Foundation pile fixing device for constructional engineering
By designing a foundation pile fixing device containing multiple components, the problems of unstable fixing and inconvenient installation in the prior art are solved, and the precise positioning and efficient compaction of the foundation piles are achieved, and construction efficiency and safety are improved.
Patent Information
- Application Number
- CN202510541109.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2045-04-28
AI Technical Summary
The existing foundation pile fixing devices are not easy to carry, are inconvenient to install and disassemble, and are unable to accurately locate and consolidate the foundation piles, resulting in low construction efficiency and high safety risks.
A foundation pile fixing device including a transport vehicle body, a lifting assembly, an installation assembly, a fixing assembly, a guide assembly and a compacting assembly is designed. The gear set driven by hydraulic rods and stepper motors can accurately position and vertical fix the foundation piles; the compaction assembly adopts a compaction machine with adjustable weight, which is maintained by a wire rope to ensure the stability and safety of the compaction process.
It improves the stability and accuracy of the transportation, positioning, installation and compaction of foundation piles, reduces manpower and operation links, and improves construction efficiency and safety.
Smart Images

Figure CN120061341A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of pile fixing equipment, and specifically to a pile fixing device for construction engineering. Background Art
[0002] As an important part of the foundation structure in construction engineering, the main function of a pile is to bear and transfer the load of a building to the stable soil layer underground to ensure the stability and long-term use safety of the building. In the construction of foundation engineering, the stability and anti-overturning ability of piles directly affect the safety and durability of the entire project; in the existing pile construction method, a crane is often required to lift the pile to make it perpendicular to the ground, and then a large rammer is used to impact it to sink the pile into the soil. This method not only requires the cooperation of multiple large-scale instruments, which is extremely wasteful of manpower and material resources, but also the verticality of the pile cannot be guaranteed.
[0003] After retrieval, it is found that the prior art publication number is CN117144914A, which discloses a pile fixing device for construction engineering, including a base. Extension platforms are respectively fixedly installed at both ends of the base. A lifting drive is fixedly installed on the extension platform. Two chutes are opened on both sides of the upper surface of the base. For this pile fixing device for construction engineering, by providing a socket-type fixed limit structure outside the steel pipe, and the fixed limit structure is divided into two layers. After inserting the steel pipe into the fixed limit structure, a locking rod is screwed between two adjacent fixed limit structures to fix the distance between the two fixed limit structures, thereby fixing the relative position of the steel pipe, and further fixing the position of the pile where the steel pipe is located. On the other hand, the double-layer fixed limit structure provided in this solution can fix the position of the steel pipe in the vertical direction, further improving the fixing effect of the pile position.
[0004] Therefore, based on the above retrieval and in combination with the existing technology, an existing pile fixing device for construction engineering is not easy to carry, inconvenient to install and disassemble, and at the same time cannot carry the pile to a designated position and compact and fix it, unable to save manpower and operation steps, and is inconvenient to use. Summary of the Invention
[0005] The purpose of the present invention is to provide a pile fixing device for construction engineering to solve the problems raised in the above background art.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: it includes a transport vehicle body, a lifting assembly is installed on the top surface of the transport plate of the transport vehicle body, the lifting assembly includes a sliding rail, a fixed plate is welded and fixed on the front end surface of the sliding rail, a mounting assembly is hinged on the top of the fixed plate, the mounting assembly includes a mounting base plate, the bottom end of the mounting base plate is hinged to the top of the fixed plate, two sliding rails are symmetrically arranged on the front end surface of the mounting base plate, two groups of fixing assemblies are slidably installed between the two sliding rails, a guide assembly is fixedly installed on the front end surface of the mounting base plate near the bottom end, a pile body is installed inside the guide assembly and the two fixing assemblies, and a compacting assembly is installed on the end of the pile body away from the guide assembly.
[0007] As a further solution of the present invention, two hydraulic rods are installed on the top surface of the transport vehicle body on the left and right sides of the sliding rail, and the telescopic ends of the two hydraulic rods are abutted against the mounting base plate. A screw is rotatably connected inside the sliding rail, and a driven gear is coaxially fixedly installed after the rear end of the screw passes through the sliding rail. A driving gear is rotatably connected to the rear wall of the sliding rail, and a stepping motor is coaxially rotatably connected to the rotating shaft of the driving gear. The driving gear and the driven gear are meshingly and transmission-connected.
[0008] As a further solution of the present invention, a sliding block is slidably connected in the sliding rail, a threaded hole is opened on the front end face of the sliding block, the sliding block is threadedly connected to the screw rod, a hydraulic rod 1 is hinged on the top surface of the sliding block, and the telescopic end of the hydraulic rod 1 is hinged to the rear end face of the mounting base.
[0009] As a further scheme of the present invention, the fixing assembly includes a fixing ring, a mounting plate is provided on the outer wall of the fixing ring, the left and right ends of the mounting plate are respectively slidably connected in the two slide rails, the front end surface of the mounting plate is symmetrically provided with two front-to-back penetrating square holes, square rods are slidably inserted in the two square holes, the rear end surfaces of the two square rods are provided with ratchet blocks, the outer walls of the two square rods are sleeved with spring 1, the front end of the spring 1 abuts against the rear end surface of the mounting plate, the rear end of the spring 1 abuts against the front end surface of the ratchet block, and two ratchet bars are symmetrically installed on the front end surface of the mounting base plate, and the two ratchet bars are respectively meshed and connected with the two ratchet blocks.
[0010] As a further solution of the present invention, the guide assembly includes a guide ring and a bottom ring. The guide ring is fixedly mounted on the bottom end of the front end surface of the mounting base plate by bolts, and the bottom ring is fixedly mounted on the front end surface of the fixing plate by bolts.
[0011] As a further solution of the present invention, a number of storage boxes are equidistantly arranged on the outer wall of the guide ring near the bottom end, telescopic claws are slidably installed in the storage boxes, two springs are sandwiched between the telescopic claws and the bottom surfaces of the storage boxes, the top surfaces of the telescopic claws are in contact with the bottom surface of the pile body, and the top surface of the bottom ring is equidistantly arranged with an equal number of extrusion plates as the number of telescopic claws, the outer wall dimensions of the extrusion plates are matched with the inner wall dimensions of the guide ring, and the positions of the extrusion plates and the telescopic claws correspond one by one.
[0012] As a further solution of the present invention, two mounting arms are symmetrically arranged on the left and right sides of the outer wall of the guiding ring. Rollers are rotatably connected to the ends of the two mounting arms. The rotating shafts of the two rollers are coaxially connected to reduction motors, and steel wire ropes are wound around the outer walls of the two rollers.
[0013] As a further solution of the present invention, the ramming assembly includes a top ring. One end of each of the two steel wire ropes away from the rollers is fixedly connected to the outer wall of the top ring. The top ring is coaxially and fixedly installed at the top end of the pile body. A rammer body is coaxially and slidably installed on the top surface of the top ring.
[0014] As a further solution of the present invention, a vertically penetrating sliding cylinder is opened at the center of the bottom surface of the rammer body. A telescopic rod is slidably installed in the sliding cylinder. A contact plate is provided on the top surface of the telescopic rod, and a third spring is sleeved on the outer wall of the telescopic rod.
[0015] As a further solution of the present invention, a rotating rod is rotatably connected to the top end of the rammer body. A brushless motor is coaxially connected to one end of the rotating rod. A spiral wheel is coaxially and fixedly installed in the middle of the outer wall of the rotating rod. The outer wall of the spiral wheel abuts against the top surface of the contact plate. A plurality of storage cylinders are equidistantly arranged in a circle on the top surface of the rammer body, and caps are threadedly installed on the top surfaces of the plurality of storage cylinders.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. During the use of the present invention, through the mounting assembly, fixing assembly and guiding assembly carried by the transport vehicle body, the pile body is firmly fixed to prevent shaking or slipping during transportation, improving transportation safety. The lifting assembly is adopted, and through the coordinated work of the first hydraulic rod and the second hydraulic rod, the mounting substrate can be smoothly flipped and lifted, and the position is adjusted by the gear set driven by the stepping motor to ensure that the pile body can be accurately positioned, reducing human error and improving construction efficiency; 2. During the use of the present invention, through the engagement connection of the ratchet block and the ratchet rack in the fixing assembly, reliable support can be provided when the pile is placed, and at the same time, the fixing ring can be released when necessary to adjust the position of the pile, improving flexibility. The guiding assembly, through the cooperation of the guiding ring and the bottom ring, guides the pile body to slide into the bottom ring after the mounting substrate is flipped to the vertical state, ensuring the vertical insertion of the pile and enabling the pile body to be accurately positioned, improving construction quality; 3. During the use of the present invention, through the ramming assembly with an adjustable-weight rammer body, the weight of the iron sand is adjusted through the storage cylinder to achieve the adjustment of different hammering forces, and combined with the guiding effect of the sliding rod and the sliding cylinder, the ramming process is more stable and the impact force is controllable. The steel wire ropes are kept in a taut state to ensure that the ramming assembly is always fixedly clamped at the top end of the pile, thereby improving the ramming effect of the pile and reducing the settlement risk. The reasonable design of the structure of the present invention can effectively improve the stability and accuracy of the pile during transportation, positioning, installation and ramming, and improve construction efficiency. Brief Description of the Drawings
[0017] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a working state diagram of the overall structure of the present invention; Figure 3 is an exploded view of the overall structure of the present invention; Figure 4 is an exploded view of the lifting assembly structure of the present invention; Figure 5 is an exploded view of the installation assembly structure of the present invention; Figure 6 is an exploded view of the fixing assembly structure of the present invention; Figure 7 is an exploded view of the guiding assembly structure of the present invention; Figure 8 is an exploded view of the ramming assembly structure of the present invention; Figure 9 is a cross-sectional view of the ramming assembly structure of the present invention.
[0018] In the figure: 1. Transport vehicle body; 2. Lifting assembly; 21. Sliding rail; 211. Fixed plate; 22. Screw rod; 23. Driven gear; 24. Driving gear; 25. Stepper motor; 26. Sliding block; 27. Hydraulic rod 1; 28. Hydraulic rod 2; 3. Installation assembly; 31. Installation base plate; 311. Slide rail; 312. Fixed groove; 32. Ratchet rack; 4. Fixing assembly; 41. Fixed ring; 411. Installation plate; 412. Square hole; 42. Pulley; 43. Square rod; 431. Ratchet block; 44. Spring 1; 5. Guiding assembly; 51. Guiding ring; 511. Installation arm; 512. Storage box; 52. Roller; 53. Steel wire rope; 531. Connector; 54. Reduction motor; 55. Telescopic claw; 56. Spring 2; 57. Bottom ring; 571. Extrusion plate; 6. Ramming assembly; 61. Top ring; 611. Extension arm; 612. Limiting ring; 613. Installation ring; 62. Slide cylinder; 63. Ramming machine body; 631. Slide rod; 632. Rotating hole; 633. Rotating groove; 634. Storage cylinder; 64. Expansion rod; 641. Contact plate; 65. Spring 3; 66. Rotating rod; 67. Spiral wheel; 68. Brushless motor; 69. Cap; 7. Foundation pile body. Detailed Description of the Invention
[0019] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0020] Embodiment 1: Please refer to Figures 1 to 5 , a pile fixing device for construction engineering, including a transport vehicle body 1. A lifting assembly 2 is installed on the top surface of the transport plate of the transport vehicle body 1. The lifting assembly 2 includes a sliding rail 21. Specifically, an installation groove is formed on the top surface of the transport plate of the transport vehicle body 1, and the sliding rail 21 is fixedly installed in the installation groove by bolts. A fixing plate 211 is welded and fixed to the front end surface of the sliding rail 21. An installation assembly 3 is hinged to the top end of the fixing plate 211. The installation assembly 3 includes an installation substrate 31. The bottom end of the installation substrate 31 is hinged to the top end of the fixing plate 211. Please refer to Figure 5 , two sliding rails 311 are symmetrically arranged on the left and right of the front end surface of the installation substrate 31. Two groups of fixing components 4 are slidably installed between the two sliding rails 311. A guiding component 5 is fixedly installed at a position near the bottom end of the front end surface of the installation substrate 31. A pile body 7 is jointly installed inside the guiding component 5 and the two fixing components 4. A ramming component 6 is installed at one end of the pile body 7 away from the guiding component 5.
[0021] Please refer to Figures 3 to 4, on the top surface of the transport vehicle body 1, hydraulic cylinders II 28 are installed on both the left and right sides of the sliding rail 21. The telescopic ends of the two hydraulic cylinders II 28 are both in contact with the mounting substrate 31. A screw rod 22 is rotatably connected inside the sliding rail 21. The rear end of the screw rod 22 passes through the sliding rail 21 and is coaxially and fixedly installed with a driven gear 23. Specifically, a groove is provided on the inner wall of the driven gear 23. A connecting shaft is coaxially and fixedly welded to the rear end of the screw rod 22. A convex block is provided on the outer wall of the connecting shaft. The size of the convex block is adapted to the groove. The convex block has a limiting and guiding effect on the groove, enabling the screw rod 22 to rotate synchronously with the driven gear 23. A driving gear 24 is rotatably connected to the rear wall of the sliding rail 21. The rotating shaft of the driving gear 24 is coaxially rotatably connected to a stepping motor 25. Specifically, an extension plate is provided on the rear wall of the sliding rail 21. The driving gear 24 is rotatably connected to the end of the extension plate. The stepping motor 25 is fixedly installed on the outer wall of the extension plate by bolts. The driving gear 24 is meshed and drivingly connected with the driven gear 23. Specifically, the model of the stepping motor 25 is 86CM120 - BZ. The stepping motor 25 drives the driving gear 24 to rotate, indirectly driving the driven gear 23 to rotate. The driven gear 23 drives the screw rod 22 to rotate synchronously. The number of teeth of the driven gear 23 is greater than that of the driving gear 24. A reduction gear set is formed between the driven gear 23 and the driving gear 24, which can reduce the torque, thereby reducing the specification of the stepping motor 25 and reducing the cost. A sliding block 26 is slidably connected inside the sliding rail 21. Specifically, the outer wall size of the sliding block 26 is adapted to the inner wall size of the sliding rail 21. The sliding rail 21 has a limiting and guiding effect on the sliding block 26, preventing the sliding block 26 from flipping. At the same time, the sliding block 26 can slide back and forth inside the sliding rail 21. A threaded hole penetrating through the front and rear is provided on the front end face of the sliding block 26. The sliding block 26 is in threaded driving connection with the screw rod 22. Specifically, the rotation of the screw rod 22 controls the forward and backward movement of the sliding block 26 inside the sliding rail 21. The top surface of the sliding block 26 is hinged with a hydraulic cylinder I 27. The telescopic end of the hydraulic cylinder I 27 is hinged with the rear end face of the mounting substrate 31. Specifically, when the mounting substrate 31 flips at the end of the fixing plate 211, first, the two hydraulic cylinders II 28 flip the mounting substrate 31 by a certain angle, thereby reducing the working pressure of the hydraulic cylinder I 27. At the same time, the hydraulic cylinder I 27 is started to lift the mounting substrate 31, causing the mounting substrate 31 to flip on the fixing plate 211. During this process, the stepping motor 25 is started to drive the driving gear 24 to rotate. The driving gear 24 drives the driven gear 23 and the screw rod 22 to rotate synchronously. The screw rod 22 drives the sliding block 26 to move forward inside the sliding rail 21 until the mounting substrate 31 is vertically erected. At this time, the hydraulic cylinder I 27, the mounting substrate 31, and the sliding rail 21 form a stable triangular structure.
[0022] Embodiment 2: Please refer to Figures 5 to 6, A fixing device for foundation piles in construction engineering, which is different from that in Embodiment 1. The fixing component 4 includes a fixing ring 41. An installation plate 411 is provided on the outer wall of the fixing ring 41. The left and right ends of the installation plate 411 are respectively slidably connected in two slide rails 311. Specifically, pulleys 42 are rotatably connected to the left and right ends of the installation plate 411. The two pulleys 42 are respectively slidably clamped in the two slide rails 311. Convex rings are provided on the left and right end faces of the pulleys 42, and the convex rings are respectively clamped on the left and right end faces of the slide rails 311. The slide rails 311 play a guiding role for the pulleys 42 to prevent the installation plate 411 from falling off between the two slide rails 311. Two through square holes 412 are symmetrically arranged on the front end face of the installation plate 411 from left to right. Square rods 43 are slidably inserted into the two square holes 412. Ratchet blocks 431 are provided on the rear end faces of the two square rods 43. Spring 1 44 is sleeved on the outer walls of the two square rods 43. The front end of the spring 1 44 abuts against the rear end face of the installation plate 411, and the rear end of the spring 1 44 abuts against the front end face of the ratchet block 431. Specifically, blocking plates are provided at the front ends of the two square rods 43 to prevent the square rods 43 from falling out of the square holes 412. Pulling rings are provided on the front end faces of the two blocking plates. The spring 1 44 provides a backward elastic force for the ratchet block 431. Two ratchet racks 32 are symmetrically installed on the front end face of the installation base plate 31 from left to right. The two ratchet racks 32 are respectively meshed with the two ratchet blocks 431. Specifically, two fixing grooves 312 are symmetrically arranged on the front end face of the installation base plate 31 from left to right. The two ratchet racks 32 are respectively fixedly installed in the two fixing grooves 312. When the fixing ring 41 is subjected to a downward pressure, the ratchet block 431 compresses the spring 1 44 and disengages from the meshing with the ratchet rack 32, enabling the fixing component 4 to move downward in the two slide rails 311.
[0023] Embodiment 3: Please refer to Figures 4 to 9, A fixing device for foundation piles in construction engineering, which is different from that in Embodiment 1. The guiding component 5 includes a guiding ring 51 and a bottom ring 57. The guiding ring 51 is fixedly installed at the bottom end of the front end face of the installation base plate 31 by bolts, and the bottom ring 57 is fixedly installed at the front end face of the fixing plate 211 by bolts. Specifically, the bottom ring 57 and the guiding ring 51 are adapted in size. When the device works, the guiding ring 51 and the bottom ring 57 are coaxially connected and the top surface of the bottom ring 57 abuts against the bottom surface of the guiding ring 51. A plurality of storage boxes 512 are equidistantly arranged in a circumferential direction at a position near the bottom end of the outer wall of the guiding ring 51. A plurality of telescopic claws 55 are slidably installed in the plurality of storage boxes 512. A second spring 56 is clamped between the plurality of telescopic claws 55 and the inner bottom surfaces of the plurality of storage boxes 512. The top surfaces of the plurality of telescopic claws 55 all abut against the bottom surface of the foundation pile body 7. Specifically, the plurality of telescopic claws 55 are used to prevent the foundation pile body 7 from falling off from the guiding ring 51 during transportation. The bottom surfaces of the telescopic claws 55 are all arc-shaped surfaces. A convex ring is provided at one end of the telescopic claw 55 close to the storage box 512. A blocking ring is provided at the opening of the storage box 512. The blocking ring has a limiting and blocking effect on the convex ring to prevent the telescopic claw 55 from falling off from the storage box 512. A plurality of pressing plates 571 equal in number to the plurality of telescopic claws 55 are equidistantly arranged in a circumferential direction on the top surface of the bottom ring 57. The outer wall dimensions of the plurality of pressing plates 571 are adapted to the inner wall dimensions of the guiding ring 51. The plurality of pressing plates 571 and the plurality of telescopic claws 55 are corresponding one by one. Specifically, when the installation base plate 31 is turned to be vertically erected, the guiding ring 51 and the bottom ring 57 are coaxially connected, and the pressing plate 571 is inserted into the guiding ring 51. Since the bottom surface of the telescopic claw 55 is an arc-shaped surface, the pressing plate 571 abuts against the bottom surface of the telescopic claw 55, and the telescopic claw 55 compresses the second spring 56 until it completely enters the storage box 512. The bottom end of the foundation pile body 7 loses the supporting force of the telescopic claw 55. Due to the influence of gravity, the foundation pile body 7 slides and is inserted into the bottom ring 57 until the bottom end of the foundation pile body 7 contacts the ground.
[0024] Please refer to Figures 7 to 9, on the outer wall of the guiding ring 51, there are two installation arms 511 symmetrically arranged left and right. At the ends of the two installation arms 511, roller drums 52 are rotatably connected. The rotating shafts of the two roller drums 52 are coaxially connected to reduction motors 54. Specifically, the model of the reduction motor 54 is KPJC-15-K-B1. The two reduction motors 54 are respectively fixedly installed on the outer walls of the two installation arms 511 through bolts. The two reduction motors 54 have a self-locking function. Steel wire ropes 53 are wound around the outer walls of the two roller drums 52. The ramming assembly 6 includes a top ring 61. One end of each of the two steel wire ropes 53 away from the roller drum 52 is fixedly connected to the outer wall of the top ring 61. Specifically, a connecting head 531 is fixedly installed at one end of each of the two steel wire ropes 53 away from the roller drum 52. At the bottom end of the outer wall of the top ring 61, there are two extension arms 611 symmetrically arranged left and right. The two connecting heads 531 are respectively fixedly connected to the two extension arms 611. The top ring 61 is coaxially and fixedly installed at the top end of the pile body 7. Specifically, the inner wall size of the top ring 61 is adapted to the outer wall size of the pile body 7. In the middle of the inner wall of the top ring 61, there is a limiting ring 612. The inner wall size of the limiting ring 612 is smaller than the outer wall size of the pile body 7, and the bottom surface of the limiting ring 612 abuts against the top surface of the pile body 7. A rammer body 63 is coaxially and slidably installed on the top surface of the top ring 61. Specifically, the outer wall size of the rammer body 63 is smaller than or equal to the inner wall size of the limiting ring 612. A rubber ring is adhesively bonded to the bottom surface of the rammer body 63. The rubber ring is used to provide a buffering effect to protect the rammer body 63 from being damaged when it impacts the pile body 7. On the top end of the outer wall of the top ring 61, there are two mounting rings 613 symmetrically arranged left and right. A sliding cylinder 62 is fixedly installed in each of the two mounting rings 613. On the outer wall of the rammer body 63, there are two sliding rods 631 symmetrically arranged left and right. The two sliding rods 631 are respectively slidably inserted into the two sliding cylinders 62. And a blocking ring is provided at the top end of each of the two sliding cylinders 62. A convex ring is provided at the bottom end of each of the two sliding rods 631. The blocking ring has a limiting effect on the convex ring to prevent the sliding rod 631 from falling out of the sliding cylinder 62. At the same time, lubricating oil is applied between the outer wall of the sliding rod 631 and the inner wall of the sliding cylinder 62. The lubricating oil can reduce the friction between the inner wall of the sliding cylinder 62 and the outer wall of the sliding rod 631, reduce wear, and improve the service life of the device.
[0025] Please refer to Figures 8 to 9A sliding cylinder is provided at the center of the bottom surface of the compactor body 63, which is penetrated from top to bottom. A telescopic rod 64 is slidably installed in the sliding cylinder. An abutment plate 641 is provided on the top surface of the telescopic rod 64. Specifically, the inner wall size of the sliding cylinder is matched with the outer wall size of the abutment plate 641. The abutment plate 641 is slidably connected in the sliding cylinder, and lubricating oil is applied between the outer wall of the abutment plate 641 and the inner wall of the sliding cylinder. The lubricating oil can reduce the friction between the inner wall of the sliding cylinder and the outer wall of the abutment plate 641, reduce wear, and improve the service life of the device. The outer wall of the telescopic rod 64 is sleeved with a spring three 65. Specifically, a blocking ring is provided at the bottom of the sliding cylinder. The top of the spring three 65 abuts against the bottom surface of the abutment plate 641, and the bottom of the spring three 65 abuts against the top surface of the blocking ring. The blocking ring has a limiting effect on the telescopic rod 64 to prevent the telescopic rod 64 from falling off from the sliding cylinder. A rotating rod 66 is rotatably connected to the top of the tamping machine body 63. One end of the rotating rod 66 is coaxially connected to a brushless motor 68. Specifically, the model of the brushless motor 68 is DT42BL50-230. A group of rotating holes 632 are symmetrically opened at the top of the outer wall of the body 63, and the rotating rod 66 is rotatably connected and installed in the group of rotating holes 632. The brushless motor 68 is fixedly installed on the outer wall of the tamping machine body 63 by bolts, and a vortex wheel 67 is coaxially fixedly installed in the middle of the outer wall of the rotating rod 66. Specifically, a rotating groove 633 for facilitating the rotation of the vortex wheel 67 is opened on the top surface of the tamping machine body 63, a convex block is provided in the middle of the outer wall of the rotating rod 66, and a groove is provided on the inner wall of the vortex wheel 67. The size of the convex block and the groove are adapted, and the convex block is opposite to the groove. The groove has a limiting and guiding function, so that the vortex wheel 67 can rotate synchronously with the rotating rod 66. The outer wall of the vortex wheel 67 abuts against the top surface of the abutment plate 641. A number of storage cylinders 634 are equidistantly arranged on the circumference of the top surface of the rammer body 63. Caps 69 are threadedly installed on the top surfaces of the storage cylinders 634. Specifically, iron sand is stored in the storage cylinder 634. By opening the cap 69, iron sand of different weights is loaded into the storage cylinder 634, so as to change the weight of the rammer body 63 and indirectly change the hammering force of the rammer body 63.
[0026] The working principle of the present invention is as follows: the staff uses a crane to sequentially insert the foundation pile body 7 into the guide assembly 5, the fixing assembly 4, and the compacting assembly 6 from front to back, and the steel wire ropes 53 in the two rollers 52 are stretched and kept in a taut state, so that the top ring 61 of the compacting assembly 6 is fixedly installed at the end of the foundation pile body 7, so that the foundation pile body 7 is installed on the transport vehicle body 1, and a ground breaking cone is welded on one end face of the foundation pile body 7 close to the guide assembly 5, so as to facilitate the subsequent ground breaking operation, and the foundation pile body 7 is accurately transported to the designated location by the transport vehicle body 1; When the lifting assembly 2 is working, it causes the mounting substrate 31 to flip at the end of the fixing plate 211. First, the two second hydraulic rods 28 flip the mounting substrate 31 by a certain angle to reduce the working pressure of the first hydraulic rod 27. At the same time, the first hydraulic rod 27 is started to lift the mounting substrate 31, causing the mounting substrate 31 to flip on the fixing plate 211. During this process, the stepping motor 25 is started to drive the driving gear 24 to rotate. The driving gear 24 drives the driven gear 23 to rotate synchronously with the screw rod 22. The screw rod 22 drives the sliding block 26 to move forward in the sliding rail 21 until the mounting substrate 31 is vertically erected. At this time, the first hydraulic rod 27, the mounting substrate 31, and the sliding rail 21 form a stable triangular structure to provide a stable support for the pile body 7; The guiding assembly 5 pulls the top ring 61 at the top of the pile body 7 through two steel wire ropes 53. Two reduction motors 54 control the rotation of two rollers 52, so that the two steel wire ropes 53 between the guiding ring 51 and the top ring 61 are always kept in a taut state, so as to ensure that both the top and bottom ends of the pile body 7 maintain the correct vertical direction during the descent process and avoid deviation. The telescopic claw 55 is slidably installed in the storage box 512 on the outer wall of the guiding ring 51. The top surface of the telescopic claw 55 abuts against the bottom end of the pile body 7 to prevent the pile body 7 from falling off during transportation; When the mounting substrate 31 is vertically flipped, the guiding ring 51 is coaxially connected to the bottom ring 57. The pressing plate 571 on the bottom ring 57 enters the inside of the guiding ring 51 and pushes the telescopic claw 55 to retract into the storage box 512. The bottom end of the pile body 7 loses the supporting force of the telescopic claw 55. The pile body 7 is released and affected by gravity. The pile body 7 slides and is inserted into the bottom ring 57 until the bottom end of the pile body 7 contacts the ground, realizing precise positioning; The ramming assembly 6 is used to ram the pile body 7. The ramming assembly 6 is installed at the top of the pile body 7 through the top ring 61. The outer wall of the top ring 61 is connected to the guiding ring 51 through two steel wire ropes 53. The two reduction motors 54 have a self-locking function. The two reduction motors 54 drive the two rollers 52 to rotate, so that the two steel wire ropes 53 are always kept in a taut state, so that the top ring 61 is always fixed at the top of the pile body 7. A limiting ring 612 is provided on the inner wall of the top ring 61. The bottom surface of the limiting ring 612 abuts against the top surface of the pile body 7. The rammer body 63 is slidably installed in the top ring 61. The sliding rod 631 is inserted into the sliding cylinder 62 and is prevented from falling off by a blocking ring to ensure the stability of the ramming movement. A number of storage cylinders 634 are provided in the rammer body 63 to store iron sand of different weights. The weight of the rammer can be controlled by adjusting the amount of iron sand, and the ramming force can be changed to adapt to different construction requirements; Start the brushless motor 68 to drive the rotating rod 66 to rotate. The rotating rod 66 drives the spiral wheel 67 to rotate. The outer wall of the spiral wheel 67 abuts against the abutting plate 641. When the spiral wheel 67 rotates, it drives the telescopic rod 64 to move downward, and the third spring 65 is compressed. Since the end of the telescopic rod 64 abuts against the top of the pile body 7, the rammer body 63 is continuously lifted in the top ring 61 until the outer wall of the maximum outer diameter of the spiral wheel 67 is disengaged from the abutting plate 641. At this time, the top surface of the abutting plate 641 falls to abut against the outer wall of the minimum outer diameter of the spiral wheel 67. At this time, the third spring 65 provides a restoring force to retract the telescopic rod 64 into the sliding cylinder. During this process, due to inertia, the rammer body 63 still stays in the air. Due to the lack of the supporting force of the telescopic rod 64, the rammer body 63 falls under the influence of gravity and impacts the top of the pile body 7. The bottom surface of the rammer body 63 provides a buffering effect through the rubber ring to protect the rammer body 63 from being damaged when it impacts the pile body 7. The brushless motor 68 keeps working, and this process repeats. The rammer body 63 continuously impacts the top of the pile body 7 until the pile body 7 sinks into the soil; When the pile body 7 gradually enters the soil, the height of the tamping assembly 6 at the top of the pile body 7 continuously decreases. When the tamping assembly 6 contacts the fixing assembly 4, when the fixing ring 41 is subjected to a downward pressure, the ratchet block 431 compresses the first spring 44 and disengages from the ratchet rack 32, enabling the fixing assembly 4 to move downward within the two slide rails 311; thus, the operation of this device is completed.
[0027] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and all should be covered within the protection scope of the present invention.
Claims
1. A pile fixing device for construction engineering, comprising a transport vehicle body (1), characterized in that: A lifting assembly (2) is installed on the top surface of the transport plate of the transport vehicle body (1), the lifting assembly (2) comprising a sliding rail (21), a fixing plate (211) being welded and fixed to the front end surface of the sliding rail (21), a mounting assembly (3) being hinged to the top end of the fixing plate (211), the mounting assembly (3) comprising a mounting base plate (31), the bottom end of the mounting base plate (31) being hinged to the top end of the fixing plate (211), two sliding rails (311) being symmetrically arranged on the front end surface of the mounting base plate (31), two groups of fixing assemblies (4) being slidably installed between the two sliding rails (311), a guide assembly (5) being fixedly installed at a position near the bottom end of the front end surface of the mounting base plate (31), a foundation pile body (7) being installed together with the guide assembly (5) and the two fixing assemblies (4), and a compacting assembly (6) being installed at the end of the foundation pile body (7) away from the guide assembly (5).
2. A foundation pile fixing device for construction engineering according to claim 1, characterized in that: The top surface of the transport vehicle body (1) is provided with two hydraulic rods (28) on both left and right sides of the sliding rail (21), and the telescopic ends of the two hydraulic rods (28) are both in contact with the mounting base plate (31). A screw rod (22) is rotatably connected inside the sliding rail (21), and a driven gear (23) is coaxially fixedly installed after the rear end of the screw rod (22) passes through the sliding rail (21). A driving gear (24) is rotatably connected to the rear wall of the sliding rail (21), and a stepping motor (25) is coaxially rotatably connected to the rotating shaft of the driving gear (24), and the driving gear (24) is meshingly transmission-connected with the driven gear (23).
3. A foundation pile fixing device for construction engineering according to claim 2, characterized in that: A sliding block (26) is slidably connected inside the sliding rail (21), a threaded hole extending through the front and rear is provided on the front end surface of the sliding block (26), the sliding block (26) is threadedly connected to the screw rod (22), a hydraulic rod 1 (27) is hingedly connected to the top surface of the sliding block (26), and the telescopic end of the hydraulic rod 1 (27) is hingedly connected to the rear end surface of the mounting base plate (31).
4. A foundation pile fixing device for construction engineering according to claim 3, characterized in that: The fixing assembly (4) comprises a fixing ring (41), the outer wall of the fixing ring (41) is provided with a mounting plate (411), the left and right ends of the mounting plate (411) are respectively slidably connected in the two slide rails (311), the front end surface of the mounting plate (411) is symmetrically provided with two front-to-back penetrating square holes (412), square rods (43) are slidably inserted in the two square holes (412), the rear end surfaces of the two square rods (43) are respectively provided with ratchet blocks (431), the outer walls of the two square rods (43) are sleeved with springs 1 (44), the front end of the spring 1 (44) is in contact with the rear end surface of the mounting plate (411), and the rear end of the spring 1 (44) is in contact with the front end surface of the ratchet block (431), and the front end surface of the mounting base plate (31) is symmetrically provided with two ratchet bars (32), and the two ratchet bars (32) are respectively meshed and connected with the two ratchet blocks (431).
5. A foundation pile fixing device for construction engineering according to claim 1, characterized in that: The guide assembly (5) comprises a guide ring (51) and a bottom ring (57); the guide ring (51) is fixedly mounted on the bottom end of the front end surface of the mounting base plate (31) by means of bolts; and the bottom ring (57) is fixedly mounted on the front end surface of the fixing plate (211) by means of bolts.
6. A foundation pile fixing device for construction engineering according to claim 5, characterized in that: A plurality of storage boxes (512) are equidistantly arranged on the outer wall of the guide ring (51) near the bottom end, and telescopic claws (55) are slidably mounted in the plurality of storage boxes (512). A spring 2 (56) is sandwiched between the plurality of telescopic claws (55) and the inner bottom surfaces of the plurality of storage boxes (512). The top surfaces of the plurality of telescopic claws (55) are in contact with the bottom surface of the foundation pile body (7). The top surface of the bottom ring (57) is equidistantly arranged on the circumference of the top surface of the bottom ring (57), and the same number of extrusion plates (571) as the number of the telescopic claws (55) are arranged. The outer wall dimensions of the plurality of extrusion plates (571) match the inner wall dimensions of the guide ring (51), and the positions of the plurality of extrusion plates (571) and the plurality of telescopic claws (55) correspond one by one.
7. A foundation pile fixing device for construction engineering according to claim 6, characterized in that: Two mounting arms (511) are symmetrically arranged on the outer wall of the guide ring (51), the ends of the two mounting arms (511) are rotatably connected to rollers (52), the rotating shafts of the two rollers (52) are coaxially connected to a reduction motor (54), and the outer walls of the two rollers (52) are wound with steel wire ropes (53).
8. A foundation pile fixing device for construction engineering according to claim 7, characterized in that: The compacting assembly (6) comprises a top ring (61), one end of the two steel wire ropes (53) away from the roller (52) is fixedly connected to the outer wall of the top ring (61), the top ring (61) is coaxially fixedly mounted on the top of the foundation pile body (7), and the compacting machine body (63) is coaxially slidably mounted on the top surface of the top ring (61).
9. A foundation pile fixing device for construction engineering according to claim 8, characterized in that: A sliding cylinder is provided at the center of the bottom surface of the compactor body (63) and is passed through from top to bottom. A telescopic rod (64) is slidably installed in the sliding cylinder. A contact plate (641) is provided on the top surface of the telescopic rod (64). A spring three (65) is sleeved on the outer wall of the telescopic rod (64).
10. A foundation pile fixing device for construction engineering according to claim 9, characterized in that: The top of the compactor body (63) is rotatably connected to a rotating rod (66), one end of the rotating rod (66) is coaxially connected to a brushless motor (68), a vortex wheel (67) is coaxially fixedly mounted in the middle of the outer wall of the rotating rod (66), the outer wall of the vortex wheel (67) abuts against the top surface of the abutment plate (641), and a plurality of storage cylinders (634) are equidistantly provided on the circumference of the top surface of the compactor body (63), and caps (69) are threadedly mounted on the top surfaces of the plurality of storage cylinders (634).
Citation Information
Patent Citations
Foundation pile fixing device for constructional engineering
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