Environment-friendly recycling device for plastic material treatment

Through the transmission system driven by synchronous wheels, synchronous belts and stepper motors, combined with the drive motor and jacking components, the automatic and precise movement and rotation of the plastic material processing device are realized, which solves the problem of low automation in the existing technology, improves the cleaning and drying efficiency, and meets the quality requirements of the high-end field.

CN120645346AInactive Publication Date: 2025-09-16JIANGSU YOUHUADA ENVIRONMENTAL PROTECTION MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202511156704.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-19
Publication Date
2025-09-16
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing plastic recycling equipment has a low degree of automation in the cleaning and drying stages, and manual operation leads to precision fluctuations, which affects the quality and efficiency of recycled materials and makes it difficult to meet the requirements of high-end applications.

Method used

The transmission system driven by synchronous wheels, synchronous belts and stepper motors, combined with drive motors and lifting components, can achieve precise movement and rotation of the mesh drum between the washing barrel and the drying barrel, improving the degree of automation and processing accuracy.

Benefits of technology

It ensures the orderly progress of the cleaning and drying process of plastic materials, improves the cleaning effect and drying efficiency, and meets the quality requirements of high-end fields.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an environment-friendly recycling device for plastic material treatment, and relates to the technical field of plastic material treatment, the environment-friendly recycling device comprises a rectangular frame plate, a drying barrel and a cleaning barrel are arranged above the rectangular frame plate, a longitudinal wall plate is fixedly connected to the upper surface of the rectangular frame plate, and a disinfection assembly is arranged on the surface of the rectangular frame plate. The disinfection assembly comprises a built-in plate fixedly connected to the interior of the rectangular frame plate, and a first synchronous wheel and a second synchronous wheel are arranged on one side of the built-in plate; integrated treatment of cleaning, sterilizing and drying of plastic materials is achieved, the process is simplified, efficiency is improved, the effect of recycling of the plastic materials is guaranteed, a reset plate is matched with a longitudinal plate and the like to achieve automatic reset and stable movement of a U-shaped base, accurate station switching is guaranteed, stable lifting of a net-shaped barrel is achieved through transmission of an L-shaped toothed plate and a gear, and the working efficiency is improved. And the rectangular sleeve plate drives the second optical shaft to move, and the L-shaped linkage rod is matched to switch stations, so that the processing continuity and the automation degree are improved.
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Description

Technical Field

[0001] The present invention specifically relates to an environmentally friendly recycling device for processing plastic materials, and belongs to the technical field of plastic material processing. Background Art

[0002] With the acceleration of industrialization and the expansion of the consumer market, plastic products, thanks to their lightweight, durable, and low-cost properties, have deeply penetrated every aspect of daily life and industrial production. However, this widespread use hides severe environmental challenges. The amount of plastic waste generated is increasing at an alarming rate, becoming a major challenge for global ecological governance.

[0003] The inherent chemical stability of plastic materials makes them difficult to degrade in the natural environment. The long-term accumulation of large amounts of waste not only consumes valuable land resources but also releases toxic and hazardous substances through rainwater erosion and microbial action, leading to chain reactions such as soil compaction and eutrophication. Research indicates that approximately 80% of improperly handled plastic waste ends up in soil and marine ecosystems, posing a direct threat to plant and animal life and even posing a cumulative threat to human health through the food chain. Against this backdrop, efficient recycling of plastic materials has become an essential component of sustainable development. On the one hand, this resource recycling significantly reduces the demand for virgin plastic production and reduces the consumption of non-renewable resources like petroleum. On the other hand, it reduces waste emissions at the source, alleviating environmental pollution.

[0004] In the entire plastics recycling chain, cleaning and drying are critical processes that determine the quality of recycled materials. Before recycling, plastic waste is often contaminated with impurities such as mud, oil, and chemical residues. Failure to thoroughly clean these impurities can directly impact the mechanical properties and safety of the recycled products. However, current mainstream processing equipment suffers from significant shortcomings in automation integration: station switching relies on manual material handling, cleaning parameter adjustments require on-site calibration by operators, and drying temperature and duration control lacks intelligent feedback mechanisms. This semi-automated model not only significantly increases operator workload but also leads to fluctuations in processing accuracy due to human error and operational delays. For example, manual material transfer can easily miss cleaning corners, and temperature deviations can cause localized aging of the plastic material or excessive moisture content. These issues not only hinder the efficiency of plastic recycling but also make it difficult to meet the quality requirements of recycled materials for high-end applications. Technological innovation is urgently needed to achieve breakthroughs. Summary of the Invention

[0005] The purpose of the present invention is to address the deficiencies of the prior art and provide an environmentally friendly recycling device for processing plastic materials.

[0006] The present invention achieves the above-mentioned purpose through the following technical scheme: an environmentally friendly recycling device for processing plastic materials, comprising a rectangular frame plate, a drying barrel and a cleaning barrel are arranged above the rectangular frame plate, the upper surface of the rectangular frame plate is fixedly connected to a longitudinal wall panel, the surface of the rectangular frame plate is provided with a disinfection component, the disinfection component includes a built-in plate fixedly connected to the inside of the rectangular frame plate, a synchronous wheel 1 and a synchronous wheel 2 are provided on one side of the built-in plate, the surfaces of the synchronous wheel 1 and the synchronous wheel 2 are sleeved with a synchronous belt, and the surface of the synchronous belt is fixedly connected to an optical axis 1.

[0007] By adopting the above technical solution, the coordinated transmission of the synchronous wheel 1, the synchronous wheel 2 and the synchronous belt can drive the optical axis 1 to move stably, providing a power basis for the subsequent position adjustment of the mesh drum, thereby realizing the transfer of plastic materials between different processing stations.

[0008] Preferably, the rotating shaft fixedly connected to the side of the synchronous wheel 1 close to the built-in plate is inserted into a rotating hole opened on the surface of the built-in plate, the synchronous wheel 1 is rotatably connected to the built-in plate, and a stepper motor is installed on the side of the built-in plate away from the synchronous wheel 2. One end of the output shaft of the stepper motor passes through the built-in plate and is fixedly connected to the synchronous wheel 2. The output shaft of the stepper motor is rotatably connected to the built-in plate.

[0009] By adopting the above technical solution, the stepper motor can accurately control the rotation angle of the synchronous wheel 2, and then drive the synchronous wheel 1 to rotate synchronously through the synchronous belt, thereby realizing the precise movement of the optical axis 1 and ensuring that the mesh drum can accurately reach the processing positions such as the washing drum and the drying drum.

[0010] Preferably, a rectangular plate is slidably inserted into the square connecting groove opened on the upper surface of the rectangular frame plate, a limiting plate is provided inside the rectangular frame plate, the bottom end of the rectangular plate is fixedly connected to the limiting plate, an optical axis 1 is inserted into the annular groove opened on the side of the limiting plate close to the built-in plate, a rectangular sleeve plate is provided above the rectangular frame plate, the rectangular sleeve plate is slidably sleeved on the surface of the rectangular plate, a driving motor is installed on the upper surface of the rectangular sleeve plate, a mesh barrel is provided above the rectangular frame plate, a rotating shaft 1 is fixedly connected to the inner bottom surface of the mesh barrel, one end of the output shaft of the driving motor is fixedly connected to the end of the rotating shaft 1 away from the mesh barrel, the rotating shaft 1 longitudinally penetrates the rectangular sleeve plate, and the rotating shaft 1 is rotatably connected to the rectangular sleeve plate.

[0011] By adopting the above technical solution, the movement of optical axis 1 in the annular groove can drive the limit plate and the rectangular plate to move, and the rectangular sleeve plate slides along the rectangular plate to achieve lifting and lowering. The driving motor drives the mesh barrel to rotate through the rotating axis 1, so that the internal plastic material can fully contact with the cleaning liquid or be evenly heated, thereby improving the cleaning and drying effects.

[0012] Preferably, the rectangular sleeve is fixedly connected to an optical axis 2 on one side close to the longitudinal wall panel, a guide block is provided in the guide groove opened inside the longitudinal wall panel, a U-shaped frame is provided on the side of the longitudinal wall panel away from the rectangular sleeve, both ends of the U-shaped frame are respectively fixedly connected to the longitudinal wall panel and the guide block, and the optical axis 2 is inserted between the guide block and the longitudinal wall panel.

[0013] By adopting the above technical solution, the optical axis 2 moves under the limiting action of the guide groove and guide block, which can guide the rectangular sleeve to rise and fall and move horizontally according to the predetermined trajectory, ensuring that the mesh barrel enters the washing barrel and the drying barrel accurately.

[0014] Preferably, an inner auxiliary plate is provided inside the synchronous belt, and one side of the inner auxiliary plate is fixedly connected to the inner plate.

[0015] By adopting the above technical solution, the inner auxiliary plate can support the synchronous belt, prevent the synchronous belt from being deformed due to excessive force during the transmission process, ensure the stability of the movement of the optical axis, and thus ensure the accuracy of the position adjustment of the mesh barrel.

[0016] Preferably, a sterilization component is provided on the upper surface of the rectangular frame plate, and the sterilization component includes a longitudinal plate, a U-shaped seat, an L-shaped connecting rod, a reset plate, a counterweight block 2 and a roller. The upper surface of the rectangular frame plate is provided with a U-shaped seat, and the drying barrel and the cleaning barrel are both fixedly connected to the upper surface of the U-shaped seat. Two side plates are fixedly connected to one side of the U-shaped seat, and a reset plate is rotatably connected between the two side plates by an axle pin. A roller is installed inside the reset plate away from one end of the U-shaped seat, and a counterweight block 2 is fixedly connected to the upper surface of the reset plate. The longitudinal plate is fixedly connected to the upper surface of the rectangular frame plate, and the roller is in contact with the surface of the longitudinal plate. The side of the U-shaped seat close to the longitudinal wall panel is fixedly connected to the L-shaped connecting rod, and the L-shaped connecting rod is in contact with the surface of the longitudinal wall panel.

[0017] By adopting the above technical solution, when the L-shaped connecting rod drives the U-shaped seat to move, the roller fits against the longitudinal plate, and cooperates with the second counterweight block to realize the automatic resetting of the U-shaped seat, ensuring that the drying barrel and the washing barrel can be accurately switched to the working position, thereby improving the degree of automation of the device operation.

[0018] Preferably, a positioning rod is inserted into the guide groove opened on the bottom surface of the U-shaped seat, and the positioning rod is fixedly connected to the upper surface of the rectangular frame plate. The upper surface of the rectangular frame plate is fixedly connected to a baffle, and the baffle is located on the side of the U-shaped seat away from the longitudinal plate.

[0019] By adopting the above technical solution, the positioning rod can guide the movement of the U-shaped seat, and the baffle can limit the movement range of the U-shaped seat, ensuring the accurate position of the U-shaped seat when it is reset, so that the drying barrel and the cleaning barrel can be accurately docked with the mesh barrel.

[0020] Preferably, a jacking assembly is provided on the front side of the longitudinal wall panel, and the jacking assembly includes an L-shaped tooth plate, a gear, a jacking plate and a counterweight block. One side of the longitudinal wall panel is fixedly connected to a rotating shaft 2, the surface of the rotating shaft 2 is sleeved with a gear, the rotating shaft 2 and the gear are rotatably connected, the surface of the gear is fixedly connected to a jacking plate, the bottom of the jacking plate is fixedly connected to a counterweight block 1, an L-shaped tooth plate is inserted in the longitudinal sliding groove opened on the upper surface of the rectangular frame plate, the L-shaped tooth plate and the rectangular frame plate are slidably connected, and the L-shaped tooth plate and the gear are meshingly connected.

[0021] By adopting the above technical solution, the L-shaped toothed plate moves to drive the gear to rotate, so that the lifting plate lifts the optical axis 2, thereby realizing the lifting of the mesh barrel. The counterweight block 1 can automatically reset the lifting plate, so that the mesh barrel returns to its initial position, making it convenient to take and place plastic materials.

[0022] Preferably, one end of the second rotating shaft away from the longitudinal wall panel is fixedly connected to an L-shaped pressing plate, and the L-shaped pressing plate is located on the surface of the L-shaped tooth plate and is slidably connected to the L-shaped tooth plate.

[0023] By adopting the above technical solution, the L-shaped pressure plate can limit the L-shaped tooth plate, preventing the L-shaped tooth plate from tilting upward during the sliding process, ensuring that the L-shaped tooth plate and the gear always maintain a good meshing state, and ensuring the stable operation of the jacking assembly.

[0024] Preferably, a U-shaped sleeve is fixedly connected to one side of the longitudinal wall panel close to the gear, and the L-shaped tooth plate is slidably inserted inside the U-shaped sleeve.

[0025] By adopting the above technical solution, the U-shaped sleeve can guide and limit the sliding of the L-shaped tooth plate, prevent the L-shaped tooth plate from offsetting during movement, ensure the meshing accuracy between the L-shaped tooth plate and the gear, and improve the working reliability of the jacking assembly.

[0026] The beneficial effects of the present invention are as follows: in the environmentally friendly recycling device for processing plastic materials, a stepping motor drives the synchronous belt to rotate, thereby driving the optical axis to move, and then realizing the movement and lifting of the mesh drum through the limit plate, rectangular plate and other components. The transmission method is precise and stable, and can ensure that the mesh drum accurately enters the washing barrel and the drying barrel, ensuring the orderly progress of the washing and drying processes. At the same time, the driving motor drives the mesh drum to rotate, thereby increasing the contact area between the plastic material and the cleaning liquid, improving the cleaning effect, and also making the plastic material more evenly heated during drying, thereby improving the drying efficiency. During the movement of the U-shaped seat, the roller on the reset plate fits with the longitudinal plate, and the gravity of the second counterweight is used to realize the automatic reset of the U-shaped seat, ensuring the accuracy of the position switching between the washing barrel and the drying barrel. The positioning rod and baffle limit the movement of the U-shaped seat, ensuring its stable operation. The jacking assembly effectively optimizes the lifting process of the mesh drum. The L-shaped tooth plate engages with the gear to drive the jacking plate to rotate, thereby lifting the optical axis 2 and controlling the rise of the mesh drum. The setting of the counterweight block 1 enables the jacking plate to automatically reset when there is no external force, ensuring that the L-shaped tooth plate returns to its initial position, facilitating the next operation. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 Schematic diagram of the structure of the L-shaped pressure plate and the longitudinal wall panel in the present invention; Figure 3 It is a structural schematic diagram of the U-shaped frame plate and the guide block in the present invention; Figure 4 Schematic diagram of the structure of the reset plate and the U-shaped seat in the present invention; Figure 5 This is a schematic structural diagram of the rotating shaft 1 and the mesh barrel in the present invention; Figure 6 Schematic diagram of the structure of the optical axis 1 and the synchronous belt in the present invention; Figure 7 Schematic diagram of the structure of the longitudinal wall panel and the guide block in the present invention; Figure 8 Schematic diagram of the structure of the roller and the reset plate in the present invention; Figure 9 Schematic diagram of the structure of the gear and L-shaped tooth plate in the present invention; In the picture: 1. Rectangular frame; 2. Drying barrel; 3. Longitudinal wall panel; 4. Disinfection assembly; 41. Built-in plate; 42. Stepper motor; 43. Inner auxiliary plate; 44. Synchronous belt; 45. Synchronous wheel 1; 46. Synchronous wheel 2; 47. Limit plate; 48. Optical axis 1; 49. Annular groove; 410. Rectangular plate; 411. Rectangular sleeve plate; 412. Drive motor; 413. Rotating axis 1; 414. Mesh barrel; 415. Optical axis 2; 416. Guide block; 417. Guide groove; 418. U-shaped frame plate; 4 19. Square connecting groove; 5. Cleaning bucket; 6. Lifting assembly; 61. Longitudinal slide; 62. L-shaped tooth plate; 63. U-shaped sleeve; 64. Rotating shaft 2; 65. Gear; 66. Lifting plate; 67. Counterweight 1; 68. L-shaped pressure plate; 7. Sterilization assembly; 71. Longitudinal plate; 72. U-shaped seat; 73. L-shaped connecting rod; 74. Side plate; 75. Reset plate; 76. Counterweight 2; 77. Roller; 78. Positioning rod; 79. Baffle. DETAILED DESCRIPTION

[0028] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 making creative efforts are within the scope of protection of the present invention.

[0029] See also Figures 1-9 As shown, an environmentally friendly recycling device for processing plastic materials includes a rectangular frame plate 1, a drying barrel 2 and a cleaning barrel 5 are arranged above the rectangular frame plate 1, a longitudinal wall panel 3 is fixedly connected to the upper surface of the rectangular frame plate 1, a disinfection component 4 is arranged on the surface of the rectangular frame plate 1, and the disinfection component 4 includes a built-in plate 41 fixedly connected to the inside of the rectangular frame plate 1, a synchronous wheel 1 45 and a synchronous wheel 2 46 are provided on one side of the built-in plate 41, and the surfaces of the synchronous wheel 1 45 and the synchronous wheel 2 46 are sleeved with a synchronous belt 44, and the surface of the synchronous belt 44 is fixedly connected to an optical axis 1 48. Through the coordinated transmission of the synchronous wheel 1 45, the synchronous wheel 2 46 and the synchronous belt 44, the optical axis 1 48 can be driven to move stably, providing a power basis for the subsequent position adjustment of the mesh drum 414, thereby realizing the transfer of plastic materials between different processing stations.

[0030] The rotating shaft fixedly connected to the side of the built-in plate 41 of the synchronous wheel 1 45 is inserted into the rotating hole opened on the surface of the built-in plate 41. The synchronous wheel 1 45 is rotatably connected to the built-in plate 41. A stepper motor 42 is installed on the side of the built-in plate 41 away from the synchronous wheel 2 46. One end of the output shaft of the stepper motor 42 passes through the built-in plate 41 and is fixedly connected to the synchronous wheel 2 46. The output shaft of the stepper motor 42 is rotatably connected to the built-in plate 41. The stepper motor 42 can accurately control the rotation angle of the synchronous wheel 2 46, and then drive the synchronous wheel 1 45 to rotate synchronously through the synchronous belt 44, thereby realizing the precise movement of the optical axis 1 48, and ensuring that the mesh barrel 414 can accurately reach the processing positions such as the washing barrel 5 and the drying barrel 2.

[0031] A rectangular plate 410 is slidably inserted into the square connecting groove 419 opened on the upper surface of the rectangular frame plate 1, a limiting plate 47 is set inside the rectangular frame plate 1, the bottom end of the rectangular plate 410 is fixedly connected to the limiting plate 47, and an optical axis 1 48 is inserted into the annular groove 49 opened on the side of the limiting plate 47 close to the built-in plate 41. A rectangular sleeve plate 411 is set above the rectangular frame plate 1, and the rectangular sleeve plate 411 is slidably sleeved on the surface of the rectangular plate 410. A driving motor 412 is installed on the upper surface of the rectangular sleeve plate 411. A mesh barrel 414 is set above the rectangular frame plate 1, and the inner bottom surface of the mesh barrel 414 is fixedly connected There is a rotating shaft 413, one end of the output shaft of the driving motor 412 is fixedly connected to the end of the rotating shaft 413 away from the mesh barrel 414, the rotating shaft 413 longitudinally penetrates the rectangular sleeve 411, the rotating shaft 413 and the rectangular sleeve 411 are rotatably connected, the optical axis 48 moves in the annular groove 49 to drive the limit plate 47 and the rectangular plate 410 to move, the rectangular sleeve 411 slides along the rectangular plate 410 to achieve lifting, the driving motor 412 drives the mesh barrel 414 to rotate through the rotating shaft 413, so that the internal plastic material can fully contact with the cleaning liquid or be evenly heated, thereby improving the cleaning and drying effects.

[0032] The side of the rectangular sleeve 411 close to the longitudinal wall panel 3 is fixedly connected with the optical axis 2 415, and the guide block 416 is provided in the guide groove 417 opened inside the longitudinal wall panel 3. The side of the longitudinal wall panel 3 away from the rectangular sleeve 411 is provided with a U-shaped frame plate 418. The two ends of the U-shaped frame plate 418 are respectively fixedly connected to the longitudinal wall panel 3 and the guide block 416. The optical axis 2 415 is inserted between the guide block 416 and the longitudinal wall panel 3. The optical axis 2 415 moves under the limiting action of the guide groove 417 and the guide block 416, and can guide the rectangular sleeve 411 to rise and fall and move horizontally according to a predetermined trajectory, ensuring that the mesh barrel 414 accurately enters the washing barrel 5 and the drying barrel 2.

[0033] An inner auxiliary plate 43 is provided inside the synchronous belt 44, and one side of the inner auxiliary plate 43 is fixedly connected to the built-in plate 41. The inner auxiliary plate 43 can support the synchronous belt 44 to prevent the synchronous belt 44 from being deformed due to excessive force during the transmission process, thereby ensuring the stability of the movement of the optical axis 48 and the accuracy of the position adjustment of the mesh barrel 414.

[0034] The upper surface of the rectangular frame plate 1 is provided with a sterilization component 7, which includes a longitudinal plate 71, a U-shaped seat 72, an L-shaped connecting rod 73, a reset plate 75, a counterweight block 2 76 and a roller 77. The upper surface of the rectangular frame plate 1 is provided with a U-shaped seat 72, and the drying barrel 2 and the cleaning barrel 5 are fixedly connected to the upper surface of the U-shaped seat 72. One side of the U-shaped seat 72 is fixedly connected to two side plates 74. The two side plates 74 are rotatably connected with a reset plate 75 through an axle pin. The reset plate 75 is away from the end of the U-shaped seat 72 and a roller 77 is installed inside. The upper surface of the reset plate 75 The surface is fixedly connected with a counterweight block 2 76, the upper surface of the rectangular frame plate 1 is fixedly connected with a longitudinal plate 71, the roller 77 is in contact with the surface of the longitudinal plate 71, and the U-shaped seat 72 is fixedly connected with an L-shaped connecting rod 73 on the side close to the longitudinal wall panel 3. The L-shaped connecting rod 73 is in contact with the surface of the longitudinal wall panel 3. When the L-shaped connecting rod 73 drives the U-shaped seat 72 to move, the roller 77 is in contact with the longitudinal plate 71, and the counterweight block 2 76 can realize the automatic reset of the U-shaped seat 72, ensuring that the drying barrel 2 and the washing barrel 5 can be accurately switched to the working position, thereby improving the degree of automation of the device operation.

[0035] A positioning rod 78 is inserted into the guide groove opened on the bottom surface of the U-shaped seat 72, and the positioning rod 78 is fixedly connected to the upper surface of the rectangular frame plate 1. A baffle 79 is fixedly connected to the upper surface of the rectangular frame plate 1. The baffle 79 is located on the side of the U-shaped seat 72 away from the longitudinal plate 71. The positioning rod 78 can guide the movement of the U-shaped seat 72, and the baffle 79 can limit the moving range of the U-shaped seat 72 to ensure that the U-shaped seat 72 is accurately positioned when it is reset, so that the drying barrel 2 and the cleaning barrel 5 can be accurately docked with the mesh barrel 414.

[0036] A jacking assembly 6 is provided on the front side of the longitudinal wall panel 3. The jacking assembly 6 includes an L-shaped tooth plate 62, a gear 65, a jacking plate 66 and a counterweight block 67. One side of the longitudinal wall panel 3 is fixedly connected to a rotating shaft 2 64. A gear 65 is sleeved on the surface of the rotating shaft 2 64. The rotating shaft 2 64 and the gear 65 are rotatably connected. The surface of the gear 65 is fixedly connected to a jacking plate 66. The bottom of the jacking plate 66 is fixedly connected to a counterweight block 67. An L-shaped tooth plate 62 is inserted into the longitudinal sliding groove 61 opened on the upper surface of the rectangular frame plate 1. The L-shaped tooth plate 62 and the rectangular frame plate 1 are slidably connected. The L-shaped tooth plate 62 and the gear 65 are meshed and connected. The movement of the L-shaped tooth plate 62 drives the gear 65 to rotate, so that the jacking plate 66 lifts the optical shaft 2 415, thereby realizing the rising of the mesh barrel 414. The counterweight block 67 can automatically reset the jacking plate 66, so that the mesh barrel 414 returns to its initial position, which is convenient for taking and placing plastic materials.

[0037] The end of the second rotating shaft 64 away from the longitudinal wall panel 3 is fixedly connected to an L-shaped pressure plate 68. The L-shaped pressure plate 68 is located on the surface of the L-shaped tooth plate 62 and is slidingly connected to the L-shaped tooth plate 62. The L-shaped pressure plate 68 can limit the L-shaped tooth plate 62 to prevent the L-shaped tooth plate 62 from tilting upward during the sliding process, ensuring that the L-shaped tooth plate 62 and the gear 65 always maintain a good meshing state, ensuring the stable operation of the jacking assembly 6.

[0038] A U-shaped sleeve 63 is fixedly connected to the side of the longitudinal wall panel 3 close to the gear 65, and the L-shaped tooth plate 62 is slidably inserted inside the U-shaped sleeve 63. The U-shaped sleeve 63 can guide and limit the sliding of the L-shaped tooth plate 62, preventing the L-shaped tooth plate 62 from offsetting during movement, ensuring the meshing accuracy of the L-shaped tooth plate 62 and the gear 65, and improving the working reliability of the jacking assembly 6.

[0039] Working principle: The drying barrel 2 is a UV sterilizing drying barrel. When the device is in use, first add cleaning liquid to the inside of the cleaning barrel 5, place the plastic material to be cleaned inside the mesh barrel 414, connect the connecting wires of the driving motor 412 and the stepping motor 42 to the external power supply, operate the controller to start the stepping motor 42, and the operation of the stepping motor 42 drives the synchronous wheel 2 46 to rotate. The rotation of the synchronous wheel 2 46 drives the synchronous belt 44 to rotate under the action of the synchronous wheel 1 45, and then drives the optical axis 1 48 to move. The movement of the optical axis 1 48 drives the limit The positioning plate 47 slides inside the rectangular frame plate 1, and the movement of the limiting plate 47 drives the rectangular plate 410 and the rectangular sleeve plate 411 to move synchronously. The rectangular sleeve plate 411 drives the optical axis 2 415 to move during the movement. The optical axis 2 415 moves upward in accordance with the groove wall of the guide groove 417 when moving. During this process, the rectangular sleeve plate 411 slides on the surface of the rectangular plate 410 until the height of the mesh barrel 414 rises higher than the height of the cleaning bucket 5. At this time, the optical axis 2 415 moves laterally inside the guide groove 417. When the optical axis 2 415 moves laterally After the mesh barrel 414 moves to fit the surface of the guide block 416, the optical axis 2 415 cannot move. At this time, the stepping motor 42 stops running, and the mesh barrel 414 moves to the top of the cleaning bucket 5. Under the action of the gravity of the rectangular sleeve 411 and the mesh barrel 414, the mesh barrel 414 moves downward along the groove wall of the guide groove 417 until the mesh barrel 414 slides into the interior of the cleaning bucket 5. During the process of the mesh barrel 414 sliding into the interior of the cleaning bucket 5, the operation controller starts the drive motor 412, and the operation of the drive motor 412 is controlled by the rotating shaft 1 4 13 drives the mesh drum 414 to rotate, and the cleaning liquid inside the cleaning drum 5 covers the plastic material inside the mesh drum 414. In the process of the mesh drum 414 rotating, the plastic material and the cleaning liquid inside the cleaning drum 5 are fully mixed, thereby cleaning the plastic material and removing impurities on the plastic material. This helps to avoid the problem that the debris and dust on the plastic material cause harm to personnel when recycling the plastic material, and helps to increase the contact area between the plastic material and the cleaning liquid, thereby improving the cleaning effect of the plastic material; After the plastic material is processed in the washing barrel 5, the controller starts the stepper motor 42 again. The operation of the stepper motor 42 drives the optical axis 1 48 to continue to move. When the optical axis 1 48 drives the rectangular sleeve 411 to continue to move, the optical axis 2 415 continues to slide upward along the groove wall of the guide groove 417. The optical axis 2 415 continues to slide upward along the groove wall of the guide groove 417 and is inserted into the guide groove 417. During this process, the optical axis 2 415 drives the L-shaped connecting rod 73 to move, and the L-shaped connecting rod 73 drives the U-shaped seat 72 to move synchronously during the movement, that is, drives the drying barrel 2 and the washing barrel 5 to move synchronously, and the movement of the U-shaped seat 72 drives the reset plate 75 to move synchronously. Since the surfaces of the roller 77 and the longitudinal plate 71 are in contact with each other, the reset plate 75 is rotated between the two side plates 74. During this movement, the drive motor 412 drives the mesh barrel 414 to continue to rotate inside the washing barrel 5, and the inclined movement of the optical axis 2 415 causes the height of the mesh barrel 414 to continue to increase. As the mesh barrel 414 continues to rotate, the plastic material inside it is driven to rotate synchronously. When the plastic material inside the mesh barrel 414 is higher than the height of the cleaning liquid inside the washing barrel 5, part of the cleaning liquid attached to the plastic material can be thrown out from its surface under the action of centrifugal force. The cleaning liquid slides along the inner wall of the cleaning barrel 5 and mixes with the cleaning liquid inside the cleaning barrel 5. As the height of the optical axis 2 415 continues to increase, when the height of the optical axis 2 415 rises higher than the height of the L-shaped connecting rod 73, the gravity of the counterweight block 2 76 exerts a force on one end of the reset plate 75, thereby pushing the U-shaped seat 72 to move in the opposite direction on the surface of the rectangular frame plate 1 until one side of the U-shaped seat 72 is in contact with the surface of the baffle 79. As the optical axis 2 415 moves in contact with the groove wall of the guide groove 417, it moves horizontally after moving to a certain height. After moving one end distance horizontally, under the action of the gravity of the rectangular sleeve plate 411 and the mesh barrel 414, the mesh barrel 414 slides into the interior of the drying barrel 2. The ultraviolet light source and drying device inside the drying barrel 2 can be used to emit ultraviolet rays for sterilization and for heating air to form circulating wind to achieve drying of plastic materials. As the stepper motor 42 runs again, the optical axis 1 48 is driven to rotate. At this time, the optical axis 1 48 rotates inside the annular groove 49, thereby preventing the limit plate 47 from rotating. During the rotation process, the optical axis 1 48 applies a force to one end of the L-shaped tooth plate 62, causing the L-shaped tooth plate 62 to slide inside the longitudinal slide groove 61. During the movement of the L-shaped tooth plate 62, the gear 65 is driven to rotate, thereby driving the lifting plate 66 to rotate. The rotation of the lifting plate 66 drives the optical axis 2 415 to move upward along the groove wall of the guide groove 417. , and then moves to the top of the guide block 416. At this time, the horizontal movement of the optical axis 1 48 drives the limit plate 47 to move, so that the optical axis 2 415 slides against the upper surface of the guide block 416. When the optical axis 2 415 moves from one end of the guide block 416 to the other end, the rectangular sleeve 411 moves downward under the action of gravity, and then the mesh barrel 414 moves to the initial position, so that it is convenient for personnel to take the processed waste from the inside of the mesh barrel 414, and it is convenient for personnel to place the waste to be processed; During this process, when the optical axis 1 48 moves out from one end of the L-shaped tooth plate 62, the lifting plate 66 rotates clockwise under the action of the gravity of the counterweight block 1 67, thereby moving the L-shaped tooth plate 62 to the initial position so that the operation can be continued next time; The mesh drum 414 is provided with a plurality of short end rods inside, which drive the plastic material inside to rotate during the rotation of the mesh drum 414, thereby facilitating the subsequent processing of the plastic material. The drying barrel 2 is a prior art well known to professionals in this field. The internal structure of the drying barrel 2 generally includes the following parts: Ultraviolet light source: generally located in the center of the drying barrel 2 or around the inner wall, used to emit ultraviolet light for sterilization and disinfection; Drying device: may include heating elements, fans, etc., used to heat the air and form circulating air to achieve the drying function; Control system: including control panel, timer, temperature sensor, etc., used to control the working mode, time, temperature and other parameters of the drying barrel 2.

[0040] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

[0041] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method 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 can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. An environmentally friendly recycling device for processing plastic materials, comprising a rectangular frame plate (1), a drying barrel (2) and a washing barrel (5) being arranged above the rectangular frame plate (1), characterized in that: The upper surface of the rectangular frame plate (1) is fixedly connected to a longitudinal wall plate (3), and a disinfection component (4) is provided on the surface of the rectangular frame plate (1). The disinfection component (4) includes a built-in plate (41) fixedly connected to the inside of the rectangular frame plate (1), and a synchronous wheel 1 (45) and a synchronous wheel 2 (46) are provided on one side of the built-in plate (41). The surfaces of the synchronous wheel 1 (45) and the synchronous wheel 2 (46) are sleeved with a synchronous belt (44), and the surface of the synchronous belt (44) is fixedly connected to an optical axis 1 (48). A guide block (416) is provided in the guide groove (417) provided inside the plate (3); a rectangular plate (410) is slidably inserted in the square connecting groove (419) provided on the upper surface of the rectangular frame plate (1); a limiting plate (47) is provided inside the rectangular frame plate (1); the bottom end of the rectangular plate (410) is fixedly connected to the limiting plate (47); an optical axis 1 (48) is inserted in the annular groove (49) provided on the side of the limiting plate (47) close to the built-in plate (41); a rectangular sleeve plate is provided above the rectangular frame plate (1) (411), the rectangular sleeve (411) is slidably sleeved on the surface of the rectangular plate (410), the upper surface of the rectangular sleeve (411) is installed with a driving motor (412), a mesh barrel (414) is provided above the rectangular frame plate (1), the inner bottom surface of the mesh barrel (414) is fixedly connected with a rotating shaft (413), one end of the output shaft of the driving motor (412) and the end of the rotating shaft (413) away from the mesh barrel (414) are fixedly connected, and the rotating shaft (413) longitudinally penetrates A rectangular sleeve (411), the first rotating shaft (413) and the rectangular sleeve (411) are rotatably connected, the side of the rectangular sleeve (411) close to the longitudinal wall panel (3) is fixedly connected to the second optical axis (415), the side of the longitudinal wall panel (3) away from the rectangular sleeve (411) is provided with a U-shaped frame plate (418), the two ends of the U-shaped frame plate (418) are respectively fixedly connected to the longitudinal wall panel (3) and the guide block (416), and the second optical axis (415) is inserted between the guide block (416) and the longitudinal wall panel (3).

2. The environmentally friendly recycling device for plastic material processing according to claim 1, characterized in that: The rotating shaft fixedly connected to the side of the synchronous wheel 1 (45) close to the built-in plate (41) is inserted into a rotating hole opened on the surface of the built-in plate (41), and the synchronous wheel 1 (45) and the built-in plate (41) are rotatably connected. A stepper motor (42) is installed on the side of the built-in plate (41) away from the synchronous wheel 2 (46), and one end of the output shaft of the stepper motor (42) passes through the built-in plate (41) and is fixedly connected to the synchronous wheel 2 (46). The output shaft of the stepper motor (42) and the built-in plate (41) are rotatably connected.

3. The environmentally friendly recycling device for plastic material processing according to claim 1, characterized in that: An inner auxiliary plate (43) is provided inside the synchronous belt (44), and one side of the inner auxiliary plate (43) is fixedly connected to the inner plate (41).

4. The environmentally friendly recycling device for plastic material processing according to claim 1, characterized in that: The upper surface of the rectangular frame plate (1) is provided with a sterilization component (7), and the sterilization component (7) includes a longitudinal plate (71), a U-shaped seat (72), an L-shaped connecting rod (73), a reset plate (75), a counterweight block (76) and a roller (77). The upper surface of the rectangular frame plate (1) is provided with a U-shaped seat (72), and the drying barrel (2) and the cleaning barrel (5) are both fixedly connected to the upper surface of the U-shaped seat (72). One side of the U-shaped seat (72) is fixedly connected to two side plates (74), and the two side plates (74) are connected by a The shaft pin is rotatably connected to a reset plate (75), and a roller (77) is installed inside the reset plate (75) away from one end of the U-shaped seat (72). The upper surface of the reset plate (75) is fixedly connected to a second counterweight block (76). The upper surface of the rectangular frame plate (1) is fixedly connected to a longitudinal plate (71), and the surface of the roller (77) and the longitudinal plate (71) are in contact with each other. The side of the U-shaped seat (72) close to the longitudinal wall plate (3) is fixedly connected to an L-shaped connecting rod (73), and the L-shaped connecting rod (73) and the surface of the longitudinal wall plate (3) are in contact with each other.

5. The environmentally friendly recycling device for plastic material processing according to claim 4, characterized in that: A positioning rod (78) is inserted into a guide groove formed on the bottom surface of the U-shaped seat (72). The positioning rod (78) is fixedly connected to the upper surface of the rectangular frame plate (1). A baffle (79) is fixedly connected to the upper surface of the rectangular frame plate (1). The baffle (79) is located on a side of the U-shaped seat (72) away from the longitudinal plate (71).

6. The environmentally friendly recycling device for plastic material processing according to claim 1, characterized in that: A lifting assembly (6) is provided on the front side of the longitudinal wall panel (3), and the lifting assembly (6) includes an L-shaped tooth plate (62), a gear (65), a lifting plate (66) and a counterweight block (67). One side of the longitudinal wall panel (3) is fixedly connected to a rotating shaft (64). The surface of the rotating shaft (64) is sleeved with a gear (65). The rotating shaft (64) and the gear (65) are rotatably connected. The surface of the gear (65) is fixedly connected to the lifting plate (66). The bottom of the lifting plate (66) is fixedly connected to a counterweight block (67). An L-shaped tooth plate (62) is inserted into the longitudinal sliding groove (61) provided on the upper surface of the rectangular frame plate (1). The L-shaped tooth plate (62) and the rectangular frame plate (1) are slidably connected. The L-shaped tooth plate (62) and the gear (65) are meshedly connected.

7. The environmentally friendly recycling device for plastic material processing according to claim 6, characterized in that: An end of the second rotating shaft (64) away from the longitudinal wall plate (3) is fixedly connected to an L-shaped pressing plate (68), and the L-shaped pressing plate (68) is located on the surface of the L-shaped tooth plate (62) and is slidably connected to the L-shaped tooth plate (62).

8. The environmentally friendly recycling device for plastic material processing according to claim 7, characterized in that: A U-shaped sleeve plate (63) is fixedly connected to one side of the longitudinal wall plate (3) close to the gear (65), and the L-shaped tooth plate (62) is slidably inserted into the interior of the U-shaped sleeve plate (63).

Citation Information

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