Assistant positioning guide frame for pile sinking of water pipe pile

By using an auxiliary positioning guide frame for driving precast concrete pipe piles on water, the problems of positional offset and verticality deviation during the driving of precast concrete pipe piles on water were solved by using pontoons and positioning components, achieving stable positioning and adaptive adjustment.

CN223738588UActive Publication Date: 2025-12-30CHINESE PEOPLES ARMED POLICE FORCE JIANGXI HYDRO POWER NO 2 GENERAL GRP
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Patent Information

Application Number
CN202422845182.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-21
Publication Date
2025-12-30
Estimated Expiration
2034-11-21

AI Technical Summary

Technical Problem

During traditional underwater precast concrete pipe pile driving construction, the horizontal position deviation and verticality deviation are easily caused by the undulation of the water surface.

Method used

A guide frame for auxiliary positioning of underwater pipe piles is adopted, including a buoy, connecting channel steel and positioning components. The pipe pile is positioned by the positioning part and the sliding part, and the stability is improved by the locking component and the suspension component, which can adapt to pipe piles of different sizes.

Benefits of technology

It effectively prevents horizontal position deviation and verticality deviation during pile driving, improves positioning stability, avoids half-cylinder separation and expansion rod breakage, and adapts to different size requirements.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an auxiliary positioning guide frame for water pipe pile sinking, and relates to the field of water pipe pile sinking. The device comprises two buoys, the two buoys are fixed through connecting channel steel, a fixing assembly is arranged between the two buoys, the fixing assembly comprises a connecting plate and a pile guiding cylinder, the connecting plate is fixed between the two buoys, the pile guiding cylinder is fixed to the connecting plate and penetrates through the connecting plate, and the connecting plate is fixed to the connecting plate. And a positioning assembly for positioning the pipe pile is arranged on the buoy. The device has the effect that the conditions of horizontal position deviation and perpendicularity deviation of the pipe pile are not prone to occurring.
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Description

TECHNICAL FIELD

[0001] The application relates to the field of water pipe pile sinking, in particular to an auxiliary positioning and guiding frame for water pipe pile sinking. BACKGROUND

[0002] Solar energy refers to the thermal radiation energy of the sun, mainly the commonly said sunlight, and the solar energy is a renewable energy.

[0003] With the continuous development of society, the application of the conversion of solar energy into electric energy is more and more extensive. In many areas, water photovoltaic power generation panels are used, and the water photovoltaic power generation panels usually use prefabricated concrete pipe piles as the foundation.

[0004] However, in the traditional water prefabricated concrete pipe pile sinking construction, with the undulating water surface, the piling ship will shake and cause the pipe pile to easily deviate in the horizontal position and the verticality deviation in the sinking process. CONTENT OF THE INVENTION

[0005] In order to improve the problem that the pipe pile easily deviates in the horizontal position and the verticality deviation in the sinking process, the application provides an auxiliary positioning and guiding frame for water pipe pile sinking.

[0006] The application provides an auxiliary positioning and guiding frame for water pipe pile sinking, which adopts the following technical scheme:

[0007] An auxiliary positioning and guiding frame for water pipe pile sinking comprises two floating buoys, the two floating buoys are fixed through a connecting channel steel, a fixing assembly is arranged between the two floating buoys, the fixing assembly comprises a connecting plate and a pile guiding cylinder, the connecting plate is fixed between the two floating buoys, the pile guiding cylinder is fixed on the connecting plate and penetrates the connecting plate, and a positioning assembly for positioning the pipe pile is arranged on the floating buoys.

[0008] By adopting the above technical scheme, the positioning assembly can position the pipe pile when the pipe pile is sinking, so that the pipe pile is not prone to deviate in the horizontal position and the verticality deviation when the pipe pile is sinking.

[0009] Optionally, the positioning assembly comprises a positioning part and a sliding part, the sliding part is arranged on the floating buoys, the positioning part comprises a sleeve, an extension rod and a half cylinder, one end of the extension rod is slidably arranged in the sleeve, the other end of the extension rod is fixed with the half cylinder, and a first locking assembly is arranged between the extension rod and the sleeve.

[0010] By adopting the technical scheme, when the pipe pile is sunk, the two half cylinders are pushed to be close to each other until the two half cylinders abut against each other to form a complete cylinder; when the pipe pile is sunk, the pipe pile can pass between the two half cylinders to position the pipe pile, so that the pipe pile is not prone to horizontal position deviation and verticality deviation.

[0011] Optionally, the sliding part comprises a sliding block and a fixed strip, the fixed strip is fixed to the buoy, a sliding groove is formed in the fixed strip, the sliding block is slidingly arranged in the sliding groove, the sleeve is fixed to the sliding block, equidistantly a plurality of mounting holes are formed in the inner wall of the sliding groove, and a second locking assembly is arranged in the mounting hole.

[0012] By adopting the technical scheme, after the sinking of a single pipe pile is completed, the two half cylinders are separated, and then the sliding block is moved to the position of the next pipe pile sinking, so that the half cylinders do not need to be lifted and moved.

[0013] Optionally, the first locking assembly comprises a first pull rope, a first locking rod and a first push spring, the inner wall of the sleeve is provided with a mounting hole, the telescopic rod is provided with a locking hole, the first locking rod is arranged in the mounting hole, the first push spring is fixed between the first locking rod and the bottom of the mounting hole, one end of the first pull rope is fixed to the first locking rod and the other end of the first pull rope extends outward through the sleeve.

[0014] By adopting the technical scheme, after the two half cylinders abut against each other, the first locking rod is automatically inserted into the locking hole by the pushing of the first push spring to lock the telescopic rod, so that the two half cylinders are not prone to separation after splicing, thereby improving the stability of the pipe pile positioning.

[0015] Optionally, the second locking assembly comprises a second pull rope, a second locking rod and a second push spring, the sliding block is provided with a fixing hole, one end of each of the second locking rods is arranged in the mounting hole and the other end of each of the second locking rods is arranged in the fixing hole, one end of each of the remaining second locking rods is arranged in the mounting hole and the other end of each of the remaining second locking rods extends out of the mounting hole, the second push spring is fixed between the second locking rod and the bottom of the mounting hole, one end of the second pull rope is fixed to the second locking rod and the other end of the second pull rope extends outward through the fixed strip.

[0016] By adopting the technical scheme, the second locking rod is automatically inserted into the fixing hole by the elastic force of the second push spring to lock the sliding block, so that the sliding block is not prone to sliding in the sliding groove at will.

[0017] Optionally, a suspension assembly is arranged between the sleeve and the telescopic rod, and the suspension assembly comprises a bearing rod, a winding rod, a coil spring and a suspension belt, the bearing rod is fixed to the sleeve, a containing groove is formed in the bearing rod, a containing hole is formed in the inner wall of the containing groove, the winding rod is rotatably arranged in the containing hole, the coil spring is sleeved on the winding rod and one end of the coil spring is fixed to the winding rod and the other end is fixed to the inner wall of the containing hole, and one end of the suspension belt is wound on the winding rod and the other end is fixed to the telescopic rod.

[0018] By adopting the above technical scheme, after the two half barrels are spliced, the suspension belt can suspend and pull the telescopic rod, so that the telescopic rod is not easy to break due to the excessive weight of the half barrel.

[0019] Optionally, a screw rod is fixedly arranged at the end of the telescopic rod away from the sleeve, a threaded hole is formed in the half barrel, and the screw rod is screw-connected in the threaded hole.

[0020] By adopting the above technical scheme, if the diameter of the pipe pile changes, the half barrel can be unscrewed from the screw rod to replace the half barrel, so as to adapt to pipe piles of different sizes.

[0021] Optionally, a plurality of placing grooves are formed in the inner bottom wall of the chute, a ball is arranged in each placing groove, and the ball abuts against the sliding block.

[0022] By adopting the above technical scheme, the ball can reduce the frictional force suffered by the sliding block when sliding, so as to more conveniently push and slide the sliding block.

[0023] In summary, the present application has at least one of the following beneficial effects:

[0024] 1. When the pipe pile is sunk, the positioning assembly can position the pipe pile, so that when the pipe pile is sunk, the horizontal position deviation and the verticality deviation are not easy to occur.

[0025] 2. After the two half barrels abut against each other, the first locking rod is automatically inserted into the locking hole by the pushing of the first pushing spring to lock the telescopic rod, so that after the two half barrels are spliced, the two half barrels are not easy to separate, so as to improve the stability of positioning the pipe pile.

[0026] 3. After the two half barrels are spliced, the suspension belt can suspend and pull the telescopic rod, so that the telescopic rod is not easy to break due to the excessive weight of the half barrel. BRIEF DESCRIPTION OF DRAWINGS

[0027] Figure 1 is a structural schematic view according to an embodiment of the present application;

[0028] Figure 2 is Figure 1 a schematic top view.

[0029] Figure 3 is a schematic sectional view taken along the section line A-A in Figure 2 ;

[0030] Figure 4 is a schematic partial enlarged view of the B part in Figure 1 ;

[0031] Figure 5 is a schematic partial enlarged view of the C part in Figure 3 ;

[0032] Figure 6 is a schematic partial enlarged view of the D part in Figure 3 .

[0033] In the figure: 1, buoy; 11, connecting channel steel; 2, fixed assembly; 21, connecting plate; 22, guide pile cylinder; 3, positioning part; 31, sleeve; 311, installation hole; 32, telescopic rod; 321, screw rod; 322, locking hole; 33, half cylinder; 331, threaded hole; 4, sliding part; 41, sliding block; 411, fixed hole; 42, fixed strip; 421, sliding groove; 4211, placement groove; 4212, ball; 422, mounting hole; 5, first locking assembly; 51, first pull rope; 52, first locking rod; 53, first push spring; 6, second locking assembly; 61, second pull rope; 62, second locking rod; 63, second push spring; 7, suspension assembly; 71, bearing rod; 711, accommodating groove; 712, accommodating hole; 72, winding rod; 73, winding spring; 74, suspension belt. DETAILED DESCRIPTION

[0034] The embodiment of the present application provides a water pipe pile sinking auxiliary positioning guide frame

[0035] Referring to Figure 3 , a water pipe pile sinking auxiliary positioning guide frame can generally comprise two buoys 1, the two ends of the buoy 1 in the embodiment of the present application are closed, and the two buoys 1 are fixed through the connecting channel steel 11. The fixed assembly 2 is arranged between the two buoys 1, the fixed assembly 2 in the embodiment of the present application is provided with two groups, and the two groups of fixed assemblies 2 are respectively located at the two ends of the buoy 1 in the length direction.

[0036] Referring to Figure 1The fixed assembly 2 comprises a connecting plate 21 and a guide pile cylinder 22, the connecting plate 21 is fixed between the two floating buoys 1 and located at the top of the floating buoys 1. The guide pile cylinder 22 is fixed on the connecting plate 21 and penetrates the connecting plate 21, and the guide pile cylinder 22 is vertically arranged. Before the pipe pile is driven, the floating buoys 1 are first hoisted into the water, and then the two ends of the floating buoys 1 along the length direction are positioned by using GPS positioning; after the positioning is completed, the positioning pile is penetrated through the guide pile cylinder 22, and the pipe pile is driven, so that the floating buoys 1 are fixed, so that the floating buoys 1 are not easy to float randomly in the water.

[0037] Referring to Figure 1 and Figure 2 The floating buoys 1 are provided with a positioning assembly, and the positioning assembly comprises a positioning part 3 and a sliding part 4.

[0038] Referring to Figure 3 The sliding part 4 comprises a sliding block 41 and a fixed strip 42, the fixed strip 42 is fixed on the floating buoys 1 and arranged along the length direction of the floating buoys 1, and a sliding groove 421 is formed in the top wall of the fixed strip 42 and along the length direction, and the sliding groove 421 is in the shape of "T" in the embodiment of the application. The sliding block 41 is slidingly arranged in the sliding groove 421 and slides along the length direction of the sliding groove 421, and the positioning part 3 is arranged on the top wall of the sliding block 41. Before the pipe pile is driven, the pipe pile driving positions of each pipe pile are marked on the floating buoys 1, and then the sliding block 41 is pushed to move in the sliding groove 421, the sliding block 41 can drive the positioning part 3 to move, so that the positioning part 3 is moved to the corresponding marking position of the floating buoys 1, and the pipe pile is driven, without hoisting the positioning part 3 to adjust the position.

[0039] Referring to Figure 3 Further, a plurality of placing grooves 4211 are formed in the groove bottom of the sliding groove 421 and along the length direction of the sliding groove 421, and a plurality of rolling balls 4212 are arranged in the placing grooves 4211 and abut against the bottom wall of the sliding block 41, and the rolling balls 4212 can reduce the frictional force suffered by the sliding block 41 when sliding, so that the sliding block 41 is more convenient to push to slide.

[0040] Referring to Figure 3 The positioning part 3 comprises a sleeve 31, a telescopic rod 32 and a half cylinder 33, the sleeve 31 is fixed on the top wall of the sliding block 41 and horizontally arranged, one end of the telescopic rod 32 is slidingly arranged in the sleeve 31 and the other end is fixed with the half cylinder 33. When the pipe pile is driven, the two half cylinders 33 are pushed close until the two half cylinders 33 are spliced to form a complete cylinder, so that the pipe pile can pass through, thereby achieving the positioning effect of the pipe pile, so that the pipe pile is not easy to deviate in the horizontal position and the verticality deviation when the pipe pile is driven.

[0041] Referring to Figure 3Further, the telescopic rod 32 is fixedly provided with a screw rod 321 at one end away from the sleeve 31, and the half cylinder 33 is provided with a threaded hole 331 at one side close to the telescopic rod 32, and the screw rod 321 is screwed into the threaded hole 331. If the diameter of the pipe pile changes, the half cylinder 33 can be unscrewed from the screw rod 321, so that the half cylinder 33 can be replaced, thereby adapting to pipe piles of different sizes.

[0042] Referring to Figure 3 Further, a suspension assembly 7 is arranged between the sleeve 31 and the telescopic rod 32, and the suspension assembly 7 comprises a bearing rod, a winding rod 72, a winding spring 73 and a suspension belt 74. The bearing rod 71 is fixed to the top wall of the sleeve 31 and is vertically arranged. The bearing rod 71 is provided with a receiving groove 711 at one side close to the half cylinder 33, and the inner side wall of the receiving groove 711 is provided with a receiving hole 712. The winding rod 72 is located in the receiving groove 711, and the end of the winding rod 72 is rotatably installed in the receiving hole 712. One end of the suspension belt 74 is wound around the winding rod 72, and the other end is fixed to one end of the telescopic rod 32 close to the half cylinder 33. After the two half cylinders 33 are spliced, the suspension belt 74 can suspend and pull the telescopic rod 32, so that the telescopic rod 32 is not easy to break due to the excessive weight of the half cylinder 33.

[0043] Referring to Figure 4 The winding spring 73 is sleeved on one end of the winding rod 72 located in the receiving hole 712, and one end of the winding spring 73 is fixed to the winding rod 72 and the other end is fixed to the inner wall of the receiving hole 712. When the two half cylinders 33 are spliced, the suspension belt 74 is loosened and wound on the winding rod 72 to drive the winding rod 72 to rotate. In this process, the winding spring 73 is deformed to store energy. When the telescopic rod 32 is retracted into the sleeve 31, the winding spring 73 restores the deformation to drive the winding rod 72 to wind the suspension belt 74.

[0044] Referring to Figure 4 and Figure 3 Further, a first locking assembly 5 is arranged between the telescopic rod 32 and the sleeve 31, and the first locking assembly 5 comprises a first pull rope 51, a first locking rod 52 and a first push spring 53. The inner wall of the sleeve 31 is provided with a mounting hole 311, and the outer side wall of the telescopic rod 32 is provided with a locking hole 322 for inserting the first locking rod 52. One end of the first locking rod 52 is arranged in the mounting hole 311, and the other end abuts against the telescopic rod 32. One end of the first push spring 53 is fixed to the first locking rod 52, and the other end is fixed to the hole bottom of the mounting hole 311. The first push spring 53 is used to push the first locking rod 52 to extend out of the mounting hole 311. After the two half cylinders 33 abut against each other, the first locking rod 52 is automatically inserted into the locking hole 322 by the pushing of the first push spring 53 to lock the telescopic rod 32, so that the two half cylinders 33 are not easy to separate after being spliced, thereby improving the stability of positioning the pipe pile.

[0045] Referring toFigure 5 One end of the first pull rope 51 is fixed to the first locking rod 52 near the one end of the first push spring 53, and the other end of the first pull rope 51 extends outward through the sleeve 31. When it is necessary to retract the telescopic rod 32, the first pull rope 51 can be pulled to pull the first locking rod 52 back into the mounting hole 311, thereby releasing the locking of the telescopic rod 32, so that the telescopic rod 32 can be retracted to separate the two half barrels 33.

[0046] Referring to Figure 5 Further, a plurality of mounting holes 422 are equidistantly arranged on the inner side wall of the sliding groove 421 along the length direction of the sliding groove 421, and the distance between adjacent mounting holes 422 is the distance between the pile sinking positions of each pipe pile. A second locking assembly 6 is arranged in each mounting hole 422. The second locking assembly 6 comprises a second pull rope 61, a second locking rod 62, and a second push spring 63. The side of the sliding block 41 facing the mounting hole 422 is provided with a fixing hole 411 for inserting the second locking rod 62. One of the second locking rods 62 is arranged in the mounting hole 422 and the other end of the second locking rod 62 is arranged in the fixing hole 411. The other second locking rods 62 are arranged with one end in the mounting hole 422 and the other end extending out of the mounting hole 422. One end of the second push spring 63 is fixed to the second locking rod 62, and the other end of the second push spring 63 is fixed to the bottom of the mounting hole 422. The second push spring 63 is used to push the second locking rod 62 to extend out of the mounting hole 422.

[0047] Referring to Figure 6 Figure 6 One end of the second pull rope 61 is fixed to the second locking rod 62 near the one end of the second push spring 63, and the other end of the second pull rope 61 extends outward through the fixed strip 42. When it is necessary to move the half barrel 33, the second locking rod 62 can be pulled into the corresponding second pull rope 61 of the fixing hole 411, so that the second locking rod 62 is pulled back into the mounting hole 422, thereby releasing the locking of the sliding block 41, so as to facilitate the movement of the half barrel 33. When the sliding block 41 is about to move to the next mounting hole 422, the second locking rod 62 in the next mounting hole 422 is pulled into the mounting hole 422, and then the sliding block 41 is slid until the mounting hole 422 is aligned with the fixing hole 411, so that the second locking rod 62 in the next mounting hole 422 is automatically inserted into the fixing hole 411 by the elastic force of the second push spring 63, thereby locking the sliding block 41, so that the sliding block 41 is not easily randomly slid in the sliding groove 421.

[0048] The working principle of the water pipe pile sinking auxiliary positioning guide frame in use is as follows: when the pipe pile is sinking, the two half barrels 33 are pushed close until the two half barrels 33 are spliced to form a complete barrel, so that the pipe pile can pass through, thereby achieving the positioning effect of the pipe pile, so that the horizontal position deviation and verticality deviation do not easily occur when the pipe pile is sinking.

[0049] The above are all preferred embodiments of the present application, and do not limit the protection scope of the present application, so that: all equivalent changes made according to the structure, shape, principle of the present application should be covered in the protection scope of the present application.

Claims

1. An auxiliary positioning and guiding frame for pile driving of a water pipe pile, characterized in that, The utility model relates to a floating pier fixed with pipe pile, including: Two floating buoys (1) are fixed through connecting channel steel (11) between two floating buoys (1), and fixed assembly (2) is arranged between two floating buoys (1), the fixed assembly (2) includes: connecting plate (21) and guide pile cylinder (22), the connecting plate (21) is fixed between two floating buoys (1), the guide pile cylinder (22) is fixed on the connecting plate (21), and the guide pile cylinder (22) penetrates the connecting plate (21), and the floating pier (1) is provided with the positioning assembly for positioning pipe pile.

2. The pile driving guide of claim 1, wherein, The positioning assembly includes: positioning part (3) and sliding part (4), the sliding part (4) is arranged on the floating pier (1), the positioning part (3) includes: sleeve (31), telescopic rod (32) and half cylinder (33), the sleeve (31) is fixed on the sliding part (4), one end of the telescopic rod (32) is slidably arranged in the sleeve (31), the other end is fixed with the half cylinder (33), and the first locking assembly (5) is arranged between the telescopic rod (32) and the sleeve (31).

3. The pile driving guide of claim 2, wherein, The sliding part (4) includes: sliding block (41) and fixed strip (42), the fixed strip (42) is fixed on the floating pier (1), and the fixed strip (42) is provided with a sliding groove (421), the sliding block (41) is slidably arranged in the sliding groove (421), the sleeve (31) is fixed on the sliding block (41), the inner wall of the sliding groove (421) is equidistantly provided with a plurality of mounting holes (422), and the second locking assembly (6) is arranged in the mounting hole (422).

4. The pile driving guide of claim 3, wherein: The first locking assembly (5) includes: first pull rope (51), first locking rod (52) and first push spring (53), the inner wall of the sleeve (31) is provided with a mounting hole (311), the telescopic rod (32) is provided with a locking hole (322), the first locking rod (52) is arranged in the mounting hole (311), the first push spring (53) is fixed between the first locking rod (52) and the hole bottom of the mounting hole (311), one end of the first pull rope (51) is fixed with the first locking rod (52), and the other end penetrates the sleeve (31) and extends outward.

5. The above-water pipe pile driving aid positioning guide frame according to claim 3, characterized in that, The second locking assembly (6) includes: second pull rope (61), second locking rod (62) and second push spring (63), the sliding block (41) is provided with a fixed hole (411), one end of one of the second locking rod (62) is arranged in the mounting hole (422), the other end is arranged in the fixed hole (411), one end of the remaining second locking rod (62) is arranged in the mounting hole (422), and the other end extends out of the mounting hole (422), the second push spring (63) is fixed between the second locking rod (62) and the hole bottom of the mounting hole (422), one end of the second pull rope (61) is fixed with the second locking rod (62), and the other end penetrates the fixed strip (42) and extends outward.

6. The above-water pipe pile driving aid positioning guide frame according to claim 2, characterized in that, A suspension assembly (7) is arranged between the sleeve (31) and the telescopic rod (32), and the suspension assembly (7) comprises a bearing rod, a winding rod (72), a winding spring (73) and a suspension belt (74), the bearing rod is fixed on the sleeve (31), a containing groove (711) is formed on the bearing rod, a containing hole (712) is formed on the inner wall of the containing groove (711), the end of the winding rod (72) is rotatably installed in the containing hole (712), the winding spring (73) is sleeved on the winding rod (72) and one end of the winding spring (73) is fixed on the winding rod (72) and the other end is fixed on the inner wall of the containing hole (712), one end of the suspension belt (74) is wound on the winding rod (72) and the other end is fixed on the telescopic rod (32).

7. The pile driving guide of claim 2, wherein, A screw rod (321) is fixedly arranged on the end of the telescopic rod (32) away from the sleeve (31), a threaded hole (331) is formed on the half sleeve (33), and the screw rod (321) is screw-connected in the threaded hole (331).

8. The pile driving guide of claim 3, wherein, A plurality of placing grooves (4211) are formed on the inner bottom wall of the sliding groove (421), a ball (4212) is arranged in the placing groove (4211), and the ball (4212) abuts against the sliding block (41).