Intelligent temperature control type twin-screw extrusion granulator
By using intelligent temperature control system and hydraulic arc valve in the twin-screw extrusion granulator to achieve the transmission operation of the rotating rod, the problem of frequent motor replacement of existing equipment is solved, and the equipment is efficient, continuous operation and cost reduction is achieved.
Patent Information
- Application Number
- CN202510477813.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-06-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing twin-screw extrusion granulators need to frequently replace different motor transmissions during use, resulting in discontinuous equipment operation and increased processing costs.
The intelligent temperature-controlled twin-screw extrusion granulator is adopted to achieve effective transmission operation of the lower rotating rod and the upper rotating rod through the hydraulic arc valve on the transverse compartment. The temperature-controlled screw extrusion mechanism and molded pelletizing components are driven by the driving gear and helical gear to drive the temperature-controlled screw extrusion mechanism and the molded pelletizing components for transmission operation, so that the single group of motors can continue to operate.
It realizes efficient processing and continuous operation of the equipment, reduces the cost of use, and improves the overall processing efficiency of the equipment.
Smart Images

Figure CN120206668A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of granulators, especially intelligent temperature-controlled twin-screw extrusion granulators. Background Art
[0002] Twin-screw granulators are devices used for the processing of filling, blending, modification, addition, chlorination, polypropylene, and superabsorbent resins in rubber and plastics and engineering resins. The main motor voltage of the twin-screw granulator is 380V, the frequency range is 0 - 50HZ, and the screw rotation speed is 0 - 130r / min. It is mainly used for the processing of filling, blending, modification, addition, chlorination, polypropylene, and superabsorbent resins in rubber and plastics and engineering resins. Materials enter through the feeding port and, under the action of the rotating screw, are kneaded into a ball shape and roll forward along the screw groove. Due to the shearing, compression, and stirring actions of the screw, the materials are further mixed and plasticized, the temperature and pressure gradually increase, presenting a viscous flow state, and passing through the die head at a certain pressure and temperature, finally obtaining products of the desired shape.
[0003] When existing twin-screw extrusion granulators are in use, for example, a single-screw extrusion granulator proposed in application number CN202121726462.3 includes an extrusion mechanism, a granulation plate, a pelletizing mechanism, and a locking mechanism. The extrusion mechanism includes an extrusion cylinder body, a feeding hopper, and an extrusion screw. The granulation plate is detachably connected to the extrusion cylinder body through the locking mechanism. The pelletizing mechanism is located on the side of the granulation plate away from the extrusion mechanism and can reciprocate horizontally. Multiple granulation holes for raw materials to be extruded are provided on the granulation plate, and different production requirements can be met by replacing the granulation plate with granulation holes of different apertures, expanding the applicable range of the granulator. However, in the above technology, during the overall operation process, different motors need to be used for transmission at different stages, and continuous starting and braking are required, which increases the use and processing cost of the equipment. Therefore, we propose an intelligent temperature-controlled twin-screw extrusion granulator to solve the above problems. Summary of the Invention
[0004] In view of the above problems, the present invention proposes an intelligent temperature-controlled twin-screw extrusion granulator. This intelligent temperature-controlled twin-screw extrusion granulator mainly utilizes the hydraulic arc valve on the transverse partition cabin to output and operate, enabling effective transmission and operation of the lower rotating rod and the upper rotating rod during the process of being clamped by the bearing. After the driving gear in the transmission gearbox outputs and operates, it can cooperate with the lower rotating rod, the upper rotating rod, the first bevel gear, and the second bevel gear to jointly drive the temperature-controlled screw extrusion mechanism and the forming pelletizing component to achieve the effect of transmission operation, enabling a single group of motors to operate together. During the processing process, continuous processing effects can be achieved, which can not only improve the processing efficiency of the equipment but also reduce the use cost of the equipment.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] Intelligent temperature-controlled twin-screw extrusion granulator, including a bearing and assembly component and a forming and granulating component. At the top of the bearing and assembly component, there is a feed and crushing kit sleeved with bolts. On the inner side of the bearing and assembly component, there is a double mixing mechanism sleeved with bolts. Inside the lower part of the bearing and assembly component, there is a temperature-controlled screw extrusion mechanism connected by bolts, and on one side of the temperature-controlled screw extrusion mechanism, there is a forming and granulating component sleeved and installed.
[0007] As a further technical solution, the bearing and assembly component includes a cushion block, a bottom plate, an end frame, a transverse compartment, a hydraulic arc valve, a bolt ring seat, a through sleeve shell tube, a bearing and mixing compartment, a water inlet valve block, a hopper-shaped compartment, an inclined tube, and a discharge inclined plate. Above the cushion block, there is a bottom plate. Above one end of the bottom plate, there is a discharge inclined plate connected by bolts. Above the side of the bottom plate, there is an end frame connected by bolts. Above one end of the end frame, there is a transverse compartment. At the output end of the transverse compartment, there is a hydraulic arc valve.
[0008] As a further technical solution, on the outer side of the middle of the transverse compartment, there is a bolt ring seat assembled by bolts. On the inner side of the bolt ring seat, there is a through sleeve shell tube. Above the through sleeve shell tube, there is a bearing and mixing compartment. On the outer side above the bearing and mixing compartment, there is a water inlet valve block. Below the through sleeve shell tube, there is a hopper-shaped compartment. At the output end of the hopper-shaped compartment, there is an inclined tube.
[0009] As a further technical solution, the feed and crushing kit includes a top cover, a through tube, a pneumatic valve plate, a crushing compartment, a feed nozzle, a rotating motor, and a crushing tooth group. The top cover is sleeved with bolts on the top side of the bearing and mixing compartment. Above the top cover, there is a through tube. On the inner side of the through tube, there is a pneumatic valve plate. Above the through tube, there is a crushing compartment. Above the crushing compartment, there is a feed nozzle. Inside the crushing compartment, there is a crushing tooth group connected to the output end of the rotating motor.
[0010] As a further technical solution, the double mixing mechanism includes a hoisting shaft seat, a transmission case, a driving motor, a motor base, a driving gear, a lower rotating rod, an arc-shaped piece, an upper rotating rod, a strip, a fitting wheel, a vertical frame, a convex piece group, and a fitting ring. The hoisting shaft seat is connected by bolts to the bottom side of the hopper-shaped compartment. Below the hoisting shaft seat, there is a transmission case. Below the transmission case, there is a driving motor. Below the driving motor, there is a motor base. At the output end of the driving motor, there is a driving gear.
[0011] As a further technical solution, a lower rotating rod is provided at the output end of the driving gear, and an arc-shaped piece is provided on the outer side of the lower rotating rod. An upper rotating rod is provided above the lower rotating rod, and a flower strip is provided on the outer side above the upper rotating rod. A fitting wheel is provided below the outer end of the flower strip. A vertical frame is provided on the opposite side of the flower strip, and a convex piece group is provided on one side of the vertical frame. A fitting ring is provided on the outer side of the fitting wheel.
[0012] As a further technical solution, the temperature-controlled screw extrusion mechanism includes a bolt folding arm, a temperature control cabin, an extrusion tube, an extrusion orifice plate, a rear sleeve cover, a pulley group, a first helical gear, and a spiral auger. The bolt folding arm is bolted to the inner side of the end frame. One end of the bolt folding arm is provided with a temperature control cabin, and an extrusion tube sleeved and installed is provided on the inner side of the temperature control cabin.
[0013] As a further technical solution, an extrusion orifice plate connected by bolts is provided at one end of the extrusion tube, a rear sleeve cover is provided at the other end of the extrusion tube, and a pulley group is provided at one end of the rear sleeve cover. A first helical gear is provided at the input end of the pulley group, and a spiral auger is provided at the output end of the pulley group.
[0014] As a further technical solution, the forming and granulating component includes a hydraulic telescopic frame, a cross frame, a spline sleeve strip, a transmission shaft rod, a second helical gear, a meshing gear group, a turntable, and a cutting blade. The hydraulic telescopic frame is provided inside one end of the bolt folding arm. The output end of the hydraulic telescopic frame is provided with a cross frame, and a spline sleeve strip is provided on one side of the middle of the cross frame. One end of the spline sleeve strip is provided with a transmission shaft rod, and a second helical gear is provided at one end of the transmission shaft rod. The output end of the spline sleeve strip is provided with a meshing gear group, and a turntable is provided at the output end of the meshing gear group. A cutting blade is provided on one side of the turntable.
[0015] Compared with the prior art, the beneficial effects of the present invention are:
[0016] The device of the invention mainly utilizes the hydraulic arc valve on the transverse partition cabin to output and operate, so that the lower rotating rod and the upper rotating rod can also achieve effective transmission operation during the bearing clamping process, and the driving gear in the transmission case can output and operate to cooperate with the lower rotating rod, the upper rotating rod, the first helical gear, and the second helical gear to drive the temperature-controlled screw extrusion mechanism and the forming and granulating component to achieve the transmission operation effect, enabling a single motor to operate together. During the processing process, the processing effect can be continuously achieved, which can not only improve the processing efficiency of the equipment but also reduce the use cost of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1It is a schematic structural diagram of an intelligent temperature-controlled twin-screw extrusion granulator;
[0018] Figure 2 It is a schematic structural diagram of the present invention when viewed from below;
[0019] Figure 3 It is a schematic sectional structural diagram of the present invention;
[0020] Figure 4 It is a schematic structural diagram of the feeding and crushing kit of the present invention;
[0021] Figure 5 It is a schematic structural diagram of the lower rotating rod and the arc-shaped piece of the present invention;
[0022] Figure 6 It is a schematic structural diagram of the pulley group and the first helical gear of the present invention;
[0023] Figure 7 It is a schematic structural diagram of the forming and pelletizing component of the present invention.
[0024] In the figure: 1. Bearing and assembly component; 101. Pad; 102. Bottom plate; 103. End frame; 104. Cross partition cabin; 105. Hydraulic arc valve; 106. Bolt ring seat; 107. Penetrating sleeve shell tube; 108. Bearing and mixing cabin; 109. Water inlet valve block; 1010. Hopper-shaped cabin; 1011. Inclined pipe; 1012. Discharge inclined plate; 2. Feeding and crushing kit; 201. Top cover; 202. Through pipe; 203. Pneumatic valve plate; 204. Crushing cabin; 205. Feeding nozzle; 206. Rotating motor; 207. Crushing tooth group; 3. Double mixing mechanism; 301. Hoisting shaft seat; 302. Transmission gearbox; 303. Driving motor; 304. Motor base; 305. Driving gear; 306. Lower rotating rod; 307. Arc-shaped piece; 308. Upper rotating rod; 309. Strip; 3010. Fitting wheel; 3011. Vertical frame; 3012. Tab group; 3013. Fitting ring; 4. Temperature-controlled screw extrusion mechanism; 401. Bolt folding arm; 402. Temperature control cabin; 403. Extrusion pipe; 404. Extrusion orifice plate; 405. Rear cover sleeve; 406. Pulley group; 407. First helical gear; 408. Screw auger; 5. Forming and pelletizing component; 501. Hydraulic telescopic frame; 502. Cross frame; 503. Spline sleeve bar; 504. Transmission shaft rod; 505. Second helical gear; 506. Meshing gear group; 507. Turntable; 508. Cutting blade. Detailed implementation manners
[0025] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention. In addition, the terms "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first", "second", etc. may explicitly or implicitly include one or more of such features. In the description of the present invention, unless otherwise specified, the meaning of "a plurality" is two or more.
[0026] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, the terms "mounted", "connected", "coupled" shall be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood through specific circumstances.
[0027] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0028] Please refer to Figure 1-7 , in the embodiment of the present invention, the intelligent temperature-controlled twin-screw extrusion granulator includes a load-bearing assembly component 1 and a forming and pelletizing component 5. A feed crushing kit 2 is bolt-sleeved at the top of the load-bearing assembly component 1. A double mixing mechanism 3 is bolt-sleeved on the inner side of the load-bearing assembly component 1. A temperature-controlled screw extrusion mechanism 4 is bolt-connected to the inner side below the load-bearing assembly component 1. And a forming and pelletizing component 5 is sleeved and installed on one side of the temperature-controlled screw extrusion mechanism 4.
[0029] The load-bearing assembly component 1 includes a cushion block 101, a bottom plate 102, an end frame 103, a transverse compartment 104, a hydraulic arc valve 105, a bolt ring seat 106, a through sleeve shell tube 107, a load-bearing mixing compartment 108, a water inlet valve block 109, a bucket-shaped compartment 1010, an inclined tube 1011, and a discharge inclined plate 1012. A bottom plate 102 is arranged above the cushion block 101, and a discharge inclined plate 1012 connected by bolts is arranged above one end of the bottom plate 102. An end frame 103 connected by bolts is arranged above the side of the bottom plate 102, and a transverse compartment 104 is arranged above one end of the end frame 103. A hydraulic arc valve 105 is arranged at the output end of the transverse compartment 104.
[0030] In the embodiment of the present invention, through the combined cooperation of the cushion block 101, the bottom plate 102, and the end frame 103, the equipment is effectively assembled and combined. After cutting and forming, the material falls onto the discharge inclined plate 1012 above one end of the bottom plate 102 to achieve the discharge effect.
[0031] A bolt ring seat 106 assembled by bolts is arranged outside the middle of the transverse compartment 104, and a through sleeve shell tube 107 is arranged on the inner side of the bolt ring seat 106. A load-bearing mixing compartment 108 is arranged above the through sleeve shell tube 107, and a water inlet valve block 109 is arranged outside the upper part of the load-bearing mixing compartment 108. A bucket-shaped compartment 1010 is arranged below the through sleeve shell tube 107, and an inclined tube 1011 is arranged at the output end of the bucket-shaped compartment 1010.
[0032] In the embodiment of the present invention, after the material is input into the load-bearing mixing compartment 108 through the feeding and crushing kit 2, a sufficient amount of water is input by the water inlet valve block 109 outside the upper part of the load-bearing mixing compartment 108, so that the material and the water can effectively achieve the effect of mixing and forming. After the material is mixed and formed, the hydraulic arc valve 105 on the transverse compartment 104 operates to output, so that the material falls into the interior of the bucket-shaped compartment 1010. After the lower rotating rod 306 and the arc-shaped piece 307 rotate, the material is input into the extrusion tube 403 at one end of the inclined tube 1011 through the bucket-shaped compartment 1010.
[0033] The feeding and crushing kit 2 includes a top cover 201, a through tube 202, a pneumatic valve plate 203, a crushing compartment 204, a feeding nozzle 205, a rotating motor 206, and a crushing tooth group 207. The top cover 201 is bolted to the top side of the load-bearing mixing compartment 108. A through tube 202 is arranged above the top cover 201, and a pneumatic valve plate 203 is arranged on the inner side of the through tube 202. A crushing compartment 204 is arranged above the through tube 202, and a feeding nozzle 205 is arranged above the crushing compartment 204. A crushing tooth group 207 connected to the output end of the rotating motor 206 is arranged inside the crushing compartment 204.
[0034] In an embodiment of the present invention, during use, after the operation is output through the output end on the transverse partition chamber 104, the hydraulic arc valve 105 is clamped to the lower rotating rod 306. Then, the feeding nozzle 205 above the crushing chamber 204 is used to input materials into the crushing chamber 204. Next, the rotating motor 206 outputs power to drive the output end to operate, so that after the rotating motor 206 outputs and operates, the crushing tooth group 207 operates in opposite directions to crush the materials. The crushed materials are input into the bearing and mixing chamber 108 below the top cover 201 through the through pipe 202.
[0035] The double mixing mechanism 3 includes a hoisting shaft seat 301, a transmission case 302, a driving motor 303, a motor base 304, a driving gear 305, a lower rotating rod 306, an arc-shaped piece 307, an upper rotating rod 308, a flower strip 309, a fitting wheel 3010, a vertical frame 3011, a convex piece group 3012, and a fitting ring 3013. The hoisting shaft seat 301 is bolted to the bottom side of the bucket-shaped chamber 1010. A transmission case 302 is arranged below the hoisting shaft seat 301, a driving motor 303 is arranged below the transmission case 302, a motor base 304 is arranged below the driving motor 303, and a driving gear 305 is arranged at the output end of the driving motor 303.
[0036] In an embodiment of the present invention, then the driving motor 303 below the transmission case 302 is used to output power to drive the output end to operate, so that the driving gear 305 in the transmission case 302 achieves the effect of transmission operation after the driving motor 303 outputs and operates.
[0037] The output end of the driving gear 305 is provided with a lower rotating rod 306, and an arc-shaped piece 307 is arranged on the outer side of the lower rotating rod 306. An upper rotating rod 308 is arranged above the lower rotating rod 306, and a flower strip 309 is arranged on the outer side above the upper rotating rod 308. A fitting wheel 3010 is arranged below the outer end of the flower strip 309. A vertical frame 3011 is arranged on the opposite side of the flower strip 309, a convex piece group 3012 is arranged on one side of the vertical frame 3011, and a fitting ring 3013 is arranged on the outer side of the fitting wheel 3010.
[0038] In an embodiment of the present invention, after the driving gear 305 outputs and operates, it can drive the lower rotating rod 306 at the output end of the driving gear 305 to rotate, so that the lower rotating rod 306 drives the arc-shaped piece 307 to operate. After the lower rotating rod 306 outputs and operates, it drives the upper rotating rod 308 to operate, so that the flower strip 309 cooperates with the fitting wheel 3010 and the fitting ring 3013 to rotate, so that the flower strip 309 drives the vertical frame 3011 and the convex piece group 3012 to effectively rotate.
[0039] The temperature-controlled screw extrusion mechanism 4 includes a bolt folding arm 401, a temperature control chamber 402, an extrusion pipe 403, an extrusion orifice plate 404, a rear sleeve cover 405, a pulley group 406, a first helical gear 407, and a screw auger 408. The bolt folding arm 401 is bolted to the inner side of the end frame 103. One end of the bolt folding arm 401 is provided with a temperature control chamber 402, and the inner side of the temperature control chamber 402 is provided with an extrusion pipe 403 installed in a sleeved manner.
[0040] In an embodiment of the present invention, after the screw auger 408 operates, the extrusion pipe 403 cooperates with the screw auger 408 to drive the material to run. After the material is driven to run, the temperature control chamber 402 at one end of the bolt folding arm 401 outputs and operates so that the temperature control chamber 402 can ensure the temperature stability of the extrusion pipe 403 in real time.
[0041] One end of the extrusion pipe 403 is provided with an extrusion orifice plate 404 connected by bolts. The other end of the extrusion pipe 403 is provided with a rear sleeve cover 405. One end of the rear sleeve cover 405 is provided with a pulley group 406. The input end of the pulley group 406 is provided with a first helical gear 407, and the output end of the pulley group 406 is provided with a screw auger 408.
[0042] In an embodiment of the present invention, after the transmission case 302, the drive motor 303, the motor base 304, and the driving gear 305 output and operate, the driving gear 305 outputs and operates to drive the first helical gear 407 to output and operate, so that the pulley group 406 outputs and operates, so that the output end of the pulley group 406 can drive the screw auger 408 to operate.
[0043] The forming and granulating component 5 includes a hydraulic telescopic frame 501, a cross frame 502, a spline sleeve bar 503, a transmission shaft rod 504, a second helical gear 505, a meshing gear group 506, a turntable 507, and a cutting blade 508. The hydraulic telescopic frame 501 is arranged inside one end of the bolt folding arm 401. The output end of the hydraulic telescopic frame 501 is provided with a cross frame 502. One side of the middle of the cross frame 502 is provided with a spline sleeve bar 503. One end of the spline sleeve bar 503 is provided with a transmission shaft rod 504. One end of the transmission shaft rod 504 is provided with a second helical gear 505. The output end of the spline sleeve bar 503 is provided with a meshing gear group 506. The output end of the meshing gear group 506 is provided with a turntable 507. One side of the turntable 507 is provided with a cutting blade 508.
[0044] In an embodiment of the present invention, after the material is extruded through the extrusion orifice plate 404 at one end of the extrusion tube 403, it is output and operated through the transmission chassis 302, the drive motor 303, the motor base 304, and the driving gear 305, so that the second helical gear 505 is output. After the output, the spline sleeve bar 503 and the transmission shaft rod 504 are driven to operate. When the spline sleeve bar 503 outputs and operates, the meshing gear set 506 is meshed and driven, so that the turntable 507 and the cutting blade 508 cut and form the extruded product.
[0045] The working principle of the present invention is as follows: When in use, after the output end on the diaphragm chamber 104 outputs and operates, the hydraulic arc valve 105 clamps the rotating rod 306. Then, the material is input through the feed nozzle 205 above the crushing chamber 204 and into the crushing chamber 204. Next, the rotating motor 206 outputs power to drive the output end to operate, so that after the rotating motor 206 outputs and operates, the crushing tooth group 207 runs in opposite directions to crush the material. The crushed material is input into the bearing and mixing chamber 108 below the top cover 201 through the through pipe 202. Then, the driving motor 303 below the transmission case 302 outputs power to drive the output end to operate, so that the driving motor 303 outputs and operates to make the driving gear 305 in the transmission case 302 achieve the effect of transmission operation through the output operation. After the driving gear 305 outputs and operates, it can drive the lower rotating rod 306 at the output end of the driving gear 305 to rotate, so that the lower rotating rod 306 drives the arc-shaped piece 307 to operate. After the lower rotating rod 306 outputs and operates, it drives the upper rotating rod 308 to operate, so that the flower strip 309 rotates in cooperation with the fitting wheel 3010 and the fitting ring 3013, so that the flower strip 309 drives the vertical frame 3011 and the convex piece group 3012 to rotate effectively. When the material is input into the bearing and mixing chamber 108 through the feed and crushing kit 2, the water inlet valve block 109 outside the upper part of the bearing and mixing chamber 108 inputs a sufficient amount of water, so that the material and water can effectively achieve the effect of mixing and forming. When the material is mixed and formed, the hydraulic arc valve 105 on the diaphragm chamber 104 outputs and operates to make the material fall into the interior of the hopper-shaped chamber 1010. After the lower rotating rod 306 and the arc-shaped piece 307 rotate, the material is input into the extrusion pipe 403 at one end of the inclined pipe 1011 through the hopper-shaped chamber 1010. When the transmission case 302, the driving motor 303, the motor base 304, and the driving gear 305 output and operate, the driving gear 305 outputs and operates to drive the first bevel gear 407 to output and operate, so that the pulley group 406 outputs and operates, so that the output end of the pulley group 406 can drive the spiral auger 408 to operate. After the spiral auger 408 operates, the extrusion pipe 403 and the spiral auger 408 drive the material to operate. After the material is driven to operate, the temperature control chamber 402 at one end of the bolt folding arm 401 outputs and operates to make the temperature control chamber 402 achieve the effect of ensuring the temperature stability of the extrusion pipe 403 in real time. When the material is extruded through the extrusion orifice plate 404 at one end of the extrusion pipe 403, the second bevel gear 505 outputs after the transmission case 302, the driving motor 303, the motor base 304, and the driving gear 305 output and operate. After the output, the spline sleeve bar 503 and the transmission shaft rod 504 are driven to operate. After the spline sleeve bar 503 outputs and operates, the meshing gear group 506 meshes and transmits.So that the turntable 507 and the cutting blade 508 cut and shape the extruded product, and after cutting and shaping, the material falls onto the discharge inclined plate 1012 above one end of the bottom plate 102 to achieve the discharge effect.
[0046] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be construed as limiting the claims involved.
[0047] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An intelligent temperature-controlled twin-screw extruder granulator, comprising a load-bearing assembly component (1) and a forming and pelletizing component (5), characterized in that: The top of the load-bearing assembly component (1) is provided with a feed crushing kit (2) which is bolted, the inner side of the load-bearing assembly component (1) is provided with a double mixing mechanism (3) which is bolted, the lower inner side of the load-bearing assembly component (1) is provided with a temperature-controlled screw extrusion mechanism (4) which is bolted, and one side of the temperature-controlled screw extrusion mechanism (4) is provided with a sleeve-mounted molding pelletizing component (5).
2. The intelligent temperature-controlled twin-screw extruder granulator according to claim 1, characterized in that: The load-bearing assembly component (1) comprises a cushion block (101), a bottom plate (102), an end frame (103), a transverse compartment (104), a hydraulic arc valve (105), a bolt ring seat (106), a through-shell pipe (107), a load-bearing mixing compartment (108), a water inlet valve block (109), a bucket-shaped compartment (1010), an inclined pipe (1011) and a discharge inclined plate (1012). The cushion block (101) is provided with a bottom plate (102) above, and a discharge inclined plate (1012) connected with bolts is provided above one end of the bottom plate (102). The side of the bottom plate (102) is provided with an end frame (103) connected with bolts above, and a transverse compartment (104) is provided above one end of the end frame (103). The output end of the transverse compartment (104) is provided with a hydraulic arc valve (105).
3. The intelligent temperature-controlled twin-screw extruder granulator according to claim 2 is characterized in that: A bolt ring seat (106) for bolt assembly is arranged on the outer side of the middle part of the transverse compartment (104), and a through-shell tube (107) is arranged on the inner side of the bolt ring seat (106), a load-bearing mixing compartment (108) is arranged above the through-shell tube (107), and a water inlet valve block (109) is arranged on the outer side above the load-bearing mixing compartment (108), a bucket-shaped compartment (1010) is arranged below the through-shell tube (107), and an inclined pipe (1011) is arranged at the output end of the bucket-shaped compartment (1010).
4. The intelligent temperature-controlled twin-screw extruder granulator according to claim 2 is characterized in that: The feed crushing kit (2) comprises a top cover (201), a through pipe (202), a pneumatic valve plate (203), a crushing chamber (204), a feed nozzle (205), a rotary motor (206) and a crushing tooth group (207); the top cover (201) is bolted onto the top side of the load-bearing mixing chamber (108); a through pipe (202) is arranged above the top cover (201), and a pneumatic valve plate (203) is arranged on the inner side of the through pipe (202); a crushing chamber (204) is arranged above the through pipe (202), and a feed nozzle (205) is arranged above the crushing chamber (204); and a crushing tooth group (207) connected to the output end of the rotary motor (206) is arranged inside the crushing chamber (204).
5. The intelligent temperature-controlled twin-screw extruder granulator according to claim 4 is characterized in that: The double mixing mechanism (3) comprises a hoisting shaft seat (301), a transmission case (302), a driving motor (303), a motor base (304), a driving gear (305), a lower rotating rod (306), an arc-shaped piece (307), an upper rotating rod (308), a strip (309), a fitting wheel (3010), a vertical frame (3011), a convex piece group (3012) and a fitting ring (3013); the hoisting shaft seat (301) is bolted to the bottom side of the bucket-shaped cabin (1010); a transmission case (302) is arranged below the hoisting shaft seat (301), a driving motor (303) is arranged below the transmission case (302), a motor base (304) is arranged below the driving motor (303), and a driving gear (305) is arranged at the output end of the driving motor (303).
6. The intelligent temperature-controlled twin-screw extruder granulator according to claim 5, characterized in that: A lower rotating rod (306) is arranged at the output end of the driving gear (305), and an arc-shaped piece (307) is arranged on the outer side of the lower rotating rod (306); an upper rotating rod (308) is arranged above the lower rotating rod (306), and a strip (309) is arranged on the upper outer side of the upper rotating rod (308); a fitting wheel (3010) is arranged below the outer end of the strip (309); a vertical frame (3011) is arranged on the opposite side of the strip (309), and a convex piece group (3012) is arranged on one side of the vertical frame (3011); and a fitting ring (3013) is arranged on the outer side of the fitting wheel (3010).
7. The intelligent temperature-controlled twin-screw extruder granulator according to claim 2, characterized in that: The temperature-controlled screw extrusion mechanism (4) comprises a bolt folding arm (401), a temperature-controlled chamber (402), an extrusion tube (403), an extrusion orifice plate (404), a rear cover (405), a pulley group (406), a first bevel gear (407) and a spiral auger (408); the bolt folding arm (401) is bolted to the inner side of the end frame (103); one end of the bolt folding arm (401) is provided with a temperature-controlled chamber (402), and the inner side of the temperature-controlled chamber (402) is provided with an extrusion tube (403) which is sleeve-mounted.
8. The intelligent temperature-controlled twin-screw extruder granulator according to claim 7, characterized in that: One end of the extrusion tube (403) is provided with an extrusion orifice plate (404) connected by bolts, the other end of the extrusion tube (403) is provided with a rear cover (405), and one end of the rear cover (405) is provided with a pulley group (406), the input end of the pulley group (406) is provided with a first bevel gear (407), and the output end of the pulley group (406) is provided with a spiral auger (408).
9. The intelligent temperature-controlled twin-screw extruder granulator according to claim 7, characterized in that: The forming and pelletizing component (5) comprises a hydraulic telescopic frame (501), a cross frame (502), a spline sleeve (503), a transmission shaft rod (504), a second bevel gear (505), a meshing gear set (506), a rotating disk (507) and a cutting blade (508), wherein the hydraulic telescopic frame (501) is arranged on the inner side of one end of the bolt folding arm (401), and the output end of the hydraulic telescopic frame (501) is provided with a cross frame (502), and the cross frame (503) is provided with a spline sleeve (503), a transmission shaft rod (504), a second bevel gear (505), a meshing gear set (506), a rotating disk (507) and a cutting blade (508). 02) is provided with a spline sleeve (503) on one side of the middle part, a transmission shaft rod (504) is provided at one end of the spline sleeve (503), and a second bevel gear (505) is provided at one end of the transmission shaft rod (504), a meshing gear set (506) is provided at the output end of the spline sleeve (503), and a rotating disk (507) is provided at the output end of the meshing gear set (506), and a cutting blade (508) is provided on one side of the rotating disk (507).
Citation Information
Patent Citations
Single-screw extrusion granulator
CN214863355U