A full-amount resource processing device for ore dressing wastewater and a processing method thereof
By using a mechanical transmission structure between the separation mechanism and the reagent storage mechanism, the problems of low efficiency and uneven distribution of purifying agents in traditional sedimentation methods for treating mining and beneficiation wastewater are solved, achieving efficient separation and purification of mining and beneficiation wastewater, and improving resource utilization and environmental protection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- YUNNAN ZHONGHUI NONFERROUS METALS CO LTD
- Filing Date
- 2026-04-10
- Publication Date
- 2026-05-29
AI Technical Summary
Traditional sedimentation methods for treating mining and beneficiation wastewater are inefficient and fail to effectively remove fine particles. Furthermore, the traditional method of manually adding purifying agents is uneven, which can lead to waste of purifying agents and high time and labor costs.
It employs a separation mechanism and a reagent storage mechanism, and achieves efficient separation of mineral materials and wastewater and automatic addition of purifying agents through a mechanical transmission structure. This includes a stirring roller, a crawler drive, a pusher plate for material feeding, a purification box for feeding, and automatic addition of purifying agents, combined with filter screen filtration and exhaust gas extraction.
It achieves efficient separation and purification of mineral materials and wastewater, improves resource utilization, ensures stable addition of purifying agents, reduces air pollution, and achieves the goals of maximizing resource utilization and protecting the environment.
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Figure CN122102246A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of mineral processing wastewater technology, and more specifically, to a device and method for the full-scale resource utilization treatment of mineral processing wastewater. Background Technology
[0002] Mining and beneficiation wastewater refers to wastewater containing a large amount of suspended solids, heavy metal ions, chemical agents, and other pollutants generated during the ore mining and beneficiation process. These wastewaters come from a wide range of sources, including multiple process steps such as ore crushing, grinding, flotation, and magnetic separation. Due to different beneficiation methods and differences in ore properties, the composition of mining and beneficiation wastewater is very complex, and the types and concentrations of pollutants vary. Suspended solids are one of the more common pollutants in mining and beneficiation wastewater, mainly composed of ore particles and gangue. These suspended solids can make water bodies turbid, affecting water transparency and the ecological environment. If discharged directly, it may lead to problems such as river siltation and soil desertification.
[0003] According to patent document CN117509970A, a comprehensive resource-based treatment device and method for mining and beneficiation wastewater is disclosed, relating to the field of mining and beneficiation wastewater treatment technology. This addresses the problem that existing methods for treating mining and beneficiation wastewater primarily rely on adding flocculants to achieve solid-liquid separation. However, when treating large quantities of wastewater, this method often results in the flocculant failing to mix thoroughly with the wastewater, leading to uneven flocculation and affecting the quality and efficiency of wastewater treatment. The device includes a transparent protective cover installed at the edge above the electrochemical pretreatment tank; a guide rail installed above the electrochemical pretreatment tank, with both ends of the guide rail fixedly connected to the electrochemical pretreatment tank via triangular reinforcing plates; a forward lead screw and a reverse lead screw installed inside the guide rail, with one end of the forward lead screw fixedly connected to the reverse lead screw; a bearing plate installed at the connection between the forward and reverse lead screws; and a servo motor installed at one end of the guide rail.
[0004] In the process of purifying and treating mining wastewater, preliminary sedimentation is usually carried out first to remove large particulate impurities and suspended solids. However, traditional sedimentation methods may be inefficient and fail to effectively remove some fine particles. In addition, in the process of adding purifying agents, traditional manual addition methods not only make it difficult to ensure the uniformity of agent distribution, but also easily lead to waste of purifying agents. After the purifying agent is added, it needs to be stirred and mixed for a certain period of time to allow the agent to fully react with the wastewater. This process consumes a lot of time and labor costs. Summary of the Invention
[0005] To overcome the aforementioned deficiencies of the prior art, this invention provides a comprehensive resource-based treatment device and method for mining and beneficiation wastewater. The technical problem to be solved by this invention is that traditional sedimentation methods may have low efficiency and are difficult to effectively remove some fine particles. In addition, in the process of adding purifying agents, the traditional manual addition method not only makes it difficult to ensure the uniformity of agent distribution, but also easily leads to waste of purifying agents. After the purifying agent is added, it needs to be stirred and mixed for a certain period of time to allow the agent to fully react with the wastewater. This process consumes a lot of time and labor costs.
[0006] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is as follows: A device for the full-scale resource utilization treatment of mining and beneficiation wastewater includes a separation mechanism, and a reagent storage mechanism is fixedly connected to the top of the separation mechanism; The separation mechanism includes a feeding assembly, and a pushing control assembly is fixedly connected to the top of the rear side of the feeding assembly; The feeding assembly includes a feeding rack, and a separation and purification assembly is fixedly connected to the bottom front side of the feeding rack.
[0007] As a further embodiment of the present invention: the unloading rack includes a U-shaped top plate, an L-shaped side plate is fixedly connected to the right side of the U-shaped top plate, a motor is fixedly connected to the front side of the top of the L-shaped side plate, connecting side plates are fixedly connected to the front sides of both the left and right sides of the U-shaped top plate, side plates are fixedly connected to the front sides of both connecting side plates, columnar connecting blocks are fixedly connected to the bottom of the front sides of both side plates in a circular array, support rods are fixedly connected to the left and right sides of the rear bottom of the U-shaped top plate, and support plates are fixedly connected to the bottom of the front sides of both support rods.
[0008] As a further embodiment of the present invention: a columnar transmission crossbar is rotatably connected to the inner wall of the top of the two side plates; a transmission roller is fixedly connected to the middle of the outer wall of the columnar transmission crossbar; a track is fitted to the outer wall of the transmission roller; the left end of the columnar transmission crossbar extends to the outer side of the left side plate; a transmission disc is fixedly connected to the left end of the columnar transmission crossbar; a stop block is fixedly connected to the top of the middle left side of the transmission disc; the output end of the motor extends to the inner side of the two side plates; a stirring roller is fixedly connected to the output end of the motor; a wastewater mixing chamber is fixedly connected to the inner side of the two sets of columnar connecting blocks; a sewage inlet chamber is fixedly connected to the top of the outer wall of the wastewater mixing chamber; and the inner wall of the wastewater mixing chamber is fitted onto the outer wall of the stirring roller.
[0009] As a further embodiment of the present invention: a stirring roller connecting rod is fixedly connected to the left end of the stirring roller, the left end of the stirring roller connecting rod extends to the outside of the left side plate, a second transmission disk is fixedly connected to the outer wall of the stirring roller connecting rod, a second track is sleeved on the outer wall of the second transmission disk, the top of the inner wall of the second track is sleeved on the outer wall of the transmission disk, a second L-shaped side plate is rotatably connected to the left end of the stirring roller connecting rod, an L-shaped vertical connecting plate is fixedly connected to the front side of the left side plate, and a concave guide block is fixedly connected to the top of the rear side of the L-shaped vertical connecting plate.
[0010] As a further embodiment of the present invention: the material pushing control component includes a purification box, a purification box feed pipe is fixedly connected to the front side of the top center of the purification box, a separation chamber is fixedly connected to the top of the purification box feed pipe, the bottom of the left and right sides of the separation chamber are fixedly connected to the top of two support plates, a push plate is slidably connected to the rear side of the inner wall of the separation chamber, a separation chamber discharge pipe is fixedly connected to the rear side of the top of the separation chamber, the top of the separation chamber discharge pipe is fixedly connected to the bottom of the wastewater mixing chamber, the left side of the separation chamber is fixedly connected to the bottom of the right side of the second L-shaped side plate, a filter screen is fixedly connected to the side of the purification box feed pipe extending to the inner wall of the separation chamber, a ore discharge port is opened at the front bottom of the separation chamber, a ore discharge inclined plate is fixedly connected to the rear side of the ore discharge port opened in the inner wall of the separation chamber, a ore storage bin is fixedly connected to the front bottom of the ore discharge inclined plate, a side support plate is fixedly connected to the right side of the separation chamber, and the top of the side support plate is fixedly connected to the bottom of the L-shaped side plate.
[0011] As a further embodiment of the present invention: the material pushing control assembly includes two U-shaped guide plates, the front sides of which are fixedly connected to the top of the rear sides of two support columns. Each of the two U-shaped guide plates has a side-convex connecting plate at its top. The rear sides of the outer sides of the two side-convex connecting plates are fixedly connected to the top of the inner sides of the two support columns. A rotating arm transmission rod is rotatably connected to the inner wall of the top center of each of the two side-convex connecting plates. The outer ends of the two rotating arm transmission rods extend to the outer sides of the two side-convex connecting plates. The outer ends of the boom transmission rods are all fixedly connected to booms. The bottom of the outer sides of the two booms are rotatably connected to rotating blocks. The front sides of the outer sides of the two convex connecting plates are all fixedly connected to push-pull side rod guide blocks. The tops of the two push-pull side rod guide blocks are all fixedly connected to top connecting rods. The tops of the two top connecting rods are all fixedly connected to the left and right sides of the front bottom of the U-shaped top plate. The outer walls of the inner sides of the two boom transmission rods are all fitted onto the left and right sides of the rear side of the inner wall of the track. The bottom front sides of the two push-pull side rod guide blocks are all fixedly connected to bottom blocks.
[0012] As a further embodiment of the present invention: the inner walls of the two push-pull side rod guide blocks are slidably connected with push-pull side rods, the rear sides of the top of the two push-pull side rods are fixedly connected with elliptical sliding groove plates, the inner walls of the two elliptical sliding groove plates are fitted onto the outer walls of the two rotating blocks, the rear bottom sides of the two push-pull side rods are fixedly connected with spring connecting blocks, the front sides of the two spring connecting blocks are fixedly connected with springs, the front ends of the two springs are fixedly connected to the rear sides of the two bottom blocks, the rear bottom sides of the two push-pull side rods are fixedly connected with uprights, the bottom of the two uprights are fixedly connected with inverted L-shaped push-pull uprights, the top and bottom of the front sides of the two inverted L-shaped push-pull uprights are fixedly connected with columnar push-pull rods, the front ends of the left and right sets of columnar push-pull rods are fixedly connected to the four sides of the rear sides of the two push plates, and the outer walls of the two uprights are slidably connected to the inner walls of the two U-shaped guide plates.
[0013] As a further aspect of the present invention: the drug storage mechanism includes a purification agent tank connecting plate, a purification agent tank is fixedly connected to the top of the purification agent tank connecting plate, a discharge tank is fixedly connected to the bottom of the purification agent tank, a discharge pipe is fixedly connected to the bottom of the discharge tank, the bottom of the discharge pipe extends to the inner wall of the separation chamber, side connecting plates are fixedly connected to both the left and right sides of the purification agent tank connecting plate, the rear sides of the two side connecting plates are fixedly connected to the front sides of the two side plates, L-shaped vertical plates are fixedly connected to the rear sides of the bottom of the two side connecting plates, C-shaped side connecting plates are fixedly connected to the front sides of the outer sides of the two side connecting plates, reinforcing plates are fixedly connected to the outer sides of the two C-shaped side connecting plates, and a reinforcing plate is fixedly connected to the middle of the outer sides of the two C-shaped side connecting plates. The exhaust gas extraction tank has exhaust gas storage tanks fixedly connected to the rear outer sides of both side plates. Exhaust gas storage tank connecting plates are fixedly connected to the rear sides of both exhaust gas storage tanks. Second exhaust gas storage tanks are fixedly connected to the rear sides of both exhaust gas storage tank connecting plates. Pipes are fixedly connected to the outer sides of both second exhaust gas storage tanks. Second pipes are fixedly connected to the front sides of both exhaust gas storage tanks. The ends of both pipes away from the second exhaust gas storage tanks extend to the inner walls of both exhaust gas extraction tanks. The ends of both second pipes away from the exhaust gas extraction tanks extend to the bottom of the inner walls of both exhaust gas extraction tanks. Suction pipes are fixedly connected to the bottom of both exhaust gas extraction tanks. The bottom ends of both suction pipes extend to both sides of the inner walls of the separation chamber.
[0014] As a further embodiment of the present invention: a columnar lifting pole guide plate is fixedly connected to the inner side of the two side plates, a columnar lifting pole is slidably connected to the inner wall of the columnar lifting pole guide plate, the bottom end of the columnar lifting pole extends to the bottom of the inner wall of the feeding hopper, a piston is fixedly connected to the bottom end of the columnar lifting pole, an L-shaped push-pull plate is fixedly connected to the top end of the columnar lifting pole, a push-pull plate is fixedly connected to the front side of the L-shaped push-pull plate, a horizontal elliptical sliding groove block is fixedly connected to the bottom of the push-pull plate, the outer wall of the push-pull plate is slidably connected to the rear inner wall of the concave guide block, and the outer wall of the horizontal elliptical sliding groove block is fitted onto the outer wall of the abutment block.
[0015] In addition, the present invention also relates to a treatment method for a mineral processing wastewater treatment equipment for full-volume resource recovery, comprising the following steps: Step 1: Discharge the mining and beneficiation wastewater into the inner wall of the wastewater mixing tank through the wastewater inlet hopper at the top of the outer wall of the wastewater mixing tank, and start the motor; Step Two: The motor output drives the mixing roller to rotate, stirring the mining and beneficiation wastewater in the wastewater mixing chamber. This breaks down larger ore particles and creates a circulating flow, promoting thorough mixing and crushing of the ore and wastewater. Step 3: The motor drives the second transmission disc to rotate through the stirring roller connecting rod, and the second track drives the transmission disc, columnar transmission crossbar, transmission roller and track to rotate in sequence; Step 4: The track drives the rotating arm to rotate, and through the rotating arm and rotating block sliding in the elliptical chute vertical plate, it pushes the push-pull side rod to slide back and forth in the push-pull side rod guide block, thereby driving the push plate to perform reciprocating pushing motion in the separation chamber; Step 5: The wastewater after mixing and crushing flows into the separation chamber through the discharge pipe of the separation chamber. Under the push of the push plate, it moves towards the feed pipe of the purification box. Larger mineral particles are intercepted by the filter screen and fall into the mineral storage bin along the mineral discharge inclined plate, thus realizing the separation of mineral and wastewater. Step Six: The rotation of the transmission disc drives the abutment block to act on the horizontal elliptical sliding block, causing the push-pull plate to slide up and down along the concave guide block. The L-shaped push-pull plate drives the columnar lifting rod and piston to move up and down in the feeding bucket. Step 7: When the piston moves upward, a negative pressure is created in the discharge bucket, which draws the purifying agent in the purifying agent bucket into the separation chamber through the discharge pipe; when it moves downward, excess air is discharged to ensure a stable and continuous addition of purifying agent. Step 8: The exhaust gas extraction tank extracts the exhaust gas from the separation chamber through the extraction pipe, and then transports it to the second exhaust gas storage tank and the exhaust gas storage tank through the second pipe and the second pipe respectively. The filtered wastewater enters the purification tank for further treatment through the purification tank inlet pipe.
[0016] The beneficial effects of this invention are as follows: This invention, through the establishment of a separation mechanism and a reagent storage mechanism, achieves the full resource utilization of mining and beneficiation wastewater. It not only efficiently separates ore from wastewater, intercepting and collecting larger ore particles in a ore storage silo for reuse, thus improving resource utilization, but also, through a clever mechanical transmission structure, automatically adds purifying agents to purify the wastewater after initial separation. This ensures the stability and continuity of purifying agent addition, effectively improving the purification effect. Furthermore, it extracts and stores the waste gas generated during the separation process, preventing leakage and environmental pollution, embodying the concept of environmental protection. The wastewater, after being filtered, enters a purification tank for further purification, ultimately achieving comprehensive and effective treatment of mining and beneficiation wastewater. This approach not only recovers valuable mineral resources but also purifies wastewater, achieving the dual goals of maximizing resource utilization and protecting the environment, providing strong technical support for the sustainable development of the mining and beneficiation industry. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the main three-dimensional structure of the present invention; Figure 2 This is a schematic diagram of the three-dimensional separation structure of the main body of the present invention; Figure 3 This is a three-dimensional structural diagram of the separation mechanism of the present invention; Figure 4 This is a schematic diagram of the three-dimensional separation structure of the separation mechanism of the present invention; Figure 5 This is a schematic diagram of the three-dimensional separation structure of the feeding component of the present invention; Figure 6 This is a schematic diagram of the three-dimensional separation structure of the unloading rack of the present invention; Figure 7 This is a schematic diagram of the three-dimensional separation and cross-sectional structure of the separation and purification component of the present invention; Figure 8 This is a schematic diagram of the three-dimensional separation structure of the feeding control component of the present invention; Figure 9 This is a three-dimensional structural diagram of the drug storage mechanism of the present invention; Figure 10 This is a schematic diagram of the three-dimensional separation structure of the drug storage mechanism of the present invention.
[0018] In the diagram: 1. Separation mechanism; 11. Feeding assembly; 111. Feeding rack; 1111. U-shaped top plate; 1112. L-shaped side plate; 1113. Motor; 1114. Connecting side plate; 1115. Side plate; 1116. Columnar connecting block; 1117. Columnar transmission crossbar; 1118. Transmission roller; 1119. Track; 11110. Transmission disc; 11111. Abutment block; 11112. Agitator roller connecting rod; 11113. Second transmission disc; 11114. Second track; 11115. Agitator roller; 11116. Wastewater 11117. Mixing bin; 11118. Wastewater feed bin; 11119. L-shaped vertical connecting plate; 11110. Concave guide block; 11121. Second L-shaped side vertical plate; 11121. Pallet; 11122. Supporting upright; 112. Separation and purification assembly; 1121. Purification box; 1122. Purification box feed pipe; 1123. Separation bin; 1124. Push plate; 1125. Separation bin discharge pipe; 1126. Side support vertical plate; 1127. Filter screen; 1128. Ore discharge port; 1129. Ore discharge inclined plate; 11210. Ore 12. Material storage bin; 12. Pushing control assembly; 121. U-shaped guide plate; 122. Side-convex connecting plate; 123. Rotary arm transmission rod; 124. Rotary arm; 125. Rotating block; 126. Elliptical sliding groove upright plate; 127. Push-pull side rod; 128. Upright rod; 129. Spring connecting block; 1210. Spring; 1211. Push-pull side rod guide block; 1212. Bottom block; 1213. Top upright connecting rod; 1214. Inverted L-shaped push-pull upright rod; 1215. Columnar push-pull rod; 2. Pharmaceutical storage mechanism; 21. Purifying agent tank connecting plate; 22. 23. Purifying agent tank; 24. Feeding tank; 25. Feeding pipe; 26. Side connecting plate; 27. L-shaped upright plate; 28. C-shaped side connecting plate; 29. Reinforcing plate; 20. Waste gas extraction tank; 210. Waste gas storage tank; 211. Waste gas storage tank connecting plate; 212. Second waste gas storage tank; 213. Pipe; 214. Second pipe; 215. Exhaust pipe; 216. Column-shaped lifting upright guide plate; 217. Column-shaped lifting upright; 218. Piston; 219. L-shaped push-pull plate; 2110. Push-pull upright plate; 2111. Horizontal elliptical sliding block. Detailed Implementation
[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0020] like Figure 1-2As shown, the present invention provides a device for the full-scale resource utilization treatment of mining and beneficiation wastewater, including a separation mechanism 1, and a reagent storage mechanism 2 fixedly connected to the top of the separation mechanism 1.
[0021] like Figure 3-8As shown, the separation mechanism 1 includes a feeding assembly 11. A pushing control assembly 12 is fixedly connected to the top of the rear side of the feeding assembly 11. The feeding assembly 11 includes a feeding rack 111. A separation and purification assembly 112 is fixedly connected to the bottom front side of the feeding rack 111. The feeding rack 111 includes a U-shaped top plate 1111. An L-shaped side plate 1112 is fixedly connected to the right side of the U-shaped top plate 1111. A motor 1113 is fixedly connected to the front top of the L-shaped side plate 1112. Connecting side plates 1114 are fixedly connected to the front sides of both the left and right sides of the U-shaped top plate 1111. Side plates 1115 are fixedly connected to the front sides of both connecting side plates 1114. Columnar connecting blocks 1116 are fixedly connected in a circular array to the bottom of the inner front sides of both side plates 1115. 1. Supporting uprights 11122 are fixedly connected to both the left and right sides of the bottom rear side. Support plates 11121 are fixedly connected to the bottom of the front sides of both supporting uprights 11122. A columnar transmission crossbar 1117 is rotatably connected to the inner wall of the top of the two side plates 1115. A transmission roller 1118 is fixedly connected to the middle of the outer wall of the columnar transmission crossbar 1117. A track 1119 is fitted onto the outer wall of the transmission roller 1118. The left end of the columnar transmission crossbar 1117 extends to the outer side of the left side plate 1115. A transmission disc 11110 is fixedly connected to the left end of the columnar transmission crossbar 1117. A stop block 11111 is fixedly connected to the top of the middle left side of the transmission disc 11110. The output end of the motor 1113 extends to the inner side of the two side plates 1115. The output of the motor 1113... A stirring roller 11115 is fixedly connected to the outlet end. A wastewater mixing chamber 11116 is fixedly connected to the inner side of two sets of columnar connecting blocks 1116 on the left and right sides. A sewage inlet chamber 11117 is fixedly connected to the top of the outer wall of the wastewater mixing chamber 11116. The inner wall of the wastewater mixing chamber 11116 is fitted onto the outer wall of the stirring roller 11115. A stirring roller connecting rod 11112 is fixedly connected to the left end of the stirring roller 11115. The left end of the stirring roller connecting rod 11112 extends to the outer side of the left side plate 1115. A second transmission disc 11113 is fixedly connected to the outer wall of the stirring roller connecting rod 11112. A second track 11114 is fitted onto the outer wall of the second transmission disc 11113. The top of the inner wall of the second track 11114 is fitted onto the outer wall of the transmission disc 11110. (The text abruptly ends here, likely due to an incomplete sentence or missing information.) The left end of the roller connecting rod 11112 is rotatably connected to a second L-shaped side plate 11120. An L-shaped vertical connecting plate 11118 is fixedly connected to the front side of the left side plate 1115. A concave guide block 11119 is fixedly connected to the top rear side of the L-shaped vertical connecting plate 11118. The material pushing control assembly 12 includes a purification chamber 1121. A purification chamber feed pipe 1122 is fixedly connected to the front side of the top center of the purification chamber 1121. A separation chamber 1123 is fixedly connected to the top of the purification chamber feed pipe 1122. The bottom of both sides of the separation chamber 1123 are fixedly connected to the top of two support plates 11121. A push plate 1124 is slidably connected to the rear side of the inner wall of the separation chamber 1123. A separation chamber discharge pipe 1125 is fixedly connected to the rear top of the separation chamber 1123.The top of the separation chamber discharge pipe 1125 is fixedly connected to the bottom of the wastewater mixing chamber 11116. The left side of the separation chamber 1123 is fixedly connected to the bottom right side of the second L-shaped side plate 11120. The top of the purification box feed pipe 1122 extends to one side of the inner wall of the separation chamber 1123 and is fixedly connected to a filter screen 1127. A ore discharge port 1128 is opened on the front bottom side of the separation chamber 1123. A ore discharge inclined plate 1129 is fixedly connected to the rear side of the ore discharge port 1128 opened on the inner wall of the separation chamber 1123. A ore storage bin 11210 is fixedly connected to the front bottom side of the ore discharge inclined plate 1129. A side support plate 1126 is fixedly connected to the right side of the separation chamber 1123. The top of the side support plate 1126 is fixedly connected to the L-shaped side plate 11120. At the bottom of 12, the material pushing control assembly 12 includes two U-shaped guide plates 121. The front sides of both U-shaped guide plates 121 are fixedly connected to the top of the rear side of the two support columns 11122. The top of each U-shaped guide plate 121 is provided with a side-convex connecting plate 122. The rear sides of the outer sides of the two side-convex connecting plates 122 are fixedly connected to the top of the inner side of the two support columns 11122. The inner walls of the top center of each side-convex connecting plate 122 are rotatably connected with a rotating arm transmission rod 123. The outer ends of the two rotating arm transmission rods 123 extend to the outer side of the two side-convex connecting plates 122. The outer ends of the two rotating arm transmission rods 123 are fixedly connected with a rotating arm 124. The bottom of the outer side of each rotating arm 124 is rotatably connected with a rotating block 125. Push-pull side rod guide blocks 1211 are fixedly connected to the front side of the outer side of the connecting plate 122. Top connecting rods 1213 are fixedly connected to the top of each of the two push-pull side rod guide blocks 1211. The tops of the two top connecting rods 1213 are fixedly connected to the left and right sides of the front bottom of the U-shaped top plate 1111. The outer walls of the inner sides of the two rotating arm transmission rods 123 are fitted onto the left and right sides of the rear inner wall of the track 1119. Bottom blocks 1212 are fixedly connected to the front bottom of each of the two push-pull side rod guide blocks 1211. Push-pull side rods 127 are slidably connected to the inner walls of each of the two push-pull side rod guide blocks 1211. Elliptical sliding groove upright plates 126 are fixedly connected to the rear top of each of the two push-pull side rods 127. The inner walls of the two elliptical sliding groove upright plates 126 are fitted onto the two rotating blocks 1119. On the outer wall of 25, spring connecting blocks 129 are fixedly connected to the bottom rear sides of the two push-pull side rods 127, springs 1210 are fixedly connected to the front sides of the two spring connecting blocks 129, and the front ends of the two springs 1210 are fixedly connected to the rear sides of the two bottom blocks 1212. Upright rods 128 are fixedly connected to the bottom rear sides of the two push-pull side rods 127, and inverted L-shaped push-pull upright rods 1214 are fixedly connected to the bottom of the two upright rods 128. Columnar push-pull rods 1215 are fixedly connected to the top and bottom of the front sides of the two inverted L-shaped push-pull upright rods 1214. The front ends of the two sets of columnar push-pull rods 1215 are fixedly connected to the four sides of the rear sides of the two push plates 1124. The outer walls of the two upright rods 128 are slidably connected to the inner walls of the two U-shaped guide plates 121. Mining and beneficiation wastewater is discharged into the inner wall of wastewater mixing chamber 11116 through the wastewater feed hopper 11117 at the top of the outer wall of the wastewater mixing chamber 11116. At this time, the start motor 1113 is started, and its output end drives the mixing roller 11115 to rotate. The mixing roller 11115 stirs the mining and beneficiation wastewater in the wastewater mixing chamber 11116, so that the ore carried by the wastewater is stirred and crushed. During the stirring process, the mixing roller 11115 continuously crushes the larger ore particles, making them easier to separate in subsequent operations. The rotation of the mixing roller 11115 also causes the wastewater to form a circulation in the wastewater mixing chamber 11116, further promoting the full mixing and crushing of the ore and wastewater. At the same time, when the motor 1113 drives the stirring roller 11115 to rotate, the stirring roller connecting rod 11112 also rotates, thereby driving the second transmission disk 11113 to rotate. The second transmission disk 11113 drives the transmission disk 11110 to rotate through the second track 11114, which in turn causes the columnar transmission crossbar 1117 to rotate, and the transmission roller 1118 and track 1119 also start to operate. The operation of the track 1119 drives the boom transmission rod 123 to rotate, and the boom 124 swings accordingly. The rotating block 125 on the boom 124 slides in the elliptical slide groove plate 126, pushing the push-pull side rod 127 to slide back and forth in the push-pull side rod guide block 1211. The sliding of the push-pull side rod 127 drives the columnar push-pull rod 1215 to move through the upright rod 128 and the inverted L-shaped push-pull upright rod 1214, ultimately causing the push plate 1124 to perform reciprocating pushing motion in the separation chamber 1123. After being stirred and crushed, the mining wastewater flows into the separation chamber 1123 through the feed pipe 1125 of the separation chamber. Under the push of the push plate 1124, the wastewater moves towards the feed pipe 1122 of the purification box. When the wastewater passes through the filter screen 1127, larger mineral particles are intercepted by the filter screen and remain in the separation chamber 1123. The intercepted ore is pushed down along the ore discharge ramp 1129 by the pusher plate 1124 and finally falls into the ore storage bin 11210, realizing the separation of ore and wastewater. The wastewater filtered by the filter screen 1127 enters the purification bin 1121 through the purification bin feed pipe 1122 for further purification treatment, so as to achieve the purpose of full resource utilization.
[0022] like Figure 9-10As shown, the drug storage mechanism 2 includes a purification agent tank connecting plate 21. A purification agent tank 22 is fixedly connected to the top of the purification agent tank connecting plate 21. A discharge tank 23 is fixedly connected to the bottom of the purification agent tank 22. A discharge pipe 24 is fixedly connected to the bottom of the discharge tank 23. The bottom of the discharge pipe 24 extends to the inner wall of the separation chamber 1123. Side connecting plates 25 are fixedly connected to both the left and right sides of the purification agent tank connecting plate 21. The rear sides of the two side connecting plates 25 are fixedly connected to the front sides of the two side plates 1115. L-shaped vertical plates 26 are fixedly connected to the rear sides of the bottom of the two side connecting plates 25. The front sides of the two side connecting plates 25 are... Each side is fixedly connected to a C-shaped side connecting plate 27. A reinforcing plate 28 is fixedly connected to the outer side of each of the two C-shaped side connecting plates 27. An exhaust gas extraction tank 29 is fixedly connected to the middle of the outer side of each of the two C-shaped side connecting plates 27. An exhaust gas storage tank 210 is fixedly connected to the rear side of each of the two side connecting plates 25. An exhaust gas storage tank connecting plate 211 is fixedly connected to the rear side of each of the two exhaust gas storage tanks 210. A second exhaust gas storage tank 212 is fixedly connected to the rear side of each of the two exhaust gas storage tanks 211. Pipes 213 are fixedly connected to the outer side of each of the two exhaust gas storage tanks 212. The front side of each of the two exhaust gas storage tanks 212 is fixedly connected to a second pipe 214. The ends of the two pipes 214 away from the exhaust gas storage tank 212 extend to the inner wall of the two exhaust gas extraction tanks 29. The ends of the two second pipes 214 away from the exhaust gas extraction tank 29 extend to the bottom of the inner wall of the exhaust gas extraction tank 29. The bottom of each of the two exhaust gas extraction tanks 29 is fixedly connected to an exhaust pipe 215. The bottom ends of the two exhaust pipes 215 extend to both sides of the inner wall of the separation chamber 1123. The inner side of the two side plates 25 is fixedly connected to a columnar lifting pole guide plate 216. The inner wall of the columnar lifting pole guide plate 216 is slidably connected to... There is a columnar lifting pole 217, the bottom end of which extends to the bottom of the inner wall of the feeding hopper 23. A piston 218 is fixedly connected to the bottom end of the columnar lifting pole 217, and an L-shaped push-pull plate 219 is fixedly connected to the top end of the columnar lifting pole 217. A push-pull plate 2110 is fixedly connected to the front side of the L-shaped push-pull plate 219, and a horizontal elliptical slide block 2111 is fixedly connected to the bottom of the push-pull plate 2110. The outer wall of the push-pull plate 2110 is slidably connected to the rear inner wall of the concave guide block 11119, and the outer wall of the horizontal elliptical slide block 2111 is fitted onto the outer wall of the abutment block 11111. While the motor 1113 drives the stirring roller 11115 to rotate and stir the wastewater in the stirring chamber 11116, the rotation of the transmission disc 11110 will also drive the connected abutment block 11111 to rotate. When the abutment block 11111 rotates, its outer wall interacts with the horizontal elliptical slide block 2111. Since the horizontal elliptical slide block 2111 is fitted on the outer wall of the abutment block 11111, the rotation of the abutment block 11111 will cause the horizontal elliptical slide block 2111 to move up and down. The horizontal elliptical slide block 2111 is fixed to the bottom of the push-pull upright plate 2110. The outer wall of the push-pull upright plate 2110 is slidably connected to the rear inner wall of the concave guide block 11119. This ensures that the push-pull upright plate 2110 can only slide up and down along the concave guide block 11119. The sliding of the push-pull plate 2110 causes the L-shaped push-pull plate 219 to move up and down. The L-shaped push-pull plate 219 is fixedly connected to the top of the column-shaped lifting rod 217, so that the column-shaped lifting rod 217 slides up and down on the inner wall of the column-shaped lifting rod guide plate 216. The piston 218 fixedly connected to the bottom of the column-shaped lifting rod 217 also moves up and down on the bottom of the inner wall of the feeding bucket 23. When piston 218 moves upward, a negative pressure is formed in the discharge bucket 23. Under atmospheric pressure, the purifying agent in the purifying agent bucket 22 flows into the discharge pipe 24 through the discharge bucket 23 and finally enters the separation chamber 1123 to purify the wastewater that has undergone preliminary separation. When piston 218 moves downward, it will discharge the excess air in the discharge bucket 23 to ensure that the purifying agent can flow into the separation chamber 1123 stably and continuously. At the same time, the waste gas extraction tank 29 extracts the waste gas generated in the separation chamber 1123 through the extraction pipe 215. The waste gas enters the waste gas extraction tank 29 through the extraction pipe 215, and then is transported to the second waste gas storage tank 212 and the waste gas storage tank 210 through the pipe 213 and the second pipe 214 respectively for storage, so as to avoid waste gas leakage and pollution to the environment, and further realize the environmental protection requirements in the process of full resource utilization treatment of mining and beneficiation wastewater.
[0023] In addition, the present invention also relates to a treatment method for a mineral processing wastewater treatment equipment for full-volume resource recovery, comprising the following steps: Step 1: Discharge the mining and beneficiation wastewater into the inner wall of the wastewater mixing chamber 11116 through the wastewater feed hopper 11117 at the top of the outer wall of the wastewater mixing chamber 11116, and start the motor 1113. Step Two: The output of motor 1113 drives the stirring roller 11115 to rotate, stirring the mining and beneficiation wastewater in the wastewater mixing chamber 11116. This crushes larger ore particles and creates a circulating flow, promoting thorough mixing and crushing of the ore and wastewater. Step 3: The motor 1113 drives the second transmission disc 11113 to rotate through the stirring roller connecting rod 11112, and the second track 11114 drives the transmission disc 11110, the columnar transmission crossbar 1117, the transmission roller 1118 and the track 1119 to rotate in sequence. Step 4: The track 1119 drives the rotating arm transmission rod 123 to rotate. Through the rotating arm 124 and the rotating block 125, it slides in the elliptical slide groove vertical plate 126, pushing the push-pull side rod 127 to slide back and forth in the push-pull side rod guide block 1211, thereby driving the push plate 1124 to perform reciprocating pushing motion in the separation chamber 1123. Step 5: The wastewater after mixing and crushing flows into the separation chamber 1123 through the separation chamber discharge pipe 1125. Under the push of the push plate 1124, it moves towards the purification box feed pipe 1122. Larger mineral particles are intercepted by the filter screen 1127 and fall into the mineral storage silo 11210 along the mineral discharge inclined plate 1129, thus realizing the separation of mineral and wastewater. Step 6: The rotation of the transmission disc 11110 drives the abutment block 11111 to act on the horizontal elliptical slide block 2111, causing the push-pull plate 2110 to slide up and down along the concave guide block 11119. The L-shaped push-pull plate 219 drives the columnar lifting rod 217 and piston 218 to move up and down in the feeding bucket 23. Step 7: When piston 218 moves upward, negative pressure is formed in discharge hopper 23, which draws the purifying agent in purifying agent hopper 22 into separation chamber 1123 through discharge pipe 24; when it moves downward, excess air is discharged to ensure stable and continuous addition of purifying agent. Step 8: The exhaust gas extraction tank 29 extracts the exhaust gas in the separation chamber 1123 through the extraction pipe 215, and then transports it to the second exhaust gas storage tank 212 and the exhaust gas storage tank 210 through the pipe 213 and the second pipe 214 respectively. The filtered wastewater enters the purification tank 1121 for further treatment through the purification tank inlet pipe 1122.
[0024] Working principle of this invention: Mining and beneficiation wastewater is discharged into the inner wall of the wastewater mixing chamber 11116 through the wastewater inlet 11117 at the top of the outer wall. At this time, the motor 1113 starts, and its output drives the mixing roller 11115 to rotate. The mixing roller 11115 stirs the mining and beneficiation wastewater within the wastewater mixing chamber 11116, causing the ore carried by the wastewater to be crushed. During the stirring process, the mixing roller 11115 continuously crushes larger ore particles, making them easier for subsequent separation operations. The rotation of the mixing roller 11115 also causes the wastewater to circulate within the wastewater mixing chamber 11116, further promoting thorough mixing and crushing of the ore and wastewater. Simultaneously, the motor 1113 drives the mixing roller... When 11115 rotates, the stirring roller connecting rod 11112 also rotates, thereby driving the second transmission disc 11113 to rotate. The second transmission disc 11113 drives the transmission disc 11110 to rotate via the second track 11114, which in turn causes the columnar transmission crossbar 1117 to rotate. The transmission roller 1118 and track 1119 also start to operate. The operation of the track 1119 drives the rotating arm transmission rod 123 to rotate, and the rotating arm 124 swings accordingly. The rotating block 125 on the rotating arm 124 slides in the elliptical slide groove vertical plate 126, pushing the push-pull side rod 127 to reciprocate within the push-pull side rod guide block 1211. The sliding of the push-pull side rod 127 drives the columnar push-pull rod 1215 to move through the vertical rod 128 and the inverted L-shaped push-pull vertical rod 1214, ultimately causing... The pusher plate 1124 reciprocates within the separation chamber 1123, pushing the wastewater after mixing and crushing into the separation chamber 1123 via the discharge pipe 1125. Driven by the pusher plate 1124, the wastewater moves towards the inlet pipe 1122 of the purification tank. As the wastewater passes through the filter screen 1127, larger mineral particles are intercepted and remain within the separation chamber 1123. The intercepted mineral particles, pushed by the pusher plate 1124, slide down the ore discharge ramp 1129 and finally fall into the ore storage silo 11210, thus achieving the separation of ore and wastewater. Simultaneously, as the motor 1113 drives the mixing roller 11115 to rotate and mix the wastewater in the mixing chamber 11116, the rotation of the transmission disc 11110 also drives the connected... When the abutment block 11111 rotates, its outer wall interacts with the horizontal elliptical slide block 2111. Since the horizontal elliptical slide block 2111 is fitted onto the outer wall of the abutment block 11111, the rotation of the abutment block 11111 will cause the horizontal elliptical slide block 2111 to tend to move up and down. The horizontal elliptical slide block 2111 is fixed to the bottom of the push-pull upright plate 2110. The outer wall of the push-pull upright plate 2110 is slidably connected to the rear inner wall of the concave guide block 11119. This ensures that the push-pull upright plate 2110 can only slide up and down along the concave guide block 11119. The up and down sliding of the push-pull upright plate 2110 drives the L-shaped push-pull plate 219 to move up and down. The L-shaped push-pull plate 219 is also fixedly connected to the top of the columnar lifting upright 217.This causes the columnar lifting rod 217 to slide up and down on the inner wall of the columnar lifting rod guide plate 216. The piston 218, which is fixedly connected to the bottom of the columnar lifting rod 217, also moves up and down on the bottom of the inner wall of the feeding barrel 23. When the piston 218 moves upward, a negative pressure is formed in the feeding barrel 23. Under the action of atmospheric pressure, the purifying agent in the purifying agent tank 22 flows into the feeding pipe 24 through the feeding barrel 23 and finally enters the separation chamber 1123 to purify the wastewater that has undergone preliminary separation. When the piston 218 moves downward, it will expel the excess air in the feeding barrel 23. To ensure a stable and continuous flow of the purifying agent into the separation chamber 1123, the exhaust gas extraction tank 29 extracts the exhaust gas generated within the separation chamber 1123 via the extraction pipe 215. The exhaust gas enters the exhaust gas extraction tank 29 through the extraction pipe 215, and then is transported through pipes 213 and 214 to the second exhaust gas storage tank 212 and the exhaust gas storage tank 210 for storage, preventing exhaust gas leakage and environmental pollution. The wastewater filtered by the filter screen 1127 enters the purification tank 1121 through the purification tank inlet pipe 1122 for further purification treatment.
[0025] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.
Claims
1. A device for the complete resource utilization treatment of mining and beneficiation wastewater, comprising a separation mechanism (1), characterized in that: The top of the separation mechanism (1) is fixedly connected to the drug storage mechanism (2); The separation mechanism (1) includes a feeding assembly (11), and a pushing control assembly (12) is fixedly connected to the top of the rear side of the feeding assembly (11). The feeding assembly (11) includes a feeding rack (111), and a separation and purification assembly (112) is fixedly connected to the bottom front side of the feeding rack (111).
2. The equipment for the complete resource utilization treatment of mining and beneficiation wastewater according to claim 1, characterized in that: The unloading rack (111) includes a U-shaped top plate (1111), an L-shaped side plate (1112) is fixedly connected to the right side of the U-shaped top plate (1111), a motor (1113) is fixedly connected to the front side of the top of the L-shaped side plate (1112), connecting side plates (1114) are fixedly connected to the front sides of both the left and right sides of the U-shaped top plate (1111), side plates (1115) are fixedly connected to the front sides of both connecting side plates (1114), columnar connecting blocks (1116) are fixedly connected to the bottom of the front side of the inner side of both side plates (1115) in a circular array, support rods (11122) are fixedly connected to the left and right sides of the rear side of the bottom of the U-shaped top plate (1111), and support plates (11121) are fixedly connected to the bottom of the front side of both support rods (11122).
3. The equipment for the complete resource utilization treatment of mining and beneficiation wastewater according to claim 2, characterized in that: A columnar transmission crossbar (1117) is rotatably connected to the inner wall of the top of the two side plates (1115). A transmission roller (1118) is fixedly connected to the middle of the outer wall of the columnar transmission crossbar (1117). A track (1119) is fitted onto the outer wall of the transmission roller (1118). The left end of the columnar transmission crossbar (1117) extends to the outer side of the left side plate (1115). A transmission disc (11110) is fixedly connected to the left end of the columnar transmission crossbar (1117). The top of the middle left side of the transmission disc (11110) is fixedly connected to the top of the transmission disc (11110). A stop block (11111) is connected, and the output end of the motor (1113) extends to the inner side of the two side plates (1115). The output end of the motor (1113) is fixedly connected to the stirring roller (11115). The inner side of the two sets of columnar connecting blocks (1116) is fixedly connected to the wastewater mixing chamber (11116). The top of the outer wall of the wastewater mixing chamber (11116) is fixedly connected to the sewage inlet chamber (11117). The inner wall of the wastewater mixing chamber (11116) is fitted onto the outer wall of the stirring roller (11115).
4. The equipment for the complete resource utilization treatment of mining and beneficiation wastewater according to claim 3, characterized in that: The left end of the stirring roller (11115) is fixedly connected to a stirring roller connecting rod (11112). The left end of the stirring roller connecting rod (11112) extends to the outside of the left side plate (1115). The outer wall of the stirring roller connecting rod (11112) is fixedly connected to a second transmission disc (11113). The outer wall of the second transmission disc (11113) is fitted with a second track (11114). The top of the inner wall of the second track (11114) is fitted onto the outer wall of the transmission disc (11110). The left end of the stirring roller connecting rod (11112) is rotatably connected to a second L-shaped side plate (11120). The front side of the left side plate (1115) is fixedly connected to an L-shaped vertical connecting plate (11118). The top of the rear side of the L-shaped vertical connecting plate (11118) is fixedly connected to a concave guide block (11119).
5. The equipment for the complete resource utilization treatment of mining and beneficiation wastewater according to claim 1, characterized in that: The feeding control assembly (12) includes a purification tank (1121). A purification tank feed pipe (1122) is fixedly connected to the front side of the top center of the purification tank (1121). A separation chamber (1123) is fixedly connected to the top of the purification tank feed pipe (1122). The bottom of the left and right sides of the separation chamber (1123) are fixedly connected to the top of two support plates (11121). A push plate (1124) is slidably connected to the rear side of the inner wall of the separation chamber (1123). A separation chamber discharge pipe (1125) is fixedly connected to the rear side of the top of the separation chamber (1123). The top of the separation chamber discharge pipe (1125) is fixedly connected to the bottom of the wastewater mixing chamber (11116). The left side of the separation chamber (1123) is fixedly connected to... At the bottom right side of the second L-shaped side plate (11120), the top of the purification box feed pipe (1122) extends to one side of the inner wall of the separation chamber (1123) and is fixedly connected to a filter screen (1127). The bottom front side of the separation chamber (1123) is provided with a ore discharge port (1128). The rear side of the ore discharge port (1128) opened on the inner wall of the separation chamber (1123) is fixedly connected to an ore discharge inclined plate (1129). The bottom front side of the ore discharge inclined plate (1129) is fixedly connected to an ore storage bin (11210). The right side of the separation chamber (1123) is fixedly connected to a side support plate (1126). The top of the side support plate (1126) is fixedly connected to the bottom of the L-shaped side plate (1112).
6. The equipment for the complete resource utilization treatment of mining and beneficiation wastewater according to claim 1, characterized in that: The feeding control assembly (12) includes two U-shaped guide plates (121). The front sides of the two U-shaped guide plates (121) are fixedly connected to the top of the rear side of the two support columns (11122). The top of the two U-shaped guide plates (121) is provided with a side-convex connecting plate (122). The rear side of the outer side of the two side-convex connecting plates (122) is fixedly connected to the top of the inner side of the two support columns (11122). The inner wall of the middle part of the top of the two side-convex connecting plates (122) is rotatably connected with a rotating arm transmission rod (123). The outer ends of the two rotating arm transmission rods (123) extend to the outer side of the two side-convex connecting plates (122). A rotating arm (124) is fixedly connected. A rotating block (125) is rotatably connected to the bottom of the outer side of each of the two rotating arms (124). A push-pull side rod guide block (1211) is fixedly connected to the front side of the outer side of each of the two side-convex connecting plates (122). A top-mounted connecting rod (1213) is fixedly connected to the top of each of the two push-pull side rod guide blocks (1211). The tops of the two top-mounted connecting rods (1213) are fixedly connected to the left and right sides of the bottom front side of the U-shaped top plate (1111). The outer walls of the inner side of the two rotating arm transmission rods (123) are fitted onto the left and right sides of the rear side of the inner wall of the track (1119). A bottom block (1212) is fixedly connected to the front side of the bottom of each of the two push-pull side rod guide blocks (1211).
7. The equipment for the complete resource utilization treatment of mining and beneficiation wastewater according to claim 6, characterized in that: Push-pull side rods (127) are slidably connected to the inner walls of the two push-pull side rod guide blocks (1211). Elliptical sliding groove plates (126) are fixedly connected to the rear sides of the top of the two push-pull side rods (127). The inner walls of the two elliptical sliding groove plates (126) are fitted onto the outer walls of the two rotating blocks (125). Spring connecting blocks (129) are fixedly connected to the rear sides of the bottom of the two push-pull side rods (127). Springs (1210) are fixedly connected to the front sides of the two spring connecting blocks (129). The front ends of the two springs (1210) are fixedly connected to the two... On the rear side of the base block (1212), the bottom rear side of the two push-pull side rods (127) are fixedly connected to the upright rods (128), the bottom of the two upright rods (128) are fixedly connected to the inverted L-shaped push-pull upright rods (1214), the top and bottom of the front side of the two inverted L-shaped push-pull upright rods (1214) are fixedly connected to the columnar push-pull rods (1215), the front ends of the left and right sets of columnar push-pull rods (1215) are fixedly connected to the four sides of the rear side of the two push plates (1124), and the outer walls of the two upright rods (128) are slidably connected to the inner walls of the two U-shaped guide plates (121).
8. The equipment for the complete resource utilization treatment of mining and beneficiation wastewater according to claim 1, characterized in that: The drug storage mechanism (2) includes a purification agent tank connecting plate (21), a purification agent tank (22) is fixedly connected to the top of the purification agent tank connecting plate (21), a discharge tank (23) is fixedly connected to the bottom of the purification agent tank (22), a discharge pipe (24) is fixedly connected to the bottom of the discharge tank (23), the bottom of the discharge pipe (24) extends to the inner wall of the separation chamber (1123), and side connecting plates (25) are fixedly connected to both the left and right sides of the purification agent tank connecting plate (21). The rear sides of the two side plates (25) are fixedly connected to the front sides of the two side plates (1115). L-shaped vertical plates (26) are fixedly connected to the rear bottom of the two side plates (25). C-shaped side connecting plates (27) are fixedly connected to the front outer sides of the two side plates (25). Reinforcing plates (28) are fixedly connected to the outer sides of the two C-shaped side connecting plates (27). Waste gas extraction tanks (29) are fixedly connected to the middle outer sides of the two C-shaped side connecting plates (27). The outer rear side of each side plate (25) is fixedly connected to a waste gas storage tank (210), and the rear side of each of the two waste gas storage tanks (210) is fixedly connected to a waste gas storage tank connecting plate (211). The rear side of each of the two waste gas storage tank connecting plates (211) is fixedly connected to a second waste gas storage tank (212). The outer side of each of the two second waste gas storage tanks (212) is fixedly connected to a pipe (213), and the front side of each of the two waste gas storage tanks (210) is fixedly connected to a second pipe. The two pipes (214) and the two pipes (213) extend away from the second waste gas storage tank (212) to the inner wall of the two waste gas extraction tanks (29). The two second pipes (214) extend away from the waste gas extraction tank (29) to the bottom of the inner wall of the waste gas extraction tank (29). The bottom of the two waste gas extraction tanks (29) is fixedly connected to the extraction pipe (215). The bottom ends of the two extraction pipes (215) extend to both sides of the inner wall of the separation chamber (1123).
9. A mineral processing wastewater full-volume resource utilization treatment device according to claim 8, characterized in that: A columnar lifting pole guide plate (216) is fixedly connected to the inner side of the two side plates (25). A columnar lifting pole (217) is slidably connected to the inner wall of the columnar lifting pole guide plate (216). The bottom end of the columnar lifting pole (217) extends to the bottom of the inner wall of the feeding hopper (23). A piston (218) is fixedly connected to the bottom end of the columnar lifting pole (217). The top end of the columnar lifting pole (217) is fixed. An L-shaped push-pull plate (219) is connected, and a push-pull upright plate (2110) is fixedly connected to the front side of the L-shaped push-pull plate (219). A horizontal elliptical slide block (2111) is fixedly connected to the bottom of the push-pull upright plate (2110). The outer wall of the push-pull upright plate (2110) is slidably connected to the rear inner wall of the concave guide block (11119). The outer wall of the horizontal elliptical slide block (2111) is fitted onto the outer wall of the abutment block (11111).
10. A method for treating mineral processing wastewater using a comprehensive resource recovery treatment device, as described in any one of claims 1-9, characterized in that: Includes the following steps: Step 1: Discharge the mining and beneficiation wastewater into the inner wall of the wastewater mixing chamber (11116) through the wastewater feed hopper (11117) at the top of the outer wall of the wastewater mixing chamber (11116), and start the motor (1113). Step 2: The output end of the motor (1113) drives the stirring roller (11115) to rotate, stirring the mining and beneficiation wastewater in the wastewater mixing chamber (11116), crushing larger ore particles and forming a circulation, promoting thorough mixing and crushing of the ore and wastewater. Step 3: The motor (1113) drives the second transmission disc (11113) to rotate through the stirring roller connecting rod (11112), and through the second track (11114), the transmission disc (11110), the columnar transmission crossbar (1117), the transmission roller (1118) and the track (1119) rotate in sequence. Step 4: The track (1119) drives the rotating arm transmission rod (123) to rotate. Through the rotating arm (124) and the rotating block (125) sliding in the elliptical chute vertical plate (126), the push-pull side rod (127) is pushed to slide back and forth in the push-pull side rod guide block (1211), thereby driving the push plate (1124) to perform reciprocating pushing motion in the separation chamber (1123); Step 5: The wastewater after mixing and crushing flows into the separation chamber (1123) through the discharge pipe (1125) of the separation chamber. Under the push of the push plate (1124), it moves towards the feed pipe (1122) of the purification box. Larger mineral particles are intercepted by the filter screen (1127) and fall into the mineral storage silo (11210) along the mineral discharge inclined plate (1129), thus realizing the separation of mineral and wastewater. Step 6: The rotation of the transmission disc (11110) drives the abutment block (11111) to act with the horizontal elliptical slide block (2111), causing the push-pull plate (2110) to slide up and down along the concave guide block (11119), and through the L-shaped push-pull plate (219), it drives the columnar lifting rod (217) and piston (218) to move up and down in the feeding bucket (23); Step 7: When the piston (218) moves upward, the discharge bucket (23) forms a negative pressure, which draws the purifying agent in the purifying agent bucket (22) into the separation chamber (1123) through the discharge pipe (24); when it moves downward, excess air is discharged to ensure that the purifying agent is added stably and continuously. Step 8: The exhaust gas extraction tank (29) extracts the exhaust gas in the separation chamber (1123) through the exhaust pipe (215), and then transports it to the second exhaust gas storage tank (212) and the exhaust gas storage tank (210) through the pipe (213) and the second pipe (214) respectively. The filtered wastewater enters the purification tank (1121) for further treatment through the purification tank feed pipe (1122).