Plastic particle processing equipment for plastic product production

By designing a combination of cleaning tank and feed structure, using the bending cleaning structure and the plastic particle processing and treatment equipment for extruded arc plates, the problem of low-density particles floating is solved, and efficient cleaning and debris separation is achieved, which is suitable for plastic product production.

CN120503341AInactive Publication Date: 2025-08-19JIACHU TECHNOLOGY (JIANGSU) CO LTD
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Patent Information

Application Number
CN202510838070.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-23
Publication Date
2025-08-19
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When cleaning low-density particles, existing plastic particle cleaning equipment tends to float on the water surface, resulting in poor cleaning effect and difficult to effectively separate dust and debris.

Method used

A plastic particle processing and treatment equipment including a cleaning tank, a dehydration structure and a material conveying structure is designed. The material conveying structure composed of a bent cleaning structure and an extruded arc plate is used to achieve full soaking of plastic particles and debris separation through extrusion and rolling movements, and the transmission structure and a dehydration structure are combined to achieve rapid separation and collection.

Benefits of technology

It realizes effective cleaning of low-density plastic particles and rapid separation of dust and debris, ensuring the cleaning effect and facilitating subsequent dehydration treatment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of plastic particle processing, and particularly discloses plastic particle processing equipment for plastic product production, the plastic particle processing equipment comprises a cleaning pool, and a dehydration structure and a material conveying structure which are connected to the cleaning pool, the material conveying structure comprises a second collecting cavity and a water guide pipe fixedly connected to the second collecting cavity, and cleaning structures are distributed in the cleaning pool at equal intervals, the cleaning structures are of bent tubular structures, the storage ends of the cleaning structures are connected with water guide pipes, the water guide pipes are connected with second draw-off pumps, and the storage ends of the second draw-off pumps are fixedly connected with collecting covers. A material conveying structure in the plastic particle cleaning equipment can convey plastic particles to be cleaned to the interior of a cavity formed by an extrusion arc plate and a lower side plate, at the moment, plastic can be cleaned in a cleaning pool, and dust and impurities in the plastic particles can be separated into a sewage discharging structure; and rapid separation of plastic particles and impurities is realized.
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Description

Technical Field

[0001] The invention belongs to the technical field of plastic particle processing, and specifically discloses plastic particle processing equipment for producing plastic products. Background Art

[0002] In the production process of plastic products, plastic granule raw materials are needed. Plastic granule raw materials need to be cleaned before processing. In this process, plastic granule cleaning equipment is needed. Common plastic granule cleaning equipment on the market is usually composed of a stirring structure and a flushing structure. In actual use, the staff will place the plastic granules inside the flushing structure in advance, and then use the stirring structure to stir the plastic granules inside the flushing structure, thereby achieving the flushing of the surface of each plastic granule by the flushing structure; Although the existing plastic pellet cleaning equipment can achieve a good cleaning effect on plastic pellets during actual use, it still has some shortcomings during actual use, such as: During the actual use of the device, when low-density plastic particles are placed inside the flushing structure, the low-density plastic particles will quickly float on the water surface inside the flushing structure, which will result in poor immersion of the low-density plastic particles in the water, affecting the subsequent cleaning of the low-density plastic particles by plastic particle processing equipment, and making it difficult to quickly separate the low-density plastic particles from dust and debris, thereby affecting the subsequent production of plastic products from the low-density plastic particles.

[0003] To this end, we propose a plastic particle processing equipment for the production of plastic products to solve the problem that plastic particles cannot be effectively and quickly cleaned inside the cleaning equipment. Summary of the Invention

[0004] In view of this, the purpose of the present invention is to propose a plastic particle processing equipment for the production of plastic products, so as to solve the problem that the above-mentioned plastic particle cleaning equipment is not provided with a better plastic particle pressing structure, which leads to the problem that the plastic particles cannot be effectively and quickly cleaned inside the cleaning equipment.

[0005] To achieve the above objectives, the present invention provides a plastic particle processing equipment for the production of plastic products, comprising a cleaning tank and a dehydration structure and a feeding structure connected to the cleaning tank, the feeding structure comprising a second collecting chamber and a water guide pipe fixedly connected to the second collecting chamber, a liquid replenishing pump being provided on the second collecting chamber, a cleaning structure being evenly distributed inside the cleaning tank, the cleaning structure being a bent tubular structure, the storage end of the cleaning structure being connected to the water guide pipe, the water guide pipe being connected to the second extraction pump, the storage end of the second extraction pump being fixedly connected to the collection cover, the collection cover and the cleaning tank being connected to a water level sensor, the cleaning structure comprising a middle trough pipe and an upper trough pipe fixed at the upper end of the middle trough pipe, the lower end of the middle trough pipe being fixedly connected to a retaining pipe, the two sides of the retaining pipe being fixedly connected to the lower side plates, the upper trough pipe, the middle trough pipe and the lower side plates being commonly connected to an extrusion arc plate, and the extrusion arc plate being able to swing on the upper trough pipe, the middle trough pipe and the lower side plates.

[0006] In the above technical solution, further, the upper groove tube is distributed obliquely upward on the middle groove tube, the tubular structure composed of the lower side plate and the extruded arc plate is connected to the inner cavity of the middle groove tube, and the lower side plate is distributed obliquely downward on the retaining tube.

[0007] In the above technical solution, further, a rubber strip is sleeved on the extruded arc plate, and the rubber strip sleeved on the extruded arc plate is fixedly connected to the upper groove tube, the middle groove tube and the lower side plate, and the extruded arc plate swings through the upper groove tube, the middle groove tube and the lower side plate.

[0008] In the above technical solution, further, a connecting structure is fixedly connected to the middle of the middle trough pipe, a transmission structure is distributed inside the cleaning tank near the connecting structure, a shielding piece is fixedly connected between the sewage discharge structure and the cleaning structure, and a guide pipe is fixedly connected to the storage end of the dehydration structure, and the storage end of the guide pipe is close to the upper end of the upper trough pipe.

[0009] In the above technical solution, further, the middle trough tube is fixedly connected to a fixing rod near the dehydration structure, the fixing rod is fixedly connected to the inner wall of the cleaning tank, and the lower end of the retaining tube is fixedly connected to the bottom wall of the inner cavity of the cleaning tank.

[0010] In the above technical solution, further, the bottom surface of the cleaning pool is detachably connected to a sewage discharge structure, the storage end of the sewage discharge structure is opposite to the extrusion arc plate, and the lower side plate is a strip-shaped sheet structure.

[0011] In the above technical solution, further, the connection structure includes a mounting plate fixedly connected to the middle groove tube, the mounting plate is an L-shaped strip structure, and a sliding plate is distributed inside the mounting plate.

[0012] In the above technical solution, further, a connecting block is fixedly connected between the sliding plate and the extrusion arc plate, and an extrusion block is fixedly connected to one end of the sliding plate away from the extrusion arc plate.

[0013] In the above technical solution, further, the transmission structure includes a first support bar and a second support bar fixedly connected to the cleaning tank, a connecting rod passes through the first support bar and the second support bar, a connecting bearing is sleeved on the portion where the connecting rod passes through the first support bar and the second support bar, extrusion chainrings are fixedly connected to the connecting rod at equal intervals, paddles are fixedly connected to the extrusion chainrings, a transmission motor is detachably connected to the outer wall of the cleaning tank, and the output shaft of the transmission motor is fixedly connected to the connecting rod.

[0014] In the above technical solution, further, the dehydration structure includes a first collecting chamber fixed on the cleaning pool, a sieve plate is fixedly connected to the inside of the first collecting chamber at an angle, a first extraction pump and a water pump are fixedly connected to the first collecting chamber, and an upper baffle is fixedly connected between the first collecting chamber and the cleaning structure.

[0015] Compared with the prior art, the present invention has the following beneficial effects: The feeding structure in the plastic particle cleaning equipment can transport the plastic particles to be cleaned into the cavity composed of the extrusion arc plate and the lower side plate. At this time, the plastic can be cleaned inside the cleaning tank, and the dust and debris inside the plastic particles can be separated into the interior of the sewage discharge structure, thereby realizing rapid separation of plastic particles and debris.

[0016] 2. When the feeding structure in the plastic particle cleaning equipment conveys the plastic particles to the bottom of the extrusion arc plate, the plastic can enter the interior of the middle groove tube under the flow of water, and then the middle groove tube can convey the plastic particles to the interior of the upper groove tube. Finally, the plastic particles can be discharged from the interior of the upper groove tube. In this process, it can prevent the plastic from floating up quickly inside the cleaning tank, and achieve full immersion of the plastic particles inside the cleaning tank.

[0017] 3. When the cleaning structure in the plastic particle cleaning equipment receives plastic particles, the extrusion tooth disc can intermittently squeeze the extrusion block. At this time, the extrusion block can drive the connecting block to squeeze the extrusion arc plate through the sliding plate, which can realize the surge of water inside the cleaning structure. During this process, the plastic particles inside the cleaning structure can roll in the water, which can achieve the cleaning of the plastic particles while ensuring that the dust and debris on the surface of the plastic particles fall quickly.

[0018] 4. After the plastic particles are discharged from the upper trough pipe in the plastic particle cleaning equipment, the plastic particles can float on the water surface inside the cleaning pool. At this time, the upper trough pipe can block the plastic particles on the water surface inside the cleaning pool, so that the plastic particles can always be kept near the receiving end of the guide pipe, which can facilitate the dehydration structure to quickly collect the plastic particles through the guide pipe. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a structural schematic diagram of the present invention; Figure 2 This is a diagram showing the connection structure between the cleaning structure and the cleaning tank in the present invention; Figure 3 Schematic diagram of the distribution of the cleaning structure and the transmission structure in the present invention; Figure 4 Schematic diagram of the distribution of multiple cleaning structures in the present invention; Figure 5 A diagram showing the connection structure of the connection structure and the cleaning structure of the present invention; Figure 6 This is a diagram showing the connection structure of the baffle tube and the middle groove tube in the present invention; Figure 7 This is a structural diagram of the connection between the extruded arc plate and the middle groove tube in the present invention; Figure 8 Schematic diagram of the connection structure of the present invention; Figure 9 Schematic diagram of the separation of the extruded arc plate and the rubber strip in the present invention.

[0020] 1. Dehydration structure; 2. Cleaning structure; 21. Upper trough pipe; 22. Middle trough pipe; 23. Baffle pipe; 24. Lower side plate; 25. Extrusion arc plate; 26. Rubber strip; 3. Cleaning tank; 4. Feeding structure; 5. Diversion pipe; 6. Sewage discharge structure; 7. Fixed rod; 8. Transmission structure; 81. First support bar; 82. Extrusion tooth plate; 83. Transmission motor; 84. Second support bar; 85. Connecting rod; 86. Connecting bearing; 87. Paddle; 9. Connecting structure; 91. Sliding plate; 92. Mounting plate; 93. Extrusion block; 94. Connecting block; 10. Shielding piece; 11. Upper baffle; 12. Water guide pipe; 13. Water pump; 14. Sieve plate; 15. First extraction pump; 16. Second extraction pump; 17. First collecting chamber; 18. Second collecting chamber; 19. Water level sensor; 20. Collection cover; 201. Rehydration pump. DETAILED DESCRIPTION

[0021] In order to more clearly understand the above-mentioned objects, features and advantages of the present invention, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments.

[0022] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0023] In actual use, the existing plastic particle cleaning device is not equipped with a better plastic particle pressing structure. When the plastic particles are placed inside the flushing structure, the plastic particles will quickly float on the water surface inside the flushing structure, which will result in poor soaking effect of the plastic particles in the water, and thus affect the cleaning effect of the plastic particles, resulting in the plastic particles not being able to be effectively cleaned inside the cleaning device. In order to solve the above problems, the following structure is specially proposed.

[0024] Example 1: Please refer to Figure 1-9 As shown, the present invention provides a technical solution: The present invention is a plastic particle processing equipment for the production of plastic products, comprising a cleaning tank 3 and a dehydration structure 1 and a feeding structure 4 connected to the cleaning tank 3, the feeding structure 4 comprising a second collecting chamber 18 and a water pipe 12 fixedly connected to the second collecting chamber 18, the second collecting chamber 18 is provided with a refilling pump 201, the interior of the cleaning tank 3 is evenly spaced with cleaning structures 2, the cleaning structure 2 is a bent tubular structure, the receiving end of the cleaning structure 2 is connected to the water pipe 12, the water pipe 12 is connected to the second extraction pump 16, the receiving end of the second extraction pump 16 is fixedly connected to the collection cover 20, the collection cover 20 and the cleaning tank 3 The upper and lower parts of the cleaning structure 2 are connected with a water level sensor 19, which can detect the water content inside the cleaning pool 3 and the second collecting chamber 18 in real time, so as to facilitate external equipment to add water to the inside of the cleaning pool 3 and the second collecting chamber 18. The cleaning structure 2 includes a middle groove pipe 22 and an upper groove pipe 21 fixed to the upper end of the middle groove pipe 22. The lower end of the middle groove pipe 22 is fixedly connected to a retaining pipe 23. Both sides of the retaining pipe 23 are fixedly connected to the lower side plates 24. The upper groove pipe 21, the middle groove pipe 22 and the lower side plates 24 are commonly connected with an extrusion arc plate 25. The extrusion arc plate 25 can swing on the upper groove pipe 21, the middle groove pipe 22 and the lower side plates 24. During actual use, water is continuously injected into the cleaning pool 3. When the feeding structure 4 collects the plastic particles to be cleaned, the plastic particles will float up, and the receiving end of the second extraction pump 16 can drive the plastic particles and water to be transported to the inside of the water pipe 12 through the collection cover 20. Then the water pipe 12 can transport the plastic particles to be cleaned and the water to the inside of the cavity composed of the extrusion arc plate 25 and the lower side plate 24. This can make the plastic particles enter the middle groove pipe 22 along the cavity composed of the extrusion arc plate 25 and the lower side plate 24 during the swinging of the extrusion arc plate 25, and then the plastic particles are discharged from the inside of the upper groove pipe 21. During this process, the plastic particles will move in an arc inside the cleaning pool 3, which can achieve that the plastic particles are fully immersed in water inside the cleaning pool 3. It should be noted that the gap between each two cleaning structures 2 and the gap between the cleaning structure 2 and the cleaning pool 3 are not sufficient to achieve the penetration of plastic particles.

[0025] Example 2: Please refer to the attached Figure 1-6 Based on the first embodiment, the present invention provides a technical solution. Different from the first embodiment, the present embodiment can realize the centralized collection of dust and debris dropped by the plastic particles when the plastic particles are immersed in the cleaning structure 2.

[0026] The upper groove tube 21 is distributed obliquely upward on the middle groove tube 22. The tubular structure composed of the lower side plate 24 and the extruded arc plate 25 is connected to the inner cavity of the middle groove tube 22. The lower side plate 24 is distributed obliquely downward on the retaining tube 23. Distributing the lower side plate 24 downwardly on the retaining tube 23 can facilitate the plastic particles to quickly enter the interior of the middle groove tube 22 under the guidance of the extrusion arc plate 25. Distributing the upper groove tube 21 upwardly on the middle groove tube 22 can enable the plastic particles discharged from the middle groove tube 22 to quickly pass through the interior of the upper groove tube 21, and at the same time, enable the dust and debris separated from the plastic particles in the upper groove tube 21 to be quickly discharged into the interior of the middle groove tube 22.

[0027] A rubber strip 26 is sleeved on the extrusion arc plate 25. The rubber strip 26 sleeved on the extrusion arc plate 25 is fixedly connected to the upper groove tube 21, the middle groove tube 22 and the lower side plate 24. The extrusion arc plate 25 swings on the upper groove tube 21, the middle groove tube 22 and the lower side plate 24. By putting the rubber strip 26 on the extrusion arc plate 25, the gap between the extrusion arc plate 25 and the upper groove tube 21, the middle groove tube 22 and the lower side plate 24 can be sealed while the extrusion arc plate 25 is moving. When the extrusion arc plate 25 swings on the upper groove tube 21, the middle groove tube 22 and the lower side plate 24, the dust and debris remaining inside the upper groove tube 21 and the middle groove tube 22 by the plastic particles can be discharged into the interior of the sewage discharge structure 6 through the retaining tube 23. It should be noted that the retaining tube 23 is a U-shaped tube, the open end of the retaining tube 23 is connected to the lower side plate 24, the diameter of the retaining tube 23 is the same as that of the middle groove tube 22, and the retaining tube 23 is vertically distributed at the lower end of the middle groove tube 22.

[0028] The middle part of the middle trough pipe 22 is fixedly connected with a connecting structure 9, and a transmission structure 8 is distributed in the cleaning tank 3 near the connecting structure 9. The receiving end of the dehydration structure 1 is fixedly connected with a guide pipe 5, and the receiving end of the guide pipe 5 is close to the upper end of the upper trough pipe 21; When the plastic particles inside the upper trough tube 21 are discharged, the upper end of the upper trough tube 21 can block the plastic particles, so that the cleaned plastic particles can be concentrated around the storage end of the guide tube 5, which can enable the dehydration structure 1 to collect the cleaned plastic particles through the guide tube 5.

[0029] The middle trough pipe 22 is fixedly connected to a fixing rod 7 near the dehydration structure 1. The fixing rod 7 is fixedly connected to the inner wall of the cleaning tank 3. The lower end of the retaining pipe 23 is fixedly connected to the bottom wall of the inner cavity of the cleaning tank 3. The fixing rod 7 and the blocking tube 23 can drive the middle groove tube 22 to be firmly connected to the inside of the cleaning tank 3, thereby realizing a firm connection between the cleaning structure 2 and the cleaning tank 3.

[0030] Example 3: Please refer to the attached manual Figure 3-9 Based on the second embodiment, the present invention provides a technical solution. Different from the second embodiment, this embodiment can achieve rapid separation of dust on the surface of the plastic particles when the plastic particles are immersed in the cleaning structure 2.

[0031] The bottom surface of the cleaning tank 3 is detachably connected to a sewage structure 6, and a shielding sheet 10 is fixedly connected between the sewage structure 6 and the cleaning structure 2. The storage end of the sewage structure 6 is opposite to the extrusion arc plate 25, and the lower side plate 24 is a strip-shaped sheet structure; The sewage discharge structure 6 can be selected as a rectangular cavity structure currently available on the market. The role it plays in this document is to collect and discharge the dust separated from the surface of the plastic particles. During actual use, the sewage discharge structure 6 can be connected to a sewage pipe, so that the sewage pipe can quickly drive the dust inside the sewage discharge structure 6 to be discharged quickly. The shielding plate 10 can seal the gap between the sewage discharge structure 6 and the cleaning structure 2. The lower side plate 24 is set to a strip-shaped sheet structure, which can realize the extrusion arc plate 25 and the lower side plate 24 to form a groove pipe structure with a lower opening, so that the plastic particles can enter the middle groove pipe 22 from the cavity formed by the extrusion arc plate 25 and the lower side plate 24, and at the same time, the dust and debris separated from the plastic particles can enter the interior of the sewage discharge structure 6.

[0032] The connection structure 9 includes a mounting plate 92 fixedly connected to the middle groove tube 22 . The mounting plate 92 is an L-shaped strip structure, and a sliding plate 91 is distributed inside the mounting plate 92 .

[0033] A connecting block 94 is fixedly connected between the sliding plate 91 and the extrusion arc plate 25 , and an extrusion block 93 is fixedly connected to the end of the sliding plate 91 away from the extrusion arc plate 25 ; When the sliding plate 91 slides inside the mounting plate 92, the connecting block 94 can squeeze the extrusion arc plate 25, and the rubber strip 26 will generate a repulsive force. When the extrusion block 93 is not under force, the repulsive force generated by the rubber strip 26 can drive the sliding plate 91 to reset.

[0034] The transmission structure 8 includes a first support bar 81 and a second support bar 84 fixedly connected to the cleaning tank 3, a connecting rod 85 passing through the first support bar 81 and the second support bar 84, a connecting bearing 86 is sleeved on the portion where the connecting rod 85 passes through the first support bar 81 and the second support bar 84, an extrusion chainring 82 is fixedly connected to the connecting rod 85 at equal intervals, and a paddle 87 is fixedly connected to the extrusion chainring 82, and a transmission motor 83 is detachably connected to the outer wall of the cleaning tank 3, and the output shaft of the transmission motor 83 is fixedly connected to the connecting rod 85; The output shaft of the transmission motor 83 always drives the connecting rod 85 to rotate in the clockwise direction. When the output shaft of the transmission motor 83 drives the connecting rod 85 to rotate, the connecting rod 85 can drive the extrusion chain disc 82 to squeeze the extrusion block 93 in the clockwise direction. When the extrusion chain disc 82 is rotating, the paddle 87 on the extrusion chain disc 82 can drive the water inside the cleaning tank 3 to stir, so that the plastic particles can roll inside the cleaning tank 3, and the dust and debris on the surface of the plastic particles can be quickly separated. In this process, the extrusion arc plate 25 can move upward at an angle, and the sliding plate 91 will slide inside the mounting plate 92. When the connecting block 94 squeezes the extrusion arc plate 25, the rubber strip 26 will generate a repulsive force. When the extrusion block 93 is not under force, the repulsive force generated by the rubber strip 26 can drive the sliding plate 91 to reset. As the transmission motor 83 continuously drives the extrusion tooth plate 82 to rotate through the connecting rod 85, the extrusion tooth plate 82 can intermittently squeeze the extrusion block 93. At this time, the extrusion arc plate 25 can intermittently drive the water inside the cleaning structure 2 to surge. Since the extrusion tooth plate 82 drives the extrusion arc plate 25 to move obliquely upward through the connecting structure 9, the inner wall of the extrusion arc plate 25 is rough, which can realize that the inner wall of the extrusion arc plate 25 drives the plastic particles to move upward inside the upper groove tube 21, the middle groove tube 22 and the lower side plate 24, thereby realizing the plastic particles passing through the interior of the cleaning structure 2. At the same time, when the extrusion arc plate 25 lifts and moves the plastic particles upward, the plastic particles will roll inside the upper groove tube 21, the middle groove tube 22 and the lower side plate 24, thereby realizing the rapid separation of dust and debris on the surface of the plastic particles. The dehydration structure 1 includes a first collecting chamber 17 fixed to the cleaning tank 3, a sieve plate 14 is fixedly connected to the interior of the first collecting chamber 17 at an angle, a first extraction pump 15 and a water pump 13 are fixedly connected to the first collecting chamber 17, and an upper baffle 11 is fixedly connected between the first collecting chamber 17 and the cleaning structure 2; The first extraction pump 15 and the second extraction pump 16 are selected as plastic diaphragm pumps currently available on the market. Plastic diaphragm pumps, also known as pneumatic diaphragm pumps, are controlled pumps powered by compressed air and are widely used in conveying corrosive, high-viscosity or particle-containing liquids. When the water level sensor 19 in the second collecting chamber 18 detects that the water level line reaches a preset value, the second extraction pump 16 is controlled to start, and the plastic particles and water in the second collecting chamber 18 are pumped from the second collecting chamber 18 to the inside of the water pipe 12. At the same time, since the water level inside the second collecting chamber 18 is lower than the preset value, the liquid replenishment pump 201 can continuously replenish water inside the second collecting chamber 18 to ensure that the water level inside the second collecting chamber 18 is maintained at an appropriate preset value. Since a water level sensor 19 is provided on the cleaning tank 3, when the water level inside the cleaning tank 3 reaches the preset value, the first extraction pump 15 is controlled to pump the plastic particles inside the cleaning tank 3 to be discharged above the sieve plate 14, thereby filtering and collecting the plastic particles.

[0035] During actual use, water and plastic particles are injected into the second collecting chamber 18. Since the plastic particles float on the water surface, the plastic particles inside the second collecting chamber 18 can float on the collecting end of the collecting cover 20. The collecting cover 20 drives the plastic particles and water to be transported to the inside of the water pipe 12. Then the water pipe 12 can transport the plastic particles and water to be cleaned to the inside of the cleaning structure 2. When the plastic particles cleaned by the cleaning structure 2 are concentrated around the collecting end of the guide pipe 5, the collecting end of the first extraction pump 15 will extract the plastic particles through the guide pipe 5, and then the water and plastic particles will be discharged into the first collecting chamber 17. During this process, the plastic particles will be intercepted and discharged by the sieve plate 14, and the water will pass through the sieve plate 14 and be concentrated at the collecting end of the water pump 13, so that the water pump 13 can discharge the water separated from the plastic particles.

[0036] Working principle: When the plastic particle cleaning device is actually used, water is continuously injected into the cleaning pool 3, and the water level sensor 19 can detect the water content in the cleaning pool 3 and the second collecting chamber 18 in real time. When the feeding structure 4 drives the plastic particles to be cleaned to be transported to the cavity composed of the extrusion arc plate 25 and the lower side plate 24, the plastic particles will float up, which can make the extrusion arc plate 25 swing, and the plastic particles will enter the cavity composed of the extrusion arc plate 25 and the lower side plate 24 into the middle groove pipe 22, and then the plastic particles will be discharged from the upper groove pipe 21. In this process, the plastic particles will make an arc movement in the cleaning pool 3, which can achieve the plastic particles being fully soaked in the water in the cleaning pool 3. The extrusion tooth plate 82 can intermittently squeeze the extrusion block 93. At this time, the extrusion arc plate 25 can intermittently drive the water inside the cleaning structure 2 to surge, and the plastic can roll inside the upper groove pipe 21, the middle groove pipe 22 and the lower side plate 24, thereby achieving rapid separation of dust and debris on the surface of the plastic particles. The dust and debris separated from the plastic particles will enter the interior of the sewage discharge structure 6 under the action of gravity. At the same time, the cleaned plastic particles will enter the interior of the dehydration structure 1 under the action of the guide pipe 5 for rapid dehydration, thereby facilitating the subsequent processing of the cleaned plastic particles into plastic products.

[0037] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions only describe the principles of the present invention. Various changes and improvements are possible without departing from the spirit and scope of the present invention, and such changes and improvements fall within the scope of the invention as claimed.

Claims

1. A plastic granule processing device for producing plastic products, comprising a cleaning tank (3) and a dehydration structure (1) and a material feeding structure (4) connected to the cleaning tank (3), characterized in that: The feeding structure (4) includes a second collecting chamber (18) and a water pipe (12) fixedly connected to the second collecting chamber (18), a liquid replenishing pump (201) is provided on the second collecting chamber (18), cleaning structures (2) are evenly spaced inside the cleaning pool (3), the cleaning structures (2) are bent tubular structures, the receiving end of the cleaning structure (2) is connected to the water pipe (12), the water pipe (12) is connected to the second extraction pump (16), the receiving end of the second extraction pump (16) is fixedly connected to the collection cover (20), the collection cover (20) and The cleaning tank (3) is connected to a water level sensor (19). The cleaning structure (2) includes a middle trough tube (22) and an upper trough tube (21) fixed to the upper end of the middle trough tube (22). The lower end of the middle trough tube (22) is fixedly connected to a retaining tube (23). Both sides of the retaining tube (23) are fixedly connected to lower side plates (24). The upper trough tube (21), the middle trough tube (22) and the lower side plates (24) are commonly connected to an extrusion arc plate (25). The extrusion arc plate (25) can swing on the upper trough tube (21), the middle trough tube (22) and the lower side plates (24).

2. The plastic particle processing equipment for producing plastic products according to claim 1, characterized in that: The upper groove tube (21) is distributed obliquely upward on the middle groove tube (22); the tubular structure composed of the lower side plate (24) and the extruded arc plate (25) is communicated with the inner cavity of the middle groove tube (22); and the lower side plate (24) is distributed obliquely downward on the retaining tube (23).

3. The plastic particle processing equipment for producing plastic products according to claim 1, characterized in that: A rubber strip (26) is sleeved on the extrusion arc plate (25), and the rubber strip (26) sleeved on the extrusion arc plate (25) is fixedly connected to the upper groove tube (21), the middle groove tube (22) and the lower side plate (24). The extrusion arc plate (25) swings on the upper groove tube (21), the middle groove tube (22) and the lower side plate (24).

4. The plastic particle processing equipment for producing plastic products according to claim 1, characterized in that: The middle portion of the middle trough pipe (22) is fixedly connected to a connecting structure (9), a transmission structure (8) is distributed in the interior of the cleaning tank (3) near the connecting structure (9), and the receiving end of the dehydration structure (1) is fixedly connected to a guide pipe (5), and the receiving end of the guide pipe (5) is close to the upper end of the upper trough pipe (21).

5. The plastic particle processing equipment for producing plastic products according to claim 1, characterized in that: A fixing rod (7) is fixedly connected to a portion of the middle trough tube (22) near the dehydration structure (1); the fixing rod (7) is fixedly connected to the inner wall of the cleaning tank (3); and the lower end of the retaining tube (23) is fixedly connected to the bottom wall of the inner cavity of the cleaning tank (3).

6. The plastic particle processing equipment for producing plastic products according to claim 1, characterized in that: The bottom surface of the cleaning tank (3) is detachably connected to a sewage discharge structure (6), a shielding plate (10) is fixedly connected between the sewage discharge structure (6) and the cleaning structure (2), the storage end of the sewage discharge structure (6) is opposite to the extrusion arc plate (25), and the lower side plate (24) is a strip-shaped sheet structure.

7. The plastic particle processing equipment for producing plastic products according to claim 4, characterized in that: The connection structure (9) comprises a mounting plate (92) fixedly connected to the middle groove tube (22), the mounting plate (92) being an L-shaped strip structure, and a sliding plate (91) is distributed inside the mounting plate (92).

8. The plastic particle processing equipment for producing plastic products according to claim 7, characterized in that: A connecting block (94) is fixedly connected between the sliding plate (91) and the extrusion arc plate (25), and an extrusion block (93) is fixedly connected to one end of the sliding plate (91) facing away from the extrusion arc plate (25).

9. The plastic particle processing equipment for producing plastic products according to claim 4, characterized in that: The transmission structure (8) comprises a first support bar (81) and a second support bar (84) fixedly connected to the cleaning tank (3); a connecting rod (85) passes through the first support bar (81) and the second support bar (84); a connecting bearing (86) is sleeved on the portion where the connecting rod (85) passes through the first support bar (81) and the second support bar (84); extrusion tooth discs (82) are fixedly connected to the extrusion tooth discs (82) at equal intervals; a paddle (87) is fixedly connected to the outer wall of the cleaning tank (3); a transmission motor (83) is detachably connected to the outer wall of the cleaning tank (3); and an output shaft of the transmission motor (83) is fixedly connected to the connecting rod (85).

10. The plastic particle processing equipment for producing plastic products according to claim 1, characterized in that: The dehydration structure (1) comprises a first collecting chamber (17) fixed on the cleaning tank (3); a sieve plate (14) is fixedly connected to the interior of the first collecting chamber (17) in an inclined manner; a first extraction pump (15) and a water pump (13) are fixedly connected to the first collecting chamber (17); and an upper baffle (11) is fixedly connected between the first collecting chamber (17) and the cleaning structure (2).