 303, the top of the through rod 303 is provided with a porous plate 304, the top of the assembly duct 302 is provided with an annular duct 305, and the inner side of the annular duct 305 is provided with a splitter rod 306, the top of the annular duct 305 is provided with a bearing cabin 307, and the top of the bearing cabin 307 is provided with an inclination cover 308, and the bottom end of the assembly duct 302 is provided with a bottom duct 309.

[0028] In an embodiment of the present invention, the outer shell cabin 405 can achieve an effective mixing effect on the particles in the carrying cabin 307, so that after the carrying cabin 307 and the inward cover 308 are mixed and operated, the plastic particles are input into the bottom duct 309 through the porous plate 304 above the assembly duct 302 so that the particles can achieve the effect of rotational input.

[0029] The hybrid vibration mechanism 4 includes a lifting frame 401, a top plate 402, a third motor 403, a rotating column 404, an outer shell cabin 405, an inner lining base 406 and an eccentric rod 407. The lifting frame 401 is bolted to the upper side of the top duct 301. The top plate 402 is arranged at the top of the lifting frame 401, and the third motor 403 is arranged at the top of the top plate 402. The rotating column 404 is arranged at the output end of the third motor 403, and the outer shell cabin 405 is arranged below the side of the rotating column 404. The inner lining base 406 is arranged inside the outer shell cabin 405, and the output end of the inner lining base 406 is arranged at the eccentric rod 407.

[0030] In an embodiment of the present invention, the material to be processed is then input into the carrying cabin 307, and then the third motor 403 above the top plate 402 is used to output power to drive the output end to operate, so that after the third motor 403 outputs power to operate, the rotating column 404 drives the outer shell cabin 405 to rotate, and after the outer shell cabin 405 rotates, the lining base 406 inside the outer shell cabin 405 outputs power to drive the output end to operate and then drive the eccentric rod 407 to rotate, so that the plastic particles in the carrying cabin 307 can achieve an effective vibration mixing effect.

[0031] The transfer loading component 5 includes an end-to-base 501, a side compartment 502, a pneumatic valve plate 503, a second chassis 504, a first driving wheel set 505, a second driving wheel set 506, a bearing plate 507, a cross tube 508, an output tube 509, an active joint bar 5010, an angle plate 5011, a transverse auger 5012 and a transverse baffle 5013. The end-to-base 501 is arranged above the other end of the lifting pad frame 201, a side compartment 502 is arranged on one side of the end-to-base 501, and a pneumatic valve plate 503 is arranged at the output end of the side compartment 502, a second chassis 504 is arranged on the outer side of the end-to-base 501, and the first driving wheel set 505 is arranged at the output end of the second chassis 504, and the second driving wheel set 506 is arranged at the output end of the first driving wheel set 505.

[0032] In an embodiment of the present invention, when discharging is required, the pneumatic valve plate 503 on the side compartment 502 is used to perform output operation to achieve the effect of opening the output pipe 509, and the first driving wheel group 505 on the second chassis 504 outputs power to drive the output end to operate.

[0033] The output end of the second driving wheel group 506 passes through the bearing plate 507 and is connected to a transverse auger 5012, and a transverse baffle 5013 is provided on the outer side of the transverse auger 5012. A transverse tube 508 is provided on the outer side of the bearing plate 507, and an output end of the transverse tube 508 is provided with an output tube 509 installed in a sleeve.

[0034] In an embodiment of the present invention, the first driving wheel group 505 outputs power to drive the second driving wheel group 506 to output and operate, so that the transverse auger 5012 and the transverse baffle 5013 on the transverse tube 508 transfer the plastic particles. After the transfer, the material is output to the target container through the transverse auger 5012 and the transverse baffle 5013 under the output tube 509 to achieve the loading effect.

[0035] When in use, the output power of the first motor 104 is started to drive the output end to operate, so that the first motor 104 can drive the rotating roller 105 at the output end of the raised substrate 102 to operate after the output power is operated, so that the conveyor belt 106 is operated after the output of the rotating roller 105, so that the packaging container is moved to the target location, and then the materials to be processed are input into the carrying cabin 307, and then the third motor 403 above the top plate 402 is used to output power to drive the output end to operate, so that after the third motor 403 outputs power and operates, the rotating column 404 drives the outer shell cabin 405 to rotate, and in the outer shell cabin After the outer shell 405 rotates, the inner liner base 406 inside the outer shell 405 outputs power to drive the output end to operate and then drive the eccentric rod 407 to rotate, so that the plastic particles in the carrier cabin 307 can achieve an effective vibration mixing effect. After the outer shell 405 effectively mixes the particles in the carrier cabin 307, the carrier cabin 307 and the inclination cover 308 are mixed, and the plastic particles are input into the bottom duct 309 through the pore plate 304 above the assembly duct 302, so that the particles can achieve the effect of rotation input. When the bottom duct 309 is combined with the annular duct 305, the dividing rod 306 and the assembly duct 302 to produce When blocked, the second motor 204 on the outer side above the slotted frame 203 is used to output power to drive the output end to operate, so that the second motor 204 can drive the first gear set 205 to mesh and transmit after the second motor 204 outputs power, so that the first gear set 205 meshes and transmits, so that the lifting screw rod 206 on the slotted frame 203 outputs and operates, so that the lifting block 207 drives the lifting base plate 208 to lift, and after lifting, the lifting platform 2010, the central rotating frame 2011 and the vertical auger 2012 can push open, penetrate the rod 303, and the aperture plate 304 to achieve a wide range of input effects, and the central rotating frame 2011 and the vertical auger 2012 can be opened. After the spiral operation is carried out, the transfer effect is achieved. When discharging is required, the pneumatic valve plate 503 on the side cabin 502 is used to perform output operation to achieve the effect of opening the output pipe 509, and the first driving wheel group 505 on the second chassis 504 outputs power to drive the output end to operate, so that the first driving wheel group 505 outputs power to drive the second driving wheel group 506 to operate, so that the transverse auger 5012 and the transverse baffle 5013 on the transverse tube 508 transfer the plastic particles. After the transfer, the material is output to the target container through the transverse auger 5012 and the transverse baffle 5013 under the output pipe 509 to achieve the loading effect.

[0036] It will be apparent to those skilled in the art that the invention is not limited to the details of the exemplary embodiments described above and that the invention can be implemented in other specific forms without departing from the spirit or essential features of the invention. Therefore, the embodiments should be considered exemplary and non-limiting in all respects, and the scope of the invention is defined by the appended claims rather than the foregoing description, and it is intended that all variations falling within the meaning and scope of the equivalent elements of the claims be included in the invention. Any reference numeral in a claim should not be considered as limiting the claim to which it relates.

[0037] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.

Claims

1. An anti-clogging plastic granule automatic loading device, comprising a carrier transmission component (1) and a transfer loading component (5), characterized in that: An anti-blocking transfer mechanism (2) is arranged above the side of the carrier transmission assembly (1), and a bolt-assembled load-bearing feed assembly (3) is arranged at the top of the anti-blocking transfer mechanism (2), and a bolt-assembled mixing vibration mechanism (4) is arranged above the four sides of the load-bearing feed assembly (3), and a transfer loading component (5) is arranged above one end of the anti-blocking transfer mechanism (2) and is sleeve-connected to the output end of the load-bearing feed assembly (3).

2. The anti-clogging automatic plastic granule loading device according to claim 1, characterized in that: The carrier transmission assembly (1) comprises a cushion block (101), a lifting base plate (102), a first chassis (103), a first motor (104), a rotating roller (105) and a conveyor belt (106); the lifting base plate (102) is arranged above the cushion block (101), and the first chassis (103) connected to the output end of the first motor (104) is arranged on the outer side of one end of the lifting base plate (102); the output end of the first chassis (103) is arranged with a rotating roller (105), and the outer side of the rotating roller (105) is arranged with a conveyor belt (106).

3. The anti-clogging automatic plastic granule loading device according to claim 2, characterized in that: The anti-blocking transfer mechanism (2) comprises a lifting pad frame (201), a bolt base (202), a slotted frame (203), a second motor (204), a first gear set (205), a lifting screw (206), a lifting block (207), a lifting base plate (208), a bolt pad (209), a lifting platform (2010), a central rotating frame (2011) and a vertical auger (2012), wherein the lifting pad frame (201) is arranged above the side of the lifting base plate (102), a bolt base (202) is arranged above one end of the lifting pad frame (201), and a slotted frame (203) connected to the output end of the second motor (204) is arranged above the bolt base (202), the output end of the second motor (204) is provided with a first gear set (205), and the output end of the first gear set (205) is provided with a lifting screw (206).

4. The anti-clogging automatic plastic granule loading device according to claim 3 is characterized in that: A lifting block (207) is provided at the output end of the lifting screw rod (206), and a lifting base plate (208) is provided at the top of the lifting block (207), a bolt pad (209) is provided above the lifting base plate (208), and a lifting platform (2010) is provided above the bolt pad (209), and a central rotating frame (211) for installing a vertical auger (2012) is provided above the middle of the lifting platform (2010).

5. The anti-clogging automatic plastic granule loading device according to claim 3 is characterized in that: The load-bearing feed assembly (3) comprises a top duct (301), an assembly duct (302), a through rod (303), a pore plate (304), an annular duct (305), a diverter rod (306), a load-bearing cabin (307), an inwardly tilted cover (308) and a bottom-entry duct (309), wherein the top duct (301) is arranged at the top end of the slotted frame (203), and an assembly duct (302) which is bolted is arranged on the inner side of the top duct (301), and the inner side of the assembly duct (302) is provided with a bolted assembly duct (302). A through rod (303) is arranged on the side, a porous plate (304) is arranged at the top of the through rod (303), an annular duct (305) is arranged at the top of the assembly duct (302), and a dividing rod (306) is arranged on the inner side of the annular duct (305), a bearing cabin (307) is arranged at the top of the annular duct (305), and an inward-inclined cover (308) is arranged at the top of the bearing cabin (307), and a bottom-entry duct (309) is arranged at the bottom end of the assembly duct (302).

6. The anti-clogging automatic plastic granule loading device according to claim 5, characterized in that: The hybrid vibration mechanism (4) includes a lifting frame (401), a top plate (402), a third motor (403), a rotating column (404), an outer shell cabin (405), an inner lining base (406) and an eccentric rod (407); the lifting frame (401) is bolted to the upper side of the top duct (301); a top plate (402) is arranged at the top of the lifting frame (401); a third motor (403) is arranged at the top of the top plate (402); a rotating column (404) is arranged at the output end of the third motor (403); an outer shell cabin (405) is arranged below the side of the rotating column (404); an inner lining base (406) is arranged inside the outer shell cabin (405); and an eccentric rod (407) is arranged at the output end of the inner lining base (406).

7. The anti-clogging automatic plastic granule loading device according to claim 3, characterized in that: The transfer loading component (5) comprises an end-to-end base (501), a side compartment (502), a pneumatic valve plate (503), a second chassis (504), a first driving wheel group (505), a second driving wheel group (506), a bearing plate (507), a transverse tube (508), an output tube (509), an active joint bar (5010), an angle plate (5011), a transverse auger (5012) and a transverse baffle (5013). The end-to-end base (501) is arranged at the Above the other end of the lifting pad frame (201), a side compartment (502) is provided on the side of the end facing the base (501), and a pneumatic valve plate (503) is provided at the output end of the side compartment (502), a second chassis (504) is provided on the outer side of the end facing the base (501), and a first driving wheel group (505) is provided at the output end of the second chassis (504), and a second driving wheel group (506) is provided at the output end of the first driving wheel group (505).

8. The anti-clogging automatic plastic granule loading device according to claim 7, characterized in that: The output end of the second driving wheel group (506) passes through the bearing plate (507) and is connected to a transverse auger (5012), and a transverse baffle (5013) is provided on the outer side of the transverse auger (5012). A transverse tube (508) is provided on the outer side of the bearing plate (507), and an output tube (509) is provided at the output end of the transverse tube (508) and is sleeved and mounted.

9. A method for an anti-clogging automatic plastic granule loading device according to any one of claims 1 to 8, characterized in that: When in use, the first motor (104) is started to output power to drive the output end to operate, so that after the first motor (104) outputs power and operates, it can drive the rotating roller (105) at the output end of the raised base plate (102) to operate for output operation, so that after the rotating roller (105) operates for output, the conveyor belt (106) is operated, so that the packaging container is moved to the target location, and then the material to be processed is input into the carrying cabin (307), and then the third motor (403) above the top plate (402) is used to output power to drive the output end to operate, so that after the third motor (403) outputs power and operates, the rotating column (404) drives the outer shell cabin (405) to rotate, and the outer shell cabin (405) After the rotation operation, the inner liner base (406) inside the outer shell cabin (405) outputs power to drive the output end to operate, and then drives the eccentric rod (407) to rotate, so that the plastic particles in the carrier cabin (307) can achieve an effective vibration mixing effect. The outer shell cabin (405) can effectively mix the particles in the carrier cabin (307). After the carrier cabin (307) and the inclination cover (308) are mixed, the plastic particles are input into the bottom duct (309) through the pore plate (304) above the assembly duct (302) so that the particles can achieve the effect of rotation input. When the bottom duct (309) is connected with the annular duct (305), the dividing rod (306) and the assembly duct (302) to generate a blocking effect, the plastic particles are mixed with the particles in the carrier cabin (307). When the slotted frame (203) is blocked, the second motor (204) on the upper outer side of the slotted frame (203) is used to output power to drive the output end to operate, so that the second motor (204) can drive the first gear set (205) to mesh and drive after the second motor (204) outputs power to operate, so that the first gear set (205) meshes and drives, so that the lifting screw rod (206) on the slotted frame (203) outputs and operates, so that the lifting block (207) drives the lifting base plate (208) to lift, and after lifting, the lifting platform (2010), the central rotating frame (2011) and the vertical auger (2012) can push open, penetrate the rod (303), and the aperture plate (304) to achieve a wide range of input effects, and the central rotating frame (2011) and the vertical auger (2012) can be opened. ) is spirally operated to achieve the effect of transfer. When it is necessary to discharge the material, the pneumatic valve plate (503) on the side cabin (502) is used to perform output operation to achieve the effect of opening the output pipe (509), and the first driving wheel group (505) on the second chassis (504) outputs power to drive the output end to operate, so that the first driving wheel group (505) outputs power to drive the second driving wheel group (506) to operate, so that the transverse auger (5012) and the transverse baffle (5013) on the transverse tube (508) transfer the plastic particles. After the transfer, the material is output to the target container through the transverse auger (5012) and the transverse baffle (5013) below the output pipe (509), so as to achieve the effect of loading.

Citation Information

Patent Citations

  • Anti-blocking plastic particle automatic charging device

    CN220263157U