Piling equipment for building engineering construction

By designing a limit frame, limit wheels, and clamping components, the problem of pile position deviation during pile driving was solved, achieving stable pile delivery and precise driving, thus improving pile driving quality and work efficiency.

CN121473331APending Publication Date: 2026-02-06翟鹏
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Patent Information

Application Number
CN202511737459.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-25
Publication Date
2026-02-06

AI Technical Summary

Technical Problem

During the piling process, traditional piling machines are prone to causing piles to shift position due to vibration and loose soil, making it difficult to maintain a straight line, which affects the piling quality and increases the workload.

Method used

The system employs a limit frame and limit wheels, using an electric slide rail and transmission components to achieve stable pile transportation and limiting. Combined with clamping components and rope hoisting, it ensures the accuracy and stability of the pile during the driving process.

Benefits of technology

It effectively prevents piles from shifting position during driving, ensuring the accuracy and stability of pile driving, reducing rework, and improving work efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of building construction piling, in particular to piling equipment for building engineering construction. The piling equipment comprises a bottom frame, a connecting frame, a stand column, electric sliding rails, a pressing frame, a controller, a clamping assembly and a power assembly, the controller is installed on the left side of the top of the bottom frame, the connecting frame is connected to the middle of the bottom frame, the stand column is connected to the rear side of the top of the connecting frame, and the electric sliding rails are symmetrically installed on the stand column; the electric sliding rails are electrically connected with the controller, a downward pressing frame is slidably connected between the two electric sliding rails, a clamping assembly is installed on the downward pressing frame, and a power assembly is arranged on the connecting frame. The lower end of a pile can be limited through the connecting frame and the limiting wheels in the limiting frame, the pile driving device is suitable for piles of different thicknesses, the height of the limiting frame can be adjusted according to the length of the pile in the using process, it is guaranteed that the pile is not prone to displacement in the process of being driven into the ground, and accuracy and stability in the pile driving process are guaranteed.
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Description

Technical Field

[0001] This invention relates to the field of piling technology in building construction, and in particular to a piling device for building construction. Background Technology

[0002] Construction engineering refers to the engineering entity formed by the construction of various buildings and their ancillary facilities, as well as the installation of supporting lines, pipelines, and equipment. As one of the important pieces of equipment in infrastructure construction in the construction industry, pile drivers drive piles into the ground to transfer most of the weight of the building to a deep position below the ground, thereby making the foundation of the building solid.

[0003] Traditional pile drivers use moving components to clamp the pile and hammer it, using impact force to drive the pile into the ground. In actual use, although the pile head is fixed by the clamping components, due to the long length of the pile, the lower end of the pile may deviate from its position when driven into the ground due to the vibration of the hammer and the looseness of the soil. It is difficult to keep the pile in a straight line when driving it into the ground, which affects the quality of pile driving, causes rework, and increases the workload.

[0004] Based on this, in order to solve the aforementioned technical defects, a piling device for building construction is proposed. Summary of the Invention

[0005] To overcome the aforementioned drawbacks, the present invention provides a piling device for building construction.

[0006] The technical solution is as follows: A piling device for building construction includes a base frame, a connecting frame, a column, an electric slide rail, a lower pressure frame, a controller, a clamping assembly, a power assembly, and a piling assembly. The controller is installed on the top left side of the base frame, the connecting frame is connected to the middle of the base frame, and the column is connected to the top rear side of the connecting frame. Electric slide rails are symmetrically installed on the column, and the electric slide rails are electrically connected to the controller. A lower pressure frame is slidably connected between the two electric slide rails, and a clamping assembly is installed on the lower pressure frame. The power assembly is located on the connecting frame, and the piling assembly is located on the lower pressure frame. The piling device also includes a limit frame, an electric push rod, a sliding block, a pushing block, and a limit wheel. A sliding block is slidably connected to the lower side of the column, and a limit frame is connected to the sliding block. Electric push rods are symmetrically installed on the top of the base frame at the position in front of the column. The extension rods of the electric push rods are connected to the sliding blocks, and the electric push rods are electrically connected to the controller. Push blocks are slidably connected at even intervals inside the connecting frame and the limit frame, and limit wheels are rotatably connected to the inner side of each push block.

[0007] To further explain, the clamping assembly includes a lifting block, a clamping block, a rotating shaft, and a transmission assembly. A lifting block is installed on the lower side of the lower pressure frame, and a rotating shaft is symmetrically and rotatably connected to the lifting block. Each rotating shaft is connected to a clamping block, and a transmission assembly is provided on the lifting block.

[0008] To further explain, the transmission assembly includes a reference column, a cylinder, a short rack, and rotating gears. The reference column is connected to the middle of the lifting block. The short racks located inside the lifting block are symmetrically slidably connected to the reference column. Cylinders are symmetrically installed on the lower side of the reference column. Cylinders are electrically connected to the controller. The extension rods of cylinders are all connected to the short racks on the same side. Rotating gears are connected to the rotating shafts. The rotating gears mesh with the short racks on the same side.

[0009] Further explanation: The power assembly includes a splined shaft, a sleeve, a drive gear, a drive motor, a connecting plate, a gear ring, and a turntable. The drive motor is installed on the rear side of the connecting frame and is electrically connected to the controller. A splined shaft is connected to the output shaft of the drive motor, and the splined shaft passes through the connecting frame. A sleeve is slidably connected to the upper side of the splined shaft, and the sleeve is rotatably connected to a sliding block. A drive gear is connected to the sleeve, and a drive gear is also connected to the output shaft of the drive motor. Connecting plates are rotatably connected to both the connecting frame and the limiting frame. The two connecting plates are symmetrical. A gear ring is connected to the outer side of each connecting plate, and the gear ring meshes with the drive gear on the same side. A turntable is connected to the bottom of each connecting plate. The turntable has evenly spaced arc-shaped grooves. The pushing blocks are slidably connected to the arc-shaped grooves on the same side. The rotation of the turntable can push the corresponding pushing blocks to move inward through the arc-shaped grooves, and the limit wheel limits the movement of the limit blocks.

[0010] Further explanation: The piling assembly includes a piling block, a long rack, a drive shaft, a missing gear, a drive motor, and a drive gear. The piling block is slidably connected to the upper side of the lower pressure frame, and the long rack is symmetrically connected to the inner side of the piling block. The drive motor is installed on the rear side of the lower pressure frame and is electrically connected to the controller. The drive shaft is symmetrically rotatably connected to the upper side of the lower pressure frame, and the output shaft of the drive motor is connected to the drive shaft on the left side. The missing gear is connected to the front side of both drive shafts, and the toothed parts of the two missing gears mesh with the long rack on the same side. The drive gear is connected to the rear side of both drive shafts, and the two drive gears mesh with each other.

[0011] To further explain, the piling equipment also includes a bracket and cylinder two. The bottom of the base frame is supported by two brackets, and cylinder two is symmetrically connected to each bracket. Cylinder two is electrically connected to the controller, and the telescopic rod of cylinder two is connected to the base frame.

[0012] To further explain, the piling equipment also includes a support frame, a dual-axis motor, winding wheels, pull ropes, and pulleys. The support frame is connected to the top of the column, and the dual-axis motor is installed on the rear side of the support frame. The dual-axis motor is electrically connected to the controller. Winding wheels are connected to both output shafts of the dual-axis motor, and pull ropes are wound on both winding wheels. Pulleys are symmetrically and rotatably connected to the front side of the support frame. The tail ends of the two pull ropes pass over the pulleys on the same side and pass through the lower pressure frame to connect with the lifting block.

[0013] To further explain, the piling equipment also includes limit blocks, locking rods, and locking springs. Limit blocks are symmetrically and slidably connected to the bottom of the lower pressure frame, and locking rods are symmetrically and slidably connected to the lifting block. Locking springs are connected between the locking rods and the lifting block. Sliding grooves are opened on the inner side of the limit blocks, and the locking rods are locked into the sliding grooves on the same side. The bottom surface of the inner side of the limit blocks is inclined, and the locking rods will contact the inclined surface when the lifting block moves upward.

[0014] Further explanation: The piling equipment also includes an inclined frame, an inclined block, a contact rod, a contact block, and an inclined frame. An inclined frame is symmetrically connected to the top of the limiting frame, and an inclined block is symmetrically connected to the front side of the upper part of the column. A contact rod is connected to the side of the two limiting blocks that are close to each other. The contact rod contacts and engages with the inclined block on the same side. A contact block is connected to the side of the two limiting blocks that are far apart from each other. The contact block contacts and engages with the inclined frame. An inclined frame is connected to the front side of the limiting frame.

[0015] Compared with the prior art, the present invention has the following advantages: 1. The lower end of the pile can be limited by the limiting wheel in the connecting frame and the limiting frame, and it is applicable to piles of different thicknesses. When in use, the height of the limiting frame can also be adjusted according to the length of the pile to ensure that the pile does not easily move during the process of driving the pile into the ground, thus ensuring the accuracy and stability of the pile driving. 2. The electric slide rail transports the pile downwards, while the drive motor, through the cooperation of the gear and the rack, causes the pile block to move up and down intermittently, thereby striking the lower pressure frame. This ensures that the pile is subjected to uniform force and is driven stably into the ground. 3. With the rope suspending the lifting block, after a pile is driven in, the clamping block and the lifting block will not move back to their original position with the lower pressure frame, but will remain in a low position, making it convenient for workers to clamp and fix the next pile. This is safer than fixing the pile when it is at a high position. 4. Cylinder 2 can lift the base frame, making it easy to quickly remove the pile head after piling is completed without the need for other equipment. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0017] Figure 2 This is a three-dimensional structural diagram of the limiting frame, pressing frame, connecting frame, and other components of the present invention.

[0018] Figure 3 This is a three-dimensional structural diagram of the piling block, long rack, drive shaft and other components of the present invention.

[0019] Figure 4 This is an exploded view of the reference column, cylinder one, short rack, and other components of the present invention.

[0020] Figure 5 This is an exploded view of the cylinder, short rack, rotating gear, and other components of the present invention.

[0021] Figure 6 This is a three-dimensional structural diagram of the components of the present invention, including the push block, spline shaft, and electric push rod.

[0022] Figure 7 This is a schematic diagram of the planar structure of the components such as the push block, the limit wheel, and the drive motor of the present invention.

[0023] Figure 8 This is a three-dimensional structural diagram of the connecting disc, gear ring, turntable, and other components of the present invention.

[0024] Figure 9 This is an exploded view of the turntable, push block, limit wheel, and other components of the present invention.

[0025] Figure 10 This is a three-dimensional structural diagram of the support frame, dual-axis motor, winding wheel, and other components of the present invention.

[0026] Figure 11 This is a three-dimensional structural diagram of the limiting block, inclined block, contact block, and other components of the present invention.

[0027] Figure 12 This is a three-dimensional structural diagram of the components of the present invention, such as the locking rod, locking spring, and limiting block.

[0028] Figure 13 This is a diagram showing the usage state of the present invention during pile driving.

[0029] Figure 14 This is a diagram showing the state of the lower pressure frame after the pile driving is completed and the frame is reset according to the present invention.

[0030] The markings in the attached diagram are: 1_base frame, 101_connecting frame, 102_column, 103_electric slide rail, 104_lower pressure frame, 105_lifting block, 106_clamping block, 107_rotating shaft, 108_limiting frame, 109_controller, 201_reference column, 202_cylinder one, 203_short rack, 204_rotating gear, 301_electric push rod, 302_sliding block, 303_spline shaft, 304_sleeve rod, 305_drive gear, 306_drive motor, 307_push block, 308_limiting wheel, 309_connecting plate, 3010 _Gear ring, 3011_Turntable, 3012_Arc groove, 401_Piling block, 402_Long rack, 403_Drive shaft, 404_Missing gear, 405_Drive motor, 406_Drive gear, 501_Support frame, 502_Dual-axis motor, 503_Winding wheel, 504_Pull rope, 505_Pulley, 601_Limit block, 602_Slide groove, 603_Clamping rod, 604_Clamping spring, 701_Angled frame, 702_Angled block, 703_Contact rod, 704_Contact block, 8_Angled frame, 901_Bracket, 902_Cylinder II. Detailed Implementation

[0031] References to embodiments herein mean that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0032] Example 1: A piling device for building construction, such as... Figures 1-9 As shown, the assembly includes a base frame 1, a connecting frame 101, a column 102, an electric slide rail 103, a lower pressure frame 104, a limit frame 108, a controller 109, an electric push rod 301, a sliding block 302, a push block 307, a limit wheel 308, a clamping assembly, a power assembly, and a piling assembly. The controller 109 is mounted on the top left side of the base frame 1. The connecting frame 101 is connected to the middle of the base frame 1. The column 102 is connected to the top rear side of the connecting frame 101. Electric slide rails 103 are symmetrically mounted on the column 102. The lower pressure frame 104 is slidably connected between the two electric slide rails 103. A clamping assembly is mounted on the lower pressure frame 104. A sliding block 302 is slidably connected to the lower side of the column 102. A limit frame 108 is connected to the base frame 1. Electric push rods 301 are symmetrically installed on the left and right sides of the top of the base frame 1 in front of the column 102. The telescopic rods of the electric push rods 301 are connected to the sliding blocks 302. The electric slide rail 103 and the electric push rods 301 are electrically connected to the controller 109. Four push blocks 307 are evenly spaced and slidably connected inside the connecting frame 101 and the limit frame 108. The four push blocks 307 in the connecting frame 101 and the limit frame 108 are rotatably connected to the side of the four push blocks 307 that are close to each other. The clamping component clamps the pile. The pile passes through the limit frame 108 and the connecting frame 101. The limit wheel 308 limits the pile. The connecting frame 101 is equipped with a power component. The lower pressure frame 104 is equipped with a pile driving component.

[0033] like Figures 1-4 As shown, the clamping assembly includes a lifting block 105, a clamping block 106, a rotating shaft 107, and a transmission assembly. The lifting block 105 is installed on the lower side of the lower pressure frame 104. The rotating shaft 107 is symmetrically connected to the lifting block 105. The clamping block 106 is connected to the rotating shaft 107. The transmission assembly is provided on the lifting block 105.

[0034] like Figures 3-4As shown, the transmission assembly includes a reference column 201, a cylinder 202, a short rack 203, and a rotating gear 204. The reference column 201 is connected to the middle of the lifting block 105. The short rack 203 located inside the lifting block 105 is symmetrically slidably connected to the reference column 201. The cylinder 202 is symmetrically installed on the lower side of the reference column 201. The cylinder 202 is electrically connected to the controller 109. The telescopic rods of the cylinder 202 are all connected to the short rack 203 on the same side. The rotating shaft 107 is connected to the rotating gear 204, and the rotating gear 204 meshes with the short rack 203 on the same side.

[0035] like Figure 1 and Figures 6-9 As shown, the power assembly includes a splined shaft 303, a sleeve rod 304, a drive gear 305, a drive motor 306, a connecting plate 309, a gear ring 3010, and a turntable 3011. The drive motor 306 is mounted on the rear inner side of the connecting frame 101. The drive motor 306 is electrically connected to the controller 109. The splined shaft 303 is connected to the output shaft of the drive motor 306. The splined shaft 303 passes through the connecting frame 101. The sleeve rod 304 is slidably connected to the upper side of the splined shaft 303. The sleeve rod 304 is rotatably connected to the sliding block 302. The drive gear 305 is connected to the sleeve rod 304. The drive motor 306's output shaft... A drive gear 305 is also connected. A connecting plate 309 is rotatably connected to both the connecting frame 101 and the limiting frame 108. The two connecting plates 309 are symmetrical. A gear ring 3010 is connected to the outer side of each connecting plate 309. The gear ring 3010 meshes with the drive gear 305 on the same side. A turntable 3011 is connected to the bottom of each connecting plate 309. Four arc-shaped grooves 3012 are evenly opened on each turntable 3011. The pushing block 307 is slidably connected to the arc-shaped groove 3012 on the same side. When the turntable 3011 rotates, it can push the corresponding pushing block 307 to move inward through the arc-shaped groove 3012 and limit the post through the limiting wheel 308.

[0036] like Figure 1 and Figures 3-5As shown, the piling assembly includes a piling block 401, a long rack 402, a drive shaft 403, a gear 404, a drive motor 405, and a drive gear 406. The piling block 401 is slidably connected to the upper side of the lower pressure frame 104. The long rack 402 is symmetrically connected to the inner side of the piling block 401. The drive motor 405 is installed on the rear side of the lower pressure frame 104 and is electrically connected to the controller 109. The drive shaft 406 is symmetrically rotatably connected to the upper side of the lower pressure frame 104. 03. The output shaft of the drive motor 405 is connected to the drive shaft 403 on the left. Both drive shafts 403 are connected to the front of a missing gear 404. The toothed parts of both missing gears 404 mesh with the long rack 402 on the same side. Both drive shafts 403 are connected to the rear of a drive gear 406. The two drive gears 406 mesh with each other. The pile driving block 401 moves upward and is then released. The pile driving block 401 moves downward quickly under gravity and strikes the lower pressure frame 104. The pile is driven into the ground through the lower pressure frame 104.

[0037] During pile driving, the lower end of the pile passes through the limiting frame 108 and the connecting frame 101, positioned inside the limiting wheel 308. The upper end of the pile is then placed against the reference post 201, with the clamping block 106 positioned on the left and right sides of the pile. The controller 109 can then be operated to activate cylinder 202. The telescopic rod of cylinder 202 extends, causing the short rack 203 to move upwards. This causes the short rack 203 to rotate the rotating gear 204, which in turn rotates the rotating shaft 107 and the clamping block 106, thus clamping the pile. After the pile is secured, cylinder 202 is closed. Then, the controller 109 is operated to activate the drive motor 306. The output shaft of the drive motor 306 rotates, causing the drive gear 305, splined shaft 303, and sleeve rod 304 to rotate. The upper and lower drive gears 305 rotate... The drive motor 306 rotates the gear ring 3010, which in turn rotates the connecting plate 309 and the turntable 3011. The arc groove 3012 on the turntable 3011 pushes the push block 307 and the limiting wheel 308 to move inward. The limiting wheel 308 clamps the pile and limits its movement, allowing the drive motor 306 to be turned off. In this way, the lower end of the pile can be limited by the limiting wheel 308 inside the connecting frame 101 and the limiting frame 108, ensuring that the pile remains in a straight line during driving into the ground. Before controlling the limiting wheel 308 to limit the pile, the height of the limiting frame 108 can also be adjusted according to the length of the pile. In specific operation, the controller 109 is used to start the electric push rod 301, which can be used to extend or retract the telescopic rod of the electric push rod 301. The electric push rod 301 will push the sliding block 302. The column 102 moves upward or downward, moving the limiting frame 108. The height of the limiting frame 108 can be adjusted. As the components on the limiting frame 108 move, the sleeve 304 moves upward or downward along the spline shaft 303. After adjustment, the electric push rod 301 can be turned off. This allows the pile to be reinforced by the limiting wheel 308 inside the limiting frame 108. After the pile is fixed, the controller 109 can be operated to start the electric slide rail 103 and the drive motor 405. The electric slide rail 103 will drive the lower pressure frame 104 to move downward. The lower pressure frame 104 drives the pile downward through the clamping block 106. After the drive motor 405 starts, the output shaft rotates, driving the left drive shaft 403 to rotate, which in turn drives the right drive shaft through the two drive gears 406. When the drive shaft 403 rotates, the two drive shafts 403 drive the missing gear 404 to rotate. When the toothed part of the missing gear 404 meshes with the long rack 402, it will drive the long rack 402 and the piling block 401 to move upward. When the toothed part of the missing gear 404 does not mesh with the long rack 402, the piling block 401 will drive the long rack 402 downward under the action of gravity. The piling block 401 will strike the lower pressure frame 104, driving the pile into the ground. The continuous rotation of the missing gear 404 will intermittently push the long rack 402 and the piling block 401 upward, causing the piling block 401 to intermittently strike the lower pressure frame 104, thus driving the pile into the ground. The limiting wheel 308 will rotate due to friction, thereby limiting the pile and ensuring that the pile is in a straight line. As the pile is gradually driven into the ground...As the pressure frame 104 and the limiting frame 108 gradually approach each other, the operator can simultaneously drive the electric push rod 301 to shorten its telescopic rod, moving the sliding block 302 and the limiting frame 108 downwards. After the limiting frame 108 reaches its limit, the electric push rod 301 is closed. After the pressure frame 104 reaches its limit, the pile is driven to the appropriate depth, and the electric slide rail 103 automatically closes. The operator can then turn off the drive motor 405 and start the cylinder 202. This controls the telescopic rod of the cylinder 202 to shorten, causing the short rack 203 to move downwards. The short rack 203 drives the rotating gear 204 to rotate in the opposite direction, which in turn causes the rotating shaft 107 and the clamping block 106 to rotate in reverse. The clamping block 106 then releases the pile, and the cylinder 202 extends and retracts. After the rod shortens, it will automatically close. Then, the operator can use controller 109 to control the electric slide rail 103 to move the lower pressure frame 104 upwards to reset, and start the drive motor 306. Controlling the drive motor 306 to rotate in reverse causes the output shaft of the drive motor 306 to reverse, driving the spline shaft 303, drive gear 305, and sleeve rod 304 to rotate in reverse. Drive gear 305 will then drive the gear ring 3010 and connecting plate 309 to rotate in reverse, which in turn drives the turntable 3011 to rotate in reverse. This will push the push block 307 and the limiting wheel 308 outwards through the arc groove 3012 to reset. After resetting, the drive motor 306 is turned off, and the limiting wheel 308 no longer limits the pile. The operator can then remove the device using the equipment and repeat the above operation for the next pile driving location.

[0038] Example 2: Based on Example 1, such as Figures 1-2 As shown, the piling equipment also includes a bracket 901 and a second cylinder 902. The bottom of the base frame 1 is supported by two brackets 901. The brackets 901 are located on the left and right sides of the bottom of the base frame 1. Each bracket 901 is symmetrically connected to a second cylinder 902. The second cylinder 902 is electrically connected to the controller 109. The telescopic rods of the second cylinder 902 are connected to the base frame 1. The extension of the telescopic rods of the second cylinder 902 can push the base frame 1 to move upward.

[0039] After the pile is driven into the ground, a section of the pile head will remain. To facilitate the removal of this device, the controller 109 can be operated to start cylinder 902. The extension rod of cylinder 902 will extend and push the base frame 1 to move upward. The limit frame 108 will also move upward, causing the base frame 1 and the limit frame 108 to detach from the reserved pile head on the ground, so that the device can be removed. After removal, the controller 109 can be operated to control the extension rod of cylinder 902 to shorten and reset, causing cylinder 902 to drive the base frame 1 to move downward and reset. After reset, cylinder 902 will automatically shut off.

[0040] like Figure 1 , Figure 10 , Figure 11 , Figure 13 and Figure 14As shown, the piling equipment also includes a support frame 501, a dual-axis motor 502, a winding wheel 503, a pull rope 504, and a pulley 505. The support frame 501 is connected to the top of the column 102. The dual-axis motor 502 is installed on the rear side of the support frame 501. The dual-axis motor 502 is electrically connected to the controller 109. The winding wheel 503 is connected to both output shafts of the dual-axis motor 502. The pull rope 504 is wound on both winding wheels 503. The pulley 505 is symmetrically rotated on the front side of the support frame 501. The tail ends of the two pull ropes 504 pass over the pulley 505 on the same side and pass through the lower pressure frame 104 to connect with the lifting block 105. The pull rope 504 suspends the lifting block 105, and the lifting block 105 is limited by the lower pressure frame 104.

[0041] like Figure 1 and Figures 10-14 As shown, the piling equipment also includes a limiting block 601, a locking rod 603, and a locking spring 604. The limiting block 601 is symmetrically and slidably connected to the bottom of the lower pressure frame 104. The locking rod 603 is symmetrically and slidably connected to the upper block 105. The locking rod 603 and the upper block 105 are connected by locking springs 604. The inner side of the limiting block 601 has a sliding groove 602. The locking rod 603 engages with the sliding groove 602 on the same side. The bottom inner side of the limiting block 601 is inclined. When the upper block 105 moves upward, the locking rod 603 will contact the inclined surface to push the locking rod 603 and make it engage with the sliding groove 602.

[0042] like Figure 1 and Figures 10-14 As shown, the piling equipment also includes an inclined frame 701, an inclined block 702, a contact rod 703, a contact block 704, and an inclined frame 8. The inclined frame 701 is symmetrically connected to the top of the limiting frame 108. The inclined block 702 is symmetrically connected to the front side of the upper part of the column 102. The contact rod 703 is connected to the side of the two limiting blocks 601 that are close to each other. The contact rod 703 contacts and engages with the inclined block 702 on the same side. The inclined block 702 can push the contact rod 703 and the limiting block 601 to move forward through the inclined surface. The contact block 704 is connected to the side of the two limiting blocks 601 that are far from each other. The contact block 704 contacts the inclined frame 701. The inclined surface on the inclined frame 701 will push the contact block 704 and the limiting block 601 to move backward. The inclined frame 8 is connected to the front of the limiting frame 108. The inclined frame 8 is used for guiding and supporting the pile.

[0043] The lifting block 105 is fixed to the limiting block 601 by the clamping rod 603. When the dual-shaft motor 502 is off, the output shaft is in a relaxed state. During piling, the lower pressure frame 104 moves downward with the lifting block 105 and the clamping block 106. All components on the lower pressure frame 104 will move downward with it. The clamping block 106 clamps the pile and moves downward. The pile is driven into the ground by the piling assembly. When the lifting block 105 moves downward, it will pull the pull rope 504 downward, causing the pull rope 504 to drive the winding wheel 503 to reverse. The pulley 505 will rotate due to friction, and the output shaft will spin freely. When the contact block 704 on the limiting block 601 moves down to contact the inclined surface of the inclined frame 701, the pile is driven into the appropriate depth. The contact block 704 continues to move downward and will be pushed backward by the inclined surface. Lateral movement causes the limiting block 601 to move backward. The sliding groove 602 on the limiting block 601 will disengage from the clamping rod 603. After the pile is driven in, the worker controls the clamping block 106 to release the pile and controls the lower pressure frame 104 to move upward and reset. Because the limiting block 601 no longer limits the clamping rod 603, the lower pressure frame 104 moves upward, taking the limiting block 601 and other components upward. The lifting block 105 will remain in its original position under its own weight and will not move upward. The rope 504 suspends the lifting block 105. When the lower pressure frame 104 moves upward and resets with the limiting block 601, the contact rod 703 on the limiting block 601 will contact the inclined block 702. The inclined surface of the inclined block 702 pushes the contact rod 703 and the limiting block 601 forward, taking the clamping rod 601 and other components upward. After the contact block 704 moves forward to reset and the lower pressure frame 104 moves to reset, the device can be moved away. Upon reaching the next piling location, the lifting block 105 can be moved to align the clamping block 106 with the pile and clamp it. The pile will rest against the inclined frame 8, which prevents the pile from rubbing against the limiting frame 108. After the pile is fixed, the operating controller 109 starts the dual-axis motor 502, causing the output shaft of the dual-axis motor 502 to rotate and drive the winding wheel 503 to rotate. The winding wheel 503 will wind the rope 504. The pulley 505 limits the rope 504, and the rope 504 moves the lifting block 105 and the clamping block 106 upward. The clamping block 106 holds the pile and lifts it up. The worker can then put the lower end of the pile into the limiting frame 108. The lifting block 105 moves upward. When the lever 603 slides into the lower pressure frame 104, it will contact the inclined surface of the limit block 601. The limit block 601 will push the lever 603 to move inward, compressing the locking spring 604. After the lever 603 aligns with the slide groove 602, the lever 603 will move outward and reset under the reset action of the locking spring 604. The lever 603 will then engage with the slide groove 602, and the lifting block 105 will be limited on the lower pressure frame 104. The operator can then turn off the dual-axis motor 502 and proceed with the pile driving work. In this way, after a pile is driven, the lifting block 105 is not reset immediately. The lifting block 105 clamps the pile at a lower position. Compared to the lifting block 105 being at a higher position, this is more convenient for the operator to operate, less strenuous, safer, and easier to adjust.

[0044] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.

Claims

1. A piling device for building construction, characterized in that: The device includes a base frame (1), a connecting frame (101), a column (102), an electric slide rail (103), a lower pressure frame (104), a controller (109), a clamping assembly, a power assembly, and a piling assembly. The controller (109) is mounted on the top left side of the base frame (1). The connecting frame (101) is connected to the middle of the base frame (1). The column (102) is connected to the top rear side of the connecting frame (101). Electric slide rails (103) are symmetrically mounted on the column (102). The electric slide rails (103) are electrically connected to the controller. The lower pressure frame (104) is slidably connected between the two electric slide rails (103). A clamping assembly is mounted on the lower pressure frame (104). A power assembly is provided on the connecting frame (101), and a piling assembly is provided on the lower pressure frame (104). Its features include… The piling equipment also includes a limiting frame (108), an electric push rod (301), a sliding block (302), a pushing block (307), and a limiting wheel (308). The sliding block (302) is slidably connected to the lower side of the column (102), and the limiting frame (108) is connected to the sliding block (302). The electric push rod (301) is symmetrically installed on the top of the base frame (1) at the position in front of the column (102). The telescopic rods of the electric push rod (301) are all connected to the sliding block (302). The electric push rod (301) is electrically connected to the controller (109). The pushing block (307) is slidably connected to the connecting frame (101) and the limiting frame (108) at even intervals. The limiting wheel (308) is rotatably connected to the inner side of the pushing block (307).

2. A piling device for building construction according to claim 1, characterized in that: The clamping assembly includes a lifting block (105), a clamping block (106), a rotating shaft (107), and a transmission assembly. The lifting block (105) is installed on the lower side of the lower pressure frame (104). The rotating shaft (107) is symmetrically and rotatably connected to the lifting block (105). The clamping block (106) is connected to the rotating shaft (107). The transmission assembly is provided on the lifting block (105).

3. A piling device for construction engineering according to claim 2, characterized in that: The transmission assembly includes a reference column (201), a cylinder (202), a short rack (203), and a rotating gear (204). The reference column (201) is connected to the middle of the lifting block (105). The short rack (203) located inside the lifting block (105) is symmetrically slidably connected to the reference column (201). The cylinder (202) is symmetrically installed on the lower side of the reference column (201). The cylinder (202) is electrically connected to the controller (109). The telescopic rods of the cylinder (202) are all connected to the short rack (203) on the same side. The rotating shaft (107) is connected to the rotating gear (204). The rotating gear (204) meshes with the short rack (203) on the same side.

4. A piling device for building construction according to claim 3, characterized in that: The power assembly includes a splined shaft (303), a sleeve (304), a drive gear (305), a drive motor (306), a connecting plate (309), a gear ring (3010), and a turntable (3011). The drive motor (306) is installed on the rear side of the connecting frame (101). The drive motor (306) is electrically connected to the controller (109). The splined shaft (303) is connected to the output shaft of the drive motor (306). The splined shaft (303) passes through the connecting frame (101). The sleeve (304) is slidably connected to the upper side of the splined shaft (303). The sleeve (304) is rotatably connected to the sliding block (302). The drive gear (305) is connected to the sleeve (304). The drive motor (306) outputs... A drive gear (305) is also connected to the shaft. A connecting plate (309) is rotatably connected to both the connecting frame (101) and the limiting frame (108). The two connecting plates (309) are symmetrical. A gear ring (3010) is connected to the outer side of each connecting plate (309). The gear ring (3010) meshes with the drive gear (305) on the same side. A turntable (3011) is connected to the bottom of each connecting plate (309). An arc groove (3012) is evenly opened on each turntable (3011). The push block (307) is slidably connected to the arc groove (3012) on the same side. When the turntable (3011) rotates, it can push the corresponding push block (307) to move inward through the arc groove (3012) and limit the stake through the limiting wheel (308).

5. A piling device for building construction according to claim 4, characterized in that: The piling assembly includes a piling block (401), a long rack (402), a drive shaft (403), a gear (404), a drive motor (405), and a drive gear (406). The piling block (401) is slidably connected to the upper side of the lower pressure frame (104). The long rack (402) is symmetrically connected to the inner side of the piling block (401). The drive motor (405) is installed on the rear side of the lower pressure frame (104). The drive motor (405) is connected to the controller (106). 9) Electrically connected, the upper side of the lower pressure frame (104) is symmetrically rotated with a drive shaft (403), the output shaft of the drive motor (405) is connected to the drive shaft (403) on the left side, the front side of both drive shafts (403) is connected with a missing gear (404), the toothed part of both missing gears (404) meshes with the long rack (402) on the same side, the rear side of both drive shafts (403) is connected with a drive gear (406), the two drive gears (406) mesh with each other.

6. A piling device for building construction according to claim 5, characterized in that: The piling equipment also includes a bracket (901) and a second cylinder (902). The bottom of the base frame (1) is supported by two brackets (901). Each bracket (901) is symmetrically connected to a second cylinder (902). Each second cylinder (902) is electrically connected to a controller (109). The telescopic rods of the second cylinder (902) are connected to the base frame (1).

7. A piling device for building construction according to claim 6, characterized in that: The piling equipment also includes a support frame (501), a dual-axis motor (502), a winding wheel (503), a pull rope (504), and a pulley (505). The support frame (501) is connected to the top of the column (102). The dual-axis motor (502) is installed on the rear side of the support frame (501). The dual-axis motor (502) is electrically connected to the controller (109). The winding wheel (503) is connected to both output shafts of the dual-axis motor (502). The pull rope (504) is wound on both winding wheels (503). The pulley (505) is symmetrically rotated on the front side of the support frame (501). The tail ends of the two pull ropes (504) pass over the pulley (505) on the same side and pass through the lower pressure frame (104) to connect with the lifting block (105).

8. A piling device for building construction according to claim 7, characterized in that: The piling equipment also includes a limiting block (601), a locking rod (603), and a locking spring (604). The bottom of the lower pressure frame (104) is symmetrically and slidably connected to the limiting block (601). The lifting block (105) is symmetrically and slidably connected to the locking rod (603). The locking rod (603) and the lifting block (105) are both connected to the locking spring (604). The inner side of the limiting block (601) is provided with a sliding groove (602). The locking rod (603) is engaged with the sliding groove (602) on the same side. The bottom surface of the inner side of the limiting block (601) is inclined. When the lifting block (105) moves up, the locking rod (603) will contact the inclined surface.

9. A piling device for construction engineering according to claim 8, characterized in that: The piling equipment also includes an inclined frame (701), an inclined block (702), a contact rod (703), a contact block (704), and an inclined frame (8). The inclined frame (701) is symmetrically connected to the top of the limiting frame (108). The inclined block (702) is symmetrically connected to the front side of the upper part of the column (102). The two limiting blocks (601) are connected to the side that is close to each other with a contact rod (703). The contact rod (703) is in contact with the inclined block (702) on the same side. The two limiting blocks (601) are connected to the side that is far away from each other with a contact block (704). The contact block (704) is in contact with the inclined frame (701). The inclined frame (8) is connected to the front side of the limiting frame (108).