A mineral processing system that can be reused in different mining areas

By integrating the sorting module into the transportation device in the open-pit mine and setting up the transfer module, the state transition of the sorting module is realized, which solves the problem of dispersed structure and long transportation distance of the open-pit mine system, reduces equipment investment and operation costs, and improves operating efficiency.

CN116140028BActive Publication Date: 2025-08-29MCC NORTH (DALIAN) ENG TECH CO LTD
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Patent Information

Application Number
CN202211622586.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-16
Publication Date
2025-08-29
Estimated Expiration
2042-12-16

AI Technical Summary

Technical Problem

The existing open-pit mine product processing system has a scattered structure and cannot be moved according to changes in the mining area. The ore transportation distance is long, and the equipment purchase costs and production costs are high.

Method used

The sorting module is integrated into the transportation device, and the horizontal transportation state and vertical working state of the sorting module are converted through the rotating module. The transfer module is set to facilitate the movement of the sorting module, reducing transportation distance and equipment investment.

Benefits of technology

The rapid movement of sorting modules is realized, reducing equipment and factory investment, reducing operating costs and improving operating efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a mineral processing system that can be reused in different mining areas. It belongs to the field of ore processing technology. The mineral processing system that can be reused in different mining areas includes: a first transport device, a second transport device, a primary sorting module, a secondary sorting module and a transfer module. The present invention integrates the sorting module on the transport device. By rotating the sorting module, the horizontal transport state and the vertical working state of the sorting module can be converted. When the sorting module is in the horizontal transport state, it is convenient to transfer the sorting module from one mining area to another mining area, thereby improving the overall operation efficiency. By arranging transfer modules in the two sorting units, the transportation distance of the mined ore is greatly reduced, making the structure of the entire system compact, and realizing the rapid movement of the two sorting modules as the mining area changes, thereby achieving the purpose of rapidly moving the entire processing system, reducing equipment and plant investment, and reducing operating costs.
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Description

Technical Field

[0001] The invention belongs to the technical field of ore processing, and in particular relates to a mineral processing system that can be reused in different mining areas. Background Art

[0002] Currently, there are numerous high-grade open-pit magnetite mines in places like Africa, Brazil, and Australia. The iron grade of ore from these mines is generally as high as 45% to 55%, with some even approaching 60%. These open-pit magnetite mines typically require dry separation of the ore, removing the gangue and surrounding rock mixed in during mining. This allows the ore to reach a grade of 60% to 65% for sale.

[0003] Because the raw ore is too large, open-pit mine processing systems typically require at least coarse and secondary crushing to ensure the product size meets the requirements for smelting furnaces. Most current open-pit mines consist of multiple sections, and even within the same section, the mining area constantly changes as the scope of mining expands. However, existing open-pit mine processing systems are complex, numerous, and decentralized, making them difficult to adapt to changing mining areas. Ore transportation requires long distances, resulting in high equipment and production costs. Summary of the Invention

[0004] In order to solve the problems existing in the above-mentioned prior art, such as the dispersed structure of the open-pit mine product processing system, the inability to move according to the constant changes in the mining area, the long distance for ore transportation, and the high equipment purchase and production costs, the present invention provides a mineral processing system that can be reused in different mining areas. By integrating the sorting module on the transportation device and providing a transfer module in the two sorting units, the sorting module can be rotated to realize the conversion between the horizontal transportation state and the vertical working state of the sorting module, which is easy to move and can achieve the purpose of quickly moving the entire processing system, reducing equipment and plant investment and reducing operating costs. Its specific technical solution is as follows:

[0005] A mineral processing system that can be reused in different mining areas includes: a first transportation device, a second transportation device, a primary sorting module, a secondary sorting module and a transfer module; the primary sorting module is movably connected to the first transportation device; the secondary sorting module is movably connected to the second transportation device; the transfer module is connected to the primary sorting module and the secondary sorting module at the same time, and the transfer module is used to transfer materials discharged by the primary sorting module and the secondary sorting module.

[0006] In addition, the mineral processing system that can be reused in different mining areas in the above technical solution provided by the present invention may also have the following additional technical features:

[0007] Optionally, a mineral processing system that can be reused in different mining areas includes: a first telescopic device; a fixed end of the first telescopic device is rotatably connected to the first transport device, and a telescopic end of the first telescopic device is rotatably connected to the primary sorting module.

[0008] Optionally, a mineral processing system that can be reused in different mining areas includes: a first hinge part, a second hinge part and a third hinge part; the first hinge part is arranged on the first transport device, and the fixed end of the first telescopic device is rotatably connected to the first hinge part; the second hinge part is arranged on the primary sorting module, and the telescopic end of the first telescopic device is rotatably connected to the second hinge part; the third hinge part is arranged on the primary sorting module, and the third hinge part is rotatably connected to the first transport device.

[0009] Optionally, the first hinged portion is located at an end of the first transport device away from the primary sorting module.

[0010] Optionally, a mineral processing system that can be reused in different mining areas includes: a second telescopic device; the fixed end of the second telescopic device is rotatably connected to the second transport device, and the telescopic end of the second telescopic device is rotatably connected to the secondary sorting module.

[0011] Optionally, a mineral processing system that can be reused in different mining areas includes: a fourth hinge part, a fifth hinge part and a sixth hinge part; the fourth hinge part is arranged on the second transport device, and the fixed end of the second telescopic device is rotatably connected to the fourth hinge part; the fifth hinge part is arranged on the secondary sorting module, and the telescopic end of the second telescopic device is rotatably connected to the fifth hinge part; the sixth hinge part is arranged on the secondary sorting module, and the sixth hinge part is rotatably connected to the second transport device.

[0012] Optionally, the fourth hinged portion is located at an end of the second transport device away from the secondary sorting module.

[0013] Optionally, the first-level sorting module includes: a first crushing and sorting device, a first feed port, a first mineral outlet and a first waste outlet; the first feed port is arranged at the top of the first crushing and sorting device, and the first feed port is used to add materials into the first crushing and sorting device; the first mineral outlet is arranged at the bottom of the first crushing and sorting device, and the first mineral outlet is used to discharge the mineral sorted by the first level; the first waste outlet is arranged at the bottom of the first crushing and sorting device, and the first waste outlet is used to discharge the waste sorted by the first level.

[0014] Optionally, the secondary sorting module includes: a second crushing and sorting device, a second feed port, a second mineral outlet and a second waste outlet; the second feed port is arranged at the top of the second crushing and sorting device, and the second feed port is used to add materials into the second crushing and sorting device; the second mineral outlet is arranged at the bottom of the second crushing and sorting device, and the second mineral outlet is used to discharge the minerals sorted by the secondary sorting; the second waste outlet is arranged at the bottom of the second crushing and sorting device, and the second waste outlet is used to discharge the waste sorted by the secondary sorting.

[0015] Optionally, the transfer module includes: a waste conveying device and a first mineral material conveying device; both ends of the waste conveying device are connected to the first waste outlet and the second waste outlet at the same time, and the waste conveying device is used to receive and convey the waste from the first and second sorting; the first end of the first mineral material conveying device is connected to the first mineral material outlet, and the second end of the first mineral material conveying device is connected to the second feed port.

[0016] Optionally, the transfer module further includes: a second mineral material conveying device; the second mineral material conveying device is connected to the second waste material outlet.

[0017] Compared with the prior art, the mineral processing system of the present invention, which can be reused in different mining areas, has the following beneficial effects:

[0018] The present invention integrates the sorting module into the transport device. By rotating the sorting module, the sorting module can be switched between a horizontal transport state and a vertical working state. When the sorting module is in the horizontal transport state, it is convenient to transfer the sorting module from one mining area to another, thereby improving the overall operation efficiency. By providing transfer modules in the two sorting units, the transportation distance of the mined ore is greatly reduced, making the entire system structure compact. The two sorting modules can be quickly moved as the mining area changes, achieving the purpose of quickly moving the entire processing system, reducing equipment and plant investment, and reducing operating costs. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 This is a schematic structural diagram of a mineral processing system that can be reused in different mining areas according to an embodiment of the present invention;

[0020] Figure 2 This is a structural schematic diagram of the working state of a primary sorting module of a mineral processing system that can be reused in different stope areas according to one embodiment of the present invention;

[0021] Figure 3 This is a structural schematic diagram of the working state of a secondary sorting module of a mineral processing system that can be reused in different stope areas according to one embodiment of the present invention;

[0022] Figure 4This is a structural schematic diagram of a primary sorting module in a transport state of a mineral processing system that can be reused in different stope areas according to one embodiment of the present invention;

[0023] Figure 5 This is a structural schematic diagram of a secondary sorting module in a transport state of a mineral processing system that can be reused in different stope areas according to an embodiment of the present invention;

[0024] in, Figures 1 to 5 The corresponding relationship between the reference numerals and component names is as follows:

[0025] 10. First transport device; 11. Second transport device;

[0026] 12. Primary sorting module; 121. First crushing and sorting device; 122. First feed inlet; 123. First ore outlet; 124. First waste outlet;

[0027] 13. Secondary sorting module; 131. Second crushing and sorting device; 132. Second feed inlet; 133. Second ore outlet; 134. Second waste outlet;

[0028] 14. Transfer module; 141. Waste conveying device; 142. First mineral conveying device; 143. Second mineral conveying device;

[0029] 15. First telescopic device; 16. First hinged part; 17. Second hinged part; 18. Third hinged part; 19. Second telescopic device; 20. Fourth hinged part; 21. Fifth hinged part; 22. Sixth hinged part. DETAILED DESCRIPTION

[0030] In the description of this application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise" and the like to indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as limiting the present invention.

[0031] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature identified as "first" or "second" may explicitly or implicitly include one or more of the features. In the description of the present invention, "plurality" means two or more, unless otherwise specifically defined.

[0032] In this application, unless otherwise specified or limited, the terms "mounted," "connected," "connect," "fixed," etc. should be understood broadly. For example, they may refer to fixed connection, detachable connection, or integral connection; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; or internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on specific circumstances.

[0033] The preferred embodiments of the present invention are described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only used to illustrate and explain the present invention, and are not used to limit the present invention.

[0034] See also Figure 1-Figure 5 As shown, according to an embodiment of the present application, a mineral processing system that can be reused in different mining areas includes: a first transport device 10, a second transport device 11, a primary sorting module 12, a secondary sorting module 13, and a transfer module 14; the primary sorting module 12 is movably connected to the first transport device 10; the secondary sorting module 13 is movably connected to the second transport device 11; the transfer module 14 is simultaneously connected to the primary sorting module 12 and the secondary sorting module 13, and the transfer module 14 is used to transfer materials discharged from the primary sorting module 12 and the secondary sorting module 13. By integrating the sorting module on the transport device and rotating the sorting module, the conversion of the sorting module between the horizontal transport state and the vertical working state can be achieved. When the sorting module is rotated to the horizontal transport state, it is convenient to transfer the sorting module from one mining area to another, thereby improving the overall operation efficiency. By setting up transfer modules 14 in the two sorting units, the transportation distance of the mined ore is greatly reduced, making the entire system structure compact, and the two sorting modules can be quickly moved as the mining area changes, so as to achieve the purpose of quickly moving the entire processing system, reduce equipment and plant investment, and reduce operating costs; through the movement of the first transport device 10 and the second transport device 11, the distance between the two sorting modules is directly adjusted without adjusting the sorting modules, which is convenient for arranging the sorting modules and is simple and efficient to use.

[0035] It should be noted that when the primary and secondary sorting modules are in a vertical operating position, they are fixed to the ground or a base platform. When the primary and secondary sorting modules are in a horizontal transport position, their centers of gravity rest on the transport device. Furthermore, the primary sorting module and first transport device 10, and the second crushing and sorting device 131 and second transport device 11, are all detachably connected. This allows the transport device to be used for other purposes after the crushing and sorting device is separated from the transport device, thereby increasing its utilization rate.

[0036] Specifically, a first support frame and a second support frame are respectively provided outside the primary sorting module and the secondary sorting module, and the sorting module is connected to the transport device through the support frames; the first support frame and the second support frame are fixed on the ground or the basic platform.

[0037] Specifically, the first support frame and the second support frame are fixed to the ground or the foundation platform by ground anchors. The diameter of the ground anchors is 500~1000mm, which increases the contact area between the first support frame and the second support frame and the ground or the foundation platform, ensuring the stability of the system during operation.

[0038] Furthermore, the ore selected by the primary sorting module 12 is directly transported to the secondary sorting module through the transfer module 14 for secondary sorting. The primary sorting and the secondary sorting share one transfer module 14, and the transportation is linear. The entire system has a compact structure and a simple layout.

[0039] Furthermore, the two sorting modules are arranged parallel to each other, and the transfer module 14 is arranged perpendicular to both the primary sorting module and the secondary sorting module.

[0040] Specifically, the transfer module 14 is connected to the primary sorting module and the secondary sorting module at the same time. When the distance the system needs to move is short, the entire system can be moved without disassembling the transfer module 14, which is labor-saving and efficient.

[0041] As an embodiment, the fixed end of the first telescopic device 15 is rotatably connected to the first transport device 10, and the telescopic end of the first telescopic device 15 is rotatably connected to the primary sorting module 12. The first telescopic device 15 drives the movement of the primary sorting module, replacing manual lifting and support, resulting in a higher degree of automation, labor-saving and high efficiency.

[0042] The first hinge 16 is provided on the first transport device 10, and the fixed end of the first telescopic device 15 is rotatably connected to the first hinge 16. The second hinge 17 is provided on the primary sorting module 12, and the telescopic end of the first telescopic device 15 is rotatably connected to the second hinge 17. The third hinge 18 is provided on the primary sorting module 12, and the third hinge 18 is rotatably connected to the first transport device 10. By rotatably connecting the two ends of the first telescopic device 15 to the first transport device 10 and the primary sorting module respectively, the first transport device 10 and the primary sorting module are prevented from interfering with the movement of the first telescopic device 15 when the total length of the first telescopic device 15 changes, thereby ensuring the smoothness of the position switching of the primary sorting module. By providing the third hinge 18, the primary sorting module is rotatably connected to the first transport device 10, and the primary sorting module rotates around the third hinge 18, thereby improving the stability of the rotation of the primary sorting module.

[0043] Furthermore, the first hinge portion 16, the second hinge portion 17 and the third hinge portion 18 are connected to the first transport device 10 and the primary sorting module through pins, so that assembly and disassembly are simple and quick.

[0044] The first hinge 16 is located at the end of the first transport device 10 away from the primary sorting module 12; the second hinge 17 is located at the lower end of the primary sorting unit. By moving the first hinge 16 away from the primary sorting module 12, the fixed end of the first telescopic device 15 is sufficiently far from the primary sorting module 12. When the first telescopic device 15 is retracted to lay the primary sorting module 12 flat, the first telescopic device 15 can be extended again to limit the primary sorting module 12, preventing the primary sorting module 12 from being lifted up due to uneven roads during transportation by the first transport device 10, thereby ensuring the stability of the primary sorting module 12 during transportation and preventing damage. By moving the second hinge 17 close to the ground, the length of the primary sorting module 12 extended when it is laid flat is reduced, thereby reducing the volume of the processing system and ensuring safe and convenient transportation.

[0045] As an embodiment, the fixed end of the second telescopic device 19 is rotatably connected to the second transport device 11, and the telescopic end of the second telescopic device 19 is rotatably connected to the secondary sorting module 13. The second telescopic device 19 drives the movement of the secondary sorting module, replacing manual lifting and support, achieving a higher degree of automation, labor saving and efficiency.

[0046] The fourth hinge 20 is provided on the second transport device 11, and the fixed end of the second telescopic device 19 is rotatably connected to the fourth hinge 20; the fifth hinge 21 is provided on the secondary sorting module 13, and the telescopic end of the second telescopic device 19 is rotatably connected to the fifth hinge 21; the sixth hinge 22 is provided on the secondary sorting module 13, and the sixth hinge 22 is rotatably connected to the second transport device 11. By rotatably connecting the two ends of the second telescopic device 19 to the second transport device 11 and the secondary sorting module respectively, the second transport device 11 and the secondary sorting module are prevented from interfering with the movement of the second telescopic device 19 when the total length of the second telescopic device 19 changes, thereby ensuring the smoothness of the position switching of the secondary sorting module; by providing the sixth hinge 22, the secondary sorting module is rotatably connected to the second transport device 11, and the secondary sorting module rotates around the sixth hinge 22, thereby improving the stability of the rotation of the secondary sorting module.

[0047] Furthermore, the fourth hinge part 20, the fifth hinge part 21 and the sixth hinge part 22 are connected to the second transport device 11 and the secondary sorting module through pins, so that assembly and disassembly are simple and quick.

[0048] The fourth hinge 20 is located at the end of the second transport device 11 away from the secondary sorting module 13; the fifth hinge 21 is located at the lower end of the secondary sorting unit. By moving the fourth hinge 20 away from the secondary sorting module 13, a sufficient distance is maintained between the fixed end of the second telescopic device 19 and the secondary sorting module 13. When the second telescopic device 19 is retracted to lay the secondary sorting module 13 flat, the second telescopic device 19 can be extended again to limit the secondary sorting module 13, preventing the secondary sorting module 13 from being lifted up due to uneven roads during transportation by the second transport device 11, thereby ensuring the stability of the transportation of the secondary sorting module 13 and preventing damage. By moving the fifth hinge 21 close to the ground, the length of the secondary sorting module 13 extended when it is laid flat is reduced, the volume of the processing system is reduced, and transportation is safe and convenient.

[0049] Furthermore, when the system needs to be moved a short distance, the first and second telescopic devices 15, 19 can be controlled to move synchronously, driving the primary sorting module 12 and secondary sorting module 13 to rotate synchronously to a horizontal state, thereby driving the transfer module 14 to rotate without disassembling the transfer module 14. This allows the entire system to be moved a short distance, reducing equipment and plant investment and lowering operating costs.

[0050] As another embodiment, a first feed port 122 is provided at the top of the first crushing and sorting device 121, and is used to feed material into the first crushing and sorting device 121. A first ore outlet 123 is provided at the bottom of the first crushing and sorting device 121, and is used to discharge the ore from the first-stage sorting. A first waste outlet 124 is provided at the bottom of the first crushing and sorting device 121, and is used to discharge the waste from the first-stage sorting. By providing the first ore outlet 123 and the first waste outlet 124 at the bottom of the first crushing and sorting device 121, the ore and waste from the first-stage sorting fall directly onto the transfer module 14 under the action of gravity for direct transportation, eliminating other transfer structures, making the entire system structure more compact, reducing the footprint, and facilitating assembly.

[0051] A second feed inlet 132 is provided at the top of the second crushing and sorting device 131 for feeding material into the second crushing and sorting device 131. A second material outlet 133 is provided at the bottom of the second crushing and sorting device 131 for discharging material from the secondary sorting process. A second waste outlet 134 is provided at the bottom of the second crushing and sorting device 131 for discharging waste from the secondary sorting process. By locating the second feed inlet 132 at the top of the second crushing and sorting device 131, material discharged from the first material outlet 123 is directly transported to the second feed inlet 132 via a transfer device for secondary processing. The second material outlet 133 and second waste outlet 134 are provided at the bottom of the second crushing and sorting device 131 so that the secondary sorted material and waste fall directly onto the transfer module 14 under the action of gravity before being discharged, resulting in a simple layout.

[0052] The waste conveying device 141 is connected at both ends to the first waste outlet 124 and the second waste outlet 134. The waste conveying device 141 is used to receive and convey the waste from the primary and secondary sorting. The first end of the first mineral material conveying device 142 is connected to the first mineral material outlet 123, and the second end of the first mineral material conveying device 142 is connected to the second feed port 132. By connecting the waste conveying device 141 to both the first waste outlet 124 and the second waste outlet 134, the first crushing and sorting device 121 and the second crushing and sorting device 131 share a waste conveying device 141. The first mineral material conveying device 142 is set at an angle to the ground, and its two ends are respectively connected to the first mineral material outlet 123 and the second feed port 132. The mineral material from the primary sorting is directly conveyed to the loading area of ​​the secondary sorting module 13, resulting in a compact structure and efficient transportation.

[0053] Furthermore, the waste conveying device 141 is located below the first waste outlet 124 and the second waste outlet 134. The waste conveying device 141 passes through the first crushing and sorting device 121 and the second crushing and sorting device 131 in sequence, and the waste conveying device 141 is set on the ground or the basic plane for easy disassembly and movement.

[0054] Specifically, the waste conveying device 141 and the first mineral material conveying device 142 are conveyor belts.

[0055] The second ore conveying device 143 is connected to the second waste outlet 134. By connecting the second ore conveying device 143 to the second waste outlet 134, the magnetic iron ore discharged from the secondary separation can be transported to a desired location for centralized processing.

[0056] Specifically, the second mineral material conveying device 143 is a conveyor belt.

[0057] It is easy for those skilled in the art to understand that, under the premise of no conflict, the above-mentioned advantageous methods can be freely combined and superimposed.

Claims

1. A mineral processing system that can be reused in different mining areas, characterized in that: The mineral processing system that can be reused in different mining areas includes: A first transport device (10) and a second transport device (11); a primary sorting module (12), the primary sorting module (12) being movably connected to the first transport device (10); a secondary sorting module (13), the secondary sorting module (13) being movably connected to the second transport device (11); a transfer module (14), the transfer module (14) being connected to both the primary sorting module (12) and the secondary sorting module (13), the transfer module (14) being used to transfer materials discharged from the primary sorting module (12) and the secondary sorting module (13); The primary sorting module (12) and the secondary sorting module (13) are arranged parallel to each other, and the transfer module (14) is arranged perpendicular to the primary sorting module and the secondary sorting module; the primary sorting module (12) and the secondary sorting module (13) are switched between a horizontal transport state and a vertical working state; a first telescopic device (15), wherein a fixed end of the first telescopic device (15) is rotatably connected to the first transport device (10), and a telescopic end of the first telescopic device (15) is rotatably connected to the primary sorting module (12); a first hinged portion (16), the first hinged portion (16) being provided on the first transport device (10), and the fixed end of the first telescopic device (15) being rotatably connected to the first hinged portion (16); a second hinged portion (17), the second hinged portion (17) being arranged on the primary sorting module (12), the telescopic end of the first telescopic device (15) being rotatably connected to the second hinged portion (17); A third hinge part (18), wherein the third hinge part (18) is arranged on the primary sorting module (12), and the third hinge part (18) is rotatably connected to the first transport device (10).

2. A mineral processing system that can be reused in different mining areas according to claim 1: The first hinge portion (16) is located at an end of the first transport device (10) away from the primary sorting module (12).

3. The mineral processing system that can be reused in different mining areas according to claim 1, characterized in that: The mineral processing system that can be reused in different mining areas includes: A second telescopic device (19), wherein the fixed end of the second telescopic device (19) is rotatably connected to the second transport device (11), and the telescopic end of the second telescopic device (19) is rotatably connected to the secondary sorting module (13).

4. A mineral processing system that can be reused in different mining areas according to claim 3, characterized in that: The mineral processing system that can be reused in different mining areas includes: a fourth hinged portion (20), the fourth hinged portion (20) being arranged on the second transport device (11), and the fixed end of the second telescopic device (19) being rotatably connected to the fourth hinged portion (20); a fifth hinged portion (21), the fifth hinged portion (21) being arranged on the secondary sorting module (13), the telescopic end of the second telescopic device (19) being rotatably connected to the fifth hinged portion (21); A sixth hinge part (22), the sixth hinge part (22) is arranged on the secondary sorting module (13), and the sixth hinge part (22) is rotatably connected to the second transport device (11).

5. A mineral processing system that can be reused in different mining areas according to claim 4: The fourth hinged portion (20) is located at an end of the second transport device (11) away from the secondary sorting module (13).

6. The mineral processing system that can be reused in different mining areas according to claim 1, characterized in that: The primary sorting module (12) comprises: a first crushing and sorting device (121); a first feed port (122), the first feed port (122) being arranged at the top of the first crushing and sorting device (121), the first feed port (122) being used to feed materials into the first crushing and sorting device (121); A first mineral material outlet (123), the first mineral material outlet (123) being arranged at the bottom of the first crushing and sorting device (121), the first mineral material outlet (123) being used to discharge the mineral material sorted in the first stage; a first waste material outlet (124), the first waste material outlet (124) being arranged at the bottom of the first crushing and sorting device (121), the first waste material outlet (124) being used to discharge the first-stage sorted waste material; The secondary sorting module (13) comprises: A second crushing and sorting device (131); a second feed port (132), the second feed port (132) being arranged at the top of the second crushing and sorting device (131), the second feed port (132) being used to feed materials into the second crushing and sorting device (131); A second mineral material outlet (133), the second mineral material outlet (133) is arranged at the bottom of the second crushing and sorting device (131), and the second mineral material outlet (133) is used to discharge the mineral material separated by the secondary separation; A second waste outlet (134) is provided at the bottom of the second crushing and sorting device (131), and the second waste outlet (134) is used to discharge the waste obtained from the secondary sorting.

7. A mineral processing system that can be reused in different mining areas according to claim 6, characterized in that: The transfer module (14) comprises: a waste conveying device (141), both ends of which are connected to the first waste outlet (124) and the second waste outlet (134), and the waste conveying device (141) is used to receive and convey the waste from the primary sorting and the secondary sorting; A first mineral material conveying device (142), wherein a first end of the first mineral material conveying device (142) is connected to the first mineral material outlet (123), and a second end of the first mineral material conveying device (142) is connected to the second feed port (132).

8. A mineral processing system that can be reused in different mining areas according to claim 7, characterized in that: The transfer module (14) further comprises: A second mineral material conveying device (143), wherein the second mineral material conveying device (143) is connected to the second waste material outlet (134).

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