WO2023139425A1 - Pile-substructure column system and construction method of the pile-substructure column system - Google Patents

Pile-substructure column system and construction method of the pile-substructure column system Download PDF

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Publication number
WO2023139425A1
WO2023139425A1 PCT/IB2022/061112 IB2022061112W WO2023139425A1 WO 2023139425 A1 WO2023139425 A1 WO 2023139425A1 IB 2022061112 W IB2022061112 W IB 2022061112W WO 2023139425 A1 WO2023139425 A1 WO 2023139425A1
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pile
substructure
steel casing
substructure column
structures
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PCT/IB2022/061112
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French (fr)
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Thanh Minh VO
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Vo Thanh Minh
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Publication of WO2023139425A1 publication Critical patent/WO2023139425A1/en

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    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D27/00Foundations as substructures
    • E02D27/10Deep foundations
    • E02D27/12Pile foundations

Definitions

  • the present invention relates to a continuous pile-substructure column system, wherein the substructure column is extended from the pile utilizing the construction method of this pile-substructure column system.
  • the pile-substructure column structures are organized into a certain shape, meeting the demands of load bearing as well as architecture and finished surface requirements.
  • the invention may be applied in civil construction areas such as foundation systems; basement columns in high-rise buildings or the foundation systems; columns, piers of bridges, harbors, and pump houses of bridges over water surfaces.
  • Substructure column Level 00 is the nominal height conventionally implying surfaces with clear physical boundaries such as ground or water surface. Substructure columns are columns used in construction works with a component under the level 00 such as basement in high-rise buildings, piers of bridges and pump houses. Substructure columns in the present invention is the column that is installed above ground and above level 00 and directly or indirectly connects via the pile cap system, with the pile foundation system underneath, and under level 00.
  • pile foundation systems wherein the piles are concrete piles, steel piles, precast or cast-in-situ, constructed by drilling, hammering or pressing.
  • Such a system is usually constructed on the construction surface, e.g., ground surface for high-rise building, or water surface for bridges, conventionally connected by pile cap systems installed at contiguous areas of basement bottoms for high-rise buildings, riverbed for bridges, and connected with column systems for houses or piers.
  • This system of pile caps and columns are composed of cast-in-situ reinforced concrete constructed by formwork and cast-in-situ pumping system.
  • This system is broadly used in civil construction works and infrastructure works and is the prevailing structure system for medium and large projects.
  • the columns underground for high-rise building, or piers under water for bridges shall hereinafter be called substructure columns or substructure piers, to distinguish from columns above ground or piers above the water surface which require different methods of construction.
  • the above system has the following shortcomings:
  • the present invention provides a continuous pile-substructure column system without the use of pile caps to connect with the body or main structure of the construction work to save construction time, cost and increase construction safety.
  • the pile-substructure column system provided by the invention includes:
  • the steel casing pipes (11) are stacked or aligned together with an interlocking system wherein the steel casing pipes (11) are slide guided with use of male-female (25, 26) slide rail system provided on the steel casing pipes.
  • This system shall hereinafter referred to as the stack and slide system.
  • a pile-substructure column structure is constructed along the inside of the steel casing (11), boreholes are created inside the steel casing pipes (11) by a predefined depth and filling it up with a homogeneous material from the bottom of the borehole to approximately level 00, wherein this material binds with the steel casing pipe (11) around it during the construction process and also binds with the steel casing pipe (11).
  • the present invention provides a method for constructing this pile-substructure column system. This method comprises the following steps:
  • casing pipes are fixed to guarantee that pile-substructure column structures are operationally bound together as a pile-substructure column complex, thereby overcoming the issues pertaining load imbalance whereby some piles bear the load and some do not. This increases the actual safety factor of the foundation system.
  • the steel casing pipes are driven into the ground in the stack and slide system to guarantee uniformity and accuracy of location for the individual pile-substructure column structures that constitute the pile-substructure column system.
  • the steel casing pipes and the pile-substructure column structures may be designed to form basic shapes such as triangles, crosses or letters I, L, T from a top-down view.
  • Variable piles/column layouts optimizes loading capacity (weight) and occupiable space, for example, if five piles are installed but disposed subsequently, the available parking space in the basement may be affected.
  • FIG. 1 is a schematic view illustrating the pile-substructure column system according to an embodiment of the invention.
  • FIGs. 2a, 2b is a schematic view illustrating (a) the sliding guide structure of casing pipes according to an embodiment of the invention; and (b) the sliding guide structure of casing pipes and method of binding them according to an embodiment of the invention;
  • FIGs. 3a-3e are schematic views illustrating various layouts of casing pipes according to various embodiments
  • FIGs. 4a, 4b is a schematic view illustrating the pile-substructure column system constituting a closed perimeter.
  • pile-substructure column system includes multiple steel casing pipes 11 positioned parallel to each other
  • the pile-substructure column structures 12 including piles and substructure columns are manufactured in a homogeneous manner (i.e., continuous) inserted inside each steel casing pipe 11.
  • the steel casing pipes 11 are driven into the ground, each of which elevates at a specific height within the range from the ground level to level 00.
  • the pile-substructure column structure 12 including piles and substructure columns are manufactured inside, along the steel casing pipes 11, wherein the piles penetrate into the ground at a predefined depth and the substructure columns extend along the axis of the steel casing pipes 11.
  • the steel casing pipes 11 are driven into the ground in the manner of the stacking sliding system, in particular, the steel casing pipes include components to guide the sliding.
  • the parallel sliding guide ensures the accuracy in positioning, and verticality in construction.
  • steel casing pipes are slide guided with the use of a male-female slide rail system that includes a male portion 26 sliding inside a female portion 25. These male and female portions are provided on steel casing pipes 11.
  • FIG. 2b Another embodiment is illustrated in Fig. 2b, wherein each male portion 22 on each casing pipe slides within a female portion of the intermediate slide rail system 23 and is secured by the bolt 24. Additionally, the steel casing pipes 11 may be secured by welding it into one unitary piece.
  • pile-substructure column structures are bound together to bear the calculated loads during and/or after construction in order to guarantee that individual pile-substructure column structures 12 are bound together to constitute a system of pile-column complex that bear equal loads thereby eliminating load imbalances where some piles bear the loads and some do not.
  • the casing pipes 11 may be bound by bolts or welding.
  • the pile-substructure column structures may be bound together and secured by the beam system provided on the head of the pile-substructure column structures.
  • the pile-substructure column structures 12 may be bound together by reinforced concrete jacketing for pile-substructure column structures.
  • the steel casing pipes 11 are provided to form basic shapes such as a triangle, letters I, L, T or cross shape in top-down view. This is important, because the number of piles/columns is decided by weight and the variable piles/column layouts make it possible to guarantee loading capacity (weight) while providing better/more occupiable space.
  • the combined layouts of pile-substructure column structure in various shapes also allows flexibility and adaptability to different demands of functionalities, architecture of each project. E.g. Providing additional/optimal working space of such areas as basements unattainable using conventional systems.
  • the individual pile-substructure column structures 12 may be bored, cast-in-situ pile structures, or precast structures such as steel shapes or precast concrete, or pile-substructure column structures including bored, cast-in-situ pile structures and precast structures.
  • pile-substructure column system which include three individual pile-substructure column structures, the steel casing pipes are the same but the pile-substructure column structures may be different, e.g.
  • the first pile-substructure column structure is cast-in-situ concrete
  • the second pile-substructure column structure is precast concrete
  • the third pile-substructure column structure is constructed by filling a part of the steel casing pipe with concrete, then driving the precast pile into it, thereby constituting an individual structure which includes three material components: steel casing pipe, precast pile and cast-in-situ concrete.
  • the individual pile-substructure column structures 12 is bound with steel casing pipes 11 by concrete in case the pile-substructure column structure 12 is bored, by welding in case it’s a cast-in-situ pile structure and by bolts or adhesives in case the pile-substructure column structure is a precast structure such as steel shape or precast concrete.
  • One of the advantages of the invention is characterized by connecting pile-substructure column structures 12 into pile-substructure column system working together.
  • the concrete beam system (mentioned above) may be used above the heads of the pile-substructure column structures.
  • the pile-substructure column system As shown in , if the pile-substructure column system forms a closed perimeter, the pile-substructure column system not only bears the load but also plays the role of a retaining wall of the basement thereby maximizing space and increasing cost efficiency.
  • the fundamental construction process includes:
  • the number of steel casing pipes 11 is also calculated to guarantee the bearing capacity, and the layout design of the steel casing pipes in specific shapes helps achieve requirements of load bearing capacity while providing architectural flexibility;
  • the method to produce the pile-substructure column system includes driving the steel casing pipes 11 in parallel into the ground by such methods as vibrating, pressing or hammering.
  • the steel casing pipes 11 are driven in the stacking sliding guide system, each of which is elevated at a specific height within the range from the ground level to level 00. After that, drill to remove the soil inside the casing pipes 11, with predefined diameter and depth while subsequently constructing the pile-substructure column structure 12 including piles and substructure column constructed inside the steel casing pipes 11, whereby the pile penetrates into the ground with predefined depth and the substructure column extends along the axis of the casing pipe.
  • the steel casing pipes 11 are driven into the ground in the stacking sliding guide system and then bound together to bear the calculated forces during and/or after construction where the piles and substructure column are homogeneously constructed (or monolithic/continuous).
  • the superstructure for example, the body structure of a high-rise building, or the pier, instead of having to wait for various construction processes such as basement excavation, pile cap construction, substructure column construction in the basement;
  • the modular piles allow use of one or multiple types of equipment in construction works thereby maximizing cost efficiency for equipment utilization including warranties and maintenance. Meanwhile conventional methods requiring multiple pile diameters reduces cost efficiency due to the need for boring machines of various sizes.
  • the steel casing pipes are provided in shapes different from those mentioned in the description, the height of the casing pipes may exceed the level 00, and the steel casing pipes may be bound by various methods and put in sliding guide manner by various structures, etc.

Abstract

A pile-substructure column system and construction method of this pile-substructure column system, which can bring about the advantages in terms of construction works and structures, comprising: the steel casing pipes (11) are provided in parallel and driven into the ground; the pile-substructure column structures are characterized by the homogeneity (continuity) and the steel casing pipes are driven into the ground in stacking sliding guide manner and then bound together.

Description

Pile-substructure column system and construction method of the pile-substructure column system
The present invention relates to a continuous pile-substructure column system, wherein the substructure column is extended from the pile utilizing the construction method of this pile-substructure column system. In this pile-substructure column system, the pile-substructure column structures are organized into a certain shape, meeting the demands of load bearing as well as architecture and finished surface requirements.
The invention may be applied in civil construction areas such as foundation systems; basement columns in high-rise buildings or the foundation systems; columns, piers of bridges, harbors, and pump houses of bridges over water surfaces.
Substructure column: Level 00 is the nominal height conventionally implying surfaces with clear physical boundaries such as ground or water surface. Substructure columns are columns used in construction works with a component under the level 00 such as basement in high-rise buildings, piers of bridges and pump houses. Substructure columns in the present invention is the column that is installed above ground and above level 00 and directly or indirectly connects via the pile cap system, with the pile foundation system underneath, and under level 00.
Construction works, especially medium and big scaled ones, use a lot of pile foundation systems, wherein the piles are concrete piles, steel piles, precast or cast-in-situ, constructed by drilling, hammering or pressing. Such a system is usually constructed on the construction surface, e.g., ground surface for high-rise building, or water surface for bridges, conventionally connected by pile cap systems installed at contiguous areas of basement bottoms for high-rise buildings, riverbed for bridges, and connected with column systems for houses or piers. This system of pile caps and columns are composed of cast-in-situ reinforced concrete constructed by formwork and cast-in-situ pumping system. This system is broadly used in civil construction works and infrastructure works and is the prevailing structure system for medium and large projects. The columns underground for high-rise building, or piers under water for bridges, shall hereinafter be called substructure columns or substructure piers, to distinguish from columns above ground or piers above the water surface which require different methods of construction.
The above system has the following shortcomings:
For pile caps in challenging locations such as basements of high-rise buildings, where the pile caps are built underground, or piers, where the pile caps are built at the riverbed, the process is time-consuming, expensive and safety is low due to difficult accessibility.
The use of formwork for construction of caps and columns necessitates the formation and protection of construction areas such as retaining walls or water cofferdams which are costly, time-consuming and risky in construction. These protection systems themselves require complicated construction methods to create.
To meet structural requirements, these works conventionally utilize piles with various diameters and depths which are difficult to modularize or optimize in terms of equipment, materials and load testing procedures.
There is therefore a need for a pile-substructure column system to overcome the above issues while retaining the integrity of the said structure.
To overcome the above shortcomings, the present invention provides a continuous pile-substructure column system without the use of pile caps to connect with the body or main structure of the construction work to save construction time, cost and increase construction safety.
The pile-substructure column system provided by the invention includes:
- the steel casing pipes (11) are stacked or aligned together with an interlocking system wherein the steel casing pipes (11) are slide guided with use of male-female (25, 26) slide rail system provided on the steel casing pipes.This system shall hereinafter referred to as the stack and slide system.
- a pile-substructure column structure is constructed along the inside of the steel casing (11), boreholes are created inside the steel casing pipes (11) by a predefined depth and filling it up with a homogeneous material from the bottom of the borehole to approximately level 00, wherein this material binds with the steel casing pipe (11) around it during the construction process and also binds with the steel casing pipe (11).
- connect the pile-substructure column structures into a scalable pile-substructure column system wherein all these structures work together.
The present invention provides a method for constructing this pile-substructure column system. This method comprises the following steps:
driving steel casing pipes (11) into the ground in parallel by such methods as vibrating, pressing or hammering, these steel casing pipes are driven into the ground in the stack and slide system; the casing pipes are elevated at a specific height within the range from the ground level to level 00;
drilling to take out the soil inside the steel casing pipes, with predefined diameter and depth;
create a scalable pile-substructure column structure along the inside of the steel casing (11), create a borehole inside the steel casing pipes (11) by a predefined depth and filling it up with a homogeneous material from the bottom of the borehole to approximately level 00, wherein this material binds with the steel casing pipe (11) around it during the construction process and also binds with the steel casing pipe (11);
connecting the pile-substructure column structures into a pile-substructure column system wherein all these structures work together.
With the structure and method provided by the present invention, characterized by the homogeneity (continuity) of the pile and the substructure column (pile-substructure column structure), the following advantages may be achieved:
- it is no longer necessary to implement the pile cap system which is costly, time consuming and dangerous, due to difficult construction conditions such as underground or on the riverbed;
- the piles are finished as soon as the substructure columns are finished, whereby saving time and minimizing risks to substructure column construction (similar to basement columns, or the bridge piers in the water);
- all piles, columns and pile caps, which are usually complicated and different in each location of the construction work is organized into a system of one or few pile-substructure column modules thereby optimizing and simplifying the processes of testing, checking and also standardizing equipment and material used.
Additionally, casing pipes are fixed to guarantee that pile-substructure column structures are operationally bound together as a pile-substructure column complex, thereby overcoming the issues pertaining load imbalance whereby some piles bear the load and some do not. This increases the actual safety factor of the foundation system.
The steel casing pipes are driven into the ground in the stack and slide system to guarantee uniformity and accuracy of location for the individual pile-substructure column structures that constitute the pile-substructure column system.
The steel casing pipes and the pile-substructure column structures may be designed to form basic shapes such as triangles, crosses or letters I, L, T from a top-down view. Variable piles/column layouts optimizes loading capacity (weight) and occupiable space, for example, if five piles are installed but disposed subsequently, the available parking space in the basement may be affected.
Hereinafter, the advantages, objects and detailed structures following preferred embodiments of the invention will be described with reference to the accompanying drawings, wherein:
Fig.1
is a schematic view illustrating the pile-substructure column system according to an embodiment of the invention;
Fig.2
[Figs. 2a, 2b] is a schematic view illustrating (a) the sliding guide structure of casing pipes according to an embodiment of the invention; and (b) the sliding guide structure of casing pipes and method of binding them according to an embodiment of the invention;
Fig.3
[Figs. 3a-3e] are schematic views illustrating various layouts of casing pipes according to various embodiments;
Fig.4
[Figs. 4a, 4b] is a schematic view illustrating the pile-substructure column system constituting a closed perimeter.
Hereinafter, the preferred embodiments of the invention will be described.
As shown in , pile-substructure column system includes multiple steel casing pipes 11 positioned parallel to each other The pile-substructure column structures 12 including piles and substructure columns are manufactured in a homogeneous manner (i.e., continuous) inserted inside each steel casing pipe 11. The steel casing pipes 11 are driven into the ground, each of which elevates at a specific height within the range from the ground level to level 00.
The pile-substructure column structure 12 including piles and substructure columns are manufactured inside, along the steel casing pipes 11, wherein the piles penetrate into the ground at a predefined depth and the substructure columns extend along the axis of the steel casing pipes 11.
The steel casing pipes 11 are driven into the ground in the manner of the stacking sliding system, in particular, the steel casing pipes include components to guide the sliding. The parallel sliding guide ensures the accuracy in positioning, and verticality in construction.
According to the embodiment illustrated in Fig. 2a, steel casing pipes are slide guided with the use of a male-female slide rail system that includes a male portion 26 sliding inside a female portion 25. These male and female portions are provided on steel casing pipes 11.
Another embodiment is illustrated in Fig. 2b, wherein each male portion 22 on each casing pipe slides within a female portion of the intermediate slide rail system 23 and is secured by the bolt 24. Additionally, the steel casing pipes 11 may be secured by welding it into one unitary piece.
Thereafter, the pile-substructure column structures are bound together to bear the calculated loads during and/or after construction in order to guarantee that individual pile-substructure column structures 12 are bound together to constitute a system of pile-column complex that bear equal loads thereby eliminating load imbalances where some piles bear the loads and some do not.
To bind the pile-substructure column structures, it is possible to bind the steel casing pipes 11 or directly bind the pile-substructure column structures. According to an embodiment, the casing pipes may be bound by bolts or welding.
According to another embodiment, the pile-substructure column structures may be bound together and secured by the beam system provided on the head of the pile-substructure column structures.
According to another embodiment, the pile-substructure column structures 12 may be bound together by reinforced concrete jacketing for pile-substructure column structures.
illustrates layouts of steel casing pipes 11. The steel casing pipes 11 are provided to form basic shapes such as a triangle, letters I, L, T or cross shape in top-down view. This is important, because the number of piles/columns is decided by weight and the variable piles/column layouts make it possible to guarantee loading capacity (weight) while providing better/more occupiable space. The combined layouts of pile-substructure column structure in various shapes also allows flexibility and adaptability to different demands of functionalities, architecture of each project. E.g. Providing additional/optimal working space of such areas as basements unattainable using conventional systems.
The individual pile-substructure column structures 12 may be bored, cast-in-situ pile structures, or precast structures such as steel shapes or precast concrete, or pile-substructure column structures including bored, cast-in-situ pile structures and precast structures. For example, in a pile-substructure column system which include three individual pile-substructure column structures, the steel casing pipes are the same but the pile-substructure column structures may be different, e.g. The first pile-substructure column structure is cast-in-situ concrete, the second pile-substructure column structure is precast concrete and the third pile-substructure column structure is constructed by filling a part of the steel casing pipe with concrete, then driving the precast pile into it, thereby constituting an individual structure which includes three material components: steel casing pipe, precast pile and cast-in-situ concrete.
The individual pile-substructure column structures 12 is bound with steel casing pipes 11 by concrete in case the pile-substructure column structure 12 is bored, by welding in case it’s a cast-in-situ pile structure and by bolts or adhesives in case the pile-substructure column structure is a precast structure such as steel shape or precast concrete.
One of the advantages of the invention is characterized by connecting pile-substructure column structures 12 into pile-substructure column system working together. For this purpose, the process of concreting for pile-substructure column structure 12 the concrete already adheres to the steel casing pipe 11, therefore, the welding and bolting for steel casing pipes naturally turns them into a homogeneous system. In case greater binding force is required, the concrete beam system (mentioned above) may be used above the heads of the pile-substructure column structures.
As shown in , if the pile-substructure column system forms a closed perimeter, the pile-substructure column system not only bears the load but also plays the role of a retaining wall of the basement thereby maximizing space and increasing cost efficiency.
Furthermore, the present invention provides a method for constructing the aforementioned pile-substructure column system. The fundamental construction process includes:
putting steel casing pipes in the stacking sliding system to guarantee uniformity and consistency of the pile-substructure column system. The number of steel casing pipes 11 is also calculated to guarantee the bearing capacity, and the layout design of the steel casing pipes in specific shapes helps achieve requirements of load bearing capacity while providing architectural flexibility;
drilling through those casing pipes, to a predefined depth and construct piles by various methods such as cast-in-situ concreting, driving or pressing the precast concrete piles or steel shaped piles, depending on specific conditions and requirements. The steel casing pipes 11, normally corresponding to basement columns, for high-rise buildings, or piers, or bridges, may be fixed, or drawn up for reuse by various methods, wherein piles and columns are bound together by various methods to form a pile-substructure column system with homogeneous operation.
The method to produce the pile-substructure column system includes driving the steel casing pipes 11 in parallel into the ground by such methods as vibrating, pressing or hammering. The steel casing pipes 11 are driven in the stacking sliding guide system, each of which is elevated at a specific height within the range from the ground level to level 00. After that, drill to remove the soil inside the casing pipes 11, with predefined diameter and depth while subsequently constructing the pile-substructure column structure 12 including piles and substructure column constructed inside the steel casing pipes 11, whereby the pile penetrates into the ground with predefined depth and the substructure column extends along the axis of the casing pipe. The steel casing pipes 11 are driven into the ground in the stacking sliding guide system and then bound together to bear the calculated forces during and/or after construction where the piles and substructure column are homogeneously constructed (or monolithic/continuous).
Notwithstanding the abovementioned features, the present invention provides the following advantages:
After constructing the pile-substructure column structure, it is possible to construct the superstructure, for example, the body structure of a high-rise building, or the pier, instead of having to wait for various construction processes such as basement excavation, pile cap construction, substructure column construction in the basement;
It is possible to use the finished pile-substructure column system to serve other work items such as shoring system or structure for crane installations;
The modular piles allow use of one or multiple types of equipment in construction works thereby maximizing cost efficiency for equipment utilization including warranties and maintenance. Meanwhile conventional methods requiring multiple pile diameters reduces cost efficiency due to the need for boring machines of various sizes.
It is easy to test the bearing capacity of the system. There is no need to test large individual piles due to its modular feature.
Although the present invention is described by specific embodiments, it is obvious that various changes and modifications may be made by a person skilled in the art to which the present invention pertains without departing from the true spirit and scope of this disclosure, as defined by the claims. For example, the steel casing pipes are provided in shapes different from those mentioned in the description, the height of the casing pipes may exceed the level 00, and the steel casing pipes may be bound by various methods and put in sliding guide manner by various structures, etc.

Claims (14)

  1. A pile-substructure column system comprising:
    steel casing pipes (11) provided in parallel and driven into the ground by stacking sliding guide manner;
    a scalable continuous pile-substructure column structure constructed along the inside of the steel casing pipe (11) by creating a borehole onto a predefined depth and filling it up with a homogeneous material from the bottom of the borehole to the height in the middle of ground and level 00, wherein the homogeneous material is naturally bound with the steel casing pipe (11) around it during the construction process and binds with the steel casing pipe (11);
    connecting system of the pile-substructure columns into a pile-substructure column system wherein all these structures work as one single structure or unit.
  2. The pile-substructure column system of claim 1, wherein the pile-substructure column structures are connected by binding the steel casing pipes (11) together by welding or bolting.
  3. The pile-substructure column system of claim 1, wherein the pile-substructure column structures are connected by the pile caps provided on the pile heads.
  4. The pile-substructure column system of claim 1, wherein the pile- substructure column structures are connected by reinforced concrete jacketing the pile-substructure column structures.
  5. The pile-substructure column system of claim 1, wherein the steel casing pipes (11) are slide guided with use of male-female (25, 26) slide rail system provided on the steel casing pipes.
  6. The pile-substructure column system of claim 1, wherein the steel casing pipes (11) are sliding guided by the intermediate slide rail system (22).
  7. The pile-substructure column system of claim 1, wherein the pile-substructure column structure is bored, reinforced, cast-in-situ pile structure and binding with steel casing pipes (11) by concrete.
  8. The pile-substructure column system of claim 1, wherein the pile-substructure column structure is precast structure such as steel shape or precast concrete, bound with steel casing pipes.
  9. The pile-substructure column system of claim 7, wherein the pile-substructure column structure binds with the steel casing pipe by welding, bolting or adhesives.
  10. The pile-substructure column system of claim 1, wherein the pile-substructure column structures are constructed by bored, cast-in-situ pile structures, or precast structures.
  11. The pile-substructure column system of claim 1, wherein the casing pipes are provided to form basic shapes such as triangle, letters I, L, T or cross shape in top-down view.
  12. A method for producing the pile-substructure column system comprising:
    driving steel casing pipes (11) into the ground in parallel by such methods as vibrating, pressing or hammering, the steel casing pipes are driven into the ground in stacking sliding guide manner; the casing pipes elevate at a predetemined height within the range from the ground level to level 00;
    drilling to take out the soil inside the steel casing pipes, with predefined diameter and depth;
    creating a pile-substructure column structure inside, along the steel casing pipe (11) by filling up the borehole with a homogeneous material from the bottom of the borehole to the height in the middle of ground and level 00, wherein this material is naturally bound with the steel casing pipe (11) around it during the construction process and binds with the steel casing pipe (11);
    connecting the pile-substructure column structures into a pile-substructure column system wherein all these structures work together.
  13. The method of claim 12, wherein the pile-substructure column structure is cast-in-situ in one shot only.
  14. The method of claim 12, wherein the pile-substructure column structures are precast concrete or steel shaped piles, or combination of cast-in-situ concrete and precast concrete.
PCT/IB2022/061112 2022-01-24 2022-11-17 Pile-substructure column system and construction method of the pile-substructure column system WO2023139425A1 (en)

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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2101285A (en) * 1936-01-31 1937-12-07 Stevens Edwin Fenton Tubular interlocking piling
WO1991002850A1 (en) * 1989-08-25 1991-03-07 Louis Breaux Hazardous waste containment system
CN106013151A (en) * 2015-03-25 2016-10-12 张继红 Continuous pile wall construction method and construction device used for continuous pile wall construction method
CN107268636A (en) * 2017-07-18 2017-10-20 江苏景源万河环境科技有限公司 The diaphragm wall foundation ditch that the steel cylinder or steel sheet pile of a kind of seal groove and occlusion structure are constituted is with going along with sb. to guard him and construction method
WO2021105569A1 (en) * 2019-11-29 2021-06-03 Pirkan Laatupalvelu Oy Method for forming a pile wall in ground and a corresponding pile wall

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2101285A (en) * 1936-01-31 1937-12-07 Stevens Edwin Fenton Tubular interlocking piling
WO1991002850A1 (en) * 1989-08-25 1991-03-07 Louis Breaux Hazardous waste containment system
CN106013151A (en) * 2015-03-25 2016-10-12 张继红 Continuous pile wall construction method and construction device used for continuous pile wall construction method
CN107268636A (en) * 2017-07-18 2017-10-20 江苏景源万河环境科技有限公司 The diaphragm wall foundation ditch that the steel cylinder or steel sheet pile of a kind of seal groove and occlusion structure are constituted is with going along with sb. to guard him and construction method
WO2021105569A1 (en) * 2019-11-29 2021-06-03 Pirkan Laatupalvelu Oy Method for forming a pile wall in ground and a corresponding pile wall

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