Vehicle-mounted movable mud-water separation integrated device

Through the vehicle-mounted movable mud-water separation device, the buffer material and centrifugal force are used to separate the mud and water. Combined with the annular push plate and mud discharge assembly, the problems of damage and low separation efficiency during equipment transportation are solved, and an efficient and convenient mud-water separation effect is achieved.

CN120664756APending Publication Date: 2025-09-19STATE GRID SHANGHAI MUNICIPAL ELECTRIC POWER CO +2
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Patent Information

Application Number
CN202511116589.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-11
Publication Date
2025-09-19

AI Technical Summary

Technical Problem

Existing mud-water separation equipment cannot be moved conveniently, lacks buffering protection during transportation, and has low separation efficiency, resulting in high construction costs, easy damage to equipment and poor separation quality.

Method used

A vehicle-mounted, movable integrated mud-water separation device was designed. Buffer material was filled between the inner liner and the outer shell. An annular groove and filter plate were installed in the inner liner. Centrifugal force was used to separate mud and water. The dynamic compression and efficient discharge of mud and sand were achieved through the linkage design of the annular push plate and the mud discharge component.

Benefits of technology

Mud and water separation is achieved simultaneously during transportation, avoiding equipment damage, improving separation efficiency and quality, reducing construction period and cost, and reducing labor intensity.

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Abstract

The invention belongs to the technical field of environmental protection engineering, and particularly discloses a vehicle-mounted movable mud-water separation integrated device which comprises a transportation tank, the transportation tank comprises a shell and an inner container, a through hole is formed in the center of the bottom of the shell, and the inner container is rotationally connected into the shell through the through hole; a buffer material is filled between the shell and the inner container; the inner container is a sphere and is hollow, an annular groove is formed in the inner wall of the inner container, an annular push plate is rotationally connected into the annular groove, a filter plate with the same curvature as the inner container is arranged on the inner side of the annular push plate, and the filter plate and the inner wall of the inner container are fixed to form an annular cavity; two circular openings are symmetrically formed in the inner container along the equatorial plane of the sphere, end covers are fixed to the circular openings, the portions, located at the circular openings, of the annular push plate are wrapped with protective shells, and the problems that current equipment is poor in buffering protection performance and low in mud-water separation efficiency in the transportation process are solved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of environmental protection engineering, and in particular relates to a vehicle-mounted movable integrated mud-water separation device. Background Art

[0002] During the construction of various projects, large amounts of waste muddy water, mixed with silt and insoluble impurities, are generated. Directly discharging this waste muddy water not only causes serious environmental pollution but also results in a significant waste of water resources. Therefore, effectively treating waste muddy water and achieving mud-water separation, separating impurities such as silt from water, so that the water can be recycled and the silt and other impurities can be properly disposed of, is of great practical significance.

[0003] Currently, most traditional mud-water separation equipment is fixed, bulky, and fixed in position, making it difficult to adapt to the highly mobile nature of construction sites. During construction, work locations frequently change as the project progresses, and fixed mud-water separation equipment cannot easily move with the construction team. This means that the mud-water separation facility must be rebuilt at the new construction site, increasing construction costs and time.

[0004] Furthermore, during the transportation of waste mud and water, vehicles inevitably experience bumps due to complex road conditions. Existing mud and water separation equipment lacks effective buffering and protection mechanisms during transportation, making it susceptible to damage from bumps and jolts, impacting the equipment's normal operation and service life. Furthermore, traditional mud and water separation equipment is inefficient in removing impurities such as mud and sand during the separation process, which can easily lead to impurities accumulating within the device, compromising the efficiency and quality of mud and water separation.

[0005] In order to solve the above problems, a vehicle-mounted movable integrated mud-water separation device is proposed to solve the problems of poor buffering protection and low mud-water separation efficiency of current equipment during transportation. Summary of the Invention

[0006] The purpose of the present invention is to provide a vehicle-mounted movable integrated mud-water separation device to solve the problems raised in the above background technology.

[0007] In order to solve the above technical problems, the present invention provides the following technical solutions: a vehicle-mounted mobile integrated mud-water separation device, comprising a transport tank, the transport tank comprising an outer shell and an inner liner, a through hole being opened at the bottom center of the outer shell, the inner liner being rotatably connected to the outer shell through the through hole, and a cushioning material being filled between the outer shell and the inner liner;

[0008] The inner liner is spherical and hollow, and an annular groove is formed on its inner wall. An annular push plate is rotatably connected in the annular groove. A filter plate with the same curvature as the inner liner is provided on the inner side of the annular push plate. The filter plate is fixed to the inner wall of the inner liner to form an annular cavity.

[0009] A spiral hole communicating with the annular groove is provided on the inner wall of the inner tank. When the device performs mud and water separation, the annular push plate rotates in the annular cavity and the protective shell to gather mud and sand impurities into the protective shell below and discharge them from the rotating shaft.

[0010] The present invention further describes that the inner liner is symmetrically provided with two circular openings along the equatorial plane of the sphere, an end cover is fixed at the circular opening, and the annular push plate located at the circular opening is wrapped with a protective shell, the protective shell is fixed to the end face of the inner liner and forms a sealed sludge channel with the annular groove, a sludge pipe is connected and fixed between the end cover and the protective shell, and a hollow rotating shaft is connected and fixed at the other end of the protective shell, and the rotating shaft is loosely fitted in the through hole.

[0011] The present invention further describes that a limiting groove is opened on the side of the annular push plate close to the filter plate, and a plurality of mud discharge components are provided on the side of the filter plate close to the annular push plate. The plurality of mud discharge components are evenly distributed based on the outer diameter of the filter plate, and the mud discharge components are located in the limiting groove.

[0012] The present invention further describes that the mud discharge assembly includes two fixed plates and a sliding plate, the two fixed plates are fixed on the filter plate and are located on both sides of the limit groove, the fixed plate is provided with a sliding groove 1 on the side close to the sliding plate, and a telescopic block is provided in the sliding groove 1, and the telescopic block is used to limit the movement of the sliding plate. When the annular push plate rotates through the limit groove and contacts the mud discharge assembly, the sliding plate rotates.

[0013] The present invention further describes that a mounting groove is opened through the top of the fixing plate, a bidirectional electric push rod is arranged in the mounting groove, a bracket and a pressure plate are fixed to the output ends of the bidirectional electric push rod respectively, and a mud pressing plate is slidably connected to the bracket.

[0014] The present invention further describes that the pressure plate is provided with an arc-shaped end surface at one end away from the bidirectional electric push rod, and an arc-shaped protrusion is fixed above the mud pressing plate, and the arc-shaped protrusion is adapted to the arc-shaped end surface of the pressure plate.

[0015] The present invention further describes that on one side of the mud pressure plate: a sliding groove is provided on the top of the fixed plate close to the sliding plate, a mudguard is slidably connected to the inner wall of the fixed plate, the sliding groove is located on the sliding path of the mudguard, one end of the mudguard is against the mud pressure plate, and the other end corresponds to the position of the sliding groove.

[0016] The present invention further describes that several of the sliding plates are located on the rotation path of the limiting groove, and sliding blocks are fixed on both sides of the sliding plates. A groove is opened in the middle of each sliding block, and the groove is adapted to the telescopic block. When the telescopic block extends out and presses against the groove, the sliding plate will be unable to move.

[0017] The present invention further describes that a sliding channel is formed through the side wall of the sliding plate, and the sliding channel is parallel to and communicates with the sliding groove.

[0018] The present invention further describes that there are two transport tanks, and both ends of the two transport tanks are rotatably connected to a rotating plate through a rotating shaft; the two transport tanks are symmetrically arranged based on the center of the rotating plate, and one end of any rotating plate away from the transport tank is rotatably connected to a support seat.

[0019] Compared with the prior art, the present invention has the following beneficial effects:

[0020] Integrating mud and water separation into the transport tank allows for simultaneous separation during transportation, eliminating the need for additional space or equipment for secondary treatment and significantly shortening the project cycle. The synergistic effect of centrifugal separation and mechanical mud removal allows for continuous mud and water treatment, avoiding the stagnation associated with traditional transportation methods due to sedimentation.

[0021] The centrifugal force generated by the inner liner's rotation accelerates the accumulation of sediment and insoluble impurities toward the filter plate area. The spiral holes guide the water flow into the annular groove, achieving efficient solid-liquid separation. The linkage design of the annular push plate and the mud discharge assembly dynamically compresses the accumulated sediment, further squeezing out water and improving the control accuracy of the solid-phase moisture content.

[0022] The mud removal assembly uses a bidirectional electric push rod to drive the mud pressing plate. Through the mechanical linkage of the curved end surface and the protrusion, it achieves precise pushing and compression of mud and sand. The sliding plate limit structure cooperates with the rotation of the annular push plate to automatically complete the formation and discharge of mud blocks, eliminating the labor intensity and safety hazards of traditional manual dredging. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:

[0024] Figure 1 1 is a schematic diagram of the overall structure of an embodiment of the present invention;

[0025] Figure 2 This is a schematic structural diagram of a transport tank according to an embodiment of the present invention;

[0026] Figure 3 This is a schematic diagram of the inner container structure of an embodiment of the present invention;

[0027] Figure 4 This is a schematic diagram of the installation of the end cover according to an embodiment of the present invention;

[0028] Figure 5 This is a schematic diagram of the internal structure of the liner according to an embodiment of the present invention;

[0029] Figure 6 This is an embodiment of the present invention Figure 5 A magnified schematic diagram of area A;

[0030] Figure 7 This is a schematic diagram of the installation of a mud discharge assembly according to an embodiment of the present invention;

[0031] Figure 8 This is an embodiment of the present invention Figure 7 A magnified schematic diagram of area B;

[0032] Figure 9 This is a schematic structural diagram of a mud discharge assembly according to an embodiment of the present invention;

[0033] In the figure: 1. Transport tank; 101. Outer shell; 1011. Through hole; 102. Inner liner; 1021. Annular groove; 1022. Annular push plate; 1023. Filter plate; 1024. Circular opening; 1025. End cover; 1026. Protective shell; 1027. Mud pipe 1; 1028. Rotating shaft; 1029. Limiting groove; 1030. Spiral hole; 103. Buffer material; 2. Mud discharge assembly; 201. Fixing plate; 201 1. Sliding groove 1; 2012. Telescopic block; 2013. Mounting groove; 2014. Bidirectional electric push rod; 2015. Mud pressing plate; 2016. Pressure plate; 20161. Arc-shaped end face; 2017. Sliding groove; 2018. Mud guard; 2019. Arc-shaped protrusion; 202. Sliding plate; 2021. Sliding block; 2022. Groove; 2023. Sliding channel; 20241. Bracket; 3. Rotating plate; 4. Support seat. DETAILED DESCRIPTION

[0034] The following is a non-limiting detailed description of the technical solutions of the present invention in conjunction with preferred embodiments and the accompanying drawings. Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without inventive effort are also within the scope of protection of the present invention.

[0035] See also Figure 1-9 , an embodiment of the present invention provides a technical solution: a vehicle-mounted movable integrated mud-water separation device, including a transport tank 1.

[0036] like Figure 1-Figure 2As shown, the transport tank 1 includes an outer shell 101 and an inner liner 102. A through hole 1011 is opened at the bottom center of the outer shell 101. The inner liner 102 is rotatably connected to the outer shell 101 through the through hole 1011. A buffer material 103 is filled between the outer shell 101 and the inner liner 102. The buffer material 103 is used to protect the inner liner 102 from damage.

[0037] like Figure 3-Figure 4 As shown, the inner liner 102 is spherical and hollow, and an annular groove 1021 is provided on the inner wall of the inner liner 102. An annular push plate 1022 is rotatably connected in the annular groove 1021. Two circular openings 1024 are symmetrically provided along the equatorial plane of the sphere passing through the midpoint of the outer diameter of the annular push plate 1022. Matching end covers 1025 are fixed at the two circular openings 1024, and the end covers 1025 are used to seal the circular openings 1024 of the inner liner 102.

[0038] like Figure 5-Figure 8 As shown, the annular push plate 1022 located at the circular opening 1024 is wrapped with a protective shell 1026, and the protective shell 1026 is fixed to the end face of the inner tank 102 and forms a sealed sludge channel in the annular groove 1021. The end cover 1025 and the protective shell 1026 are connected and fixed with a sludge pipe 1027, and the other end of the protective shell 1026 is connected and fixed with a rotating shaft 1028, and the rotating shaft 1028 is hollow inside and has a clearance fit in the through hole 1011.

[0039] A filter plate 1023 is provided inside the annular push plate 1022 . The filter plate 1023 has the same curvature as the inner liner 102 . The filter plate 1023 is fixed to the inner wall of the inner liner 102 to form an annular cavity.

[0040] When the device is performing mud-water separation, the annular push plate 1022 rotates in the annular cavity and the protective shell 1026 to gather the mud in the device to the protective shell 1026 below and discharge it from the rotating shaft 1028 to the outside of the device.

[0041] A spiral hole 1030 is formed on the inner wall of the inner container 102 , and the other end of the spiral hole 1030 is communicated with the annular groove 1021 .

[0042] When the muddy water is thrown toward the inner wall of the inner tank 102, it will flow into the annular groove 1021 through the spiral hole 1030, and the water therein will be discharged through the filter plate 1023, while the mud and other impurities insoluble in water will remain in the annular groove 1021 and located between the two adjacent mud discharge components 2, thereby realizing the preliminary separation of mud and water.

[0043] A limiting groove 1029 is provided on the side of the annular push plate 1022 close to the filter plate 1023 , and a plurality of mud discharge components 2 are provided on the side of the filter plate 1023 close to the annular push plate 1022 . The plurality of mud discharge components 2 are evenly distributed based on the outer diameter of the filter plate 1023 , and the mud discharge components 2 are located in the limiting groove 1029 .

[0044] like Figure 7-Figure 9 As shown, the mud discharge assembly 2 includes two fixed plates 201 and a sliding plate 202. The two fixed plates 201 are fixed on the filter plate 1023 and are located on both sides of the limiting groove 1029. The fixed plate 201 is provided with a sliding groove 2011 on the side close to the sliding plate 202. A telescopic block 2012 is provided in the sliding groove 2011. The telescopic block 2012 is used to limit the movement of the sliding plate 202.

[0045] When the annular push plate 1022 rotates through the limiting groove 1029 and contacts the mud discharge assembly 2, the sliding plate 202 rotates.

[0046] A mounting groove 2013 is provided above the fixing plate 201, and a bidirectional electric push rod 2014 is provided in the mounting groove 2013. A bracket 20241 and a pressure plate 2016 are fixed to the output ends of the bidirectional electric push rod 2014 respectively, and a mud pressing plate 2015 is slidably connected to the bracket 20241.

[0047] The pressure plate 2016 is provided with an arc-shaped end surface 20161 at one end away from the bidirectional electric push rod 2014 , and an arc-shaped protrusion 2019 is fixed above the mud pressing plate 2015 , and the arc-shaped protrusion 2019 is adapted to the arc-shaped end surface 20161 of the pressure plate 2016 .

[0048] As the inner tank 102 continues to rotate, the silt and other water-insoluble impurities between the two mud removal assemblies 2 become increasingly compressed, and the mud removal assembly 2 on the filter plate 1023 begins to operate. The bidirectional electric push rod 2014 is activated, pushing the pressure plate 2016 downward. When the curved end surface 20161 of the pressure plate 2016 contacts the curved protrusion 2019, the curved protrusion 2019 drives the mud pressing plate 2015 along the curved end surface 20161 toward the sliding plate 202, thereby pushing the silt and other water-insoluble impurities accumulated on the filter plates 1023 between the two adjacent sliding plates 202.

[0049] On one side of the mud pressing plate 2015: a sliding groove 2017 is provided on the top of the fixed plate 201 close to the sliding plate 202, and a mudguard 2018 is slidingly connected to the inner wall of the fixed plate 201. The sliding groove 2017 is located on the sliding path of the mudguard 2018, and one end of the mudguard 2018 is against the mud pressing plate 2015, and the other end corresponds to the position of the sliding groove 2017.

[0050] Several of the sliding plates 202 are located on the rotation path of the limiting groove 1029, and sliding blocks 2021 are fixed on both sides of the sliding plate 202. A groove 2022 is opened in the middle of each sliding block 2021, and the groove 2022 is adapted to the telescopic block 2012. When the telescopic block 2012 extends out and presses against the groove 2022, the sliding plate 202 will be unable to move.

[0051] A sliding channel 2023 is formed through the side wall of the sliding plate 202 . The sliding channel 2023 is parallel to and communicates with the sliding groove 2017 .

[0052] When the mud pressing plate 2015 is squeezed, the mud guard 2018 slides into the sliding groove 2017 and the sliding channel 2023, blocking the mud above the mud guard 2018 and gradually gathering it above the sliding plate 202. The mud guard 2018 is gradually pushed toward the protective shell 1026 below through the annular push plate 1022. When the mud is directly above the rotating shaft 1028, the mud falls into the rotating shaft 1028 and is discharged.

[0053] like Figure 1 As shown, in some embodiments, it should be additionally explained that: two transport tanks 1 are provided.

[0054] It should be supplemented that: both ends of the two transport tanks 1 are rotatably connected to a rotating plate 3 via a rotating shaft 1028 ; and the two transport tanks 1 are symmetrically arranged around the center of the rotating plate 3 .

[0055] It should be supplemented that: one end of any of the rotating plates 3 away from the transport tank 1 is rotatably connected to a support base 4, and the support base 4 is fixed on the vehicle.

[0056] Working principle: First, the waste muddy water mixed with silt and water-insoluble impurities is poured into the inner liner 102 through the end cover 1025. During the transportation of the waste muddy water generated by the construction project, it is inevitable that bumps will occur during transportation. Since the muddy water is fluid, it impacts the inner wall of the inner liner 102. The two transport tanks 1 drive the rotating plate 3 to rotate under the action of the impact force. During the rotation, the transport tank 1 generates a centrifugal force toward the center of the rotating plate 3. Under the action of the centrifugal force, the inner liner 102 rotates relative to the outer shell 101. Since the buffer material 103 is filled between the outer shell 101 and the inner liner 102, the buffer material 103 plays a buffering and protective role for the inner liner 102, preventing the inner liner 102 from directly colliding with the outer shell 101 and being damaged.

[0057] As the inner liner 102 rotates, the muddy water is thrown toward the inner wall of the inner liner 102 under the action of centrifugal force, while the mud, sand and water-insoluble impurities are thrown toward a position close to the annular push plate 1022 due to their large mass.

[0058] When the muddy water is thrown toward the inner wall of the inner tank 102, it will flow into the annular groove 1021 through the spiral hole 1030, and the water therein will be discharged through the filter plate 1023, while the mud and other impurities insoluble in water will remain in the annular groove 1021 and be located between the two adjacent mud discharge components 2, thereby realizing the preliminary separation of the muddy water.

[0059] As the inner tank 102 continues to rotate, the silt and other water-insoluble impurities between the two mud removal assemblies 2 become increasingly concentrated, and the mud removal assembly 2 on the filter plate 1023 begins to operate. The bidirectional electric push rod 2014 is activated, pushing the pressure plate 2016 downward. When the curved end surface 20161 of the pressure plate 2016 contacts the curved protrusion 2019, the curved protrusion 2019 drives the mud pressing plate 2015 along the curved end surface 20161 toward the sliding plate 202, driving the mud guard 2018 to slide into the sliding groove 2017 and sliding channel 2023, thereby pushing the silt and other water-insoluble impurities accumulated on the filter plate 1023 between the two adjacent sliding plates 202.

[0060] As the silt and water-insoluble impurities are pushed between two adjacent sliding plates 202 , they will be further compressed.

[0061] By rotating the annular push plate 1022, when one side of the limiting groove 1029 contacts the sliding plate 202, the annular push plate 1022 drives the sliding plate 202 in contact with one side of the limiting groove 1029 to rotate, and then squeezes the mud and other water-insoluble impurities between the two sliding plates 202 again to achieve mud-water separation again, and as the annular push plate 1022 rotates, the sliding plates 202 are driven to slide in turn.

[0062] Through the rotation of the annular push plate 1022, when the mud and other water-insoluble impurities rotate to the position of the sludge pipe 1027, the mud and other water-insoluble impurities fall from the sludge pipe 1027 under the action of gravity and are discharged out of the device through the pipeline, thereby achieving complete separation of mud and water.

[0063] During transportation, since the inner liner 102 is rotatably connected to the outer shell 101 through the through hole 1011, and the buffer material 103 is filled between the outer shell 101 and the inner liner 102, even if the vehicle is bumpy, the inner liner 102 can maintain stable rotation, ensuring the continuity and stability of the mud-water separation process.

[0064] The annular push plate 1022 is continuously rotated to drive the sliding plate 202 back to the fixed plate 201 , and the telescopic block 2012 extends out to press against the groove 2022 , so that the sliding plate 202 cannot move.

[0065] Furthermore, because the device is vehicle-mounted and portable, it can be easily transported to construction sites for waste muddy water treatment, significantly improving treatment efficiency and convenience. Furthermore, the device's compact structure and small footprint make it suitable for muddy water treatment in narrow urban streets or areas with complex terrain.

[0066] In the description of the present invention, it should be understood that the terms "up", "down", "front", "back", "left", "right", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention, rather than indicating or implying that the device or element referred to must have a specific direction, be constructed and operated in a specific direction, and therefore should not be understood as a limitation on the present invention.

[0067] Finally, it should be noted that the above embodiments are intended only to illustrate the technical solutions of the present invention and are not intended to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will appreciate that modifications may be made to the technical solutions described in the aforementioned embodiments, or that some of the technical features may be replaced with equivalents. Such modifications or replacements do not deviate from the spirit and scope of the technical solutions of the various embodiments of the present invention.

Claims

1. A vehicle-mounted mobile integrated mud-water separation device, including a transport tank, characterized by: The transport tank comprises an outer shell and an inner liner. A through hole is provided at the bottom center of the outer shell. The inner liner is rotatably connected to the outer shell through the through hole. A cushioning material is filled between the outer shell and the inner liner. The inner liner is a hollow sphere, and its inner wall is provided with an annular groove, in which an annular push plate is rotatably connected. The inner wall of the inner liner is provided with two circular openings symmetrically along the equatorial plane, and end caps are fixed to the circular openings. A filter plate having the same curvature as the inner liner is provided on the inner side of the annular push plate, and the filter plate is fixed to the inner wall of the inner liner to form an annular cavity. The filter plate is provided with a plurality of mud discharge components on one side close to the annular push plate, and the mud discharge components are evenly distributed based on the outer diameter of the filter plate; a spiral hole is opened on the inner wall of the inner tank, and the other end of the spiral hole is connected to the annular groove.

2. The vehicle-mounted movable integrated mud-water separation device according to claim 1, characterized in that: The inner liner has two circular openings symmetrically formed along the equatorial plane of the sphere, and an end cover is fixed at the circular opening. The annular push plate located at the circular opening is wrapped with a protective shell, and the protective shell is fixed to the end face of the inner liner and forms a sealed sludge channel with the annular groove. A sludge pipe is connected and fixed between the end cover and the protective shell, and a hollow rotating shaft is connected and fixed at the other end of the protective shell, and the rotating shaft is loosely fitted in the through hole.

3. The vehicle-mounted movable integrated mud-water separation device according to claim 2, characterized in that: A limiting groove is provided on one side of the annular push plate close to the filter plate, and a plurality of mud discharge assemblies are provided on the side of the filter plate close to the annular push plate. The plurality of mud discharge assemblies are evenly distributed based on the outer diameter of the filter plate, and the mud discharge assemblies are located in the limiting groove.

4. The vehicle-mounted movable integrated mud-water separation device according to claim 3, characterized in that: The mud discharge assembly includes two fixed plates and a sliding plate. The two fixed plates are fixed to the filter plate and are located on both sides of the limit groove. A sliding groove 1 is provided on the side of the fixed plate close to the sliding plate. A telescopic block is provided in the sliding groove 1. The telescopic block is used to limit the movement of the sliding plate. When the annular push plate rotates through the limit groove and contacts the mud discharge assembly, the sliding plate rotates.

5. The vehicle-mounted movable integrated mud-water separation device according to claim 4, characterized in that: A mounting groove is provided above the fixing plate, a bidirectional electric push rod is provided in the mounting groove, a bracket and a pressure plate are fixed to the output ends of the bidirectional electric push rod respectively, and a mud pressing plate is slidably connected to the bracket.

6. The vehicle-mounted movable integrated mud-water separation device according to claim 5, characterized in that: The pressure plate is provided with an arc-shaped end surface at one end away from the bidirectional electric push rod, and an arc-shaped protrusion is fixed above the mud pressing plate, and the arc-shaped protrusion is adapted to the arc-shaped end surface of the pressure plate.

7. The vehicle-mounted movable integrated mud-water separation device according to claim 6, characterized in that: On one side of the mud pressure plate: a sliding groove is provided on the top of the fixed plate close to the sliding plate, a mud guard is slidably connected to the inner wall of the fixed plate, the sliding groove is located on the sliding path of the mud guard, one end of the mud guard is against the mud pressure plate, and the other end corresponds to the position of the sliding groove.

8. The vehicle-mounted movable integrated mud-water separation device according to claim 7, characterized in that: Several of the sliding plates are located on the rotation path of the limiting groove, and sliding blocks are fixed on both sides of the sliding plates. A groove is opened in the middle of each sliding block, and the groove is adapted to the telescopic block. When the telescopic block extends out and presses against the groove, the sliding plate will be unable to move.

9. The vehicle-mounted movable integrated mud-water separation device according to claim 8, characterized in that: A sliding channel is formed through the side wall of the sliding plate, and the sliding channel is parallel to and communicates with the sliding groove.

10. The vehicle-mounted movable integrated mud-water separation device according to claim 9, characterized in that: There are two transport tanks, and both ends of the two transport tanks are rotatably connected to a rotating plate through a rotating shaft; the two transport tanks are symmetrically arranged based on the center of the rotating plate, and one end of any rotating plate away from the transport tank is rotatably connected to a support seat.