A device for separating and mixing of a selected ore
By integrating de-drug and slurry conditioning functions into a single ore mixing unit, the problems of large footprint and complex processes associated with multiple devices have been solved. This has enabled a highly efficient and automated ore de-drug process, improving the production efficiency and quality of ore concentrates.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- INNER MONGOLIA ZHONGXI MINING CO LTD
- Filing Date
- 2025-06-13
- Publication Date
- 2026-06-02
AI Technical Summary
In existing technologies, residual reagents affect the effectiveness of mineral beneficiation, and multiple pieces of equipment occupy a large area, have complex processes, and are inefficient, making it difficult to meet the needs of mineral processing plants with limited space.
Design an integrated device for stirring, de-drugating, and slurry conditioning of fine minerals. The device integrates de-drugating and slurry conditioning functions. The drive cylinder driven by an electric motor drives the agitator plate and spiral plate to stir. Combined with the mechanism of trigger ball and return spring, it realizes multi-angle stirring and automatically controls the operation of the equipment.
It improves the efficiency and quality of drug removal, reduces land occupation and cost, simplifies the process, facilitates operation and maintenance, and improves production efficiency and product quality stability.
Smart Images

Figure CN224308621U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mineral processing equipment technology, specifically to an integrated device for stirring, de-drugating, and slurry conditioning of fine minerals. Background Technology
[0002] In the early stages of mineral processing, various collectors, frothers, and other reagents are added to separate the target mineral from the gangue minerals. During the refining stage, these residual reagents may negatively impact the refining effect. Refining can remove excess reagents from the mineral surface, reducing interference with the refining process.
[0003] In the prior art, for example, Chinese Patent Publication No. CN201049318Y discloses a mixed concentrate desiccant device, which includes two thickeners connected by a conveying pipe. One end of the conveying pipe is connected to the discharge port of one thickener, and the other end is connected to the feed port of the thickener. A conveying pump is also provided in the conveying pipe. A water supply pipe is also provided at the feed port of the thickener connected to the conveying pipe, and a conveying pump is also provided at its discharge port.
[0004] The aforementioned device requires the connection of multiple machines to operate. The combination of multiple devices requires a large installation space, which may cause layout difficulties for some concentrators with limited space, and may also require additional investment in site construction. The slurry needs to be transferred sequentially between multiple devices, and there may be a certain amount of residence time and transmission loss at each stage. This will reduce the efficiency of the entire de-reagent process and affect the production progress of concentrators. To address these issues, we propose an integrated device for mixing, de-reagenting, and slurry preparation of fine ore to solve the above problems. Utility Model Content
[0005] This utility model aims to solve one of the technical problems existing in the prior art or related technologies.
[0006] Therefore, the technical solution adopted by this utility model is as follows:
[0007] An integrated device for mixing, de-drugating, and slurry conditioning of refined ore includes a working chamber. A first funnel is fixedly connected to the bottom of the working chamber. A control component is installed inside the working chamber. A second funnel is sleeved on the bottom of the first funnel, forming a slurry conditioning chamber between the first and second funnels. The control component includes a motor. A drive cylinder is fixedly connected to the output end of the motor. Multiple actuating plates are fixedly connected around one end of the drive cylinder inside the working chamber. A spiral plate is sleeved on one end of the drive cylinder inside the working chamber. A return spring is sleeved on one end of the drive cylinder inside the working chamber. An assembly plate is sleeved on the end of the drive cylinder away from the connecting cylinder. The assembly plate is fixedly connected to the drive cylinder. Multiple evenly distributed trigger balls are fixedly connected to the side of the assembly plate away from the connecting cylinder. A fixed plate is fixedly connected to the inner wall of the working chamber near the assembly plate. The axis of the fixed plate coincides with that of the assembly plate. Multiple ball grooves matching the trigger balls are formed on the surface of the fixed plate. The trigger balls are slidably connected to the inner wall of the ball grooves.
[0008] Preferably, the second funnel is fixedly connected to the first funnel, and both the first funnel and the discharge end of the second funnel are equipped with solenoid valves.
[0009] Preferably, the mixing chamber is provided with a liquid inlet pipe, and the end of the liquid inlet pipe away from the mixing chamber extends to the outside through the second funnel.
[0010] Preferably, a fixing seat is fitted onto the surface of the motor, one end of the fixing seat is fixedly connected to the motor, and the other end of the fixing seat is fixedly connected to the outer surface of the working chamber.
[0011] Preferably, the end of the drive cylinder away from the motor extends through the surface of the working chamber into the chamber, and the drive cylinder is rotatably connected to the working chamber.
[0012] Preferably, the axes of the multiple actuating plates and driving cylinders are evenly distributed, the spiral plate is fixedly connected to the driving cylinder, and the surface of the spiral plate is perpendicular to the actuating plate.
[0013] Preferably, the end of the return spring away from the drive cylinder is sleeved with a connecting cylinder, the working chamber is sleeved on the surface of the connecting cylinder, the connecting cylinder is rotatably connected to the working chamber, and a limiting seat is fixedly connected around the connecting cylinder to prevent it from detaching from the working chamber.
[0014] Preferably, the drive cylinder has multiple sliding windows at one end near the connecting cylinder, each sliding window has a built-in sliding seat, the sliding seat is slidably connected to the inner wall of the sliding window, a connecting plate is fixedly connected to one end of the sliding seat near the axis of the drive cylinder, and the end of the connecting plate away from the drive cylinder is fixedly connected to the connecting cylinder.
[0015] By adopting the above technical solution, the beneficial effects achieved by this utility model are as follows:
[0016] In this invention, the device has a working chamber connected to a first funnel at the bottom, with a slurry-adjusting chamber between them. Each funnel has a solenoid valve at its discharge end, and the slurry-adjusting chamber has a liquid inlet pipe for convenient slurry adjustment. In the key control components, a motor is connected to the working chamber via a fixed base. Its output drive cylinder drives multiple evenly distributed actuating plates and spiral plates to rotate within the working chamber, thus agitating the ore.
[0017] During the de-drug removal process, the longitudinal movement of the agitator plate causes the ore to tumble and initially disperse, while the transverse stirring of the spiral plate enhances the effect. At the same time, the trigger ball of the assembly plate cooperates with the ball groove of the fixed plate, and the drive cylinder moves axially under the influence of the trigger ball, compressing the reset spring, thereby changing the position of the spiral plate and the stirring state. The repeated process of the trigger ball entering and leaving the ball groove allows the spiral plate to continuously change the stirring mode, ensuring that the ore is fully de-drug removed.
[0018] With high integration, it combines deagent and slurry preparation, reducing footprint, simplifying processes, lowering costs, and facilitating operation and maintenance; it offers excellent mixing performance, with a unique control component design enabling omnidirectional, multi-angle mixing, ensuring full contact between the ore and deagent reagents, thus improving deagent efficiency and quality; it is highly flexible, allowing for flexible adjustment of motor speed, solenoid valve opening and closing, and liquid inflow according to actual needs, adapting to different ore processing requirements; and it boasts a high degree of automation, with automated control of each device through a control system, reducing manual intervention, improving production efficiency and product quality stability, and lowering labor costs and intensity. It has broad application prospects and significant economic and social benefits in the field of mineral beneficiation. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0020] Figure 2 This is a schematic diagram of the overall internal structure of this utility model.
[0021] Figure 3 This is a schematic diagram of the assembly structure of the spiral plate and the actuating plate of this utility model.
[0022] Figure 4 This is a schematic diagram of the control component structure of this utility model.
[0023] Figure 5 This is a schematic diagram of the assembly structure of the trigger ball and the ball groove of this utility model.
[0024] In the diagram: 1. Working chamber; 101. First funnel; 102. Second funnel; 103. Solenoid valve; 104. Slurry preparation chamber; 105. Inlet pipe; 2. Control components; 201. Motor; 202. Fixed base; 203. Drive cylinder; 204. Actuating plate; 205. Spiral plate; 206. Return spring; 207. Connecting cylinder; 208. Limiting seat; 209. Sliding window; 210. Sliding seat; 211. Connecting plate; 212. Assembly plate; 213. Trigger ball; 214. Fixed plate; 215. Ball groove. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0026] Example: Figures 1-5 As shown, this utility model provides an integrated device for stirring, de-drugating, and slurry conditioning of selected ore, including a working chamber 1. A first funnel 101 is fixedly connected to the bottom of the working chamber 1. A control component 2 is installed inside the working chamber 1. A second funnel 102 is sleeved at the bottom of the first funnel 101. The second funnel 102 is fixedly connected to the first funnel 101. A slurry conditioning chamber 104 is formed between the first funnel 101 and the second funnel 102. Solenoid valves 103 are installed at the discharge ends of both the first funnel 101 and the second funnel 102. An inlet pipe 105 is built into the slurry conditioning chamber 104. One end of the inlet pipe 105 away from the slurry conditioning chamber 104 extends through the second funnel 102 to the outside. After de-drug treatment, the material that has settled at the bottom of the first funnel 101 enters the slurry conditioning chamber 104. Liquid (such as water or other slurry preparation reagents) is injected into the slurry preparation chamber 104 through the liquid inlet pipe 105. At the same time, the discharge speed and amount of slurry preparation materials can be controlled by controlling the solenoid valves 103 at the discharge ends of the first funnel 101 and the second funnel 102, thereby realizing the slurry preparation operation of the mineral materials to achieve the concentration and state required by the subsequent process.
[0027] The control component 2 includes a motor 201, with a fixed base 202 sleeved on the surface of the motor 201. One end of the fixed base 202 is fixedly connected to the motor 201, and the other end is fixedly connected to the outer surface of the working chamber 1. A drive cylinder 203 is fixedly connected to the output end of the motor 201. The end of the drive cylinder 203 away from the motor 201 extends through the surface of the working chamber 1 into the chamber. The drive cylinder 203 is rotatably connected to the working chamber 1. Multiple actuating plates 20 are fixedly connected around one end of the drive cylinder 203 inside the working chamber 1. 4. Multiple actuating plates 204 and driving cylinders 203 are evenly distributed along their axes. A spiral plate 205 is sleeved on one end of the driving cylinder 203 inside the working chamber 1. The spiral plate 205 is fixedly connected to the driving cylinder 203, and its surface is perpendicular to the actuating plates 204. A return spring 206 is sleeved on one end of the driving cylinder 203 inside the working chamber 1. A connecting cylinder 207 is sleeved on the end of the return spring 206 away from the driving cylinder 203. The working chamber 1 is fitted onto the surface of the connecting cylinder 207, and the connecting cylinder 207 is rotatably connected to the working chamber 1. The cylinder 207 is fixedly connected to a limiting seat 208 around its perimeter to prevent it from detaching from the working chamber 1. The drive cylinder 203 has multiple sliding windows 209 at its end near the connecting cylinder 207. Each sliding window 209 contains a sliding seat 210, which is slidably connected to the inner wall of the sliding window 209. A connecting plate 211 is fixedly connected to the end of the sliding seat 210 near the axis of the drive cylinder 203. The end of the connecting plate 211 away from the drive cylinder 203 is fixedly connected to the connecting cylinder 207. A sleeve is fitted onto the end of the drive cylinder 203 away from the connecting cylinder 207. Assembly plate 212 is fixedly connected to drive cylinder 203. Multiple evenly distributed trigger balls 213 are fixedly connected to the side of assembly plate 212 away from connecting cylinder 207. A fixed plate 214 is fixedly connected to the inner wall of working chamber 1 near assembly plate 212. The axis of fixed plate 214 coincides with that of assembly plate 212. Multiple ball grooves 215 matching the trigger balls 213 are formed on the surface of fixed plate 214. The trigger balls 213 are slidably connected to the inner wall of the ball grooves 215. Motor 201 starts, driving drive cylinder 203 to rotate. Since drive cylinder 203 is rotatably connected to working chamber 1, and multiple actuating plates 204 and spiral plates 205 are fixedly connected to drive cylinder 203, when drive cylinder 203 rotates, the actuating plates 204 and spiral plates 205 rotate accordingly. The actuating plates 204 move longitudinally, causing the ore to tumble up and down within working chamber 1, initially breaking up the ore and promoting the de-chemical process. Meanwhile, the rotation of the spiral plate 205 agitates the ore in the transverse direction, further enhancing the de-agitation effect. As the drive cylinder 203 rotates, the trigger ball 213 on the assembly plate 212 slides within the ball groove 215 of the fixed plate 214. When the trigger ball 213 slides into the ball groove 215, it generates an axial force on the drive cylinder 203, causing the drive cylinder 203 to move towards the connecting cylinder 207 and compress the return spring 206.At this time, the spiral plate 205 will change its position and stirring state in the working chamber 1 to a certain extent as the drive cylinder 203 moves, thereby agitating the ore in different ways. When the trigger ball 213 slides out of the ball groove 215, the elastic force of the return spring 206 will cause the drive cylinder 203 to return to its original position, and the spiral plate 205 will change its stirring state again. In this way, through the cooperation of the trigger ball 213 and the ball groove 215 and the action of the return spring 206, the spiral plate 205 can continuously change the stirring mode to achieve complete de-chemical treatment of the ore.
[0028] Integrating the deagent and slurry conditioning processes into a single unit reduces equipment footprint, simplifies the process flow, and lowers equipment procurement and installation costs. It also facilitates operation and maintenance. Through the unique design of the control components 2, such as the combination of the longitudinal movement of the agitator plate 204 and the transverse stirring of the spiral plate 205, along with the variations in stirring mode brought about by the return spring 206 and the trigger ball 213 mechanism, the ore can be stirred in all directions and from multiple angles, ensuring full contact between the ore and the deagent reagent, improving deagent efficiency, and ensuring more thorough deagenting. The deagent and slurry conditioning process conditions can be flexibly adjusted according to actual needs by controlling parameters such as the speed of the motor 201, the opening and closing of the solenoid valve 103, and the liquid inlet pipe 105, to adapt to the processing requirements of different types and properties of refined ores. This improves the versatility and adaptability of the unit. The entire unit's operation can be automated through the control system, which controls the motor 201, solenoid valve 103, and other equipment, reducing manual intervention, improving production efficiency and product quality stability, and lowering labor costs and intensity.
[0029] Obviously, those skilled in the art can make various modifications and variations to this utility model without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this utility model and their equivalents, this utility model also intends to include these modifications and variations.
Claims
1. An integrated device for stirring, de-drugating, and slurry conditioning of finely selected ore, characterized in that, The system includes a working chamber (1), a first funnel (101) fixedly connected to the bottom of the working chamber (1), a control component (2) installed inside the working chamber (1), a second funnel (102) sleeved at the bottom of the first funnel (101), and a slurry adjustment chamber (104) formed between the first funnel (101) and the second funnel (102). The control component (2) includes a motor (201), a drive cylinder (203) fixedly connected to the output end of the motor (201), multiple actuating plates (204) fixedly connected around one end of the drive cylinder (203) inside the working chamber (1), and a spiral plate (205) sleeved at one end of the drive cylinder (203) inside the working chamber (1). The drive cylinder (203) operates in the working chamber. A return spring (206) is sleeved on one end of the chamber (1). An assembly plate (212) is sleeved on the end of the drive cylinder (203) away from the connecting cylinder (207). The assembly plate (212) is fixedly connected to the drive cylinder (203). Multiple evenly distributed trigger balls (213) are fixedly connected on the side of the assembly plate (212) away from the connecting cylinder (207). A fixed plate (214) is fixedly connected on the side of the inner wall of the working chamber (1) close to the assembly plate (212). The axis of the fixed plate (214) coincides with that of the assembly plate (212). Multiple ball grooves (215) matching the trigger balls (213) are opened on the surface of the fixed plate (214). The trigger balls (213) are slidably connected to the inner wall of the ball grooves (215).
2. The integrated device for stirring, de-drugating, and slurry conditioning of refined ore according to claim 1, characterized in that, The second funnel (102) is fixedly connected to the first funnel (101), and both the first funnel (101) and the second funnel (102) are equipped with solenoid valves (103) at their discharge ends.
3. The integrated device for stirring, de-drugating, and slurry conditioning of refined ore according to claim 1, characterized in that, The mixing chamber (104) has an inlet pipe (105) inside, and the end of the inlet pipe (105) away from the mixing chamber (104) extends to the outside through the second funnel (102).
4. The integrated device for stirring, de-drugating, and slurry conditioning of refined ore according to claim 1, characterized in that, A mounting bracket (202) is fitted onto the surface of the motor (201). One end of the mounting bracket (202) is fixedly connected to the motor (201), and the other end of the mounting bracket (202) is fixedly connected to the outer surface of the working chamber (1).
5. The integrated device for stirring, de-drugating, and slurry conditioning of refined ore according to claim 1, characterized in that, The end of the drive cylinder (203) away from the motor (201) extends through the surface of the working chamber (1) into the chamber, and the drive cylinder (203) is rotatably connected to the working chamber (1).
6. The integrated device for stirring, de-drugating, and slurry conditioning of refined ore according to claim 1, characterized in that, Multiple actuating plates (204) are evenly distributed along the axis of the driving cylinder (203), and the spiral plate (205) is fixedly connected to the driving cylinder (203). The surface of the spiral plate (205) is perpendicular to the actuating plate (204).
7. The integrated device for stirring, de-drugating, and slurry conditioning of refined ore according to claim 1, characterized in that, The end of the return spring (206) away from the drive cylinder (203) is sleeved with a connecting cylinder (207). The working chamber (1) is sleeved on the surface of the connecting cylinder (207). The connecting cylinder (207) is rotatably connected to the working chamber (1). The connecting cylinder (207) is fixedly connected around its perimeter with a limiting seat (208) to prevent itself from detaching from the working chamber (1).
8. The integrated device for stirring, de-drugating, and slurry conditioning of refined ore according to claim 7, characterized in that, The drive cylinder (203) has multiple sliding windows (209) at one end near the connecting cylinder (207). The sliding window (209) has a sliding seat (210) inside. The sliding seat (210) is slidably connected to the inner wall of the sliding window (209). The end of the sliding seat (210) near the axis of the drive cylinder (203) is fixedly connected to a connecting plate (211). The end of the connecting plate (211) away from the drive cylinder (203) is fixedly connected to the connecting cylinder (207).