Granulator for rubber processing

By designing a rubber pelletizer including crushing components, sieve components and vibration components, the problem of under-pull and particle adhesion during the pelleting process is solved, and the effect of improving the quality of rubber processing and reducing the amount of manual labor is achieved.

CN119974293APending Publication Date: 2025-05-13NARITA (GUANGDONG) TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510178588.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-18
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

During the pelletizing process of existing rubber pelletizers, some of the under-crushed rubber raw materials are mixed with particles, which increases the inconvenience of subsequent sorting, and the stickiness of the rubber material causes particles to stick, which increases the cumbersomeness of production processes and particle transfer.

Method used

A pelletizer for rubber processing is designed, including a crushing assembly, a sieve assembly and a vibration assembly. The crushing assembly realizes the crushing and cutting of rubber through the synchronous rotation of the crushing roller and the gear. The screening assembly separates particles that meet the standards and unqualified rubber blocks through vibration, and lifts the assembly to help the particles and the isolation powder to fully mix and separate excess isolation powder.

Benefits of technology

The quality standards for rubber production and processing have been improved, the cumbersomeness of subsequent manual sorting has been reduced, the amount of manual labor has been reduced, the particle adhesion has been reduced, the convenience of particle storage and transfer has been improved, and the rubber production process has been shortened.

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Abstract

The granulator for rubber processing is applied to the technical field of rubber processing and comprises a smashing assembly, a first granule screening assembly is arranged at the bottom of the smashing assembly, the first granule screening assembly comprises a second shell, a material passing opening is formed in the top of the second shell, a first sieve plate is connected into the second shell in a bolted mode, and a second sieve plate is arranged in the second shell. When the granulator for rubber processing is used, through the arrangement, the quality standard of the granulator for rubber processing on rubber production and processing is conveniently improved, the complexity of subsequent manual sorting of unqualified rubber blocks is reduced, convenience is brought to workshop production of rubber, and the manual labor amount is reduced. Meanwhile, the lifting of the sieve plate II can help to reduce the mutual adhesion of the particles, increase the convenience of subsequent storage of the particles, reduce the inconvenience of powder mixing after the particles are transferred, and shorten the working procedures of rubber production. Meanwhile, in the use of the sieve plate II, redundant isolation powder on the surfaces of the particles is shaken down, so that the influence on the subsequent use of the particles is avoided.
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Description

Technical Field

[0001] The invention belongs to the technical field of rubber processing, and in particular relates to a pelletizer for rubber processing. Background Art

[0002] Rubber products refer to the activities of producing various rubber products using natural and as raw materials. It also includes rubber products produced using rubber. The output of synthetic rubber has greatly exceeded that of rubber, among which the largest output is rubber. According to production needs, rubber products need to be pelletized by a pelletizer.

[0003] At present, in the operation of the pelletizer, the rubber particles cut off are discharged through the discharge port. During the pelletizing process, some rubber raw materials that have not been fully crushed and pelletized will still be mixed with the particles, which increases the inconvenience of subsequent selection and sorting. At the same time, in the current rubber pelletizing and discharging, due to the stickiness of the rubber material, the particles after pelletizing and crushing will stick together. Some workshops need to mix elastic material isolation powder in the subsequent processing, which undoubtedly increases the complexity of the workshop's rubber particle production process and particle transfer. Summary of the invention

[0004] The purpose of the present invention is to provide a pelletizer for rubber processing, which has the advantages of improving the quality standard of rubber production and processing by the mechanism, reducing the tediousness of subsequent manual sorting of unqualified rubber blocks, bringing convenience to rubber workshop production, and reducing manual labor; helping particles to reduce mutual adhesion, increasing the convenience of subsequent storage of particles, and reducing the inconvenience of mixing powder after particle transfer, shortening the rubber production process. At the same time, during the use of the second screen plate (401), the excess isolation powder on the surface of the particles is shaken off to avoid affecting the subsequent use of the particles.

[0005] The above technical objectives of the present invention are achieved through the following technical solutions: a pelletizer for rubber processing, comprising a crushing component (1), a sieve component (2) is provided at the bottom of the crushing component (1), the sieve component (2) comprises a shell (201), a material through-port (202) is provided at the top of the shell (201), a sieve plate (203) is bolted inside the shell (201), a discharge port (204) is connected to the surface of the shell (201), a vibration component (3) is provided on the outside of the shell (201), a sieve component (4) is provided at the bottom of the sieve plate (401), and a lifting component (5) is provided on one side of the shell (201).

[0006] By adopting the above technical scheme, when the rubber processing pelletizer is used, the operator puts the rubber block into the crushing component (1), and then the particles crushed and pelletized by the crushing component (1) and the rubber blocks that do not meet the standards enter the screening component one (2). The vibration component (3) is operated to vibrate and shake the rubber blocks, so as to separate the particles that meet the standards from the rubber blocks that do not meet the standards. At this time, the rubber blocks are discharged from the shell two (201). The staff receives the rubber blocks at an appropriate position so that they can be re-introduced into the crushing component (1) later. This setting makes it easy to improve the quality standard of rubber production and processing of the mechanism, and reduce the tediousness of subsequent manual sorting of unqualified rubber blocks, bringing convenience to the workshop production of rubber and reducing the amount of manual labor. The rubber particles that meet the standards will come to the screening component two (4), and the particles will contact and fully mix with the isolation powder during the reciprocating movement, and then the isolation powder and particles will be separated by the lifting component (5), and then discharged. This arrangement can help reduce the mutual adhesion of particles, increase the convenience of subsequent storage of particles, reduce the inconvenience of mixing powder after particle transfer, and shorten the rubber production process. At the same time, when the lifting component (5) is used, the excess isolation powder on the surface of the particles is shaken off to avoid affecting the subsequent use of the particles.

[0007] The present invention is further configured as follows: the pulverizing assembly (1) comprises a shell body (101), wherein the interior of the shell body (101) is rotatably connected to a pulverizing roller (102) and a pulverizing roller (103) via bearings, one end of each of the pulverizing rollers (102) and (103) passes through the surface of the shell body (101) and are respectively fixedly sleeved with a gear (104) and a gear (105), wherein the gear (104) and the gear (105) are meshed with each other.

[0008] By adopting the above technical solution, the gears are meshed to realize synchronous rotation of gear one (104) and gear two (105), but the rotation directions are opposite to each other, so that the crushing roller one (102) and crushing roller two (103) can crush and pelletize the rubber.

[0009] The present invention is further configured as follows: a rotating motor (106) is fixedly mounted on the surface of the shell (101); the output end of the rotating motor (106) is fixedly sleeved with one end of a crushing roller (102) via a coupling; a material dropout (107) penetrating into the interior of the shell (201) is fixedly mounted on the bottom of the shell (101); the material through-hole (202) cooperates with the material dropout (107) for penetration; and support legs (108) are fixedly mounted at both ends of both sides of the shell (101).

[0010] By adopting the above technical solution, the operation of the rotating motor 1 (106) will drive the crushing roller 1 (102) and the gear 1 (104) to rotate synchronously, wherein the crushed rubber material will fall from between the crushing roller 1 (102) and the crushing roller 2 (103), and enter the housing 2 (201) through the cooperation of the drop opening (107) and the through opening (202).

[0011] The present invention is further configured as follows: the vibration component (3) includes a transverse plate (301), the number of the transverse plates (301) is two and they are respectively fixedly connected to the front side and the rear side of the shell body (201), the front side and the rear side of the shell body (201) are respectively provided with a rod body 1 (302) and a rod body 2 (303) located at the bottom of the transverse plate (301), both ends of the surface of the rod body 1 (302) and the rod body 2 (303) are fixedly installed with eccentric wheels (304), and both ends of the rod body 1 (302) and the rod body 2 (303) pass through the support leg (108) and are rotatably connected to the support leg (108).

[0012] By adopting the above technical solution, the rotation of the rod body 1 (302) and the rod body 2 (303) will drive the eccentric wheel (304) to rotate synchronously, so that the eccentric wheel (304) squeezes the horizontal plate (301) and causes the horizontal plate (301) to move back and forth longitudinally. The support leg (108) will cooperate with the rod body 1 (302) and the rod body 2 (303) to rotate smoothly.

[0013] The present invention is further configured as follows: a rotating motor 2 (305) is fixedly installed on one side of a support leg (108) located at one end of the rod body 1 (302); the output end of the rotating motor 2 (305) is fixedly sleeved with the rod body 1 (302) through a coupling; one end of the rod body 1 (302) and the rod body 2 (303) are fixedly sleeved with a synchronous wheel 1 (306); a synchronous belt 1 (307) is connected to each other for transmission between the two synchronous wheels 1 (306); a plate body 2 (309) is fixedly installed on one side of the support leg (108); a plate body 1 (308) fixedly connected to the shell body 2 (201) is provided on the top of the plate body 2 (309); a support spring (3010) is fixedly installed between the plate body 1 (308) and the plate body 2 (309).

[0014] By adopting the above technical solution, the rotation of the second rotating motor (305) will drive the rod body (302) to rotate synchronously, wherein the synchronous belt (307) and the synchronous wheel (306) are arranged to realize the synchronous rotation of the rod body (302) and the rod body (303). During the reciprocating motion of the horizontal plate (301) and the second shell (201), the support spring (3010) cooperates with the movement of the second shell (201) to contract and extend, so that the second shell (201) returns to the initial position.

[0015] The present invention is further configured as follows: the particle screening component 2 (4) includes a sieve plate 2 (401), vertical rods (402) are fixedly installed on both sides of the top of the sieve plate 2 (401), sliding bars (403) are fixedly installed on the front and rear sides of the interior of the shell 2 (201), and a sliding groove (404) for cooperating with the sliding bar (403) is provided inside the vertical rod (402).

[0016] By adopting the above technical solution, the second screen plate (401) will screen the isolation powder and the particles, wherein during the movement of the vertical rod (402), the slide bar (403) and the slide groove (404) cooperate with the movement of the vertical rod (402) to guide.

[0017] The present invention is further configured as follows: retaining rings (408) are fixedly installed on both sides of the top of the second sieve plate (401), a discharge port (405) is opened on the rear side of the second shell (201), the bottom of the surface of the second shell (201) is connected to a pipe (406), a valve (407) is installed on the pipe (406), and the bottom inside the second shell (201) is of inclined design.

[0018] By adopting the above technical solution, the retaining ring (408) will cooperate with the outer side of the second sieve plate (401) to block and prevent the particles from slipping out of the groove (508), wherein the second discharge port (405) discharges the particles that have adhered to the isolation powder. The inclined design of the bottom of the second shell (201) is convenient for discharging and dumping the isolation powder.

[0019] The present invention is further configured as follows: the lifting assembly (5) includes a rod body three (501), a disc (502) is fixedly installed on one end of the rod body three (501), a guide block (503) is fixedly installed on one side of the disc (502), a guide ring (504) is slidably sleeved on the surface of the guide block (503), a connecting piece one (505) is fixedly installed on the top of the guide ring (504), one end of the connecting piece one (505) passes through the inner side of the shell body two (201) and is fixedly installed with a connecting piece two (506), the connecting piece two (506) and the vertical rod (402) are fixedly connected to each other, a rotating gear (5014) is fixedly sleeved on the surface of the rod body three (501), a half gear (5013) is meshed on the surface of the rotating gear (5014), and the rod body four (5012) is fixedly sleeved inside the half gear (5013).

[0020] By adopting the above technical solution, the rotation of the rod body four (5012) will drive the half gear (5013) to rotate, and the rotation of the half gear (5013) will intermittently drive the rotating gear (5014) to rotate through the teeth, and during the rotation of the rotating gear (5014), the rod body three (501) and the disk (502) will be driven to rotate. The rotation of the disk (502) will drive the guide block (503) to move around the rod body three (501) as the center of the circle. At the same time, through the sliding connection between the guide block (503) and the guide ring (504), the guide ring (504) will be caused to reciprocate longitudinally. At the same time, the guide ring (504) will synchronously drive the connecting piece one (505), the connecting piece two (506), the vertical rod (402) and the screen plate two (401) to move longitudinally.

[0021] The present invention is further configured as follows: the other ends of the rod body one (302) and the rod body four (5012) are fixedly mounted with a synchronous wheel two (509); the two synchronous wheels two (509) are connected to each other by a synchronous belt two (5010); one side of the shell body two (201) is provided with a through groove (508) for use with the connecting piece one (505); the top of the connecting piece one (505) is provided with a guide block (507) located at the top of the through groove (508) and fixedly connected to the inner side of the shell body two (201); the surface of the rod body three (501) is rotatably sleeved with a support plate (5011) rotatably connected to the rod body four (5012); the support leg (108) located at the other end of the rod body one (302) and the support plate (5011) are fixedly connected to each other.

[0022] By adopting the above technical solution, the synchronous rotation of the rod body 1 (302) and the rod body 4 (5012) is realized by setting the synchronous wheel 2 (509) and the synchronous belt 2 (5010). The guide block (507) is convenient for guiding the particles from the drop opening (107) to prevent the particles from flowing out of the through groove (508) to the outside of the shell 2 (201). At the same time, the support plate (5011) supports and assists the rotation of the rod body 3 (501) and the rod body 4 (5012).

[0023] In summary, the present invention has the following beneficial effects:

[0024] When the pelletizer for rubber processing is used, this setting is convenient for improving the quality standard of rubber production and processing by the mechanism, and reduces the tediousness of subsequent manual sorting of unqualified rubber blocks, bringing convenience to the rubber workshop production and reducing the amount of manual labor;

[0025] When the pelletizer for rubber processing is used, the lifting of the second screen plate (401) can help reduce the mutual adhesion of particles, increase the convenience of subsequent storage of particles, and reduce the inconvenience of mixing powder after particle transfer, thereby shortening the rubber production process. At the same time, when the second screen plate (401) is used, the excess isolation powder on the surface of the particles is shaken off to avoid affecting the subsequent use of the particles. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 It is a three-dimensional structural schematic diagram of the present invention;

[0027] Figure 2 It is an exploded and enlarged schematic diagram of the crushing assembly of the present invention;

[0028] Figure 3 is a schematic cross-sectional view of a housing 1 and a housing 2 of the present invention;

[0029] Figure 4 is an enlarged schematic diagram of the second housing of the present invention;

[0030] Figure 5 is an enlarged schematic cross-sectional view of the housing of the present invention;

[0031] Figure 6 It is an enlarged schematic diagram of the vibration assembly and the lifting assembly of the present invention;

[0032] Figure 7 It is an exploded and enlarged schematic diagram of the lifting assembly of the present invention;

[0033] Figure 8 It is a schematic diagram of the support leg and the support spring of the present invention.

[0034] Reference numerals:

[0035] 1. Crushing assembly; 101. Shell 1; 102. Crushing roller 1; 103. Crushing roller 2; 104. Gear 1; 105. Gear 2; 106. Rotating motor 1; 107. Dropping port; 108. Support leg; 2. Screening assembly 1; 201. Shell 2; 202. Feeding port; 203. Screen plate 1; 204. Discharging port 1; 3. Vibrating assembly; 301. Cross plate; 302. Rod 1; 303. Rod 2; 304. Eccentric wheel; 305. Rotating motor 2; 306. Synchronous wheel 1; 307. Synchronous belt 1; 308. Plate 1; 309. Plate 2; 30 10. Support spring; 4. Screen particle assembly 2; 401. Screen plate 2; 402. Vertical rod; 403. Slide bar; 404. Slide chute; 405. Discharge port 2; 406. Pipe; 407. Valve; 408. Retaining ring; 5. Lifting assembly; 501. Rod body 3; 502. Disc; 503. Guide block; 504. Guide ring; 505. Connecting piece 1; 506. Connecting piece 2; 507. Guide block; 508. Through slot; 509. Synchronous wheel 2; 5010. Synchronous belt 2; 5011. Support plate; 5012. Rod body 4; 5013. Half gear; 5014. Rotating gear. DETAILED DESCRIPTION

[0036] The present invention is further described in detail below in conjunction with the accompanying drawings.

[0037] Embodiment 1:

[0038] refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 , a pelletizer for rubber processing, including, when the pelletizer for rubber processing is used, the setting is convenient for improving the quality standard of the mechanism for rubber production and processing, and reduces the tediousness of subsequent manual sorting of unqualified rubber blocks, bringing convenience to the workshop production of rubber and reducing the amount of manual labor. At the same time, the lifting of the second screen plate 401 can help the particles reduce mutual adhesion, increase the convenience of subsequent storage of particles, and reduce the inconvenience of mixing powder after particle transfer, shortening the rubber production process. At the same time, when the second screen plate 401 is used, the excess isolation powder on the surface of the particles is shaken off to avoid affecting the subsequent use of the particles.

[0039] refer to Figure 1 , Figure 2 , Figure 3The pulverizing assembly 1 includes a shell 101, and a pulverizing roller 102 and a pulverizing roller 103 are rotatably connected to the inside of the shell 101 through bearings. One end of the pulverizing roller 102 and the pulverizing roller 103 penetrates the surface of the shell 101 and is fixedly sleeved with a gear 104 and a gear 105 respectively. The gear 104 and the gear 105 are meshed with each other, and the meshing of the gears will realize the synchronous rotation of the gear 104 and the gear 105, but the rotation directions are opposite to each other, so the pulverizing roller 102 and the pulverizing roller 103 can crush and pelletize the rubber.

[0040] refer to Figure 1 , Figure 2 , Figure 3 The surface of the shell 101 is fixedly installed with a rotating motor 106, and the output end of the rotating motor 106 is fixedly connected with one end of the crushing roller 102 through a coupling. The bottom of the shell 101 is fixedly installed with a blanking port 107 that penetrates into the inside of the shell 201, and the through-port 202 cooperates with the blanking port 107 for penetration. Support legs 108 are fixedly installed at both ends of both sides of the shell 101. The operation of the rotating motor 106 will drive the crushing roller 102 and the gear 104 to rotate synchronously, and the crushed rubber material will fall from between the crushing roller 102 and the crushing roller 2 103. And enter the shell 201 through the cooperation of the blanking port 107 and the through-port 202.

[0041] refer to Figure 1 , Figure 4 , Figure 6 The vibration assembly 3 includes a horizontal plate 301, the number of which is two and fixedly connected to the front side and the rear side of the second housing 201, respectively. The front side and the rear side of the second housing 201 are respectively provided with a rod body 1 302 and a rod body 2 303 located at the bottom of the horizontal plate 301, and both ends of the surface of the rod body 1 302 and the rod body 2 303 are fixedly installed with eccentric wheels 304, and both ends of the rod body 1 302 and the rod body 2 303 penetrate the support leg 108 and are rotatably connected to each other between the support leg 108. The rotation of the rod body 1 302 and the rod body 2 303 will drive the eccentric wheel 304 to rotate synchronously, so that the eccentric wheel 304 squeezes the horizontal plate 301 and causes the horizontal plate 301 to reciprocate longitudinally. The support leg 108 will cooperate with the rod body 1 302 and the rod body 2 303 to rotate smoothly.

[0042] refer to Figure 1 , Figure 4 , Figure 6A rotating motor 2 305 is fixedly installed on one side of the support leg 108 located at one end of the rod body 1 302, and the output end of the rotating motor 2 305 is fixedly sleeved with the rod body 1 302 through a coupling, and one end of the rod body 1 302 and the rod body 2 303 are fixedly sleeved with a synchronous wheel 1 306, and a synchronous belt 1 307 is connected to each other for transmission between the two synchronous wheels 1 306, and a plate body 2 309 is fixedly installed on one side of the support leg 108, and a plate body 1 308 fixedly connected to the shell 2 201 is provided on the top of the plate body 209, and a supporting spring 3010 is fixedly installed between the plate body 1 308 and the plate body 2 309, and the rotation of the rotating motor 2 305 will drive the rod body 1 302 to rotate synchronously, wherein the synchronous rotation of the rod body 1 302 and the rod body 2 303 will be realized through the setting of the synchronous belt 1 307 and the synchronous wheel 1 306. During the reciprocating motion of the horizontal plate 301 and the second housing 201 , the support spring 3010 contracts and stretches in coordination with the movement of the second housing 201 , so that the second housing 201 returns to the initial position.

[0043] refer to Figure 4 , Figure 5 , Figure 6 The particle screening component 24 includes a sieve plate 2401, vertical rods 402 are fixedly installed on both sides of the top of the sieve plate 2401, and slide bars 403 are fixedly installed on the front and rear sides of the shell 201. A slide groove 404 is provided inside the vertical rod 402 to cooperate with the slide bar 403 for sliding. The sieve plate 2401 will screen the isolation powder and particles, and during the movement of the vertical rod 402, the slide bar 403 and the slide groove 404 cooperate with the movement of the vertical rod 402 for guidance.

[0044] refer to Figure 4 , Figure 5 , Figure 6 , retaining rings 408 are fixedly installed on both sides of the top of the second sieve plate 401, a discharge port 405 is opened on the rear side of the second shell 201, and a pipe 406 is connected to the bottom of the surface of the second shell 201, and a valve 407 is installed on the pipe 406. The bottom of the second shell 201 is inclined, and the retaining ring 408 will cooperate with the outside of the second sieve plate 401 to block and prevent particles from slipping and penetrating the groove 508. The discharge port 405 discharges particles that have adhered to the isolation powder. The inclined design of the bottom of the second shell 201 is convenient for discharging and dumping the isolation powder.

[0045] refer to Figure 4 , Figure 6 , Figure 7The lifting assembly 5 includes a rod body 3 501, a disc 502 is fixedly installed at one end of the rod body 3 501, a guide block 503 is fixedly installed on one side of the disc 502, a guide ring 504 is slidably sleeved on the surface of the guide block 503, a connector 1 505 is fixedly installed on the top of the guide ring 504, one end of the connector 1 505 passes through the inner side of the shell 201 and is fixedly installed with a connector 2 506, the connector 2 506 and the vertical rod 402 are fixedly connected to each other, and the rod body 3 50 1 is fixedly sleeved with a rotating gear 5014, and a half gear 5013 is meshed on the surface of the rotating gear 5014. A rod body 4 5012 is fixedly sleeved inside the half gear 5013. The rotation of the rod body 4 5012 will drive the half gear 5013 to rotate, and the rotation of the half gear 5013 will intermittently drive the rotating gear 5014 to rotate through the teeth, and during the rotation of the rotating gear 5014, the rod body 3 501 and the disk 502 will be driven to rotate. The rotation of the disk 502 will drive the guide block 503 to move around the rod body 3 501 as the center of the circle. At the same time, through the sliding connection between the guide block 503 and the guide ring 504, the guide ring 504 will reciprocate longitudinally. At the same time, the guide ring 504 will synchronously drive the connecting piece 1 505, the connecting piece 2 506, the vertical rod 402 and the screen plate 2 401 to move longitudinally.

[0046] refer to Figure 4 , Figure 6 , Figure 7 The other ends of the rod body 1 302 and the rod body 4 5012 are fixedly installed with a synchronous wheel 2 509, and the two synchronous wheels 2 509 are mutually connected by a synchronous belt 2 5010. A through groove 508 for matching with the connecting piece 1 505 is provided on one side of the shell 201. The top of the connecting piece 1 505 is provided with a guide block 507 located at the top of the through groove 508 and fixedly connected to the inner side of the shell 2 201. The surface of the rod body 3 501 is rotatably sleeved with a support plate 5011 rotatably connected to the rod body 4 5012. The support leg 108 at the other end of the rod body 1 302 is fixedly connected to the support plate 5011. The synchronous wheel 2 509 and the synchronous belt 2 5010 are arranged to realize the synchronous rotation of the rod body 1 302 and the rod body 4 5012. The guide block 507 is convenient for guiding the particles from the drop port 107 to prevent the particles from flowing out of the through groove 508 to the outside of the shell 2 201. At the same time, the support plate 5011 supports and assists the rotation of the rod body 3 501 and the rod body 4 5012 .

[0047] Brief description of the use process: When using the rubber processing pelletizer, the operator puts the rubber block into the shell 101, and then the operation of the rotating motor 106 will drive the crushing roller 102 and the gear 104 to rotate synchronously, wherein the crushed rubber material will fall from between the crushing roller 102 and the crushing roller 2 103. The meshing of the gears will realize the synchronous rotation of the gear 104 and the gear 2 105, but the rotation directions are opposite to each other, so the crushing roller 102 and the crushing roller 2 103 will realize the crushing and pelletizing of the rubber. The crushed and pelletized particles and the rubber blocks that do not meet the standards will enter the shell 2 201 together through the cooperation of the drop port 107 and the feed port 202. The rotation of the rotating motor 2 305 will drive the rod 1 302 to rotate synchronously, and the synchronous belt 1 307 and the synchronous wheel 1 306 will realize the synchronous rotation of the rod 1 302 and the rod 2 303. The rotation of the rod body 1 302 and the rod body 2 303 will drive the eccentric wheel 304 to rotate synchronously, so that the eccentric wheel 304 squeezes the horizontal plate 301 and causes the horizontal plate 301 to reciprocate longitudinally. In the reciprocating motion of the horizontal plate 301 and the shell 2 201, the support spring 3010 cooperates with the movement of the shell 2 201 to shrink and stretch, so that the shell 2 201 returns to the initial position. Through the vibration and shaking of the shell 2 201 and the screen plate 1 203, the particles that meet the standards and the rubber blocks that do not meet the standards are separated. At this time, the particles that meet the standards will fall onto the screen plate 2 401, and the rubber blocks that do not meet the standards will be discharged through the discharge port 1 204. The staff will receive the rubber blocks at the appropriate position so that they can be re-entered into the shell 1 101 later. This setting is convenient to improve the quality standard of the rubber production and processing of the mechanism, and reduce the tediousness of subsequent manual sorting of unqualified rubber blocks, which brings convenience to the workshop production of rubber and reduces the amount of manual labor. The rubber particles that meet the standards will come into contact with the isolation powder stored in the second shell 201. The particles will come into contact with the isolation powder and be fully mixed during the reciprocating movement of the second shell 201, and then the synchronous rotation of the rod body 1 302 and the rod body 4 5012 will be realized through the setting of the synchronous wheel 2 509 and the synchronous belt 2 5010. The rotation of the rod body 4 5012 will drive the half gear 5013 to rotate, and the rotation of the half gear 5013 will intermittently drive the rotating gear 5014 to rotate through the teeth, and the rotation of the rotating gear 5014 will drive the rod body 3 501 and the disk 502 to rotate. The rotation of the disk 502 will drive the guide block 503 to move around the rod body 3 501 as the center of the circle. At the same time, through the sliding connection between the guide block 503 and the guide ring 504, the guide ring 504 will reciprocate longitudinally. At the same time, the guide ring 504 will synchronously drive the connector 1 505, the connector 2 506, the vertical rod 402 and the screen plate 2 401 to move longitudinally. The guide block 507 is convenient for guiding the particles from the drop port 107 to prevent the particles from flowing out of the through slot 508 to the outside of the shell 2 201.The separation of the isolation powder and the particles will be achieved during the rise of the second screen plate 401, and then the discharged particles will be discharged from the second discharge port 405. When the second screen plate 401 returns to the initial position, the reciprocating movement of the second shell 201 can help the second screen plate 401 pass through the isolation powder in the second shell 201 and bury it in the center of the isolation powder. This setting can help reduce the mutual adhesion of particles, increase the convenience of subsequent storage of particles, reduce the inconvenience of mixing powder after particle transfer, and shorten the rubber production process. At the same time, when the second screen plate 401 is used, the excess isolation powder on the surface of the particles is shaken off to avoid affecting the subsequent use of the particles.

[0048] This specific embodiment is merely an explanation of the present invention and is not a limitation of the present invention. After reading this specification, those skilled in the art may make non-creative modifications to the present embodiment as needed. However, as long as they are within the scope of the claims of the present invention, they are protected by the patent law.

Claims

1. A pelletizer for rubber processing, comprising a pulverizing assembly (1), characterized in that: A sieve particle assembly (2) is provided at the bottom of the pulverizing assembly (1), and the sieve particle assembly (2) comprises a shell body (201), a material passage (202) is provided at the top of the shell body (201), a sieve plate (203) is bolted to the inside of the shell body (201), a discharge port (204) is connected to the surface of the shell body (201), a vibration assembly (3) is provided on the outside of the shell body (201), a sieve particle assembly (4) is provided at the bottom of the sieve plate (401), and a lifting assembly (5) is provided on one side of the shell body (201).

2. A rubber processing pelletizer according to claim 1, characterized in that: The pulverizing assembly (1) comprises a shell body (101), wherein a pulverizing roller (102) and a pulverizing roller (103) are rotatably connected to the shell body (101) via bearings, one end of each of the pulverizing rollers (102) and (103) passes through the surface of the shell body (101) and are fixedly sleeved with a gear (104) and a gear (105), respectively, and the gear (104) and the gear (105) are meshed with each other.

3. A pelletizer for rubber processing according to claim 2, characterized in that: A rotating motor (106) is fixedly mounted on the surface of the shell (101); the output end of the rotating motor (106) is fixedly sleeved with one end of the crushing roller (102) via a coupling; a material drop opening (107) penetrating into the interior of the shell (201) is fixedly mounted on the bottom of the shell (101); the material passage opening (202) cooperates with the material drop opening (107) for penetration; and support legs (108) are fixedly mounted at both ends of both sides of the shell (101).

4. A rubber processing pelletizer according to claim 3, characterized in that: The vibration assembly (3) comprises a transverse plate (301), wherein the number of the transverse plates (301) is two and the transverse plates (301) are respectively fixedly connected to the front side and the rear side of the second shell (201), the front side and the rear side of the second shell (201) are respectively provided with a rod body 1 (302) and a rod body 2 (303) located at the bottom of the transverse plate (301), and both ends of the surfaces of the rod body 1 (302) and the rod body 2 (303) are fixedly mounted with eccentric wheels (304), and both ends of the rod body 1 (302) and the rod body 2 (303) pass through the support leg (108) and are rotatably connected to the support leg (108).

5. A rubber processing pelletizer according to claim 4, characterized in that: A rotating motor 2 (305) is fixedly mounted on one side of the support leg (108) located at one end of the rod body 1 (302); the output end of the rotating motor 2 (305) is fixedly sleeved with the rod body 1 (302) via a coupling; one end of the rod body 1 (302) and the rod body 2 (303) are fixedly sleeved with a synchronous wheel 1 (306); a synchronous belt 1 (307) is connected to each other for transmission; a plate body 2 (309) is fixedly mounted on one side of the support leg (108); a plate body 1 (308) fixedly connected to the shell body 2 (201) is provided on the top of the plate body 2 (309); a support spring (3010) is fixedly mounted between the plate body 1 (308) and the plate body 2 (309).

6. A pelletizer for rubber processing according to claim 1, characterized in that: The particle screening component 2 (4) comprises a sieve plate 2 (401), vertical rods (402) are fixedly installed on both sides of the top of the sieve plate 2 (401), sliding bars (403) are fixedly installed on the front and rear sides of the interior of the shell 2 (201), and a sliding groove (404) for cooperating with the sliding bar (403) is provided inside the vertical rod (402).

7. A rubber processing pelletizer according to claim 6, characterized in that: Retaining rings (408) are fixedly installed on both sides of the top of the second sieve plate (401), a discharge port (405) is opened on the rear side of the second shell (201), the bottom of the surface of the second shell (201) is connected to a pipe (406), a valve (407) is installed on the pipe (406), and the bottom inside the second shell (201) is of inclined design.

8. A pelletizer for rubber processing according to claim 7, characterized in that: The lifting assembly (5) comprises a rod body three (501), a disc (502) is fixedly mounted on one end of the rod body three (501), a guide block (503) is fixedly mounted on one side of the disc (502), a guide ring (504) is slidably sleeved on the surface of the guide block (503), a connecting piece one (505) is fixedly mounted on the top of the guide ring (504), one end of the connecting piece one (505) passes through the inner side of the shell body two (201) and is fixedly mounted with a connecting piece two (506), the connecting piece two (506) and the vertical rod (402) are fixedly connected to each other, a rotating gear (5014) is fixedly sleeved on the surface of the rod body three (501), a half gear (5013) is meshed on the surface of the rotating gear (5014), and a rod body four (5012) is fixedly sleeved inside the half gear (5013).

9. A pelletizer for rubber processing according to claim 8, characterized in that: The other ends of the rod body one (302) and the rod body four (5012) are fixedly mounted with a synchronous wheel two (509), and the two synchronous wheels two (509) are connected to each other by a synchronous belt two (5010), one side of the shell body two (201) is provided with a through groove (508) for use with the connecting piece one (505), and the top of the connecting piece one (505) is provided with a guide block (507) located at the top of the through groove (508) and fixedly connected to the inner side of the shell body two (201), the surface of the rod body three (501) is rotatably sleeved with a support plate (5011) rotatably connected to the rod body four (5012), and the support leg (108) located at the other end of the rod body one (302) and the support plate (5011) are fixedly connected to each other.