Drag reduction device for cemented filling slurry conveying pipeline

The slurry viscosity is reduced through the screw conveying assembly and heating ring, combined with the gas emission and vibration device, and the low conveying efficiency and blockage caused by the large friction between the slurry and the pipe wall is solved, and the stable and rapid conveying of the slurry is achieved.

CN119774200BActive Publication Date: 2025-08-08BACKFILL ENGINEERING LABORATORY SHANDONG GOLD MINING TECHNOLOGY CO LTD +1
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Patent Information

Application Number
CN202510272682.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-10
Publication Date
2025-08-08
Estimated Expiration
2045-03-10

AI Technical Summary

Technical Problem

In the existing cemented filling slurry conveying pipeline, the friction between the slurry and the inner wall of the pipeline is high, resulting in low conveying efficiency and easy blockage. The existing water injection method affects the slurry performance and cannot effectively reduce friction and extend the conveying distance.

Method used

The screw conveying assembly and heating ring are used to reduce the viscosity of the slurry, the screw conveying blades are used to promote the slurry and transfer heat through the heating ring. Combined with gas emission and vibration devices, the friction between the slurry and the pipe wall is reduced, and the slurry flows evenly.

Benefits of technology

Effectively reduce the friction between the slurry and the pipe wall, improve the conveying efficiency, prevent blockage, ensure the stable flow of the slurry in the pipeline, and enhance the drag reduction effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a drag reduction device for a cementitious filling slurry conveying pipeline, and relates to the technical field of pipeline drag reduction. It comprises a conveying pipe and a drag reduction bracket, wherein the drag reduction bracket is fixedly mounted on the top end of the conveying pipe, the side end face of the conveying pipe is fixedly connected to two material distribution inlet pipes, and a spiral conveying assembly is provided inside the conveying pipe; a drag reduction assembly is provided on the conveying pipe, and the slurry entering the conveying pipe is kept in a uniform flow state by the drag reduction assembly, and the spiral conveying assembly comprises a driving motor fixedly mounted on the drag reduction bracket, a driving shaft fixedly mounted on the output end of the driving motor, a spiral conveying blade fixedly mounted on the driving shaft, and the end of the driving shaft away from the driving motor extends to the interior of the conveying pipe. This invention, through the coordinated use of the spiral conveying assembly and the drag reduction assembly, improves the fluidity of the slurry in the conveying pipe while reducing the friction and resistance between the slurry and the inner wall of the conveying pipe during the conveying process.
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Description

Technical Field

[0001] The invention relates to the technical field of pipeline drag reduction, in particular to a drag reduction device for a cementing filling slurry conveying pipeline. Background Art

[0002] Cemented filling slurry is a crucial process material in gold mining, often used to backfill and support underground spaces during mining, particularly in abandoned spaces created during the mining process. It is prepared by mixing fine aggregate with cement or other binder materials to create a cohesive, fluid, and strong slurry. This slurry is then used to fill voids or unmined areas after mining.

[0003] In the prior art, a Chinese patent with the authorization announcement number CN111981235B discloses a drag reduction device for a cemented filling slurry conveying pipeline. When the filling slurry flows through the tapered section of the feed pipeline, the filling slurry forms a full pipe flow, while gradually shrinking and increasing the pressure. When the filling slurry enters the discharge pipeline, the space between the filling slurry and the inner wall of the discharge pipeline is filled with an annular water film; that is, the annular water film covers the inner wall of the discharge pipeline, and the filling slurry does not contact the inner wall of the pipeline and is wrapped by the annular water film; thereafter, the annular water film wraps the cemented filling slurry and continues to be conveyed to the downstream pipeline by gravity until the annular water film gradually disappears. Therefore, during the existence of the annular water film, the friction coefficient between the filling slurry and the pipe wall is reduced, the conveying resistance of the filling slurry is reduced, the conveying distance of the filling slurry is extended, and the wear of the pipeline is reduced, solving the problem of high friction between the slurry and the inner wall of the pipeline in the existing conveying pipeline, which leads to low conveying efficiency of the conveying pipeline.

[0004] When the existing conveying pipeline is transporting slurry, the friction between the slurry and the inner wall of the pipeline is large, which can easily cause the slurry to be blocked in the pipeline and cause pipeline damage. The current method is to inject water to increase the fluidity of the slurry to reduce the friction between the slurry and the inner wall of the pipeline. However, in this method, since the slurry needs to be filled in the holes, the performance of the slurry needs to be guaranteed. Excessive water injection will cause the performance of the slurry to decline, and the holes will not be filled. Summary of the Invention

[0005] In view of the deficiencies of the prior art, the present invention provides a drag reducing device for a cemented filling slurry conveying pipeline, which solves the problems mentioned in the above background technology.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions:

[0007] The drag reduction device for the cementing filling slurry conveying pipeline includes a conveying pipe and a drag reduction bracket. The drag reduction bracket is fixedly installed on the top of the conveying pipe. The side end surface of the conveying pipe is fixedly connected to two material distribution inlet pipes. A spiral conveying component is provided inside the conveying pipe.

[0008] The conveying pipe is provided with a drag reducing component, which enables the slurry entering the conveying pipe to be in a uniform flow state;

[0009] The spiral conveying assembly includes a driving motor fixedly mounted on a drag reduction bracket, a driving shaft fixedly mounted on the output end of the driving motor, a spiral conveying blade fixedly mounted on the driving shaft, the driving shaft extends to the interior of the conveying pipe at one end away from the driving motor, and the spiral conveying blade is located inside the conveying pipe and below the outlets of the two material distribution inlet pipes.

[0010] Preferably, symmetrically arranged heating rings are fixedly installed inside the conveying pipe and below the spiral conveying blades, and a heating rod is fixedly installed between the two heating rings. There are multiple heating rods, which are arranged in a ring shape between the two heating rings. The heating rings and heating rods are both in contact with the inside of the conveying pipe.

[0011] Preferably, the drag reduction assembly includes a positioning plate fixedly mounted on the drag reduction bracket, a bearing fixedly mounted on the positioning plate, an auxiliary shaft fixedly mounted on the bearing, a small transmission wheel fixedly mounted on the top end of the auxiliary shaft, a push blade fixedly mounted on the side end face of the auxiliary shaft, and a large transmission wheel fixedly mounted on the drive shaft.

[0012] Preferably, the bottom end of the auxiliary shaft passes through the material distribution inlet pipe and is located below the material distribution inlet pipe, the pushing blade is located inside the material distribution inlet pipe, and the small transmission wheel and the large transmission wheel are driven by a belt.

[0013] Preferably, a reciprocating screw is fixedly installed on the driving shaft and above the large transmission wheel, a movable block is movably installed on the reciprocating screw, a crescent pin is movably installed on the movable block, a limiting block is fixedly installed on the side end face of the movable block, and a limiting groove is provided on the inner side surface of the drag reduction bracket for use with the limiting block.

[0014] Preferably, an air outlet pipe is fixedly installed on the inner bottom of the drag reduction bracket, a push rod is movably installed on the air outlet pipe, the air outlet of the air outlet pipe is fixedly connected to a connecting pipe, the end of the connecting pipe away from the air outlet pipe is fixedly connected to an annular pipe, the annular pipe is fixedly connected to an exhaust pipe, and a one-way valve is provided on the exhaust pipe.

[0015] Preferably, one end of the push rod away from the exhaust pipe is fixedly connected to the lower end surface of the limit block, and there are multiple exhaust pipes, and the multiple exhaust pipes are set to different lengths.

[0016] Preferably, a rotating disk is fixedly installed on the bottom end of the auxiliary shaft, a positioning shaft is fixedly installed on the lower end surface of the rotating disk, a driving rod is rotatably installed on the positioning shaft, a U-shaped frame is fixedly installed on the lower end surface of the material distribution inlet pipe, and a knocking rod is slidably installed inside the U-shaped frame.

[0017] Preferably, one end of the knocking rod is rotatably connected to the driving rod, and through the rotation of the rotating disk, the driving rod drives the knocking rod to move horizontally on the U-shaped frame, so that the knocking rod reciprocates and knocks the outer wall of the conveying pipe.

[0018] The present invention provides a drag reduction device for cemented filling slurry conveying pipelines. Compared with the prior art, it has the following advantages:

[0019] 1. The present invention drives the spiral conveying blades on the driving shaft to rotate by a driving motor, so that the slurry entering the conveying pipe is propelled by the spiral conveying blades. At the same time, the slurry is in a spiral state during the propelling process, which can effectively reduce the friction between the slurry and the inner wall of the conveying pipe. In addition, when the slurry flows in a spiral, the heat generated is transferred to the heating rod through the heating ring. The heat is transferred to the slurry through the heating rod, which can effectively reduce the viscosity of the slurry, ensure the flow effect of the slurry in the conveying pipe, greatly reduce the friction between the slurry and the inner wall of the pipe, and achieve a good drag reduction effect.

[0020] 2. In the present invention, when the driving shaft rotates, it drives the large transmission wheel to rotate, and the large transmission wheel drives the small transmission wheel on the auxiliary shaft to rotate through the belt. The rotation of the small transmission wheel drives the push blade on the auxiliary shaft to rotate. The rotation of the push blade quickly discharges the slurry in the material distribution inlet pipe into the conveying pipe, ensuring that the slurry can be quickly and evenly conveyed to the conveying pipe, avoiding the problem of slurry retention or agglomeration, and ensuring the continuous and stable flow of the slurry;

[0021] 3. In the present invention, when the drive shaft rotates, it drives the reciprocating screw to rotate. The movable block on the reciprocating screw will slide in the limiting groove through the rotation of the crescent pin and the limiting block, ensuring that the movable block can achieve reciprocating movement on the reciprocating screw. The limiting block on the movable block drives the piston on the push rod to reciprocate in the outlet pipe. The gas in the outlet pipe will be discharged into the annular pipe through the connecting pipe. The gas in the annular pipe will be discharged into the delivery pipe through exhaust pipes of different lengths. The gas is discharged into the slurry at different positions through the exhaust pipe. The effect of the gas is used to reduce the viscosity of the slurry and the friction between the slurry and the inner wall of the pipe, thereby greatly improving the drag reduction effect of the drag reduction device.

[0022] 4. In the present invention, when the auxiliary shaft rotates, the auxiliary shaft will synchronously drive the rotating disk to rotate, and the positioning shaft on the rotating disk will be used to drive the driving rod to rotate. The U-shaped frame limits the knocking rod, and the driving rod rotates around the rotating disk, thereby realizing the reciprocating horizontal movement of the knocking rod. The reciprocating movement of the knocking rod is used to complete the continuous knocking of the conveying pipe. The vibration force generated by the knocking is transmitted to the inner wall of the conveying pipe, thereby improving the fluidity of the slurry in the conveying pipe and enhancing the drag reduction effect of the drag reduction device. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0024] Figure 2 It is a front cross-sectional view of the delivery pipe in the present invention;

[0025] Figure 3 is a side sectional view of the delivery pipe of the present invention;

[0026] Figure 4 Schematic diagram of the structure of the limit block in the present invention;

[0027] Figure 5 Schematic diagram of the structure of the annular tube in the present invention;

[0028] Figure 6 Schematic diagram of the structure of the drag reduction component of the present invention;

[0029] Figure 7 Schematic diagram of the structure of the knocking rod in the present invention;

[0030] Figure 8 It is a structural schematic diagram of the heating ring in the present invention.

[0031] In the figure: 1. Conveying pipe; 2. Drag reduction bracket; 3. Material feeding pipe; 4. Driving motor; 5. Driving shaft; 6. Spiral conveying blade; 7. Heating ring; 8. Heating rod; 9. Positioning plate; 10. Bearing; 11. Auxiliary shaft; 12. Small transmission wheel; 13. Pushing blade; 14. Large transmission wheel; 15. Reciprocating screw; 16. Movable block; 17. Crescent pin; 18. Limit block; 19. Limit groove; 20. Exhaust pipe; 21. Push rod; 22. Connecting pipe; 23. Annular pipe; 24. Exhaust pipe; 25. One-way valve; 26. Rotating disk; 27. Positioning shaft; 28. Drive rod; 29. U-shaped frame; 30. Knocking rod. DETAILED DESCRIPTION

[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 making creative efforts are within the scope of protection of the present invention.

[0033] See also Figures 1-8 The drag reduction device of the cementing filling slurry conveying pipeline of the present invention comprises a conveying pipe 1 and a drag reduction bracket 2. The drag reduction bracket 2 is fixedly mounted on the top end of the conveying pipe 1. The side end face of the conveying pipe 1 is fixedly connected to two material distribution inlet pipes 3. A spiral conveying assembly is provided inside the conveying pipe 1. The spiral conveying assembly comprises a driving motor 4 fixedly mounted on the drag reduction bracket 2. A driving shaft 5 is fixedly mounted on the output end of the driving motor 4. A spiral conveying blade 6 is fixedly mounted on the driving shaft 5. The end of the driving shaft 5 away from the driving motor 4 extends to the inside of the conveying pipe 1. The spiral conveying blade 6 is inside the conveying pipe 1 and below the outlets of the two material distribution inlet pipes 3. A symmetrically arranged heating ring 7 is fixedly mounted inside the conveying pipe 1 and below the spiral conveying blade 6. A heating ring 7 is fixed between the two heating rings 7. A heating rod 8 is installed. There are multiple heating rods 8, which are arranged in a ring between two heating rings 7. The heating ring 7 and the heating rod 8 are both in contact with the inside of the conveying pipe 1, wherein the heating ring 7 and the heating rod 8 are in contact with the inner wall of the conveying pipe 1 to ensure that the slurry in the conveying pipe 1 will not be blocked by the heating ring 7 and the heating rod 8, so as to avoid affecting the normal conveying of the slurry. The power supply of the heating ring 7 can be installed on the surface of the conveying pipe 1. Since this technology is well known to people in this field, it will not be described in detail here. In the process of heating the slurry, the slurry is heated slowly, and the heating temperature is within the heat resistance range of the slurry. The principle of the heating ring 7 is to use electric heating. People use the principle of the temperature controller in the existing technology to complete the control of the slurry heating temperature.

[0034] In the present invention, the spiral conveying blades 6 on the driving shaft 5 are driven to rotate by the driving motor 4, so that the slurry entering the conveying pipe 1 is pushed by the spiral conveying blades 6. At the same time, the slurry is in a spiral state during the process of being pushed, which can effectively reduce the friction between the slurry and the inner wall of the conveying pipe 1. When the slurry flows in a spiral, the heat generated is transferred to the heating rod 8 through the heating ring 7. The heat is transferred to the slurry through the heating rod 8, which can effectively reduce the viscosity of the slurry, ensure the flow effect of the slurry in the conveying pipe 1, greatly reduce the friction between the slurry and the inner wall of the pipe, and achieve a good drag reduction effect.

[0035] The conveying pipe 1 is provided with a drag reduction component, which makes the slurry entering the conveying pipe 1 in a state of uniform flow. The drag reduction component includes a positioning plate 9 fixedly mounted on the drag reduction bracket 2, a bearing 10 fixedly mounted on the positioning plate 9, an auxiliary shaft 11 fixedly mounted on the bearing 10, a small transmission wheel 12 fixedly mounted on the top of the auxiliary shaft 11, a pushing blade 13 fixedly mounted on the side end face of the auxiliary shaft 11, a large transmission wheel 14 fixedly mounted on the driving shaft 5, the bottom end of the auxiliary shaft 11 passes through the material distribution inlet pipe 3 and is located below the material distribution inlet pipe 3, the pushing blade 13 is located inside the material distribution inlet pipe 3, the small transmission wheel 12 and the large transmission wheel 14 are driven by a belt, wherein the friction between the small transmission wheel 12, the large transmission wheel 14 and the belt is large, and the size of the small transmission wheel 12 is smaller than that of the large transmission wheel 14. When the large transmission wheel 14 rotates one circle, the small transmission wheel 12 rotates multiple circles.

[0036] In the present invention, when the drive shaft 5 rotates, the large transmission wheel 14 will be driven to rotate, and the large transmission wheel 14 will drive the small transmission wheel 12 on the auxiliary shaft 11 to rotate through the belt drive, and the rotation of the small transmission wheel 12 drives the push blade 13 on the auxiliary shaft 11 to rotate. By utilizing the rotation of the push blade 13, the slurry in the material distribution inlet pipe 3 is quickly discharged into the conveying pipe 1, ensuring that the slurry can be quickly and evenly conveyed to the conveying pipe 1, avoiding the problem of slurry retention or agglomeration, and ensuring the continuous and stable flow of the slurry.

[0037] A reciprocating screw 15 is fixedly installed on the driving shaft 5 and above the large transmission wheel 14, and a movable block 16 is movably installed on the reciprocating screw 15, and a crescent pin 17 is movably installed on the movable block 16. A limit block 18 is fixedly installed on the side end face of the movable block 16, and a limit groove 19 is provided on the inner side face of the drag reduction bracket 2 for use with the limit block 18. The limit block 18 is slidably connected to the limit groove 19, wherein the shape of the limit block 18 is set to be T-shaped, and an air outlet pipe 20 is fixedly installed on the inner bottom of the drag reduction bracket 2, and a push rod 21 is movably installed on the air outlet pipe 20. The air outlet of the air outlet pipe 20 is fixedly connected to a connecting pipe 22, and the connecting pipe 22 is away from the outlet One end of the air pipe 20 is fixedly connected to a ring-shaped tube 23, and the ring-shaped tube 23 is fixedly connected to an exhaust pipe 24, and a one-way valve 25 is provided on the exhaust pipe 24. The push rod 21 is fixedly connected to the lower end face of the limit block 18 at one end away from the air outlet pipe 20. There are multiple exhaust pipes 24, and the multiple exhaust pipes 24 are set to different lengths. The air outlet pipe 20 is fixedly connected to a ventilation pipe, and a valve is provided on the ventilation pipe. A piston is fixedly installed at one end of the push rod 21 away from the limit block 18. The structure of the air outlet pipe 20 is the same as that of the air pump in the prior art. Since this technology is well known to people in this field, it will not be described in detail here.

[0038] In the present invention, when the driving shaft 5 rotates, the reciprocating screw 15 will be driven to rotate. The movable block 16 on the reciprocating screw 15 will slide in the limiting groove 19 through the rotation of the crescent pin 17 and the limiting block 18, ensuring that the movable block 16 can achieve reciprocating movement on the reciprocating screw 15. The limiting block 18 on the movable block 16 drives the piston on the push rod 21 to reciprocate in the outlet pipe 20. The gas in the outlet pipe 20 will be discharged into the annular pipe 23 through the connecting pipe 22. The gas in the annular pipe 23 will be discharged into the conveying pipe 1 through exhaust pipes 24 of different lengths. The gas is discharged into the slurry at different positions through the exhaust pipe 24. The effect of the gas is used to reduce the viscosity of the slurry, reduce the friction between the slurry and the inner wall of the pipeline, and greatly improve the drag reduction effect of the drag reduction device.

[0039] A rotating disk 26 is fixedly installed on the bottom end of the auxiliary shaft 11, and a positioning shaft 27 is fixedly installed on the lower end surface of the rotating disk 26. A driving rod 28 is rotatably installed on the positioning shaft 27. A U-shaped frame 29 is fixedly installed on the lower end surface of the material feeding pipe 3. A knocking rod 30 is slidably installed inside the U-shaped frame 29. One end of the knocking rod 30 is rotatably connected to the driving rod 28. Through the rotation of the rotating disk 26, the driving rod 28 is used to drive the knocking rod 30 to move horizontally on the U-shaped frame 29, so that the knocking rod 30 reciprocates and knocks the outer wall of the conveying pipe 1, wherein the positioning shaft 27 on the rotating disk 26 rotates with the auxiliary shaft 11 as the center.

[0040] In the present invention, when the auxiliary shaft 11 rotates, the auxiliary shaft 11 will synchronously drive the rotating disk 26 to rotate, and the positioning shaft 27 on the rotating disk 26 will drive the driving rod 28 to rotate. The U-shaped frame 29 limits the knocking rod 30, and the driving rod 28 rotates around the rotating disk 26, thereby realizing the reciprocating horizontal movement of the knocking rod 30. The reciprocating movement of the knocking rod 30 is used to complete the continuous knocking of the conveying pipe 1. The vibration force generated by the knocking is transmitted to the inner wall of the conveying pipe 1, thereby improving the fluidity of the slurry in the conveying pipe 1 and enhancing the drag reduction effect of the drag reduction device.

[0041] Working principle: When in use, the slurry is discharged into the conveying pipe 1 through the material distribution inlet pipe 3. During the conveying process of the slurry in the conveying pipe 1, the spiral conveying blade 6 on the driving shaft 5 is driven by the driving motor 4 to rotate, so that the slurry entering the conveying pipe 1 is pushed by the spiral conveying blade 6. At the same time, the slurry is in a spiral state during the pushing process, which can effectively reduce the friction between the slurry and the inner wall of the conveying pipe 1, and when the slurry flows in a spiral, the heat generated is transferred to the heating rod 8 through the heating ring 7. The heat is transferred to the slurry through the heating rod 8, which can effectively reduce the viscosity of the slurry. When the driving shaft 5 rotates, it will drive the large transmission wheel 14 to rotate, and the large transmission wheel 14 will drive the small transmission wheel 12 on the auxiliary shaft 11 to rotate through the belt drive. The rotation of the small transmission wheel 12 drives the pushing blade 13 on the auxiliary shaft 11 to rotate. The rotation of the pushing blade 13 will quickly discharge the slurry in the material distribution inlet pipe 3 into the conveying pipe 1, ensuring that the slurry can be quickly and evenly conveyed to the conveying pipe 1.

[0042] When the drive shaft 5 rotates, the reciprocating screw 15 is driven to rotate, and the movable block 16 on the reciprocating screw 15 will slide in the limiting groove 19 through the rotation of the crescent pin 17 and the limiting block 18, ensuring that the movable block 16 can achieve reciprocating movement on the reciprocating screw 15. The limiting block 18 on the movable block 16 drives the piston on the push rod 21 to reciprocate in the outlet pipe 20. The gas in the outlet pipe 20 will be discharged into the annular pipe 23 through the connecting pipe 22. The gas in the annular pipe 23 will be discharged into the delivery pipe 1 through exhaust pipes 24 of different lengths. The gas is discharged into the slurry at different positions through the exhaust pipe 24, and the viscosity of the slurry is reduced by the action of the gas, thereby reducing the friction between the slurry and the inner wall of the pipeline.

[0043] When the auxiliary shaft 11 rotates, the auxiliary shaft 11 will synchronously drive the rotating disk 26 to rotate, and the positioning shaft 27 on the rotating disk 26 will drive the driving rod 28 to rotate. The U-shaped frame 29 limits the knocking rod 30, and the driving rod 28 rotates around the rotating disk 26, thereby realizing the reciprocating horizontal movement of the knocking rod 30. The reciprocating movement of the knocking rod 30 is used to complete the continuous knocking of the conveying pipe 1, and the vibration force generated by the knocking is transmitted to the inner wall of the conveying pipe 1, thereby improving the fluidity of the slurry in the conveying pipe 1.

[0044] While the embodiments of the present invention have been shown and described, it will be apparent to those skilled in the art that various changes, modifications, substitutions, and alterations can be made to the embodiments without departing from the principles and spirit of the invention.

Claims

1. A drag reduction device for a cemented filling slurry conveying pipeline, comprising a conveying pipe (1) and a drag reduction bracket (2), characterized in that: The drag reduction bracket (2) is fixedly mounted on the top end of the delivery pipe (1); the side end surface of the delivery pipe (1) is fixedly connected to two material distribution inlet pipes (3); and a spiral delivery assembly is provided inside the delivery pipe (1); The delivery pipe (1) is provided with a drag reduction component, and the drag reduction component enables the slurry entering the delivery pipe (1) to be in a uniform flow state; The spiral conveying assembly comprises a driving motor (4) fixedly mounted on a drag reduction bracket (2); a driving shaft (5) is fixedly mounted on the output end of the driving motor (4); a spiral conveying blade (6) is fixedly mounted on the driving shaft (5); an end of the driving shaft (5) away from the driving motor (4) extends to the interior of the conveying pipe (1); the spiral conveying blade (6) is located inside the conveying pipe (1) and below the outlets of the two material distribution inlet pipes (3); The drag reduction assembly comprises a positioning plate (9) fixedly mounted on the drag reduction bracket (2), a bearing (10) fixedly mounted on the positioning plate (9), an auxiliary shaft (11) fixedly mounted on the bearing (10), a small transmission wheel (12) fixedly mounted on the top end of the auxiliary shaft (11), a push blade (13) fixedly mounted on the side end face of the auxiliary shaft (11), a large transmission wheel (14) fixedly mounted on the drive shaft (5), a reciprocating screw (15) fixedly mounted on the drive shaft (5) and above the large transmission wheel (14), a movable block (16) movably mounted on the reciprocating screw (15), a crescent pin (17) movably mounted on the movable block (16), a limit block (16) fixedly mounted on the side end face of the movable block (16), and a plurality of movable blocks (17) fixedly mounted on the side end face of the movable block (16). 8), the inner side surface of the drag reduction bracket (2) is provided with a limiting groove (19) for use with the limiting block (18), the inner bottom of the drag reduction bracket (2) is fixedly installed with an air outlet pipe (20), the air outlet pipe (20) is movably installed with a push rod (21), the air outlet of the air outlet pipe (20) is fixedly connected with a connecting pipe (22), the end of the connecting pipe (22) away from the air outlet pipe (20) is fixedly connected with an annular pipe (23), the annular pipe (23) is fixedly connected with an exhaust pipe (24), a one-way valve (25) is provided on the exhaust pipe (24), the bottom end of the auxiliary shaft (11) passes through the material distribution inlet pipe (3) and is located below the material distribution inlet pipe (3), and the push blade (13) is located inside the material distribution inlet pipe (3); A rotating disk (26) is fixedly mounted on the bottom end of the auxiliary shaft (11), a positioning shaft (27) is fixedly mounted on the lower end surface of the rotating disk (26), a driving rod (28) is rotatably mounted on the positioning shaft (27), a U-shaped frame (29) is fixedly mounted on the lower end surface of the material distribution inlet pipe (3), and a knocking rod (30) is slidably mounted inside the U-shaped frame (29).

2. The drag reducing device for cemented filling slurry conveying pipeline according to claim 1, characterized in that: A symmetrically arranged heating ring (7) is fixedly installed inside the conveying pipe (1) and below the spiral conveying blade (6), and a heating rod (8) is fixedly installed between the two heating rings (7). The number of the heating rods (8) is multiple and they are arranged in a ring shape between the two heating rings (7). The heating rings (7) and the heating rods (8) are both in contact with the inside of the conveying pipe (1).

3. The drag reducing device for cemented filling slurry conveying pipeline according to claim 1, characterized in that: The small transmission wheel (12) and the large transmission wheel (14) are driven by a belt.

4. The drag reducing device for cemented filling slurry conveying pipeline according to claim 1, characterized in that: One end of the push rod (21) away from the exhaust pipe (20) is fixedly connected to the lower end surface of the limit block (18). There are multiple exhaust pipes (24), and the multiple exhaust pipes (24) are set to different lengths.

5. The drag reducing device for cementitious filling slurry conveying pipeline according to claim 1, characterized in that: One end of the knocking rod (30) is rotatably connected to the driving rod (28). By rotating the rotating disk (26), the driving rod (28) drives the knocking rod (30) to move horizontally on the U-shaped frame (29), so that the knocking rod (30) reciprocates and knocks the outer wall of the conveying pipe (1).

Citation Information

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