Intelligent mine preparation equipment containing chemical adding structure and method

By introducing quantitative dosing components and chemical mixing components into the mineral processing equipment, the problem of difficult dosing in traditional mineral processing has been solved, achieving precise quantitative dosing and improving the accuracy and stability of mineral processing.

CN120860891APending Publication Date: 2025-10-31QINGHAI HONGXIN MINING CO LTD
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Patent Information

Application Number
CN202511286163.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-10
Publication Date
2025-10-31

AI Technical Summary

Technical Problem

In traditional mineral processing, it is difficult to precisely control the amount of reagents added, which can easily lead to problems of adding too much or too little reagent.

Method used

The intelligent mineral processing equipment for mines adopts a dosing structure. The quantitative dosing component monitors the weight of the chemical solution in real time. Combined with the disturbance plate and wave-shaped baffle of the chemical solution mixing component, it ensures that the chemical solution and water are fully mixed and achieves precise quantitative dosing.

Benefits of technology

It enables real-time monitoring of the chemical solution weight, ensuring that each addition meets the preset quantitative amount, avoiding over- or under-addition, and improving the accuracy and stability of mineral processing.

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Abstract

The invention belongs to the technical field of intelligent ore dressing equipment, particularly relates to intelligent mine ore dressing equipment containing a chemical adding structure and a method, and provides the following scheme for solving the problem that the chemical adding amount is difficult to accurately control: the intelligent mine ore dressing equipment comprises an ore dressing device, a feeding shell is fixedly connected to the top end of the ore dressing device, and a crushing device is arranged in the feeding shell; the top end of the mineral separation device is fixedly connected with a chemical adding tank, a slope is fixedly connected to the interior of the mineral separation device, the front end of the slope is fixedly connected with a filter plate, the filter plate is fixedly connected to the two sides of the interior of the mineral separation device, and chemical conveying pipelines are fixedly connected to the two sides of the chemical adding tank. According to the intelligent mine beneficiation equipment containing the chemical adding structure and the method, the weight of chemical liquid is monitored in real time, the chemical adding amount can be accurately controlled, it is ensured that chemical adding every time meets the preset quantitative requirement, the situation that the beneficiation effect is affected by too much or too little chemical adding is avoided, and the beneficiation accuracy and stability are improved.
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Description

Technical Field

[0001] This invention relates to the field of intelligent mineral processing equipment technology, and in particular to an intelligent mineral processing equipment and method for mines with a reagent addition structure. Background Technology

[0002] Mineral processing equipment refers to equipment used to separate useful minerals from gangue minerals. This equipment plays a crucial role in the mining process, helping to improve ore quality and recovery rates.

[0003] In the traditional mineral processing chemical dosing process, controlling the dosage has always been a challenge. Due to the lack of precise monitoring and control methods, it is difficult for workers to accurately determine how much chemical solution to add, often resulting in overdosing or underdosing. Summary of the Invention

[0004] This invention discloses an intelligent mineral processing equipment and method with a reagent addition structure, aiming to solve the problem in the traditional mineral processing reagent addition process in the background art that it is difficult to accurately control the amount of reagent added, and it is easy to add too much or too little reagent.

[0005] This invention proposes an intelligent mineral processing equipment with a dosing structure, comprising a mineral processing device. A feed shell is fixedly connected to the top of the mineral processing device, and a crushing device is installed inside the feed shell. A dosing tank is fixedly connected to the top of the mineral processing device, and a ramp is fixedly connected inside the mineral processing device. A filter plate is fixedly connected to the front end of the ramp, and the filter plate is fixedly connected to both sides of the inside of the mineral processing device. A dosing pipeline is fixedly connected to both sides of the dosing tank, and a quantitative dosing component is installed on the outer side of each dosing pipeline. The quantitative dosing component includes a quantitative tank, a gravity detector is fixedly connected to the inner side of the quantitative tank, and a scale plate is installed on the side of the quantitative tank away from the dosing pipeline.

[0006] In a preferred embodiment, a fixing ring is fixedly connected to the outer side of the drug delivery pipeline. Two extension rods are fixedly connected to the outer side of the fixing ring, and a flexible rod is fixedly connected to the bottom end of each extension rod. A limiting plate is fixedly connected to the bottom end of each flexible rod. A connecting ring is fixedly connected to the outer side of the metering tank. Spherical rods are fixedly connected to both ends of the connecting ring, and the outer side of the spherical rods is movably connected to the spherical interface of the limiting plate. An indicator is fixedly connected to the side of the limiting plate away from the drug tank. A scale plate is movably connected inside the indicator. Arc gears are fixedly connected to the outer sides of both ends of the connecting ring. A rotating gear is provided below each arc gear. The rotating gear and the arc gear mesh with each other through tooth grooves. A drive motor is connected to the inner side of the rotating gear near the scale plate through a coupling. A rotating rod is fixedly connected between the two rotating gears. A connecting seat is movably connected to the outer side of the rotating rod, and the top end of the connecting seat is fixedly connected to the bottom end of the scale plate.

[0007] In a preferred embodiment, the mineral processing device includes a chemical mixing assembly. This assembly comprises multiple movable rods, all rotatably connected to the interior of the device. A disturbance plate is fixedly connected to the outer side of each movable rod. Multiple circular holes are formed on the front side of the device, with the movable rods rotatably connected to the interior of these holes. Multiple notched gears are also provided on the front side of the device, fixedly connected to the outer side of each movable rod. A gear belt is provided on the outer side of each notched gear, and the gear belt meshes with the notched gear through tooth grooves. A rotary motor is also provided on the front side of the device. The power output shaft of the rotary motor is connected to a rotating shaft via a coupling. The side of the rotating shaft away from the rotary motor is fixedly connected to one side of a movable rod located at the bottom. A belt is provided on the outer side of the rotating shaft, and a threaded rod is provided inside the belt on the side away from the rotating shaft. A hole is opened on the front side of the mineral processing device, and the threaded rod is movably connected inside the hole. Two positioning rods are fixedly connected to both sides of the interior of the mineral processing device. Sliding seats are movably connected to the outer sides of both the positioning rods and the threaded rod. Multiple flexible springs are fixedly connected to the top of the sliding seats, and wave-shaped baffles are fixedly connected to the top of each flexible spring.

[0008] In a preferred embodiment, a rectangular hole is provided on the side of the feed housing away from the dosing tank. A push plate is installed inside the rectangular hole. Two connecting rods are fixedly connected to the side of the push plate away from the dosing tank. A movable plate is fixedly connected to one side of each connecting rod. Two spring rods are fixedly connected to the bottom end of the movable plate near the feed housing. A telescopic electric rod is fixedly connected to the bottom end of the movable plate near the feed housing. One side of the telescopic electric rod and the spring rods are fixedly connected to the outside of the mineral processing device. A servo motor is fixedly connected to the top of the dosing tank. The power output shaft of the servo motor is connected to a rotating rod through a coupling. The rotating rod is located inside the dosing tank. An agitator is fixedly connected to the outside of the rotating rod. Two feed inlets are fixedly connected to the top of the mineral processing device.

[0009] A method for using an intelligent mineral processing equipment with a reagent dosing structure, comprising the following steps: Step 1: Put the ore into the feed shell. The crushing device in the feed shell will then start to crush the ore. The crushed ore falls onto the slope and, relying on the slope's inclination angle, slides smoothly into the beneficiation device, preparing for the subsequent beneficiation process. Step 2: The servo motor at the top of the dosing tank starts to run, driving the internal stirring component of the dosing tank to rotate, which fully stirs the medicine in the dosing tank and makes the medicine components evenly mixed. Step 3: When quantitative dosing is required, the chemical solution is transported to the quantitative dosing tank of the quantitative dosing component through the dosing pipeline. During the dosing process, the gravity detector inside the quantitative tank detects the weight of the chemical solution in the tank in real time. When the weight reaches the preset value, the dosing stops. Then, the drive motor starts and drives the arc gear to rotate. The arc gear drives the quantitative tank to tilt 90 degrees, and the chemical solution in the tank flows into the mineral processing device through the feed port. Step 4: After the reagent enters the mineral processing unit, the reagent mixing component starts to work. Multiple movable rods rotate, causing the outer disturbance plate to swing back and forth inside the unit. At the same time, under the action of related structures, the wave-shaped disturbance plate moves back and forth inside the unit. The swinging of the disturbance plate and the reciprocating movement of the wave-shaped disturbance plate work together to fully mix the reagent with the water in the mineral processing unit, thereby realizing intelligent mineral processing.

[0010] As can be seen from the above, the intelligent mineral processing equipment with a dosing structure provided by the present invention can monitor the weight of the reagent in real time, accurately control the amount of reagent added, ensure that each addition meets the preset quantitative requirements, avoid adding too much or too little reagent affecting the mineral processing effect, and improve the accuracy and stability of mineral processing. Attached Figure Description

[0011] Figure 1 This is a schematic diagram of the overall structure of an intelligent mineral processing equipment with a dosing structure proposed in this invention; Figure 2 This is a schematic diagram of the internal structure of a mineral processing device in an intelligent mineral processing equipment with a reagent addition structure proposed in this invention. Figure 3 This is a schematic diagram of the internal structure of the feed shell of an intelligent mineral processing equipment with a dosing structure proposed in this invention; Figure 4 This is a schematic diagram of the moving plate portion of an intelligent mineral processing equipment with a dosing structure proposed in this invention. Figure 5 This is a schematic diagram of the internal structure of the dosing tank of an intelligent mineral processing equipment with a dosing structure proposed in this invention; Figure 6 This is a schematic diagram of the quantitative dosing component structure of an intelligent mineral processing equipment with a dosing structure proposed in this invention; Figure 7 This is a schematic diagram of the quantitative dosing component of an intelligent mineral processing equipment with a dosing structure proposed in this invention; Figure 8 This is a schematic diagram of the chemical mixing component of an intelligent mineral processing equipment with a chemical dosing structure proposed in this invention.

[0012] In the diagram: 1. Mineral processing unit; 2. Feed shell; 3. Dosing tank; 4. Moving plate; 5. Inclined slope; 6. Filter plate; 7. Crushing device; 8. Telescopic electric rod; 9. Spring rod; 10. Connecting rod; 11. Push plate; 12. Chemical mixing assembly; 1201. Rotary motor; 1202. Rotating shaft; 1203. Notched gear; 1204. Gear belt; 1205. Disruptor plate; 1206. Movable rod; 1207. Belt; 1208. Threaded rod; 1209. Positioning rod; 1210. Sliding seat; 1211. Flexible spring; 1212. Waveform disturbance. 13. Servo motor; 14. Rotating rod; 15. Feed inlet; 16. Quantitative dosing assembly; 1601. Fixing ring; 1602. Extension rod; 1603. Flexible rod; 1604. Limiting plate; 1605. Spherical rod; 1606. Connecting ring; 1607. Quantitative container; 1608. Gravity detector; 1609. Arc gear; 1610. Rotating gear; 1611. Drive motor; 1612. Indicator; 1613. Scale plate; 1614. Rotating rod; 1615. Connecting seat; 17. Drug delivery pipeline; 18. Stirring component. Detailed Implementation

[0013] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0014] The intelligent mineral processing equipment with a dosing structure disclosed in this invention is mainly used to solve the problem that the dosage of dosing is difficult to control accurately in the traditional mineral processing dosing process, and that it is easy to add too much or too little dosing.

[0015] Reference Figures 1-8 A smart mineral processing equipment with a dosing structure includes a mineral processing device 1. A feed shell 2 is fixedly connected to the top of the mineral processing device 1. A crushing device 7 is installed inside the feed shell 2. A dosing tank 3 is fixedly connected to the top of the mineral processing device 1. An inclined slope 5 is fixedly connected inside the mineral processing device 1. A filter plate 6 is fixedly connected to the front end of the inclined slope 5. The filter plate 6 is fixedly connected to both sides inside the mineral processing device 1. A dosing pipeline 17 is fixedly connected to both sides of the dosing tank 3. A quantitative dosing component 16 is installed on the outside of the dosing pipeline 17. The quantitative dosing component 16 includes a quantitative tank 1607. A gravity detector 1608 is fixedly connected to the inside of the quantitative tank 1607. A scale plate 1613 is installed on the side of the quantitative tank 1607 away from the dosing pipeline 17.

[0016] Reference Figure 1 , Figure 2 , Figure 5 , Figure 6 and Figure 7A fixing ring 1601 is fixedly connected to the outside of the drug delivery pipeline 17. Two extension rods 1602 are fixedly connected to the outside of the fixing ring 1601, and flexible rods 1603 are fixedly connected to the bottom ends of the extension rods 1602. Limiting plates 1604 are fixedly connected to the bottom ends of the flexible rods 1603. A connecting ring 1606 is fixedly connected to the outside of the metering tank 1607. Ball-shaped rods 1605 are fixedly connected to both ends of the connecting ring 1606, and the outer sides of the ball-shaped rods 1605 are movably connected to the inside of the ball-shaped interface of the limiting plate 1604. An indicator 1612 is fixedly connected to the side of the limiting plate 1604 away from the drug tank 3. The internal part of component 1612 is movably connected to a scale plate 1613. Both ends of the connecting ring component 1606 are fixedly connected to arc gears 1609. A rotating gear 1610 is provided below each arc gear 1609. The rotating gear 1610 and the arc gear 1609 are meshed through tooth grooves. The inner side of the rotating gear 1610 near the scale plate 1613 is connected to a drive motor 1611 through a coupling. A rotating rod 1614 is fixedly connected between the two rotating gears 1610. A connecting seat 1615 is movably connected to the outer side of the rotating rod 1614. The top end of the connecting seat 1615 is fixedly connected to the bottom end of the scale plate 1613.

[0017] Specifically, when a metered dosage is required, the medicine flows out from the delivery pipe 17 and is delivered to the metering tank 1607 of the metering dosing assembly 16. During the dosing process, the gravity detector 1608, which is fixedly connected to the inside of the metering tank 1607, works continuously to monitor the weight of the medicine in the tank in real time. When the weight of the medicine reaches a preset value, the dosing process stops. Immediately afterwards, the drive motor 1611 starts, and the power output shaft begins to rotate, driving the rotating gear 1610 connected through the coupling to rotate. Since the rotating gear 1610 and the arc gear 1609 mesh with each other through the tooth groove, The rotation of the rotating gear 1610 drives the arc gear 1609 to rotate. The arc gear 1609 is fixed on the outer sides of both ends of the connecting ring 1606. The connecting ring 1606 is fixedly connected to the outer side of the metering barrel 1607. Therefore, the rotation of the arc gear 1609 will cause the metering barrel 1607 to make a circular motion around the connection point of the spherical interface between the spherical rod 1605 and the limiting plate 1604, eventually causing the metering barrel 1607 to tilt. At this time, the chemical solution in the metering barrel 1607 flows smoothly into the mineral processing device 1 through the feed port 15, completing the process of metering chemical addition.

[0018] In practical applications, real-time monitoring of the chemical solution weight enables precise control of the dosage, ensuring that each addition meets the preset quantitative requirements. This avoids the effects of adding too much or too little chemical solution on the mineral processing results, thereby improving the accuracy and stability of mineral processing.

[0019] It should be noted that the combination of the scale plate 1613 and the indicator 1612 allows the operator to intuitively see the tilt and other states of the metering tank 1607, which facilitates real-time monitoring and adjustment during the dosing process, improving the convenience and controllability of the operation.

[0020] Reference Figure 1 , Figure 2 and Figure 8 The mineral processing device 1 is internally equipped with a chemical mixing assembly 12, which includes multiple movable rods 1206. Each movable rod 1206 is rotatably connected to the interior of the mineral processing device 1, and a disturbance plate 1205 is fixedly connected to the outer side of each movable rod 1206. Multiple circular holes are provided on the front side of the mineral processing device 1, and each movable rod 1206 is rotatably connected to the interior of these holes. Multiple notched gears 1203 are provided on the front side of the mineral processing device 1, and each notched gear 1203 is fixedly connected to the outer side of the movable rods 1206. A gear belt 1204 is provided on the outer side of each notched gear 1203, and the gear belt 1204 meshes with the notched gear 1203 through tooth grooves. A rotary motor 1201 is also provided on the front side of the mineral processing device, and the rotary motor 1201 outputs power... A rotating shaft 1202 is connected to the shaft via a coupling. The side of the rotating shaft 1202 away from the rotating motor 1201 is fixedly connected to the side of the movable rod 1206 located at the bottom. A belt 1207 is provided on the outer side of the rotating shaft 1202. A threaded rod 1208 is provided inside the side of the belt 1207 away from the rotating shaft 1202. A hole is opened on the front side of the mineral processing device 1. The threaded rod 1208 is located inside the hole and is movably connected. Two positioning rods 1209 are fixedly connected to the two sides inside the mineral processing device 1. Sliding seats 1210 are movably connected to the outer sides of both the positioning rods 1209 and the threaded rod 1208. Multiple flexible springs 1211 are fixedly connected to the top of the sliding seats 1210. Wave-shaped baffles 1212 are fixedly connected to the top of each flexible spring 1211.

[0021] Specifically, after the chemical solution enters the mineral processing unit 1, the chemical mixing component 12 starts working, the rotary motor 1201 starts, and the power output shaft drives the rotating shaft 1202 to rotate through the coupling. Since the side of the rotating shaft 1202 away from the rotary motor 1201 is fixedly connected to the movable rod 1206 located at the bottom, the rotation of the rotating shaft 1202 will drive the movable rod 1206 to rotate. A notched gear 1203 is fixedly connected to the outside of the movable rod 1206, and the gear belt 1204 on the outside of the notched gear 1203 meshes with the notched gear 1203 through the tooth grooves. When the bottom movable rod 1206 rotates, it will drive the other movable rods 1206 to rotate together through the meshing transmission of the notched gear 1203 and the gear belt 1204. A disturbance plate 1205 is also fixedly connected to the outside of the movable rod 1206. As the movable rod 1206 rotates, the disturbance plate 1205 swings back and forth inside the mineral processing unit 1. The rotation of the rotating shaft 1202 causes disturbance to the chemicals and water. Simultaneously, the belt 1207 on the outer side of the rotating shaft 1202 moves with the rotation of the rotating shaft 1202, thereby driving the threaded rod 1208 to rotate. Positioning rods 1209 are fixedly connected to both sides inside the mineral processing device 1. A sliding seat 1210 is movably connected to the outer sides of the positioning rods 1209 and the threaded rod 1208. When the threaded rod 1208 rotates, the sliding seat 1210 reciprocates along the positioning rods 1209 and the threaded rod 1208 under the action of the thread. Multiple flexible springs 1211 are fixedly connected to the top of the sliding seat 1210, and a wave-shaped baffle 1212 is fixedly connected to the top of each flexible spring 1211. As the sliding seat 1210 reciprocates, the wave-shaped baffle 1212 also reciprocates inside the mineral processing device 1, further disturbing the chemicals and water. The back-and-forth oscillation of the baffle 1205 cooperates with the reciprocating movement of the wave-shaped baffle 1212.

[0022] In practical applications, the back-and-forth oscillation of the disturbance plate 1205 combined with the reciprocating movement of the wave-shaped disturbance plate 1212 disturbs the medicine and water from different directions, which can greatly increase the contact area and mixing degree of the two, ensuring that the medicine and water are fully mixed.

[0023] It should be noted that the meshing transmission between the notched gear 1203 and the gear belt 1204, and the way the belt 1207 drives the threaded rod 1208 to rotate, can efficiently transmit power to various moving parts, ensuring that the disturbance plate 1205 and the wave-shaped spoiler 1212 can move stably and continuously.

[0024] Reference Figures 1-5In a preferred embodiment, a rectangular hole is provided on the side of the feed housing 2 away from the dosing tank 3. A push plate 11 is provided inside the rectangular hole. Two connecting rods 10 are fixedly connected to the side of the push plate 11 away from the dosing tank 3. A moving plate 4 is fixedly connected to one side of each connecting rod 10. Two spring rods 9 are fixedly connected to the bottom end of the moving plate 4 near the feed housing 2. A telescopic electric rod 8 is fixedly connected to the bottom end of the moving plate 4 near the feed housing 2. One side of the telescopic electric rod 8 and the spring rods 9 are fixedly connected to the outside of the mineral processing device 1. A servo motor 13 is fixedly connected to the top of the dosing tank 3. The power output shaft of the servo motor 13 is connected to a rotating rod 14 through a coupling. The rotating rod 14 is located inside the dosing tank 3. An agitator 18 is fixedly connected to the outside of the rotating rod 14. Two feed inlets 15 are fixedly connected to the top of the mineral processing device 1.

[0025] A method for using an intelligent mineral processing equipment with a reagent dosing structure, comprising the following steps: Step 1: Put the ore into the feed shell 2. The crushing device 7 in the feed shell 2 will then start to crush the ore. The crushed ore falls onto the slope 5 and slides smoothly into the mineral processing device 1 by relying on the inclination angle of the slope 5, thus preparing for the subsequent mineral processing process. Step 2: The servo motor 13 at the top of the dosing tank 3 starts to run, driving the stirring component 18 inside the dosing tank 3 to rotate, and fully stirring the medicine in the dosing tank 3 to make the medicine components evenly mixed. Step 3: When quantitative dosing is required, the chemical solution is transported to the quantitative dosing tank 1607 of the quantitative dosing component 16 through the dosing pipeline 17. During the dosing process, the gravity detector 1608 inside the quantitative tank 1607 detects the weight of the chemical solution in the tank in real time. When the weight reaches the preset value, the dosing stops. Then, the drive motor 1611 starts and drives the arc gear 1609 to rotate. The arc gear 1609 drives the quantitative tank 1607 to tilt 90 degrees, and the chemical solution in the tank flows into the mineral processing device 1 through the feed port 15. Step 4: After the chemical solution enters the mineral processing unit 1, the chemical solution mixing component 12 starts to work. Multiple movable rods 1206 rotate, causing the outer disturbance plate 1205 to swing back and forth inside the unit. At the same time, under the action of related structures, the wave-shaped disturbance plate 1212 moves back and forth inside the unit. The swinging of the disturbance plate 1205 and the reciprocating movement of the wave-shaped disturbance plate 1212 work together to fully mix the chemical solution with the water in the mineral processing unit 1, thereby realizing intelligent mineral processing.

[0026] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A smart mineral processing equipment for mining with a reagent dosing structure, comprising a mineral processing device (1), characterized in that, The top of the mineral processing device (1) is fixedly connected to a feed shell (2), and a crushing device (7) is installed inside the feed shell (2). The top of the mineral processing device (1) is fixedly connected to a dosing tank (3), and a ramp (5) is fixedly connected inside the mineral processing device (1). A filter plate (6) is fixedly connected to the front end of the ramp (5). The filter plate (6) is fixedly connected to both sides inside the mineral processing device (1). A dosing pipe (17) is fixedly connected to both sides of the dosing tank (3). A quantitative dosing component (16) is installed on the outside of the dosing pipe (17). The quantitative dosing component (16) includes a quantitative bucket (1607). A gravity detector (1608) is fixedly connected to the inside of the quantitative bucket (1607). A scale plate (1613) is installed on the side of the quantitative bucket (1607) away from the dosing pipe (17).

2. The intelligent mineral processing equipment with a reagent addition structure according to claim 1, characterized in that, The outside of the drug delivery pipeline (17) is fixedly connected to a fixing ring (1601), and the outside of the fixing ring (1601) is fixedly connected to two extension rods (1602). The bottom end of each extension rod (1602) is fixedly connected to a flexible rod (1603), and the bottom end of each flexible rod (1603) is fixedly connected to a limiting plate (1604).

3. The intelligent mineral processing equipment with a reagent addition structure according to claim 2, characterized in that, A connecting ring (1606) is fixedly connected to the outside of the metering tank (1607). Both ends of the connecting ring (1606) are fixedly connected to spherical rods (1605). The outside of the spherical rods (1605) is movably connected to the inside of the spherical interface of the limiting plate (1604). An indicator (1612) is fixedly connected to the side of the limiting plate (1604) away from the dosing tank (3). A scale plate (1613) is movably connected inside the indicator (1612).

4. The intelligent mineral processing equipment with a reagent addition structure according to claim 3, characterized in that, Both ends of the connecting ring (1606) are fixedly connected to the outer sides of the arc gear (1609). A rotating gear (1610) is provided below the arc gear (1609). The rotating gear (1610) and the arc gear (1609) are meshed through tooth grooves. The inner side of the rotating gear (1610) near the scale plate (1613) is connected to the drive motor (1611) through a coupling. A rotating rod (1614) is fixedly connected between the two rotating gears (1610). A connecting seat (1615) is movably connected to the outer side of the rotating rod (1614). The top end of the connecting seat (1615) is fixedly connected to the bottom end of the scale plate (1613).

5. The intelligent mineral processing equipment with a reagent addition structure according to claim 4, characterized in that, The mineral processing device (1) is equipped with a chemical mixing assembly (12). The chemical mixing assembly (12) includes multiple movable rods (1206). The movable rods (1206) are rotatably connected to the inside of the mineral processing device (1), and the outer side of each movable rod (1206) is fixedly connected to a disturbance plate (1205). The front side of the mineral processing device (1) is provided with multiple round holes, and the movable rods (1206) are rotatably connected to the inside of the round holes.

6. The intelligent mineral processing equipment with a reagent addition structure according to claim 5, characterized in that, The front side of the mineral processing device (1) is provided with multiple notched gears (1203). The notched gears (1203) are all fixedly connected to the outer side of the movable rod (1206). The outer side of the notched gears (1203) is provided with a gear belt (1204). The gear belt (1204) and the notched gears (1203) are meshed through tooth grooves. The front side of the mineral processing device is provided with a rotary motor (1201). The power output shaft of the rotary motor (1201) is connected to a rotating shaft (1202) through a coupling. The side of the rotating shaft (1202) away from the rotary motor (1201) is fixedly connected to the side of the movable rod (1206) located at the bottom.

7. The intelligent mineral processing equipment with a reagent addition structure according to claim 6, characterized in that, A belt (1207) is provided on the outer side of the rotating shaft (1202). A threaded rod (1208) is provided on the side of the belt (1207) away from the rotating shaft (1202). A hole is provided on the front side of the mineral processing device (1). The threaded rod (1208) is movably connected inside the hole. Two positioning rods (1209) are fixedly connected on both sides of the interior of the mineral processing device (1). A sliding seat (1210) is movably connected on the outer side of both the positioning rod (1209) and the threaded rod (1208). Multiple flexible springs (1211) are fixedly connected to the top of the sliding seat (1210). A wave-shaped baffle (1212) is fixedly connected to the top of each flexible spring (1211).

8. The intelligent mineral processing equipment with a reagent addition structure according to claim 7, characterized in that, The feed housing (2) has a rectangular hole on the side away from the dosing tank (3). A push plate (11) is installed inside the rectangular hole. Two connecting rods (10) are fixedly connected to the side of the push plate (11) away from the dosing tank (3). A moving plate (4) is fixedly connected to one side of each connecting rod (10). Two spring rods (9) are fixedly connected to the bottom end of the side of the moving plate (4) near the feed housing (2). A telescopic electric rod (8) is fixedly connected to the bottom end of the side of the moving plate (4) near the feed housing (2). One side of the telescopic electric rod (8) and the spring rod (9) are fixedly connected to the outside of the mineral processing device (1).

9. A smart mineral processing equipment for mines with a reagent addition structure according to claim 8, characterized in that, The top of the dosing tank (3) is fixedly connected to a servo motor (13), the power output shaft of the servo motor (13) is connected to a rotating rod (14) through a coupling, and the rotating rod (14) is located inside the dosing tank (3). The outside of the rotating rod (14) is fixedly connected to a stirring component (18), and the top of the mineral processing device (1) is fixedly connected to two feed inlets (15).

10. A method of using an intelligent mineral processing equipment with a reagent dosing structure, comprising using an intelligent mineral processing equipment with a reagent dosing structure as described in claim 9, characterized in that, Includes the following steps: Step 1: Put the ore into the feed shell (2). The crushing device (7) in the feed shell (2) will start immediately to crush the ore. The crushed ore falls onto the slope (5) and slides smoothly into the mineral processing device (1) by relying on the inclination angle of the slope (5) to prepare for the subsequent mineral processing process. Step 2: The servo motor (13) at the top of the dosing tank (3) starts to run, driving the stirring component (18) inside the dosing tank (3) to rotate, and fully stirring the medicine in the dosing tank (3) so that the medicine components are evenly mixed. Step 3: When quantitative dosing is required, the chemical solution is transported through the delivery pipe (17) to the quantitative dosing component (16) into the quantitative tank (1607). During the dosing process, the gravity detector (1608) inside the quantitative tank (1607) detects the weight of the chemical solution in the tank in real time. When the weight reaches the preset value, the dosing stops. Then the drive motor (1611) starts and drives the arc gear (1609) to rotate. The arc gear (1609) drives the quantitative tank (1607) to tilt 90 degrees, and the chemical solution in the tank flows into the mineral processing device (1) through the feed inlet (15). Step 4: After the chemical solution enters the mineral processing device (1), the chemical solution mixing component (12) starts to work. Multiple movable rods (1206) rotate, causing the outer disturbance plate (1205) to swing back and forth inside the device. At the same time, under the action of the relevant structure, the wave-shaped disturbance plate (1212) moves back and forth inside the device. The swing of the disturbance plate (1205) and the reciprocating movement of the wave-shaped disturbance plate (1212) work together to make the chemical solution fully mixed with the water in the mineral processing device (1), thereby realizing intelligent mineral processing.