US20100132291A1 - Steel plate structure and steel plate concrete wall - Google Patents

Steel plate structure and steel plate concrete wall Download PDF

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Publication number
US20100132291A1
US20100132291A1 US12/452,300 US45230008A US2010132291A1 US 20100132291 A1 US20100132291 A1 US 20100132291A1 US 45230008 A US45230008 A US 45230008A US 2010132291 A1 US2010132291 A1 US 2010132291A1
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United States
Prior art keywords
steel plate
coupled
steel
concrete wall
structural members
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US12/452,300
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English (en)
Inventor
Han-woo Lee
Jong-Bo Lee
Jong-Hak Kim
Ung-Kwon Lee
Tae-Youp Mun
Won-Sang Sun
Jin-woo Lee
Tae-Young Kim
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
KOREA POWER ENGINEERING COMPANY Inc
Korea Hydro and Nuclear Power Co Ltd
Korea Power Engineering Co Ltd (KOPEC)
Original Assignee
Korea Hydro and Nuclear Power Co Ltd
Korea Power Engineering Co Ltd (KOPEC)
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Korea Hydro and Nuclear Power Co Ltd, Korea Power Engineering Co Ltd (KOPEC) filed Critical Korea Hydro and Nuclear Power Co Ltd
Assigned to KOREA POWER ENGINEERING COMPANY, INC., KOREA HYDRO & NUCLEAR POWER CO., LTD. reassignment KOREA POWER ENGINEERING COMPANY, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: KIM, TAE-YOUNG, KIM, JONG-HAK, LEE, HAN-WOO, LEE, JIN-WOO, LEE, JONG-BO, LEE, UNG-KWON, MUN, TAE-YOUP, SUN, WON-SANG
Publication of US20100132291A1 publication Critical patent/US20100132291A1/en
Abandoned legal-status Critical Current

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    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B2/00Walls, e.g. partitions, for buildings; Wall construction with regard to insulation; Connections specially adapted to walls
    • E04B2/84Walls made by casting, pouring, or tamping in situ
    • E04B2/86Walls made by casting, pouring, or tamping in situ made in permanent forms
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B2/00Walls, e.g. partitions, for buildings; Wall construction with regard to insulation; Connections specially adapted to walls
    • E04B2/02Walls, e.g. partitions, for buildings; Wall construction with regard to insulation; Connections specially adapted to walls built-up from layers of building elements
    • E04B2/28Walls having cavities between, but not in, the elements; Walls of elements each consisting of two or more parts kept in distance by means of spacers, all parts being solid
    • E04B2/40Walls having cavities between, but not in, the elements; Walls of elements each consisting of two or more parts kept in distance by means of spacers, all parts being solid the walls being characterised by fillings in all cavities in order to form a wall construction
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B2/00Walls, e.g. partitions, for buildings; Wall construction with regard to insulation; Connections specially adapted to walls
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B2/00Walls, e.g. partitions, for buildings; Wall construction with regard to insulation; Connections specially adapted to walls
    • E04B2/56Load-bearing walls of framework or pillarwork; Walls incorporating load-bearing elongated members
    • E04B2/562Load-bearing walls of framework or pillarwork; Walls incorporating load-bearing elongated members with fillings between the load-bearing elongated members
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B2/00Walls, e.g. partitions, for buildings; Wall construction with regard to insulation; Connections specially adapted to walls
    • E04B2/56Load-bearing walls of framework or pillarwork; Walls incorporating load-bearing elongated members
    • E04B2/58Load-bearing walls of framework or pillarwork; Walls incorporating load-bearing elongated members with elongated members of metal
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B2/00Walls, e.g. partitions, for buildings; Wall construction with regard to insulation; Connections specially adapted to walls
    • E04B2/84Walls made by casting, pouring, or tamping in situ
    • E04B2/86Walls made by casting, pouring, or tamping in situ made in permanent forms
    • E04B2/8635Walls made by casting, pouring, or tamping in situ made in permanent forms with ties attached to the inner faces of the forms
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C1/00Building elements of block or other shape for the construction of parts of buildings

Definitions

  • the present invention relates to a steel plate structure and a steel plate concrete wall. More particularly, the present invention relates to a steel plate structure and a steel plate concrete wall that include a load-bearing structural member, in addition to the steel plate and concrete, so as to reduce the thickness of the steel plate structure and steel plate concrete wall.
  • SC structure steel plate concrete structure
  • the SC structure is a system in which concrete is filled in between two steel plates, with studs and tie bars, etc., arranged such that the concrete and the steel materials move together, so that the steel materials and the concrete may move as an integrated body.
  • the SC structure can be utilized in the construction of large structures such as nuclear power plants, etc., to reduce construction times by way of modularization.
  • FIG. 1 illustrates a steel plate structure according to prior art, before the concrete is cast.
  • the steel structure made of steel plates, etc., before casting concrete in a SC structure wall will be referred to as a “steel plate structure.”
  • the SC structure wall constructed using a steel plate structure may be formed by vertically arranging steel plates 102 at both surfaces of the wall that is to be formed, installing a number of studs 104 on the inner surfaces of the steel plates 102 in order to facilitate the attachment between the steel plates 102 and the concrete, connecting the two steel plates 102 using rod-shaped struts 106 so as to secure the two steel plates 102 , and then casting concrete in the space between the steel plates 102 .
  • the inside of the steel plates 102 is filled with concrete in the SC structure wall, even if a failure occurs in the concrete, the steel plates 102 continue to restrict the concrete, to provide a greater level of load-bearing. Also, as the concrete is placed inside the steel plates 102 , the concrete can be prevented from being degraded by the external environment, so that the durability of the structure can be improved.
  • the thickness of the wall having a SC structure may be increased, leading to spatial limitations.
  • the steel plates and concrete may have to be increased in thickness, where the greater thickness for the steel plates may lead to increased thermal deformations when welding the steel plates, as well as to a need for thermal post-treatment.
  • the axial forces applied by the weight of the structure and the lateral forces caused by earthquakes must be resisted in an efficient manner, but as the concrete inside the steel materials has a low shear strength, the remaining shear strength has to be resisted by the steel plates. In order to bear the lateral forces caused by earthquakes, the thickness of the steel plates may have to be increased.
  • the steel plates of the unit modules may be welded together to attach the unit modules, or extra plates or couplers may be used in addition to the welding of the steel plates to enhance the adhesion strength between the unit modules.
  • the extra plates or couplers may be exposed at the exterior surface to degrade the appearance, and the addition of secondary work may lead to longer construction periods.
  • temporary reinforcement material may have to be additionally attached during the transporting of the unit modules to the construction site, in order to prevent deformations in the steel plate structure.
  • the bracket When installing a bracket used for installing an external device, such as piping, etc., to the exterior of the SC structure wall, the bracket may be welded or coupled with bolts, but when a large external device having a heavy mass is installed to the bracket, local deformations may occur in the steel plate, and the load-bearing performance may be degraded, so that the external equipment may not be installed on the outside of the wall.
  • an external device such as piping, etc.
  • An aspect of the present invention is to provide a steel plate structure and a steel plate concrete wall that include load-bearing structural members, in addition to the steel plates and concrete, to reduce the thickness of the steel plate concrete wall and the thickness of the steel plates, while effectively resisting the axial forces or lateral forces acting on the wall.
  • Another aspect of the present invention is to provide a steel plate structure and a steel plate concrete wall that allows easy attachment between the steel plate structure unit modules, in cases where the steel plate structure is manufactured as a unit module.
  • Yet another aspect of the present invention is to provide a steel plate structure and a steel plate concrete wall that are capable of supporting a large external device having a heavy mass using the steel plates and structural members.
  • An aspect of the present invention provides a steel plate structure that includes: a pair of steel plates, which are separated to provide a predetermined space; a structural member, which is positioned in the predetermined space, and which is structurally rigidly joined to one side of the steel plate in the direction of gravity; and a strut, which maintains a separation distance between the pair of steel plates.
  • the steel plate structure can further include studs protruding from one side of the steel plate.
  • a multiple number of structural members can be coupled, while the steel plate structure can further include a horizontal connector that interconnects the end portions of the multiple structural members. Also, a vertical connector can further be included that is coupled to an end portion of one side of the steel plate in the direction of gravity.
  • the structural member can be coupled to one side of the steel plate by welding.
  • the structural member can include a pair of opposing structural members each coupled to one side of each of the pair of steel plates.
  • the strut may be coupled between the pair of structural members.
  • the structural members and the strut may be H-beams.
  • the structural member can be an H-beam, and the H-beam can be coupled such that a flange of the H-beam is coupled to one side of the steel plate.
  • a fastening hole can be formed that penetrates the steel plate and the structural member.
  • a bracket may further be included that is coupled to the other side of the steel plate through the fastening hole.
  • the horizontal connector can be a C-beam, and the C-beam can be coupled such that a flange of the C-beam faces the structural member.
  • the vertical connector can be a C-beam, and the C-beam can be coupled such that a flange of the C-beam faces the structural members.
  • a steel plate concrete wall that includes: a pair of steel plates, which are separated to provide a predetermined space; a structural member, which is positioned in the predetermined space, and which is structurally rigidly joined to one side of the steel plate in the direction of gravity; a strut, which maintains a separation distance between the pair of steel plates; and concrete, which is interposed inside the predetermined space.
  • the steel plate concrete wall can further include studs protruding from one side of the steel plate.
  • a multiple number of structural members can be coupled, while the steel plate structure can further include a horizontal connector that interconnects the end portions of the multiple structural members. Also, a vertical connector can further be included that is coupled to an end portion of one side of the steel plate in the direction of gravity.
  • the structural member can be coupled to one side of the steel plate by welding.
  • the structural member can include a pair of opposing structural members each coupled to one side of each of the pair of steel plates.
  • the strut may be coupled between the pair of structural members.
  • the structural members and the strut may be H-beams.
  • the structural member can be an H-beam, and the H-beam can be coupled such that a flange of the H-beam is coupled to one side of the steel plate.
  • a fastening hole can be formed that penetrates the steel plate and the structural member.
  • a bracket may further be included that is coupled to the other side of the steel plate through the fastening hole.
  • the horizontal connector can be a C-beam, and the C-beam can be coupled such that a flange of the C-beam faces the structural member.
  • the vertical connector can be a C-beam, and the C-beam can be coupled such that a flange of the C-beam faces the structural members.
  • FIG. 1 is a perspective view of a steel plate structure according to prior art, before casting concrete.
  • FIG. 2 is a perspective view of a steel plate structure according to a first disclosed embodiment of the present invention.
  • FIG. 3 is a side elevational view of a portion of a steel plate structure according to the first disclosed embodiment of the present invention.
  • FIG. 4 is a plan view of a portion of a steel plate structure according to the first disclosed embodiment of the present invention.
  • FIG. 5 is a perspective view of a steel plate structure having a bracket attached according to the first disclosed embodiment of the present invention.
  • FIG. 6 is a side elevational view of a portion of a steel plate structure having a bracket attached according to the first disclosed embodiment of the present invention.
  • FIG. 7 is a perspective view of a steel plate structure according to a second disclosed embodiment of the present invention.
  • FIG. 8 is a perspective view illustrating multiple steel plate structures coupled together according to the second disclosed embodiment of the present invention.
  • FIG. 9 is a drawing illustrating the horizontal connectors of steel plate structures coupled together according to the second disclosed embodiment of the present invention.
  • FIG. 10 is a drawing illustrating the vertical connectors of steel plate structures coupled together according to the second disclosed embodiment of the present invention.
  • FIG. 11 is a drawing illustrating the construction of a steel plate concrete wall according to a third disclosed embodiment of the present invention.
  • FIG. 2 is a perspective view of a steel plate structure according to a first disclosed embodiment of the present invention
  • FIG. 3 is a side elevational view of a portion of a steel plate structure according to the first disclosed embodiment of the present invention
  • FIG. 4 is a plan view of a portion of a steel plate structure according to the first disclosed embodiment of the present invention.
  • a steel plate structure 10 there are illustrated a steel plate structure 10 , steel plates 12 , structural members 14 , struts 16 , and studs 18 .
  • the present embodiment can be composed of a pair of steel plates 12 that are separated such that a predetermined space is provided, structural members 14 that are positioned in the space and are structurally rigidly joined to one side of a steel plate 12 in the direction of gravity, and struts 16 that maintain a separation distance between the pair of steel plates 12 , so that the overall thickness of the steel plate concrete wall can be reduced, so as to allow efficient usage of space, and the thickness of the steel plates can be reduced, so as to reduce thermal deformations during welding attachments. Also, the axial forces or lateral forces acting on the wall can be effectively resisted.
  • the pair of steel plates may be installed with a distance from each other, to form a predetermined space between the steel plates 12 .
  • the predetermined space can be where the concrete may later be cast, and the separation distance between the steel plates 12 can be determined according to the load applied on the steel plate concrete wall.
  • the steel plates 12 may be integrated with the concrete, after the forming of the steel plate concrete wall, to resist the load. Also, these steel plates 12 may restrict the concrete, so that even when the concrete inside undergoes failure, the concrete may be prevented from becoming detached, whereby the load-bearing capability of the steel plate concrete wall may be increased.
  • the structural members 14 may exist within the predetermined space formed by the pair of steel plates 12 , and may be structurally rigidly joined to one side of a steel plate 12 in the direction of gravity.
  • the structural members 14 may resist the load applied on the steel plate concrete wall, together with the steel plates 12 and concrete.
  • the structural members 14 may be arranged in the direction of gravity, to resist the axial forces applied on the steel plate concrete wall, as well as the lateral forces caused by earthquakes, wind, etc. That is, the structural members 14 may be coupled to one side of a steel plate in the longitudinal direction, to resist the load in the axial direction together with the concrete inside the steel plate structure 10 and the steel plates, and as the steel plate concrete wall is rigidly joined to the foundation, to resist shear forces in the lateral directions caused by earthquakes, etc.
  • such structural members 14 may, together with the studs 18 described later, contribute to the integrating of the steel plates 12 and the concrete.
  • the structural members 14 may serve as structural materials together with the steel plates and the concrete to reduce the overall thickness of the steel plate concrete wall, and may thus be advantageous in forming the walls of a large structure, while the structural members 14 may also reduce the thickness of the steel plates to reduce thermal deformations during welding attachments.
  • the structural members 14 may be rigidly joined to the steel plate 12 , so that the structural members 14 may move as an integrated body with the steel plate 12 .
  • Examples of methods for rigidly joining a steel plate 12 with a structural member 14 include rigidly joining the steel plate 12 and the structural member 14 using high-tension bolts or rivets, and welding the structural member 14 to the steel plate 12 , to allow integrated movement with the steel plate 12 .
  • H-beams may be used for the structural members 14 , with the flanges of the H-beams coupled to one side of a steel plate to form a rigid joint.
  • the structural members 14 can be structurally rigidly joined to the steel plate 12 , in order to prevent deformations in the steel plate structure 10 due to eccentricity or contortion that may occur while transporting to the construction site after manufacture in a factory, and to prevent deformations in the steel plate structure 10 due to transverse pressure applied by unhardened concrete when casting the concrete in the steel plate structure 10 .
  • the structural members 14 can both be rigidly joined to just one of the two steel plates 12 or can be rigidly joined to each of the two steel plates 12 . In the case where the structural members 14 are rigidly joined to each of the two steel plates 12 , the structural members 14 can be arranged opposite one another, as illustrated in FIG. 2 . The number of structural members 14 coupled to one side of a steel plate 12 may be selected in correspondence to the load applied on the steel plate concrete wall.
  • the structural members 14 are structurally rigidly joined to the steel plates 12 , the combined effect of the steel plates 12 , concrete, and structural members 14 may increase the strength against the load, so that a thick wall for a skyscraper structure or a power plant structure, etc., may be formed without increasing the thickness of the steel plates 12 . Therefore, as the strength against a large load may be increased without increasing the thickness of the steel plates 12 , the thickness of the steel plates 12 can be minimized, to provide easier manufacture and installing of the steel plate structure 10 , and the steel plate structure 10 can be modularized, allowing larger module sizes when performing the assembly on site.
  • the struts 16 may maintain the separation distance between the steel plates 12 , whereby the pair of steel plates 12 may provide the predetermined space.
  • the struts 16 can have both ends each coupled to each of the pair of, steel plates 12 , and in the case where the structural members 14 are coupled to two steel plates in a zigzag configuration, it is possible to couple the ends of the struts to a steel plate 12 and a structural member 14 , respectively. Also, in the case where the structural members 14 are arranged opposite each other on two steel plates 12 , as illustrated in FIG. 2 , the struts 16 can be coupled to the opposing structural members 14 .
  • the struts 16 may maintain the distance between the steel plates 12 in consideration of the thickness of the wall, and may provide an adequate level of strength in consideration of transporting conditions, etc., of the steel plate structure 10 .
  • the increased thickness of the wall can entail a large separation distance between two steel plates 12 , and thus beams having a high strength may be used as the struts.
  • the structural members 14 and the struts 16 may all be made from H-beams, where the factory manufacture of the steel plate structure 10 can first include coupling the struts 16 to the structural members 14 to form a frame and then include attaching the steel plates 12 to the structural members 14 , so that the manufacturing process may be shortened.
  • struts 16 Various types of structural beams can be used for the struts 16 , including L-beams, C-beams, H-beams, I-beams, T-beams, etc.
  • H-beams may be used for the struts 16 , the same as for the structural members 14 .
  • the steel plate structure 10 according to the present embodiment can be manufactured directly on site, or manufactured as a unit module at a factory, with the multiple unit modules assembled on site to form a wall.
  • the case of forming the steel plate structure 10 as a unit module will be described later in more detail with reference to FIG. 7 .
  • the studs 18 may be buried inside the concrete so as to allow the steel plates 12 and the concrete to move in an integrated manner, in order that the combined effect of the steel plates 12 and the concrete may resist external loads.
  • the studs 18 may be buried uniformly over one side of a steel plate, 12 , so that the concrete and the steel plate 12 may move as an integrated body over the entire surface.
  • the structural members 14 may contribute to the integrating of the concrete with the steel plate 12 .
  • beams having a large area of contact with the concrete such as H-beams, I-beams, C-beams, etc.
  • the structural members 14 it may be possible to integrate the steel plates 12 and the concrete with just the structural members 14 , and the coupling of the studs 14 may be omitted.
  • the steel plate structure 10 In the case where the steel plate structure 10 is to be manufactured on site to form a wall, the steel plate structure 10 can be assembled over the foundation plate for forming the wall, after which concrete can be cast in between the steel plates 12 to form a steel plate concrete wall.
  • the steel plate structure 10 according to the present embodiment is also possible to manufacture as a unit module at a factory, transport the unit modules to the construction site, and attaching the unit modules on site to form a wall.
  • the corresponding structural members 14 of the unit modules have to be connected in an integrated manner to transfer loads, the lower ends of the structural members 14 of the unit modules arranged on top and the upper ends of the structural members 14 of the unit modules arranged on the bottom may be given the same cross sections and afterwards rigidly joined, so that the forces in the structural members 14 may be efficiently transferred to the ground.
  • FIG. 5 is a perspective view of a steel plate structure having a bracket attached according to the first disclosed embodiment of the present invention
  • FIG. 6 is a side elevational view of a portion of a steel plate structure having a bracket attached according to the first disclosed embodiment of the present invention.
  • steel plates 12 there are illustrated steel plates 12 , structural members 14 , struts 16 , studs 18 , a bracket 20 , and bolts 22 .
  • a bracket for supporting the external device may be welded or coupled with bolts 22 to a steel plate 12 .
  • the mass of the external device may often cause local deformations in the steel plate 12 and degrade the load-bearing performance.
  • fastening holes can be prepared, which penetrate the steel plates 12 and the structural members 14 , so that the bracket 20 may be coupled to the steel plate 12 through the fastening holes using rivets or bolts 22 , making it possible to support a heavy external device. That is, as illustrated in FIG. 6 , fastening holes for securing the bracket 20 may be formed in portions of the steel plate 12 where a structural member 14 is rigidly joined, and the bracket 20 may be coupled through the fastening holes, to allow the steel plate 12 and the structural member 14 to support the external device together.
  • This bracket 20 may be installed after the steel plate structure 10 is installed in the position for forming the wall but before casting the concrete, or may be installed after the concrete is cast and cured.
  • bracket 20 it is also possible to install the bracket 20 , to support a small external device, by forming fastening holes in portions of the steel plate 12 where a structural member 14 is not rigidly joined.
  • FIG. 7 is a perspective view of a steel plate structure according to a second disclosed embodiment of the present invention
  • FIG. 8 is a perspective view illustrating multiple steel plate structures coupled together according to the second disclosed embodiment of the present invention
  • FIG. 9 is a drawing illustrating the horizontal connectors of steel plate structures coupled together according to the second disclosed embodiment of the present invention
  • FIG. 10 is a drawing illustrating the vertical connectors of steel plate structures coupled together according to the second disclosed embodiment of the present invention.
  • steel plate structures 10 there are illustrated steel plate structures 10 , steel plates 12 , structural members 14 , struts 16 , studs 18 , horizontal connectors 24 , vertical connectors 26 , and bolts 22 .
  • the steel plate structures 10 may be manufactured at a factory as a unit module, after which the unit modules may be transported to the construction site, the unit modules for the steel plate structures 10 may be assembled to manufacture bigger modules, the bigger modules may be hauled and installed in the final positions, and concrete may be cast, to complete a steel plate concrete wall. That is, as illustrated in FIG. 8 , unit modules arranged up and down can be coupled using horizontal connectors 24 , while unit modules arranged side by side can be coupled using vertical connectors 26 , and with a number of unit modules coupled together in accordance to the desired size of the wall, concrete can be cast in to form a steel plate concrete wall.
  • Multiple structural members 14 can be coupled in the steel plate structures 10 in predetermined intervals, and horizontal connectors 24 can be installed that interconnect the end portions of the multiple structural members 14 , to efficiently transfer the forces in the structural members 14 and provide easier assembly between the unit modules of the steel plate structures 10 .
  • vertical connectors 26 can be included that are each coupled in the direction of gravity to an end portion on one side of a steel plate.
  • coupling the vertical connectors 26 to one another can increase the cross sectional area of the coupling surface, and when the attachment between unit modules is complete, the vertical connectors 26 may resist the loads applied on the steel plate concrete wall, together with the structural members 14 described above.
  • the horizontal connectors 24 can be for interconnecting unit modules that are arranged up and down, and the vertical connectors 26 can be for interconnecting unit modules that are arranged side by side; where the coupling between horizontal connectors 24 and the coupling between vertical connectors 26 may form structurally rigid joints.
  • the horizontal connectors 24 and vertical connectors 26 can be attached to the end portions of the unit modules, and can perform a structural function of preventing deformations in the steel plates during the welding for attaching the steel plates of the unit modules together.
  • Examples of methods for coupling horizontal connectors 24 to each other or coupling vertical connectors 26 to each other include rigid joining using high-tension bolts 22 or rivets, and rigid joining by welding.
  • high-tension bolts 22 were used in coupling the unit modules together, as illustrated in FIG. 9 and FIG. 10 , to provide easier assembly on site.
  • Various types of structural beams can be used for the horizontal connectors 24 and vertical connectors 26 , including L-beams, H-beams, C-beams, I-beams, T-beams, etc.
  • H-beams may be used for the structural members 14
  • C-beams may be used for the horizontal connectors 24
  • the web of the end portion of the H-beam inserted in the channel portion of the C-beam such that the flanges of the C-beam face the structural member 14 , so that the attachment area between the structural member 14 and the horizontal connector 24 may be increased and the webs of the C-beams may be placed in surface contact with each other, in order that the forces in the members may readily be transferred.
  • Fastening holes can be formed beforehand for coupling the horizontal connectors 24 using bolts 22 or rivets, when manufacturing the steel plate structures 10 implemented as unit modules at the factory.
  • C-beams may be used for the vertical connectors 26 , and the flanges of the C-beam may face the structural member 14 , so that the attachment area between the flange of the C-beam and the one side of the steel plate may be increased and the webs of the C-beams positioned side by side may be placed in surface contact with each other, in order that the forces in the members may readily be transferred.
  • coupling the vertical connectors 26 to one another can increase the cross sectional area of the coupling surface, to a form similar to an H-beam, and when the attachment between unit modules is complete, the vertical connectors 26 may resist the loads applied on the steel plate concrete wall, together with the structural members 14 described above.
  • Fastening holes can be formed beforehand for coupling the horizontal connectors 24 using bolts 22 or rivets, when manufacturing the steel plate structures 10 , implemented as unit modules, at the factory.
  • fastening holes may be prepared, which penetrate the steel plate 12 and the structural member 14 , so that a bracket may be coupled to the steel plate 12 through the fastening holes using rivets or bolts, whereby the steel plate 12 and the structural member 14 rigidly joined to the steel plate 12 may support an external device together, making it possible to support an external device having a heavy mass.
  • FIG. 11 is a drawing illustrating the construction of a steel plate concrete wall according to a third disclosed embodiment of the present invention.
  • steel plate structures 10 there are illustrated steel plate structures 10 , concrete 30 , and a concrete supply part 28 .
  • the steel plate structures 10 implemented as a unit module can be assembled to form a wall of a predetermined size. That is, the steel plate structure 10 implemented as unit modules may be manufactured in a required number, after which the unit modules may be transported to the construction site, the steel plate structures 10 as unit modules may be assembled into a bigger module, the bigger modules may be hauled and installed in the final positions, and concrete 30 may be cast by way of the concrete supply part 28 , to form a steel plate concrete wall.
  • Manufacturing the steel plate structures 10 in a factory may allow easier quality management to provide high-quality steel plate structures 10 , and as the work on site may be minimized, the construction time can be reduced.
  • the overall thickness of the steel plate concrete wall can be reduced, to allow a more efficient use of space.
  • the thickness of the steel plates can be reduced, allowing better welding properties and larger unit module sizes.
  • horizontal connectors or vertical connectors may be arranged at the end portions of the steel plates, to facilitate the attaching between unit modules and allow the forces in the structural members to be transferred directly between unit modules, whereby the strength of the wall may be increased.
  • a bracket may be installed utilizing the strengths of the steel plate and the structural member, so that heavy external devices, such as piping or electrical facilities, etc., may be supported effectively.

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  • Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Load-Bearing And Curtain Walls (AREA)
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  • Panels For Use In Building Construction (AREA)
US12/452,300 2007-06-27 2008-06-26 Steel plate structure and steel plate concrete wall Abandoned US20100132291A1 (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
KR1020070063845A KR100849711B1 (ko) 2007-06-27 2007-06-27 강판 구조체 및 강판 콘크리트 벽체
KR1020070063845 2007-06-27
PCT/KR2008/003697 WO2009002112A2 (fr) 2007-06-27 2008-06-26 Structure de plaque en acier et paroi en béton avec plaque en acier

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US20190195255A1 (en) * 2010-09-24 2019-06-27 Hiroshi Shimizu Accessory attachment structure for steel plate-reinforced concrete structure, design system and design method of steel plate-reinforced concrete structure, consruction method of steel plate-reinforced concrete structure, and steel plate-reinforced concrete structure
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CN108756020A (zh) * 2018-06-01 2018-11-06 湖南飞扬建设工程有限公司 一种发泡混凝土保温复合墙体
CN112726880A (zh) * 2020-12-28 2021-04-30 同济大学 一种矩形钢管-波折钢板组合墙钢连梁联肢墙
CN114150795A (zh) * 2021-12-14 2022-03-08 秦长城新型建材(天津)有限公司 一种轻质现浇高强模板免拆墙体以及其施工方法

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EP2167750B1 (fr) 2016-06-15
EP2167750A2 (fr) 2010-03-31
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HUE030423T2 (en) 2017-05-29
US9631363B2 (en) 2017-04-25
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US20150159372A1 (en) 2015-06-11
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