A scrap recovery apparatus for a plastic part production process

Through the design of the spraying component and the cleaning component, the problem of incomplete cleaning of plastic scraps is solved, efficient cleaning and cutting are achieved, and the cleaning efficiency and applicability of plastic scraps are improved.

CN119928123BActive Publication Date: 2025-10-21NANTONG ZHUANGJI HUAWEI ELECTRONICS CO LTD
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Patent Information

Application Number
CN202510407942.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-05
Publication Date
2025-10-21
Estimated Expiration
2044-11-05

AI Technical Summary

Technical Problem

During the cleaning process, plastic scraps are difficult to be cleaned by the mixer due to their small size, which increases the cleaning time and reduces work efficiency.

Method used

A scrap material and debris recycling equipment for the plastic parts production process was designed. It includes a spraying component, a cleaning component and a reflux component. The baffle is pushed to fold by jetting water, and combined with the rotation of the guide vane and blade, multiple cleaning and cutting operations are achieved to improve cleaning efficiency.

Benefits of technology

It can effectively clean dirt and dust on plastic scraps and cut them into uniform sizes to facilitate subsequent processing, thereby improving cleaning efficiency and applicability of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application belongs to the technical field of plastic recycling processing, and discloses a plastic part production process leftover material and scrap recovery equipment, which comprises a spraying assembly. The spraying assembly and the cleaning assembly are cooperated, and the polygonal multi-edge cylinder forces the spraying mechanism to only spray water flow directly to the baffle three, so that the water pressure generated by the spraying mechanism pushes the baffle three to fold and makes the leftover material enter the multi-edge cylinder. In addition, the plastic leftover material is cleaned of dirt and dust by the water pressure. When the spraying mechanism is no longer directly opposite to the baffle three, the spring sheet two forces the baffle three to return to the original position, and prevents the remaining leftover material from entering the inside of the multi-edge cylinder. The guide vane continuously rotates to clean the plastic leftover material in the multi-edge cylinder again. The above working process is repeated to clean the plastic leftover material for a small number of times, thereby improving the efficiency of the device in cleaning the plastic leftover material.
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Description

[0001] This application is a divisional application of the application filed on November 5, 2024, with application number 202411566845.7 and invention name “A scrap recycling device for the production process of plastic parts”. Technical Field

[0002] The invention belongs to the technical field of plastic recycling and processing, and in particular relates to a device for recycling scraps in a plastic parts production process. Background Art

[0003] Plastic parts are widely used in modern industry. They can be used in technical fields such as electronic appliances, automobiles, and communication equipment. Plastic parts can be processed or cut into shape more quickly, and can also be designed into more complex structures with a higher degree of freedom. During the injection molding or blow molding of plastic parts, according to the manufacturing process requirements, the mold needs to reserve a certain margin. In order to achieve the required precision of the product, the excess part will be cut off and trimmed later, thereby producing scraps.

[0004] Plastic scraps are often recycled and reused to avoid material waste. During the production and processing of parts, they inevitably collect dust or metal filings. To improve recycling quality, they need to be cleaned. Most manufacturers use blenders for this purpose, but scraps are generally small in size, which can prevent some plastic scraps from being cleaned completely, increasing subsequent cleaning time. Therefore, we offer a scrap recycling machine for the plastic parts production process. Summary of the Invention

[0005] In order to solve the problems raised in the above background technology, the present invention provides a scrap debris recycling device for the plastic parts production process, which solves the problem that the scraps are generally small in size, which will cause some plastic scraps to be unable to be cleaned by the mixer, thereby increasing the subsequent cleaning time and reducing work efficiency.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solutions: a scrap material and debris recovery device for a plastic parts production process, comprising a spraying assembly;

[0007] The spray assembly includes a shell body 1, a shell body 2 is movably mounted inside the shell body 1, and a plurality of spray mechanisms are arranged at equal angles between the shell body 1 and the shell body 2;

[0008] Also includes;

[0009] A splitting assembly fixed to the top of the second shell, the splitting assembly is used to inject water and scraps of plastic parts;

[0010] A discharge pipe connected to a bottom of the housing, the discharge pipe is used to discharge water and scraps of plastic parts;

[0011] A cleaning component movably mounted inside the second housing;

[0012] The cleaning assembly includes a polygonal tube movably mounted inside the second housing, a plurality of guide assemblies are arranged at equal angles around the outer circumference of the polygonal tube, a guide plate is movably mounted inside the guide assemblies, and the polygonal tube is fixed to the bottom of the dividing assembly;

[0013] The guide assembly includes a baffle plate 3 hinged to the inner wall of the polygonal tube, the side of the baffle plate 3 supports the inner wall of the polygonal tube through a spring sheet 2, and a limit rod is fixed on the side of the polygonal tube;

[0014] The spray mechanism guides the water flow to push the scraps to the side of the baffle three;

[0015] A power assembly fixed to the bottom of the first housing, the power assembly being used to drive the guide vane and the second housing to rotate;

[0016] A reflux component is fixedly mounted on an outer periphery of the housing.

[0017] Preferably, the injection mechanism includes a baffle 1 fixed to the outer periphery of the shell 2, the inner wall of the shell 1 is hinged with a baffle 2, the middle part of the baffle 2 is elastically hinged to the inner wall of the shell 1 through a spring sheet 1, and a plurality of slots 1 and slots 2 are equidistantly provided on both sides of the baffle 1 on the shell 2, and a first inner cavity is formed between the baffle 1 and the baffle 2.

[0018] Preferably, a plurality of wavy metal strips are fixedly mounted at equal intervals on the side surface of the baffle three, the limiting rod limits the flipping angle of the baffle three, and the guide vane is spiral-shaped.

[0019] Preferably, the power assembly includes a motor fixed to the bottom of shell one, the output shaft of the motor passes through the bottom of shell one and is transmission-connected to a sun gear, the internal bearing of shell one is equipped with planetary gears, and the interior of shell two is fixed with a ring gear.

[0020] Preferably, the sun gear is transmission-connected to the ring gear via a planetary gear, and the top of the sun gear is fixedly connected to the guide vane.

[0021] Preferably, the splitting assembly includes a diverter plate fixed on the top of the shell body 2, a blade 1 is fixed on the top of the diverter plate at an equiangular circumferential direction, a threaded cover is threadedly connected to the top of the diverter plate, a blocking box is fixed inside the shell body 1, and a blade 2 is fixed on the bottom of the blocking box at an equiangular circumferential direction.

[0022] Preferably, the diverter plate divides the interior of the shell one into two independent upper and lower chambers, the interior of the polygonal tube is connected to the upper chamber through a blocking box, the polygonal tube is fixedly connected to the blocking box, and the blade one and blade two are staggered with each other.

[0023] Preferably, the reflux assembly includes a water pipe 1 fixedly mounted on a side surface of the shell, an impeller is installed on the internal bearing of the water pipe 1, a filter plate is fixedly mounted inside the water pipe 1, the water pipe 1 is connected to the first inner cavity through a slot 3, a support shaft is installed on the internal bearing of the water pipe 1, a turbine is fixedly connected to the end of the support shaft, and the output shaft of the motor is connected to the support shaft through a chain.

[0024] Preferably, the interior of water pipe one is connected to the upper end chamber, and the power component also includes water pipe two connected to the interior of water pipe one. The connection point between water pipe two and water pipe one is located at the lower end of the turbine, and the other end of water pipe two is connected to the upper end chamber.

[0025] Compared with the prior art, the present invention has the following beneficial effects:

[0026] The present invention cooperates with structures such as a spraying component and a cleaning component. Since the polygonal tube is polygonal, the spray mechanism is forced to spray water only when it is facing the baffle three. The water pressure generated by it will push the baffle three to fold and allow the scraps to enter the polygonal tube. In addition, the plastic scraps will be cleaned of dirt and dust by the water pressure. When the spray mechanism is no longer facing the baffle three, the spring sheet two forces the baffle three to return to its original position and prevents the remaining scraps from entering the interior of the polygonal tube. The guide plate continues to rotate, and the plastic scraps inside the polygonal tube can be cleaned again. By repeating the above working process, the plastic scraps can be cleaned in small quantities and multiple times, thereby improving the efficiency of the device in cleaning plastic scraps.

[0027] The present invention cooperates with structures such as a cleaning component and a cutting component. Under the guidance of the inclined baffle three, the plastic scraps will rise and enter the interior of the barrier box, and then move toward the upper end chamber. The blade one and the blade two rotate with each other, thereby cutting the plastic scraps inside the barrier box into volumes of almost the same size, thereby facilitating subsequent cleaning and processing work. Similarly, this enables the device to clean plastic scraps of different specifications, thereby improving the applicability of the device.

[0028] The present invention cooperates with structures such as a reflux component and a spray component. During the rotation of the turbine, the plastic scraps in the upper end chamber will be extracted through water pipe one, and the impeller will be driven to rotate at the same time. After the plastic scraps enter the interior of water pipe one, they will contact the impeller. After the impeller rotates, they can return to the interior of the first inner cavity through slot three, and continue to spray and clean the interior of shell two through slot one. The water extracted by the turbine through water pipe one eventually flows to the upper end chamber through water pipe two, and the end face of water pipe two faces the end face of water pipe one, which enables the plastic scraps at the upper end to quickly enter the interior of water pipe one and perform reflux work, thereby improving the cleaning performance of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 This is a schematic diagram of the appearance structure of the present invention;

[0030] Figure 2 This is a schematic diagram of the internal structure of the housing of the present invention;

[0031] Figure 3 Schematic diagram of the structural coordination between the first shell and the second shell of the present invention;

[0032] Figure 4 This is a schematic diagram of the internal structure of the polygonal tube of the present invention;

[0033] Figure 5 This is a schematic diagram of the structure of the second shell and the cleaning component of the present invention;

[0034] Figure 6 This is a schematic structural diagram of the diverter plate and the opposing surfaces of the barrier box according to the present invention;

[0035] Figure 7 This is a schematic diagram of the cooperation between the internal structure of the water pipe and the first inner cavity of the present invention;

[0036] Figure 8 It is a schematic diagram of the cooperation between the power assembly and the housing structure of the present invention.

[0037] In the figure: 1. Spray assembly; 11. Housing 1; 12. Housing 2; 13. Spray mechanism; 131. Baffle 1; 132. Baffle 2; 133. Spring leaf 1; 1341. Notch 1; 1342. Notch 2; 135. First inner cavity; 2. Discharge pipe; 3. Power assembly; 31. Motor; 32. Chain; 33. Sun gear; 34. Planetary gear; 35. Ring gear; 5. Reflux assembly; 51 , water pipe one; 52, impeller; 53, slot three; 54, water pipe two; 55, support shaft; 56, turbine; 57, filter plate; 6, cleaning component; 61, polygonal cylinder; 62, guide component; 621, baffle three; 622, limit rod; 623, spring sheet two; 63, guide plate; 7, dividing component; 71, diverter plate; 72, barrier box; 73, threaded cover; 74, blade one; 75, blade two. DETAILED DESCRIPTION

[0038] 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.

[0039] like Figures 1 to 8 As shown, the present invention provides a scrap material and debris recovery device for a plastic parts production process, comprising a spraying assembly 1;

[0040] The spray assembly 1 includes a housing 11, a housing 2 12 is movably mounted inside the housing 11, and a plurality of spray mechanisms 13 are arranged at equal angles in a circular direction between the housing 11 and the housing 2 12;

[0041] Also includes;

[0042] A splitting assembly 7 fixed to the top of the second housing 12 is used to inject water and scraps of plastic parts;

[0043] A discharge pipe 2 connected to the bottom of the housing 11 is used to discharge water and scraps of plastic parts;

[0044] A cleaning assembly 6 movably mounted inside the second housing 12;

[0045] The cleaning assembly 6 includes a polygonal tube 61 movably mounted inside the second housing 12. A plurality of guide assemblies 62 are provided at equal angles around the outer periphery of the polygonal tube 61. A guide vane 63 is movably mounted inside the guide assemblies 62. The polygonal tube 61 is fixed to the bottom of the dividing assembly 7.

[0046] The guide assembly 62 includes a baffle plate 3 621 hinged to the inner wall of the polygonal tube 61. The side of the baffle plate 3 621 supports the inner wall of the polygonal tube 61 through a spring plate 2 623. A limit rod 622 is fixed to the side of the polygonal tube 61.

[0047] The spray mechanism 13 guides the water flow to push the scraps to the side of the baffle 3 621;

[0048] A power assembly 3 fixed to the bottom of the housing 1 11 is used to drive the guide vane 63 and the housing 2 12 to rotate;

[0049] The reflux component 5 is fixedly mounted on the outer periphery of the shell 11.

[0050] The above solution is adopted: first, water and plastic scraps are placed into the interior of the second shell 12 through the dividing assembly 7, and then the power assembly 3 is activated, causing it to drive the second shell 12 and the guide plate 63 to rotate. At this time, the second shell 12 and the first shell 11 are in a relative motion state, and the water between the second shell 12 and the first shell 11 is sprayed toward the outer periphery of the polygonal tube 61 by the spray mechanism 13, so that the plastic scraps inside the second shell 12 contact the third baffle 621. Since the spray mechanism 13 rotates simultaneously with the second shell 12 and the polygonal shape of the polygonal tube 61, the spray mechanism 13 is forced to spray water only when it is directly facing the third baffle 621. The generated water pressure will push the third baffle 621 to fold. In addition, the plastic scraps are cleaned of dirt and dust by the water pressure.

[0051] At the same time, the plastic scraps will enter the interior of the polygonal tube 61 through the gap between the third baffle 621 and the polygonal tube 61. When the injection mechanism 13 is no longer facing the third baffle 621, the second spring piece 623 forces the third baffle 621 to return to its original position and prevent the plastic scraps from entering the interior of the polygonal tube 61. The guide piece 63 continues to rotate, and the plastic scraps inside the polygonal tube 61 can be cleaned again. Repeating the above working process can make the plastic scraps be cleaned in small amounts and multiple times, thereby improving the efficiency of the device in cleaning plastic scraps.

[0052] Since the spring sheet 2 623 forces the baffle 3 621 to not be folded into a horizontal state, and the polygonal tube 61 is blocked by the guide plate 63, the plastic scraps impacted by the water pressure will not float outward after entering the polygonal tube 61, but will collide with each other inside the polygonal tube 61, further improving the quality of the device in cleaning plastic scraps.

[0053] like Figure 2-Figure 4As shown, the injection mechanism 13 includes a baffle 131 fixed to the outer periphery of the shell 12, and a baffle 132 is hinged to the inner wall of the shell 11. The middle part of the baffle 132 is elastically hinged to the inner wall of the shell 11 through a spring sheet 133. A plurality of slots 1341 and slots 1342 are equidistantly provided on both sides of the baffle 131 on the shell 12, and a first inner cavity 135 is formed between the baffle 131 and the baffle 132.

[0054] like Figure 1 、 Figure 2 、 Figure 4 and Figure 8 As shown, the power assembly 3 includes a motor 31 fixed to the bottom of the shell 11. The output shaft of the motor 31 passes through the bottom of the shell 11 and is connected to the sun gear 33. The internal bearing of the shell 11 is equipped with a planetary gear 34, and the interior of the shell 2 12 is fixed with a ring gear 35.

[0055] The sun gear 33 is transmission-connected to the ring gear 35 via the planetary gears 34 , and the top of the sun gear 33 is fixedly connected to the guide vane 63 .

[0056] The above solution is adopted: the motor 31 drives the ring gear 35 and the shell 2 12 to rotate through the sun gear 33 and the planetary gears 34. At this time, the motor 31 also drives the guide vane 63 to rotate through the sun gear 33, which makes there be a speed difference between the guide vane 63 and the shell 2 12, and the splitting component 7 forces the polygonal tube 61 to be in a fixed state, thereby forcing the injection mechanism 13 to increase the number of times the plastic scraps hit the polygonal tube 61 through the water flow, and during the rotation of the guide vane 63, the plastic scraps can also be stirred and cleaned, further improving the working efficiency of the device.

[0057] With the above solution, when the second housing 12 rotates, the distance between the first baffle 131 and the second baffle 132 is shortened, thereby squeezing the first inner cavity 135, causing the water inside to be ejected toward the outer periphery of the polygonal cylinder 61 through the first slot 1341, thereby achieving the purpose of impacting and cleaning the plastic scraps, and also forcing the cleaning component 6 to enter the working state;

[0058] When the water flow is ejected from the first slot 1341 , the volume of the adjacent first inner cavity 135 will increase, thereby extracting water from the second housing 12 through the second slot 1342 .

[0059] After the first inner cavity 135 passes over the second baffle 132, the first spring 133 forces the second baffle 132 to return to its original position and continue to form the first inner cavity 135. The adjacent first baffle 131 continues to squeeze the first inner cavity 135, causing the water inside to continue to be ejected through the first slot 1341, thereby improving the smoothness of the device operation. The water flow can continuously impact the plastic scraps, thereby improving the efficiency of the device cleaning.

[0060] like Figure 1 、 Figure 2 、 Figure 4 and Figure 6 As shown, the splitting assembly 7 includes a diverter plate 71 fixed on the top of the shell 12, a blade 1 74 is fixed on the top of the diverter plate 71 at equal angles in an annular direction, a threaded cover 73 is threadedly connected to the top of the diverter plate 71, a blocking box 72 is fixed inside the shell 11, and a blade 2 75 is fixed on the bottom of the blocking box 72 at equal angles in an annular direction.

[0061] The diverter plate 71 divides the interior of the shell 11 into two independent upper and lower chambers. The interior of the polygonal tube 61 is connected to the upper chamber through the blocking box 72. The polygonal tube 61 is fixedly connected to the blocking box 72, and the blade 1 74 and the blade 2 75 are staggered with each other.

[0062] Adopting the above scheme: guided by the inclined baffle three 621, the plastic scraps will rise and enter the interior of the barrier box 72, and then move toward the upper end chamber, but the diverter plate 71 is driven to rotate by the shell two 12, and the barrier box 72 is fixedly installed inside the shell one 11, which makes the blade one 74 and the blade two 75 rotate relative to each other, thereby cutting the plastic scraps inside the barrier box 72 into volumes of almost the same, thereby facilitating subsequent cleaning and processing work. Similarly, this enables the device to clean plastic scraps of different specifications, thereby improving the applicability of the device.

[0063] like Figure 2-Figure 5 As shown, a plurality of wavy metal strips are fixedly installed at equal intervals on the side of the baffle three 621 , the limiting rod 622 limits the turning angle of the baffle three 621 , and the guide plate 63 is spiral.

[0064] With the above solution, when the water flow hits the plastic scraps, it collides with each other along the trajectory of the metal strips instead of smoothly entering the interior of the polygonal tube 61, thereby increasing the efficiency of the device in cleaning dust and dirt on the plastic scraps. Figure 5 As shown in the figure, the limiting rod 622 prevents the baffle 3 621 from touching the edge of the guide plate 63 when the water flow hits the baffle 3 621 and folds over, thereby preventing the guide plate 63 from being damaged and affecting the service life of the device, and further extending the subsequent maintenance cycle of the device;

[0065] It should also be noted that the guide plate 63 is spiral-shaped, which allows the plastic scraps to rise under the impact of the water flow and enter the interior of the dividing component 7, so that the dividing component 7 cuts the plastic scraps into volumes of similar size, thereby facilitating subsequent cleaning and processing.

[0066] like Figure 1-Figure 4 and Figure 7 As shown, the reflux assembly 5 includes a water pipe 51 fixedly mounted on the side of the shell 11, an impeller 52 is installed on the internal bearing of the water pipe 51, a filter plate 57 is fixedly installed inside the water pipe 51, the water pipe 51 is connected to the first inner cavity 135 through the slot 3 53, a support shaft 55 is installed on the internal bearing of the water pipe 51, a turbine 56 is fixedly connected to the end of the support shaft 55, and the output shaft of the motor 31 is connected to the support shaft 55 through the chain 32.

[0067] The interior of water pipe 1 51 is connected to the upper end chamber, and the power component 3 also includes water pipe 2 54 connected to the interior of water pipe 1 51. The connection between water pipe 2 54 and water pipe 1 51 is located at the lower end of the turbine 56, and the other end of water pipe 2 54 is connected to the upper end chamber.

[0068] With the above solution, the motor 31 drives the support shaft 55 and the turbine 56 to rotate through the chain 32. Since the diameter of the output shaft of the motor 31 is larger than the diameter of the support shaft 55, the rotation speed of the support shaft 55 increases, thereby increasing the suction force generated by the rotation of the turbine 56.

[0069] During the rotation of turbine 56, plastic scraps in the upper chamber are extracted through water pipe 1 51, and the impeller 52 is driven to rotate at the same time. After the plastic scraps enter the interior of water pipe 1 51, they will contact impeller 52. After the impeller 52 rotates, they can return to the interior of the first inner chamber 135 through slot 3 53 and continue to spray and clean the interior of housing 2 12 through slot 1 1341. The filter plate 57 also prevents the plastic scraps from contacting turbine 56.

[0070] At the same time, it should be noted that Figure 4 as well as Figure 7 As shown in the water pipe 2 54, the water drawn by the turbine 56 through the water pipe 1 51 eventually flows into the upper end chamber through the water pipe 2 54, and the end face of the water pipe 2 54 faces the end face of the water pipe 1 51, which enables the plastic scraps at the upper end to quickly enter the interior of the water pipe 1 51 and perform reflux, thereby improving the cleaning performance of the device.

[0071] The working principle and use process of the present invention:

[0072] First, water and plastic scraps are placed into the interior of the second housing 12 through the dividing assembly 7, and then the power assembly 3 is started;

[0073] The motor 31 drives the ring gear 35 and the second housing 12 to rotate through the sun gear 33 and the planetary gears 34. At this time, the motor 31 also drives the guide vane 63 to rotate, which causes a speed difference between the guide vane 63 and the second housing 12. During the rotation of the guide vane 63, it drives the second housing 12 and the guide vane 63 to rotate. At this time, the second housing 12 and the first housing 11 are in a state of relative motion, and the water between the second housing 12 and the first housing 11 will be sprayed toward the outer periphery of the polygonal cylinder 61 through the injection mechanism 13, so that the plastic scraps inside the second housing 12 contact the third baffle 621. Since the injection mechanism 13 rotates simultaneously with the second housing 12 and the polygonal cylinder 61 is polygonal, the injection mechanism 13 is forced to spray water only when it is facing the third baffle 621. The water pressure generated by the water pressure will push the third baffle 621 to fold.

[0074] The plastic scraps will enter the interior of the polygonal tube 61 through the gap between the third baffle 621 and the polygonal tube 61. When the spray mechanism 13 is no longer facing the third baffle 621, the second spring piece 623 forces the third baffle 621 back to its original position, preventing the plastic scraps from entering the interior of the polygonal tube 61. The guide piece 63 continues to rotate, and the plastic scraps inside the polygonal tube 61 can be cleaned again.

[0075] Guided by the inclined baffle plate 3 621 , the plastic scraps will rise and enter the interior of the barrier box 72 , and then move toward the upper chamber. The blade 1 74 and the blade 2 75 rotate relative to each other, thereby cutting the plastic scraps inside the barrier box 72 into pieces of similar size.

[0076] During the rotation of the turbine 56, the plastic scraps in the upper chamber will be extracted through the water pipe 1 51, and at the same time, the impeller 52 will be driven to rotate. After the plastic scraps enter the water pipe 1 51, they will contact the impeller 52. After the impeller 52 rotates, they can return to the inside of the first inner cavity 135 through the slot 3 53, and continue to spray and clean the inside of the shell 2 12 through the slot 1 1341.

[0077] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0078] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A scrap material and debris recycling device for a plastic parts production process, characterized in that: Includes spray assembly; The spray assembly includes a shell body 1, a shell body 2 is movably mounted inside the shell body 1, and a plurality of spray mechanisms are arranged at equal angles between the shell body 1 and the shell body 2; Also includes; A splitting assembly fixed to the top of the second shell, the splitting assembly is used to inject water and scraps of plastic parts; A discharge pipe connected to a bottom of the housing, the discharge pipe is used to discharge water and scraps of plastic parts; A cleaning component movably mounted inside the second housing; The cleaning assembly includes a polygonal tube movably mounted inside the second housing, a plurality of guide assemblies are arranged at equal angles around the outer circumference of the polygonal tube, a guide plate is movably mounted inside the guide assemblies, and the polygonal tube is fixed to the bottom of the dividing assembly; The guide assembly includes a baffle plate 3 hinged to the inner wall of the polygonal tube, the side of the baffle plate 3 supports the inner wall of the polygonal tube through a spring sheet 2, and a limit rod is fixed on the side of the polygonal tube; The spray mechanism guides the water flow to push the scraps to the side of the baffle three; A power assembly fixed to the bottom of the first housing, the power assembly being used to drive the guide vane and the second housing to rotate; The dividing assembly includes a diverter plate fixed on the top of the second shell, a blade one is fixed on the top of the diverter plate at an equiangular circumferential direction, a threaded cover is threadedly connected to the top of the diverter plate, a blocking box is fixed inside the first shell, a blade two is fixed on the bottom of the blocking box at an equiangular circumferential direction, the diverter plate divides the interior of the first shell into two independent chambers, the interior of the polygonal tube is connected to the upper chamber through the blocking box, the polygonal tube is fixedly connected to the blocking box, and the blade one and the blade two are staggered with each other.

2. The scrap material and debris recycling equipment for the plastic parts production process according to claim 1, characterized in that: The power assembly includes a motor fixedly mounted on the bottom of the first shell, the output shaft of the motor passes through the bottom of the first shell and is connected to the sun gear, the internal bearing of the first shell is equipped with a planetary gear, and the interior of the second shell is fixed with a ring gear.

3. The scrap material and debris recycling equipment for the plastic parts production process according to claim 2, characterized in that: The sun gear is transmission-connected to the ring gear through the planetary gear, and the top of the sun gear is fixedly connected to the guide vane.

4. The scrap material and debris recycling equipment for the plastic parts production process according to claim 1, characterized in that: The ejection mechanism includes a baffle 1 fixedly mounted on the outer periphery of a second housing, a baffle 2 hingedly connected to the inner wall of the first housing, a middle portion of the baffle 2 elastically hingedly connected to the inner wall of the first housing via a first spring sheet, a plurality of first and second notches equidistantly formed on either side of the first baffle on the second housing, and a first inner cavity formed between the first and second baffles; A plurality of wavy metal strips are fixedly mounted at equal intervals on the side surface of the baffle three. The limit rod limits the turning angle of the baffle three. The guide plate is spiral-shaped.

5. The scrap material and debris recycling equipment for the plastic parts production process according to claim 2, characterized in that: It also includes a reflux component fixedly mounted on the outer periphery of the shell, the reflux component includes a water pipe 1 fixedly mounted on a side surface of the shell, the internal bearing of the water pipe 1 is equipped with an impeller, the interior of the water pipe 1 is equipped with a filter plate, the water pipe 1 is connected to the first inner cavity through the slot 3, the internal bearing of the water pipe 1 is equipped with a support shaft, the end of the support shaft is fixedly connected to a turbine, and the output shaft of the motor is connected to the support shaft through a chain.

6. The scrap material and debris recycling equipment for the plastic parts production process according to claim 5, characterized in that: The interior of the water pipe 1 is connected to the upper end chamber, and the power component also includes a water pipe 2 connected to the interior of the water pipe 1. The connection point between the water pipe 2 and the water pipe 1 is located at the lower end of the turbine, and the other end of the water pipe 2 is connected to the upper end chamber.

Citation Information

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