Multi-dimensional mixing mill for bagging production raw materials and mixing method

By incorporating the puncture, crushing, and magnetic impurity collection mechanisms of the multi-dimensional mixing machine, the problems of gas and impurities affecting the mixing of raw materials in bagged production have been solved, thereby improving the uniformity of raw materials and the quality of mixing.

CN121928690APending Publication Date: 2026-04-28ZHEJIANG GANGSONG MATERIALS TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ZHEJIANG GANGSONG MATERIALS TECHNOLOGY CO LTD
Filing Date
2026-03-12
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing bagged raw material mixing equipment lacks a pretreatment stage, resulting in uneven dispersion of raw materials and affecting the mixing quality, especially due to local performance differences caused by encapsulated air or residual liquid.

Method used

A multi-dimensional mixing machine was designed, which includes a conveyor belt, a puncturing mechanism, a crushing mechanism, and a collection mechanism in the pretreatment box. By puncturing, crushing, and magnetic impurity collection, the machine ensures that the raw materials are discharged of gas and liquid before mixing, removes impurities, and improves the mixing quality.

Benefits of technology

It effectively removes gases and liquids from raw materials, eliminates magnetic impurities, ensures the consistency and stability of subsequent mixing quality, and improves the uniformity of raw materials and the quality of finished products in bagging production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a multi-dimensional mixing mill for bagging production raw materials and a mixing method, and relates to the technical field of mixing mills. The multi-dimensional mixing mill for bagging the production raw materials comprises a feeding port and a discharging port which are formed in a main body, a pretreatment box is fixedly inserted into the side wall of the feeding port, a conveying belt is connected to the interior of the pretreatment box through a conveying mechanism, and filtering holes are formed in the surface of the conveying belt; a conveying belt is arranged above the pretreatment box, a first collecting tank which is obliquely arranged downwards is arranged below the conveying belt, the first collecting tank is fixed to the side wall of the pretreatment box, a puncturing mechanism used for puncturing the raw materials is arranged above the conveying belt, and a rolling mechanism used for rolling the raw materials is arranged above the conveying belt. According to the multi-dimensional mixing mill for bagging the production raw materials and the mixing method, before mixing, the raw materials fed from the feeding port can be punctured and rolled, internal gas and liquid can be conveniently discharged, and the subsequent mixing quality is guaranteed.
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Description

Technical Field

[0001] This invention relates to the field of mixing machine technology, specifically to a multi-dimensional mixing machine and mixing method for bagged raw materials. Background Technology

[0002] In the processing of raw materials for bagging production, mixing is a key process for improving the uniformity and stability of raw materials. Multidimensional (three-dimensional / multi-directional) mixing machines are industrial equipment that achieves uniform mixing of powder, granular, and paste-like raw materials through the combined three-dimensional motion of a container or the action of a combined rotor, and can be integrated into the bagging process. Before mixing, raw materials often have inconsistent shapes and contain impurities, directly affecting the efficiency of subsequent mixing and the quality of the finished product.

[0003] Publication number CN220972937U discloses a mixing equipment for modified materials used in plastic bag production. However, existing mixing equipment mostly adopts a single stirring or crushing structure, lacking a pretreatment step for raw materials. Some bagged raw materials and waste materials may contain air or residual liquid during storage or transportation. Directly adding them to the mixing process will lead to uneven dispersion of raw materials, resulting in localized differences in the properties of the mixed material and affecting the quality of the mixing. Summary of the Invention

[0004] The purpose of this invention is to provide a multi-dimensional mixing machine and mixing method for bagged raw materials, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a multi-dimensional mixing machine for bagged raw materials, including an inlet and an outlet on the main body, a pretreatment box fixedly inserted into the side wall of the inlet, and a conveyor belt connected to the pretreatment box via a conveying mechanism, filter holes on the surface of the conveyor belt, and a first collection trough inclined downwards below the conveyor belt, the first collection trough being fixed to the side wall of the pretreatment box, a puncturing mechanism for puncturing the raw materials being provided above the conveyor belt, and a crushing mechanism for crushing the raw materials being provided above the conveyor belt.

[0006] Preferably, the puncture mechanism includes a first movable plate, and the bottom of the first movable plate is connected to a first lifting plate via a first spring telescopic rod. The bottom of the first lifting plate is fixedly connected to a plurality of arrayed puncture needles, and the first movable plate is connected to the top of the pretreatment box via a moving mechanism. A push plate is fixedly connected to the side wall of the first lifting plate, and the side wall of the push plate is provided with a first inclined surface. The lifting and lowering of the first lifting plate is driven by the push mechanism, and a limit mechanism is provided between the first lifting plate and the first movable plate.

[0007] Preferably, the first pushing mechanism includes a pushing rod fixedly connected to the side wall of the first lifting plate, and a first pushing block is fixedly connected to the inner wall of the pretreatment box. The side wall of the first pushing block is provided with a second inclined surface, and a connecting frame is fixedly connected to the side wall of the first pushing block. The top of the connecting frame is fixedly connected to a second pushing block, and the side wall of the second pushing block is provided with a third inclined surface.

[0008] Preferably, the limiting mechanism includes a limiting pin fixedly connected to the side wall of the first lifting plate, and a moving block is connected to the side wall of the first moving plate through a second spring telescopic rod. Two V-shaped locking blocks are fixedly connected to the side wall of the moving block, and the side wall of the locking blocks is provided with a fourth inclined surface.

[0009] Preferably, the compaction mechanism includes a second movable plate, which penetrates the side wall of the pretreatment box and is connected to the pretreatment box via a movable component. The bottom of the second movable plate is connected to two second lifting plates via a third spring telescopic rod, and the opposite side walls of the two second lifting plates are rotatably connected to hollow compaction rollers via rotating tubes.

[0010] Preferably, the moving component includes a connecting block fixedly connected to the bottom of the second moving plate, and the connecting block is connected to the pretreatment box via a fourth spring telescopic rod. A third pushing block is fixedly connected to the bottom of the connecting block, and an L-shaped frame is fixedly connected to the side wall of the pretreatment box. A first motor is fixedly connected to the side wall of the L-shaped frame, and a disk is fixedly connected to the output end of the first motor. A plurality of arrayed conical blocks are fixedly connected to the end of the disk, and the third pushing block can slide on the side wall of the conical blocks.

[0011] Preferably, the moving mechanism includes a fixed block fixedly connected to the top of the pretreatment box, and a first moving plate is connected to the side wall of the fixed block through a fifth spring telescopic rod. A connecting rod is rotatably connected to the side wall of the first moving plate, and the other end of the connecting rod is rotatably connected to the side wall of the second moving plate.

[0012] Preferably, the pretreatment box is provided with a collection mechanism for collecting magnetic impurities in the raw materials, and the collection mechanism includes a second collection trough fixedly connected to the pretreatment box and arranged at an inclined downward position. The rolling roller is provided with an arc-shaped magnet, and the magnet is fixed to the side wall of the second lifting plate by a mounting frame.

[0013] Preferably, the conveying mechanism includes two conveying rollers, and the conveying rollers are rotatably connected to the side wall of the pretreatment box via a rotating shaft. A second motor is fixedly connected to the side wall of the pretreatment box, and the output end of the second motor is fixed to one end of the rotating shaft. The conveyor belt is sleeved on the side wall of the conveying rollers.

[0014] A multi-dimensional mixing method for bagged raw materials, using a multi-dimensional mixing machine for bagged raw materials, includes the following steps: S1: The raw material is fed into the main body through the feed port. At this time, it will fall onto the conveyor belt first. Then, the first motor is started. The rotation of the first motor drives the rotation of the disc. When the conical block abuts against the side wall of the third push block, it can push the connecting block to move away from the pretreatment box. At the same time, the fourth spring telescopic rod is stretched and drives the second moving plate to move synchronously. When the conical block passes the side wall of the third push block, the connecting block and the second moving plate can move and reset under the action of the fourth spring telescopic rod. This process is repeated so that the second moving plate can move back and forth. When the second moving plate moves back and forth, it can make the connecting rod rotate and push the first moving plate to move back and forth. S2: When the first moving plate moves towards the fixed block, it drives the first lifting plate and the piercing needle to move via the first spring telescopic rod. It also drives the push rod and the push plate to move, so that the push plate can flatten the raw material on the conveyor belt. When the push rod slides down along the third inclined plane, it can push the first lifting plate and the piercing needle to move downward, thereby piercing the raw material to facilitate the discharge of internal gas and liquid. The liquid falls into the first collection tank through the filter hole for collection, ensuring the quality of subsequent mixing. When the first lifting plate moves downward, the limiting pin can slide into a lower locking block for limiting. When the first moving plate moves away from the fixed block and resets, it can use the piercing needle to rake the raw material along the conveyor belt towards the crushing roller. S3: When the push rod slides upward along the second inclined plane, it can push the first lifting plate and the needle upward. At the same time, the needle can move upward along the side wall of the second collection groove. Through the action of the second collection groove, the raw material adhering to the surface of the needle can be scraped and cleaned to avoid adhesion. In addition, the limit pin can slide into a locking block above for limiting. Then, the second motor is started, and the conveyor roller is driven to rotate through the rotating shaft. The raw material is then conveyed forward a certain distance through the conveyor belt before the second motor is stopped. S4: When the conveyor belt transports the raw materials, when the punctured raw materials come into contact with the crushing roller, it can push the crushing roller and the second lifting plate to move upward. At the same time, the third spring telescopic rod is compressed and drives the crushing roller to rotate. At this time, the crushing roller can crush the punctured raw materials. When the second moving plate moves back and forth, it can drive the crushing roller to move back and forth through the third spring telescopic rod and the second lifting plate, which can play a rubbing effect, making it easier for gas and liquid to be discharged, ensuring the quality of subsequent mixing. Furthermore, the crushed raw materials can be transported to the main body for mixing by the conveyor belt. S5: When the pressing roller squeezes the raw material, the magnetic impurities in the raw material are attracted by the action of the magnet and conveyed along with the pressing roller. When it rotates to the top of the second collection tank, the magnet no longer attracts the magnetic impurities. Under the scraping action of the second collection tank, the magnetic impurities on the pressing roller fall into the second collection tank for collection.

[0015] Compared with the prior art, the beneficial effects of the present invention are: This multi-dimensional mixing machine and mixing method for bagged raw materials, by incorporating a puncture mechanism, allows the raw materials to be fed into the main body through the inlet. The materials first fall onto the conveyor belt. Then, the first motor is started, and its rotation drives the rotation of a disc. When the conical block abuts against the side wall of the third pushing block, it pushes the connecting block away from the pretreatment box. Simultaneously, the fourth spring telescopic rod is stretched, causing the second moving plate to move synchronously. When the conical block passes the side wall of the third pushing block, the connecting block and the second moving plate can move back to their original positions under the action of the fourth spring telescopic rod. This reciprocating motion causes the second moving plate to move back and forth. This movement of the second moving plate causes the connecting rod to rotate, pushing the first moving plate to move back and forth. When the first moving plate moves towards the fixed block, the first spring telescopic rod drives the first lifting plate and the puncture needle to move, and also drives the pushing rod and the pushing plate to move, allowing the pushing plate to move the raw materials on the conveyor belt. During the leveling operation, when the push rod slides downward along the third inclined plane, it can push the first lifting plate and the piercing needle downward, thereby piercing the raw material to facilitate the discharge of internal gas and liquid. The liquid falls into the first collection tank through the filter holes for collection, ensuring the quality of subsequent mixing. When the first lifting plate moves downward, the limiting pin can slide into a lower locking block for limiting. When the first moving plate moves away from the fixed block and resets, the piercing needle can rake the raw material along the conveyor belt towards the crushing roller. When the push rod slides upward along the second inclined plane, it can push the first lifting plate and the piercing needle upward. At the same time, the piercing needle can move upward along the side wall of the second collection tank. Through the action of the second collection tank, the raw material adhering to the surface of the piercing needle can be scraped and cleaned to prevent adhesion. The limiting pin can slide into an upper locking block for limiting. Then, the second motor is started, which drives the conveyor roller to rotate through the shaft and transports the raw material forward a certain distance through the conveyor belt before stopping the second motor.

[0016] This multi-dimensional mixing machine and mixing method for bagged raw materials, by setting up a crushing mechanism, allows the crushing roller and the second lifting plate to move upward when the punctured raw material comes into contact with the crushing roller during conveyor belt transport. At the same time, the third spring telescopic rod is compressed and drives the crushing roller to rotate. At this time, the crushing roller can crush the punctured raw material. Furthermore, when the second moving plate moves back and forth, it can drive the crushing roller to move back and forth through the third spring telescopic rod and the second lifting plate, which can achieve a rubbing effect, making it easier for gas and liquid to be discharged, ensuring the quality of subsequent mixing. Moreover, the crushed raw material can be transported to the main body for mixing by the conveyor belt.

[0017] This multi-dimensional mixing machine and mixing method for bagged raw materials, by setting up a collection mechanism, allows the magnetic impurities in the raw materials to be attracted by the magnetic rollers under the action of magnets when the rollers squeeze the raw materials. The impurities are then transported along with the rollers. When the rollers rotate to the top of the second collection tank, the magnets no longer attract the magnetic impurities. Under the scraping action of the second collection tank, the magnetic impurities on the rollers fall into the second collection tank for collection. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the pretreatment box in this invention; Figure 3 This is a schematic diagram of the internal structure of the pretreatment box in this invention; Figure 4 This is a partial cross-sectional view of the pretreatment box in this invention; Figure 5 This is a schematic diagram of the puncture mechanism in this invention; Figure 6 This is a schematic diagram of the compaction mechanism in this invention; Figure 7 This is a schematic diagram of the limiting mechanism in this invention; Figure 8 for Figure 4 A magnified structural diagram of point A in the middle.

[0019] In the diagram: 1. Main body; 101. Feed inlet; 102. Discharge outlet; 201. First moving plate; 202. First lifting plate; 203. Needle; 204. First spring telescopic rod; 205. Push plate; 206. First inclined plane; 301. Second moving plate; 302. Third spring telescopic rod; 303. Second lifting plate; 304. Rotating tube; 305. Roller; 401. Fourth spring telescopic rod; 402. Connecting block; 403. Third push block; 404. L-shaped frame; 405. First motor; 406. Disc; 407. Conical block; 501. Fifth spring. 502. Spring telescopic rod; 503. Fixing block; 504. Connecting rod; 605. Second collection trough; 606. Magnet; 607. Mounting bracket; 708. Moving block; 709. Second spring telescopic rod; 700. Locking block; 700. Limiting pin; 700. Fourth inclined plane; 801. Push rod; 802. First push block; 803. Second inclined plane; 804. Connecting frame; 805. Second push block; 806. Third inclined plane; 901. Rotating shaft; 902. Conveying roller; 903. Second motor; 10. Pretreatment box; 11. Conveyor belt; 12. Filter hole; 13. First collection trough. Detailed Implementation

[0020] 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.

[0021] Please see Figures 1-8 This invention provides a multi-dimensional mixing machine for bagged raw materials, including an inlet 101 and an outlet 102 disposed on the main body 1. Both are known technologies in this field and will not be described in detail here. A pretreatment box 10 is fixedly inserted into the side wall of the inlet 101, and a conveyor belt 11 is connected to the pretreatment box 10 through a conveying mechanism. The surface of the conveyor belt 11 is provided with filter holes 12, and a first collection trough 13 is provided below the conveyor belt 11 and is inclined downward. The first collection trough 13 is fixed to the side wall of the pretreatment box 10. A puncturing mechanism for puncturing the raw materials is provided above the conveyor belt 11, and a crushing mechanism for crushing the raw materials is provided above the conveyor belt 11. Before mixing, the raw materials fed into the inlet 101 can be punctured and crushed to facilitate the discharge of internal gas and liquid and ensure the quality of subsequent mixing.

[0022] Please see Figure 5 , Figure 7 and Figure 8The puncture mechanism includes a first movable plate 201, and a first lifting plate 202 is connected to the bottom of the first movable plate 201 via a first spring telescopic rod 204. A plurality of arrayed puncture needles 203 are fixedly connected to the bottom of the first lifting plate 202. The first movable plate 201 is connected to the top of the pretreatment box 10 via a moving mechanism. A push plate 205 is fixedly connected to the side wall of the first lifting plate 202, and a first inclined surface 206 is provided on the side wall of the push plate 205. The lifting and lowering of the first lifting plate 202 is driven by the push mechanism, and a [missing information - likely a puncture point] is provided between the first lifting plate 202 and the first movable plate 201. The limiting mechanism moves the first moving plate 201 via the moving mechanism, moves the first lifting plate 202 and the piercing needle 203 via the first spring telescopic rod 204, and moves the pushing plate 205. The pushing plate 205 can flatten the raw material on the conveyor belt 11, and the pushing mechanism pushes the first lifting plate 202 downward and moves the piercing needle 203 downward, thereby piercing the raw material to facilitate the discharge of internal gas and liquid. The liquid falls into the first collection tank 13 through the filter hole 12 for collection, ensuring the quality of subsequent mixing.

[0023] Please see Figure 5 and Figure 8 The first pushing mechanism includes a pushing rod 801 fixedly connected to the side wall of the first lifting plate 202, and a first pushing block 802 fixedly connected to the inner wall of the pretreatment box 10. The side wall of the first pushing block 802 is provided with a second inclined surface 803, and a connecting frame 804 is fixedly connected to the side wall of the first pushing block 802. The top of the connecting frame 804 is fixedly connected with a second pushing block 805, and the side wall of the second pushing block 805 is provided with a third inclined surface 806. When the pushing rod 801 slides downward along the third inclined surface 806, it can push the first lifting plate 202 and the needle 203 to move downward. When the pushing rod 801 slides upward along the second inclined surface 803, it can push the first lifting plate 202 and the needle 203 to move upward.

[0024] Please see Figure 7 The limiting mechanism includes a limiting pin 704 fixedly connected to the side wall of the first lifting plate 202, and a moving block 701 connected to the side wall of the first moving plate 201 via a second spring telescopic rod 702. Two V-shaped locking blocks 703 are fixedly connected to the side wall of the moving block 701, and the side wall of the locking block 703 is provided with a fourth inclined surface 705. When the first lifting plate 202 is raised or lowered, it can drive the limiting pin 704 to move synchronously, so that the limiting pin 704 can slide along the fourth inclined surface 705 into the locking block 703. At the same time, the second spring telescopic rod 702 deforms, thereby limiting the first lifting plate 202 and keeping it in its current state.

[0025] Please see Figure 3 , Figure 4 and Figure 6 The crushing mechanism includes a second movable plate 301, which penetrates the side wall of the pretreatment box 10 and is connected to the pretreatment box 10 through a movable component. The bottom of the second movable plate 301 is connected to two second lifting plates 303 through a third spring telescopic rod 302. The opposite side walls of the two second lifting plates 303 are rotatably connected to hollow crushing rollers 305 through rotating tubes 304. When the conveyor belt 11 conveys the raw material, when the punctured raw material comes into contact with the crushing rollers 305, it can push the crushing rollers 305 and the second lifting plates 303 to move upward. At the same time, the third spring telescopic rod 302 is compressed and drives the crushing rollers 305 to rotate. At this time, the crushing rollers 305 can crush the punctured raw material, making it easier for gas and liquid to be discharged, thus ensuring the quality of subsequent mixing.

[0026] Please see Figure 2 The moving component includes a connecting block 402 fixedly connected to the bottom of the second moving plate 301, and the connecting block 402 is connected to the pretreatment box 10 via a fourth spring telescopic rod 401. A third pushing block 403 is fixedly connected to the bottom of the connecting block 402, and an L-shaped frame 404 is fixedly connected to the side wall of the pretreatment box 10. A first motor 405 is fixedly connected to the side wall of the L-shaped frame 404, and a disc 406 is fixedly connected to the output end of the first motor 405. A plurality of arrayed conical blocks 407 are fixedly connected to the end of the disc 406, and the third pushing block 403 can slide on the side wall of the conical block 407. The first motor 405 is started, and the rotation of the first motor 405 drives the rotation of the disc 406. When the conical block 407 rotates, the first motor 405 rotates. When the cone block 407 abuts against the side wall of the third pushing block 403, it can push the connecting block 402 to move away from the pretreatment box 10. At the same time, the fourth spring telescopic rod 401 is stretched and drives the second moving plate 301 to move synchronously. When the cone block 407 passes the side wall of the third pushing block 403, the connecting block 402 and the second moving plate 301 can move and reset under the action of the fourth spring telescopic rod 401. By repeating this process, the second moving plate 301 can move back and forth. When the second moving plate 301 moves back and forth, it can drive the crushing roller 305 to move back and forth through the third spring telescopic rod 302 and the second lifting plate 303, which can achieve a rubbing effect and make it easier for gas and liquid to be discharged.

[0027] Please see Figure 3 , Figure 5 and Figure 7The moving mechanism includes a fixed block 502 fixedly connected to the top of the pretreatment box 10, and a first moving plate 201 is connected to the side wall of the fixed block 502 via a fifth spring telescopic rod 501. A connecting rod 503 is rotatably connected to the side wall of the first moving plate 201, and the other end of the connecting rod 503 is rotatably connected to the side wall of the second moving plate 301. When the second moving plate 301 reciprocates, the connecting rod 503 can rotate and push the first moving plate 201 to reciprocate.

[0028] Please see Figure 6 The pretreatment box 10 is equipped with a collection mechanism for collecting magnetic impurities in the raw materials. The collection mechanism includes a second collection trough 601 fixedly connected to the pretreatment box 10 and arranged at an incline downward. An arc-shaped magnet 602 is provided in the crushing roller 305, and the magnet 602 is fixed to the side wall of the second lifting plate 303 through the mounting bracket 603. When the crushing roller 305 squeezes the raw materials, the magnet 602 causes the crushing roller 305 to attract the magnetic impurities in the raw materials and transport them along with the crushing roller 305. When it rotates to the top of the second collection trough 601, the magnet 602 no longer attracts the magnetic impurities, and under the scraping action of the second collection trough 601, the magnetic impurities on the crushing roller 305 can fall into the second collection trough 601 for collection.

[0029] Please see Figure 3 and Figure 4 The conveying mechanism includes two conveying rollers 902, and the conveying rollers 902 are rotatably connected to the side wall of the pretreatment box 10 via a rotating shaft 901. A second motor 903 is fixedly connected to the side wall of the pretreatment box 10, and the output end of the second motor 903 is fixed to one end of the rotating shaft 901. The conveyor belt 11 is sleeved on the side wall of the conveying rollers 902. When the second motor 903 is started, the conveying rollers 902 are rotated through the rotating shaft 901, and the raw materials are conveyed forward a certain distance through the conveyor belt 11 before the second motor 903 is stopped.

[0030] A multi-dimensional mixing method for bagged raw materials, using a multi-dimensional mixing machine for bagged raw materials, includes the following steps: S1: The raw material is fed into the main body 1 through the feed port 101. At this time, it will first fall onto the conveyor belt 11. Then, the first motor 405 is started. The rotation of the first motor 405 drives the rotation of the disc 406. When the conical block 407 abuts against the side wall of the third push block 403, it can push the connecting block 402 to move away from the pretreatment box 10. At the same time, the fourth spring telescopic rod 401 is stretched and drives the second moving plate 301 to move synchronously. When the conical block 407 passes the side wall of the third push block 403, the connecting block 402 and the second moving plate 301 can move and reset under the action of the fourth spring telescopic rod 401. This process is repeated so that the second moving plate 301 can move back and forth. When the second moving plate 301 moves back and forth, it can make the connecting rod 503 rotate and push the first moving plate 201 to move back and forth. S2: When the first moving plate 201 moves toward the fixed block 502, the first spring telescopic rod 204 drives the first lifting plate 202 and the piercing needle 203 to move, and can also drive the push rod 801 and the push plate 205 to move, so that the push plate 205 can flatten the raw material on the conveyor belt 11. When the push rod 801 slides down along the third inclined plane 806, it can push the first lifting plate 202 and the piercing needle 203 to move down, so as to pierce the raw material and facilitate the discharge of internal gas and liquid. The liquid falls into the first collection tank 13 through the filter hole 12 for collection, ensuring the quality of subsequent mixing. When the first lifting plate 202 moves down, the limiting pin 704 can slide into the lower locking block 703 for limiting. When the first moving plate 201 moves away from the fixed block 502 and resets, the piercing needle 203 can rake the raw material along the conveyor belt 11 toward the crushing roller 305. S3: When the push rod 801 slides upward along the second inclined plane 803, it can push the first lifting plate 202 and the needle 203 to move upward. At the same time, the needle 203 can move upward along the side wall of the second collection groove 601. Through the action of the second collection groove 601, the raw material adhering to the surface of the needle 203 can be scraped and cleaned to avoid adhesion. In addition, the limit pin 704 can slide into a card block 703 above for limit. Then, the second motor 903 is started, and the conveyor roller 902 is driven to rotate through the rotating shaft 901. The raw material is conveyed forward a certain distance through the conveyor belt 11, and then the second motor 903 is stopped. S4: When the conveyor belt 11 conveys the raw material, when the punctured raw material comes into contact with the crushing roller 305, it can push the crushing roller 305 and the second lifting plate 303 to move upward. At the same time, the third spring telescopic rod 302 is compressed and drives the crushing roller 305 to rotate. At this time, the crushing roller 305 can crush the punctured raw material. When the second moving plate 301 moves back and forth, it can drive the crushing roller 305 to move back and forth through the third spring telescopic rod 302 and the second lifting plate 303, which can play a rubbing effect, making it easier for gas and liquid to be discharged, ensuring the quality of subsequent mixing. The crushed raw material can be conveyed to the main body 1 by the conveyor belt 11 for mixing. S5: When the pressing roller 305 squeezes the raw material, under the action of the magnet 602, the pressing roller 305 can adsorb the magnetic impurities in the raw material and convey them along with the pressing roller 305. When it rotates to the top of the second collection tank 601, the magnet 602 no longer adsorbs the magnetic impurities, and under the scraping action of the second collection tank 601, the magnetic impurities on the pressing roller 305 can fall into the second collection tank 601 for collection.

[0031] All standard parts used in this invention can be purchased from the market, and irregular parts can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art, and the circuit connection adopts conventional connection methods in the prior art, which will not be described in detail here. The contents not described in detail in this specification belong to the prior art known to those skilled in the art.

[0032] The present invention and its embodiments have been described above. This description is not restrictive, and the accompanying drawings are only one embodiment of the present invention; the actual structure is not limited thereto. In conclusion, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the spirit of the invention, such designs should fall within the protection scope of the present invention.

Claims

1. A multi-dimensional mixing machine for bagged raw materials, comprising an inlet (101) and an outlet (102) disposed on a main body (1), characterized in that: A pretreatment box (10) is fixedly inserted into the side wall of the feed inlet (101), and a conveyor belt (11) is connected to the pretreatment box (10) through a conveying mechanism. The surface of the conveyor belt (11) is provided with filter holes (12), and a first collection trough (13) is provided below the conveyor belt (11) and is inclined downward. The first collection trough (13) is fixed to the side wall of the pretreatment box (10). A puncturing mechanism for puncturing raw materials is provided above the conveyor belt (11), and a crushing mechanism for crushing raw materials is provided above the conveyor belt (11).

2. The multi-dimensional mixing machine for bagged raw materials according to claim 1, characterized in that: The puncture mechanism includes a first movable plate (201), and the bottom of the first movable plate (201) is connected to a first lifting plate (202) via a first spring telescopic rod (204). The bottom of the first lifting plate (202) is fixedly connected to a plurality of arrayed puncture needles (203). The first movable plate (201) is connected to the top of the pretreatment box (10) via a moving mechanism. The side wall of the first lifting plate (202) is fixedly connected to a push plate (205), and the side wall of the push plate (205) is provided with a first inclined surface (206). The lifting and lowering of the first lifting plate (202) is driven by the push mechanism, and a limit mechanism is provided between the first lifting plate (202) and the first movable plate (201).

3. The multi-dimensional mixing machine for bagged raw materials according to claim 2, characterized in that: The first pushing mechanism includes a pushing rod (801) fixedly connected to the side wall of the first lifting plate (202), and a first pushing block (802) fixedly connected to the inner wall of the pretreatment box (10). The side wall of the first pushing block (802) is provided with a second inclined surface (803), and a connecting frame (804) is fixedly connected to the side wall of the first pushing block (802). The top of the connecting frame (804) is fixedly connected to a second pushing block (805), and the side wall of the second pushing block (805) is provided with a third inclined surface (806).

4. The multi-dimensional mixing machine for bagged raw materials according to claim 2, characterized in that: The limiting mechanism includes a limiting pin (704) fixedly connected to the side wall of the first lifting plate (202), and a moving block (701) is connected to the side wall of the first moving plate (201) via a second spring telescopic rod (702). The side wall of the moving block (701) is fixedly connected to two V-shaped locking blocks (703), and the side wall of the locking blocks (703) is provided with a fourth inclined surface (705).

5. The multi-dimensional mixing machine for bagged raw materials according to claim 1, characterized in that: The rolling mechanism includes a second movable plate (301), which penetrates the side wall of the pretreatment box (10) and is connected to the pretreatment box (10) through a movable component. The bottom of the second movable plate (301) is connected to two second lifting plates (303) through a third spring telescopic rod (302), and the opposite side walls of the two second lifting plates (303) are rotatably connected to hollow rolling rollers (305) through a rotating tube (304).

6. The multi-dimensional mixing machine for bagged raw materials according to claim 5, characterized in that: The moving component includes a connecting block (402) fixedly connected to the bottom of the second moving plate (301), and the connecting block (402) is connected to the pretreatment box (10) via a fourth spring telescopic rod (401). A third push block (403) is fixedly connected to the bottom of the connecting block (402), and an L-shaped frame (404) is fixedly connected to the side wall of the pretreatment box (10). A first motor (405) is fixedly connected to the side wall of the L-shaped frame (404), and a disc (406) is fixedly connected to the output end of the first motor (405). A plurality of arrayed conical blocks (407) are fixedly connected to the end of the disc (406), and the third push block (403) can slide on the side wall of the conical block (407).

7. The multi-dimensional mixing machine for bagged raw materials according to claim 6, characterized in that: The moving mechanism includes a fixed block (502) fixedly connected to the top of the pretreatment box (10), and a first moving plate (201) is connected to the side wall of the fixed block (502) through a fifth spring telescopic rod (501). A connecting rod (503) is rotatably connected to the side wall of the first moving plate (201), and the other end of the connecting rod (503) is rotatably connected to the side wall of the second moving plate (301).

8. The multi-dimensional mixing machine for bagged raw materials according to claim 1, characterized in that: The pretreatment box (10) is provided with a collection mechanism for collecting magnetic impurities in the raw materials. The collection mechanism includes a second collection trough (601) fixedly connected to the pretreatment box (10) and arranged at an angle downwards. The rolling roller (305) is provided with an arc-shaped magnet (602), and the magnet (602) is fixed to the side wall of the second lifting plate (303) by a mounting bracket (603).

9. The multi-dimensional mixing machine for bagged raw materials according to claim 1, characterized in that: The conveying mechanism includes two conveying rollers (902), and the conveying rollers (902) are rotatably connected to the side wall of the pretreatment box (10) via a rotating shaft (901). A second motor (903) is fixedly connected to the side wall of the pretreatment box (10), and the output end of the second motor (903) is fixed to one end of the rotating shaft (901). The conveyor belt (11) is sleeved on the side wall of the conveying rollers (902).

10. A multi-dimensional mixing method for bagged raw materials, using the multi-dimensional mixing machine for bagged raw materials as described in any one of claims 1-9, characterized in that: Includes the following steps: S1: The raw material is fed into the main body (1) through the feed port (101). At this time, it will first fall onto the conveyor belt (11). Then, the first motor (405) is started. The rotation of the first motor (405) drives the rotation of the disc (406). When the conical block (407) abuts against the side wall of the third push block (403), it can push the connecting block (402) to move away from the pretreatment box (10). At the same time, the fourth spring telescopic rod (401) is stretched and drives the second moving block to move away from the pretreatment box (10). The moving plate (301) moves synchronously. When the conical block (407) passes the side wall of the third pushing block (403), the connecting block (402) and the second moving plate (301) can move and reset under the action of the fourth spring telescopic rod (401). By repeating this process, the second moving plate (301) can move back and forth. When the second moving plate (301) moves back and forth, the connecting rod (503) can rotate and push the first moving plate (201) to move back and forth. S2: When the first moving plate (201) moves toward the fixed block (502), the first spring telescopic rod (204) drives the first lifting plate (202) and the needle (203) to move, and can drive the push rod (801) and the push plate (205) to move, so that the push plate (205) can flatten the raw material on the conveyor belt (11). When the push rod (801) slides down along the third inclined plane (806), it can push the first lifting plate (202) and the needle (203) to move downward. The movement allows the raw material to be punctured, facilitating the discharge of internal gas and liquid. The liquid falls into the first collection tank (13) through the filter hole (12) for collection, ensuring the quality of subsequent mixing. When the first lifting plate (202) moves downward, the limiting pin (704) can slide into a lower block (703) for limiting. When the first moving plate (201) moves away from the fixed block (502) and resets, the raw material can be raked along the conveyor belt (11) towards the rolling roller (305) by the puncture needle (203). S3: When the push rod (801) slides upward along the second inclined plane (803), it can push the first lifting plate (202) and the needle (203) to move upward. At the same time, the needle (203) can move upward along the side wall of the second collection groove (601). Through the action of the second collection groove (601), the raw material adhering to the surface of the needle (203) can be scraped and cleaned to avoid adhesion. In addition, the limit pin (704) can slide into a card block (703) above for limit. Then, the second motor (903) is started, and the conveyor roller (902) is driven to rotate through the rotating shaft (901). The raw material is conveyed forward a distance through the conveyor belt (11) and then the second motor (903) is stopped. S4: When the conveyor belt (11) conveys the raw material, when the punctured raw material comes into contact with the crushing roller (305), it can push the crushing roller (305) and the second lifting plate (303) to move upward. At the same time, the third spring telescopic rod (302) is compressed and drives the crushing roller (305) to rotate. At this time, the crushing roller (305) can crush the punctured raw material. When the second moving plate (301) moves back and forth, it can drive the crushing roller (305) to move back and forth through the third spring telescopic rod (302) and the second lifting plate (303), which can play a rubbing effect, making it easier for gas and liquid to be discharged, ensuring the quality of subsequent mixing. In addition, the crushed raw material can be conveyed to the main body (1) for mixing by the conveyor belt (11). S5: When the pressing roller (305) squeezes the raw material, under the action of the magnet (602), the pressing roller (305) can adsorb the magnetic impurities in the raw material and convey them along with the pressing roller (305). When it rotates to the top of the second collection tank (601), the magnet (602) no longer adsorbs the magnetic impurities, and under the scraping action of the second collection tank (601), the magnetic impurities on the pressing roller (305) can fall into the second collection tank (601) for collection.

Citation Information

Patent Citations

  • A modified material mixing equipment for plastic bag production

    CN220972937U