Mineral water treatment equipment integration bin and mineral water treatment system

By adopting a double-layer, three-dimensional container structure and integrated treatment equipment in mine wastewater treatment, the problems of long construction cycles, relocation difficulties, and safety risks have been solved, achieving efficient, stable, and user-friendly mine water treatment.

CN122013889APending Publication Date: 2026-05-12QINGDAO CIMC CONTAINER MFG +2
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
QINGDAO CIMC CONTAINER MFG
Filing Date
2025-12-29
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing mine wastewater treatment facilities have long construction cycles, high costs, and are difficult to relocate. The dispersed layout of equipment is cumbersome to install and not convenient for centralized management, posing safety risks.

Method used

The integrated warehouse for mine water treatment equipment is formed by connecting multiple container bodies to create a double-layer, three-dimensional layout. The mine water treatment process modules are integrated into the standard container body, enabling factory prefabrication, rapid transportation, and convenient on-site assembly. The internal passage connects each treatment unit, enhancing wind and earthquake resistance and providing all-weather operation and maintenance conditions.

Benefits of technology

Shorten the construction cycle, improve space utilization, enhance equipment stability, eliminate the risks of outdoor operations in severe weather, and achieve an efficient, compact, stable and user-friendly mine water treatment solution.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a mine water treatment equipment integrated bin, which comprises a plurality of container bodies, the plurality of container bodies are fixedly connected with one another through connecting structures and enclose to form at least one treatment unit for mine water treatment, and the plurality of container bodies at least comprise a plurality of first-layer container bodies arranged along a first direction, and a plurality of second-layer container bodies arranged along a second direction; the second-layer container bodies are arranged in the first direction, and the second-layer container bodies are arranged above the first-layer container bodies; wherein an internal channel is arranged between at least two adjacent container bodies, so that the interiors of the treatment units are communicated. According to the scheme, the mine water treatment process is modularly packaged in the standard container body, so that the construction period is shortened; the container bodies are fixed through the connecting structures to form an integral rigid structure, so that the reliability of long-term operation is guaranteed; and an internal channel is arranged, so that the safe operation and maintenance of operators are realized, and the outdoor operation risk in severe weather is eliminated.
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Description

Technical Field

[0001] This application relates to the field of mineral water treatment technology, and more specifically to an integrated storage tank and system for mineral water treatment equipment. Background Technology

[0002] Mining activities generate large amounts of acidic wastewater containing high concentrations of heavy metals, low pH values, and large amounts of sulfates. If discharged directly without treatment, it will cause serious pollution to water bodies, soil, and surrounding ecosystems.

[0003] Currently, there are two main construction models for mine wastewater treatment: one is to build fixed reinforced concrete wastewater treatment plants, and the other is to distribute the treatment equipment in multiple independent containers. Fixed wastewater treatment plants have long construction cycles and high investment costs, and once the mine's service life expires or the mining area relocates, the facilities are difficult to relocate, resulting in resource waste. While the model of distributing equipment in multiple independent containers improves the mobility of the equipment itself, each container still requires complex on-site piping connections, electrical linkages, and foundation construction. Overall installation and commissioning remain cumbersome, and the dispersed functional areas (such as treatment areas, office areas, and sludge disposal areas) make centralized management and inspection difficult. Furthermore, the exposed pipeline layout poses risks related to insulation, corrosion, and safety.

[0004] Therefore, there is a need to provide an integrated storage tank and system for mine water treatment equipment to at least partially solve the above problems. Summary of the Invention

[0005] The summary section introduces a series of simplified concepts, which will be further explained in detail in the detailed description section. This summary section is not intended to limit the key and essential technical features of the claimed technical solution, nor is it intended to determine the scope of protection of the claimed technical solution.

[0006] To at least partially solve the above problems, the first aspect of this application provides an integrated warehouse for mine water treatment equipment, including multiple container bodies. The multiple container bodies are fixedly connected to each other by a connecting structure and enclosed to form at least one treatment unit for mine water treatment. The multiple container bodies include at least multiple first-layer container bodies arranged along a first direction and multiple second-layer container bodies arranged along the first direction, with the second-layer container bodies disposed above the first-layer container bodies. An internal passage is provided between at least two adjacent container bodies to connect the internal parts of each processing unit.

[0007] According to the integrated container for mine water treatment equipment in the first aspect of this application, the mine water treatment process is modularly packaged into a standard container. The double-layer, three-dimensional layout and interconnected structure enable factory prefabrication, rapid transportation, and convenient on-site assembly, significantly shortening the construction cycle. The double-layer design integrates more functional units within a limited area, significantly improving space utilization and adapting to the limited land availability in mines. The containers are fixed together by connecting structures to form a rigid overall structure, enhancing the system's wind and earthquake resistance in complex environments and ensuring long-term operational reliability. Internal passageways allow operators to safely and conveniently access each treatment unit for inspection and maintenance within the protected container, enabling 24 / 7 operation and eliminating the risks of outdoor operations in severe weather. Overall, this achieves an efficient, compact, stable, and user-friendly integrated solution for mine water treatment equipment.

[0008] Optionally, the processing unit includes a magnetic concrete unit, which includes a first-layer container body, a second-layer container body disposed above the first-layer container body, and a vertical container body disposed to the side of the first-layer container body and the second-layer container body.

[0009] Optionally, the height of the vertical container body is greater than or equal to the sum of the heights of the first layer of container bodies and the second layer of container bodies on its side.

[0010] Optionally, the first layer of the container constituting the magnetic coagulation unit is provided with a chemical dosing reaction chamber, the second layer of the container is provided with a sedimentation separation chamber, and the vertical container is provided with a wastewater receiving and storage chamber. The wastewater receiving and storage chamber, the chemical dosing reaction chamber, and the sedimentation and separation chamber are connected in sequence via pipelines.

[0011] Optionally, the processing unit further includes a sludge processing unit, which includes a first-layer container and a second-layer container disposed above the first-layer container.

[0012] Optionally, the first layer of the container constituting the sludge treatment unit is provided with a sludge conveying chamber, and the second layer of the container is provided with a sludge receiving and compressing chamber; the sludge receiving and compressing chamber is provided with a sludge receiving port and a sludge compressor, the sludge conveying chamber is provided with a sludge conveyor, and the outlet of the sludge receiving and compressing chamber is connected to the inlet of the sludge conveyor.

[0013] Optionally, it also includes a stair unit, which includes a first-level container body and a second-level container body disposed above the first-level container body, wherein the second-level container body is provided with a stair structure.

[0014] Optionally, the staircase unit is connected to the working platform of the sludge treatment unit via the internal passage.

[0015] Optionally, it also includes an auxiliary unit, which is composed of at least one second-layer container body and has at least one of the following internal components: an operation control area, a data storage area, a maintenance display, and a meeting area; wherein, The auxiliary unit is connected to the processing unit through the internal channel; and / or A steel structure platform is provided below the auxiliary unit.

[0016] A second aspect of this application provides a mine water treatment system, including the aforementioned integrated mine water treatment equipment compartment.

[0017] According to the mine water treatment system of the second aspect of this application, the mine water treatment facility can be designed in a standardized manner, prefabricated in a factory, and sold and leased commercially, just like a large-scale engineering machine. Attached Figure Description

[0018] The following drawings, illustrating embodiments of this application, are incorporated herein by reference and are used to understand this application. The drawings illustrate embodiments of this application and their descriptions, serving to explain the principles of this application. In the drawings, Figure 1 This is a three-dimensional schematic diagram of an integrated tank for a preferred embodiment of a mine water treatment equipment according to this application; Figure 2 This is a perspective view of an integrated tank for a mine water treatment equipment according to a preferred embodiment of this application, with the front wall panel omitted. Figure 3 This is a schematic diagram of the internal structure of the magnetic coagulation unit of the integrated storage chamber of a mine water treatment equipment according to a preferred embodiment of this application. Figure 4 This is a schematic diagram of the sludge treatment unit inside an integrated storage chamber of a mine water treatment equipment according to a preferred embodiment of this application. Figure 5 This is a side view schematic diagram of the sludge treatment unit of the integrated storage chamber of a mine water treatment equipment according to a preferred embodiment of this application. Figure 6 This is a schematic diagram of the interior of the stair unit of the integrated storage chamber of a mine water treatment equipment according to a preferred embodiment of this application. Figure 7 This is a side view of the stair unit of the integrated storage chamber for mine water treatment equipment according to a preferred embodiment of this application; Figure 8 This is a top view schematic diagram of an auxiliary unit of an integrated storage tank for a mine water treatment equipment according to a preferred embodiment of this application; Figure 9This is a partially enlarged schematic diagram of the docking end face of the container of the integrated warehouse for mine water treatment equipment according to a preferred embodiment of this application. Figure 10 This is a schematic diagram of the wall of a container for an integrated storage unit for mine water treatment equipment, according to a preferred embodiment of this application.

[0019] Explanation of reference numerals in the attached figures 10: First Container 11: Drug Dosing Reaction Chamber 20: Second container 21: Staircase 30: Third Container 31: Sludge conveyor 32: Discharge port 40: Fourth container 41: Wastewater Receiving and Storage Warehouse 42: Mineral water inlet 43: Mixer 50: Fifth container 51: Operation Control Area 52: Data storage area 53: Maintenance Monitor 54: Meeting Area 55: Steel structure platform 60: The sixth container 70: The seventh container 71: Sedimentation Separation Chamber 72: Supernatant drain outlet 73: Sludge discharge port 80: Eighth Container 81: Platform 90: Ninth Container 91: Sludge Compressor 92: Sludge receiving port 93: Receiving hopper 100: Thermal insulation layer 101: Interior panel 102: Dragon Bone 103: Corner Post 104: Sealing strip D1: First Direction Detailed Implementation

[0020] In the following description, numerous specific details are set forth to provide a more thorough understanding of this application. However, it will be apparent to those skilled in the art that embodiments of this application may be practiced without one or more of these details. In other instances, certain technical features well-known in the art have not been described to avoid confusion with embodiments of this application.

[0021] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms “comprising” and / or “including” are used in this specification, they indicate the presence of the stated features, integrals, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components, and / or combinations thereof.

[0022] In this document, ordinal numbers such as “first” and “second” used in this application are merely identifiers and do not have any other meaning, such as a specific order. Moreover, for example, the term “first component” does not imply the existence of a “second component”, and the term “second component” does not imply the existence of a “first component”.

[0023] In this article, terms such as "up," "down," "front," "back," "left," and "right" are used only to indicate the relative positional relationship between related parts, rather than to define the absolute position of these related parts.

[0024] In this document, terms such as “equal” and “same” are not strict mathematical and / or geometric limitations, but also include errors that are understandable to those skilled in the art and permissible in manufacturing or use.

[0025] Unless otherwise stated, the numerical ranges in this document include not only the entire range within its two endpoints, but also the subranges contained therein.

[0026] Exemplary embodiments according to this application will now be described in more detail with reference to the accompanying drawings. However, these exemplary embodiments may be implemented in many different forms and should not be construed as being limited to the embodiments set forth herein. It should be understood that these embodiments are provided so that the disclosure of this application is thorough and complete, and that the concept of these exemplary embodiments is fully conveyed to those skilled in the art.

[0027] Reference Figure 1 and Figure 2 This application provides an integrated container for mine water treatment equipment, comprising multiple container bodies. Optionally, the container bodies are preferably made of weathering steel, possessing good structural strength and corrosion resistance, and adaptable to the mining environment. The interior of each container body is equipped with an insulation layer to maintain the temperature environment required for the operation of the equipment inside, making it particularly suitable for cold regions.

[0028] Multiple container bodies are fixedly connected to each other through a connecting structure, forming at least one treatment unit for mine water treatment. This solution pre-integrates the functional modules required for mine water treatment into a standard container body, and quickly assembles them into a stable whole on site through a unified connecting structure. This realizes modular and standardized manufacturing of the equipment, greatly simplifies on-site installation work, shortens the construction cycle, and makes the entire treatment facility possible to be relocated as a whole, solving the problem of fixed facilities being immovable.

[0029] The multiple container units include at least multiple first-layer container units arranged along the first direction D1, and multiple second-layer container units arranged along the first direction D1, with the second-layer container units positioned above the first-layer container units. This double-layer, three-dimensional layout significantly improves space utilization within the same floor area. By placing some processing units (such as sedimentation separation and sludge compression) or auxiliary units (such as offices and control systems) on the second layer, the overall layout becomes more compact, reducing land occupation. Furthermore, the multi-layer arrangement allows for the simplification of equipment by utilizing gravity and also simplifies some piping layouts.

[0030] An internal passageway is provided between at least two adjacent container bodies to connect the internal processing units. The internal passageway replaces the external open corridor or platform 81, connecting the various processing units and auxiliary units internally, allowing operators to safely and conveniently perform equipment inspection, maintenance and operation.

[0031] This solution modularizes the mine water treatment process within a standard container, employing a double-layered, three-dimensional layout and interconnected structure. This enables factory prefabrication, rapid transportation, and convenient on-site assembly, significantly shortening the construction cycle. The double-layered design integrates more functional units within a limited footprint, significantly improving space utilization and adapting to the constraints of limited land in mines. The containers are connected to form a rigid, integrated structure, enhancing the system's wind and earthquake resistance in complex environments and ensuring long-term operational reliability. Internal passageways allow operators to safely and conveniently access each treatment unit for inspection and maintenance from within the protected container, enabling 24 / 7 operation and eliminating the risks of outdoor operations in inclement weather. Overall, this solution achieves a highly efficient, compact, stable, and user-friendly integrated solution for mine water treatment equipment.

[0032] The two container bodies are securely fastened together using standard corner fittings and connecting plates to ensure overall stability. The bottom / top joints where the two containers meet are reinforced with a seal to prevent leakage of sewage or odors.

[0033] Reference Figure 10Optionally, the inner wall of the container is provided with an insulation material layer 100 and an interior panel 101. Optionally, the interior panel 101 is made of steel plate, and the inner surface of the steel plate is painted. The insulation structure also includes a keel 102 for fixing the insulation material layer 100 and the interior panel 101, and the splicing positions of the interior panel 101 are intermittently welded to the keel 102.

[0034] Reference Figure 9 Optionally, a sealing strip 104 is also provided between the mating end faces of adjacent integrated containers. For example, sealing strips 104 are provided between the corner posts 103 and between the side beams of adjacent integrated containers.

[0035] Reference Figure 3 Optionally, the processing unit includes a magnetic concrete unit, which includes a first-layer container, a second-layer container disposed above the first-layer container, and a vertical container disposed to the side of the first-layer container and the second-layer container.

[0036] In the magnetic coagulation unit, the first container is the first container 10, for example, located on the left side of the bottom layer. The first container 10 contains a chemical dosing reaction chamber 11. The chemical dosing reaction chamber 11 is located on the bottom layer and is connected to the wastewater receiving and storage chamber 41 on the side via pipes and a pump. The chemical dosing reaction chamber 11 contains dosing devices (such as a dosing pump and a mixer), a pH / ORP monitor, etc., for adding coagulants, flocculants (and possibly magnetic powder), and for thorough mixing and reaction.

[0037] In the magnetic coagulation unit, the second layer of containers is the seventh container 70, for example, located directly above the first container 10. The seventh container 70 contains a sedimentation separation chamber 71. The sedimentation separation chamber 71 is located directly above the chemical dosing reaction chamber 11 and is connected to the chemical dosing reaction chamber 11 via a booster pump. The sedimentation separation chamber 71 contains an inclined plate sedimentation tank or a high-efficiency sedimentation device. It has a supernatant drain outlet 72 at the top and a sludge thickening hopper and sludge outlet 73 at the bottom.

[0038] Optionally, the vertical container body is a fourth container 40, located to the side of the first container 10 and the seventh container 70, typically at the rear or rear-side. The fourth container 40 contains a wastewater receiving and storage compartment 41. The fourth container 40 has a relatively large height, typically designed to be greater than or equal to the sum of the heights of the first container 10 and the seventh container 70, providing sufficient internal space to accommodate a large wastewater temporary storage tank or equalization pool. Specifically, the fourth container 40 is equipped with a mineral water inlet 42 and a mixer 43. The mineral water inlet 42 connects to an external water supply pipe; the mixer 43 is used to homogenize the wastewater and prevent suspended solids from settling.

[0039] In the magnetic coagulation unit, the sludge enters from the fourth container 40 on the side. After chemical reaction, the sludge-water mixture is lifted to the upper seventh container 70 for solid-liquid separation. The clarified supernatant is discharged from the drain of the sedimentation separation chamber 71 to the subsequent unit or discharged after meeting the standards; the concentrated sludge is discharged from the sludge outlet 73 to the sludge treatment unit.

[0040] This design stacks and arranges the three functional components side-by-side in three-dimensional space, significantly reducing the floor space required, maximizing space utilization, and creating a compact layout. The functional compartments are spatially adjacent, minimizing process piping and reducing pipeline resistance. Simultaneously, each functional compartment remains relatively independent, facilitating compartmentalized inspection and maintenance without affecting the operation of other units. For example, the chemical dosing reaction compartment 11 can be cleaned or its agitator 43 replaced independently.

[0041] Reference Figure 4 and Figure 5 Optionally, the treatment unit includes a sludge treatment unit, which is responsible for the final disposal of the concentrated sludge generated by the preceding process (such as the magnetic coagulation unit).

[0042] In the sludge treatment unit, the first layer of the container is the third container 30, for example, located on the right side of the bottom layer. The third container 30 receives and horizontally conveys dewatered sludge cake from the upper silo via a sludge conveyor 31. Optionally, the sludge conveyor 31 can be a shaftless screw conveyor or a belt conveyor. Optionally, the discharge end of the conveyor extends to the end of the container and is equipped with a discharge port 32, which can be directly aligned with external sludge ton bags, transport vehicles, or temporary storage yards to complete the final off-site transportation of sludge.

[0043] In the sludge treatment unit, the second layer of containers is the ninth container 90, for example, located directly above the third container 30. The ninth container 90 receives concentrated sludge from the sedimentation tank of the magnetic coagulation unit and performs mechanical dewatering and volume reduction via a sludge compressor 91. A sludge receiving port 92 is provided on the side wall or top of the container, directly connected to the sludge output port 73 of the magnetic coagulation unit via a pipe, achieving closed-loop sludge transport. The sludge compressor 91 is located below the sludge receiving port 92. Optionally, a funnel-shaped receiving hopper 93 is provided directly opposite the sludge receiving port 92 to ensure accurate sludge cake entry into the sludge compressor 91. Optionally, the sludge compressor 91 can be a screw sludge dewatering machine, a plate and frame filter press module, or a dedicated integrated sludge thickening and packaging machine. This equipment is fixedly installed on the floor inside the container. The sludge outlet of the sludge compressor 91 is directly below the inlet of the lower container. A gate or flap mechanism can be installed at the outlet to control the sludge cake's descent. Because the sludge compressor 91 requires regular maintenance (such as replacing the filter and cleaning), a steel working platform with guardrails is set up around it. This platform can be connected to the internal passage of the stair unit through a side door.

[0044] This solution integrates sludge dewatering and conveying into a single vertical space, creating the shortest material transfer path. The compressed sludge cake can fall naturally to the lower conveyor by gravity, eliminating the need for lifting or conveying power in this step and significantly reducing transfer energy consumption. This solution achieves efficient space utilization through modular container integration.

[0045] Based on the above, since the integrated warehouse for mine water treatment equipment adopts a double-layer three-dimensional layout, with key equipment located on the second layer, it is necessary to solve the problem of how personnel can safely and conveniently reach the second layer for inspection. If traditional outdoor steel ladders or temporary climbing ladders are used, the safety is poor, and the stairs 21 are exposed to the outdoors, making them prone to slipping due to rain, snow, and frost.

[0046] Reference Figure 6 and Figure 7 Optionally, the stair unit consists of a first-level container and a second-level container stacked on top of each other.

[0047] In the stair unit, the first-level container body is the second container 20, for example, located in the middle of the bottom layer. Optionally, the second container 20 is provided with a staircase 21 from the bottom to the top.

[0048] In the stair unit, the second-level container is the eighth container 80, for example, located directly above the second container 20. Optionally, the eighth container 80 is equipped with a platform 81, located above the stair 21, with a stairwell opening for connection to the staircase. Optionally, auxiliary facilities such as tool storage cabinets and helmet racks can also be installed in the stair unit as needed. This solution completely encloses the stair 21 within the container with an enclosed structure, eliminating the risks of climbing at heights or in the open, and providing operators with safe passage conditions in all weather conditions.

[0049] Reference Figure 8 Optionally, the integrated warehouse for mine water treatment equipment also includes auxiliary units, each consisting of at least one second-layer container. These auxiliary units house at least one of the following: an operation control area 51, a data storage area 52, a maintenance display 53, and a meeting area 54. Operators are located close to the equipment, allowing for timely observation of equipment operation status and process effectiveness. This solution utilizes vertical space, placing non-heavy, personnel-intensive auxiliary functions on the upper level, while reserving the ground floor for treatment and sludge disposal units requiring heavy foundations or easy vehicle access.

[0050] The auxiliary unit consists of at least one second-level container. In a preferred embodiment, two second-level container bodies are used side by side. In the auxiliary unit, the second-level container bodies are the fifth container 50 and the sixth container 60, which are integrally arranged on the left side of the second level.

[0051] The auxiliary unit is connected to the processing unit through an internal channel.

[0052] Optionally, the auxiliary unit includes an operation control area 51, a data storage area 52, a maintenance display 53, and a meeting area 54. The maintenance display 53 is used to display the real-time operating parameters (flow rate, pH, sludge concentration, etc.), equipment status, and alarm information of each process unit. The data storage area 52 is equipped with filing cabinets for storing equipment manuals, process drawings, operating records, and Material Safety Data Sheets (MSDS). The meeting area 54 is equipped with simple tables and chairs for shift handover, small meetings, and daily office work. It can also be equipped with auxiliary facilities such as air conditioning, lighting, and fire prevention to ensure a comfortable and safe internal environment.

[0053] The side walls or ends of auxiliary units (such as the sixth container 60) are directly connected to adjacent processing units (such as the seventh container 70 of the magnetic concrete unit) through internal passage doors. This allows engineers or inspectors to seamlessly enter the equipment area for inspection or commissioning, all within a protected indoor environment.

[0054] The corresponding first-level area of ​​the auxiliary unit, depending on the overall plan, can be an empty passageway, an extension of the equipment area, or a dedicated steel structure platform 55. When there are no other functional containers on the first level below the auxiliary unit, setting up a steel structure platform 55 as a supporting base is more economical than filling a complete container, and can create a multifunctional space with a roof covering the lower level.

[0055] In this solution, the auxiliary unit is a standard container module, and its appearance and connection method are completely consistent with the processing unit, maintaining the unity of the overall visual and structural design.

[0056] This application also provides a mine water treatment system, including the aforementioned integrated mine water treatment equipment compartment. As mentioned before, it internally contains all modular units such as magnetic coagulation, sludge treatment, stairs, and auxiliary facilities, enabling wastewater purification, solid-liquid separation, and maintenance monitoring. This allows the mine water treatment facility to be designed, prefabricated in factories, and sold and leased commercially, much like a large-scale engineering machine.

[0057] Unless otherwise defined, the technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. The terminology used herein is for descriptive purposes only and is not intended to limit the scope of this application. Terms such as “setup” appearing herein can refer to either a component being directly attached to another component or a component being attached to another component via an intermediary. A feature described in one embodiment herein may be applied, alone or in combination with other features, to another embodiment, unless that feature is not applicable in that other embodiment or is otherwise stated.

[0058] This application has been described through the above embodiments; however, it should be understood that the above embodiments are for illustrative purposes only and are not intended to limit this application to the described embodiments. Those skilled in the art will understand that many more variations and modifications can be made based on the teachings of this application, and all such variations and modifications fall within the scope of protection claimed in this application.

Claims

1. An integrated storage unit for mine water treatment equipment, characterized in that, It includes multiple container bodies, which are fixedly connected to each other by a connecting structure and enclose to form at least one treatment unit for mine water treatment. The multiple container bodies include at least multiple first-layer container bodies arranged along a first direction and multiple second-layer container bodies arranged along the first direction, with the second-layer container bodies disposed above the first-layer container bodies. An internal passage is provided between at least two adjacent container bodies to connect the internal parts of each processing unit.

2. The integrated storage tank for mine water treatment equipment according to claim 1, characterized in that, The processing unit includes a magnetic concrete unit, which includes a first-layer container body, a second-layer container body disposed above the first-layer container body, and a vertical container body disposed to the side of the first-layer container body and the second-layer container body.

3. The integrated storage tank for mine water treatment equipment according to claim 2, characterized in that, The height of the vertical container body is greater than or equal to the sum of the heights of the first and second layer container bodies on its side.

4. The integrated storage tank for mine water treatment equipment according to claim 2, characterized in that, The first layer of the container that constitutes the magnetic coagulation unit is equipped with a chemical dosing reaction chamber, the second layer of the container is equipped with a sedimentation separation chamber, and the vertical container is equipped with a wastewater receiving and storage chamber. The wastewater receiving and storage chamber, the chemical dosing reaction chamber, and the sedimentation and separation chamber are connected in sequence via pipelines.

5. The integrated storage tank for mine water treatment equipment according to claim 1, characterized in that, The processing unit further includes a sludge processing unit, which includes a first-layer container and a second-layer container disposed above the first-layer container.

6. The integrated storage tank for mine water treatment equipment according to claim 5, characterized in that, The first layer of the container that constitutes the sludge treatment unit is equipped with a sludge conveying chamber, and the second layer of the container is equipped with a sludge receiving and compressing chamber. The sludge receiving and compressing chamber is equipped with a sludge receiving port and a sludge compressor. The sludge conveying chamber is equipped with a sludge conveyor. The outlet of the sludge receiving and compressing chamber is connected to the inlet of the sludge conveyor.

7. The integrated storage tank for mine water treatment equipment according to claim 1, characterized in that, It also includes a stair unit, which comprises a first-layer container body and a second-layer container body disposed above the first-layer container body, wherein the second-layer container body is provided with a stair structure.

8. The integrated storage tank for mine water treatment equipment according to claim 7, characterized in that, The staircase unit is connected to the working platform of the sludge treatment unit through the internal passage.

9. The integrated storage tank for mine water treatment equipment according to claim 1, characterized in that, It also includes an auxiliary unit, which is composed of at least one second-layer container body and has at least one of the following internal facilities: an operation control area, a data storage area, a maintenance display, and a meeting area; wherein, The auxiliary unit is connected to the processing unit through the internal channel; and / or A steel structure platform is provided below the auxiliary unit.

10. A mine water treatment system, characterized in that, Includes the integrated storage unit for mine water treatment equipment as described in any one of claims 1 to 9.