A material isometric blending device
By using an electronic scale, magnetic components, and a hydraulic system to drive the rotation of the storage box, the problem of low efficiency in existing material mixing devices is solved, and efficient proportional and uniform mixing of various materials is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIAMUSI UNIVERSITY
- Filing Date
- 2025-08-29
- Publication Date
- 2026-07-21
AI Technical Summary
Existing material mixing devices use sequential weighing and addition to feed multiple materials in equal proportions, which results in the feeding of the same material being too concentrated, taking a long time to mix evenly, and the feeding of materials after weighing depends on manual labor, which is inefficient.
An electronic scale is used to match the storage box, combined with a magnetic suction component and a hydraulic system to achieve simultaneous weighing and synchronous rotation of multiple materials. An electromagnet is used to lock the storage box, and a dual-axis motor drives a gear system to rotate the storage box. Combined with a stirring rod, the materials are autonomously mixed and uniformly blended.
It shortens the time required for materials to be mixed evenly, improves the efficiency of material feeding, reduces manual operation, and achieves efficient and proportional mixing of multiple materials.
Smart Images

Figure CN224524549U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of material blending technology, and in particular to a material blending device with equal proportions. Background Technology
[0002] Biomass materials are renewable organic materials composed of living organisms or their metabolic products, mainly derived from plants, animals, and microorganisms, and are characterized by their renewability and biodegradability. They include wood, straw, bamboo, starch, cellulose, lignin, hemicellulose, protein, chitin, etc., and are widely used in building decoration, energy and energy storage, industry and manufacturing, agriculture, and environmental remediation.
[0003] In the application of biomass materials, it is necessary to blend multiple materials in equal proportions to combine their superior properties and better meet subsequent usage requirements. Common material blending devices often use a sequential weighing and addition method to feed multiple materials in equal proportions. This operation can lead to the same material being fed too centrally, resulting in a longer time required for uniform blending. Furthermore, the weighed materials often rely on manual addition, which is inefficient and further extends the processing time. Utility Model Content
[0004] The purpose of this application is to provide a material mixing device in proportion to solve the problems mentioned in the background art. Common material mixing devices often use a method of weighing and adding multiple materials in proportion, which leads to the same material being added too frequently, resulting in a long time required for the materials to be mixed evenly. Furthermore, the weighed materials often rely on manual addition, which is inefficient and further prolongs the processing time.
[0005] To achieve the above objectives, this application provides the following technical solution: a material proportional mixing device, comprising a frame, a support plate fixed on the frame, a mixing component installed on the support plate, the mixing component being used for mixing materials, a plurality of electronic scales being installed sequentially from front to back on the top of the frame, a storage box being placed on the electronic scale, an iron block being fixed on the right side of the storage box, and a magnetic suction component being installed on the mixing component, the magnetic suction component being used to attract the iron block and rotate the storage box.
[0006] Furthermore, the magnetic attraction assembly includes two carrier cylinders, each equipped with a hydraulic cylinder. A sliding rod is fixedly mounted on the output end of each hydraulic cylinder, and the sliding rod slides against the inner wall of the carrier cylinder. A U-shaped seat is fixed to the left end of each sliding rod. Carrier columns are inserted into the front and rear sides of the U-shaped seat, and the connection between the U-shaped seat and the carrier column is rotatably connected via a bearing. Several carrier plates are sequentially fixed to the outer wall of each carrier column from front to back. An electromagnet is mounted on the left side of each carrier plate. First gears are fixed to both ends of each carrier column. A drive assembly is mounted on the right side of the U-shaped seat, and the drive assembly is used to drive the two first gears to rotate.
[0007] Furthermore, the drive assembly includes a dual-axis motor, which is mounted on a U-shaped base, and both output shafts of the dual-axis motor are connected to second gears via couplings, with the two second gears meshing with the two first gears respectively.
[0008] Furthermore, the two slide rods are respectively sleeved on the two transmission rods, and the joint between the slide rods and the transmission rods is rotatably connected by bearings.
[0009] Furthermore, the blending assembly includes a blending cylinder, which is fixedly mounted on a support plate, and a feed hopper is fixedly connected to the top of the blending cylinder. Both carrier cylinders are fixedly mounted on the feed hopper, and a discharge pipe is fixedly connected to the bottom of the blending cylinder. A sealing cap is threadedly connected to the bottom end of the discharge pipe.
[0010] Furthermore, a stirring rod is rotatably connected to the top of the inner side of the mixing cylinder via a bearing, and a single-axis motor is installed on the top of the outer side of the mixing cylinder, with the stirring rod driven by the single-axis motor.
[0011] In summary, the technical effects and advantages of this utility model are as follows: In this invention, several electronic scales are matched with several storage boxes to weigh multiple materials simultaneously. A magnetic suction component can simultaneously hold multiple storage boxes and drive them to rotate synchronously, so that the multiple materials contained in the multiple storage boxes can be fed into the mixing component at the same time. In this way, multiple materials can mix autonomously during the feeding process, which is beneficial to the subsequent uniform mixing and shortens the time required for uniform mixing.
[0012] In this invention, a hydraulic cylinder pushes a sliding rod to move, causing the two sliding rods to pull the U-shaped seat and the carrier column to move. Several electromagnets on the carrier column move synchronously with the carrier column, which can move closer to the storage box. After the electromagnets are energized, they can attract iron blocks to lock the storage box and the electromagnets. Subsequently, a dual-shaft motor drives two second gears to rotate, which in turn pulls two first gears and the U-shaped seat to rotate. This causes the U-shaped seat to drive several storage boxes to rotate simultaneously, orderly feeding the various materials into the mixing component, reducing manpower consumption and improving the efficiency of material feeding. Attached Figure Description
[0013] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the embodiments or the prior art will be briefly introduced below.
[0014] Figure 1 This is a three-dimensional structural schematic diagram of a material proportional mixing device according to an embodiment of this application; Figure 2 This is a front view of a material blending apparatus according to an embodiment of this application; Figure 3 This is a three-dimensional structural diagram of the magnetic suction component in the embodiments of this application; Figure 4 This is a partial structural schematic diagram of the magnetic suction component in an embodiment of this application; Figure 5 This is a three-dimensional structural diagram of the mixing component in the embodiments of this application.
[0015] In the diagram: 1. Frame; 2. Support plate; 3. Electronic scale; 4. Storage box; 5. Iron block; 6. Carrier cylinder; 7. Hydraulic cylinder; 8. Slide rod; 9. U-shaped seat; 10. Carrier column; 11. Carrier plate; 12. Electromagnet; 13. First gear; 14. Dual-shaft motor; 15. Transmission rod; 16. Second gear; 17. Mixing cylinder; 18. Feed hopper; 19. Single-shaft motor; 20. Stirring rod; 21. Discharge pipe; 22. Sealing cover. Detailed Implementation
[0016] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0017] Example: Reference Figure 1-5 The material mixing device shown includes a frame 1, a support plate 2 fixed on the frame 1, a mixing component installed on the support plate 2, the mixing component being used for mixing the material, a plurality of electronic scales 3 being installed sequentially from front to back on the top of the frame 1, a storage box 4 being placed on the electronic scales 3, an iron block 5 being fixed on the right side of the storage box 4, and a magnetic suction component being installed on the mixing component, the magnetic suction component being used to attract the iron block 5 and rotate the storage box 4; Multiple electronic scales 3 can be matched with multiple storage boxes 4 to weigh multiple materials at the same time. With the help of magnetic components, multiple storage boxes 4 can be attracted at the same time and rotated synchronously. This allows the multiple materials contained in the multiple storage boxes 4 to be fed into the mixing component at the same time. In this way, multiple materials can mix autonomously during the feeding process, which is conducive to uniform mixing in the later stage.
[0018] The magnetic suction assembly includes two carrier cylinders 6, each with a hydraulic cylinder 7 mounted on it. The hydraulic cylinders are equipped with a power source, which is a standard feature in the field and can be implemented by technicians using existing technology. A slide rod 8 is fixedly mounted on the output end of the hydraulic cylinder 7. The slide rod 8 slides against the inner wall of the carrier cylinder 6. A U-shaped seat 9 is fixed to the left end of the two slide rods 8. Carrier columns 10 are inserted into the front and rear sides of the U-shaped seat 9. The connection between the U-shaped seat 9 and the carrier columns 10 is rotatably connected by a bearing. Multiple carrier plates 11 are fixed to the outer wall of the carrier column 10 from front to back. An electromagnet 12 is mounted on the left side of the carrier plate 11. First gears 13 are fixed to both ends of the carrier column 10. A drive assembly is mounted on the right side of the U-shaped seat 9. The drive assembly is used to drive the two first gears 13 to rotate. The drive assembly includes a dual-axis motor 14, which is mounted on a U-shaped base 9. Both output shafts of the dual-axis motor 14 are connected to second gears 16 via couplings. The two second gears 16 mesh with the two first gears 13 respectively. Two slide rods 8 are respectively sleeved on the two transmission rods 15, and the joint between the slide rods 8 and the transmission rods 15 is rotatably connected by bearings. The slide rods 8 are used to support and reinforce the transmission rods 15. The hydraulic cylinder 7 pushes the slide bar 8 to move, causing the two slide bars 8 to pull the U-shaped seat 9 and the carrier column 10 to move. The multiple electromagnets 12 on the carrier column 10 move synchronously with the carrier column 10 and can move closer to the storage box 4. After the electromagnet 12 is energized, it can attract the iron block 5 to complete the locking between the storage box 4 and the electromagnet 12. Subsequently, the dual-shaft motor 14 drives the two second gears 16 to rotate. The two second gears 16 pull the two first gears 13 and the U-shaped seat 9 to rotate, causing the U-shaped seat 9 to drive the multiple storage boxes 4 to rotate simultaneously, so that the various materials contained therein can be orderly put into the mixing component, reducing the consumption of manpower and improving the efficiency of material feeding.
[0019] The mixing assembly includes a mixing cylinder 17, which is fixedly installed on a support plate 2. The top of the mixing cylinder 17 is fixedly connected to a feed hopper 18, and both carrier cylinders 6 are fixedly installed on the feed hopper 18. The bottom of the mixing cylinder 17 is fixedly connected to a discharge pipe 21, and the bottom end of the discharge pipe 21 is threadedly connected to a sealing cap 22. The top of the inner side of the mixing cylinder 17 is rotatably connected to a stirring rod 20 through a bearing, and a single-shaft motor 19 is installed on the top of the outer side of the mixing cylinder 17. The stirring rod 20 is driven by the single-shaft motor 19. The stirring rod 20 is driven to rotate by the single-shaft motor 19. The stirring rod 20 can stir the various materials put into the mixing cylinder 17 to help the materials mix evenly. After unscrewing the sealing cap 22, the evenly mixed materials can be discharged along the discharge pipe 21.
[0020] Working principle of this utility model: Multiple biomass materials are sequentially added into multiple storage boxes 4. The weight of the materials in the storage boxes 4 is determined by an electronic scale 3, so that the multiple biomass materials are added to the multiple storage boxes 4 in a certain proportion. After the materials are added, the two hydraulic cylinders 7 are extended, so that the two hydraulic cylinders 7 push the two slide rods 8 to move towards the storage box 4. The slide rods 8 push the U-shaped seat 9, the carrier column 10, the carrier plate 11 and the electromagnet 12 to move towards the storage box 4 until the multiple energized electromagnets 12 attract the corresponding multiple iron blocks 5, and the extension of the hydraulic cylinders 7 is stopped. The dual-axis motor 14 is powered on, causing it to drive two second gears 16 to rotate. The two second gears 16 then pull two first gears 13 to rotate, which in turn drive the carrier column 10 to rotate. The carrier column 10 drives multiple storage boxes 4 to rotate synchronously. The various materials contained in the storage boxes 4 can be simultaneously fed into the feed hopper 18. During the feeding process, the various materials will mix autonomously. After initial mixing, they enter the mixing cylinder 17. The powered single-axis motor 19 drives the stirring rod 20 to rotate, causing the stirring rod 20 to agitate the mixture in the mixing cylinder 17 until the materials are evenly mixed. The sealing cap 22 is then unscrewed, and the mixed materials in the mixing cylinder 17 can be discharged along the discharge pipe 21.
[0021] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A material blending device, comprising a frame (1), characterized in that: A support plate (2) is fixed on the frame (1), and a mixing component is installed on the support plate (2). The mixing component is used to mix the materials. Several electronic scales (3) are installed on the top of the frame (1) from front to back. A storage box (4) is placed on the electronic scale (3). An iron block (5) is fixed on the right side of the storage box (4). A magnetic suction component is installed on the mixing component. The magnetic suction component is used to attract the iron block (5) and rotate the storage box (4).
2. The material blending device according to claim 1, characterized in that: The magnetic attraction assembly includes two carrier cylinders (6), on which a hydraulic cylinder (7) is installed. A slide rod (8) is fixedly installed at the output end of the hydraulic cylinder (7). The slide rod (8) slides against the inner wall of the carrier cylinder (6). A U-shaped seat (9) is fixed at the left end of the two slide rods (8). Carrier columns (10) are inserted into the front and rear sides of the U-shaped seat (9). The junction of the U-shaped seat (9) and the carrier column (10) is rotatably connected by a bearing. Several carrier plates (11) are fixed sequentially from front to back on the outer wall of the carrier column (10). An electromagnet (12) is installed on the left side of the carrier plate (11). A first gear (13) is fixed at both ends of the carrier column (10). A drive assembly is installed on the right side of the U-shaped seat (9). The drive assembly is used to drive the two first gears (13) to rotate.
3. The material blending device according to claim 2, characterized in that: The drive assembly includes a dual-axis motor (14), which is mounted on a U-shaped base (9). Both output shafts of the dual-axis motor (14) are connected to second gears (16) via couplings. The two second gears (16) mesh with the two first gears (13) respectively.
4. The material blending device according to claim 3, characterized in that: The two slide rods (8) are respectively sleeved on the two transmission rods (15), and the joint between the slide rods (8) and the transmission rods (15) is rotatably connected by bearings.
5. A material blending device according to claim 2, characterized in that: The mixing assembly includes a mixing cylinder (17), which is fixedly installed on a support plate (2). The top of the mixing cylinder (17) is fixedly connected to a feed hopper (18). Both carrier cylinders (6) are fixedly installed on the feed hopper (18). The bottom of the mixing cylinder (17) is fixedly connected to a discharge pipe (21), and the bottom end of the discharge pipe (21) is threadedly connected to a sealing cap (22).
6. The material blending device according to claim 5, characterized in that: The top of the inner side of the mixing cylinder (17) is rotatably connected to a stirring rod (20) via a bearing, and a single-axis motor (19) is installed on the top of the outer side of the mixing cylinder (17). The stirring rod (20) is driven by the single-axis motor (19).