Mine ecological restoration water resource recycling device

By designing a water resource recycling device for mine ecological restoration, precise detection and diversion of rainwater are achieved, solving the shortcomings of traditional devices in rainwater treatment, and providing an efficient and low-cost water resource recycling solution to support mine ecological restoration.

CN223607927UActive Publication Date: 2025-11-28LIAONING AIHAI TALC CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202423032179.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-10
Publication Date
2025-11-28
Estimated Expiration
2034-12-10

AI Technical Summary

Technical Problem

Traditional mine ecological restoration measures lack effective treatment and purification capabilities in terms of water resource utilization and treatment, failing to meet the water quality requirements for mine vegetation restoration. Furthermore, existing equipment is complex in structure, expensive, and difficult to operate and maintain, making it difficult to promote on a large scale.

Method used

A water resource recycling device for mine ecological restoration was designed, including a collection box, a pretreatment mechanism, an anti-evaporation mechanism, a diversion mechanism, and a reaction component. Through the coordinated work of components such as filter plates, measuring instruments, and motors, rainwater is automatically diverted, purified, and reacted. The measuring instrument accurately determines the type of rainwater and performs targeted treatment through the reaction chamber.

Benefits of technology

It enables precise detection and diversion of rainwater, ensuring efficient collection and purification of rainwater, reducing the frequency of operation and maintenance, improving the utilization efficiency of rainwater, providing high-quality water resources suitable for mine ecological restoration, and supporting vegetation irrigation and ecological restoration.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223607927U_ABST
    Figure CN223607927U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of water resource circulation, and discloses a mine ecological restoration water resource recycling device which comprises a collecting box, the collecting box is installed on the mountain surface of a mine, and a pretreatment mechanism is installed at the top of the collecting box and used for conducting primary treatment on rainwater; one end of the pretreatment mechanism is communicated with an anti-evaporation mechanism which is used for manufacturing a closed storage space of rainwater, a flow dividing mechanism is arranged in the middle of the collection box and is used for automatically dividing different types of rainwater, and the output end of the flow dividing mechanism is communicated with a reaction assembly which is used for outputting reactants to react with the rainwater. A determinator in the flow dividing mechanism can comprehensively detect multiple key parameters such as the pH value, the heavy metal ion content and the mineral substance components of rainwater, and accurate judgment of the rainwater type is achieved based on accurate detection data and a preset rainwater type standard parameter range.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to water resource recycling technology field, concretely is a kind of mine ecological restoration water resource recycling device. BACKGROUND

[0002] With the continuous development of mining activities, it has caused many negative impacts on the surrounding ecological environment. In the process of mining, large areas of vegetation are destroyed, topsoil is stripped, and mountain rocks are exposed, which not only leads to serious soil erosion, but also makes the ecological system of the mining area unbalanced and the biodiversity sharply reduced. At the same time, mining operations often cause changes in underground hydrological conditions, causing problems such as groundwater level decline and spring drying up, further exacerbating the shortage of water resources.

[0003] In terms of water resources, mining areas are already facing many challenges. On the one hand, due to the changes in topography and geological structure caused by mining, it is difficult to effectively store and utilize natural precipitation, and a large amount of rainwater is quickly lost, which cannot support the ecological restoration of the mine. On the other hand, waste such as waste slag and waste stone generated during the mining process will release a large amount of harmful substances such as heavy metal ions under the action of rainwater, and these pollutants mixed in the rainwater form acid mine water or other types of runoff. If these contaminated rainwater is directly discharged, it will cause secondary pollution to the surrounding soil, water body and ecological system, further deteriorating the local ecological environment and affecting the health of the surrounding residents and agricultural production.

[0004] Traditional ecological restoration measures for mines have obvious shortcomings in water resource utilization and treatment. Some simple water collection facilities can only collect part of the rainwater, but lack effective treatment and purification capabilities for rainwater quality, and cannot meet the water quality requirements of mine vegetation restoration. Moreover, in the face of different types of rainwater, especially contaminated rainwater, it cannot be treated and recycled in a targeted manner. In addition, some existing rainwater treatment devices often have complex structure, high cost, difficult operation and maintenance, etc., and are difficult to be widely applied in mining environment. SUMMARY

[0005] In view of the shortcomings of the prior art, the utility model provides a mine ecological restoration water resource recycling device, which solves the problem of lack of effective treatment and purification capabilities for rainwater quality.

[0006] In order to achieve the above object, the utility model discloses a kind of mine ecological restoration water resource recycling devices, including collection box, the collection box is arranged in the surface of mountain in mine, the top of the collection box is equipped with pretreatment mechanism, it is used to carry out preliminary treatment to rainwater, one end of the pretreatment mechanism is communicated with anti-evaporation mechanism, it is used to make the closed storage space of rainwater, the middle part of the collection box is provided with shunt mechanism, it is used to automatically shunt different types of rainwater, the output end of the shunt mechanism is communicated with reaction component, it is used to output reactant and rainwater reaction.

[0007] Preferably, the pretreatment mechanism includes a rotating shaft, the rotating shaft is installed on the top of the collection box, the outer wall of the rotating shaft is fixedly connected with a filter plate one on one side, the outer wall of the filter plate one is installed with a ring-shaped frame on one side, the inner part of the ring-shaped frame is slidably connected with a ball on both ends, the both ends of the ball are rotatably provided with a horizontal frame, and the outer wall of the horizontal frame is installed with a brush on one side.

[0008] Preferably, the anti-evaporation mechanism includes a collection plate, the collection plate is installed at one end of the inside of the collection box, a plurality of one ends of connecting ropes are installed at equal intervals on the outer wall of the collection plate, and the other ends of the plurality of connecting ropes are connected with a float.

[0009] Preferably, the shunt mechanism includes a detection cavity, the detection cavity is opened in the inside of the collection box, a determinator is installed in the inside of the detection cavity, the input end of the determinator is communicated with the collection plate, a plurality of reaction bins are opened in the inside of the collection box, an input bin is formed between the detection cavity and the reaction bin, an input hole is opened on the outer wall of the input bin, a motor is installed in the inside of the input bin, one end of a steering rod is fixedly connected with the output end of the motor, the other end of the steering rod is installed with a baffle, and the lower end of the input hole is communicated with a water collecting assembly.

[0010] Preferably, the reaction component includes a containing box, the containing box is installed on the inner wall of the reaction bin, a reagent is contained in the inside of the containing box, a long shaft is rotatably connected with the inner wall of the containing box on one side, a sealing plate is installed on the outer wall of the long shaft on one side, one end of a tension spring one is installed on the outer wall of the sealing plate on one side, the other end of the tension spring one is installed in the inside of the containing box, and a water flow plate is fixedly connected with the outer wall of the long shaft on the other side.

[0011] Preferably, the water collecting assembly includes an input pipe, one end of the input pipe is communicated with the lower end of the input hole, a water collecting plate is slidably connected in the inside of the input pipe, one end of a tension spring two is installed on the outer wall of the water collecting plate on one side, and the other end of the tension spring two is installed on the inner wall of the detection cavity on one side.

[0012] Preferably, the water flow plate is arranged directly below the water collecting assembly.

[0013] Preferably, the outer wall of the water collecting plate is provided with a rubber ring.

[0014] Preferably, the inner part of the annular frame is provided with one end of a connecting spring, and the other end of the connecting spring is connected with a ball.

[0015] The utility model provides a kind of mine ecological recovery water resource recycling device.It has the following beneficial effects:

[0016] 1, the utility model discloses a measuring instrument in shunt mechanism can carry out comprehensive detection to the acidity and alkalinity of rainwater, heavy metal ion content, mineral composition and other multiple key parameters, based on accurate detection data and preset rainwater type standard parameter range, realize the accurate judgment of rainwater type.Subsequently, through the cooperation of control system and motor, steering rod, baffle and other components, different types of rainwater can be accurately shunted to corresponding reaction bin for targeted treatment.

[0017] 2, in the utility model, when rainwater flows into reaction bin, water flow plate is rotated under the action of rainwater impact force, to make sealing plate open, and reaction agent in holding box automatically flows out and mixes with rainwater.This automatic trigger mechanism does not need additional power source, and with the continuous inflow of rainwater, water flow plate is continuously impacted, ensures that reaction agent can be continuously and stably supplied, realizes the full mixing reaction with rainwater.

[0018] 3, in the utility model, collection tank is arranged on the surface of mine mountain, rainwater can be collected by fully utilizing the terrain advantage of mine, the rainwater collection range is expanded, and the collection efficiency is improved.Filter plate one in pretreatment mechanism can effectively remove leaves, branches, silt clumps and other large particle impurities in rainwater, avoid these impurities from entering subsequent system to cause blockage or pollution, ensure the stability and treatment effect of the whole device operation.At the same time, the self-cleaning structure formed by annular frame, connecting spring, ball, horizontal frame and brush makes filter plate one can continuously maintain good filtering performance during work, reduces the frequency and cost of manual maintenance, prolongs the service life of filter plate one, ensures the preliminary purification quality of rainwater, lays a solid foundation for subsequent rainwater treatment link. ACCURACY

[0019] Figure 1 It is the perspective view of recycling device in the utility model;

[0020] Figure 2 It is the display view of recycling device in the utility model;

[0021] Figure 3 It is Figure 2 the enlarged view of A in the utility model;

[0022] Figure 4 It is the explosion view of recycling device in the utility model;

[0023] Figure 5 is an exploded view of the shunt mechanism in the utility model;

[0024] Figure 6 is a schematic view of the pretreatment mechanism in the utility model;

[0025] Figure 7 is a schematic view of the reaction assembly in the utility model;

[0026] Figure 8 is a schematic view of the water collecting assembly in the utility model.

[0027] Wherein, 1, collection box; 2, pretreatment mechanism; 201, rotating shaft; 202, filter plate one; 203, connecting spring; 204, annular frame; 205, ball; 206, cross frame; 207, brush; 3, anti-evaporation mechanism; 301, collection plate; 302, connecting rope; 303, float; 4, shunt mechanism; 401, detection cavity; 402, measuring instrument; 403, input bin; 404, input hole; 405, motor; 406, steering rod; 407, baffle; 408, containing box; 409, long shaft; 410, sealing plate; 411, tension spring one; 412, water flow plate; 413, input pipe; 414, water collecting plate; 415, tension spring two; 416, rubber ring; 5, reaction assembly; 501, reaction bin. DETAILED DESCRIPTION

[0028] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.

[0029] Please refer to the drawings in the embodiments of the utility model Figure 1 - the drawings in the embodiments of the utility model, Figure 8 The utility model embodiment provides a kind of mine ecological restoration water resource recycling device, including collection box 1, collection box 1 is arranged in the surface of mountain in mine, the top of collection box 1 is equipped with pretreatment mechanism 2, it is used to carry out preliminary treatment to rainwater, one end of pretreatment mechanism 2 is communicated with anti-evaporation mechanism 3, it is used to make the closed storage space of rainwater, the middle part of collection box 1 is provided with shunt mechanism 4, it is used to automatically shunt different types of rainwater, the output end of shunt mechanism 4 is communicated with reaction assembly 5, it is used to output reactant and rainwater reaction;

[0030] The pretreatment mechanism 2 comprises a rotating shaft 201 installed on the top of the collecting box 1, and the outer wall of the rotating shaft 201 is fixedly connected with a filter plate one 202, the outer wall of the filter plate one 202 is installed with an annular frame 204, the inner part of the annular frame 204 is slidably connected with a rolling ball 205 at both ends, the both ends of the rolling ball 205 are rotatably connected with a horizontal frame 206, and the outer wall of the horizontal frame 206 is installed with a brush 207;

[0031] The inner part of the annular frame 204 is installed with one end of a connecting spring 203, and the other end of the connecting spring 203 is connected with the rolling ball 205;

[0032] Specifically, when the rain falls on the top of the collecting box 1, the rain first contacts the pretreatment mechanism 2. The rotating shaft 201 can rotate under the action of a certain external force, such as the torque generated by the wind or the rain impact. The filter plate one 202 rotates with the rotating shaft 201, and the rain is preliminarily filtered, and the larger impurity particles such as leaves, branches and mud blocks in the rain are intercepted. The structure of the annular frame 204, the connecting spring 203 and the rolling ball 205 in the inner part of the annular frame 204 and the horizontal frame 206 plays an important role in the rotation of the filter plate one 202. The connecting spring 203 gives the rolling ball 205 a certain elastic support force, so that the rolling ball 205 can slide flexibly in the annular frame 204 and maintain good contact with the filter plate one 202. When the filter plate one 202 rotates, due to the friction between the rolling ball 205 and the filter plate one 202 and the elastic effect of the connecting spring 203, the horizontal frame 206 will produce slight shaking, driving the brush 207 to clean the filter plate one 202, preventing the impurities from accumulating on the filter plate one 202 and blocking the filter holes, and ensuring that the rain can continuously and smoothly pass through the filter plate one 202 into the subsequent mechanism for processing.

[0033] The evaporation prevention mechanism 3 comprises a collecting plate 301 installed at one end of the inner part of the collecting box 1, and the outer wall of the collecting plate 301 is equidistantly installed with one end of a plurality of connecting ropes 302, and the other end of the plurality of connecting ropes 302 is connected with a floating body 303.

[0034] Specifically, the pretreated rain flows into the collecting plate 301. When the water level in the collecting box 1 is low, the floating body 303 is located at a low position, the connecting rope 302 is relaxed, and the rainwater on the collecting plate 301 can flow smoothly into the lower detection cavity 401 for subsequent detection and shunting operations. As the rainwater is continuously collected, the water level gradually rises, the floating body 303 is affected by the buoyancy and begins to rise, and the connecting rope 302 is gradually tightened. When the water level rises to a certain height, the connecting rope 302 pulls the collecting plate 301 to tilt, so that the rainwater on the collecting plate 301 forms a relatively closed storage space, reducing the contact area of the rainwater with the external air, thereby effectively reducing the evaporation speed of the rainwater, and maximizing the preservation of the collected rainwater resources to meet the demand for water resources in the subsequent ecological restoration process of the mine.

[0035] The shunting mechanism 4 comprises a detection cavity 401 which is arranged in the interior of the collecting box 1, and a measuring instrument 402 is arranged in the interior of the detection cavity 401, the input end of the measuring instrument 402 is communicated with the collecting plate 301, a plurality of reaction chambers 501 are arranged in the interior of the collecting box 1, an input chamber 403 is formed between the detection cavity 401 and the reaction chambers 501, an input hole 404 is arranged on the outer wall of the input chamber 403, a motor 405 is arranged in the interior of the input chamber 403, one end of a steering rod 406 is fixedly connected to the output end of the motor 405, the other end of the steering rod 406 is provided with a baffle 407, and the lower end of the input hole 404 is communicated with a water collecting assembly;

[0036] Specifically, after the rainwater flows into the detection cavity 401 from the collecting plate 301, the measuring instrument 402 starts to work. The measuring instrument 402 can detect a plurality of parameters of the rainwater, including pH value, heavy metal ion content and mineral composition, and according to the standard parameter range of different rainwater types set in advance, the measuring instrument 402 analyzes and judges the rainwater. When the measuring instrument 402 determines the type of the rainwater, if it is determined that the rainwater needs to enter a specific reaction chamber 501 for reaction treatment, the motor 405 is started to drive the steering rod 406 to rotate, so that the baffle 407 is opened or closed to the corresponding input hole 404. When the detected rainwater is acidic and the acidity is strong, it may be acid mine water caused by mining, at this time, the motor 405 rotates to open the baffle 407, so that the rainwater enters the specific reaction chamber 501 through the input hole 404 and reacts with the alkaline reagent in the reaction chamber 501.

[0037] The reaction assembly 5 comprises a containing box 408 which is arranged on the inner wall of the reaction chamber 501, the containing box 408 contains a reagent in the interior, a long shaft 409 is rotatably connected to one side of the inner wall of the containing box 408, a sealing plate 410 is arranged on one side of the outer wall of the long shaft 409, one end of a tension spring 411 is arranged on one side of the outer wall of the sealing plate 410, the other end of the tension spring 411 is arranged in the interior of the containing box 408, and a water flow plate 412 is fixedly connected to the other side of the outer wall of the long shaft 409;

[0038] The water flow plate 412 is arranged directly below the water collecting assembly;

[0039] Specifically, when the rainwater flows into the reaction bin 501 through the water collecting assembly, it first contacts the water flow plate 412. The water flow plate 412 drives the long shaft 409 to rotate under the impact force of the rainwater. When the long shaft 409 rotates, the sealing plate 410 starts to rotate and open against the tension of the tension spring 411, and the reaction agent in the containing box 408 gradually flows out and mixes with the rainwater. When acidic rainwater flows in, the alkaline reaction agent contained in the containing box 408 starts to react with the acidic rainwater. During the reaction process, as the rainwater continuously flows in, the water flow plate 412 is continuously impacted, ensuring that the reaction agent can continuously and stably flow out and fully mix with the rainwater for reaction, until the pH value and other indicators of the rainwater reach the range that meets the emission standard or is beneficial to the ecological restoration of the mine. The treated water after the reaction can be stored in other special storage areas in the collection tank 1 for ecological restoration purposes such as mine vegetation irrigation and dust reduction.

[0040] The water collecting assembly comprises an input pipe 413, one end of the input pipe 413 is connected with the lower end of the input hole 404, and the inside of the input pipe 413 is slidably connected with a water collecting plate 414; one side of the outer wall of the water collecting plate 414 is provided with one end of a tension spring 415, and the other end of the tension spring 415 is arranged on one side of the inner wall of the detection cavity 401.

[0041] The outer wall of the water collecting plate 414 is provided with a rubber ring 416.

[0042] Specifically, before the rainwater enters the input pipe 413, the water collecting plate 414 is in a state of closing the channel of the input pipe 413 under the action of the tension of the tension spring 415. When it is necessary for the rainwater to enter the reaction bin 501, the rainwater starts to accumulate in the input bin 403 and generates a certain pressure under the action of gravity when the baffle 407 is opened. When the pressure reaches a certain degree, the rainwater pushes the water collecting plate 414 to slide downward to open the channel of the input pipe 413 against the tension of the tension spring 415, and the rainwater can flow into the reaction bin 501. The rubber ring 416 is installed on the outer wall of the water collecting plate 414 and plays a good sealing effect, preventing the rainwater from leaking when the water collecting plate 414 is closed, and ensuring that the rainwater can only flow into the reaction bin 501 through the input pipe 413 from below the water collecting plate 414 during the sliding process of the water collecting plate 414 driven by the rainwater, so as to ensure that the water flow can impact the water flow plate 412 to drive the long shaft 409 to rotate and realize automatic purification.

[0043] Working principle: The utility model aims at collecting mine rainwater and processing and recycling it according to its characteristics to help the ecological restoration of the mine. The device mainly cooperates with the collection tank 1, the pretreatment mechanism 2, the anti-evaporation mechanism 3, the shunt mechanism 4, the reaction assembly 5 and the water collecting assembly. After the rainwater is collected, it goes through processes such as impurity filtration, type detection and targeted reaction treatment, and finally is transformed into water resources that can be used for ecological restoration purposes such as mine vegetation irrigation and dust reduction, realizing the recycling and ecological restoration function integration of water resources in the mine ecological system.

[0044] When the rain falls on the top of the collection box 1, it first interacts with the pretreatment mechanism 2. The rotating shaft 201 rotates under the action of the torque generated by the wind or rain impact, driving the filter plate 1 202 to rotate. The filter plate 1 202 can effectively intercept larger impurity particles such as leaves, branches, and clumps of sand in the rain, playing a preliminary purification role. At the same time, the ingenious structure composed of the ring-shaped frame 204, the connecting spring 203, the ball 205, the cross frame 206, and the brush 207 plays a self-cleaning function. The connecting spring 203 provides elastic support for the ball 205, allowing it to slide flexibly within the ring-shaped frame 204 and make close contact with the filter plate 1 202. When the filter plate 1 202 rotates, the friction between the ball 205 and the filter plate 1 202 and the elastic action of the connecting spring 203 cause the cross frame 206 to produce slight shaking, which in turn drives the brush 207 to clean the filter plate 1 202. This dynamic cleaning mechanism effectively prevents impurities from accumulating on the filter plate 1 202 and blocking the filter holes, ensuring that the rain can continuously and smoothly pass through the filter plate 1 202 and enter the subsequent processing link.

[0045] The pretreated rainwater flows into the collection plate 301. When the water level in the collection box 1 is low, the float 303 is in a low position, and the connecting rope 302 is relaxed, allowing the rainwater on the collection plate 301 to flow unimpeded into the lower detection chamber 401 for subsequent operations. As the rainwater continues to accumulate, the water level gradually rises, and the float 303 begins to rise under the action of buoyancy, causing the connecting rope 302 to tighten. When the water level reaches a certain height, the tension exerted by the connecting rope 302 causes the collection plate 301 to tilt, forming a relatively closed space on the surface of the rainwater on the collection plate 301. By reducing the contact area between the rainwater and the external air, this structure significantly reduces the evaporation rate of the rainwater, maximizing the preservation of the collected rainwater resources and providing a solid guarantee for the water resource needs in the subsequent mine ecological restoration process.

[0046] After the rainwater flows from the collection plate 301 into the detection chamber 401, the measuring instrument 402 quickly starts and conducts multi-dimensional detection of the rainwater, covering key parameters such as pH, heavy metal ion content, and mineral composition. Based on the pre-set standard parameter ranges for different types of rainwater, the measuring instrument 402 conducts accurate analysis and judgment of the rainwater. Once the measuring instrument 402 determines the type of rainwater and determines that it needs to enter a specific reaction chamber 501 for processing, it sends a command to the control system. The control system then drives the motor 405 to operate, which in turn drives the steering rod 406 to rotate, thereby controlling the opening or closing of the corresponding input hole 404 by the baffle 407. The rainwater enters the specific reaction chamber 501 through the input hole 404 and undergoes neutralization reaction with the pre-stored alkaline reagent therein, starting the purification and restoration journey of the rainwater.

[0047] When the rainwater flows into the reaction bin 501 through the water collecting assembly, it first impacts the water flow plate 412. The water flow plate 412 drives the long shaft 409 to rotate under the impact of the rainwater. When the long shaft 409 rotates, the sealing plate 410 starts to rotate and open against the pulling force of the tension spring 411, and the reaction agent in the containing box 408 gradually flows out and fully mixes with the rainwater. Taking the acidic rainwater flow as an example, the alkaline reaction agent in the containing box 408 reacts with the acidic rainwater. During the entire reaction process, the water flow plate 412 is always in an impacted state as the rainwater continues to flow in, thereby ensuring that the reaction agent can continuously and stably flow out and fully mix with the rainwater. This process will continue until the pH value and other indicators of the rainwater reach the ideal range that meets the discharge standard or is beneficial to the ecological restoration of the mine. The treated water after the reaction is stored in the storage area specially set in the collection tank 1 for subsequent use in mine vegetation irrigation, dust reduction and other ecological restoration purposes, realizing the recycling and ecological value transformation of water resources.

[0048] Before the rainwater enters the input pipe 413, the water collecting plate 414 is tightly closed under the pulling force of the tension spring 415 to effectively prevent rainwater leakage. When the baffle 407 is opened, rainwater accumulates in the input bin 403 under the action of gravity and generates a certain pressure. When the pressure accumulates to be sufficient to overcome the pulling force of the tension spring 415, the rainwater pushes the water collecting plate 414 to slide downward, smoothly opens the channel of the input pipe 413, and the rainwater flows into the reaction bin 501. The rubber ring 416 installed on the outer wall of the water collecting plate 414 plays multiple key roles. On the one hand, it provides excellent sealing performance when the water collecting plate 414 is closed, eliminating rainwater leakage; on the other hand, during the sliding process of the water collecting plate 414 driven by the rainwater, it ensures that the rainwater can only flow into the reaction bin 501 through the input pipe 413 from below the water collecting plate 414, avoiding rainwater backflow or leakage, and ensuring that the rainwater can accurately impact the water flow plate 412 to drive the long shaft 409 to rotate, thereby triggering the automatic release and mixing reaction mechanism of the reaction agent, realizing the automation and precision control of the entire rainwater treatment process.

[0049] Although the embodiments of the present application have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the present application, and the scope of the present application is defined by the appended claims and their equivalents.

Claims

1. A mine ecological restoration water resource recycling device, comprising a collection box (1), characterized in that, The collecting box (1) is installed on the surface of the mountain, the top of the collecting box (1) is provided with a pretreatment mechanism (2) for preliminary treatment of rainwater, one end of the pretreatment mechanism (2) is communicated with an anti-evaporation mechanism (3) for making a closed storage space of rainwater, the middle part of the collecting box (1) is provided with a shunt mechanism (4) for automatically shunting different types of rainwater, and the output end of the shunt mechanism (4) is communicated with a reaction assembly (5) for outputting reaction products.

2. The mine ecological restoration water resource recycling device according to claim 1, characterized in that, The pretreatment mechanism (2) comprises a rotating shaft (201) installed on the top of the collecting box (1), a filter plate (202) fixedly connected to one side of the outer wall of the rotating shaft (201), an annular frame (204) installed on one side of the outer wall of the filter plate (202), a plurality of rolling balls (205) slidably connected to both ends of the annular frame (204), a horizontal frame (206) rotatably connected to both ends of the rolling ball (205), and a brush (207) installed on one side of the outer wall of the horizontal frame (206).

3. The mine ecological restoration water resource recycling device according to claim 1, characterized in that, The anti-evaporation mechanism (3) comprises a collecting plate (301) installed at one end of the inside of the collecting box (1), a plurality of connecting ropes (302) installed at equal intervals on the outer wall of the collecting plate (301), and a float (303) connected to the other ends of the connecting ropes (302).

4. The mine ecological restoration water resource recycling device according to claim 1, characterized in that, The shunt mechanism (4) comprises a detection cavity (401) formed in the inside of the collecting box (1), a measuring instrument (402) installed in the inside of the detection cavity (401), an input end of the measuring instrument (402) communicated with the collecting plate (301), a plurality of reaction chambers (501) formed in the inside of the collecting box (1), an input chamber (403) formed between the detection cavity (401) and the reaction chambers (501), an input hole (404) formed in the outer wall of the input chamber (403), a motor (405) installed in the inside of the input chamber (403), one end of a steering rod (406) fixedly connected to the output end of the motor (405), a baffle (407) installed at the other end of the steering rod (406), and a water collecting assembly communicated with the lower end of the input hole (404).

5. The mine ecological restoration water resource recycling device according to claim 4, characterized in that, The reaction assembly (5) comprises a containing box (408) installed on the inner wall of the reaction chamber (501), a reaction agent contained in the inside of the containing box (408), a long shaft (409) rotatably connected to one side of the inner wall of the containing box (408), a sealing plate (410) installed on one side of the outer wall of the long shaft (409), one end of a tension spring (411) installed on one side of the outer wall of the sealing plate (410), the other end of the tension spring (411) installed in the inside of the containing box (408), and a water flow plate (412) fixedly connected to the other side of the outer wall of the long shaft (409).

6. The mine ecological restoration water resource recycling device according to claim 5, characterized in that, The water collecting assembly comprises an input pipe (413), one end of the input pipe (413) is communicated with the lower end of the input hole (404), the inside of the input pipe (413) is slidingly connected with a water collecting plate (414), one end of a pull spring two (415) is installed on one side of the outer wall of the water collecting plate (414), and the other end of the pull spring two (415) is installed on one side of the inner wall of the detection cavity (401).

7. The mine ecological restoration water resource recycling device according to claim 5, characterized in that, The water flow plate (412) is arranged directly below the water collecting assembly.

8. The mine ecological restoration water resource recycling device according to claim 6, characterized in that, A rubber ring (416) is installed on the outer wall of the water collecting plate (414).

9. The mine ecological restoration water resource recycling device according to claim 2, characterized in that, One end of a connecting spring (203) is installed in the inside of the annular frame (204), and the other end of the connecting spring (203) is connected with a ball (205).