Waterproof structure of internal supporting lattice stand column pile
By filling the prestressed pipe pile with concrete plugs, installing a second clamp and rubber waterstop on the outside, and welding the embedded steel plate at the connection between the embedded steel plate and the raft slab, the waterproofing problem of the prestressed pipe pile was solved, and effective waterproofing and rapid construction of the support structure in the foundation pit were achieved.
Patent Information
- Application Number
- CN202423006203.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-06
AI Technical Summary
Traditional steel lattice columns have low shear and bending strength, making it difficult to cope with the problems of soil erosion and quicksand caused by soft soil layers and high groundwater levels. Furthermore, after using prestressed pipe piles to replace steel lattice columns, groundwater can easily enter the basement through the central hole.
Concrete plugs are filled inside prestressed pipe piles, and second clamps and rubber waterstops are installed on the outside. Embedded steel plates are also welded at the connection between the embedded steel plate and the raft slab. These measures are used to prevent groundwater seepage.
It effectively prevents groundwater from entering the basement through prestressed pipe piles, improves the waterproof performance of the support structure in the foundation pit, and allows for rapid construction, reducing construction costs.
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Figure CN223510363U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of internal support foundation pit support structure, concretely relates to a waterproof structure of internal support lattice column pile. BACKGROUND
[0002] The utility model discloses the subject matter related to the internal support lattice column pile of the related technology disclosed in CN105239594B prestressed pipe pile column.
[0003] In the internal support support structure of foundation pit, the shear and bending strength of traditional steel lattice column is low, and it is difficult to deal with the problems of flow soil and flow sand caused by soft soil layer pressure and high underground water level, and it is necessary to introduce rotary digging equipment for building steel lattice column in the internal construction of foundation pit, which increases construction cost and construction period, therefore, people need a lattice column with high shear and bending strength and fast construction.
[0004] However, using prestressed pipe pile to replace steel lattice column has a waterproof problem, the prestressed pipe pile is hollow, and after the completion of foundation pit, underground water can enter the basement through the central hole of the prestressed pipe pile. UTILITY MODEL CONTENTS
[0005] The utility model aims at providing a waterproof structure of internal support lattice column pile to solve the problem of how to prevent underground water from entering the basement through the central hole of the prestressed pipe pile after using prestressed pipe pile to replace steel lattice column in the internal support support structure of foundation pit.
[0006] To solve the above technical problems, the utility model specifically provides the following technical scheme:
[0007] A waterproof structure of internal support lattice column pile, the internal support lattice column pile is a prestressed pipe pile, the prestressed pipe pile is used for connecting support beams to form the internal support support structure of foundation pit, the waterproof structure includes a pipe plug formed by filling concrete in the prestressed pipe pile, the pipe plug is arranged at the connection between the prestressed pipe pile and the raft, and the pipe plug is located below the raft, and the pipe plug is used for blocking underground water from leaving the inside of the prestressed pipe pile.
[0008] Further, a second hoop is mounted on the outer side of the prestressed pipe pile, and the second hoop is arranged at the connection between the prestressed pipe pile and the raft.
[0009] Further, a rubber waterstop piece is inserted between the second hoop and the prestressed pipe pile, and the rubber waterstop piece is used for preventing underground water from penetrating the gap between the prestressed pipe pile and the second hoop.
[0010] Furthermore, a pre-embedded steel plate is welded to the top of the second clamp, and the anchor bar of the pre-embedded steel plate is connected to the steel reinforcement skeleton of the raft slab as a whole. The pre-embedded steel plate is used to prevent groundwater from seeping into the gap between the raft slab and the second clamp.
[0011] In another embodiment of this application, a steel pipe pile is provided between the two prestressed pipe piles, and the steel pipe pile and the prestressed pipe pile are connected by welding. The steel pipe pile is set at the height of the raft slab.
[0012] Furthermore, an embedded steel plate is welded to the top of the steel pipe pile and surrounds the steel pipe pile. The anchor bars of the embedded steel plate are connected to the steel reinforcement skeleton of the raft slab as a whole. The embedded steel plate is used to prevent groundwater from seeping into the gap between the raft slab and the steel pipe pile.
[0013] Furthermore, after the prestressed pipe piles above the raft are removed, a water-stop steel plate is welded to the top of the embedded steel plate, and the water-stop steel plate is used to seal the through hole in the center of the embedded steel plate.
[0014] Furthermore, the height of the tube plug is 5 meters.
[0015] Compared with the prior art, this application has the following advantages:
[0016] This invention provides a waterproof structure for internally supported lattice column piles. By casting the raft slab and prestressed pipe piles into one piece, and filling the interior of the prestressed pipe piles with impermeable concrete, it solves the problem of how to prevent groundwater from entering the basement through the central hole of the prestressed pipe piles after using prestressed pipe piles to replace steel lattice columns in the internal support structure of the foundation pit. Attached Figure Description
[0017] To more clearly illustrate the embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings in the following description are merely exemplary, and those skilled in the art can derive other embodiments based on the provided drawings without creative effort.
[0018] Figure 1 This is a front view of the welded structure of two prestressed pipe piles according to the first embodiment of this utility model;
[0019] Figure 2 This is a top view of the welded structure of two prestressed pipe piles according to the first embodiment of this utility model;
[0020] Figure 3This is a cross-sectional view of the connection structure between the pile top and the support beam of the prestressed pipe pile according to the first embodiment of this utility model.
[0021] Figure 4 This is a schematic diagram showing the location of the connection structure between the pile top and the support beam of the prestressed pipe pile in the foundation pit, according to the first embodiment of this utility model.
[0022] Figure 5 This is a schematic diagram showing the location of the connection structure of the prestressed pipe pile, support beam and raft slab inside the foundation pit in the first embodiment of this utility model.
[0023] Figure 6 This is a cross-sectional view of the connection structure between the prestressed pipe pile and the raft slab in the first embodiment of this utility model.
[0024] Figure 7 for Figure 6 A cross-sectional view along the AA direction;
[0025] Figure 8 This is a cross-sectional view of the connection structure between the steel pipe pile and the support beam according to the second embodiment of this utility model;
[0026] Figure 9 This is a schematic diagram showing the location of the connection structure of the prestressed pipe pile, steel pipe pile, support beam and raft slab inside the foundation pit in the second embodiment of this utility model.
[0027] The labels in the diagram represent the following:
[0028] 1-Foundation pit; 11-Raft foundation; 2-Support beam; 3-Column pile; 31-Prestressed pipe pile; 32-Weld; 33-First clamp; 34-Second clamp; 35-Bolt; 36-Steel pipe pile; 37-Pin; 38-Pipe plug; 4-Reinforcing cage; 41-Main reinforcement; 42-Steel plate; 5-Embedded steel plate; 51-Anchor bar; 6-Rubber waterstop; 7-Waterstop steel plate. Detailed Implementation
[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0030] (First Embodiment)
[0031] The following describes a construction method for internally supported lattice column piles, comprising the following steps:
[0032] Step 1: Construction Preparation: Conduct a detailed site survey to understand the geological conditions and groundwater level. Arrange the construction site according to the design requirements, determine the pile positions and mark them. Prepare construction materials such as prestressed pipe piles 31, steel cages 4, concrete, embedded steel plates 5, rubber waterstops 6, first clamps 33, and second clamps 34, and ensure that the quality of the materials meets the requirements.
[0033] Step 2: Install prestressed pipe pile 31: Lift the prestressed pipe pile 31 with specifications of HPC-600-C-130, and align the pile tip vertically with the center of the pile position. First, use the weight of the pile hammer to insert the prestressed pipe pile 31 into the ground 30cm to 50cm, then make the prestressed pipe pile 31 vertical and stable, and then use a static pressure pile driver to press the prestressed pipe pile 31 into the ground.
[0034] Step 3, Continuing the prestressed concrete pipe pile 31: Combining Figure 1 , Figure 2 When the length of the prestressed pipe pile 31 is insufficient, the two sections of prestressed pipe pile 31 are connected by welding. The height of the weld 32 is not less than 10mm. The outside of the weld 32 is reinforced with a first clamp 33. The height of the first clamp 33 is not less than 500mm. The first clamp 33 is installed with M30 high-strength bolts 35 of grade 10.9. The preload of each bolt 35 is 355KN to ensure the strength and sealing of the joint between the two sections of prestressed pipe pile 31.
[0035] Step 4: Connect the top of the prestressed concrete pipe pile 31 to the supporting beam 2: Combine Figure 3 A precast steel cage 4 with a diameter of 300mm is inserted into the top of the pile. The bottom of the steel cage 4 is closed by a steel plate 42 with a diameter of 310mm. The main reinforcement 41 of the steel cage 4 has a length of 3800mm. The top of the main reinforcement 41 of the steel cage 4 is bent outward so that the main reinforcement 41 of the steel cage 4 extends horizontally outward by 800mm. The horizontally extended main reinforcement 41 of the steel cage 4 is connected to the steel skeleton of the support beam 2 as a whole. The two are fixed by binding or welding. Then, concrete is poured simultaneously inside the prestressed pipe pile 31 and inside the mold of the support beam 2. The concrete will fill the inside of the prestressed pipe pile 31 and the mold of the support beam 2.
[0036] Step 5: Excavating underground space: combining Figure 4 After the concrete has solidified, the prestressed pipe pile 31 and the support beam 2 are firmly connected to form an integral internal support structure. The concrete inserted into the prestressed pipe pile 31 and the steel cage 4 form a pin 37, which can prevent rainwater from entering the interior of the prestressed pipe pile 31.
[0037] Then, an excavator is used to excavate an underground space between the prestressed pipe pile 31 and the support beam 2. It should be noted that the earthwork excavation process should adopt the basin excavation technique, and the area within 1m around the prestressed pipe pile 31 should be protected to prevent the excavator from colliding with the prestressed pipe pile 31.
[0038] Step Six: Connecting Prestressed Pipe Piles 31 to Raft Slab 11: Combining Figure 5 A second clamp 34 is installed at the connection between the prestressed pipe pile 31 and the raft slab 11. The first clamp 33 and the second clamp 34 are of the same specifications. A 20mm thick rubber waterstop 6 is inserted between the second clamp 34 and the prestressed pipe pile 31. A 1000mm×1000mm embedded steel plate 5 is welded to the top of the second clamp 34. The center of the embedded steel plate 5 has a through hole for avoiding the pile body. The diameter of the through hole is greater than 600mm and less than 650mm. An anchor bar 51 with a diameter of 20mm and a length of 800mm is plugged and welded to the bottom of the embedded steel plate 5. The anchor bar 51 is connected to the steel reinforcement skeleton of the raft slab 11 as a whole. The two are fixed by binding or welding. Then, concrete is poured into the mold of the raft slab 11. After the concrete solidifies, the prestressed pipe pile 31, the second clamp 34, the rubber waterstop 6, the embedded steel plate 5 and the raft slab 11 are firmly connected as a whole.
[0039] Step 7: Remove support beam 2: Combine Figure 6 , Figure 7 According to the design requirements, the basement was constructed layer by layer from bottom to top, and the supporting beam 2 was removed. At the same time, the excess prestressed pipe piles 31 that were higher than the raft slab 11 were removed. Then, the cuts were trimmed and leveled. P8 impermeable fine stone concrete was filled into the interior of the prestressed pipe piles 31 to a height of 5 meters. Then, a water-stop steel plate 7 was welded to the top of the embedded steel plate 5 to seal the through hole in the center of the embedded steel plate 5. The water-stop steel plate 7 is a circular shape with a diameter of 650 mm. Finally, fine stone concrete was filled on top of the water-stop steel plate 7 to make the surface of the raft slab 11 flat. The concrete filled into the interior of the prestressed pipe piles 31 forms a pipe plug 38, which can prevent groundwater from leaving the interior of the prestressed pipe piles 31.
[0040] When the internal support foundation pit support structure has two or more layers of support beams 2, step four also includes connecting the pile body of the prestressed pipe pile 31 to the support beam 2: combining Figure 8 A second clamp 34 is installed at the connection between the pile body and the support beam 2. An embedded steel plate 5 is welded to the top of the second clamp 34. The anchor bar 51 of the embedded steel plate 5 is connected to the steel reinforcement skeleton of the support beam 2 as a whole. The two are fixed by binding or welding. Then, concrete is poured into the mold of the support beam 2. After the concrete solidifies, the pile body, the second clamp 34, the embedded steel plate 5 and the support beam 2 are firmly connected as a whole.
[0041] (Second Embodiment)
[0042] Compared to the technique of using a precast steel cage 4 to connect the prestressed pipe pile 31 and the support beam 2 into one unit, the second clamp 34 has a weaker bond strength with the prestressed pipe pile 31. When the depth of the foundation pit 1 is large and the weight of the support beam 2 is heavy, the second clamp 34 is at risk of sliding down from the pile body of the prestressed pipe pile 31.
[0043] To solve this problem, one possible approach is to directly weld the pre-embedded steel plate 5 to the pile body of the prestressed pipe pile 31 instead of using the second clamp 34, thereby improving the bonding strength between the prestressed pipe pile 31 and the support beam 2.
[0044] Specifically, except for the first and second prestressed pipe piles 31 which are 15 meters long, the other prestressed pipe piles 31 are 3 to 6 meters long. Each prestressed pipe pile 31 is connected to the others by steel pipe piles 36. The total length of each prestressed pipe pile 31 and each steel pipe pile 36 is equal to the story height of the supporting beam 2. The outer diameter of the steel pipe pile 36 is the same as the outer diameter of the prestressed pipe pile 31, which is 600 mm. The specific length of the steel pipe pile 36 is less than or equal to the thickness of the supporting beam 2. The embedded steel plate 5 is welded to the steel pipe pile 36.
[0045] The specific steps for connecting the support beam 2 to the steel pipe pile 36 are as follows: the embedded steel plate 5 is welded around the steel pipe pile 36, the anchor bars 51 of the embedded steel plate 5 and the steel reinforcement skeleton of the support beam 2 are connected by binding or welding, and then concrete is poured into the mold of the support beam 2. After the concrete solidifies, the steel pipe pile 36, the embedded steel plate 5 and the support beam 2 are combined into one.
[0046] In addition, the second clamp 34 can be omitted, and the pre-embedded steel plate 5 can be directly welded to the pile body of the prestressed pipe pile 31, thereby improving the bonding strength between the prestressed pipe pile 31 and the raft slab 11.
[0047] The specific steps for connecting the raft foundation 11 to the steel pipe pile 36 are as follows: the embedded steel plate 5 is welded around the steel pipe pile 36, the anchor bars 51 of the embedded steel plate 5 and the steel reinforcement skeleton of the raft foundation 11 are connected by binding or welding, and then concrete is poured into the mold of the supporting beam 2. After the concrete solidifies, the steel pipe pile 36, the embedded steel plate 5 and the raft foundation 11 are integrated into one, and the rubber waterstop 6 is not required.
[0048] It should be emphasized that the specifications of the prestressed pipe pile 31, the dimensions of the steel pipe pile 36, the dimensions of the support beam 2, and the dimensions of the embedded steel plate 5 in the first and second embodiments are only examples, and their specific dimensions should be designed and selected according to the site conditions.
[0049] The above embodiments are merely exemplary embodiments of this utility model and are not intended to limit this utility model. The scope of protection of this utility model is defined by the claims. Those skilled in the art can make various modifications or equivalent substitutions to this utility model within its substance and scope of protection, and such modifications or equivalent substitutions should also be considered as falling within the scope of protection of this utility model.
Claims
1. A waterproof structure for internally supported lattice column piles, characterized in that, The internal support grid column pile is a prestressed pipe pile (31), which is used to connect the support beam (2) to form the internal support structure of the foundation pit (1); The waterproof structure includes a plug (38) formed by concrete filled inside the prestressed pipe pile (31). The plug (38) is located at the connection between the prestressed pipe pile (31) and the raft slab (11) and is located below the raft slab (11). The plug (38) is used to prevent groundwater from leaving the interior of the prestressed pipe pile (31).
2. The waterproof structure of the internally supported lattice column pile according to claim 1, characterized in that, A second clamp (34) is installed on the outside of the prestressed pipe pile (31), and the second clamp (34) is located at the connection between the prestressed pipe pile (31) and the raft slab (11).
3. The waterproof structure of the internally supported lattice column pile according to claim 2, characterized in that, A rubber waterstop (6) is inserted between the second clamp (34) and the prestressed pipe pile (31). The rubber waterstop (6) is used to prevent groundwater from seeping into the gap between the prestressed pipe pile (31) and the second clamp (34).
4. The waterproof structure of the internally supported lattice column pile according to claim 2, characterized in that, The top of the second clamp (34) is welded with a pre-embedded steel plate (5) surrounding the second clamp (34). The anchor bar (51) of the pre-embedded steel plate (5) is connected to the steel reinforcement skeleton of the raft (11) as a whole. The pre-embedded steel plate (5) is used to prevent groundwater from seeping into the gap between the raft (11) and the second clamp (34).
5. The waterproof structure of the internally supported lattice column pile according to claim 1, characterized in that, A steel pipe pile (36) is provided between the two prestressed pipe piles (31). The steel pipe pile (36) and the prestressed pipe pile (31) are connected by welding. The steel pipe pile (36) is set at the height of the raft slab (11).
6. The waterproof structure of the internally supported lattice column pile according to claim 5, characterized in that, The top of the steel pipe pile (36) is welded with an embedded steel plate (5) surrounding the steel pipe pile (36). The anchor bar (51) of the embedded steel plate (5) is connected to the steel reinforcement skeleton of the raft slab (11) as a whole. The embedded steel plate (5) is used to prevent groundwater from seeping into the gap between the raft slab (11) and the steel pipe pile (36).
7. A waterproof structure for an internally supported lattice column pile according to claim 4 or 6, characterized in that, After the prestressed pipe pile (31) above the raft (11) is removed, a water-stop steel plate (7) is welded to the top of the embedded steel plate (5), and the water-stop steel plate (7) is used to seal the through hole in the center of the embedded steel plate (5).
8. The waterproof structure of the internally supported lattice column pile according to claim 1, characterized in that, The height of the plug (38) is 5 meters.
Citation Information
Patent Citations
Prestressed pipe pile column
CN105239594B