Connection structure and connection method
The connection structure between batter piles and precast superstructures uses a tubular design with inclined holes and pipes to form a complete truss, addressing the challenge of larger hole sizes and enhancing resistance to horizontal forces.
Patent Information
- Application Number
- JP2022172304
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-10-27
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2042-10-27
AI Technical Summary
The connection between batter piles and precast superstructures in piers is challenging due to the need for larger holes in the superstructure, which complicates reinforcement and reduces the effectiveness of the truss structure, leading to excess bending moments.
A connection structure featuring a tubular batter pile with a hole of similar inclination in the precast superstructure, using a connecting pipe with an inclination that follows the batter pile, and filling the connection with a material to secure the pipe in place, forming a complete truss structure.
This structure effectively resists horizontal forces while minimizing the diameter of the holes in the superstructure, ensuring a stable and efficient connection.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a connection structure between a batter pile and a precast superstructure. [Background technology]
[0002] Piers used for mooring ships, etc., have a structure in which the superstructure is supported by piles. By using batter piles as these piles, it is possible to effectively resist horizontal forces, and it is possible to omit the need to reinforce the piles with braces, etc.
[0003] The superstructure can be constructed by pouring concrete on-site, but this is strongly affected by meteorological and oceanographic conditions such as tides and waves, which poses the risk of delays in the project and impacts on quality and the environment. Furthermore, when renovating piers at private facilities currently in operation, the construction period can be lengthened, which could disrupt operational activities. For this reason, precast concrete superstructures, as in Patent Document 1, are sometimes used to shorten construction periods, streamline construction, improve quality, and ensure safety. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. 2019-152089 Summary of the Invention [Problem to be solved by the invention]
[0005] When constructing a pier using a precast superstructure, the precast superstructure is lowered vertically from above the previously cast piles and connected to the piles, but the problem here is the connection between the batter piles and the precast superstructure. Normally, holes are made in the precast superstructure to accommodate the piles, the size of which is approximately the pile diameter plus a construction error, but in the case of batter piles, the holes for inserting the piles must be larger because the piles are at an angle, and the larger holes require more time for post-construction work such as reinforcement.
[0006] On the other hand, in Patent Document 1, a curved connecting member is used to connect a batter pile to a precast superstructure, and the inclined part of the connecting member is inserted into the head of the batter pile and fixed, and then the vertical part of the connecting member is inserted into a hole in the precast superstructure and the hole is filled with a filler material. This allows the diameter of the hole in the precast superstructure to be reduced, even at the connection between the batter pile and the precast superstructure.
[0007] However, in Patent Document 1, the inclined portions of the batter piles and connecting members extend downward from near the underside of the precast superstructure. The effect of the batter piles is largely achieved by the truss structure formed by the batter piles and the precast superstructure, but if the inclined portions of the batter piles and connecting members are far from the center of the thickness of the precast superstructure, it is difficult to consider it a complete truss structure, and excess bending moment occurs at the pile head in response to horizontal force, reducing the effect of the batter piles.
[0008] The present invention has been made in consideration of the above-mentioned problems, and aims to provide a connection structure between a batter pile and a precast superstructure that can effectively resist horizontal forces while reducing the diameter of the holes in the precast superstructure. [Means for solving the problem]
[0009] The first invention for solving the above-mentioned problems is a connection structure between a tubular batter pile and a concrete precast superstructure, characterized in that a hole with an inclination that follows the batter pile is provided in the precast superstructure, the precast superstructure is placed on top of the batter pile, a connecting pipe with an inclination that follows the batter pile is inserted inside the hole and the upper end of the batter pile, and a filling material is filled in the connection structure.
[0010] In the connection structure of the present invention, a connecting pipe is inserted into a hole in the precast superstructure, which has a similar inclination to the batter pile, and a portion of the connecting pipe is buried inside the batter pile. The hole in the precast superstructure has a similar inclination to the batter pile, and only needs to be slightly larger in diameter than the connecting pipe, allowing the hole in the precast superstructure to be made smaller. Furthermore, because the inclination of the connecting pipe leading to the batter pile begins inside the precast superstructure, a highly complete truss structure can be achieved between the batter pile and the precast superstructure, and the batter pile can effectively resist horizontal forces.
[0011] It is also desirable that a sleeve pipe be provided on the inner surface of the hole, and that a connecting member be fixed to the upper end of the connecting pipe and the inner surface of the sleeve pipe. For example, a slit is provided in the upper end of the connecting pipe along the axial direction of the connecting pipe, and a plate material, which is the connecting member fixed to the inner surface of the sleeve pipe, is inserted into the slit and fixed to the slit. The connecting material allows the connecting pipe to be securely fixed in the hole in the precast superstructure. The fixing method using the plate material also accommodates slight deviations in the position or angle of the connecting pipe, absorbing installation errors of the batter piles and the precast superstructure.
[0012] It is also desirable that a temporary support pipe be provided at the upper end of the inclined pile, that a flange be provided at the upper end of the temporary support pipe on which the precast superstructure is placed, that the inner edge of the flange protrude into the inside of the hole, and that a protruding piece be provided on the outer surface of the connecting pipe, and that the protruding piece be placed on the inner edge of the flange. This allows the connecting pipe to be stably positioned during construction.
[0013] The connection structure is, for example, a connection structure between a batter pile and a precast superstructure in a pier at a port. This allows the holes in the precast superstructure of the pier to be narrowed in diameter while the batter piles can effectively resist horizontal forces.
[0014] The second invention is a method for connecting a tubular batter pile to a concrete precast superstructure using the connection structure of the first invention, characterized in that it comprises the steps of placing the precast superstructure on top of the batter pile, and inserting a connecting pipe with an inclination that follows the batter pile into the hole and inside the upper end of the batter pile, and filling it with filler material. The second invention is a method for connecting a batter pile to a precast superstructure using the connection structure of the first invention. [Effects of the Invention]
[0015] The present invention can provide a connection structure between a batter pile and a precast superstructure that can effectively resist horizontal forces while reducing the diameter of the holes in the precast superstructure. [Brief explanation of the drawings]
[0016] [Figure 1] A diagram showing Pier 1. [Figure 2] A diagram showing the top surface of the precast superstructure 2. [Figure 3] FIG. 1 is a diagram showing a connection structure 10. [Figure 4] FIG. 10 is a diagram showing the arrangement of a plate 111. [Figure 5] FIG. 2 is an enlarged view of the gap between the steel pipe of the batter pile 4 and the connecting pipe 13. [Figure 6] A diagram showing how the batter piles 4 and the precast superstructure 2 are connected. [Figure 7] FIG. 2 is a diagram showing the upper end of the connecting pipe 13. [Figure 8] 10 shows an example of a method for connecting the connecting pipe 13 and the sheath pipe 11. [Figure 9] FIG. 2 is a diagram showing a connection structure 10a. [Figure 10] FIG. 2 is an enlarged view showing the gap between the sheath pipe 11 and the connecting pipe 13. DETAILED DESCRIPTION OF THE INVENTION
[0017] Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the drawings.
[0018] (1. Pier 1) Fig. 1 is a diagram showing a pier 1 having a connection structure 10 according to an embodiment of the present invention, and shows a vertical cross section taken along line aa in Fig. 2, which will be described later. The pier 1 is a pier installed in the coastal area of a port or the like, and is used for mooring ships, etc.
[0019] The pier 1 is constructed with a precast superstructure 2 supported by vertical piles 3 and batter piles 4 driven into the ground at the bottom of the water. The precast superstructure 2 is a concrete plate-like member placed on top of the vertical piles 3 and batter piles 4. The vertical piles 3 and batter piles 4 are tubular piles made of steel pipes. Note that the pier 1 is not limited to having both the vertical piles 3 and batter piles 4, and it may also have only the batter piles 4.
[0020] Figure 2 is a top view of the precast superstructure 2. The precast superstructure (hereinafter simply referred to as the superstructure) 2 has a rectangular planar shape. The superstructure 2 has beams 21 in the long side direction and beams 22 in the short side direction arranged in a grid pattern on the underside of the deck slab. The long side direction and short side direction of the superstructure 2 correspond to the up-down direction and left-right direction in Figure 2, respectively.
[0021] The vertical piles 3 and the batter piles 4 are connected to the superstructure 2 at the intersections of the beams 21 and 22. At the intersections where the batter piles 4 are connected, holes 24 are provided that pass through the intersections vertically. The batter piles 4 are connected using the holes 24, which are filled with a filler F made of a cement-based material such as mortar or concrete. Some of the batter piles 4 extend from the center of the superstructure 2 in the short side direction toward one end of the short side direction, and others extend toward the other end. A pair of holes 24 is provided corresponding to each of these pairs of batter piles 4.
[0022] (2. Connection structure 10) Fig. 3 is a diagram showing the connection structure 10, and shows a vertical cross section taken along line bb in Fig. 2. As shown in Fig. 3, the connection structure 10 includes a sheath pipe 11, a temporary receiving pipe 12, a connecting pipe 13, and the like.
[0023] The sheath pipes 11 are steel pipes arranged along the inner surfaces of the holes 24 in the precast superstructure 2, and are provided in each of the pair of holes 24. The holes 24 have an inclination that follows the inclination direction of the batter piles 4, and the sheath pipes 11 also have a similar inclination. Two flange-shaped plates 111 are provided around the sheath pipe 11, one above the other. These plates 111 are embedded in the concrete of the superstructure 2.
[0024] Figure 4 is a top view of the arrangement of plates 111 in the superstructure 2. The plates 111 are provided in common to the sheath pipes 11 of each hole 24. The main reinforcements 23 in the long and short side directions of the superstructure 2 are fixed to these plates 111 by welding or the like. It is also possible to fix the main reinforcements 23 directly to the outer surface of the sheath pipe 11.
[0025] Returning to the explanation of Figure 3, the temporary support pipe 12 is a steel pipe fitted onto the upper end of the batter pile 4, and has an inclination that follows the inclination direction of the batter pile 4. A flange 121, which is an annular horizontal plate, is provided at the upper end of the temporary support pipe 12 along the circumferential direction of the temporary support pipe 12. The upper surface of the flange 121 abuts against the underside of the periphery of the hole 24 of the superstructure 2, and the inner edge of the flange 121 protrudes into the hole 24. Reference numeral 122 in the figure denotes a rib for reinforcing the flange 121, and is fixed to the underside of the flange 121 and the outer surface of the temporary support pipe 12 by welding or the like. A plurality of ribs 122 are provided at intervals around the circumferential direction of the temporary support pipe 12.
[0026] A horizontal plate 123 that protrudes inward of the temporary support pipe 12 is provided on the inner surface of the temporary support pipe 12, and the upper ends of the batter piles 4 are fixed to the underside of the plate 123 by welding or the like. A plurality of plates 123 are provided at intervals around the circumferential direction of the temporary support pipe 12. In the figure, reference numeral 124 denotes a rib for reinforcing each plate 123, and is fixed to the upper surface of the plate 123 and the inner surface of the temporary support pipe 12 by welding or the like.
[0027] The connecting pipe 13 is a steel pipe that is inserted into the hole 24 (sheath pipe 11) and the inside of the upper end of the batter pile 4. The connecting pipe 13 has an inclination that follows the inclination direction of the batter pile 4. A slit 131 is provided at the upper end of the connecting pipe 13, and a shim plate 112 fixed to the inner surface of the sheath pipe 11 by welding or the like is inserted into the slit 131.
[0028] The shim plate 112 is a plate material arranged with its plate surface in the vertical direction, and is made of a steel plate. The shim plate 112 is fixed to the slit 131 by welding or the like, and functions as a connecting member that connects the upper end of the connecting pipe 13 to the inner surface of the sheath pipe 11, and resists the pushing force or pulling force generated in the batter pile 4.
[0029] At an intermediate portion in the axial direction of the connecting pipe 13, a protruding piece 132 is provided on the outer surface of the connecting pipe 13. The protruding piece 132 is a plate member arranged with its plate surface oriented vertically, and the lower end of the protruding piece 132 rests on the upper surface of the inner edge portion of the flange 121. The protruding pieces 132 are fixed to the outer surface of the connecting pipe 13 by welding or the like, and a plurality of the protruding pieces 132 are provided at intervals in the circumferential direction of the connecting pipe 13.
[0030] The holes 24 in the superstructure 2 and the inside of the upper ends of the batter piles 4 are filled with the filler material F. Reference numeral 133 in Figure 3 denotes a locking piece provided at the lower end of the connecting pipe 13 to secure the connecting pipe 13 to the filler material F.
[0031] Figure 5 is an enlarged view of the gap between the steel pipe of the batter pile 4 and the connecting pipe 13 inside the upper end of the batter pile 4. A shear key 41 made of a round bar or the like is fixed to the inner surface of the steel pipe at the upper end of the batter pile 4, and a shear key 134 made of a round bar or the like is also fixed to the outer surface of the lower part of the connecting pipe 13 inserted into the steel pipe. These shear keys 41, 134 enable the transmission of shear force between the steel pipe of the batter pile 4 and the connecting pipe 13 via the filler material F, integrating the batter pile 4 and the connecting pipe 13. The shear keys 41, 134 are provided in multiple rows at intervals in the axial direction of the batter pile 4 and the connecting pipe 13.
[0032] The above has been explained about one of the inclined piles 4 extending toward both ends of the superstructure 2 in the short side direction, but the other inclined pile 4 is also connected to the superstructure 2 by a connection structure 10 similar to that shown in Figure 3, etc.
[0033] (3. Connection method between the batter pile 4 and the superstructure 2) Figure 6 is a diagram illustrating a method for connecting a batter pile 4 to a superstructure 2. In this embodiment, first, as shown in Figure 6(a), a temporary support pipe 12 is installed on the upper end of the batter pile 4 that has been driven in advance, as shown in Figure 6(b). The temporary support pipe 12 is fitted onto the upper end of the batter pile 4, and the upper end of the steel pipe of the batter pile 4 is fixed to a plate 123 on the inner surface of the temporary support pipe 12 by welding or the like.
[0034] Thereafter, the superstructure 2 is lowered from above the batter piles 4 and lowered vertically downward, and the superstructure 2 is placed on the flange 121 of the temporary support pipe 12 as shown in Figure 6(c). At this time, the flange 121 abuts against the underside of the periphery of the hole 24 of the superstructure 2, and the inner edge of the flange 121 protrudes inside the hole 24.
[0035] Then, as shown in Figure 6(d), concrete Con is filled into the steel pipe of the batter pile 4, and the connecting pipe 13 is inserted into the hole 24 of the superstructure 2 and into the inside of the batter pile 4. The concrete Con is filled up to below the upper end of the batter pile 4, and the lower part of the connecting pipe 13 is placed inside the upper end of the batter pile 4. At this time, the protruding piece 132 on the outer surface of the connecting pipe 13 rests on the inner edge of the flange 121 protruding inside the hole 24.
[0036] The shim plate 112 is fixed to the inner surface of the sleeve pipe 11 and the slit 131 of the connecting pipe 13 by welding or the like.
[0037] 7(a) and (b) show the upper end of the connecting pipe 13, with Fig. 7(a) showing the state before the installation of the shim plate 112 and Fig. 7(b) showing the state after the installation of the shim plate 112. Note that the plate 111 of the sheath pipe 11 and the superstructure 2 are not shown in Figs. 7(a) and (b).
[0038] A plurality of slits 131 are provided at intervals in the circumferential direction of the connecting pipe 13, and in this embodiment, eight slits 131 are formed at equal intervals at the upper end of the connecting pipe 13. These slits 131 are provided so as to extend downward from the upper end of the connecting pipe 13 along the axial direction of the connecting pipe 13.
[0039] A plurality of shim plates 112 are also provided at intervals in the circumferential direction of the sheath pipe 11, corresponding to the positions of the slits 131. The shim plates 112 can be welded to the slits 131 at any position within the shim plates 112, and because they are retrofitted, they can accommodate slight deviations in the position or angle of the connecting pipe 13, and can absorb installation errors of the batter piles 4, superstructure 2, etc.
[0040] After this, as shown in Figure 3, filler material F is filled inside the holes 24 in the superstructure 2 and the upper ends of the batter piles 4. The flange 121 of the temporary support pipe 12 also functions as a bottom formwork when filling with filler material F, reducing the work required to set up the formwork. A sealant (not shown) can be applied in advance to the upper surface of the flange 121 to reliably prevent the filler material F from leaking between the superstructure 2 and the flange 121. The filler material F is also filled inside the temporary support pipe 12, and when the temporary support pipe 12 is installed (see Figure 6(b)), a sealing material (not shown) such as a filler is also applied to close the bottom end of the gap between the temporary support pipe 12 and the batter pile 4.
[0041] The above steps form the connection structure 10 shown in Figure 3 etc. In this embodiment, the superstructure 2 is made of precast members, which makes it possible to shorten the construction period and streamline construction, and since almost all of the processes after the installation of the superstructure 2 can be carried out by work on the top surface of the superstructure 2, intertidal work below the superstructure 2 is reduced and construction is easier.
[0042] As explained above, in the connection structure 10 of this embodiment, the connecting pipe 13 is inserted into the hole 24 provided in the superstructure 2, which has the same inclination as the batter pile 4, and a part of it is buried inside the batter pile 4. The hole 24 in the superstructure 2 has the same inclination as the batter pile 4, and only needs to have a diameter slightly larger than that of the connecting pipe 13, so the diameter of the hole 24 in the superstructure 2 can be made smaller. Furthermore, because the inclination of the connecting pipe 13 continuing to the batter pile 4 begins inside the superstructure 2, a highly complete truss structure can be realized between the batter pile 4 and the superstructure 2, and the batter pile 4 can effectively resist horizontal forces.
[0043] In this embodiment, the shim plate 112 is fixed to the inner surface of the sheath pipe 11 and the slit 131 of the connecting pipe 13, so that the connecting pipe 13 can be reliably fixed in the hole 24 of the superstructure 2. The fixing method using the shim plate 112 can also accommodate slight deviations in the position or angle of the connecting pipe 13, and can absorb installation errors of the batter piles 4, the superstructure 2, etc. Furthermore, welding of the shim plate 112 can be performed within reach from the top surface of the superstructure 2, making the work easy.
[0044] In addition, in this embodiment, the protruding piece 132 on the outer surface of the connecting pipe 13 is configured to be placed on the inner edge of the flange 121 of the temporary support pipe 12 that protrudes inside the hole 24 of the superstructure 2, allowing the connecting pipe 13 to be positioned stably during construction.
[0045] In addition, the connection structure 10 of this embodiment is a connection structure between a batter pile 4 and a superstructure 2 at a pier 1 in a port, and at the pier 1, the diameter of the hole 24 in the superstructure 2 can be reduced while the batter pile 4 can effectively resist horizontal forces.
[0046] However, the present invention is not limited to the above-described embodiments. For example, in this embodiment, the connection structure 10 is applied to the pier 1 of a port, but the application of the connection structure 10 is not limited to this.
[0047] Furthermore, the configurations of the temporary support pipe 12 and the connecting pipe 13 are not limited to those described above. For example, instead of fixing the plate 123 of the temporary support pipe 12 to the upper end of the steel pipe of the batter pile 4 by welding or the like, it is also possible to fix the temporary support pipe 12 by inserting a wedge-shaped metal piece between the temporary support pipe 12 and the steel pipe of the batter pile 4. In this embodiment, the temporary support pipe 12 is fitted onto the steel pipe of the batter pile 4, but the temporary support pipe 12 may also be inserted inside the steel pipe. Furthermore, instead of placing the superstructure 2 on the temporary support pipe 12, it is also possible to protrude a temporary support member downward from the superstructure 2 and install this temporary support member at the upper end of the batter pile 4, in which case the temporary support pipe 12 described above would be omitted.
[0048] In this embodiment, the shim plate 112 is welded and fixed to the slit 131 of the connecting pipe 13, and the connecting pipe 13 and the sleeve pipe 11 are connected by the shim plate 112. However, as shown in FIG. 8( a), it is also possible to make the shim plate 112 L-shaped with the inner end bent downward and fix the bent portion to the connecting pipe 13 by welding or the like. Also, as shown in FIG. 8( b), it is also possible to fix a pair of plates 135 (pull-out resistance plates) protruding upward from the connecting pipe 13 to the connecting pipe 13 by welding or the like, insert the shim plate 112 into the gap between the pair of plates 135, and fix the shim plate 112 and these plates 135 by welding or the like. The shim plates 112 in FIGS. 8( a) and 8( b) and the pair of plates 135 in FIG. 8( b) are provided in plural numbers at intervals in the circumferential direction of the sleeve pipe 11 or the connecting pipe 13, and it is possible to omit the slit 131 in the example of FIGS. 8( a) and 8( b). In contrast to this, the connection method using slits 131 as shown in FIG. 7 is superior in that it requires fewer members and is easy to deal with construction errors.
[0049] 9, the shim plate 112 can be omitted to further reduce the diameter of the hole 24. In this case, the connecting pipe 13 is also not provided with the slit 131.
[0050] 10 is an enlarged view of the gap between the sheath pipe 11 and the connecting pipe 13. In this example, shear keys 113 made of round steel bars or the like are fixed in multiple rows, one above the other, to the inner surface of the sheath pipe 11, and similar shear keys 134 are also fixed in multiple rows, one above the other, to the outer surface of the upper part of the connecting pipe 13 placed inside the sheath pipe 11. These shear keys 113, 134 enable the transmission of shear force via the filler material F between the sheath pipe 11 and the connecting pipe 13, and the superstructure 2 and the connecting pipe 13 are integrated together.
[0051] While the preferred embodiments of the present invention have been described above with reference to the accompanying drawings, the present invention is not limited to these examples. It is clear that those skilled in the art can conceive of various modifications or alterations within the scope of the technical ideas disclosed herein, and it is understood that these modifications also fall within the technical scope of the present invention. [Explanation of symbols]
[0052] 1: Pier 2: Precast superstructure 3: Vertical pile 4: Inclined stake 10, 10a: Connection structure 11: Sheath tube 12: Temporary support pipe 13: Connecting pipe 24: Hole 111, 123, 135: Plates 112: Shim plate 131: Slit 132:Protruding piece
Claims
1. A connection structure between a tubular batter pile and a concrete precast superstructure, The precast superstructure is provided with holes having an inclination along the batter piles, The precast superstructure is placed on the batter piles, A connection structure characterized in that a connecting pipe having an inclination along the batter pile is inserted into the hole and inside the upper end of the batter pile, and is filled with filler material.
2. a sheath tube is provided on the inner surface of the hole; 2. The connection structure according to claim 1, wherein a connecting member is fixed to an upper end of the connecting pipe and an inner surface of the sleeve pipe.
3. a slit extending along the axial direction of the connecting pipe is provided at the upper end of the connecting pipe; 3. The connection structure according to claim 2, wherein a plate material serving as the connecting member fixed to the inner surface of the sleeve pipe is inserted into the slit and fixed to the slit.
4. A temporary support pipe is provided at the upper end of the batter pile, A flange on which the precast superstructure is placed is provided at the upper end of the temporary support pipe, an inner edge of the flange protruding into the hole; A protruding piece is provided on the outer surface of the connecting pipe, 2. The connection structure according to claim 1, wherein the protruding piece is placed on an inner edge of the flange.
5. 5. The connection structure according to claim 1, wherein the connection structure is a connection structure between a batter pile and a precast superstructure in a pier at a port.
6. A method for connecting a tubular batter pile to a concrete precast superstructure using the connection structure according to claim 1, placing the precast superstructure on the batter piles; A step of inserting a connecting pipe having a slope along the baffle into the hole and the inside of the upper end of the baffle and filling it with a filler material; A connection method comprising:
Citation Information
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