Integrated treatment device for river sediment
By designing an integrated river bottom sludge treatment device including a moving mechanism, a suction mechanism and a stirring and filtration mechanism, the problem of low treatment and transportation efficiency caused by large water content in the prior art is solved, and efficient treatment and low water content storage of sludge are achieved.
Patent Information
- Application Number
- CN202510146335.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-10
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When the existing integrated river bottom sludge treatment device is sludge, the sludge contains a large amount of river water, which increases the burden of equipment processing and transportation. When clearing in areas far away from the shore, the output pipe cannot be directly connected, resulting in high sludge storage pressure and low treatment efficiency.
An integrated treatment device for river bottom sludge is designed, including a support frame, a moving mechanism, a suction mechanism and a stirring and filtration mechanism. Floating on the river surface through the impeller drive support frame, the suction pipe is moved downward and inserted into the river bottom sludge, the linkage docking pipe is connected to the fixed pipe, and the sludge is suctioned and the water content is reduced through the stirring and filtration mechanism.
It effectively reduces the moisture in the sludge, improves the treatment and transportation efficiency of the sludge, and solves the problems of storage pressure and transportation difficulties caused by the large water content of the sludge in the prior art.
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Figure CN119933218A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of sludge treatment, and in particular to an integrated riverbed sludge treatment device. Background Art
[0002] Collection and treatment through integrated riverbed mud treatment equipment is one of the commonly used treatment methods.
[0003] When the existing integrated riverbed sediment treatment device is dredging, the pumped sludge contains a large amount of river water. This river water is pumped into the treatment equipment, which increases the unnecessary treatment capacity of the equipment and also greatly increases the transportation capacity of the transportation equipment. When clearing the sediment in some river areas far from the shore, the output pipe cannot be directly connected to the transportation equipment on the shore, and it needs to be temporarily stored and transported by the treatment equipment. The excessive water content in the stored sludge also increases the storage pressure, which reduces the amount of sludge treated. Summary of the invention
[0004] The object of the present invention is to provide an integrated riverbed sludge treatment device that is convenient for improving sludge treatment efficiency and transportation efficiency, so as to solve the problems raised in the above-mentioned background technology.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an integrated riverbed mud treatment device, comprising a support frame, a moving mechanism, a suction mechanism and a stirring and filtering mechanism, wherein a device box and a control box are fixedly connected to the support frame, the moving mechanism comprises a fixed pipe fixedly installed at the bottom of the support frame, and multiple groups of impellers are rotatably connected in the fixed pipe, which are used to float the support frame on the water surface of the river channel, and the support frame is driven to move by the rotation of the impeller, the suction mechanism comprises a docking pipe installed at the bottom of the device box, two groups of suction pipes are provided in the device box, which are used to control the suction pipes to move downward and insert into the riverbed mud, and at the same time, the docking pipe is linked to one end of the fixed pipe for docking, so that the sludge in the suction pipe is subsequently sucked into the device box for storage during the rotation of the impeller, and the stirring and filtering mechanism is installed in the device box, which is used to stir and filter the sludge in the device box, and discharge the water into the river channel through the docking pipe and the fixed pipe, thereby reducing the water content in the device box, and facilitating the improvement of sludge treatment efficiency and transportation efficiency.
[0006] Preferably, the suction mechanism also includes a sleeve tube fixedly mounted on one end of the docking tube, the sleeve tube is fixedly connected to a sleeve net at one end away from the docking tube, the inner walls of the sleeve tube and the sleeve net can be movably sleeved with the outer wall of the fixed tube, the device box is provided with a lifting member for controlling the lifting and lowering of the suction tubes on both sides, the device box is provided with a sleeve member for linking the docking tube and the sleeve tube to slide horizontally and sleeved with the outer wall of the fixed tube when the suction tube moves downward, so as to facilitate the control of the suction tube to move downward and insert it into the riverbed sludge, and at the same time link the docking tube to dock with one end of the fixed tube, so that the sludge in the suction tube can be sucked into the device box for storage during the rotation of the impeller.
[0007] Preferably, the sleeve member includes a guide block fixedly mounted on the top end of the suction pipe, the guide block is slidably connected to the device box in a vertical direction, the end of the docking tube away from the sleeve tube is fixedly connected with a sliding plate, the bottom of the inner wall of the device box is fixedly connected with a bottom plate, the sliding plate and the bottom surface of the bottom plate are slidably connected in a horizontal direction, the docking tube is fixedly connected with a fixed block, the fixed block is fixedly connected with a first spring fixedly connected to the device box, and the guide block is provided with a sliding member for controlling the sliding state of the sliding plate, so as to facilitate the linkage of the docking tube and the sleeve tube to slide horizontally and be sleeved with the outer wall of the fixed tube when the suction tube moves downward.
[0008] Preferably, the sliding member includes a slope panel slidingly connected to the slope surface of one side of the sliding plate, both sides of the slope panel are fixedly connected with connecting plates slidingly connected to the device box along the vertical direction, the bottom of the guide block is fixedly connected with a second spring fixedly connected to the top surface of the connecting plate, a first through hole is provided on the sliding plate, and a second through hole that can be connected with the first through hole and the inner wall of the device box is provided on the bottom plate, so as to facilitate controlling the sliding state of the sliding plate.
[0009] Preferably, the stirring and filtering mechanism includes a rotating disk rotatably connected to the top surface of the base plate, an internal gear ring is fixedly connected to the base plate, a plurality of gear rings meshing with the internal gear ring are rotatably connected to the rotating disk, a filter tube is coaxially fixedly connected to the top of the gear ring, a driving disk is coaxially rotatably connected to the top surface of the rotating disk, the filter tube passes through the driving disk and is rotatably connected to the driving disk, a conveying member for driving the driving disk to rotate and conveying water at the same time is provided in the device box, thereby facilitating stirring and filtering of the sludge in the device box, and discharging the moisture into the river channel through the docking pipe and the fixed pipe, thereby reducing the water content in the device box.
[0010] Preferably, the conveying member includes a first motor fixedly mounted on the device box, the output end of the first motor is coaxially fixedly connected with a driving shaft, the bottom end of the driving shaft is coaxially fixedly connected with the top surface of the driving disk, a third through hole connected to the second through hole is provided on the rotating disk, and a connecting pipe for connecting the third through hole and the bottom end of the filter tube is provided on the rotating disk, so as to facilitate the driving disk to rotate and simultaneously transport water.
[0011] Preferably, the lifting member includes a driven wheel movably connected to the outer wall of the suction pipe, the outer wall of the suction pipe is provided with a threaded groove threadedly connected to the inner wall of the driven wheel, a connecting pipe is fixedly connected to the device box, the suction pipe is movably connected to the outer wall of the connecting pipe, one end of the connecting pipe is connected to the device box, and a driving member for driving the driven wheels on both sides to rotate synchronously is provided in the device box, so as to facilitate the control of the lifting and lowering of the suction pipes on both sides.
[0012] Preferably, the driving member includes a second motor fixedly installed in the device box, the output end of the second motor is coaxially fixedly connected to a driving wheel, the outer wall of the driving wheel is transmission-connected to a transmission belt that is transmission-connected to the outer walls of the driven wheels on both sides, so as to drive the driven wheels on both sides to rotate synchronously.
[0013] Preferably, the moving mechanism further comprises two groups of floating plates fixedly mounted on the bottom of the support frame, so as to facilitate floating the support frame on the water surface of the river, and the support frame is driven to move by the rotation of the impeller.
[0014] Preferably, the bottom of the floating board is rotatably connected to a plurality of sets of rollers to facilitate the movement of the entire device on the road surface.
[0015] Compared with the prior art, the present invention has the following beneficial effects: The present invention provides an integrated riverbed mud treatment device, which solves the problem that it is difficult to automatically filter and output sewage in the sludge during the treatment process of the existing integrated riverbed mud treatment device, thereby improving the sludge transportation and storage efficiency. The support frame is floated on the water surface of the river channel by a moving mechanism, and the support frame is driven to move by the rotation of the impeller to control the suction pipe to move downward and insert it into the riverbed sludge. At the same time, the suction mechanism is linked to the docking pipe and one end of the fixed pipe to dock, so that the sludge in the suction pipe is subsequently sucked into the device box for storage during the rotation of the impeller, and the sludge in the device box is stirred and filtered by the stirring and filtering mechanism, and the moisture is discharged into the river channel through the docking pipe and the fixed pipe, thereby reducing the water content in the device box and improving the sludge storage and transportation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the local structure of the moving mechanism of the present invention; Figure 3 It is a schematic diagram of the partial structure of the suction mechanism of the present invention; Figure 4 for Figure 3 A magnified image of area A; Figure 5 It is a partial structural cross-sectional view of the suction mechanism of the present invention; Figure 6 for Figure 5 Enlarged view of area B; Figure 7 It is a schematic diagram of the partial structure of the stirring and filtering mechanism of the present invention; Figure 8 for Figure 7 Enlarged view of area C in the middle; Fig. 9 This is a partial structural cross-sectional view of the stirring and filtering mechanism of the present invention.
[0017] In the figure: 1, support frame; 2, device box; 3, control box; 4, fixed pipe; 5, impeller; 6, docking pipe; 7, suction pipe; 8, sleeve pipe; 9, sleeve net; 10, guide block; 11, sliding plate; 12, bottom plate; 13, fixed block; 14, first spring; 15, slope plate; 16, connecting plate; 17, second spring; 18, first through hole; 19, second through hole; 20, rotating disk; 21, gear ring; 22, filter tube; 23, driving disk; 24, first motor; 25, driving shaft; 26, third through hole; 27, connecting pipe; 28, driven wheel; 29, threaded groove; 30, connecting pipe; 31, second motor; 32, driving wheel; 33, transmission belt; 34, floating plate; 35, roller; 36, inner gear ring. DETAILED DESCRIPTION
[0018] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0019] Example 1: Please refer to Figure 1-Figure 9The figure shows an integrated riverbed sediment treatment device, including a support frame 1, a moving mechanism, a suction mechanism and a stirring and filtering mechanism. The support frame 1 is fixedly connected to a device box 2 and a control box 3. The moving mechanism includes a fixed pipe 4 fixedly installed at the bottom of the support frame 1. A plurality of impellers 5 are rotatably connected in the fixed pipe 4, which are used to float the support frame 1 on the water surface of the river. The support frame 1 is driven to move by the rotation of the impeller 5, wherein the number of impellers 5 is relatively large. The impeller 5 in the fixed pipe 4 adopts a design similar to that of a water pump to improve the strength and stability of suction and transportation.
[0020] The suction mechanism includes a docking pipe 6 installed at the bottom of the device box 2. Two groups of suction pipes 7 are provided in the device box 2, which are used to control the suction pipes 7 to move downward and insert into the riverbed sludge. At the same time, the docking pipe 6 is linked to one end of the fixed pipe 4 for docking, so that the sludge in the suction pipe 7 is subsequently sucked into the device box 2 for storage during the rotation of the impeller 5. The stirring and filtering mechanism is installed in the device box 2, which is used to stir and filter the sludge in the device box 2, and discharge the moisture into the river channel through the docking pipe 6 and the fixed pipe 4, thereby reducing the water content in the device box 2.
[0021] The suction mechanism also includes a sleeve tube 8 fixedly installed on one end of the docking tube 6, and the end of the sleeve tube 8 away from the docking tube 6 is fixedly connected to a sleeve net 9, the inner walls of the sleeve tube 8 and the sleeve net 9 can be movably sleeved with the outer wall of the fixed tube 4, and the device box 2 is provided with a lifting component for controlling the lifting and lowering of the suction tubes 7 on both sides, and the device box 2 is provided with a sleeve component for linking the docking tube 6 and the sleeve tube 8 to slide horizontally and sleeve the outer wall of the fixed tube 4 when the suction tube 7 moves downward.
[0022] The sleeve connector includes a guide block 10 fixedly mounted on the top end of the suction pipe 7, the guide block 10 is slidably connected to the device box 2 in the vertical direction, a sliding plate 11 is fixedly connected to the end of the docking tube 6 away from the sleeve tube 8, a bottom plate 12 is fixedly connected to the bottom of the inner wall of the device box 2, the sliding plate 11 and the bottom surface of the bottom plate 12 are slidably connected in the horizontal direction, a fixed block 13 is fixedly connected to the docking tube 6, a first spring 14 fixedly connected to the device box 2 is fixedly connected to the fixed block 13, and a sliding member for controlling the sliding state of the sliding plate 11 is provided on the guide block 10.
[0023] The sliding member includes a slope panel 15 slidably connected to the slope surface of one side of the sliding plate 11, and both sides of the slope panel 15 are fixedly connected to connecting plates 16 slidably connected to the device box 2 along the vertical direction. The bottom of the guide block 10 is fixedly connected to a second spring 17 fixedly connected to the top surface of the connecting plate 16. A first through hole 18 is opened on the sliding plate 11, and a second through hole 19 that can be connected to the first through hole 18 and the inner wall of the device box 2 is opened on the bottom plate 12.
[0024] The stirring and filtering mechanism includes a rotating disk 20 rotatably connected to the top surface of the bottom plate 12, an inner gear ring 36 is fixedly connected to the bottom plate 12, and multiple groups of gear rings 21 meshing with the inner gear ring 36 are rotatably connected to the rotating disk 20. A filter tube 22 is coaxially fixedly connected to the top of the gear ring 21, and a driving disk 23 is coaxially rotatably connected to the top surface of the rotating disk 20. The filter tube 22 penetrates the driving disk 23 and is rotatably connected to the driving disk 23. A conveying member for driving the driving disk 23 to rotate and conveying water at the same time is provided in the device box 2.
[0025] The conveying member includes a first motor 24 fixedly mounted on the device box 2. The model of the first motor 24 is preferably YYHS-40. The output end of the first motor 24 is coaxially fixedly connected with a drive shaft 25. The bottom end of the drive shaft 25 is coaxially fixedly connected with the top surface of the drive disk 23. A third through hole 26 connected to the second through hole 19 is provided on the rotating disk 20. A connecting pipe 27 for connecting the third through hole 26 and the bottom end of the filter tube 22 is provided on the rotating disk 20.
[0026] In this embodiment, the support frame 1, the device box 2 and the control box 3 are floated on the water surface of the river as a whole through a moving mechanism. When movement is required, the suction pipe 7 is above the water surface. At this time, the second spring 17 is in a slightly stretched state, and the slope panel 15 does not apply a thrust to the side of the sliding plate 11. Under the push of the first spring 14, the fixed block 13 and the docking pipe 6 slide, and the sliding plate 11 slides with the docking pipe 6 to release the connection between the first through hole 18 and the second through hole 19. The sliding plate 11 blocks the bottom surface of the second through hole 19, and at the same time, the docking pipe 6 drives the sleeve pipe 8 and the sleeve net 9 to slide, so that the river water can be input into the fixed pipe 4 through the sleeve net 9. At this time, starting the impeller 5 can filter the river water at the front end through the sleeve net 9 and input it into the fixed pipe 4, and then discharge it from the other end of the fixed pipe 4, pushing the equipment as a whole to move on the river surface. A steering plate can also be provided at the front end of the support frame 1 to adjust the moving direction.
[0027] When the device moves to the desired position, the impeller 5 stops rotating, and the lifting member is controlled to move the suction pipe 7 downward and insert it into the sludge at the desired depth. At this time, the second spring 17 is compressed, pushing the connecting plate 16 and the slope panel 15 downward. The slope position of the slope panel 15 pushes the sliding plate 11 to slide in the horizontal direction, thereby driving the butt joint 6 to slide. The first spring 14 is compressed, and the sleeve pipe 8 is sleeved on the outer wall of the fixed pipe 4. At this time, the river water cannot be input into the fixed pipe 4 through the sleeve net 9. At the same time, the sliding of the sliding plate 11 makes the first through hole 18 connected with the second through hole 19 and the third through hole 26. The impeller 5 is started to rotate and suck, so that the gas and liquid in the device box 2 can be sucked into the connecting pipe 27 at the bottom through the filter holes on the side wall of the filter tube 22, and then transported to the butt joint 6 through the third through hole 26, the second through hole 19 and the first through hole 18, and finally discharged from one end of the fixed pipe 4. At this time, since the suction pipe 7 is inserted into the sludge, the movement of the entire device has a certain resistance, so the device will not move quickly.
[0028] When the negative pressure in the device box 2 reaches the set intensity, a strong suction force will be generated in the suction pipe 7, so that the sludge on the riverbed is sucked into the device box 2 through the suction pipe 7. At this time, the first motor 24 is started to drive the drive shaft 25 to rotate, so that the drive disk 23 and the rotating disk 20 drive the filter tube 22 to rotate. In the process of driving the gear ring 21 to rotate, the gear ring 21 rolls on the inner gear ring 36, so that the filter tube 22 can rotate in the process of orbiting around the rotating disk 20, so as to clean the sludge in the device box 2. The sludge is fully stirred and the probability of clogging the filter holes is reduced. The rotation speed of the driving shaft 25 is slow to avoid mixing the sludge with the sewage. The length of the filter tube 22 is long, so that when the sludge in the device box 2 is settled, the sewage in the upper area can be filtered and discharged into the docking pipe 6, and output through the fixed pipe 4. At this time, the water flow discharged from the fixed pipe 4 will slowly push the equipment to move, thereby achieving the purpose of moving and sucking at the same time, avoiding the situation where continuous suction at a certain position makes it difficult to fully suck the sludge in other surrounding areas.
[0029] After the suction is completed, the lifting member drives the suction pipe 7 to move upward. After the suction pipe 7 reaches the top position, the guide block 10 pulls the second spring 17, driving the slope panel 15 to move upward, and the first spring 14 rebounds, causing the sliding plate 11 to slide back to its original position again. The sleeve pipe 8 drives the sleeve net 9 to slide to the top position connected to the fixed pipe 4, and one end of the butt pipe 6 is blocked. After that, the suction state can be released, and the impeller 5 can be started to draw the river water into the fixed pipe 4 through the sleeve net 9 again, driving the equipment to move as a whole.
[0030] Example 2: Please refer to Figure 1-Figure 9, this embodiment further illustrates the first embodiment, the lifting member in the figure includes a driven wheel 28 movably sleeved with the outer wall of the suction pipe 7, the outer wall of the suction pipe 7 is provided with a thread groove 29 threadedly connected to the inner wall of the driven wheel 28, a connecting pipe 30 is fixedly connected in the device box 2, the suction pipe 7 is movably sleeved with the outer wall of the connecting pipe 30, one end of the connecting pipe 30 is connected to the device box 2, and a driving member for driving the driven wheels 28 on both sides to rotate synchronously is provided in the device box 2, the driving member includes a second motor 31 fixedly installed in the device box 2, the model of the second motor 31 is preferably YYHS-40, the output end of the second motor 31 is coaxially fixedly connected with a driving wheel 32, and the outer wall of the driving wheel 32 is transmission-connected with a transmission belt 33 transmission-connected to the outer walls of the driven wheels 28 on both sides.
[0031] In this embodiment, the second motor 31 is started to drive the driving wheel 32 to rotate, the driving wheel 32 drives the transmission belt 33 to rotate the driven wheel 28, and the driven wheel 28 drives the threaded groove 29 to make the suction pipe 7 vertically lift and lower under the limiting action of the guide block 10, so as to realize the lifting and lowering adjustment of the suction pipe 7. At the same time, during the lifting process, the internally sleeved connecting pipe 30 can always connect the top of the suction pipe 7 with the device box 2, so as to realize the suction and conveying function of sludge and gas. The structure is simple and the operation is efficient. The suction pipe 7 can be fixed and limited at any height, which improves the stability during the sludge suction process.
[0032] Example 3: Please refer to Figure 1-Figure 9 This embodiment further illustrates the first embodiment. The moving mechanism shown in the figure further includes two groups of floating plates 34 fixedly mounted on the bottom of the support frame 1. The bottom of the floating plates 34 is rotatably connected to multiple groups of rollers 35.
[0033] In this embodiment, the support frame 1 is driven by the floating plate 34 to float on the river surface as a whole. When it needs to be moved on the road surface, it can be rolled by the rollers 35 at the bottom. The operation is convenient and efficient. The floating plate 34 can be replaced by a hull to improve buoyancy and stability.
[0034] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.
[0035] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An integrated riverbed mud treatment device, characterized in that: include: A support frame (1), to which a device box (2) and a control box (3) are fixedly connected; Also includes: A moving mechanism, the moving mechanism comprising a fixed pipe (4) fixedly mounted on the bottom of the support frame (1), wherein a plurality of impellers (5) are rotatably connected in the fixed pipe (4) and are used to float the support frame (1) on the surface of the river, and the support frame (1) is driven to move by the rotation of the impellers (5); A suction mechanism, the suction mechanism comprising a docking pipe (6) installed at the bottom of the device box (2), two groups of suction pipes (7) being arranged in the device box (2), for controlling the suction pipes (7) to move downward and insert into the riverbed sludge, and at the same time linking the docking pipe (6) to dock with one end of the fixed pipe (4), so that the sludge in the suction pipe (7) is subsequently sucked into the device box (2) for storage during the rotation of the impeller (5); A stirring and filtering mechanism is installed in the device box (2) and is used to stir and filter the sludge in the device box (2), and discharge the water into the river through the butt joint (6) and the fixed pipe (4), thereby reducing the water content in the device box (2).
2. The integrated riverbed mud treatment device according to claim 1 is characterized in that: The suction mechanism further comprises a sleeve tube (8) fixedly mounted on one end of the butt joint tube (6); an end of the sleeve tube (8) away from the butt joint tube (6) is fixedly connected to a sleeve net (9); the inner walls of the sleeve tube (8) and the sleeve net (9) are capable of movably sleeved with the outer wall of the fixed tube (4); a lifting member for controlling the lifting of the suction tubes (7) on both sides is provided in the device box (2); and a sleeve member for linking the butt joint tube (6) and the sleeve tube (8) to slide horizontally and sleeved with the outer wall of the fixed tube (4) when the suction tube (7) moves downward is provided in the device box (2).
3. The integrated riverbed mud treatment device according to claim 2 is characterized in that: The sleeve member comprises a guide block (10) fixedly mounted on the top end of the suction pipe (7), the guide block (10) being slidably connected to the device box (2) in the vertical direction, a sliding plate (11) being fixedly connected to the end of the butt joint pipe (6) away from the sleeve pipe (8), a bottom plate (12) being fixedly connected to the bottom of the inner wall of the device box (2), the sliding plate (11) being slidably connected to the bottom surface of the bottom plate (12) in the horizontal direction, a fixed block (13) being fixedly connected to the butt joint pipe (6), a first spring (14) being fixedly connected to the device box (2) being fixedly connected to the fixed block (13), and a sliding member for controlling the sliding state of the sliding plate (11) being provided on the guide block (10).
4. The integrated riverbed mud treatment device according to claim 3 is characterized in that: The sliding member comprises a slope plate (15) slidably connected to a slope surface of one side of the sliding plate (11); both sides of the slope plate (15) are fixedly connected to connecting plates (16) slidably connected to the device box (2) in a vertical direction; the bottom of the guide block (10) is fixedly connected to a second spring (17) fixedly connected to the top surface of the connecting plate (16); a first through hole (18) is formed on the sliding plate (11); and a second through hole (19) capable of communicating with the first through hole (18) and an inner wall of the device box (2) is formed on the bottom plate (12).
5. The integrated riverbed mud treatment device according to claim 4 is characterized in that: The stirring and filtering mechanism comprises a rotating disk (20) rotatably connected to the top surface of the bottom plate (12); an inner gear ring (36) is fixedly connected to the bottom plate (12); a plurality of gear rings (21) meshing with the inner gear ring (36) are rotatably connected to the rotating disk (20); a filter tube (22) is coaxially fixedly connected to the top of the gear ring (21); a driving disk (23) is coaxially rotatably connected to the top surface of the rotating disk (20); the filtering tube (22) penetrates the driving disk (23) and is rotatably connected to the driving disk (23); and a conveying member for conveying water while driving the driving disk (23) to rotate is provided in the device box (2).
6. The integrated riverbed mud treatment device according to claim 5 is characterized in that: The conveying member comprises a first motor (24) fixedly mounted on the device box (2); an output end of the first motor (24) is coaxially fixedly connected to a drive shaft (25); a bottom end of the drive shaft (25) is coaxially fixedly connected to a top surface of the drive disk (23); a third through hole (26) connected to the second through hole (19) is provided on the rotating disk (20); and a connecting pipe (27) for connecting the third through hole (26) and the bottom end of the filter tube (22) is provided on the rotating disk (20).
7. The integrated riverbed mud treatment device according to claim 2 is characterized in that: The lifting member comprises a driven wheel (28) movably sleeved with the outer wall of the suction pipe (7); the outer wall of the suction pipe (7) is provided with a thread groove (29) threadedly connected with the inner wall of the driven wheel (28); a connecting pipe (30) is fixedly connected in the device box (2); the suction pipe (7) is movably sleeved with the outer wall of the connecting pipe (30); one end of the connecting pipe (30) is connected to the device box (2); and a driving member for driving the driven wheels (28) on both sides to rotate synchronously is provided in the device box (2).
8. The integrated riverbed mud treatment device according to claim 7 is characterized in that: The driving member comprises a second motor (31) fixedly mounted in the device box (2); an output end of the second motor (31) is coaxially fixedly connected to a driving wheel (32); an outer wall of the driving wheel (32) is drivingly connected to a driving belt (33) drivingly connected to the outer walls of the driven wheels (28) on both sides.
9. The integrated riverbed mud treatment device according to claim 1, characterized in that: The moving mechanism further comprises two groups of floating plates (34) fixedly mounted on the bottom of the support frame (1).
10. The integrated riverbed mud treatment device according to claim 9, characterized in that: The bottom of the floating board (34) is rotatably connected to a plurality of groups of rollers (35).