Rubber processing mill

By designing a rubber mixing mill for rubber processing, the problem of rubber particles sticking to the tray was solved, enabling automated cleaning and recycling, and improving mixing efficiency and molding volume.

CN119748679BActive Publication Date: 2025-11-25NARITA (GUANGDONG) TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510144618.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-10
Publication Date
2025-11-25
Estimated Expiration
2045-02-10

AI Technical Summary

Technical Problem

In small rubber processing workshops, rubber particles tend to stick to the trays during heating and extrusion, making it difficult for operators to clean and recycle them, which affects the efficiency of rubber mixing and the amount of rubber produced.

Method used

A rubber mixing machine for rubber processing has been designed, comprising a transmission component, a receiving component, a synchronization component, an adjustment component, an adaptation component, a pushing component, a longitudinal movement component, and a slippage component. Through the coordinated work of these components, the automatic collection and cleaning of adhering particles is achieved, reducing manual intervention.

Benefits of technology

It improves the convenience and efficiency of rubber mixing, reduces the waste of rubber particles, and ensures the amount of rubber produced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a rubber processing rubber mixing mill, and is applied to the technical field of rubber processing.The rubber processing rubber mixing mill comprises a transmission assembly, the transmission assembly comprises two supporting plates, front heating cylinder rollers and rear heating cylinder rollers are rotatably connected between the two supporting plates through bearings respectively, the inner side of the transmission assembly is provided with a receiving assembly, and one side of the transmission assembly is provided with a synchronous assembly. When the rubber processing rubber mixing mill is used, the structure brings convenience to the work of rubber mixing, and the structure is different from the inconvenience that the existing particles are adhered to the tray after being sticky. The operator no longer needs to preferentially disassemble the tray and then take down the particles from the tray with great effort, so that the operation of the staff is facilitated. Meanwhile, due to the setting of the adaptive assembly, the cleaning effect of the particles is improved, the recycling of the particles is completely realized, the waste of rubber particles in the workshop is reduced, and the rubber mixing forming amount is ensured.
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Description

TECHNICAL FIELD

[0001] The present application belongs to the technical field of rubber processing, and particularly relates to a rubber processing rubber mixing mill. BACKGROUND

[0002] Rubber products have been widely used in people's life, and the manufacturers of rubber products are also increasing. In the production process of rubber products, mixing is an essential part, and a rubber mixing mill is a commonly used equipment for rubber material processing research and production. Raw rubber is mixed, sheeted, plasticated and heated by two rollers, among which a rubber mixing mill adopts a mechanical method to reduce the molecular weight and viscosity of raw rubber to improve its plasticity and obtain appropriate fluidity to meet the needs of mixing and further processing.

[0003] At present, a small rubber mixing mill is needed in the production of some small workshops. In the inward rotation of the front roller and the rear roller, rubber particles are thrown into the space between the two rollers. With the heating and extrusion shearing of the two rollers on the rubber, the viscosity of the particles is promoted, so that the particles become a soft whole. Of course, before this, the particles need to be extruded several times, and it is inevitable that part of the particles will not be formed and will fall to the bottom of the two rollers with the rolling of the rollers. The small rubber mixing mill currently used in the two rollers is usually placed with a tray, which is used to receive the unformed particles, so as to facilitate the operator to throw the particles on the tray into the space between the two rollers again. In this operation, the operator manually gathers the particles on the tray and throws them into the two rollers, and in the collection work, the tray is preferentially unloaded, and the rubber particles are affected by the heating of the two rollers and have viscosity, which will not facilitate the operator to manually collect the particles stuck on the tray, increase the operation amount and affect the rubber mixing efficiency. SUMMARY

[0004] The purpose of the present application is to provide a rubber mixing mill for rubber processing, which has the advantages of bringing convenience to the work of rubber mixing, and distinguishing the inconvenience of the particles sticking to the tray after being sticky, and bringing convenience to the operation of the operator; the cleaning effect of the particles is improved, the recycling of the particles is realized, the waste of rubber particles in the workshop is reduced, and the amount of rubber mixing and forming is guaranteed.

[0005] The above technical purpose of the present application is realized by the following technical scheme: a rubber mixing mill for rubber processing, comprising a transmission assembly, the transmission assembly comprising two support plates, a front heating cylinder roller and a rear heating cylinder roller being rotatably connected between the two support plates through bearings respectively, an accommodating assembly being arranged on the inner side of the transmission assembly, a synchronous assembly being arranged on one side of the transmission assembly, an adjusting assembly being arranged on the top of the accommodating assembly, an adapting assembly being arranged on the bottom of the adjusting assembly, a pushing assembly being arranged on the bottom of the accommodating assembly, a longitudinal moving assembly being arranged on the bottom of the pushing assembly, and a sliding assembly being arranged on both sides of the pushing assembly.

[0006] When the rubber processing rubber mixing machine is used, the operator pours rubber particles between the transmission assemblies, and under the rotation and heating action of the transmission assemblies, the rubber particles are extruded and sheared, which promotes the viscosity of the particles. Then, the particles that are not fully heated and fall will be collected and supported by the receiving assembly. When the particles in the receiving assembly need to be recovered and poured again between the transmission assemblies, the synchronous assembly can be operated to move the adaptive assembly, wherein the adjusting assembly adjusts the angle of the adaptive assembly, and the adaptive assembly can be adjusted according to the receiving assembly to clean and collect the particles in the receiving assembly. At this time, the particles with viscosity in the receiving assembly will be transferred to the pushing assembly, and the longitudinal moving assembly limits the running direction of the pushing assembly and ensures the stable use of the pushing assembly. When the full pushing assembly needs to be taken out and poured again, the operator can realize it through the sliding assembly. This structure brings convenience to the work of rubber mixing, and distinguishes from the inconvenience of the existing particles sticking to the tray after being sticky. The operator no longer needs to disassemble the tray first and then take the particles out of the tray with great effort, which brings convenience to the operation of the staff. At the same time, due to the setting of the adaptive assembly, the cleaning effect of the particles is improved, the recovery of the particles is realized thoroughly, the waste of rubber particles in the workshop is reduced, and the rubber mixing forming amount is ensured.

[0007] The application further provides that one side of the support plate at one end of the front heating cylinder roller and the rear heating cylinder roller is fixedly provided with a rotating motor one and a rotating motor two, the output end of the rotating motor one is fixedly sleeved with the front heating cylinder roller through a shaft coupling, and the output end of the rotating motor two is fixedly sleeved with the rear heating cylinder roller through a shaft coupling.

[0008] According to the above technical scheme, the operation of the rotating motor one drives the front heating cylinder roller to rotate, and the operation of the rotating motor two drives the rear heating cylinder roller to rotate.

[0009] The application further provides that the receiving assembly comprises a collecting frame, the collecting frame is located at the bottom of the front heating cylinder roller and the rear heating cylinder roller, one side of the collecting frame is provided with an outlet, and both sides of the collecting frame are fixedly provided with clamping blocks, and one side of the support plate is provided with a clamping groove matched with the clamping blocks.

[0010] According to the above technical scheme, the collecting frame receives the rubber particles falling between the front heating cylinder roller and the rear heating cylinder roller, the outlet is used for discharging the particles, and the clamping blocks and the clamping groove are clamped to facilitate the flexible assembly of the collecting frame and the support plate.

[0011] The present invention is further configured such that: the synchronization component includes a rotating motor three, and one side of the support plate located at the other end of the front heating roller and the rear heating roller is fixedly connected to the rotating motor three; the inner sides of the two support plates are respectively provided with a synchronization wheel one and a synchronization wheel two, and a synchronization belt is mutually connected between two adjacent synchronization wheels one and synchronization wheel two.

[0012] By adopting the above technical solution, the rotation of synchronous pulley one will be achieved by setting synchronous belt, and the structure of synchronous belt surface can be transmitted.

[0013] The invention is further configured such that: a rod body 1, which is rotatably connected to a synchronous wheel 1, is located inside the support plate at the other end of the front heating roller and the rear heating roller via a bearing; one end of the rod body 1 extends through to one side of the support rod and is fixedly sleeved with the rotating motor 3 via a coupling; a rod body 2, which is rotatably connected to a synchronous wheel 1, is located inside the support plate at one end of the front heating roller and the rear heating roller via a bearing; and a rod body 3, which is rotatably connected to the inside of the support plate, is fixedly installed on one side of each of the two synchronous wheels 2.

[0014] Using the above technical solution, during the operation of the rotating motor three, rod one will be driven to rotate, which in turn will drive rod three and synchronous wheel two inside the same support plate to rotate. Furthermore, through the setting of the subsequent connecting plate, the rotation of rod two and synchronous wheel one in another support plate will be realized, thus achieving synchronous rotation of synchronous wheels one and synchronous wheel two.

[0015] The invention is further configured such that: the adjusting assembly includes a connecting plate, side blocks are fixedly installed on both sides of the connecting plate, a connecting block is provided on the top of the side block and fixedly connected to the timing belt, a universal bearing is fixedly installed on one side of the connecting block and fixedly connected to the side block, a fitting block is fixedly installed on one side of the side block and extends into the interior of the support plate, and a through groove one and a through groove two are respectively opened on one side of the support plate and at the top of the snap-fit ​​groove, the through groove one and the through groove two are used to cooperate with the fitting block and the connecting block and are interconnected.

[0016] Using the above technical solution, the connecting block will move during the transmission of the synchronous belt, and the universal bearing will ensure the flexible adjustment of the side block. When the connecting block is at the bottom of the synchronous belt, the side block and connecting plate will remain at the bottom of the connecting block. When the connecting block is at the top of the synchronous belt, the universal bearing will still ensure that the connecting plate is at the bottom of the connecting block. When the connecting block is at the arc-shaped part at both ends of the synchronous belt, the longitudinal relationship between the connecting plate and the side block will still be maintained, which facilitates the use of the connecting plate. During the movement of the connecting block, the mating block will engage with the through slot two and guide the movement of the connecting plate.

[0017] The present invention is further configured such that: the adaptation component includes blade one, blade two and blade three, a fixing member one is bolted to the top of blade one, a fixing member two is bolted to the top of blade two and blade three, the fixing member one is fixedly connected to the bottom of the connecting plate, a slider is fixedly installed on the top of the fixing member two, a groove is opened on the bottom of the connecting plate to cooperate with the sliding of the slider, and a spring one is fixedly installed on one side of the slider and fixedly connected to the inside of the groove.

[0018] Using the above technical solution, blade one is fixedly connected to the connecting plate via fastener one and moves synchronously with the movement of the connecting plate. When blade two and blade three are gradually subjected to tilting and squeezing from the inside of the collection frame during use, blade two and blade three will move through the slider and groove, and under the action of spring one, they will always maintain contact with the inner wall of the collection frame to achieve the best cleaning effect.

[0019] The invention is further configured such that: the pushing component includes a frame, and there are three frames. The rear side of the frame located behind the collection frame is in contact with a push plate. The rear side of the push plate is provided with a fixing plate. Both ends of the rear side of the push plate are fixedly installed with guide rods extending through to the rear side of the fixing plate. The surface of the guide rods is fitted with springs. The two ends of the springs are respectively fixedly connected to the push plate and the fixing plate. A crossbar is fixedly installed between the two guide rods. Both sides of the frame are rotatably connected to torsion blocks through bearings. A knob is fixedly installed on one side of the torsion block.

[0020] Using the above technical solution, the frame will receive particles exiting from the outlet. Under the action of spring two and the push plate, it will always be in contact with and pressed firmly against the last frame. Guide rod one, in conjunction with spring two and the push plate, provides guidance. As the frame receives particles, once it is full and removed for use, spring two extends and pushes the remaining frames at the bottom of the collection frame. When it is necessary to install the three frames in their initial state onto the push plate side, the operator can pull the crossbar to move the push plate; at this time, spring two is in a retracted state. Simultaneously, during the use of the frame, the angle of the torsion block determines the frame's state, and knob one facilitates the rotation and adjustment of the torsion block.

[0021] The present invention is further configured such that: the longitudinal movement assembly includes a base plate, the base plate and the support plate are fixedly connected to each other, the base plate is located at the bottom of the push plate, the top of the base plate is provided with a ratchet plate one, the top of the ratchet plate one is engaged with a ratchet plate two fixedly connected to the push plate, the bottom of the ratchet plate one is rotatably connected to a screw that extends through to the bottom of the base plate through a bearing, the screw and the base plate are threadedly connected to each other, the bottom of the screw is fixedly installed with a knob two, both sides of the screw are provided with guide rod two fixedly connected to the bottom of the ratchet plate one, one end of the guide rod two extends through to the bottom of the base plate and is slidably connected to the base plate.

[0022] By adopting the above technical solution, during the engagement of ratchet plate one and ratchet plate two, it is easier to achieve unidirectional movement of ratchet plate two on ratchet plate one, avoiding the situation where ratchet plate two and the push plate are affected, causing spring two to contract. When it is necessary to add a frame to the push plate side, knob two can be adjusted, the screw will rotate, and ratchet plate one will be lowered. Guide rod two guides the movement of ratchet plate one, and at this time, the engagement of ratchet plate one and ratchet plate two will be canceled, allowing the operator to move ratchet plate two.

[0023] The invention is further configured such that: the slip assembly includes a support block, the number of the support blocks is two, and the support plate and the fixing plate are fixedly connected to each other. A support plate and a top plate are fixedly installed on one side of each support block. The support plate and the top plate are located at the bottom and top of the torsion block, respectively. Stabilizing members fixedly connected to the support blocks are provided on both sides of the frame located in front of the collection frame. A support block is provided on the rear side of the stabilizing member. An arc-shaped groove for cooperating with the rotation of the torsion block is opened on the inner side of the stabilizing member. A plate body one is fixedly installed at one end of the support block. A plate body two fixedly connected to the support plate is fixedly installed on one side of the plate body one. A guide rod three extending through to the rear side of the plate body two is fixedly installed on the rear side of the plate body one. A spring three is sleeved on the surface of the guide rod three. The two ends of the spring three are fixedly connected to the plate body one and the plate body two, respectively.

[0024] Using the above technical solution, the support block will support and fix the fixed plate. During frame installation, the torsion block should be kept horizontally first and inserted between the top plate and the support plate. The support plate will support the torsion block, while the top plate will limit its movement. Under the pushing action of spring two and the push plate, the stabilizing component, in conjunction with the torsion block, limits the frame, allowing the frame reaching the stabilizing component to catch particles falling from the opening. When the frame at the bottom of the opening needs to be removed for use, the operator rotates knob two, which adjusts the angle of the torsion block. The arc-shaped groove accommodates the rotation of the torsion block. During rotation, the torsion block inserts longitudinally into the gap between the support block and the stabilizing component. Continuous rotation of the torsion block causes the support block to move backward, at which point spring three contracts. Guide rod three guides the movement of plate one and the support block, and spring three ensures that the support block returns to its initial position after use, facilitating the next use of the torsion block and frame.

[0025] In summary, the present invention has the following beneficial effects:

[0026] 1. When using a rubber mixing mill for rubber processing, this structure brings convenience to the rubber mixing process. At the same time, it is different from the inconvenience of existing particles sticking to the tray after they become sticky. It eliminates the need for operators to first disassemble the tray and then laboriously remove the particles from the tray, thus bringing convenience to the operators.

[0027] 2. When using a rubber mixing mill for rubber processing, the structure, with its three blades (blade one, blade two, and blade three), improves the particle cleaning effect, facilitates thorough particle recycling, reduces waste of rubber particles in the workshop, and ensures the amount of rubber mixed and formed. Attached Figure Description

[0028] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0029] Figure 2 This is an exploded view of the transmission component, receiving component, and adjusting component of the present invention;

[0030] Figure 3 This is an enlarged schematic diagram of the receiving component, synchronization component, adjustment component, adaptation component, and driving component of the present invention;

[0031] Figure 4 This is an exploded and enlarged schematic diagram of the receiving component, synchronization component, adjustment component, adaptation component, and driving component of the present invention;

[0032] Figure 5 This is an exploded and enlarged schematic diagram of the synchronization component and adjustment component of the present invention;

[0033] Figure 6 This is an enlarged schematic diagram of the adaptive component of the present invention;

[0034] Figure 7 This is an enlarged view of the connecting rod of the present invention from below;

[0035] Figure 8 This is an enlarged schematic diagram of the support plate, adjustment assembly, pushing assembly, and sliding assembly of the present invention;

[0036] Figure 9 This is an enlarged schematic diagram of the pushing component, the longitudinal moving component, and the sliding component of the present invention;

[0037] Figure 10 This is an exploded and enlarged schematic diagram of the pushing component and the longitudinal moving component of the present invention;

[0038] Figure 11 This is an exploded and enlarged schematic diagram of the slip-off component of the present invention;

[0039] Figure 12 This is an exploded and enlarged schematic diagram of the slip-off component of the present invention.

[0040] Figure label:

[0041] 1. Transmission Components; 101. Support Plate; 102. Front Heating Roller; 103. Rear Heating Roller; 104. Rotary Motor 1; 105. Rotary Motor 2; 2. Receiving Components; 201. Collection Frame; 202. Outlet; 203. Snap-fit ​​Block; 204. Snap-fit ​​Slot; 3. Synchronization Components; 301. Synchronization Pulley 1; 302. Synchronization Pulley 2; 303. Synchronization Belt; 304. Rod 1; 305. Rod 2; 306. Rod 3; 307. Rotary Motor 3; 4. Adjustment Components; 401. Connecting Plate; 402. Side Block; 403. Connecting Block; 404. Universal Bearing; 405. Fitting Block; 406. Through Slot 1; 407. Through Slot 2; 5. Adaptation Components; 501. Blade 1; 502. Blade 2; 503. Blade 504. Fixing component 1; 505. Fixing component 2; 506. Slider; 507. Slide groove; 508. Spring 1; 6. Push assembly; 601. Frame; 602. Push plate; 603. Fixing plate; 604. Guide rod 1; 605. Crossbar; 606. Spring 2; 607. Torsion block; 608. Knob 1; 7. Longitudinal movement assembly; 701. Base plate; 702. Ratchet 1; 703. Ratchet 2; 704. Screw; 705. Knob 2; 706. Guide rod 2; 8. Slip assembly; 801. Support block; 802. Support plate; 803. Top plate; 804. Stabilizer; 805. Support block; 806. Arc groove; 807. Plate 1; 808. Plate 2; 809. Guide rod 3; 8010. Spring 3. Detailed Implementation

[0042] The present invention will be further described in detail below with reference to the accompanying drawings.

[0043] Example:

[0044] refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 , Figure 9 , Figure 10 , Figure 11 , Figure 12 A rubber mixing mill for rubber processing includes a transmission assembly 1. The transmission assembly 1 includes two support plates 101, which are rotatably connected to a front heating roller 102 and a rear heating roller 103 via bearings. A receiving assembly 2 is provided on the inner side of the transmission assembly 1, and a synchronization assembly 3 is provided on one side of the transmission assembly 1. An adjustment assembly 4 is provided on the top of the receiving assembly 2, and an adaptation assembly 5 is provided on the bottom of the adjustment assembly 4. A pushing assembly 6 is provided on the bottom of the receiving assembly 2, and a longitudinal movement assembly 7 is provided on the bottom of the pushing assembly 6. Sliding assemblies 8 are provided on both sides of the pushing assembly 6. When using the rubber mixing mill for rubber processing, this structure brings convenience to the rubber mixing work. At the same time, it is different from the inconvenience of existing particles sticking to the tray after they are sticky. It eliminates the need for the operator to first disassemble the tray and then laboriously remove the particles from the tray, thus bringing convenience to the operator. Meanwhile, the structure, adapted to the setting of component 5, improves the particle cleaning effect, facilitates thorough particle recycling, reduces waste of rubber particles in the workshop, and ensures the amount of rubber compounded and molded.

[0045] refer to Figure 1 , Figure 2 Rotary motor 104 and rotary motor 2 105 are fixedly installed on one side of the support plate 101 located at one end of the front heating roller 102 and the rear heating roller 103, respectively. The output end of rotary motor 104 is fixedly connected to the front heating roller 102 through a coupling, and the output end of rotary motor 2 105 is fixedly connected to the rear heating roller 103 through a coupling. The operation of rotary motor 104 will drive the front heating roller 102 to rotate, and the operation of rotary motor 2 105 will drive the rear heating roller 103 to rotate.

[0046] refer to Figure 1 , Figure 3 , Figure 4The receiving component 2 includes a collection frame 201, which is located at the bottom of the front heating roller 102 and the rear heating roller 103. An outlet 202 is provided on one side of the collection frame 201, and a snap-fit ​​block 203 is fixedly installed on both sides of the collection frame 201. A snap-fit ​​groove 204 is provided on one side of the support plate 101 to engage with the snap-fit ​​block 203. The collection frame 201 will collect the rubber particles falling between the front heating roller 102 and the rear heating roller 103. The outlet 202 is used for the subsequent discharge of particles. The snap-fit ​​between the snap-fit ​​block 203 and the snap-fit ​​groove 204 will facilitate the operator to flexibly assemble and use the collection frame 201 and the support plate 101.

[0047] refer to Figure 3 , Figure 4 , Figure 5 The synchronization component 3 includes a rotating motor 307. One side of the support plate 101 located at the other end of the front heating roller 102 and the rear heating roller 103 is fixedly connected to the rotating motor 307. The inner sides of the two support plates 101 are respectively provided with a first synchronous wheel 301 and a second synchronous wheel 302. The two adjacent first synchronous wheels 301 and second synchronous wheels 302 are connected by a synchronous belt 303 for mutual transmission. During the rotation of the first synchronous wheel 301, the rotation of the second synchronous wheel 302 will be realized through the setting of the synchronous belt 303, and the structure on the surface of the synchronous belt 303 can be transmitted.

[0048] refer to Figure 3 , Figure 4 , Figure 5 Inside the support plate 101 located at the other end of the front heating roller 102 and the rear heating roller 103, a rod 304 is rotatably connected to the synchronous wheel 301 via a bearing. One end of the rod 304 extends through to one side of the support rod and is fixedly sleeved with the rotating motor 307 via a coupling. Inside the support plate 101 located at one end of the front heating roller 102 and the rear heating roller 103, a rod 305 is rotatably connected to the synchronous wheel 301 via a bearing. On one side of each of the two synchronous wheels 302, a rod 306 is fixedly installed and rotatably connected to the inside of the support plate 101. During the operation of the rotating motor 307, the rod 304 will be driven to rotate, which will then drive the rod 306 and the synchronous wheel 302 inside the same support plate 101 to rotate. Furthermore, through the subsequent connecting plate 401, the rotation of the second rod 305 and the synchronous wheel 301 in the other plate 101 will be realized, thus achieving synchronous rotation of the two synchronous wheels 301 and the synchronous wheel 302.

[0049] refer to Figure 2 , Figure 4 , Figure 5The adjusting component 4 includes a connecting plate 401. Side blocks 402 are fixedly installed on both sides of the connecting plate 401. A connecting block 403 is provided on the top of the side block 402, penetrating the side block 402 and fixedly connected to the timing belt 303. A universal bearing 404 fixedly installed on one side of the connecting block 403 and fixedly connected to the side block 402 is fixedly installed on one side of the side block 402, penetrating into the support plate 101. A through groove 1 406 and a through groove 2 407 are respectively opened on one side of the support plate 101 and at the top of the snap-fit ​​groove 204. The through groove 1 406 and the through groove 2 407 are used in conjunction with the connecting block 405 and the connecting block 403 and are interconnected. During the transmission of the timing belt 303, the connecting block 403 will be driven to move. The universal bearing 404 ensures the flexible adjustment of the side block 402. When the connecting block 403 is positioned at the bottom of the synchronous belt 303 due to the transmission from the synchronous belt 303, the side block 402 and the connecting plate 401 will remain at the bottom of the connecting block 403. When the connecting block 403 is positioned at the top of the synchronous belt 303 due to the transmission from the synchronous belt 303, the universal bearing 404 will still ensure that the connecting plate 401 is at the bottom of the connecting block 403. When the connecting block 403 is positioned at the arc-shaped portions at both ends of the synchronous belt 303 due to the transmission from the synchronous belt 303, the longitudinal relationship between the connecting plate 401 and the side block 402 will still be maintained, facilitating the use of the connecting plate 401. During the movement of the connecting block 403, the engaging block 405 will engage with the through slot 407 and guide the movement of the connecting plate 401.

[0050] refer to Figure 5 , Figure 6 , Figure 7 The adaptation component 5 includes blade 1 501, blade 2 502, and blade 3 503. Blade 1 501 is bolted to the top of a fixing member 1 504. Blade 2 502 and blade 3 503 are bolted to the top of a fixing member 2 505. Fixing member 1 504 is fixedly connected to the bottom of the connecting plate 401. A slider 506 is fixedly installed on the top of fixing member 2 505. The bottom of the connecting plate 401 has a groove 507 for sliding with slider 506. A spring 1 508 is fixedly installed on one side of slider 506 and fixedly connected to the inside of groove 507. Blade 1 501 is fixedly connected to the connecting plate 401 through fixing member 1 504 and moves synchronously with the movement of the connecting plate 401. When blades 2 502 and 3 503 are gradually subjected to tilting and squeezing from the inside of the collection frame 201 during use, blades 2 502 and 3 503 will move through the slider 506 and the groove 507, and under the action of spring 1 508, they will always maintain contact with the inner wall of the collection frame 201 to achieve the best cleaning effect.

[0051] refer to Figure 3 , Figure 4 , Figure 5The pushing component 6 includes a frame 601, of which there are three. The frame 601 located behind the collection frame 201 has a push plate 602 in contact with its rear side. The push plate 602 has a fixed plate 603 on its rear side. Both ends of the push plate 602 are fixedly installed with guide rods 604 that pass through to the rear side of the fixed plate 603. A spring 606 is sleeved on the surface of the guide rod 604. The two ends of the spring 606 are fixedly connected to the push plate 602 and the fixed plate 603 respectively. A crossbar 605 is fixedly installed between the two guide rods 604. Both sides of the frame 601 are rotatably connected to a torsion block 607 through bearings. A knob 608 is fixedly installed on one side of the torsion block 607. The frame 601 will receive the particles coming out of the outlet 202. Under the action of the spring 606 and the push plate 602, it will always be in contact with and pushed tightly against the rearmost frame 601. The guide rod 604, in conjunction with the spring 606 and the push plate 602, provides guidance. As the frame 601 receives particles, and after it is gradually filled and removed for use, the spring 606 extends and pushes the remaining frames 601 at the bottom of the collection frame 201. When it is necessary to install the three frames 601 in their initial state onto the push plate 602, the operator can pull the crossbar 605 to move the push plate 602, at which point the spring 606 is in a retracted state. Simultaneously, during the use of the frame 601, the angle of the torsion block 607 determines the state of the frame 601, and the knob 608 facilitates the rotation and adjustment of the torsion block 607.

[0052] refer to Figure 8 , Figure 9 , Figure 10The longitudinal movement assembly 7 includes a base plate 701, which is fixedly connected to the support plate 101. The base plate 701 is located at the bottom of the push plate 602. A ratchet plate 702 is provided on the top of the base plate 701. A second ratchet plate 703, which is fixedly connected to the push plate 602, is engaged with the top of the first ratchet plate 702. A screw 704, which extends through to the bottom of the base plate 701, is rotatably connected to the bottom of the first ratchet plate 702 via a bearing. The screw 704 is threadedly connected to the base plate 701. A knob 705 is fixedly installed. Guide rods 706 are fixedly connected to the bottom of ratchet plate 702 on both sides of the screw 704. One end of the guide rod 706 extends to the bottom of the base plate 701 and slides between them. During the engagement of ratchet plate 702 and ratchet plate 703, this facilitates unidirectional movement of ratchet plate 703 on ratchet plate 702, preventing the spring 606 from contracting due to interference between ratchet plate 703 and push plate 602. When it is necessary to add frame 601 to the side of push plate 602, the knob 705 can be adjusted, causing the screw 704 to rotate and lower ratchet plate 702. Guide rods 706 guide the movement of ratchet plate 702, thus canceling the engagement of ratchet plate 702 with ratchet plate 703, allowing the operator to move ratchet plate 703.

[0053] refer to Figure 9 , Figure 10 , Figure 11The slip assembly 8 includes two support blocks 801, each fixedly connected to the support plate 101 and the fixing plate 603. A support plate 802 and a top plate 803 are fixedly installed on one side of each support block 801. The support plate 802 and the top plate 803 are located at the bottom and top of the torsion block 607, respectively. Stabilizing members 804, fixedly connected to the support blocks 801, are provided on both sides of the frame 601 located in front of the collection frame 201. A support block 805 is provided on the rear side of each stabilizing member 804, and a mating part is provided on the inner side of each stabilizing member 804. The torsion block 607 uses an arc-shaped groove 806 for rotation. One end of the support block 805 is fixedly installed with a plate 807. One side of the plate 807 is fixedly installed with a plate 808 that is fixedly connected to the support plate 802. A guide rod 809 that extends through the rear of the plate 807 and reaches the rear of the plate 808 is fixedly installed. A spring 8010 is sleeved on the surface of the guide rod 809. The two ends of the spring 8010 are fixedly connected to the plate 807 and the plate 808 respectively. The support block 801 supports and fixes the fixing plate 603. During the installation of the frame 601, the lateral orientation of the torsion block 607 should be maintained first, and the torsion block 607 should be inserted between the top plate 803 and the support plate. The support plate supports the torsion block 607, while the top plate 803 limits the torsion block 607. Under the pushing action of spring 606 and push plate 602 on frame 601, stabilizer 804 and torsion block 607 limit the movement, thereby limiting frame 601 so that frame 601 reaching the side of stabilizer 804 can catch particles falling from the opening. When the frame 601, which requires an opening at the bottom, is to be removed for use, the operator rotates knob 705. Knob 705 will cause the torsion block 607 to adjust its angle. The arc groove 806 will cooperate with the torsion block 607 to rotate and accommodate it. During the rotation of the torsion block 607, the torsion block 607 is inserted longitudinally into the gap between the support block 805 and the stabilizing member 804. As the torsion block 607 continues to rotate, the support block 805 will move backward. At this time, the spring 8010 will be retracted. The guide rod 809 guides the movement of the plate 807 and the support block 805. The spring 8010 ensures that the support block 805 returns to its initial position after use, so that the torsion block 607 and the frame 601 can be used again.

[0054] Brief description of operation: When using a rubber mixing mill for rubber processing, the operator pours rubber particles between the front heating roller 102 and the rear heating roller 103. The operation of motor one 104 drives the front heating roller 102 to rotate, while the operation of motor two 105 drives the rear heating roller 103 to rotate. Under the rotation and heating action of the front heating roller 102 and the rear heating roller 103, the rubber particles are compressed and sheared, promoting particle adhesion. Simultaneously, the separate driving of the front heating roller 102 and the rear heating roller 103 by motor one and motor two 105 can correct for mis-winding of the rubber particles according to their rotational speed. During this operation, some particles that are not sufficiently heated and fall off will be collected and supported by the collection frame 201. When it is necessary to retrieve the particles from the collection frame 201 and re-pour them between the front heating roller 102 and the rear heating roller 103... A three-phase rotating motor 307 drives the rod 304 to rotate. Through the subsequent connecting plate 401, the two synchronous pulleys 301 and 302 rotate synchronously. The synchronous belt 303 transmits information about its surface structure. During this transmission, the connecting block 403 moves, and the universal bearing 404 ensures the flexible adjustment of the side block 402. When the connecting block 403 is positioned at the bottom of the synchronous belt 303 due to the transmission from the synchronous belt 303, the side block 402 and the connecting plate 401 will remain at the bottom of the connecting block 403. When the connecting block 403 is positioned at the top of the synchronous belt 303 due to the transmission from the synchronous belt 303, the universal bearing 404 will still ensure that the connecting plate 401 is at the bottom of the connecting block 403. When the connecting block 403 is positioned at the arc-shaped portions at both ends of the synchronous belt 303 due to the transmission from the synchronous belt 303, the longitudinal relationship between the connecting plate 401 and the side block 402 will still be maintained, facilitating the use of the connecting plate 401. The blade 501 will be fixedly connected to the connecting plate 401 through the fixing member 504 and will move synchronously with the movement of the connecting plate 401 to clean the central position in the collection frame 201. As blades 502 and 503 are gradually compressed by the tilting of the inner side of the collection frame 201 during use, they will move via slider 506 and groove 507, and under the action of spring 508, they will always maintain contact with the inner wall of the collection frame 201 to achieve the best cleaning effect. Finally, the particles in the collection frame 201 will fall into the frame 601 through outlet 202.Once the frame 601 is fully filled, the operator rotates knob 705. Knob 705 will cause the torsion block 607 to adjust its angle. The arc-shaped groove 806 will cooperate with the torsion block 607 to rotate and accommodate it. During the rotation of the torsion block 607, the torsion block 607 is inserted longitudinally into the gap between the support block 805 and the stabilizer 804. As the torsion block 607 continues to rotate, the support block 805 will move backward. At this time, the spring 8010 will retract. The guide rod 809 guides the movement of the plate 807 and the support block 805, and the spring 8010 ensures that the support block 805 returns to its initial position after use, so that the torsion block 607 and the frame 601 can be used again. At this point, the torsion block 607 can slide off between the support block 805 and the stabilizing member 804, allowing the front frame 601 to be disassembled. The operator can then remove the frame 601 and refill the particles between the front heating roller 102 and the rear heating roller 103. Simultaneously, under the action of the second spring 606 and the push plate 602, the particle will remain in contact with and be firmly pushed against the rearmost frame 601. The guide rod 604, in conjunction with the second spring 606 and the push plate 602, provides guidance. The extension of spring 606 will push the bottom frame 601 of the collection frame 201 forward, realizing the progressive advancement of the two frames 601. During the engagement of ratchet plate 702 and ratchet plate 703, it will facilitate the unidirectional movement of ratchet plate 703 on ratchet plate 702, avoiding the situation where ratchet plate 703 and push plate 602 are affected and spring 606 retracts. The progressive advancement of the frame 601 will enable subsequent support and use, extending the support and reinstallation cycle of the frame 601. When the three frames 601 in their initial state need to be installed into the push plate 602, first adjust knob 2 705. The screw 704 rotates, causing ratchet plate 1 702 to descend. Guide rod 2 706 guides the movement of ratchet plate 1 702, thus disengaging ratchet plate 1 702 from ratchet plate 2 703, allowing the operator to move ratchet plate 2 703. Then, pull crossbar 605 to move push plate 602. At this time, spring 2 606 is in a retracted state, inserting frame 601 from the rear of collection frame 201 while maintaining the lateral orientation of torsion block 607. Insert torsion block 607 between top plate 803 and support plate. Support plate supports torsion block 607, while top plate 803 limits its movement. Under the pushing action of spring 606 and push plate 602 on frame 601, stabilizer 804, in conjunction with torsion block 607, limits the movement of frame 601, allowing the frame 601 on the side of stabilizer 804 to receive particles falling from the opening. This structure brings convenience to rubber mixing operations, and unlike existing methods where particles stick to the tray, eliminating the need for operators to first disassemble the tray and then laboriously remove the particles, thus simplifying operations for workers.Meanwhile, the structure, adapted to the setting of component 5, improves the particle cleaning effect, facilitates thorough particle recycling, reduces waste of rubber particles in the workshop, and ensures the amount of rubber compounded and molded.

[0055] This specific embodiment is merely an explanation of the present invention and is not intended to limit the invention. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but such modifications are protected by patent law as long as they are within the scope of the claims of the present invention.

Claims

1. A rubber mixing mill for rubber processing, comprising a transmission assembly (1), characterized in that: The transmission assembly (1) includes a support plate (101), and there are two support plates (101). The two support plates (101) are rotatably connected by bearings to a front heating roller (102) and a rear heating roller (103). The transmission assembly (1) has a receiving assembly (2) on its inner side and a synchronization assembly (3) on one side. The receiving assembly (2) has an adjustment assembly (4) on its top and an adaptation assembly (5) on its bottom. The adjustment assembly (4) includes a connecting plate (401). The receiving assembly (2) has a pushing assembly (6) on its bottom and a longitudinal movement assembly (7) on its bottom. The pushing assembly (6) has a sliding assembly (8) on both sides. Rotary motor one (104) and rotary motor two (105) are fixedly installed on one side of the support plate (101) located at one end of the front heating roller (102) and the rear heating roller (103), respectively. The output end of the rotary motor one (104) is fixedly connected to the front heating roller (102) through a coupling, and the output end of the rotary motor two (105) is fixedly connected to the rear heating roller (103) through a coupling. The receiving component (2) includes a collection frame (201), which is located at the bottom of the front heating roller (102) and the rear heating roller (103). An outlet (202) is provided on one side of the collection frame (201), and a snap-fit ​​block (203) is fixedly installed on both sides of the collection frame (201). A snap-fit ​​groove (204) is provided on one side of the support plate (101) for engaging with the snap-fit ​​block (203). The adaptation component (5) includes blade one (501), blade two (502) and blade three (503). A fixing member one (504) is bolted to the top of blade one (501), and a fixing member two (505) is bolted to the top of blade two (502) and blade three (503). The fixing member one (504) is fixedly connected to the bottom of the connecting plate (401). A slider (506) is fixedly installed on the top of the fixing member two (505). A groove (507) for sliding with the slider (506) is opened at the bottom of the connecting plate (401). A spring one (508) is fixedly installed on one side of the slider (506) and fixedly connected to the inside of the groove (507). The pushing component (6) includes a frame (601), and there are three frames (601). The frame (601) located behind the collection frame (201) has a push plate (602) in contact with the back side. The push plate (602) has a fixing plate (603) on the back side. Both ends of the push plate (602) are fixedly installed with guide rods (604) that pass through to the back side of the fixing plate (603). The surface of the guide rods (604) is fitted with springs (606). The two ends of the springs (606) are fixedly connected to the push plate (602) and the fixing plate (603) respectively. A crossbar (605) is fixedly installed between the two guide rods (604). Both sides of the frame (601) are rotatably connected with torsion blocks (607) through bearings. A knob (608) is fixedly installed on one side of the torsion block (607).

2. The rubber mixing mill for rubber processing according to claim 1, characterized in that: The synchronization component (3) includes a rotating motor three (307). The side of the support plate (101) located at the other end of the front heating roller (102) and the rear heating roller (103) is fixedly connected to the rotating motor three (307). The inner sides of the two support plates (101) are respectively provided with a synchronization wheel one (301) and a synchronization wheel two (302). The two adjacent synchronization wheels one (301) and synchronization wheel two (302) are connected by a synchronization belt (303) for mutual transmission.

3. A rubber mixing mill for rubber processing according to claim 2, characterized in that: Inside the support plate (101) located at the other end of the front heating roller (102) and the rear heating roller (103), there is a rod (304) that is fixedly connected to the synchronous wheel (301) via a bearing. One end of the rod (304) extends through to one side of the support plate (101) and is fixedly connected to the rotating motor (307) via a coupling. Inside the support plate (101) located at one end of the front heating roller (102) and the rear heating roller (103), there is a rod (305) that is fixedly connected to the synchronous wheel (301) via a bearing. On one side of each of the two synchronous wheels (302), there is a rod (306) that is rotatably connected to the inside of the support plate (101).

4. A rubber mixing mill for rubber processing according to claim 1, characterized in that: Side blocks (402) are fixedly installed on both sides of the connecting plate (401). A connecting block (403) is provided on the top of the side block (402) and is fixedly connected to the synchronous belt (303). A universal bearing (404) is fixedly installed on one side of the connecting block (403) and is fixedly connected to the side block (402). A fitting block (405) is fixedly installed on one side of the side block (402) and extends into the support plate (101). A through groove one (406) and a through groove two (407) are respectively opened on one side of the support plate (101) and at the top of the snap-fit ​​groove (204). The through groove one (406) and the through groove two (407) are used in conjunction with the fitting block (405) and the connecting block (403) and are interconnected.

5. A rubber mixing mill for rubber processing according to claim 1, characterized in that: The longitudinal movement assembly (7) includes a base plate (701), which is fixedly connected to the support plate (101). The base plate (701) is located at the bottom of the push plate (602). A ratchet plate one (702) is provided on the top of the base plate (701). A ratchet plate two (703) fixedly connected to the push plate (602) is engaged at the top of the ratchet plate one (702). The bottom of the ratchet plate one (702) is rotatably connected to a through-type support plate via a bearing. A screw (704) extends to the bottom of the base plate (701). The screw (704) and the base plate (701) are threaded together. A knob (705) is fixedly installed at the bottom of the screw (704). Guide rods (706) are provided on both sides of the screw (704) and are fixedly connected to the bottom of the ratchet plate (702). One end of the guide rod (706) extends to the bottom of the base plate (701) and slides between the base plate (701) and the base plate (701).

6. A rubber mixing mill for rubber processing according to claim 1, characterized in that: The slip assembly (8) includes two support blocks (801) that are fixedly connected to the support plate (101) and the fixing plate (603). A support plate (802) and a top plate (803) are fixedly installed on one side of each support block (801). The support plate (802) and the top plate (803) are located at the bottom and top of the torsion block (607), respectively. Stabilizers (804) are fixedly connected to the support blocks (801) on both sides of the frame (601) in front of the collection frame (201). A support block (805) is provided on the rear side of each stabilizer (804). The inner side of the fastener (804) is provided with an arc-shaped groove (806) for rotating with the torsion block (607). One end of the support block (805) is fixedly installed with a plate body one (807). One side of the plate body one (807) is fixedly installed with a plate body two (808) that is fixedly connected to the support plate (802). The rear side of the plate body one (807) is fixedly installed with a guide rod three (809) that extends to the rear side of the plate body two (808). The surface of the guide rod three (809) is fitted with a spring three (8010). The two ends of the spring three (8010) are fixedly connected to the plate body one (807) and the plate body two (808) respectively.

Citation Information

Patent Citations

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