A waste rubber recycling compound production device
By using blocking and auxiliary mechanisms in the rubber mixing unit to control the blocking and cutting of materials within the rotating rollers, the problems of material scorching and hardening agglomeration are solved, achieving more efficient mixing and more uniform rubber production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-29
- Publication Date
- 2026-03-13
AI Technical Summary
During the rubber compounding process, materials are prone to scorching and hardening due to high-temperature heating, which affects the thoroughness of mixing and production efficiency.
By employing blocking and auxiliary mechanisms, and through components such as spring telescopic rods, cutting blades, and insert rods, the material is blocked and cut within the rotating rollers, preventing local stagnation and achieving dynamic exchange and uniform mixing of the material.
It reduces material scorching and hardening, improves the thoroughness of mixing and production efficiency, and enhances the mixing strength and uniformity of materials.
Smart Images

Figure CN120962881B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of recycled rubber production technology, specifically to a production apparatus for recycled rubber compound from waste rubber. Background Technology
[0002] With the rapid development of the rubber industry, the accumulation of large amounts of waste rubber that are difficult to decompose has caused various environmental problems and formed "black pollution". my country is severely lacking in natural rubber and petroleum resources and relies heavily on imports. Therefore, it is urgent to find a more effective way to process it or even turn it into a valuable resource.
[0003] When producing compound rubber, the materials to be produced need to be mixed in an internal mixer for subsequent production. Because the compound rubber has a certain degree of viscosity and agglomeration during internal mixing, when the rotating rollers drive the compound rubber to rotate and shear in the cavity, the compound rubber will clump together as it rotates with the rotating rollers. Due to the small distance between the two rotating rollers, the compound rubber can only be squeezed and sheared by the rotating rollers when it rotates between the two rotating rollers. When the clump of compound rubber rotates to the outer wall of the rotating rollers and contacts the inner wall of the mixing cavity, the outermost part of the compound rubber is easily heated at high temperature for a long time, which can cause some of the compound rubber to scorch and harden and clump, affecting the fullness of the mixing during the compound rubber mixing process, and also affecting the production efficiency and quality of the compound rubber. Summary of the Invention
[0004] The purpose of this invention is to provide a production apparatus for recycled rubber compound from waste rubber to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution:
[0006] This invention relates to a production device for recycled rubber compound from waste rubber, comprising a main body, with two support frames fixedly connected to the top of the main body, and further comprising;
[0007] A blocking mechanism is installed on the top of the main body to block the mixture during mixing.
[0008] The auxiliary mechanism is installed on the side wall of the blocking mechanism to prevent local stagnation of materials during mixing.
[0009] When the main body mixes the materials, the downward movement of the blocking mechanism can block the mixing process. At the same time, the auxiliary mechanism can reduce the occurrence of local stagnation of materials when the blocking mechanism blocks the materials.
[0010] Furthermore, the main body includes:
[0011] The load-bearing component is installed on top of the main body;
[0012] The driver component is installed on the top of the main body;
[0013] The mobile component is installed inside the driver component.
[0014] Furthermore, the blocking mechanism includes two spring-loaded telescopic rods disposed inside the moving component, and the blocking mechanism also includes:
[0015] A sliding assembly is installed on the side wall of the spring telescopic rod;
[0016] The cutting component is installed inside the sliding component;
[0017] Auxiliary components are installed on the side wall of the sliding component.
[0018] Furthermore, the auxiliary mechanism includes a sliding frame and an inclined block disposed inside the drive assembly, and the auxiliary mechanism also includes:
[0019] The push component is installed at the bottom of the sliding frame two;
[0020] The extrusion assembly is mounted on the side wall of the push assembly.
[0021] Furthermore, the load-bearing assembly includes a load-bearing box rotatably connected to the top of the two support frames, and two rotating rollers are rotatably connected inside the load-bearing box, with the two rotating rollers being engaged with each other;
[0022] A hydraulic rod is rotatably connected to the left side of the bearing box, and the end of the hydraulic rod away from the bearing box is rotatably connected to the top of the main body;
[0023] The drive assembly includes a sealed box fixedly connected to the top of the main body, an electric actuator fixedly connected to the top of the sealed box, and the output end of the electric actuator sliding through the interior of the sealed box;
[0024] A spring plate is fixedly connected to the output end of the electric actuator;
[0025] The movable component includes an upper top bolt fixedly connected to the bottom of the spring plate. The upper top bolt is hollow inside. Two guide rods are fixedly connected to the top of the upper top bolt. The ends of the two guide rods away from the upper top bolt are fixedly connected to the top inner wall of the sealing box.
[0026] The bottom of the top bolt has two rectangular grooves and two strip grooves.
[0027] Furthermore, the bottom of the top bolt is provided with several rectangular grooves, which are symmetrically distributed in pairs, and each pair of rectangular grooves is arranged at equal intervals.
[0028] The internal fixed connection of rectangular groove two is a limiting frame, and two obtuse-angled grooves are opened on the inner walls of both the front and back sides of rectangular groove two;
[0029] Two spring telescopic rods are slidably connected to the side wall of the restraint frame;
[0030] The sliding assembly includes a connecting plate fixedly connected to the end of the spring telescopic rod away from the limiting frame, and the connecting plate slides through the interior of the rectangular groove.
[0031] Furthermore, an arc-shaped plate is rotatably connected to the side wall of the connecting plate outside the upper bolt, and two arc-shaped grooves are opened on the top outer wall of the connecting plate;
[0032] The inside of the arc-shaped groove has a sliding connection with a short plate, and the end of the short plate away from the arc-shaped groove is rotatably connected to the bottom side wall of the top bolt;
[0033] The cutting assembly includes sliding frames that are slidably connected to the inner walls of the front and back sides of the curved plate, and two cutting blades are fixedly connected between the two sliding frames.
[0034] A connecting strip is rotatably connected to the side of the sliding frame near the cutting blade.
[0035] Furthermore, the auxiliary component includes an L-plate that is slidably connected between two obtuse-angled slots, and two long rods are fixedly connected to the side of the L-plate near the spring telescopic rod;
[0036] Two long rods are slidably connected to a crossbar at the ends away from the L-plate. The top outer wall of the crossbar is fixedly connected to the bottom of the spring telescopic rod. Several insert rods are fixedly connected to the bottom of the L-plate.
[0037] Furthermore, the sliding frame two is slidably connected to the outer surface of the limiting frame, and two auxiliary springs are fixedly connected to the bottom of the sliding frame two, with the bottom of the two auxiliary springs fixedly connected to the bottom inner wall of the top bolt;
[0038] The pushing component includes two central rods fixedly connected to the bottom of the sliding frame two, and the bottom of the two central rods slides through to the bottom outer wall of the top bolt;
[0039] A tension spring is fixedly connected to the bottom of the center rod, and a triangular block is fixedly connected to the bottom of the two tension springs. Two long slots are opened on the side wall of the triangular block.
[0040] The end of the connecting bar away from the sliding frame is slidably connected inside the long groove.
[0041] Furthermore, four limiting slots are provided on the top of the triangular block;
[0042] The extrusion assembly includes an inclined plate that is slidably connected inside the strip groove. Two linear springs are fixed to the side wall of the inclined plate, and the two linear springs are fixedly connected to the inner wall of the upper top bolt.
[0043] The bottom of the inclined plate is fixedly connected to a long plate, and the bottom of the long plate is rotatably connected to an inclined plate two.
[0044] Two connecting blocks are rotatably connected to the end of the inclined plate away from the long plate, and the connecting blocks are slidably connected inside the limiting groove.
[0045] The present invention has the following beneficial effects:
[0046] 1. This invention, through an auxiliary component, allows the spring telescopic rod to slide downwards, causing two long rods to move downwards synchronously via a crossbar. Since the long rods are fixedly positioned relative to the L-plate, the downward movement of the two long rods causes the L-plate to move downwards, allowing several inserts at the bottom of the L-plate to insert into the material. As the material continues to rotate, these inserts exert a pulling force on it. This causes the agglomerated material to shift between its inner and outer layers under the cutting action of the cutting blade and the pulling force of the inserts. The inner layer of material flows outwards under the pull of the inserts, while the outer layer replenishes the inner layer, creating a dynamic exchange. This reduces the risk of scorching and hardening of the outermost material during subsequent mixing, ensuring thorough mixing while improving the production efficiency and quality of the compound.
[0047] 2. In this invention, the extrusion assembly and the bearing assembly cause the long plate to slide when the two inclined plates are extruded. As the long plate slides, it pushes the arc-shaped plate closer to the rotating roller. At this time, the distance between the arc-shaped plate and the rotating roller is reduced. At the same time, it can also push the material to make it more closely contact the rotating roller, so that it can rotate smoothly with the rotating roller. This reduces the situation where the material is blocked by the arc-shaped plate and restricted by several rods, causing the material to stagnate between the top of the rotating roller and the bottom of the top bolt, making it difficult to rotate smoothly and detach from the roller. This improves the smoothness of material flow and also improves the mixing efficiency and uniformity of the material.
[0048] 3. In this invention, the reciprocating sliding of the insert rod through the supporting component allows the fixing point of the insert rod within the material to continuously change. This variation in the fixing point ensures a stable pulling force from the insert rod on the material, reducing the risk of increased separation between the material and the insert rod during rotation. This prevents the insert rod from effectively pulling the outer layer of the material, or even causing pulling failure. Simultaneously, the periodic pushing of the material towards the rotating roller by the arc-shaped plate increases the stability of the material's grip on the roller, reducing the obstruction of smooth material sliding due to the narrowing distance between them. This enhances the layered and staggered mixing of the material, further improving the smoothness of subsequent material mixing and rotation, and the mixing efficiency during relative rotation.
[0049] 4. In this invention, the cutting component cuts the layered material as the cutting blade slides, dividing the layered material into blocks as it passes through the cutting blade. Due to the material's viscosity, when the material is cut into blocks, the blocks are rolled into the rotating rollers between the two arc-shaped plates and remixed. This reduces the likelihood of the material re-adhering and failing to effectively separate as it passes through the cutting blade. By cutting the material into blocks, the relative rotation of the two rotating rollers further improves the arrangement and mixing strength of the inner and outer layers, reducing the likelihood of re-adhesion after cutting and the resulting shearing by the rollers, thus enhancing the mixing strength of the material.
[0050] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0051] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0052] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0053] Figure 2 This is a schematic diagram of the overall partial cross-sectional structure of the present invention;
[0054] Figure 3 This is a schematic diagram of the main body of the invention;
[0055] Figure 4 This is a partial cross-sectional schematic diagram of the driving component of the present invention;
[0056] Figure 5 This is a schematic diagram of a partial structure of the component driving the present invention;
[0057] Figure 6 This is a schematic diagram of the internal structure of the main body of the invention;
[0058] Figure 7 This is a schematic diagram of the auxiliary components of the present invention;
[0059] Figure 8 This is a bottom view of the sliding component of the present invention;
[0060] Figure 9 For the present invention Figure 8 Enlarged view of point A in the middle;
[0061] Figure 10 This is a schematic diagram of the extrusion assembly of the present invention;
[0062] Figure 11 For the present invention Figure 10 Enlarged view of point B in the middle;
[0063] Figure 12 This is a partial structural diagram of the extrusion assembly of the present invention.
[0064] The attached diagram lists the components represented by each number as follows:
[0065] In the diagram: 1. Main body; 101. Support frame; 11. Bearing assembly; 111. Bearing box; 112. Rotating roller; 113. Hydraulic rod; 12. Drive assembly; 121. Sealing box; 122. Electric actuator; 123. Spring plate; 13. Moving assembly; 131. Top bolt; 132. Rectangular groove one; 133. Rectangular groove two; 134. Limiting frame; 2. Blocking mechanism; 201. Spring telescopic rod; 21. Sliding assembly; 211. Connecting plate; 2 12. Arc plate; 213. Arc groove; 22. Cutting assembly; 221. Sliding frame; 222. Cutting blade; 223. Connecting strip; 23. Auxiliary assembly; 231. Long rod; 232. L-plate; 3. Auxiliary mechanism; 301. Sliding frame two; 302. Inclined block; 31. Pushing assembly; 311. Center rod; 312. Triangular block; 313. Long groove; 32. Extrusion assembly; 321. Inclined plate; 322. Long plate; 323. Inclined plate two. Detailed Implementation
[0066] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0067] Please see Figures 1-12 As shown, the present invention is a waste rubber recycled compound production device, including a main body 1, two support frames 101 fixedly connected to the top of the main body 1, and also including;
[0068] The blocking mechanism 2 is installed on the top of the main body 1 and is used to block the mixture during mixing.
[0069] Auxiliary mechanism 3 is installed on the side wall of blocking mechanism 2 to prevent local stagnation of materials during mixing.
[0070] When the main body 1 mixes the materials, the blocking mechanism 2 can be controlled to move downward to block the materials during the mixing process. At the same time, the auxiliary mechanism 3 can also reduce the occurrence of local stagnation of materials when the blocking mechanism 2 blocks the materials.
[0071] Entity 1 includes:
[0072] Support component 11 is installed on the top of the main body 1;
[0073] Drive component 12 is installed on the top of the main body 1;
[0074] The moving component 13 is installed inside the driving component 12.
[0075] The blocking mechanism 2 includes two spring telescopic rods 201 disposed inside the moving assembly 13, and the blocking mechanism 2 also includes:
[0076] Sliding assembly 21 is installed on the side wall of spring telescopic rod 201;
[0077] Cutting component 22 is installed inside sliding component 21;
[0078] Auxiliary component 23 is installed on the side wall of sliding component 21.
[0079] The auxiliary mechanism 3 includes a sliding frame 301 and an inclined block 302 disposed inside the drive assembly 12. The auxiliary mechanism 3 also includes:
[0080] Push component 31 is installed at the bottom of sliding frame 301;
[0081] The extrusion assembly 32 is mounted on the side wall of the push assembly 31.
[0082] The support assembly 11 includes a support box 111 rotatably connected to the top of two support frames 101. Two rotating rollers 112 are rotatably connected inside the support box 111, and the two rotating rollers 112 are meshed together.
[0083] A hydraulic rod 113 is rotatably connected to the left side of the bearing box 111, and the end of the hydraulic rod 113 away from the bearing box 111 is rotatably connected to the top of the main body 1;
[0084] The drive assembly 12 includes a sealed box 121 fixedly connected to the top of the main body 1. An electric push rod 122 is fixedly connected to the top of the sealed box 121, and the output end of the electric push rod 122 slides through into the interior of the sealed box 121.
[0085] A spring plate 123 is fixedly connected to the output end of the electric actuator 122;
[0086] The moving assembly 13 includes an upper top bolt 131 fixedly connected to the bottom of the spring plate 123. The upper top bolt 131 is hollow inside. Two guide rods are fixedly connected to the top of the upper top bolt 131. The ends of the two guide rods away from the upper top bolt 131 are fixedly connected to the top inner wall of the sealing box 121.
[0087] The bottom of the top bolt 131 has two rectangular grooves 132 and two strip grooves. First, one of the rotating rollers 112 is connected to an external drive motor. At the same time, the bearing box 111 is heated by a heating device. Then, the hydraulic rod 113 is started. When the hydraulic rod 113 is working, it will drive the bearing box 111 to rotate. When the bearing box 111 rotates, the feed port at the top of the bearing box 111 will separate from the sealing box 121.
[0088] The bottom of the top bolt 131 is provided with several rectangular grooves 133, which are symmetrically distributed in pairs, and each pair of rectangular grooves 133 is arranged at equal distances.
[0089] The rectangular groove 133 is internally fixedly connected to a limiting frame 134, and two obtuse-angled grooves are opened on the inner walls of both the front and back sides of the rectangular groove 133.
[0090] Two spring telescopic rods 201 are slidably connected to the side wall of the limiting frame 134;
[0091] The sliding assembly 21 includes a connecting plate 211 fixedly connected to the end of the spring telescopic rod 201 away from the limiting frame 134. The connecting plate 211 slides through the interior of the rectangular groove 132. When the rotating roller 112 drives the clump of material to rotate to the bottom of the top bolt 131, the material will adhere to the bottom of the arc plate 212. At the same time, when the material rotates to the bottom of the top bolt 131, it will also generate an upward pushing force on it.
[0092] An arc-shaped plate 212 is rotatably connected to the side wall of the external connecting plate 211 of the upper bolt 131, and two arc-shaped grooves 213 are opened on the top outer wall of the connecting plate 211.
[0093] The inside of the arc groove 213 is slidably connected to a short plate, and the end of the short plate away from the arc groove 213 is rotatably connected to the bottom side wall of the top bolt 131.
[0094] The cutting assembly 22 includes a sliding frame 221 that is slidably connected to the inner wall of the front and back sides of the arc plate 212, and two cutting blades 222 are fixedly connected between the two sliding frames 221.
[0095] A connecting strip 223 is rotatably connected to the side of the sliding frame 221 near the cutting blade 222.
[0096] The auxiliary component 23 includes an L-plate 232 that is slidably connected between two obtuse-angled slots, and two long rods 231 are fixedly connected to the side of the L-plate 232 near the spring telescopic rod 201;
[0097] Two long rods 231 are slidably connected to a crossbar at the end away from the L-plate 232. The top outer wall of the crossbar is fixedly connected to the bottom of the spring telescopic rod 201. Several insert rods are fixedly connected to the bottom of the L-plate 232. Some material will flow through the cutting blade 222. At this time, the material will be cut by the two cutting blades 222 and stratified, breaking the agglomeration of the material. At the same time, when the spring telescopic rod 201 slides down, the spring telescopic rod 201 will drive the two long rods 231 to move down synchronously through the crossbar.
[0098] The sliding frame 2 301 is slidably connected to the outer surface of the limiting frame 134. Two auxiliary springs are fixedly connected to the bottom of the sliding frame 2 301, and the bottom of the two auxiliary springs is fixedly connected to the bottom inner wall of the top bolt 131.
[0099] The pushing component 31 includes two central rods 311 fixedly connected to the bottom of the sliding frame 301, and the bottom of the two central rods 311 slides through to the bottom outer wall of the top bolt 131;
[0100] A tension spring is fixedly connected to the bottom of the center rod 311, and a triangular block 312 is fixedly connected to the bottom of the two tension springs. Two long slots 313 are opened on the side wall of the triangular block 312.
[0101] Among them, the end of the connecting bar 223 away from the sliding frame 221 is slidably connected to the inside of the long groove 313. When the sliding frame 301 slides down, it will drive the triangular block 312 to move down synchronously through the central rod 311 and the tension spring at the bottom of the central rod 311. Since the inclined plate 321 is not pressed, the long plate 322 will not slide.
[0102] The top of the triangular block 312 has four limiting slots;
[0103] The extrusion assembly 32 includes an inclined plate 321 that is slidably connected inside the strip groove. Two linear springs are fixed to the side wall of the inclined plate 321, and the two linear springs are fixedly connected to the inner wall of the top bolt 131.
[0104] The bottom of the inclined plate 321 is fixedly connected to the long plate 322, and the bottom of the long plate 322 is rotatably connected to the inclined plate 323.
[0105] Two connecting blocks are rotatably connected to the end of the inclined plate 323 away from the long plate 322, and the connecting blocks are slidably connected inside the limiting groove.
[0106] In use, first connect one of the rotating rollers 112 to an external drive motor, and simultaneously heat the carrier box 111 using a heating device. Then, activate the hydraulic rod 113, which will cause the carrier box 111 to rotate. As the carrier box 111 rotates, the inlet at the top of the carrier box 111 will separate from the sealing box 121. Then, the operator places the rubber and other materials to be mixed into the inside of the carrier box 111. Afterward, activate the hydraulic rod 113 again, which will push the carrier box 111 back to its original position. 1. After reset, start the electric push rod 122. When the electric push rod 122 is working, it will push the upper top bolt 131 to slide downward so that it is on top of the two rotating rollers 112. Then, start the external drive motor. When the drive motor is working, it will drive the two rotating rollers 112 to rotate relative to each other. When the two rotating rollers 112 rotate relative to each other, they will stir the material inside the bearing box 111 to mix the material. After the material is mixed, start the hydraulic rod 113 to separate the bearing box 111 from the sealing box 121. Then, the operator will take out the mixed material for subsequent production steps.
[0107] Because the material has agglomeration and a certain degree of adhesion, when the rotating roller 112 drives the material to rotate and mix, the material will clump together and mix with other materials as the rotating roller 112 rotates. When the rotating roller 112 drives the clumped material to the bottom of the upper top bolt 131, the material will adhere to the bottom of the arc plate 212. At the same time, when the material rotates to the bottom of the upper top bolt 131, it will also generate an upward pushing force on it. When the material continues to rotate with the rotating roller 112 after contacting the bottom of the arc plate 212, the material's rotation... The movement causes the curved plate 212 to slide at the bottom of the upper bolt 131. At this time, the two curved plates 212 slide relative to each other. When the curved plate 212 slides, it compresses the spring telescopic rod 201, causing it to retract. Because the bottom of the upper bolt 131 has a certain curvature, the curved plate 212 slides diagonally downwards along the curved surface of the bottom of the upper bolt 131. As the curved plate 212 slides, it causes the spring telescopic rod 201 to retract and slide downwards. When the curved plate 212 slides along the bottom of the upper bolt 131... When the material slides along the curved surface, some of it flows through the cutting blades 222. At this point, the material is cut and stratified by the two cutting blades 222, breaking up material agglomerates. Simultaneously, as the spring telescopic rod 201 slides downwards, it drives the two long rods 231 to move downwards synchronously via the crossbar. Since the long rods 231 are fixedly positioned to the L-plate 232, their downward movement causes the L-plate 232 to move downwards as well, allowing several inserts at the bottom of the L-plate 232 to insert into the material. As the material continues to rotate... Several insert rods can generate a certain pulling force on the material when it rotates. At this time, the agglomerated material can be misaligned between the inner and outer layers under the cutting of the cutting blade 222 and the pulling of the insert rods. This causes the inner layer of material to flow outward under the pulling of the insert rods, while the outer layer of material replenishes inward, forming a dynamic exchange. This can reduce the situation where the outermost material is heated to a high temperature for a long time during subsequent rotation and mixing, which may cause some material to burn and harden and clump. This ensures sufficient mixing while improving the production efficiency and quality of the compound.
[0108] When the spring telescopic rod 201 slides downward, the sliding of the spring telescopic rod 201 will generate a downward squeezing force on the sliding frame 301. When the sliding frame 301 is squeezed, it will slide downward and compress the two auxiliary springs at the bottom. At the same time, when the sliding frame 301 slides down, it will drive the triangular block 312 to move down synchronously through the central rod 311 and the tension spring at the bottom of the central rod 311. Since the inclined plate 321 is not pressed, the long plate 322 will not slide. So when the triangular block 312 moves downward, the inclined plate 323 can slide in the limiting groove at the top of the triangular block 312 through the connecting block during the downward sliding of the triangular block 312. At this time, a certain angle can be formed between the inclined plate 323 and the long plate 322. At the same time, due to the unevenness of the surface of the agglomerated material, when the rotating roller 112 drives the material to rotate, the rotation of the material will first drive several insert rods and L plate 232 to slide towards the triangular block 312. At this time, the L plate 232 can slide obliquely downward in the obtuse angle groove. When L-plate 232 slides diagonally downwards, it drives long rod 231 to slide as well. As long rod 231 slides, it presses diagonally downwards against the side wall of sliding frame 301. When tilting block 302 is pressed, it slides downwards, pressing against two tilting plates 321. This pressing on the two tilting plates 321 causes long plate 322 to slide. As long plate 322 slides, it pushes arc-shaped plate 212 closer to rotating roller 112. At this time, the distance between the arc plate 212 and the rotating roller 112 will be reduced. At the same time, it can push the material to make it contact the rotating roller 112 more closely, so that it can rotate smoothly with the rotating roller 112. This reduces the situation where the material is blocked by the arc plate 212 and restricted by several rods, causing the material to stagnate between the top of the rotating roller 112 and the bottom of the top bolt 131, making it difficult to rotate smoothly and detach from the roller. This improves the smoothness of material flow and also improves the mixing efficiency and uniformity of the material.
[0109] When the long plate 322 pushes the arc plate 212 to reduce the distance between it and the rotating roller 112, the continued rotation of the material will exert a squeezing force on the arc plate 212. When the arc plate 212 is squeezed and pushed by the material, it will push the long plate 322 and the tilting block 302 to reset. When the tilting block 302 resets, it will push the L plate 232 to reset via the long rod 231. When the L plate 232 resets, it will drive several insert rods to slide obliquely upward. Then, when the rotating roller 112 drives the material to continue rotating, the material will again drive the L plate 232 to slide via the insert rods. As the material continues to rotate, the insert rods can slide back and forth, and the distance between the arc plate 212 and the rotating roller 112 can be reduced and reset repeatedly. The reciprocating sliding of the insert rod allows the fixed point of the insert rod within the material to continuously change. By changing the fixed point of the insert rod within the material, it is ensured that the insert rod forms a stable pulling force on the material, reducing the expansion of separation between the material and the insert rod during rotation, which would make it difficult for the insert rod to effectively pull the outer layer of the material, or even cause the pulling to fail. At the same time, the periodic pushing of the material towards the rotating roller 112 by the arc plate 212 ensures increased stability of the material and the rotating roller 112 while reducing the obstruction of smooth material sliding due to the narrowing of the distance between them. This enhances the layered and staggered mixing of the material, further improving the smoothness of subsequent material mixing and rotation, and the mixing efficiency when the material rotates relative to each other.
[0110] When the sliding bracket 301 slides downward and pushes the triangular block 312 downward through the central rod 311, the inclined plate 323 will slide from the top of the triangular block 312 to its edge as the triangular block 312 slides downward. At this time, the inclined plate 323 can form a certain angle between the triangular block 312 and the long plate 322. Then, when the inclined block 302 pushes the two inclined plates 321 and the long plate 322 to slide relative to each other, the relative sliding of the two long plates 322 will be affected by the inclined plate 323 in the triangular block 312. The top two sides of block 312 form an upward pulling force. At the same time, when the arc plate 212 slides along the arc surface of the bottom of the top bolt 131, the sliding of the arc plate 212 will drive the connecting bar 223 through the sliding frame 221 to slide inside the long groove 313. When the material passes through the side wall of the cutting blade 222 and is subjected to the side wall of the cutting blade 222, the triangular block 312 will slide upward under the pulling force of the inclined plate 323. When the triangular block 312 slides upward, it will drive the sliding frame through the connecting bar 223. 221 slides, and when the sliding frame 221 slides, it drives the two cutting blades 222 to slide synchronously. When the cutting blades 222 slide, they cut the layered material after cutting, so that the layered material can be divided into blocks when passing through the cutting blades 222. Since the material has a certain stickiness, when the material is cut into blocks, the blocks will be rolled into the rotating rollers 112 between the two arc plates 212 and remixed. This can reduce the situation where the material re-adhedes when passing through the surface of the cutting blades 222 and being cut by the cutting blades 222, making it difficult to effectively separate into layers. By cutting the material into blocks, the block material can be further improved in terms of the arrangement and mixing strength of the inner and outer layers when it is subjected to the relative rotation of the two rotating rollers 112. This reduces the re-adhesion of the material after cutting, which makes it difficult to form a new mixture when the material is sheared by the two rotating rollers 112, thereby further enhancing the mixing strength of the material.
[0111] When the rotation of the material pushes the arc plate 212 to reset, the triangular block 312 will drive the sliding frame 221 and the cutting blade 222 to move down. When the long rod 231 pushes the tilting block 302 to move down, the tilting block 302 will drive the triangular block 312 to move up through the long plate 322. In this way, the cutting blade 222 can slide up and down and cut the material.
[0112] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.
Claims
1. A waste rubber recycling compound production device, comprising a main body (1), wherein two support frames (101) are fixedly connected to the top of the main body (1), characterized in that, Also includes; A blocking mechanism (2) is installed on the top of the main body (1) for blocking the mixture during mixing; Auxiliary mechanism (3) is installed on the side wall of the blocking mechanism (2) to prevent local stagnation of materials during mixing. When the main body (1) mixes the material, the blocking mechanism (2) can be controlled to move downward to block the material during the mixing process. At the same time, the auxiliary mechanism (3) can also reduce the local stagnation of the material when the blocking mechanism (2) blocks the material. The main body (1) includes: A support component (11) is mounted on top of the main body (1); A drive assembly (12) is mounted on top of the main body (1); A moving component (13) is installed inside the drive component (12); The blocking mechanism (2) includes two spring telescopic rods (201) disposed inside the moving assembly (13), and the blocking mechanism (2) further includes: A sliding assembly (21) is mounted on the side wall of the spring telescopic rod (201); A cutting component (22) is installed inside the sliding component (21); An auxiliary component (23) is mounted on the side wall of the sliding component (21); The auxiliary mechanism (3) includes a sliding frame (301) and an inclined block (302) disposed inside the drive assembly (12), and the auxiliary mechanism (3) further includes: A pushing component (31) is mounted on the bottom of the sliding frame two (301); An extrusion assembly (32) is mounted on the side wall of the push assembly (31); The bearing assembly (11) includes a bearing box (111) rotatably connected to the top of two support frames (101), and two rotating rollers (112) are rotatably connected inside the bearing box (111), and the two rotating rollers (112) are meshed together. A hydraulic rod (113) is rotatably connected to the left side of the bearing box (111), and the end of the hydraulic rod (113) away from the bearing box (111) is rotatably connected to the top of the main body (1); The drive assembly (12) includes a sealed box (121) fixedly connected to the top of the main body (1), and an electric actuator (122) is fixedly connected to the top of the sealed box (121). The output end of the electric actuator (122) slides through into the interior of the sealed box (121). A spring plate (123) is fixedly connected to the output end of the electric actuator (122); The moving component (13) includes an upper top bolt (131) fixedly connected to the bottom of the spring plate (123). The upper top bolt (131) is hollow inside. Two guide rods are fixedly connected to the top of the upper top bolt (131). The ends of the two guide rods away from the upper top bolt (131) are fixedly connected to the top inner wall of the sealing box (121). The bottom of the top bolt (131) has two rectangular grooves (132) and two strip grooves.
2. The waste rubber recycling compound production device according to claim 1, characterized in that: The bottom of the top bolt (131) is provided with a number of rectangular grooves (133), and the rectangular grooves (133) are symmetrically distributed in pairs, with each pair of rectangular grooves (133) arranged at equal distances. The rectangular groove 2 (133) is internally fixedly connected to a limiting frame (134), and two obtuse-angled grooves are opened on the inner walls of the front and back sides of the rectangular groove 2 (133). The two spring telescopic rods (201) are slidably connected to the side wall of the limiting frame (134); The sliding assembly (21) includes a connecting plate (211) fixedly connected to one end of the spring telescopic rod (201) away from the limiting frame (134), the connecting plate (211) sliding through the interior of the rectangular groove (132).
3. The waste rubber recycling compound production device according to claim 2, characterized in that: An arc-shaped plate (212) is rotatably connected to the side wall of the connecting plate (211) located outside the top bolt (131), and two arc-shaped grooves (213) are opened on the top outer wall of the connecting plate (211). The inside of the arc groove (213) is slidably connected to a short plate, and the end of the short plate away from the arc groove (213) is rotatably connected to the bottom side wall of the top bolt (131); The cutting assembly (22) includes a sliding frame (221) slidably connected to the inner wall of the front and back sides of the arc plate (212), and two cutting blades (222) are fixedly connected between the two sliding frames (221). The sliding frame (221) is rotatably connected to a connecting strip (223) on the side near the cutting blade (222).
4. The waste rubber recycling compound production device according to claim 3, characterized in that: The auxiliary component (23) includes an L-plate (232) slidably connected between the two obtuse-angled slots, and two long rods (231) are fixedly connected to the side of the L-plate (232) near the spring telescopic rod (201). Two long rods (231) are slidably connected to a crossbar at one end away from the L plate (232). The top outer wall of the crossbar is fixedly connected to the bottom of the spring telescopic rod (201). Several insert rods are fixedly connected to the bottom of the L plate (232).
5. The waste rubber recycling compound production device according to claim 4, characterized in that: The sliding frame two (301) is slidably connected to the outer surface of the limiting frame (134). Two auxiliary springs are fixedly connected to the bottom of the sliding frame two (301), and the bottom of the two auxiliary springs is fixedly connected to the bottom inner wall of the top bolt (131). The pushing assembly (31) includes two central rods (311) fixedly connected to the bottom of the sliding frame (301), and the bottom of the two central rods (311) slides through to the bottom outer wall of the top bolt (131); The bottom of the central rod (311) is fixedly connected to a tension spring, and the bottom of the two tension springs is fixedly connected to a triangular block (312). The side wall of the triangular block (312) has two long slots (313). The end of the connecting bar (223) away from the sliding frame (221) is slidably connected to the inside of the long groove (313).
6. The waste rubber recycling compound production device according to claim 5, characterized in that: The top of the triangular block (312) has four limiting slots; The extrusion assembly (32) includes an inclined plate (321) slidably connected inside the strip groove. Two linear springs are fixedly connected to the side wall of the inclined plate (321), and the two linear springs are fixedly connected to the inner wall of the top bolt (131). The bottom of the inclined plate (321) is fixedly connected to a long plate (322), and the bottom of the long plate (322) is rotatably connected to an inclined plate two (323). Two connecting blocks are rotatably connected to the end of the inclined plate 2 (323) away from the long plate (322), and the connecting blocks are slidably connected inside the limiting groove.
Citation Information
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