Resin particle production and purification device
By using a complex flow field cleaning and automated processing system in a resin particle production purification device, the problem of removing small molecule impurities from resin particles has been solved, achieving efficient cleaning and resource conservation.
Patent Information
- Application Number
- CN202511127527.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-13
- Publication Date
- 2025-11-04
AI Technical Summary
In the existing technology, it is difficult to effectively remove small molecule impurities from the resin particles during production, and the water washing process consumes a lot of water resources and generates high-concentration organic wastewater, resulting in high treatment costs.
A resin particle production purification device is adopted, which uses a complex flow field combining revolution and rotation to clean the particles. The device utilizes the coordinated movement of stirring blades and distributing rollers to remove contaminants from the particle surface. The particles are then thoroughly washed away by water spraying through filter holes, and the process is automated by a recycling mechanism.
It achieves efficient cleaning of resin particles, covering all corners, and is especially suitable for highly adhesive contaminants, reducing water consumption and raw material waste, and improving cleaning efficiency.
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Figure CN120885485A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of resin particle production, in particular to a resin particle production purification device. BACKGROUND
[0002] Resin particles, such as ion exchange resin, plastic resin, high molecular functional resin, etc., are widely used in water treatment, medicine, food, electronics, chemical industry and other fields, and the purity directly affects the product performance and application effect in actual application.
[0003] Unreacted monomers, catalysts, solvents, etc. in the polymerization reaction, such as residual styrene, divinylbenzene and other monomers in the production of ion exchange resin, may be toxic or affect the exchange capacity of the resin, and also cause the residue of raw materials. In the existing technology, it is difficult to remove the small molecular impurities wrapped inside the resin in the cleaning link of resin particle production through soaking or flushing at normal temperature and pressure, and using multiple water washing will consume a large amount of water resources, and the waste water contains high concentration of organic impurities, so the treatment cost is high, so a resin particle production purification device is needed. SUMMARY
[0004] The purpose of the present application is to provide a resin particle production purification device to solve the problems raised in the background art. To achieve the above purpose, the present application provides the following technical scheme: a resin particle production purification device, comprising a numerical control machine body, a feeding port is formed on the upper surface of the numerical control machine body, a driving motor is fixedly connected to the upper surface of the numerical control machine body, a circulating mixing mechanism for assisting the preliminary cleaning of resin particles is movably connected inside the numerical control machine body, a connecting mechanism is arranged inside the circulating mixing mechanism, a treatment mechanism for treating and grading resin particles is rotatably connected to the two sides of the circulating mixing mechanism, a grading cleaning mechanism for secondary fine treatment of resin particles is arranged inside the circulating mixing mechanism, a cleaning mechanism is arranged on the side surface of the grading cleaning mechanism, and a recyclable mechanism is arranged below the inside of the numerical control machine body.
[0005] Preferably, the circulating mixing mechanism comprises a spline shaft, the spline shaft is rotatably connected inside the numerical control machine body, the spline shaft is fixedly connected with the output shaft of the driving motor, a hollow roller is slidably connected to the surface of the spline shaft, an annular groove is formed in the inside of the hollow roller, a bevel gear one is rotatably connected to the side surface of the spline shaft, an eccentric rod is fixedly connected to the side surface of the bevel gear one, a support table is fixedly connected to the surface of the spline shaft, a bevel gear two is fixedly connected to the surface of the support table, and the bevel gear two is engaged with the bevel gear one.
[0006] Preferably, the connecting mechanism comprises a support block fixedly connected to the lower end of the spline rod, the surface of the support block is provided with a rhombic groove, the inside of the rhombic groove is fixedly connected with a one-way limiting block, the side surface of the hollow roller is rotatably connected with a rotating rod, the side surface of the rotating rod is provided with a particle outlet, one end of the rotating rod is fixedly connected with a sliding rod with a certain elasticity, the side surface of the hollow roller is fixedly connected with a hollow sleeve, and the rotating rod is rotatably connected inside the hollow sleeve.
[0007] Preferably, the processing mechanism comprises stirring blades fixedly connected to the other end of the rotating rod, the surface of the stirring blades is rotatably connected with a sealing plate, the inside of the stirring blades is provided with an inclined surface space, the sealing plates are symmetrically arranged on the surface of the stirring blades, the lower surfaces of the stirring blades are all hingedly connected with connecting rods one, one end of the two connecting rods one is hingedly connected together, the surface of one of the connecting rods one is hingedly connected with a connecting rod two, the surface of the connecting rod two is fixedly connected with a rotating rod, the rotating rod is rotatably connected inside the stirring blades, one end of the rotating rod is fixedly connected with a small gear, the side surface of the hollow sleeve is provided with an annular gear slot composed of a ring and two sets of and symmetric quarter-arc-shaped gear plates.
[0008] Preferably, the hierarchical cleaning mechanism comprises an annular funnel fixedly connected to the lower end of the support block, the lower end of the annular funnel is fixedly connected with a hollow annular sleeve, the lower end of the hollow annular sleeve is fixedly connected with a spline rod one, the side surface of the hollow annular sleeve is provided with an inlet and an outlet for facilitating the entry and exit of resin particles, the inlet is fixedly connected with the lower end of the annular funnel, the outlet of the hollow annular sleeve is fixedly connected with a discharge pipe, the inside of the hollow annular sleeve is rotatably connected with a rotating sleeve, the inside of the hollow annular sleeve is fixedly connected with a filter plate, the surface of the filter plate is provided with a plurality of groups of filter holes, and there is a gap between the filter plate and the inside of the hollow annular sleeve, the rotating sleeve penetrates through the filter plate and is eccentrically fixedly connected with a distributing roller.
[0009] Preferably, the inside wall of the hollow roller is fixedly connected with an L-shaped extrusion rod, the inside of the rotating sleeve is provided with a spring, the inside of the rotating sleeve is slidably connected with a pressing rod, the inside of the pressing rod is provided with an inclined groove, the L-shaped extrusion rod is slidably connected inside the inclined groove, the inside of the rotating sleeve is provided with a circulating inclined groove, the pressing rod is slidably and rotatably connected inside the rotating sleeve through the circulating inclined groove, and the surface of the hollow roller is slidably connected with a partition sleeve.
[0010] Preferably, the cleaning mechanism comprises a piston carrier, the lower end of the piston carrier is fixedly connected with a support rod, the side surface of the piston carrier is provided with a one-way water outlet, the one-way water outlet penetrates through the hollow annular sleeve and is fixedly connected with the hollow annular sleeve, the piston carrier is fixedly connected with the hollow annular sleeve through the one-way water outlet, the lower end of the piston carrier is provided with a one-way water inlet, the inside of the piston carrier is slidably connected with an L-shaped piston rod, and one end of the L-shaped piston rod is fixedly connected with the inner wall of the hollow roller.
[0011] Preferably, the recycling mechanism comprises a driving disc, the driving disc is rotatably connected in the inside of the numerical control body and is driven by the numerical control body, the surface of the driving disc is provided with a filter screen, the lower end of the spline rod one is rotatably connected with the surface of the filter screen, the lower end of the partition sleeve is fixedly connected with the surface of the driving disc, the lower surface of the driving disc is fixedly connected with a funnel, the inside of the numerical control body is fixedly connected with a discharge pipe, the lower end of the funnel is fixedly connected with the discharge pipe, and the inside of the discharge pipe is rotatably connected with a screw conveyor which can be controlled by the numerical control body.
[0012] Compared with the prior art, the present application has the following beneficial effects:
[0013] In the present application, the resin particles are circulated in a large range in the cleaning tank during revolution, so that deposition is avoided, and local turbulence and shear force are generated during rotation, so that the pollutants on the surface of the particles are directly stripped, the two kinds of movements are superimposed to form a complex flow field, and the cleaning covers no dead angle, and is especially suitable for strong adhesion of pollutants.
[0014] In the present application, the slant of the circulating chute drives the rotating sleeve to rotate in the inside of the hollow annular sleeve, and the distributing roller is driven to rotate when the rotating sleeve rotates, the distributing roller is eccentrically arranged to make the resin particles slightly vibrate, the impurities in the micropores of the resin can be treated, and the quality of the resin particle cleaning is further improved.
[0015] In the present application, the water flow sprays out through the filter holes on the filter plate, and the classified resin particles are treated again, the surface of the classified resin particles may still be attached with dust, debris or sorting medium, the spraying water flow can completely wash away the dust, debris or sorting medium, the filter holes are uniformly distributed to ensure that the water flow covers all particles, and blind areas are avoided. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 It is a three-dimensional appearance schematic diagram of the present application;
[0017] Figure 2 It is a side sectional structure schematic diagram of the present application;
[0018] Figure 3 It is an internal structure schematic diagram of the numerical control body of the present application;
[0019] Figure 4 It is a structure schematic diagram of the circulating mixing mechanism of the present application Figure 1;
[0020] Figure 5 Structure diagram of the circulating hybrid mechanism of the present application Figure 2 ;
[0021] Figure 6 Structure diagram of the supporting block of the present application
[0022] Figure 7 Structure diagram of the connecting mechanism of the present application
[0023] Figure 8 Structure diagram of the processing mechanism of the present application Figure 1 ;
[0024] Figure 9 Structure diagram of the processing mechanism of the present application Figure 2 ;
[0025] Figure 10 Structure diagram of the A of the present application Figure 9
[0026] Figure 11 Structure diagram of the hierarchical cleaning mechanism of the present application Figure 1 ;
[0027] Figure 12 Structure diagram of the hierarchical cleaning mechanism of the present application Figure 2 ;
[0028] Figure 13 Structure diagram of the hierarchical cleaning mechanism of the present application Figure 3 ;
[0029] Figure 14 Structure diagram of the rotating sleeve of the present application
[0030] Figure 15 Structure diagram of the cleaning mechanism of the present application
[0031] Figure 16 Structure diagram of the recycling mechanism of the present application
[0032] Figure 17 Structure diagram of the recycling mechanism of the present application
[0033] In the figure: 1, numerical control machine body; 2, feed inlet; 3, driving motor; 4, circulating mixing mechanism; 5, connecting mechanism; 6, processing mechanism; 7, grading cleaning mechanism; 8, cleaning mechanism; 9, recycling mechanism; 41, spline rod; 42, hollow roller; 43, annular groove; 44, bevel gear one; 45, eccentric rod; 46, support table; 47, bevel gear two; 51, support block; 52, rhombic groove; 53, one-way limiting block; 54, rotating rod; 55, particle outlet; 56, sliding rod; 57, hollow sleeve; 61, stirring blade; 62, sealing plate; 63, inclined surface space; 64, connecting rod one; 65, connecting rod two; 66, rotating rod; 67, pinion; 68, annular gear groove; 71, annular hopper; 72, hollow annular sleeve; 73, spline rod one; 74, blanking pipe; 75, filter plate; 76, filter hole; 77, distributing roller; 78, L-shaped extrusion rod; 79, rotating sleeve; 710, spring; 711, pressing rod; 712, inclined chute; 713, circulating inclined chute; 714, partition sleeve; 81, piston carrier; 82, support rod; 83, one-way water outlet; 84, one-way water inlet; 85, L-shaped piston rod; 91, driving disc; 92, filter screen; 93, hopper; 94, discharge pipe; 95, auger. DETAILED DESCRIPTION
[0034] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the scope of protection of the present application.
[0035] Please refer to Figures 1 to 17 The present application provides a technical solution: a resin particle production purification device, comprising a numerical control machine body 1, the upper surface of the numerical control machine body 1 is provided with a feed inlet 2, the upper surface of the numerical control machine body 1 is fixedly connected with a driving motor 3, the inside of the numerical control machine body 1 is movably connected with a circulating mixing mechanism 4 for assisting the preliminary cleaning of resin particles, the inside of the circulating mixing mechanism 4 is provided with a connecting mechanism 5, both sides of the circulating mixing mechanism 4 are rotatably connected with a processing mechanism 6 for processing and grading resin particles, the inside of the circulating mixing mechanism 4 is provided with a grading cleaning mechanism 7 for secondary fine processing of resin particles, the side of the grading cleaning mechanism 7 is provided with a cleaning mechanism 8, the inside of the numerical control machine body 1 is provided with a drivable recycling mechanism 9.
[0036] The circulating mixing mechanism 4 comprises a spline rod 41 rotatably connected inside the numerical control machine body 1, the spline rod 41 is fixedly connected with the output shaft of the driving motor 3, the surface of the spline rod 41 is slidably connected with a hollow roller 42, the inside of the hollow roller 42 is provided with an annular groove 43, the side surface of the spline rod 41 is rotatably connected with a bevel gear one 44, the side surface of the bevel gear one 44 is fixedly connected with an eccentric rod 45, the surface of the spline rod 41 is fixedly connected with a support table 46, the surface of the support table 46 is fixedly connected with a bevel gear two 47, and the bevel gear two 47 is engaged with the bevel gear one 44.
[0037] The connecting mechanism 5 comprises a support block 51 fixedly connected to the lower end of the spline rod 41, the surface of the support block 51 is provided with a rhombic groove 52, the inside of the rhombic groove 52 is fixedly connected with a one-way limiting block 53, the side surface of the hollow roller 42 is rotatably connected with a rotating rod 54, the side surface of the rotating rod 54 is provided with a particle outlet 55, one end of the rotating rod 54 is fixedly connected with a sliding rod 56 with a certain elasticity, the side surface of the hollow roller 42 is fixedly connected with a hollow sleeve 57, and the rotating rod 54 is rotatably connected inside the hollow sleeve 57. During the movement of the sliding rod 56, the rotating rod 54 is always rotated in one direction through the one-way limiting block 53. When the rotating rod 54 rotates, the stirring blade 61 is also rotated. The stirring blade 61 can also rotate by itself through the rotating rod 54 while revolving around the hollow roller 42.
[0038] The processing mechanism 6 comprises a stirring blade 61 fixedly connected to the other end of the rotating rod 54, the surface of the stirring blade 61 is rotatably connected with a sealing plate 62, the inside of the stirring blade 61 is provided with an inclined surface space 63, the sealing plate 62 is symmetrically arranged on the surface of the stirring blade 61, and the lower surface of the stirring blade 61 is hingedly connected with a connecting rod one 64, one end of the two connecting rod ones 64 is hingedly connected together, the surface of one of the connecting rod ones 64 is hingedly connected with a connecting rod two 65, the surface of the connecting rod two 65 is fixedly connected with a rotating rod 66, the rotating rod 66 is rotatably connected inside the stirring blade 61, one end of the rotating rod 66 is fixedly connected with a small gear 67, the side surface of the hollow sleeve 57 is provided with an annular gear slot 68, the small gear 67 is engaged with the gear teeth in the annular gear slot 68, and the rotating rod 66 is driven to rotate. When the rotating rod 66 rotates, the connecting rod two 65 at the other end is also rotated, and the connecting rod two 65 rotates around the rotating rod 66 as the axis. When rotating, it pushes the sealing plate 62 to open upward. The annular gear slot 68 is composed of a ring and two sets of symmetric quarter-arc-shaped tooth plates. The resin particles are circulated and flowed in a large range in the cleaning tank during revolution, avoiding deposition. When rotating by itself, local turbulent flow and shear force are generated to directly strip the pollutants on the surface of the particles. The two kinds of movements superimpose to form a complex flow field, which covers no dead angle during cleaning, especially suitable for strong adhesion pollutants.
[0039] The grading cleaning mechanism 7 comprises an annular hopper 71 fixedly connected to the lower end of the support block 51, the lower end of the annular hopper 71 is fixedly connected with a hollow annular sleeve 72, the lower end of the hollow annular sleeve 72 is fixedly connected with a spline shaft 73, the side of the hollow annular sleeve 72 is provided with an inlet and an outlet, which facilitates the entry and exit of resin particles, the inlet is fixedly connected with the lower end of the annular hopper 71, the outlet of the hollow annular sleeve 72 is fixedly connected with a discharge pipe 74, the inside of the hollow annular sleeve 72 is rotatably connected with a rotating sleeve 79, the inside of the hollow annular sleeve 72 is fixedly connected with a filter plate 75, the surface of the filter plate 75 is provided with a plurality of groups of filter holes 76, the filter plate 75 and the inside of the hollow annular sleeve 72 have a gap, the rotating sleeve 79 penetrates the filter plate 75 while being eccentrically fixedly connected with a distribution roller 77, the water flow will spray out through the filter holes 76 on the filter plate 75, and the resin particles treated by grading are treated again, the surface of the resin particles after grading may still be attached with dust, debris or separation medium, the sprayed water flow can completely wash them away, and the uniform distribution of the filter holes 76 ensures that the water flow covers all particles, avoiding the blind area of cleaning.
[0040] The inner wall of the hollow roller 42 is fixedly connected with an L-shaped extrusion rod 78, the inside of the rotating sleeve 79 is provided with a spring 710, the inside of the rotating sleeve 79 is slidably connected with a pressing rod 711, the inside of the pressing rod 711 is provided with an inclined groove 712, the L-shaped extrusion rod 78 is slidably connected in the inclined groove 712, the inside of the rotating sleeve 79 is provided with a circulating inclined groove 713, the pressing rod 711 slides and rotates in the inside of the rotating sleeve 79 through the circulating inclined groove 713, the L-shaped extrusion rod 78 moves up and down to extrude the inclined groove 712, when the inclined groove 712 is extruded, it drives the pressing rod 711 to reciprocate in the inside of the rotating sleeve 79, when the pressing rod 711 reciprocates, it extrudes the circulating inclined groove 713, the inclined surface of the circulating inclined groove 713 drives the rotating sleeve 79 to rotate in the inside of the hollow annular sleeve 72, the surface of the hollow roller 42 is slidably connected with a partition sleeve 714, the inclined surface of the circulating inclined groove 713 drives the rotating sleeve 79 to rotate in the inside of the hollow annular sleeve 72, when the rotating sleeve 79 rotates, it drives the distribution roller 77 to rotate, the distribution roller 77 is eccentrically arranged to make the resin particles slightly vibrate, which can treat the impurities in the micropores on the resin, and further improve the quality of resin particle cleaning.
[0041] The cleaning mechanism 8 comprises a piston carrier 81, the lower end of the piston carrier 81 is fixedly connected with a support rod 82, the side of the piston carrier 81 is provided with a one-way water outlet 83, the one-way water outlet 83 penetrates and is fixedly connected with the hollow annular sleeve 72, the piston carrier 81 is fixedly connected with the hollow annular sleeve 72 through the one-way water outlet 83, the lower end of the piston carrier 81 is provided with a one-way water inlet 84, the inside of the piston carrier 81 is slidably connected with an L-shaped piston rod 85, one end of the L-shaped piston rod 85 is fixedly connected with the inner wall of the hollow roller 42.
[0042] The recycling mechanism 9 comprises a driving disc 91 rotatably connected in the interior of the numerical control body 1 and driven by the numerical control body 1, the surface of the driving disc 91 is provided with a filter screen 92, the lower end of the spline rod one 73 is rotatably connected with the surface of the filter screen 92, the lower end of the partition sleeve 714 is fixedly connected with the surface of the driving disc 91, the lower surface of the driving disc 91 is fixedly connected with a hopper 93, the interior of the numerical control body 1 is fixedly connected with a discharge pipe 94, the lower end of the hopper 93 is fixedly connected with the discharge pipe 94, the interior of the discharge pipe 94 is rotatably connected with a screw 95 controlled by the numerical control body 1, the resin particles enter the hopper 93 through the filter screen, at this time, the numerical control body 1 drives the screw 95 to rotate, and the processed resin particles are gradually discharged, so that the continuous automation can improve the processing capacity, reduce the water consumption, and reduce the raw material waste through accurate sorting.
[0043] The use method and advantages of the present application are as follows:
[0044] As shown in the drawings: Figures 1 to 17 As shown in the drawings:
[0045] In use, first, the interior of the numerical control body 1 is filled with industrial water, then the resin particles to be processed are placed in the interior of the numerical control body 1, then the driving disc 91 is driven to rotate by the numerical control body 1, the mechanism including the stirring blade 61 at the upper end of the driving disc 91 is first rotated for a period of time to pretreat the resin particles and remove the impurities on the surface, then the driving disc 91 stops rotating, and the driving motor 3 is started to drive the spline rod 41 to rotate, the spline rod 41 drives the hollow roller 42 to synchronously rotate when rotating, the spline rod 41 drives the bevel gear one 44 to rotate through the rod extending from the spline rod 41, the bevel gear one 44 rotates around the axis of the spline rod 41, and the bevel gear one 44 rotates around the bevel gear two 47 to rotate itself, the bevel gear one 44 drives the eccentric rod 45 to rotate when rotating, the eccentric rod 45 rotates in the interior of the annular groove 43, and the eccentric rod 45 drives the hollow roller 42 to move up and down on the surfaces of the spline rod 41 and the spline rod one 73 when changing the height of the eccentric rod 45.
[0046] When the hollow roller 42 moves up and down on the surface, it will drive the two sides of the stirring blade 61 to move up and down at the same time, and the stirring blade 61 moves up and down inside the numerical control body 1 through the rotating rod 54, the two groups of stirring blades 61 are oppositely distributed and the directions are opposite, the rotating rod 54 moves up and down at the same time as the hollow roller 42 rotates, the rotating rod 54 drives the sliding rod 56 to move inside the diamond-shaped groove 52 during the up-and-down movement, the sliding rod 56 moves inside the diamond-shaped groove 52 through the slope of the diamond-shaped groove 52 itself, and drives the sliding rod 56 to rotate the rotating rod 54, the sliding rod 56 always rotates the rotating rod 54 in one direction through the one-way limiting block 53 during the movement, and the rotating rod 54 rotates at the same time as the stirring blade 61 rotates, the stirring blade 61 can rotate by itself through the rotating rod 54 while revolving around the hollow roller 42, the revolving movement makes the resin particles flow in a large range in the cleaning tank to avoid deposition, and the self-rotation generates local turbulence and shear force to directly strip the pollutants on the surface of the particles, the superposition of the two movements forms a complex flow field, and the cleaning covers no dead angle, especially suitable for strong adhesion pollutants.
[0047] When the stirring blade 61 rotates, it will drive the inner rotating rod 66 to rotate, and the rotating rod 66 will drive the small gear 67 at one end to rotate when it rotates, and the small gear 67 rotates inside the annular gear groove 68. When the opening of the stirring blade 61 gradually moves downward, the small gear 67 meshes with the teeth in the annular gear groove 68 and drives the rotating rod 66 to rotate, and the rotating rod 66 rotates and drives the connecting rod two 65 at the other end to rotate, and the connecting rod two 65 rotates around the rotating rod 66 as the axis, and pushes the sealing plate 62 to open upward during rotation, and at the same time, the hollow roller 42 moves downward to collect the processed resin particles into the inside of the stirring blade 61, and the opening of the stirring blade 61 rotates upward at the same time as the hollow roller 42 rotates upward, and the sealing plate 62 will gradually close, at this time, the flowable resin particles will enter the rotating rod 54 through the inclined surface space inside the stirring blade 61, and be discharged from the particle outlet, and the falling resin particles will enter the inside of the hollow annular sleeve 72 through the annular hopper 71, and the L-shaped extrusion rod 78 will move up and down at the same time as the hollow roller 42 moves up and down, and the L-shaped extrusion rod 78 will extrude the inclined groove 712 when it moves up and down, and the pressing rod 711 will reciprocate inside the rotating sleeve 79 when the inclined groove 712 is extruded, and the pressing rod 711 will extrude the circulating inclined groove 713 when it reciprocates, and the rotating sleeve 79 will rotate inside the hollow annular sleeve 72 through the slope of the circulating inclined groove 713, and the distributing roller 77 will rotate when the rotating sleeve 79 rotates, and the distributing roller 77 will cause slight shaking of the resin particles due to eccentricity, which can handle impurities in the micropores on the resin, and further improve the quality of resin particle cleaning.
[0048] The hollow roller 42 moves up and down, and the L-shaped piston rod 85 also moves up and down. The L-shaped piston rod 85 moves up and down in the piston carrier 81. When the L-shaped piston rod 85 moves up, the one-way water inlet 84 on the piston carrier 81 absorbs water. When the L-shaped piston rod 85 moves down, the one-way water outlet of the piston carrier 81 injects water into the hollow annular sleeve 72. The water flow sprays out through the filter holes 76 on the filter plate 75, and the graded resin particles are treated again. The surface of the graded resin particles may still have dust, debris or sorting medium attached. The spraying water flow can completely flush them away. The uniform distribution of the filter holes 76 ensures that the water flow covers all the particles, avoiding the blind area of cleaning.
[0049] Finally, after the distribution roller 77 rotates, the resin particles are discharged from the discharge pipe 74 on the hollow annular sleeve 72, enter the funnel 93 through the filter screen on the surface of the driving disc 91, and at this time the numerical control machine body 1 drives the auger 95 to rotate, gradually discharging the resin particles that have been processed. This is continuous and automatic, which can improve the processing capacity, reduce water consumption, and reduce raw material waste through accurate sorting.
[0050] The above shows and describes the basic principles, main features and advantages of the present application. Those skilled in the art should understand that the present application is not limited to the above examples, and the above examples and descriptions in the specification are only preferred examples of the present application and are not intended to limit the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the present application. The scope of protection of the present application is defined by the appended claims and their equivalents.
Claims
1. A purification device for resin particle production, comprising a CNC machine body (1), wherein a feed inlet (2) is provided on the upper surface of the CNC machine body (1), and a drive motor (3) is fixedly connected to the upper surface of the CNC machine body (1), characterized in that: The CNC machine body (1) is internally connected to a circulating hybrid mechanism (4) for assisting in the initial cleaning of resin particles. The circulating hybrid mechanism (4) is internally provided with a connecting mechanism (5). The circulating hybrid mechanism (4) is rotatably connected to two sides of the circulating hybrid mechanism (4) to a processing mechanism (6) for processing and grading resin particles. The circulating hybrid mechanism (4) is internally provided with a grading cleaning mechanism (7) for secondary fine processing of resin particles. The grading cleaning mechanism (7) is provided with a cleaning mechanism (8) on its side. The CNC machine body (1) is internally provided with a driveable recycling mechanism (9) at the bottom. The circulating hybrid mechanism (4) includes a spline rod (41), which is rotatably connected inside the CNC machine body (1). The spline rod (41) is fixedly connected to the output shaft of the drive motor (3). A hollow roller (42) is slidably connected to the surface of the spline rod (41). An annular groove (43) is opened inside the hollow roller (42). A bevel gear (44) is rotatably connected to the side of the spline rod (41). An eccentric rod (45) is fixedly connected to the side of the bevel gear (44). A support platform (46) is fixedly connected to the surface of the spline rod (41). A bevel gear (47) is fixedly connected to the surface of the support platform (46). The bevel gear (47) meshes with the bevel gear (44).
2. The resin particle production purification device according to claim 1, characterized in that: The connecting mechanism (5) includes a support block (51), which is fixedly connected to the lower end of the spline rod (41). The surface of the support block (51) is provided with a diamond-shaped groove (52). A one-way limiting block (53) is fixedly connected inside the diamond-shaped groove (52). A rotating rod (54) is rotatably connected to the side of the hollow roller (42). A grain outlet (55) is provided on the side of the rotating rod (54). A sliding rod (56) with a certain elasticity is fixedly connected to one end of the rotating rod (54). A hollow sleeve (57) is fixedly connected to the side of the hollow roller (42). The rotating rod (54) is rotatably connected inside the hollow sleeve (57).
3. The resin particle production purification device according to claim 2, characterized in that: The processing mechanism (6) includes a stirring blade (61), which is fixedly connected to the other end of a rotating rod (54). A sealing plate (62) is rotatably connected to the surface of the stirring blade (61). An inclined space (63) is opened inside the stirring blade (61). The sealing plate (62) is symmetrically arranged on the surface of the stirring blade (61). A connecting rod (64) is hinged to the lower surface of the stirring blade (61). One end of the two connecting rods (64) is hinged together. A connecting rod (65) is hinged to the surface of one of the connecting rods (64). A rotating rod (66) is fixedly connected to the surface of the connecting rod (65). The rotating rod (66) is rotatably connected inside the stirring blade (61). A small gear (67) is fixedly connected to one end of the rotating rod (66). An annular toothed groove (68) is opened on the side of the hollow sleeve (57). The annular toothed groove (68) is composed of an annular ring and two sets of symmetrical quarter-arc toothed plates.
4. The resin particle production purification device according to claim 3, characterized in that: The graded cleaning mechanism (7) includes an annular funnel (71), which is fixedly connected to the lower end of the support block (51). A hollow annular sleeve (72) is fixedly connected to the lower end of the annular funnel (71), and a spline rod (73) is fixedly connected to the lower end of the hollow annular sleeve (72). The hollow annular sleeve (72) has an inlet and an outlet on its side to facilitate the entry and exit of resin particles. The inlet is fixedly connected to the lower end of the annular funnel (71). (72) A feed pipe (74) is fixedly connected to the outlet. A rotating sleeve (79) is rotatably connected inside the hollow annular sleeve (72). A filter plate (75) is fixedly connected inside the hollow annular sleeve (72). Several sets of filter holes (76) are opened on the surface of the filter plate (75). There is a gap between the filter plate (75) and the interior of the hollow annular sleeve (72). The rotating sleeve (79) passes through the filter plate (75) and is eccentrically fixedly connected to a distributing roller (77).
5. The resin particle production purification device according to claim 4, characterized in that: An L-shaped extrusion rod (78) is fixedly connected to the inner wall of the hollow roller (42). A spring (710) is provided inside the rotating sleeve (79). A pressing rod (711) is slidably connected inside the rotating sleeve (79). An inclined groove (712) is opened inside the pressing rod (711). The L-shaped extrusion rod (78) is slidably connected inside the inclined groove (712). A circulating inclined groove (713) is opened inside the rotating sleeve (79). The pressing rod (711) slides and rotates inside the rotating sleeve (79) through the circulating inclined groove (713). A partition sleeve (714) is slidably connected to the surface of the hollow roller (42).
6. The resin particle production purification device according to claim 5, characterized in that: The cleaning mechanism (8) includes a piston carrier (81), a support rod (82) is fixedly connected to the lower end of the piston carrier (81), a one-way water outlet (83) is provided on the side of the piston carrier (81), the one-way water outlet (83) passes through the hollow annular sleeve (72) and is fixedly connected to the hollow annular sleeve (72), the piston carrier (81) is fixedly connected to the hollow annular sleeve (72) through the one-way water outlet (83), a one-way water inlet (84) is provided at the lower end of the piston carrier (81), an L-shaped piston rod (85) is slidably connected inside the piston carrier (81), and one end of the L-shaped piston rod (85) is fixedly connected to the inner wall of the hollow roller (42).
7. The resin particle production purification device according to claim 6, characterized in that: The recycling mechanism (9) includes a drive disk (91), which is rotatably connected inside the CNC machine body (1) and driven by the CNC machine body (1). A filter screen (92) is provided on the surface of the drive disk (91). The lower end of the spline rod (73) is rotatably connected to the surface of the filter screen (92). The lower end of the partition sleeve (714) is fixedly connected to the surface of the drive disk (91). A funnel (93) is fixedly connected to the lower surface of the drive disk (91). A discharge pipe (94) is fixedly connected inside the CNC machine body (1). The lower end of the funnel (93) is fixedly connected to the discharge pipe (94). An auger (95) that can be controlled by the CNC machine body (1) is rotatably connected inside the discharge pipe (94).