Mining area ecological restoration system and implementation method thereof
By designing an ecological restoration system for the mining area, a lifting cylinder is used to pressurize and transport water to the planting frame, which solves the problem of low irrigation efficiency for slope plants, achieves an efficient and stable irrigation method, and reduces manual operation.
Patent Information
- Application Number
- CN202511536146.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-27
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2045-10-27
AI Technical Summary
In existing technologies, plants grown on the slopes of mining areas are difficult to care for after planting, especially during irrigation, where workers need to carry water uphill to irrigate, which is inefficient.
Design a mining area ecological restoration system, including four planting frames distributed in a circle, an installation frame with a connecting space in the middle, a storage tank and a lifting cylinder inside, water is pressurized by the lifting cylinder to enter the delivery pipe and drip irrigation to the planting frames through the drip pipe. The system is equipped with connecting rods and elastic waterproof cloth to stabilize the structure, and the suction pipe cooperates with the arc-shaped box to prevent the accumulation of sediment.
It enables efficient irrigation on mining slopes, reduces manual operation, improves irrigation efficiency, prevents sediment accumulation, and maintains system stability.
Smart Images

Figure CN121003103A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of mining area environmental remediation technology, specifically to a mining area ecological restoration system and its implementation method. Background Technology
[0002] Mining development inevitably damages the surface ecosystem, usually requiring ecological restoration of the mining area in the later stages of mining. Ecological restoration of the mining area usually requires basic data collection, vegetation surveys, soil surveys, and research on the response of vegetation to environmental factors. In this process, ecological restoration systems are needed to conduct on-site planting simulations and on-site observations.
[0003] To ensure that the planted vegetation or soil remains stable on the slope of the mining area during the planting simulation, planting frames are usually used to protect the soil or vegetation. In existing technologies, planting frames are commonly used to protect the soil. However, it is not convenient to care for plants planted on the slope after planting, especially during the irrigation process. Currently, workers carry water up the slope to irrigate, which is too inefficient. Summary of the Invention
[0004] Technical problems to be solved
[0005] To address the aforementioned shortcomings of existing technologies, this invention provides a mining area ecological restoration system and its implementation method. This system effectively solves the problem that existing technologies typically use planting frames to protect the soil or vegetation in order to keep the planted vegetation or soil stable on the slope of the mining area during the planting simulation process. However, planting frames are commonly used to protect the soil in existing technologies, but these plants planted on the slope are not easy to care for after planting, especially during the irrigation process, where workers have to carry water uphill to irrigate, which is an inefficient method.
[0006] Technical solution
[0007] To achieve the above objectives, the present invention provides the following technical solution:
[0008] The present invention provides an ecological restoration system for mining areas, comprising four planting frames arranged in a circle, a connecting space formed in the middle of the four planting frames, an installation frame installed inside the connecting space, and the four sides of the installation frame being fixedly connected to the four planting frames by bolts.
[0009] A storage bucket is fixedly installed inside the mounting frame. Multiple conveying pipes are arranged around the storage bucket and extend into the four planting frames. The conveying pipes are used to guide the water inside the storage bucket into the planting frames.
[0010] A lifting cylinder is slidably installed above the storage tank to pressurize the inside of the storage tank and transport the liquid inside the storage tank to the delivery pipe. A one-way air inlet valve is provided above the lifting cylinder, and connecting rods are rotatably installed around the lifting cylinder. The top of the multiple connecting rods is covered with an elastic waterproof cloth.
[0011] Furthermore, a drip pipe is connected to the end of the delivery pipe away from the storage tank, and multiple drip nozzles are arranged on both sides below the drip pipe, with the drip nozzles distributed at an angle downwards.
[0012] Furthermore, a support rod is provided on the outside of the storage tank, and a rotating connecting column is fixedly installed at the upper end of the support rod. A rotating connecting block is fixedly installed in the middle of the connecting rod. A strip-shaped through hole is provided on the rotating connecting block for the rotating connecting column to pass through. The rotating connecting column is rotatably and slidably connected to the strip-shaped through hole. A lifting ring is provided at the end of the multiple connecting rods away from the lifting cylinder. The lifting ring is rotatably connected to the multiple connecting rods. The elastic waterproof cloth covers the upper surface of the lifting ring and the multiple connecting rods.
[0013] Furthermore, a telescopic component is fixedly installed inside the mounting frame. The telescopic component is used to drive the lifting cylinder to move up and down. A support shaft is coaxially arranged in the middle of the storage tank. A sealing disc is fixedly installed on the support shaft. The diameter of the opening at the top of the lifting cylinder is the same as the diameter of the sealing disc. During the descent of the lifting cylinder, the opening at the top is sealed to the outside of the sealing disc.
[0014] Furthermore, a sealing plate is fixedly installed on the top of the support shaft. The diameter of the sealing plate is the same as that of the sealing disc. After the lifting cylinder moves upward, the upper opening of the lifting cylinder is sealed to the outer wall of the sealing plate. A limit ring is provided on the outer edge of the sealing plate.
[0015] Furthermore, four suction tubes are respectively arranged around the storage tank. One end of each suction tube extends into the storage tank and is connected to the inside of the storage tank. The other end of each suction tube is connected to the delivery tube. A stirring component is arranged on both sides of the end of each suction tube that extends into the storage tank. The stirring component is used to stir the liquid inside the storage tank.
[0016] Furthermore, the agitation assembly includes an arc-shaped box fixedly installed inside the storage tank. The arc-shaped box is hollow inside, and a nozzle is provided on the side of the arc-shaped box to connect the storage tank and the inside of the arc-shaped box. An elastic airbag is provided on the top of the arc-shaped box, and an arc-shaped pressure plate is provided below the lifting cylinder. As the lifting cylinder moves downward to the bottom, the arc-shaped pressure plate squeezes the elastic airbag, and the squeezed elastic airbag causes the liquid or gas inside the arc-shaped box to be sprayed into the storage tank.
[0017] Furthermore, the end of the suction tube that extends into the storage tank has an opening facing downwards, and the nozzles are all positioned below the lower opening of the suction tube.
[0018] Furthermore, a limiting groove is provided above the planting frame, and the outline of the limiting groove is the same as the outer edge outline of the lifting ring. During the process of the lifting ring moving downward to the bottom, the lifting ring is respectively engaged in the limiting grooves on multiple planting frames.
[0019] An implementation method for a mining area ecological restoration system includes the following steps:
[0020] Step 1: First, the location of the installation frame will be partially buried on the ground in the area to be repaired, and the four planting frames will be fixedly installed around the installation frame.
[0021] Step 2: Next, pour the soil used for repair into the four planting frames respectively, bury the drip pipes in the soil, and then plant the plants or plant seeds in the four planting frames.
[0022] Step 3: Next, the liquid for irrigating the soil is added to the inside of the storage tank from the lifting cylinder. When irrigation is needed, the lifting cylinder is moved downward to put the inside of the storage tank under high pressure, so that the liquid flows into the soil.
[0023] Beneficial effects
[0024] The technical solution provided by this invention has the following advantages compared with known public technologies:
[0025] 1. In this invention, by setting an installation frame in the middle of four planting frames and setting a storage bucket inside the installation frame, the installation frame can connect the four planting frames into a whole during use, making it easier to manage. On the other hand, the storage bucket inside the installation frame can store irrigation water. When it is necessary to irrigate the plants inside the planting frames, it is only necessary to press down the lifting cylinder to put the internal environment of the storage bucket into an overpressure state. At this time, the water inside the storage bucket will be squeezed into the delivery pipe, which facilitates the irrigation of the plants inside the planting frames.
[0026] 2. In this invention, by setting a support rod on the outside of the storage tank, the middle part of the connecting rod can be easily supported, so that the lifting cylinder can rotate around the rotating connecting column as an axis during the up and down movement. By setting a lifting ring at the end of the connecting rod away from the lifting cylinder, multiple connecting rods can rotate synchronously during the rotation process, which can more stably drive the elastic waterproof cloth to move. A rotating connecting groove is set on the lifting ring, and one end of the connecting rod extends into the rotating connecting groove and rotates and connects with the lifting ring.
[0027] 3. In this invention, a support shaft is set in the middle of the storage tank, and a sealing plate and a sealing plate are set at intervals on the outside of the support shaft. In the initial state, the lifting cylinder is at the highest point, and the upper opening of the lifting cylinder is fitted over the sealing plate. This can prevent external debris from entering the storage tank from the lifting cylinder. When it is necessary to pressurize the inside of the storage tank, the telescopic component drives the lifting cylinder to move downward. When the upper opening of the lifting cylinder moves to the sealing plate, as the lifting cylinder continues to move downward, a sealed cavity is formed between the sealing plate, the lifting cylinder and the storage tank. The continued downward movement of the lifting cylinder can generate high pressure inside this sealed cavity, causing the water inside the storage tank to be squeezed from the delivery pipe into the planting frame.
[0028] 4. In this invention, by setting arc-shaped boxes on both sides of the suction tube, and setting elastic airbags and nozzles above and below the arc-shaped boxes respectively, during the downward movement of the lifting cylinder, the arc-shaped pressure plate below the lifting cylinder will squeeze the elastic airbags, causing the gas or liquid inside the arc-shaped box to be sprayed out from the nozzles. This can cause the sediment inside the storage tank to mix with the water near the suction tube, so that the sediment mixed with the water flow enters the delivery pipe from the suction tube and is dripped into the planting frame, thus preventing the sediment from continuously accumulating inside the storage tank. Attached Figure Description
[0029] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are merely some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without any creative effort.
[0030] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0031] Figure 2 This is a schematic diagram of the overall structure of the present invention with the skin removed;
[0032] Figure 3 This is a top view of the present invention;
[0033] Figure 4 This is a schematic diagram of the overall structure of the present invention without the planting frame.
[0034] Figure 5 This is an exploded view of the storage tank and lifting cylinder of the present invention;
[0035] Figure 6 This is a side view of the present invention;
[0036] Figure 7 This is a side sectional view of the present invention;
[0037] Figure 8 This is a cross-sectional schematic diagram of the overall structure of the present invention.
[0038] The labels in the diagram represent:
[0039] 1. Planting frame; 11. Drip pipe; 12. Drip nozzle; 2. Mounting frame; 21. Expansion joint;
[0040] 3. Storage tank; 31. Sealing tray; 311. Limiting ring; 32. Conveying pipe; 33. Arc-shaped box; 331. Nozzle; 34. Elastic airbag; 35. Support rod; 351. Rotating connecting column; 36. Suction pipe; 37. Support shaft; 38. Sealing disc; 4. Lifting cylinder; 41. Arc-shaped pressure plate; 401. One-way air inlet valve; 42. Connecting plate;
[0041] 5. Connecting rod; 51. Lifting ring; 5101. Rotating connecting groove; 52. Elastic waterproof cloth; 53. Rotating connecting block; 5301. Strip-shaped through hole. Detailed Implementation
[0042] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, 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, not all, of the embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0043] The present invention will be further described below with reference to embodiments.
[0044] Example: An ecological restoration system for mining areas, such as Figure 1 - Figure 4 As shown, it includes four planting frames 1 arranged in a circle, and a connecting space is formed in the middle of the four planting frames 1. An installation frame 2 is installed inside the connecting space, and the four sides of the installation frame 2 are respectively fixedly connected to the four planting frames 1 by bolts.
[0045] Storage bucket 3 is fixedly installed inside the mounting frame 2. Multiple conveying pipes 32 are provided around the storage bucket 3. The multiple conveying pipes 32 extend into the four planting frames 1 respectively. The conveying pipes 32 are used to guide the water inside the storage bucket 3 into the planting frames 1.
[0046] The lifting cylinder 4 is slidably installed above the storage tank 3 to pressurize the inside of the storage tank 3 and transport the liquid inside the storage tank 3 to the delivery pipe 32. A one-way air inlet valve 401 is provided above the lifting cylinder 4. Connecting rods 5 are rotatably installed around the lifting cylinder 4, and an elastic waterproof cloth 52 covers the top of the multiple connecting rods 5.
[0047] In this invention, an installation frame 2 is set in the middle of four planting frames 1, and a storage tank 3 is set inside the installation frame 2. During use, the installation frame 2 can connect the four planting frames 1 into a whole, making it easier to manage. On the other hand, the storage tank 3 inside the installation frame 2 can store irrigation water. When it is necessary to irrigate the plants inside the planting frames 1, it is only necessary to press down the lifting cylinder 4 to make the internal environment of the storage tank 3 under overpressure. At this time, the water inside the storage tank 3 will be squeezed into the delivery pipe 32, which facilitates the irrigation of the plants inside the planting frames 1.
[0048] It should be noted that temperature sensors and soil moisture sensors are installed on the sides of planting frame 1, which can remotely monitor the planting environment inside planting frame 1 and collect planting data inside planting frame 1 in a timely manner.
[0049] In addition, by setting a connecting rod 5 above the lifting cylinder 4 and an elastic waterproof cloth 52 above the connecting rod 5, under normal use conditions, the end of the connecting rod 5 closest to the lifting cylinder 4 is in a higher position, which can make the entire elastic waterproof cloth 52 present a central convex shape. In this state, the lifting cylinder 4 and other equipment around the lifting cylinder 4 can be protected, and small stones or other debris can slide down the convex elastic waterproof cloth 52.
[0050] Furthermore, such as Figure 4 As shown, a drip pipe 11 is connected to one end of the delivery pipe 32 away from the storage tank 3. Multiple drip nozzles 12 are arranged on both sides below the drip pipe 11, and the drip nozzles 12 are distributed at an angle downwards.
[0051] By setting a drip pipe 11 on the delivery pipe 32 and setting drip nozzles 12 on both sides of the drip pipe 11, the vegetation inside the planting frame 1 can be conveniently drip-irrigated, and the water can be fully absorbed by the soil. Since the drip nozzles 12 are distributed at an angle downwards, the soil can be prevented from clogging the drip nozzles 12 during use.
[0052] Furthermore, such as Figure 5 and Figure 8 As shown, a support rod 35 is provided on the outside of the storage tank 3. A rotating connecting column 351 is fixedly installed on the upper end of the support rod 35. A rotating connecting block 53 is fixedly installed in the middle of the connecting rod 5. A strip-shaped through hole 5301 is provided on the rotating connecting block 53 for the rotating connecting column 351 to pass through. The rotating connecting column 351 and the strip-shaped through hole 5301 are rotatably and slidably connected. A lifting ring 51 is provided at the end of the multiple connecting rods 5 away from the lifting cylinder 4. The lifting ring 51 is rotatably connected to the multiple connecting rods 5. The elastic waterproof cloth 52 covers the upper surface of the lifting ring 51 and the multiple connecting rods 5.
[0053] By setting a support rod 35 on the outside of the storage tank 3, the middle part of the connecting rod 5 can be easily supported, so that the lifting cylinder 4 can rotate around the rotating connecting column 351 as the axis during the up and down movement. By setting a lifting ring 51 at the end of the connecting rod 5 away from the lifting cylinder 4, multiple connecting rods 5 can rotate synchronously during the rotation process, which can more stably drive the elastic waterproof cloth 52 to move. A rotating connecting groove 5101 is set on the lifting ring 51, and one end of the connecting rod 5 extends into the rotating connecting groove 5101 and is rotatably connected to the lifting ring 51.
[0054] Furthermore, such as Figure 5 and Figure 6 As shown, a telescopic component 21 is fixedly installed inside the mounting frame 2. A bent connecting plate 42 is provided at the upper end of the telescopic component 21. The other end of the connecting plate 42 is connected to the upper end of the lifting cylinder 4. The telescopic component 21 is used to drive the lifting cylinder 4 to move up and down. A support shaft 37 is coaxially provided in the middle of the storage tank 3. A sealing plate 38 is fixedly installed on the support shaft 37. The diameter of the upper opening of the lifting cylinder 4 is the same as the diameter of the sealing plate 38. During the descent of the lifting cylinder 4, the upper opening is sealed to the outside of the sealing plate 38. A sealing plate 31 is fixedly installed at the top of the support shaft 37. The diameter of the sealing plate 31 is the same as the diameter of the sealing plate 38. After the lifting cylinder 4 moves up, the upper opening of the lifting cylinder 4 is sealed to the outer wall of the sealing plate 31. A limit ring 311 is provided on the outer edge of the sealing plate 31.
[0055] In this system, a support shaft 37 is set in the middle of the storage tank 3, and a sealing plate 31 and a sealing plate 38 are set at intervals on the outside of the support shaft 37. In the initial state, the lifting cylinder 4 is at its highest point, and the upper opening of the lifting cylinder 4 is fitted over the sealing plate 31, which can prevent external debris from entering the storage tank 3 from the lifting cylinder 4. When it is necessary to pressurize the inside of the storage tank 3, the telescopic component 21 drives the lifting cylinder 4 to move downward as a whole. When the upper opening of the lifting cylinder 4 moves to the sealing plate 38, as the lifting cylinder 4 continues to move downward, a sealed cavity is formed between the sealing plate 38, the lifting cylinder 4 and the storage tank 3. The continued downward movement of the lifting cylinder 4 can generate high pressure inside this sealed cavity, causing the water inside the storage tank 3 to be squeezed from the delivery pipe 32 into the inside of the planting frame 1.
[0056] Furthermore, such as Figure 7 and Figure 8As shown, four suction pipes 36 are respectively arranged around the storage tank 3. One end of each suction pipe 36 extends into the storage tank 3 and communicates with the interior of the storage tank 3. The other end of each suction pipe 36 is connected to the delivery pipe 32. A stirring component is provided on both sides of the end of each suction pipe 36 that extends into the storage tank 3. The stirring component is used to stir the liquid inside the storage tank 3. The stirring component includes an arc-shaped box 33 fixedly installed inside the storage tank 3. The arc-shaped box 33 is hollow inside, and a spray nozzle 331 is provided on the side of the arc-shaped box 33. The nozzle 331 is used to connect the storage tank 3 and the interior of the arc-shaped box 33. An elastic airbag 34 is provided on the top of the arc-shaped box 33, and an arc-shaped pressure plate 41 is provided below the lifting cylinder 4. When the lifting cylinder 4 moves downward to the bottom, the arc-shaped pressure plate 41 squeezes the elastic airbag 34. When the elastic airbag 34 is squeezed, it drives the liquid or gas inside the arc-shaped box 33 to spray into the storage tank 3. The end of the suction tube 36 that extends into the storage tank 3 has an opening facing downward, and the nozzles 331 are all positioned below the lower opening of the suction tube 36.
[0057] Specifically, by setting arc-shaped boxes 33 on both sides of the suction pipe 36, and setting elastic airbags 34 and nozzles 331 above and below the arc-shaped boxes 33 respectively, during the downward movement of the lifting cylinder 4, the arc-shaped pressure plate 41 below the lifting cylinder 4 will squeeze the elastic airbags 34, causing the gas or liquid inside the arc-shaped boxes 33 to be sprayed out from the nozzles 331. This can cause the sediment inside the storage tank 3 to mix with the water near the suction pipe 36, so that the sediment mixed with the water flow enters the delivery pipe 32 from the suction pipe 36 and is dripped into the planting frame 1, avoiding the continuous accumulation of sediment inside the storage tank 3 (continuous sediment will reduce the storage space inside the storage tank 3, allowing the storage tank 3 to play its maximum storage role).
[0058] Furthermore, such as Figure 2 As shown, a limiting groove is provided above the planting frame 1. The outline of the limiting groove is the same as the outer edge outline of the lifting ring 51. During the process of the lifting ring 51 moving downward to the bottom, the lifting ring 51 is respectively inserted into the limiting grooves on multiple planting frames 1. By setting the limiting groove on the planting frame 1, the lifting ring 51 can be inserted into the limiting groove when it is at the bottom. At this time, the lifting ring 51 can serve as a connecting structure to fix the position of the planting frame 1, making the position of the four planting frames 1 more stable during use.
[0059] An implementation method for a mining area ecological restoration system includes the following steps:
[0060] Step 1: First, the location of the installation frame 2 is partially buried on the ground in the area to be repaired, and the four planting frames 1 are fixedly installed around the installation frame 2.
[0061] Step 2: Then, pour the soil used for repair into the four planting frames 1 respectively, so that the drip pipes 11 are buried in the soil. After that, plant the plants or plant seeds in the four planting frames 1.
[0062] Step 3: Next, the liquid for irrigating the soil is added from the lifting cylinder 4 into the storage tank 3. When irrigation is needed, the lifting cylinder 4 is moved downward to put the storage tank 3 under high pressure, so that the liquid flows into the soil.
[0063] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions will not cause the essence of the corresponding technical solutions to deviate from the protection scope of the technical solutions of the embodiments of the present invention.
Claims
1. A mining area ecological restoration system, characterized in that, include: Four planting frames (1) are arranged in a circle. A connecting space is formed in the middle of the four planting frames (1). An installation frame (2) is installed inside the connecting space. The four sides of the installation frame (2) are fixedly connected to the four planting frames (1) by bolts. Storage bucket (3) is fixedly installed inside the mounting frame (2). Multiple conveying pipes (32) are provided around the storage bucket (3). The multiple conveying pipes (32) extend into the four planting frames (1). The conveying pipes (32) are used to guide the water inside the storage bucket (3) into the planting frame (1). The lifting cylinder (4) is slidably installed above the storage tank (3) to pressurize the inside of the storage tank (3) and transport the liquid inside the storage tank (3) to the inside of the conveying pipe (32). A one-way air inlet valve (401) is provided above the lifting cylinder (4). Connecting rods (5) are rotatably installed around the lifting cylinder (4). Elastic waterproof cloth (52) covers the top of the multiple connecting rods (5).
2. The mining area ecological restoration system according to claim 1, characterized in that, The end of the delivery pipe (32) away from the storage tank (3) is connected to a drip pipe (11), and multiple drip nozzles (12) are arranged on both sides below the drip pipe (11), with the drip nozzles (12) distributed at an angle downwards.
3. The mining area ecological restoration system according to claim 1, characterized in that, A support rod (35) is provided on the outside of the storage tank (3). A rotating connecting column (351) is fixedly installed on the upper end of the support rod (35). A rotating connecting block (53) is fixedly installed in the middle of the connecting rod (5). A strip-shaped through hole (5301) is provided on the rotating connecting block (53) for the rotating connecting column (351) to pass through. The rotating connecting column (351) and the strip-shaped through hole (5301) are rotatably and slidably connected. A lifting ring (51) is provided at the end of the multiple connecting rods (5) away from the lifting cylinder (4). The lifting ring (51) is rotatably connected to the multiple connecting rods (5). The elastic waterproof cloth (52) covers the upper surface of the lifting ring (51) and the multiple connecting rods (5).
4. The mining area ecological restoration system according to claim 3, characterized in that, The installation frame (2) is fixedly installed with a telescopic component (21), which is used to drive the lifting cylinder (4) to move up and down. A support shaft (37) is coaxially arranged in the middle of the storage tank (3). A sealing disc (38) is fixedly installed on the support shaft (37). The diameter of the opening above the lifting cylinder (4) is the same as the diameter of the sealing disc (38). During the descent of the lifting cylinder (4), the opening above is sealed to the outside of the sealing disc (38).
5. A mining area ecological restoration system according to claim 4, characterized in that, A sealing plate (31) is fixedly installed on the top of the support shaft (37). The diameter of the sealing plate (31) is the same as the diameter of the sealing plate (38). After the lifting cylinder (4) moves up, the upper opening of the lifting cylinder (4) is sealed to the outer wall of the sealing plate (31). A limit ring (311) is provided on the outer edge of the sealing plate (31).
6. A mining area ecological restoration system according to claim 5, characterized in that, The storage tank (3) is provided with four suction tubes (36) around its perimeter. One end of the suction tube (36) extends into the storage tank (3) and is connected to the inside of the storage tank (3). The other end of the suction tube (36) is connected to the delivery tube (32). Each suction tube (36) is provided with a stirring component on both sides of the end that extends into the storage tank (3). The stirring component is used to stir the liquid inside the storage tank (3).
7. A mining area ecological restoration system according to claim 6, characterized in that, The agitation assembly includes an arc-shaped box (33) fixedly installed inside the storage tank (3). The arc-shaped box (33) is hollow inside. A nozzle (331) is provided on the side of the arc-shaped box (33). The nozzle (331) is used to connect the storage tank (3) and the inside of the arc-shaped box (33). An elastic airbag (34) is provided on the top of the arc-shaped box (33). An arc-shaped pressure plate (41) is provided below the lifting cylinder (4). When the lifting cylinder (4) moves down to the bottom, the arc-shaped pressure plate (41) squeezes the elastic airbag (34). When the elastic airbag (34) is squeezed, it drives the liquid or gas inside the arc-shaped box (33) to spray into the storage tank (3).
8. A mining area ecological restoration system according to claim 7, characterized in that, The suction tube (36) extends into the storage tank (3) with one end opening downwards, and the nozzles (331) are all positioned below the lower opening of the suction tube (36).
9. A mining area ecological restoration system according to claim 8, characterized in that, A limiting groove is provided above the planting frame (1). The outline of the limiting groove is the same as the outer edge outline of the lifting ring (51). During the process of the lifting ring (51) moving down to the bottom, the lifting ring (51) is respectively inserted into the limiting grooves on multiple planting frames (1).
10. A method for implementing a mining area ecological restoration system, used in accordance with any one of claims 1-9, characterized in that, Includes the following steps: Step 1: First, the position of the installation frame (2) will be partially buried on the ground of the area to be repaired, and the four planting frames (1) will be fixedly installed around the installation frame (2) respectively. Step 2: Then, pour the soil used for repair into the four planting frames (1) respectively, so that the drip pipes (11) are buried in the soil. Then plant the plants or plant seeds in the four planting frames (1). Step 3: After that, the liquid for irrigating the soil is added to the inside of the storage tank (3) from the lifting cylinder (4). When irrigation is needed, the lifting cylinder (4) is moved downward to put the inside of the storage tank (3) under high pressure, so that the liquid flows into the soil.
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