Beneficiation equipment with stirring function

CN224614361UActive Publication Date: 2026-08-11THE NILE MASCH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-15
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0004]本实用新型要解决的技术问题是:现有技术中存在具有搅拌功能的选矿设备,通常在收集筛分后矿料时存在不足,导致矿料散落或堆积内部造成资源浪费和环境杂乱,又因筛网易被矿料堆积堵塞的缺点,为此我们提出具有搅拌功能的选矿设备

Benefits of technology

本实用新型中,通过拉动拉板带动移动块进行移动,利用转轴、连板对滑动板产生挤压,拉动滑动板带动插块进入连接槽的内部,从而完成选矿箱和收集箱之间的连接,通过上述设置,能够有效地收集经过筛分或过滤后的矿料,避免矿料在选矿箱内部堆积或流失,特别是对于一些细小颗粒的有用矿物,通过收集箱的集中收集,可以确保这些矿物不会被浪费,同时保持作业环境的整洁,从而提高资源的回收率,提高了后续作业的效率。

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Abstract

This utility model relates to the field of mineral processing technology and discloses a mineral processing equipment with a stirring function, including a mineral processing box: a feed hopper is fixed to the top of the mineral processing box, a stirring device is installed inside the mineral processing box, and a screen is installed inside the mineral processing box. This mineral processing equipment with a stirring function moves a moving block by pulling a pull plate, and uses a rotating shaft and connecting plate to compress a sliding plate, pulling the sliding plate to move an insert block into the connecting groove, thereby completing the connection between the mineral processing box and the collection box. Through the above configuration, the ore after screening or filtering can be effectively collected, preventing the ore from accumulating or being lost inside the mineral processing box. Especially for some fine-particle useful minerals, the centralized collection in the collection box ensures that these minerals are not wasted, while maintaining a clean working environment, thereby improving resource recovery rate and increasing the efficiency of subsequent operations.
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Description

Technical Field

[0001] This utility model relates to the field of mineral processing technology, and in particular to mineral processing equipment with a stirring function. Background Technology

[0002] Mineral processing technology encompasses the techniques and processes for separating and extracting valuable minerals from ores. In the mining and processing of mineral resources, mineral processing equipment is the core equipment for mineral separation and extraction. When separating minerals, it is usually necessary to first stir and mix the ore.

[0003] Regarding existing related technologies, the inventors believe that the following defects often exist: Existing mineral processing equipment with stirring function usually has shortcomings in collecting and screening mineral materials, which affects the convenience of mineral material collection and the continuous operation efficiency of the equipment. Furthermore, it is easy for mineral materials to scatter or accumulate inside the equipment during the collection process, resulting in resource waste and a messy working environment. At the same time, the screen is prone to clogging of the screen holes due to mineral material accumulation during the screening process, affecting the screening effect and efficiency. Utility Model Content

[0004] The technical problem to be solved by this utility model is that existing mineral processing equipment with stirring function usually has shortcomings in collecting and screening mineral materials, resulting in the mineral materials being scattered or accumulating inside, causing resource waste and environmental mess. In addition, the screen is easily blocked by the accumulation of mineral materials. Therefore, we propose a mineral processing equipment with stirring function.

[0005] To achieve the above objectives, this application adopts the following technical solution: a mineral processing equipment with a stirring function, comprising a mineral processing box: a feed hopper is fixed to the top of the mineral processing box; a stirring device is installed inside the mineral processing box; a screen is installed inside the mineral processing box; a guide plate is fixed inside the mineral processing box and located below the screen; a discharge port is opened on one side of the mineral processing box and located on one side of the guide plate; a collection box is installed on one side of the mineral processing box and located on one side of the discharge port; fixed shells are fixed on both sides of the mineral processing box; connecting blocks are fixed at both ends of the collection box; a square groove is opened on one side of the fixed shell; a pull plate is slidably connected inside the square groove; a moving block is installed inside the fixed shell; one end of the pull plate is fixed to the moving block; connecting plates are rotatably connected to both ends of one side of the moving block via a first rotating shaft; a sliding plate is rotatably connected to the other end of the connecting plate via a rotating shaft; an insert block is fixed on one side of the sliding plate; and connecting grooves that cooperate with the insert block are opened at both ends of the connecting block.

[0006] Preferably, guide blocks are fixed at both ends of the movable block, and guide grooves that cooperate with the guide blocks are provided inside the fixed shell.

[0007] Preferably, a through rod is fixed inside the fixed shell, and the surface of the through rod is slidably connected to the inside of the sliding plate.

[0008] Preferably, a first spring is slidably connected to the surface of the through rod, one end of the first spring is fixed to the sliding plate, and the other end of the first spring is fixed to the inside of the fixed shell.

[0009] Preferably, the ore dressing box is equipped with a rotating rod inside, the rotating rod is located below the screen, a motor is provided on one side of the ore dressing box, the output end of the motor is fixed to one end of the rotating rod, and protrusions are fixed at both ends of the rotating rod, with one end of the protrusion contacting the bottom of the screen.

[0010] Preferably, both sides of the interior of the ore dressing box are fixed with fixing plates, and both sides of the top of the screen are fixed with two limiting rods, the surface of the limiting rods being slidably connected to the interior of the fixing plates.

[0011] Preferably, a second spring is slidably connected to the surface of the limiting rod, one end of the second spring is fixed to the fixing plate, and the other end of the second spring is fixed to the screen.

[0012] The technical effects and advantages of this utility model are as follows: In this invention, the moving block is moved by pulling the pull plate, and the sliding plate is squeezed by the rotating shaft and connecting plate. The sliding plate is pulled to move the insert block into the connecting groove, thereby completing the connection between the mineral processing box and the collection box. Through the above settings, the mineral material after screening or filtration can be effectively collected, avoiding the accumulation or loss of mineral material inside the mineral processing box. Especially for some fine-particle useful minerals, the centralized collection by the collection box can ensure that these minerals are not wasted, while maintaining the cleanliness of the working environment, thereby improving the resource recovery rate and the efficiency of subsequent operations.

[0013] In this invention, a motor drives a rotating rod to rotate, which causes the protrusions to rotate as well. During the rotation, the protrusions intermittently contact the bottom of the screen and lift the screen, effectively preventing the ore from accumulating on the screen and clogging the screen holes. This improves the screening efficiency and effect of the screen, ensures that the screening operation can be carried out continuously and stably, and helps to improve the smoothness of the overall mineral processing process. Attached Figure Description

[0014] The disclosure of this utility model is illustrated with reference to the accompanying drawings. It should be understood that the drawings are for illustrative purposes only and are not intended to limit the scope of protection of this utility model. In the drawings, the same reference numerals are used to refer to the same parts: Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2This is a schematic diagram of the internal cross-sectional structure of the mineral processing box of this utility model; Figure 3 This is a schematic diagram of the internal cross-sectional structure of the shell of this utility model; Figure 4 This is a schematic diagram of the rotating shaft structure of this utility model; Figure 5 This is a schematic diagram of the screen structure of this utility model.

[0015] Legend: 1. Mineral processing box; 2. Feed hopper; 3. Agitator; 4. Screen; 5. Guide plate; 6. Discharge port; 7. Collection box; 8. Fixed shell; 9. Connecting block; 10. Square groove; 11. Pull plate; 12. Moving block; 13. Connecting plate; 14. Sliding plate; 15. Insert block; 16. Connecting groove; 17. Guide block; 18. Guide groove; 19. Through rod; 20. First spring; 21. Motor; 22. Protrusion; 23. Fixed plate; 24. Limiting rod; 25. Second spring; 26. Rotating rod. Detailed Implementation

[0016] It is readily understood that, based on the technical solution of this utility model, those skilled in the art can propose various interchangeable structural methods and implementations without altering the essential spirit of this utility model. Therefore, the following detailed embodiments and accompanying drawings are merely illustrative descriptions of the technical solution of this utility model and should not be considered as the entirety of this utility model or as limitations or restrictions on the technical solution of this utility model.

[0017] Reference Figures 1-5As shown, this utility model provides a technical solution: a mineral processing equipment with a stirring function, including a mineral processing box 1; a feed hopper 2 is fixed to the top of the mineral processing box 1; a stirring device 3 is installed inside the mineral processing box 1; a screen 4 is installed inside the mineral processing box 1; a guide plate 5 is fixed inside the mineral processing box 1, located below the screen 4; a discharge port 6 is opened on one side of the mineral processing box 1, located on one side of the guide plate 5; a collection box 7 is installed on one side of the mineral processing box 1, located on one side of the discharge port 6; fixed shells 8 are fixed on both sides of the mineral processing box 1; connecting blocks 9 are fixed at both ends of the collection box 7; a square groove 10 is opened on one side of the fixed shell 8; a pull plate 11 is slidably connected inside the square groove 10; a moving block 12 is installed inside the fixed shell 8; one end of the pull plate 11 is fixed to the moving block 12; both ends of one side of the moving block 12 are connected by a first rotating... A connecting plate 13 is rotatably connected to the shaft, and a sliding plate 14 is rotatably connected to the other end of the connecting plate 13 via a rotating shaft. An insert block 15 is fixed on one side of the sliding plate 14. Both ends of the connecting block 9 are provided with connecting grooves 16 that cooperate with the insert block 15. By pulling the pulling plate 11, the moving block 12 is moved. The rotating shaft and connecting plate 13 squeeze the sliding plate 14, pulling the sliding plate 14 and causing the insert block 15 to enter the interior of the connecting groove 16, thereby completing the connection between the mineral processing box 1 and the collection box 7. Through the above settings, the mineral material after screening or filtration can be effectively collected, avoiding the accumulation or loss of mineral material inside the mineral processing box 1. Especially for some fine-particle useful minerals, the centralized collection by the collection box 7 can ensure that these minerals are not wasted, while maintaining the cleanliness of the working environment, thereby improving the resource recovery rate and the efficiency of subsequent operations.

[0018] Reference Figure 3 As shown in this embodiment: guide blocks 17 are fixed at both ends of the moving block 12, and guide grooves 18 that cooperate with the guide blocks 17 are provided inside the fixed shell 8. By setting the structure of guide blocks 17 and guide grooves 18, the movement path of the moving block 12 is effectively constrained, and deviation is avoided.

[0019] Reference Figure 3 As shown in this embodiment: a through rod 19 is fixed inside the fixed shell 8, and the surface of the through rod 19 is slidably connected to the inside of the sliding plate 14. By setting the structure of the through rod 19, the consistency and stability of the movement of the sliding plate 14 are ensured.

[0020] Reference Figure 3As shown in this embodiment: a first spring 20 is slidably connected to the surface of the through rod 19. One end of the first spring 20 is fixed to the sliding plate 14, and the other end of the first spring 20 is fixed to the inside of the fixed shell 8. By setting the structure of the first spring 20, when it is necessary to disconnect the connection between the ore dressing box 1 and the collection box 7, the pull plate 11 is pulled to drive the moving block 12 to move. The rotating shaft and connecting plate 13 are used to squeeze the sliding plate 14. At the same time, the tensile force of the first spring 20 is used to pull the sliding plate 14 to drive the insert block 15 away from the inside of the connecting groove 16, thereby disconnecting the connection and making it convenient for the operator to use it next time.

[0021] Reference Figure 2 and Figure 4 As shown in this embodiment: a rotating rod 26 is installed inside the ore dressing box 1, located below the screen 4. A motor 21 is installed on one side of the ore dressing box 1, with the output end of the motor 21 fixed to one end of the rotating rod 26. Both ends of the rotating rod 26 are fixed with protrusions 22, one end of which contacts the bottom of the screen 4. The motor 21 drives the rotating rod 26 to rotate, causing the protrusions 22 to rotate as well. During the rotation, the protrusions 22 intermittently contact the bottom of the screen 4 and lift the screen 4, effectively preventing the ore from accumulating on the screen 4 and clogging the screen holes. This improves the screening efficiency and effect of the screen 4, ensures that the screening operation can be carried out continuously and stably, and helps to improve the smoothness of the overall ore dressing process.

[0022] Reference Figure 2 and Figure 5 As shown in this embodiment: both sides of the interior of the ore dressing box 1 are fixed with fixing plates 23, and both sides of the top of the screen 4 are fixed with two limiting rods 24. The surface of the limiting rods 24 is slidably connected to the interior of the fixing plates 23. By setting the structure of the limiting rods 24, when the screen 4 vibrates up and down under the action of the protrusions 22, the limiting rods 24 will slide inside the fixing plates 23, which plays a guiding and limiting role in the vibration of the screen 4, preventing the screen 4 from shifting laterally or tilting during the vibration, ensuring the stability of the vibration of the screen 4, ensuring that the screen 4 is always in the correct screening position, and improving the reliability of the screening work.

[0023] Reference Figure 5As shown in this embodiment: a second spring 25 is slidably connected to the surface of the limiting rod 24. One end of the second spring 25 is fixed to the fixing plate 23, and the other end of the second spring 25 is fixed to the screen 4. By setting the structure of the second spring 25, when the screen 4 is pushed up by the protrusion 22, the second spring 25 will be stretched. When the protrusion 22 separates from the screen 4, the second spring 25 will pull the screen 4 back to its original position under its own elasticity. The elastic force of the second spring 25 can be used to assist the screen 4 to achieve rapid reset, which enhances the vibration effect of the screen 4, further improves the screen 4's anti-clogging ability and screening efficiency, and also reduces the impact force of the protrusion 22 on the screen 4, which is conducive to extending the service life of the screen 4.

[0024] Working principle: The user moves the moving block 12 by pulling the pull plate 11. The rotating shaft and connecting plate 13 compress the sliding plate 14, pulling the sliding plate 14 to move the insert block 15 into the connecting groove 16, thus completing the connection between the mineral processing box 1 and the collection box 7. This setup effectively collects the ore after screening or filtering, preventing accumulation or loss of ore inside the mineral processing box 1. Especially for fine-particle valuable minerals, the centralized collection in the collection box 7 ensures that these minerals are not wasted, while maintaining a clean working environment, thereby improving resource recovery rate and the efficiency of subsequent operations. By setting the structure of guide block 17 and guide groove 18, the movement path of moving block 12 is effectively constrained, avoiding deviation. By setting the structure of through rod 19, the consistency and stability of sliding plate 14 during movement are ensured. By setting the structure of first spring 20, when it is necessary to disconnect the connection between ore dressing box 1 and collection box 7, pulling plate 11 drives moving block 12 to move. The rotating shaft and connecting plate 13 squeeze sliding plate 14, and at the same time, the tensile force of first spring 20 pulls sliding plate 14 to drive insert block 15 away from the inside of connecting groove 16, thereby disconnecting the connection and facilitating the operator's next use. 1. The rotating rod 26 rotates, causing the protrusion 22 to rotate as well. During rotation, the protrusion 22 intermittently contacts the bottom of the screen 4 and lifts the screen 4, effectively preventing the ore from accumulating on the screen 4 and clogging the screen holes. This improves the screening efficiency and effect of the screen 4, ensuring continuous and stable screening operations and enhancing the smoothness of the overall mineral processing flow. By setting a limiting rod 24, when the screen 4 vibrates up and down under the action of the protrusion 22, the limiting rod 24 slides within the fixed plate 23, guiding and limiting the vibration of the screen 4, preventing lateral displacement of the screen 4 during vibration. The tilting mechanism ensures the stability of the vibration of the screen 4, guaranteeing that the screen 4 is always in the correct screening position and improving the reliability of the screening operation. The structure of the second spring 25 allows it to stretch when the screen 4 is lifted by the protrusion 22. When the protrusion 22 separates from the screen 4, the second spring 25 pulls the screen 4 back to its original position under its own elasticity. This allows the elastic force of the second spring 25 to assist the screen 4 in achieving rapid reset, enhancing the vibration effect of the screen 4 and further improving its anti-clogging ability and screening efficiency. It also reduces the impact force of the protrusion 22 on the screen 4, which helps extend the service life of the screen 4.

[0025] The technical scope of this utility model is not limited to the content described above. Those skilled in the art can make various modifications and variations to the above embodiments without departing from the technical concept of this utility model, and all such modifications and variations should fall within the protection scope of this utility model.

Claims

1. A mineral processing equipment with a stirring function, characterized in that, The ore dressing box (1) includes a feed hopper (2) fixed at the top of the ore dressing box (1), a stirring device (3) installed inside the ore dressing box (1), a screen (4) installed inside the ore dressing box (1), a guide plate (5) fixed inside the ore dressing box (1), the guide plate (5) located below the screen (4), a discharge port (6) opened on one side of the ore dressing box (1), the discharge port (6) located on one side of the guide plate (5), a collection box (7) installed on one side of the ore dressing box (1), the collection box (7) located on one side of the discharge port (6), and fixed shells (8) fixed on both sides of the ore dressing box (1). Both ends of the fixed shell (8) are fixed with connecting blocks (9). A square groove (10) is provided on one side of the fixed shell (8). A pull plate (11) is slidably connected inside the square groove (10). A moving block (12) is provided inside the fixed shell (8). One end of the pull plate (11) is fixed to the moving block (12). Both ends of one side of the moving block (12) are rotatably connected to a connecting plate (13) through a first rotating shaft. The other end of the connecting plate (13) is rotatably connected to a sliding plate (14) through a rotating shaft. An insert (15) is fixed on one side of the sliding plate (14). Both ends of the connecting block (9) are provided with connecting grooves (16) that cooperate with the insert (15).

2. The mineral processing equipment with stirring function according to claim 1, characterized in that: Both ends of the movable block (12) are fixed with guide blocks (17), and the interior of the fixed shell (8) is provided with guide grooves (18) that cooperate with the guide blocks (17).

3. The mineral processing equipment with stirring function according to claim 1, characterized in that: A through rod (19) is fixed inside the fixed shell (8), and the surface of the through rod (19) is slidably connected to the inside of the sliding plate (14).

4. The mineral processing equipment with stirring function according to claim 3, characterized in that: The surface of the through rod (19) is slidably connected to a first spring (20), one end of the first spring (20) is fixed to the sliding plate (14), and the other end of the first spring (20) is fixed to the inside of the fixed shell (8).

5. The mineral processing equipment with stirring function according to claim 1, characterized in that: The ore dressing box (1) is equipped with a rotating rod (26) located below the screen (4). A motor (21) is provided on one side of the ore dressing box (1). The output end of the motor (21) is fixed to one end of the rotating rod (26). Both ends of the rotating rod (26) are fixed with protrusions (22). One end of the protrusions (22) is in contact with the bottom of the screen (4).

6. The mineral processing equipment with stirring function according to claim 1, characterized in that: The ore dressing box (1) has two fixed plates (23) on both sides inside, and two limiting rods (24) are fixed on both sides of the top of the screen (4). The surface of the limiting rods (24) is slidably connected to the inside of the fixed plate (23).

7. The mineral processing equipment with stirring function according to claim 6, characterized in that: The surface of the limiting rod (24) is slidably connected to a second spring (25). One end of the second spring (25) is fixed to the fixing plate (23), and the other end of the second spring (25) is fixed to the screen (4).