Tire pyrolytic carbon black granulation equipment
The tire pyrolysis carbon black granulation device addresses issues of loose particles and clogging by using a vibration and adjustment mechanism to compact and control particle size, improving granulation efficiency.
Patent Information
- Application Number
- CN202510532553.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2025-07-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing granulation equipment, the powdered pyrolysis carbon black is soft and causes loose particles, and the carbon black particles are prone to stuck in the granular tank and difficult to fall, affecting secondary granulation.
The vibration assembly and magnetic adjustment mechanism driven by three-section telescopic rod are used to adjust the particle groove volume through vibration and magnetic force to ensure that the carbon black particles are strong and adjustable in size.
The problem of loosening and stuck in the particle tank of carbon black particles is effectively avoided, the firmness and adjustable size of carbon black particles are achieved, and the granulation efficiency is improved.
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Figure CN120305886A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of tire processing, and particularly relates to a granulating device for tire pyrolysis carbon black. Background Art
[0002] With the rapid development of the transportation industry and private cars, the continuous increase in waste tires, long-term open-air stacking occupies a large amount of land resources, and cannot be naturally degraded, is prone to breeding germs, and causes fires. It is internationally recognized as hazardous waste and is called "black pollution". Therefore, recycling waste tires not only saves a large amount of resources but also has many benefits for preventing environmental pollution. The usual treatment method for recycling waste tires is to first cut the bead of the whole tire, then crush the tire, and then make the crushed pieces into rubber powder, reclaimed rubber or use them for pyrolysis; however, the carbon black powder after pyrolysis needs to use a granulating device to convert the carbon black powder into granular form for use.
[0003] In current granulating devices, usually before granulating the powdered pyrolysis carbon black, the powdered carbon black is relatively soft, which will cause the carbon black particles to be lacking in material and result in the phenomenon of loose carbon black particles. When granulating the powdered pyrolysis carbon black, generally a customized particle groove is used for granulation, and the size of the carbon black particles cannot be changed. After granulating the powdered pyrolysis carbon black, the carbon black particles are easy to get stuck in the particle groove, and then the carbon black particles are not easy to fall off in the particle groove, affecting secondary granulation in the particle groove and other problems. Summary of the Invention
[0004] The purpose of the present invention is to provide a granulating device for tire pyrolysis carbon black, aiming to solve the problems in the prior art that usually before granulating the powdered pyrolysis carbon black, the powdered carbon black is relatively soft, which will cause the carbon black particles to be lacking in material and result in the phenomenon of loose carbon black particles. When granulating the powdered pyrolysis carbon black, generally a customized particle groove is used for granulation, and the size of the carbon black particles cannot be changed. After granulating the powdered pyrolysis carbon black, the carbon black particles are easy to get stuck in the particle groove, and then the carbon black particles are not easy to fall off in the particle groove, affecting secondary granulation in the particle groove and other problems.
[0005] To achieve the above purpose, the present invention provides the following technical solutions: A granulating device for tire pyrolysis carbon black, including a base, three-section telescopic rods are arranged at the bottom of the base, a free end of the three-section telescopic rods is fixedly connected with a driving cylinder, a rack is fixedly connected to one side of the driving cylinder, the other end of the rack is fixedly connected with a driven cylinder, and a vibration assembly is arranged on the top of the base; The vibration assembly includes a vibration base. A plurality of limiting columns are fixedly connected to the top of the vibration base. A roller substrate is slidably connected to the surface of the limiting columns. Two springs are sleeved on each limiting column, and the springs are located on the upper and lower sides of the roller substrate. A support shaft is fixedly connected to the inner side of the vibration base. A vibration gear is movably connected to the support shaft. Knocking wheels are fixedly connected to both ends of the vibration gear. The vibration gear meshes with a rack; A roller support plate is fixedly connected to the roller substrate. A roller assembly is movably connected to the inside of the roller support plate through a bearing; The roller assembly includes two roller bodies. A plurality of particle grooves are formed on the surface of the roller body. A plug rod is inserted into the roller body. A push handle is arranged at the end of the plug rod; A telescopic column is slidably connected to the inside of both the driving roller and the driven roller. A strip-shaped plate is fixedly connected to the top end of the telescopic column. Two adjusting shafts are fixedly connected to the inner side of the strip-shaped plate. The adjusting shaft includes a large-diameter shaft, a medium-diameter shaft, and a small-diameter shaft.
[0006] Preferably, the push handle is slidably connected to the inside of the particle groove. A female magnetic ring is embedded in the inner wall of the particle groove. A male magnetic ring is embedded in the inside of the push handle. The female magnetic ring and the male magnetic ring are magnetically connected.
[0007] Preferably, the adjusting shaft penetrates through the inside of the roller body, and the axis line of the adjusting shaft deviates from the axis line of the roller body.
[0008] Preferably, the number of the bases is two. A fixing plate is fixedly connected to one side of one of the bases. The fixing plate is fixedly installed with a three-section telescopic rod. A circular fastener is fixedly installed at the bottom of the base through a bolt. The three-section telescopic rod is installed inside the circular fastener.
[0009] Preferably, driven gears are fixedly installed at both ends of the two roller bodies respectively. The driven gears synchronously rotate the two roller bodies. The particle grooves on one of the roller bodies correspond to the particle grooves on the other roller body.
[0010] Preferably, the number of the roller support plates is two. A motor support plate is fixedly connected to one of the roller support plates. A servo motor is fixedly connected to one side surface of the motor support plate. A main gear is fixedly connected to the output end of the servo motor. The number of the driven gears is four. Two of the driven gears are in a group. The number of each group of driven gears is two. One of the driven gears meshes with the main gear.
[0011] Preferably, a plurality of the particle grooves are arranged in an annular array with the axis line of the drum body. The particle grooves are adapted to the push handle. A ball is arranged at the end of the insertion rod. The insertion rod drives the push handle to move in the particle groove, and the volume of the particle groove is changed by the moving amount of the push handle.
[0012] Preferably, two optical rods are fixedly connected to the strip-shaped plate. The optical rods penetrate through the edge of the drum support plate, and the stability of the adjusting shaft is increased through the optical rods.
[0013] Preferably, a support frame is fixedly connected to the base. The top of the support frame is fixedly connected with a feeding port through a cylinder. There is a gap between the feeding port and the two drum bodies.
[0014] Preferably, a discharge port is fixedly connected to the bottom of the support frame through a fixing strip. There is a gap between the discharge port and the two drum bodies.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. The free end of the three-stage telescopic rod of the present invention reciprocates and stretches. The active cylinder drives the rack to move, and the rack drives the vibration gear and the knocking wheel to rotate. Then the knocking wheel continuously knocks on the drum base plate. With the use of the spring, the vibration amplitude of the drum base plate and the drum support plate is generated, and then the drum body of the drum assembly generates vibration. The dissolved carbon black on the drum body is compacted by vibration, ensuring the firmness of the pyrolytic carbon black and avoiding the lack of material or looseness of the carbon black granules.
[0016] 2. When the free end of the three-stage telescopic rod of the present invention stretches and retracts, the active cylinder drives the telescopic column to move, and the telescopic column drives the strip-shaped plate, the adjusting shaft and the optical rod to move synchronously. When the two adjusting shafts move synchronously, the large-diameter shaft, the medium-diameter shaft and the small-diameter shaft are respectively in contact with the insertion rod. Therefore, the adjusting shaft has three different diameter segments. Thus, the insertion rod drives the push handle to move in the particle groove, and then the adjusting shaft can change the volume of the particle groove. Therefore, the device is capable of producing carbon black granules of different sizes.
[0017] 3. After the drum body of the present invention extrudes and granulates the pyrolytic carbon black, the carbon black granules are easily caught in the particle groove. At this time, the free end of the three-stage telescopic rod is started to reciprocate and stretch. The drum body vibrates through the rack. The carbon black granules caught in the particle groove can be shaken off by vibration, avoiding the carbon black granules being caught in the particle groove and making the carbon black granules easy to fall off.
[0018] 4. When the insertion rod rotates around the axis of the drum body, the magnetic force between the female magnetic ring and the male magnetic ring attracts each other, so that the ball on the insertion rod is always in contact with the adjusting shaft. When the insertion rod rotates and approaches the axis of symmetry, the insertion rod drives the push handle to move inward in the particle groove, increasing the volume of the particle groove. When the insertion rod rotates and moves away from the axis of symmetry, the insertion rod drives the push handle to move outward in the particle groove, reducing the volume of the particle groove. Furthermore, as the volume of the particle groove decreases, the outward movement amount of the push handle in the particle groove increases. Therefore, the carbon black particles in the particle groove are ejected, further avoiding the phenomenon that the carbon black particles are not easy to fall off. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The drawings are used to provide a further understanding of the present invention, and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention, and do not constitute a limitation to the present invention. In the drawings: Figure 1 is one of the three-dimensional structure schematic diagrams of the present invention; Figure 2 is the second three-dimensional structure schematic diagram of the present invention; Figure 3 is in the present invention Figure 2 the enlarged structure schematic diagram at A; Figure 4 is the third three-dimensional structure schematic diagram of the present invention; Figure 5 is the first three-dimensional sectional structure schematic diagram of the present invention; Figure 6 is in the present invention Figure 5 the enlarged structure schematic diagram at B; Figure 7 is the second three-dimensional sectional structure schematic diagram of the present invention; Figure 8 is the structure schematic diagram of the drum body and the particle groove in the present invention; Figure 9 is the sectional symmetry structure schematic diagram of the drum body in the present invention; Figure 10 is the structure schematic diagram of the insertion rod and the ball in the present invention; Figure 11 is in the present invention Figure 9 the enlarged structure schematic diagram at C; Figure 12 is the structure schematic diagram of the three-section telescopic rod, the adjusting shaft and the optical rod in the present invention.
[0020] In the figure: 1, base; 2, discharge port; 3, three-section telescopic rod; 4, active cylinder; 5, rack; 6, driven cylinder; 7, vibration assembly; 701, vibration base; 702, limit column; 703, drum base plate; 704, spring; 705, support shaft; 706, vibration gear; 707, knocking wheel; 708, drum support plate; 8, drum assembly; 801, drum body; 802, particle slot; 803, insertion rod; 804, push rod Handle; 805, female magnetic ring; 806, male magnetic ring; 807, ball; 9, telescopic column; 10, strip plate; 11, adjusting shaft; 1101, large diameter shaft; 1102, medium diameter shaft; 1103, small diameter shaft; 12, fixing plate; 13, circular lock; 14, slave gear; 15, motor support plate; 16, servo motor; 17, main gear; 18, bare rod; 19, support frame; 20, cylinder; 21, feeding port; 22, fixing strip. DETAILED DESCRIPTION
[0021] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0022] Example The present invention provides the following technical solutions (see Figures 1-12 ): A tire pyrolysis carbon black granulation device comprises a base 1. A three-section telescopic rod 3 is arranged at the bottom of the base 1. The free end of the three-section telescopic rod 3 is fixedly connected to a driving cylinder 4. A rack 5 is fixedly connected to one side of the driving cylinder 4. The other end of the rack 5 is fixedly connected to a driven cylinder 6. A vibration component 7 is arranged on the top of the base 1.
[0023] More specifically, when the free end of the three-section telescopic rod 3 is extended and retracted, the driving cylinder 4 is driven to move, and the driving cylinder 4 drives the rack 5 and the driven cylinder 6 to move synchronously.
[0024] See also Figure 5 and Figure 6, the vibration assembly 7 includes a vibration base 701. A plurality of limit posts 702 are fixedly connected to the top of the vibration base 701. A roller substrate 703 is slidably connected to the surface of the limit posts 702. Two springs 704 are sleeved on each limit post 702. The springs 704 are located on the upper and lower surfaces of the roller substrate 703. A support shaft 705 is fixedly connected to the inner side of the vibration base 701. A vibration gear 706 is movably connected to the support shaft 705. Knocking wheels 707 are fixedly connected to both ends of the vibration gear 706. The vibration gear 706 meshes with the rack 5; a roller support plate 708 is fixedly connected to the roller substrate 703. A roller assembly 8 is movably connected to the inside of the roller support plate 708 through a bearing.
[0025] More specifically, the free end of the three-section telescopic rod 3 is started to reciprocally expand and contract, driving the rack 5 to move the driving cylinder 4. The rack 5 drives the vibration gear 706 to rotate. The vibration gear 706 drives the knocking wheel 707 to rotate. Then, the knocking wheel 707 continuously knocks on the roller substrate 703. Coupled with the use of the spring 704, the vibration amplitudes of the roller substrate 703 and the roller support plate 708 are generated, and then the roller body 801 of the roller assembly 8 generates vibration. The dissolved carbon black on the roller body 801 is compacted by vibration, ensuring the firmness of the pyrolytic carbon black and avoiding the lack of carbon black particles or looseness.
[0026] Refer to Figure 7 、 Figure 8 、 Figure 9 、 Figure 10 and Figure 11 , the roller assembly 8 includes two roller bodies 801. A number of particle grooves 802 are formed on the surface of the roller body 801. A plug rod 803 is inserted into the roller body 801. A push handle 804 is arranged at the end of the plug rod 803. A number of particle grooves 802 are arranged in a circular array with the axis of the roller body 801 as the center. The particle grooves 802 are adapted to the push handle 804. A ball 807 is arranged at the end of the plug rod 803. The plug rod 803 drives the push handle 804 to move in the particle grooves 802. The volume of the particle grooves 802 is changed by the moving amount of the push handle 804. The push handle 804 is slidably connected to the inside of the particle grooves 802. A female magnetic ring 805 is embedded on the inner wall of the particle grooves 802. A male magnetic ring 806 is embedded in the push handle 804. The female magnetic ring 805 is magnetically connected to the male magnetic ring 806.
[0027] More specifically, when the free end of the three-section telescopic rod 3 expands and contracts, the active cylinder 4 drives the telescopic column 9 to move, and the telescopic column 9 drives the strip plate 10, the adjusting shaft 11 and the optical rod 18 to move synchronously. When the two adjusting shafts 11 move synchronously, the large-diameter shaft 1101, the medium-diameter shaft 1102 and the small-diameter shaft 1103 are respectively in contact with the insertion rod 803. Then the adjusting shaft 11 has three segments with different diameters. Therefore, the insertion rod 803 drives the push handle 804 to move in the particle groove 802, and further the adjusting shaft 11 can change the volume of the particle groove 802. So this device can produce carbon black particles of different sizes.
[0028] Refer to Figure 1 、 Figure 9 and Figure 12 As shown in, a telescopic column 9 is slidably connected inside both the active cylinder 4 and the driven cylinder 6. The top end of the telescopic column 9 is fixedly connected with a strip plate 10. Two adjusting shafts 11 are fixedly connected to the inner side of the strip plate 10. The adjusting shaft 11 includes a large-diameter shaft 1101, a medium-diameter shaft 1102 and a small-diameter shaft 1103. The adjusting shaft 11 penetrates through the inside of the drum main body 801, and the axis line of the adjusting shaft 11 deviates from the axis line of the drum main body 801.
[0029] More specifically, as known from the above, when the drum main body 801 vibrates, the carbon black particles stuck in the particle groove 802 can be shaken off by vibration, avoiding the problem that the carbon black particles are not easy to fall off.
[0030] When the two drum main bodies 801 rotate synchronously, since the axis line of the adjusting shaft 11 deviates from the axis line of the drum main body 801, the two adjusting shafts 11 are respectively away from the symmetry line of the two drum main bodies 801 (as shown in Figure 9 , F is the symmetry line). The number of the insertion rods 803 is several, and several insertion rods 803 are annularly arranged along the axis line of the drum main body 801. When the insertion rod 803 rotates around the axis line of the drum main body 801, through the magnetic attraction of the female magnetic ring 805 and the male magnetic ring 806, the ball 807 on the insertion rod 803 is always in contact with the adjusting shaft 11. When the insertion rod 803 rotates and approaches the axis of symmetry, at this time the insertion rod 803 drives the push handle 804 to move inward in the particle groove 802, increasing the volume of the particle groove 802. When the insertion rod 803 rotates and moves away from the axis of symmetry, at this time the insertion rod 803 drives the push handle 804 to move outward in the particle groove 802, reducing the volume of the particle groove 802. Further, as the volume of the particle groove 802 decreases, the outward movement amount of the push handle 804 in the particle groove 802 increases. Therefore, the carbon black particles in the particle groove 802 are ejected, further avoiding the occurrence of the phenomenon that the carbon black particles are not easy to fall off.
[0031] Refer to Figure 1 and Figure 4There are two bases 1, one side of which is fixedly connected with a fixing plate 12, the fixing plate 12 is fixedly installed with a three-section telescopic rod 3, and a circular lock 13 is fixedly installed at the bottom of the base 1 by bolts, and the three-section telescopic rod 3 is installed inside the circular lock 13.
[0032] More specifically, the circular lock 13 is provided to enhance the stability of the three-section telescopic rod 3 in the horizontal direction, and the fixing plate 12 is provided to enhance the reverse thrust of the three-section telescopic rod 3 .
[0033] See also Figure 2 , Figure 3 and Figure 8 , slave gears 14 are fixedly installed at both ends of the two roller bodies 801, and the slave gears 14 rotate the two roller bodies 801 synchronously, and the particle groove 802 on one roller body 801 corresponds to the particle groove 802 on the other roller body 801; the number of roller support plates 708 is two, and a motor support plate 15 is fixedly connected to one roller support plate 708, and a servo motor 16 is fixedly connected to one side of the motor support plate 15, and a main gear 17 is fixedly connected to the output end of the servo motor 16, and the number of slave gears 14 is four, two of which are a group, and the number of slave gears 14 in each group is two, and one of the slave gears 14 is meshed with the main gear 17.
[0034] More specifically, when the servo motor 16 is started, the output end of the servo motor 16 drives the main gear 17 to rotate, the main gear 17 drives one of the slave gears 14 to rotate, and one of the slave gears 14 drives the other three slave gears 14 to rotate, so that the four slave gears 14 rotate synchronously at the same speed, and then the two roller bodies 801 rotate synchronously, so that the particle grooves 802 on the two roller bodies 801 can be aligned and relative to each other.
[0035] See also Figure 7 and Figure 12 Two polished rods 18 are fixedly connected to the strip plate 10 , and the polished rods 18 pass through the edge of the roller support plate 708 , so as to increase the stability of the adjustment shaft 11 .
[0036] More specifically, when the strip plate 10 moves, the strip plate 10 drives the polished rod 18 to move stably in the roller support plate 708 , thereby increasing the stability of the adjustment shaft 11 .
[0037] See also Figure 7 A support frame 19 is fixedly connected to the base 1, and a feeding port 21 is fixedly connected to the top of the support frame 19 through a cylinder 20, and a gap is left between the feeding port 21 and the two roller bodies 801; a discharge port 2 is fixedly connected to the bottom of the support frame 19 through a fixing bar 22, and a gap is left between the discharge port 2 and the two roller bodies 801.
[0038] More specifically, through the setting of the feeding port 21, the feeding port 21 can be used for feeding. Through the setting of the discharging port 2, the discharging port 2 can be used for discharging. Through the setting of the gap, when the drum main body 801 vibrates, the drum main body 801 generates an up-and-down vibration amplitude, and the gap avoids the collision of the drum main body 801.
[0039] The present invention provides a tire pyrolysis carbon black granulation device. The working principle and usage process of the present invention are as follows: Usually, before the drum main body 801 extrudes pyrolysis carbon black into pellets, the pyrolysis carbon black is usually relatively soft, which may cause lack of material in the pellets and result in loose pellets. The free end of the three-section telescopic rod 3 reciprocates to drive the rack 5 of the driving cylinder 4 to move, and the rack 5 drives the vibrating gear 706 and the knocking wheel 707 to rotate. Then, the knocking wheel 707 continuously knocks on the drum substrate 703. With the use of the spring 704, the drum substrate 703 and the drum support plate 708 generate a vibration amplitude, and further the drum main body 801 of the drum assembly 8 generates vibration. By vibrating, the dissolved carbon black on the drum main body 801 is compacted, ensuring the firmness of the pyrolysis carbon black and avoiding lack of material or looseness of the carbon black pellets.
[0040] Usually, when the drum main body 801 extrudes pyrolysis carbon black into pellets, a customized particle groove is generally used for granulation, and the size of the carbon black particles cannot be changed. When the free end of the three-section telescopic rod 3 expands and contracts, the driving cylinder 4 drives the telescopic column 9 to move, and the telescopic column 9 drives the strip plate 10, the adjusting shaft 11 and the optical rod 18 to move synchronously. When the two adjusting shafts 11 move synchronously, the large-diameter shaft 1101, the medium-diameter shaft 1102 and the small-diameter shaft 1103 respectively contact the insertion rod 803. Therefore, the adjusting shaft 11 has three different diameter segments. Thus, the insertion rod 803 drives the push handle 804 to move in the particle groove 802, and further the adjusting shaft 11 can change the volume of the particle groove 802. Therefore, the device can produce carbon black particles of different sizes.
[0041] Usually, after the drum main body 801 extrudes pyrolysis carbon black into pellets, the carbon black pellets are likely to get stuck in the particle groove 802, and then the carbon black pellets are not easy to fall off in the particle groove 802, affecting the secondary granulation in the particle groove 802. As known from the above, when the drum main body 801 vibrates, the carbon black pellets stuck in the particle groove 802 can be shaken off by vibration, avoiding the difficulty of the carbon black pellets falling off.
[0042] Generally, after the roller main body 801 extrudes and granulates the pyrolytic carbon black, when the roller main body 801 vibrates, if the carbon black particles are not easy to fall off in the particle groove 802, it will further affect the secondary granulation of the particle groove 802; when the two roller main bodies 801 rotate synchronously, since the axis line of the adjusting shaft 11 deviates from the axis line of the roller main body 801, the two adjusting shafts 11 are respectively far from the symmetry line of the two roller main bodies 801 (as Figure 9 shown, F is the symmetry line), the number of the inserting rods 803 is several, and several inserting rods 803 are annularly arrayed along the axis line of the roller main body 801. When the inserting rod 803 rotates around the axis line of the roller main body 801, through the magnetic attraction of the female magnetic ring 805 and the male magnetic ring 806, the ball 807 on the inserting rod 803 is always in contact with the adjusting shaft 11. When the inserting rod 803 rotates and approaches the axis symmetry line, at this time the inserting rod 803 drives the push handle 804 to move inward in the particle groove 802, so that the volume of the particle groove 802 increases. When the inserting rod 803 rotates and moves away from the axis symmetry line, at this time the inserting rod 803 drives the push handle 804 to move outward in the particle groove 802, so that the volume of the particle groove 802 decreases. Furthermore, as the volume of the particle groove 802 decreases, the outward movement amount of the push handle 804 in the particle groove 802 increases. Therefore, the carbon black particles in the particle groove 802 are ejected, further avoiding the phenomenon that the carbon black particles are not easy to fall off.
[0043] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A tire pyrolysis carbon black granulation device, comprising a base (1), characterized in that: The bottom of the base (1) is provided with a three-stage telescopic rod (3). The free end of the three-stage telescopic rod (3) is fixedly connected to a driving cylinder (4). One side of the driving cylinder (4) is fixedly connected to a rack (5). The other end of the rack (5) is fixedly connected to a driven cylinder (6). The top of the base (1) is provided with a vibration assembly (7). The vibration assembly (7) includes a vibration base (701). The top of the vibration base (701) is fixedly connected to a plurality of limiting columns (702). The surface of the limiting columns (702) is slidably connected to a roller substrate (703). Two springs (704) are sleeved on each limiting column (702). The springs (704) are located on the upper and lower sides of the roller substrate (703). The inner side of the vibration base (701) is fixedly connected to a support shaft (705). A vibration gear (706) is movably connected to the support shaft (705). The two ends of the vibration gear (706) are fixedly connected to percussion wheels (707). The vibration gear (706) meshes with the rack (5). A roller support plate (708) is fixedly connected to the roller substrate (703). A roller assembly (8) is movably connected to the inside of the roller support plate (708) through a bearing. The roller assembly (8) includes two roller bodies (801). A number of particle grooves (802) are formed on the surface of the roller body (801). A plug rod (803) is inserted into the roller body (801). A push handle (804) is arranged at the end of the plug rod (803). A telescopic column (9) is slidably connected to the inside of both the driving cylinder (4) and the driven cylinder (6). The top end of the telescopic column (9) is fixedly connected to a strip plate (10). Two adjusting shafts (11) are fixedly connected to the inner side of the strip plate (10). The adjusting shaft (11) includes a large-diameter shaft (1101), a medium-diameter shaft (1102), and a small-diameter shaft (1103).
2. The granulation equipment for tire pyrolysis carbon black according to claim 1, wherein: The push handle (804) is slidably connected to the inside of the particle groove (802). A female magnetic ring (805) is embedded in the inner wall of the particle groove (802). A male magnetic ring (806) is embedded in the push handle (804). The female magnetic ring (805) is magnetically connected to the male magnetic ring (806).
3. A tire pyrolysis carbon black granulation device according to claim 1, characterized in that: The adjusting shaft (11) penetrates through the inside of the roller body (801). The axis of the adjusting shaft (11) deviates from the axis of the roller body (801).
4. A tire pyrolysis carbon black granulation device according to claim 1, characterized in that: The number of the bases (1) is two. One side of one of the bases (1) is fixedly connected to a fixing plate (12). The fixing plate (12) is fixedly installed with the three-stage telescopic rod (3). The bottom of the base (1) is fixedly installed with a circular fastener (13) through bolts. The three-stage telescopic rod (3) is installed inside the circular fastener (13).
5. A tire pyrolysis carbon black granulation device according to claim 1, characterized in that: At both ends of the two drum bodies (801), driven gears (14) are fixedly installed respectively. The driven gears (14) synchronously rotate the two drum bodies (801). The particle grooves (802) on one of the drum bodies (801) correspond to the particle grooves (802) on the other drum body (801).
6. A tire pyrolysis carbon black granulation device according to claim 5, characterized in that: The number of the drum support plates (708) is two. A motor support plate (15) is fixedly connected to one of the drum support plates (708). A servo motor (16) is fixedly connected to one side surface of the motor support plate (15). The output end of the servo motor (16) is fixedly connected to a main gear (17). The number of the driven gears (14) is four. Two of the driven gears (14) form a group. The number of each group of driven gears (14) is two. One of the driven gears (14) meshes with the main gear (17).
7. A tire pyrolysis carbon black granulation device according to claim 1, characterized in that: A plurality of the particle grooves (802) are annularly arrayed around the axis line of the drum body (801). The particle grooves (802) are adapted to the push handles (804). A ball (807) is arranged at the end of the insertion rod (803). The insertion rod (803) drives the push handle (804) to move in the particle groove (802). The volume of the particle groove (802) is changed by the moving amount of the push handle (804).
8. A tire pyrolysis carbon black granulation device according to claim 1, characterized in that: Two optical rods (18) are fixedly connected to the strip plate (10). The optical rods (18) penetrate through the edges of the drum support plates (708), and the stability of the adjusting shaft (11) is increased by the optical rods (18).
9. A tire pyrolysis carbon black granulation device according to claim 1, characterized in that: A support frame (19) is fixedly connected to the base (1). The top of the support frame (19) is fixedly connected to a feeding port (21) through a cylinder (20). A gap is left between the feeding port (21) and the two drum bodies (801).
10. A tire pyrolysis carbon black granulation device according to claim 9, characterized in that: The bottom of the support frame (19) is fixedly connected to a discharge port (2) through a fixing strip (22). A gap is left between the discharge port (2) and the two drum bodies (801).