Air cooling and drying integrated mechanism of reprocessed plastic granulator

By setting up a combination of spiral twisted dragon, split tube and conveyor belt in the recycled plastic pelletizer, the problem of low product stacking and drying efficiency is solved, and the product is circulating and efficient air-drying is achieved.

CN223000935UActive Publication Date: 2025-06-20HUBEI XUZHINENG ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202422183721.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-06
Publication Date
2025-06-20
Estimated Expiration
2034-09-06

AI Technical Summary

Technical Problem

When used, the existing recycled plastic pelletizer air-cooled drying integrated mechanism is likely to cause product stacking, and humid products are located below, making it difficult to effectively dry.

Method used

A spiral twisting dragon and a split tube are arranged on the inner side of the double-shell, combining the oblique mesh cover, drive roller shaft and conveyor belt to realize the cyclic and reciprocating conveying of the product, avoiding stacking, and accelerating the air drying effect through the air inlet assembly.

Benefits of technology

It effectively avoids stacking of wet products, improves air-drying efficiency, and ensures uniform drying of recycled plastics.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223000935U_ABST
Patent Text Reader

Abstract

The utility model provides an air cooling and drying integrated mechanism of a reprocessed plastic granulator, which relates to the technical field of reprocessed plastics and comprises a feeding and discharging bearing assembly and an air inlet assembly. The outer side of the periphery of the feeding and discharging bearing assembly is provided with an air inlet assembly in bolt sleeving connection, the air inlet assembly comprises an air inlet pipe, a cover plate, a drying agent and an air inlet fan, and the air inlet pipe is arranged on the outer side of the periphery of the feeding and discharging bearing assembly; the spiral packing auger and the split pipe are arranged on the inner sides of the double shells, during air cooling operation, the split pipe is matched with the spiral packing auger to transfer products and then input the products to the inclined net cover, then the products can effectively achieve the circulating effect through the driving roller shaft and the conveying belt at the output end of the inclined end block, and therefore the production efficiency is improved. Therefore, the phenomenon that wet products are stacked is avoided, and the air drying effect is accelerated.
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Description

Technical Field

[0001] The utility model relates to the technical field of recycled plastics, in particular to an air-cooling and drying integrated mechanism for a recycled plastic granulator. Background Technique

[0002] Recycled plastics are commonly used plastics. During the production and processing of recycled plastics, it is necessary to granulate long-strip recycled plastics to facilitate subsequent storage and transportation. Before the recycled plastics enter the granulator, it is necessary to perform air-cooling and drying treatment on the recycled plastics to remove the moisture on the surface of the recycled plastics.

[0003] When the existing air-cooling and drying integrated mechanism is in use, for example, the application number CN202220231427.2 relates to an air-cooling and drying integrated mechanism for a recycled plastic granulator. An air-cooling and drying integrated mechanism for a recycled plastic granulator of the utility model includes a box body. First fixing holes are opened on both the left and right sides of the box body. A box cover is connected to the upper side of the box body. A partition plate is fixedly connected inside the box body. Second fixing holes corresponding to the first fixing holes are opened on the vertical side wall of the partition plate. A first air duct is fixedly communicated with the bottom of the box body. A drying fan is fixedly connected inside the first air duct; however, in the above technology, after the products are put in, stacking is likely to occur. In this way, the wet products are at the bottom, so it is difficult to carry out the drying operation. Therefore, the utility model proposes an air-cooling and drying integrated mechanism for a recycled plastic granulator to solve the problems existing in the prior art. Content of the Utility Model

[0004] In view of the above problems, the utility model proposes an air-cooling and drying integrated mechanism for a recycled plastic granulator. The air-cooling and drying integrated mechanism for a recycled plastic granulator mainly utilizes a spiral auger and a forked pipe arranged on the inner side of a double shell. During air-cooling operation, the forked pipe cooperates with the spiral auger to transfer the products and then input them onto an inclined wire mesh cover. Then, through the driving roller shaft and conveyor belt at the output end of the inclined end block, the products can effectively achieve a cyclic effect, thus avoiding the phenomenon of stacking of wet products and accelerating the air-drying effect.

[0005] To achieve the purpose of the utility model, the utility model is realized through the following technical solutions: An air-cooling and drying integrated mechanism for a recycled plastic granulator includes a feeding and discharging loading and unloading component and an air inlet component. A displacement and turnover mechanism is sleeved and installed on the inner side of the feeding and discharging loading and unloading component. An air inlet component is bolt-sleeved on the outer sides of the four weeks of the feeding and discharging loading and unloading component;

[0006] The air inlet component includes an air inlet pipe, a cover plate, a desiccant, and an air inlet fan. The air inlet pipe is arranged on the outer sides of the four weeks of the feeding and discharging loading and unloading component. A cover plate is arranged at one end of the air inlet pipe. A desiccant is arranged inside the air inlet pipe. An air inlet fan is arranged at the top end of the air inlet pipe.

[0007] As a preferred embodiment of the present utility model, the output end of the air inlet pipe has a grid-like structure.

[0008] As a preferred embodiment of the present utility model, the feeding and discharging carrying assembly includes a cushion block, a table board, a double shell, end plates, an outlet inclined piece, a feeding port, a top cover, an inclined plate, an exhaust port, a hydraulic cylinder and a plug block. The table board is arranged on the top side of the cushion block, and a double shell for installing the outlet inclined piece is arranged above the periphery of the table board, and end plates are arranged at both ends of the double shell.

[0009] As a preferred embodiment of the present utility model, a feeding port for installing an inclined plate is arranged above both ends of the double shell, and a top cover is arranged on the top side of the feeding port. An exhaust port is arranged at the output end of the double shell. A hydraulic cylinder is arranged above the middle of the double shell, and a plug block is arranged at the output end of the hydraulic cylinder.

[0010] As a preferred embodiment of the present utility model, the displacement and flipping mechanism includes a hoisting shaft seat, a gearbox, a driving motor, a meshing gear set, a spiral auger, a forked pipe, an inclined mesh cover, an inclined end block, a driving roller shaft and a conveyor belt. The hoisting shaft seat is arranged below the middle of the double shell. A gearbox is arranged at the bottom end of the hoisting shaft seat, and a meshing gear set connected to the output end of the driving motor is arranged inside the gearbox. The output end of the meshing gear set is provided with a spiral auger.

[0011] As a preferred embodiment of the present utility model, a forked pipe is arranged on the outer side of the spiral auger, and an inclined mesh cover is arranged at the output end of the forked pipe. An inclined end block is arranged below one end of the inclined mesh cover, and a driving roller shaft is arranged on one side of the inclined end block. The driving roller shaft is wound with a conveyor belt.

[0012] The beneficial effects of the present utility model are as follows:

[0013] The present utility model mainly utilizes the spiral auger and the forked pipe arranged on the inner side of the double shell. During the air-cooling operation, the forked pipe cooperates with the spiral auger to transfer the product and then input it onto the inclined mesh cover. Then, through the driving roller shaft and the conveyor belt at the output end of the inclined end block, the product can effectively achieve a cyclic effect, thereby avoiding the phenomenon of stacking of wet products and accelerating the air-drying effect. Description of the Drawings

[0014] Figure 1 is a three-dimensional structural diagram of the present utility model;

[0015] Figure 2 is a bottom three-dimensional structural diagram of the present utility model;

[0016] Figure 3Schematic diagram of the sectional three-dimensional structure of the present utility model;

[0017] Figure 4 Schematic diagram of the structure of the displacement and flipping mechanism of the present utility model;

[0018] Figure 5 Schematic diagram of the three-dimensional structure of the air inlet component of the present utility model.

[0019] Wherein: 1. Feeding and discharging bearing assembly; 101. Spacer block; 102. Table board; 103. Double shell; 104. End plate; 105. Outlet inclined piece; 106. Inlet; 107. Top cover; 108. Inclined plate; 109. Exhaust port; 1010. Hydraulic cylinder; 1011. Plug block; 2. Displacement and flipping mechanism; 201. Hoisting shaft seat; 202. Gearbox; 203. Driving motor; 204. Meshing gear set; 205. Screw auger; 206. Forked pipe; 207. Inclined wire mesh cover; 208. Inclined end block; 209. Driving roller shaft; 2010. Conveyor belt; 3. Air inlet component; 301. Air inlet pipe; 302. Cover plate; 303. Desiccant; 304. Air inlet fan. Specific implementation mode

[0020] In order to deepen the understanding of the present utility model, the following will further elaborate on the present utility model in combination with embodiments. These embodiments are only used to explain the present utility model and do not constitute a limitation on the protection scope of the present utility model.

[0021] According to Figures 1-5 As shown, this embodiment proposes an integrated air-cooling and drying mechanism for a recycled plastic pelletizing machine, including a feeding and discharging bearing assembly 1 and an air inlet component 3. A displacement and flipping mechanism 2 is sleeved and installed on the inner side of the feeding and discharging bearing assembly 1, and an air inlet component 3 is bolted and sleeved on the outer sides of the four peripheries of the feeding and discharging bearing assembly 1;

[0022] The air inlet component 3 includes an air inlet pipe 301, a cover plate 302, a desiccant 303, and an air inlet fan 304. The air inlet pipe 301 is arranged on the outer sides of the four peripheries of the feeding and discharging bearing assembly 1. One end of the air inlet pipe 301 is provided with a cover plate 302. The desiccant 303 is arranged inside the air inlet pipe 301, and the air inlet fan 304 is arranged at the top end of the air inlet pipe 301.

[0023] The output end of the air inlet pipe 301 has a grid-like structure.

[0024] In this embodiment, then use the power output by the air inlet fan 304 to drive the operation of the output end, so that the wind passes through the desiccant 303 in the air inlet pipe 301, and after drying, the dried air enters the double shell 103 to achieve the drying effect.

[0025] The feeding and discharging bearing assembly 1 includes a cushion block 101, a platen 102, a double housing 103, an end plate 104, an outlet inclined piece 105, a feeding port 106, a top cover 107, an inclined plate 108, an exhaust port 109, a hydraulic cylinder 1010, and a plug block 1011. A platen 102 is arranged on the top side of the cushion block 101, and a double housing 103 for installing the outlet inclined piece 105 is arranged above the periphery of the platen 102. End plates 104 are arranged at both ends of the double housing 103.

[0026] In this embodiment, during use, the equipment is placed at the processing location through the cooperation of the cushion block 101 and the platen 102, so that the double housing 103 of the installation displacement and flipping mechanism 2 is bolted to the air inlet assembly 3. After the top cover 107 is opened, the material is input into the double housing 103 through the mutual cooperation of the feeding port 106 and the inclined plate 108.

[0027] A feeding port 106 for installing the inclined plate 108 is arranged above both ends of the double housing 103, a top cover 107 is arranged on the top side of the feeding port 106, an exhaust port 109 is arranged at the output end of the double housing 103, a hydraulic cylinder 1010 is arranged above the middle of the double housing 103, and a plug block 1011 is arranged at the output end of the hydraulic cylinder 1010.

[0028] In this embodiment, after the double housing 103 is dried, the exhaust port 109 discharges. Then, after the product is dried, the hydraulic cylinder 1010 outputs power to drive the output end to operate, so that the plug block 1011 is opened. After opening, the double housing 103 cooperates with the outlet inclined piece 105 to output the equipment for loading.

[0029] The displacement and flipping mechanism 2 includes a hoisting shaft seat 201, a gearbox 202, a driving motor 203, a meshing gear set 204, a spiral auger 205, a forked pipe 206, an inclined wire mesh cover 207, an inclined end block 208, a driving roller shaft 209, and a conveyor belt 2010. The hoisting shaft seat 201 is arranged below the middle of the double housing 103, a gearbox 202 is arranged at the bottom end of the hoisting shaft seat 201, and a meshing gear set 204 connecting the output end of the driving motor 203 is arranged inside the gearbox 202. The output end of the meshing gear set 204 is provided with a spiral auger 205.

[0030] In this embodiment, when operation is required, the output end of the driving motor 203 outputs power to drive the output end to operate, so that the output end of the driving motor 203 can drive the meshing gear set 204 in the gearbox 202 to perform meshing transmission operation, and the output end of the meshing gear set 204 can drive the spiral auger 205 to perform spiral operation.

[0031] A forked pipe 206 is arranged on the outer side of the spiral auger 205, and an inclined wire mesh cover 207 is arranged at the output end of the forked pipe 206. An inclined end block 208 is arranged below one end of the inclined wire mesh cover 207, and a driving roller shaft 209 is arranged on one side of one end of the inclined end block 208. A conveyor belt 2010 is wound around the driving roller shaft 209.

[0032] In this embodiment, after the spiral auger 205 operates in a spiral manner, the material can be input into the inclined wire mesh cover 207 through the forked pipe 206, and then input into the conveyor belt 2010 at one end of the inclined end block 208 through the inclined structure of the inclined wire mesh cover 207. After the driving roller shaft 209 outputs power to operate, the conveyor belt 2010 can drive the material to operate to achieve a circulating effect.

[0033] The working principle of the air-cooling and drying integrated mechanism of this recycled plastic granulator is as follows: During use, the equipment is placed at the processing site through the cushion block 101 and the upper platen 102, and the installation, displacement, and flipping mechanism 2 is bolted to the double housing 103 of the air inlet assembly 3. After the top cover 107 is opened, the material is input into the double housing 103 through the cooperation of the material inlet 106 and the inclined plate 108. When operation is required, the driving motor 203 outputs power to drive the output end to operate, so that the output end of the driving motor 203 can drive the meshing gear set 204 in the gearbox 202 to perform meshing transmission operation, and the output end of the meshing gear set 204 can drive the spiral auger 205 to operate in a spiral manner. After the spiral auger 205 operates in a spiral manner, the material can be input into the inclined wire mesh cover 207 through the forked pipe 206, and then input into the conveyor belt 2010 at one end of the inclined end block 208 through the inclined structure of the inclined wire mesh cover 207. After the driving roller shaft 209 outputs power to operate, the conveyor belt 2010 can drive the material to operate to achieve a circulating effect. Then, the intake fan 304 outputs power to drive the output end to operate, so that the wind passes through the desiccant 303 in the air inlet pipe 301. After drying, the dried air enters the double housing 103 to achieve a drying effect. After the double housing 103 is dried, it is discharged through the exhaust port 109. Then, after the product is dried, the hydraulic cylinder 1010 outputs power to drive the output end to operate, so that the plug block 1011 is opened. After opening, the double housing 103 cooperates with the upper inclined piece 105 to output the equipment for easy loading.

[0034] The above has shown and described the basic principles, main features and advantages of the present utility model. Those skilled in the art should understand that the present utility model is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principles of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.

Claims

1. An integrated air-cooling and drying mechanism for a recycled plastic pelletizer, comprising an inlet and outlet bearing assembly (1) and an air inlet assembly (3), characterized in that: The inner side of the material inlet and outlet bearing assembly (1) is provided with a sleeve-mounted displacement and flipping mechanism (2), and the outer sides of the material inlet and outlet bearing assembly (1) are provided with a bolt-sleeved air inlet assembly (3); The air inlet component (3) comprises an air inlet pipe (301), a cover plate (302), a desiccant (303) and an air inlet fan (304); the air inlet pipe (301) is arranged on the outside of the inlet and outlet material bearing component (1); one end of the air inlet pipe (301) is provided with a cover plate (302); the interior of the air inlet pipe (301) is provided with a desiccant (303); and the top of the air inlet pipe (301) is provided with an air inlet fan (304).

2. The air-cooling and drying integrated mechanism of the recycled plastic pelletizer according to claim 1 is characterized in that: The output end of the air inlet pipe (301) has a grid-like structure.

3. The air-cooling and drying integrated mechanism of the recycled plastic pelletizer according to claim 1 is characterized in that: The inlet and outlet bearing assembly (1) comprises a cushion block (101), a platform (102), a double shell (103), an end plate (104), an outlet inclined plate (105), an inlet (106), a top cover (107), an inclined plate (108), an exhaust port (109), a hydraulic cylinder (1010) and a plug block (1011); the cushion block (101) is provided with a platform (102) on the top side, and the double shell (103) on which the outlet inclined plate (105) is installed is provided above the four sides of the platform (102); and the end plates (104) are provided at both ends of the double shell (103).

4. The air-cooling and drying integrated mechanism of the recycled plastic pelletizer according to claim 3 is characterized in that: Feed ports (106) for mounting inclined plates (108) are arranged above both ends of the double shell (103), and a top cover (107) is arranged on the top side of the feed port (106); an exhaust port (109) is arranged at the output end of the double shell (103); a hydraulic cylinder (1010) is arranged above the middle of the double shell (103), and a plug block (1011) is arranged at the output end of the hydraulic cylinder (1010).

5. The air-cooling and drying integrated mechanism of the recycled plastic pelletizer according to claim 3 is characterized in that: The shifting and flipping mechanism (2) comprises a hoisting shaft seat (201), a gearbox (202), a driving motor (203), a meshing gear set (204), a spiral auger (205), a split pipe (206), an inclined mesh cover (207), an inclined end block (208), a driving roller (209) and a conveyor belt (2010); the hoisting shaft seat (201) is arranged below the middle of the double shell (103); the gearbox (202) is arranged at the bottom end of the hoisting shaft seat (201); and the meshing gear set (204) connected to the output end of the driving motor (203) is arranged inside the gearbox (202); and the output end of the meshing gear set (204) is provided with a spiral auger (205).

6. The air-cooling and drying integrated mechanism for the recycled plastic pelletizer according to claim 5 is characterized in that: A split tube (206) is arranged on the outer side of the spiral auger (205), and an inclined mesh cover (207) is arranged at the output end of the split tube (206), an inclined end block (208) is arranged below one end of the inclined mesh cover (207), and a driving roller shaft (209) is arranged on one end side of the inclined end block (208), and a conveyor belt (2010) is wound around the driving roller shaft (209).

Citation Information

Patent Citations

  • Air cooling and drying integrated mechanism of reprocessed plastic granulator

    CN216745305U