CN113638486B - Prefabricated wall high-strength concrete connection node and construction method - Google Patents

Prefabricated wall high-strength concrete connection node and construction method Download PDF

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Publication number
CN113638486B
CN113638486B CN202110712694.1A CN202110712694A CN113638486B CN 113638486 B CN113638486 B CN 113638486B CN 202110712694 A CN202110712694 A CN 202110712694A CN 113638486 B CN113638486 B CN 113638486B
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China
Prior art keywords
wall
prefabricated
embedded part
strength concrete
strength
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CN113638486A (en
Inventor
王深山
吴宏磊
戴立军
刘海东
邱令乾
易溪
熊明荣
储居礼
王毅
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China State Construction Engineering Corp Ltd CSCEC
Architecture Design and Research Institute of Tongji University Group Co Ltd
China Construction Fifth Engineering Bureau Co Ltd
Huadong Building Co Ltd of China Construction Fifth Engineering Bureau Co Ltd
Original Assignee
China State Construction Engineering Corp Ltd CSCEC
Architecture Design and Research Institute of Tongji University Group Co Ltd
China Construction Fifth Engineering Bureau Co Ltd
Huadong Building Co Ltd of China Construction Fifth Engineering Bureau Co Ltd
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Application filed by China State Construction Engineering Corp Ltd CSCEC, Architecture Design and Research Institute of Tongji University Group Co Ltd, China Construction Fifth Engineering Bureau Co Ltd, Huadong Building Co Ltd of China Construction Fifth Engineering Bureau Co Ltd filed Critical China State Construction Engineering Corp Ltd CSCEC
Priority to CN202110712694.1A priority Critical patent/CN113638486B/en
Publication of CN113638486A publication Critical patent/CN113638486A/en
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    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/16Structures made from masses, e.g. of concrete, cast or similarly formed in situ with or without making use of additional elements, such as permanent forms, substructures to be coated with load-bearing material
    • E04B1/164Structures made from masses, e.g. of concrete, cast or similarly formed in situ with or without making use of additional elements, such as permanent forms, substructures to be coated with load-bearing material with vertical and horizontal slabs, only the horizontal slabs being partially cast in situ
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/38Connections for building structures in general
    • E04B1/61Connections for building structures in general of slab-shaped building elements with each other
    • E04B1/6108Connections for building structures in general of slab-shaped building elements with each other the frontal surfaces of the slabs connected together
    • E04B1/612Connections for building structures in general of slab-shaped building elements with each other the frontal surfaces of the slabs connected together by means between frontal surfaces
    • 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
    • E04B2/64Load-bearing walls of framework or pillarwork; Walls incorporating load-bearing elongated members with elongated members of concrete
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B5/00Floors; Floor construction with regard to insulation; Connections specially adapted therefor
    • E04B5/16Load-carrying floor structures wholly or partly cast or similarly formed in situ
    • E04B5/32Floor structures wholly cast in situ with or without form units or reinforcements
    • E04B5/36Floor structures wholly cast in situ with or without form units or reinforcements with form units as part of the floor
    • E04B5/38Floor structures wholly cast in situ with or without form units or reinforcements with form units as part of the floor with slab-shaped form units acting simultaneously as reinforcement; Form slabs with reinforcements extending laterally outside the element
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/38Connections for building structures in general
    • E04B1/61Connections for building structures in general of slab-shaped building elements with each other
    • E04B2001/6195Connections for building structures in general of slab-shaped building elements with each other the slabs being connected at an angle, e.g. forming a corner

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  • Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Joining Of Building Structures In Genera (AREA)
  • Sewage (AREA)

Abstract

The invention relates to a prefabricated wall high-strength concrete connection node and a construction method, wherein the connection node comprises at least two prefabricated walls, the prefabricated walls comprise high-strength concrete walls, a wall top embedded part is embedded in the top of each high-strength concrete wall, a connection box and a wall bottom embedded part are embedded in the bottom of each high-strength concrete wall, a height adjusting part matched with the wall bottom embedded part is arranged on each wall top embedded part, adjacent prefabricated walls are connected through a connection part, and a high-strength grouting material for connecting the adjacent prefabricated walls into a whole is poured in the connection box. Compared with the prior art, the method has the advantages of simple and efficient construction, visual quality inspection and the like.

Description

Prefabricated wall high-strength concrete connection node and construction method
Technical Field
The invention relates to the technical field of assembly type buildings, in particular to a prefabricated wall high-strength concrete connection node and a construction method.
Background
The fabricated building refers to a building in which main parts of a structural system, an outer enclosure system, equipment and pipeline system and an interior system are integrated by adopting prefabricated parts. In the fabricated concrete building, part or all of the components of the structural system are produced in a component prefabrication factory and then transported to a construction site in a corresponding transportation mode, and the components are assembled by adopting a reliable connection technology by adopting a reliable installation mode and an installation machine, so that the building with the use function is formed.
The integral performance of the structure is similar to that of a cast-in-place structure when the stressed steel bars are connected in a safe and reliable mode and the joint parts of the prefabricated components and cast-in-place and post-cast concrete are joint positions, namely joints, rough surfaces, key grooves and other construction measures are adopted between new concrete and old concrete at the joints. Under the condition, the assembled integral structure can be used for analyzing various structural design conditions by adopting the same method as a cast-in-place concrete structure, namely, the design concept of the same cast-in-place structure is adopted, and meanwhile, the key components are treated by reinforcement measures. Therefore, the connection of the joint of the prefabricated part and the cast-in-place concrete of the prefabricated part is of great importance to the structural safety and becomes a key technology for judging whether the integral performance of the fabricated building can meet the integral performance. The node design of the connecting part of the prefabricated parts needs to fully consider the production and construction convenience of the prefabricated parts, and meanwhile, a proper connecting technology needs to be adopted to ensure the effective stress transfer of the connecting part.
The pressure at the joint is directly transmitted through post-cast concrete, grouting material or setting slurry; the tension is transmitted through the steel bars and the embedded parts which are connected in various modes, which is called as steel bar connection technology; the shearing force is borne by the bonding strength of the concrete of the bonding surface, the friction and shearing action of the key groove or the rough surface, the reinforcing steel bar and the pin bolt and shearing action; static friction can take up a portion of the shear force when the joint is under compression, a technique known as joint connection.
The connection technology of the steel bars is a key technology for transmitting tensile force in an assembled concrete structure, and the connection part firstly ensures that internal force can be smoothly transmitted under the action of load and secondly requires that the connection part has enough rigidity and good restoring force characteristic. At present, the sleeve grouting connection is mainly adopted, a single ribbed steel bar is inserted into a metal sleeve, grouting mixture is injected into the metal sleeve, and the mixture is hardened to form a whole body and realize the force transmission steel bar butt joint connection, namely the sleeve grouting connection for short.
The grouting quality has crucial influence on the actual bearing capacity of the steel bar sleeve grouting connection joint, the manufacturing precision of the component and the construction technical level of field personnel can influence the grouting compactness, and phenomena of grouting incompactness, grouting leakage, steel bar truncation or dislocation and the like often occur in construction. The main reasons are: foreign matters exist in the sleeve, so that grouting is difficult; slurry leakage and defects caused by irregular operation in grouting; the accuracy of the component or the installation accuracy is poor, and the reinforcing steel bars are cut off and cut short when the component is forced to be in place. Once a construction defect occurs, it is very difficult to repair. Therefore, the construction defects are reduced by means of strict supervision, research and development of novel grouting equipment, optimization of construction process and the like.
Disclosure of Invention
The invention aims to overcome the defects in the prior art and provide a prefabricated wall high-strength concrete connection node and a construction method, which are simple and efficient in construction and visual in quality inspection.
The purpose of the invention can be realized by the following technical scheme:
the utility model provides a prefabricated wall high strength concrete connected node, includes two at least prefabricated wall bodies, prefabricated wall body includes high strength concrete wall body, and this high strength concrete wall body's top is pre-buried to have the wall crown to bury the piece, and the bottom is pre-buried to have a connecting box and the wall bottom to bury the piece, the wall crown bury be provided with on the piece with bury the accent standard height piece of a looks adaptation at the bottom of the wall, adjacent prefabricated wall body passes through the connecting piece and connects, it is used for making adjacent prefabricated wall body connect as holistic grout material that excels in to fill in the connecting box.
Furthermore, four sides of the prefabricated wall body are provided with shear grooves.
Furthermore, the prefabricated wall body is provided with reinforcing hidden beams at the top and the bottom of the wall.
Furthermore, the connecting box comprises a metal box, a threaded pipe, a guide pipe, a protective cover and a guide pipe protective cover, wherein the threaded pipe is connected to the bottom of the metal box, the tail end of the threaded pipe is in a horn mouth shape, the guide pipe is connected to the top of the metal box, the guide pipe protective cover is arranged at the tail end of the guide pipe, and the protective cover is arranged on the metal box in a covering mode.
Further, the center line of the threaded pipe and the center line of the connecting piece are located on the same vertical line.
Furthermore, the top of the wall top embedded part is tapped, an internal thread hole matched with the top of the wall top embedded part is formed in the bottom of the height adjusting part, and the height adjusting part rotates on the wall top embedded part to adjust the position of the prefabricated wall body and is locked through a locking nut;
the embedded part bottom is provided with the indent sphere at the bottom of the wall, transfer height spare top and be the evagination sphere, the spherical radius of evagination sphere is less than the spherical radius of indent sphere.
Further, an anchoring plate is arranged at one end of the connecting piece.
The invention also provides a construction method of the prefabricated wall high-strength concrete connection node, which comprises the following steps:
1) Obtaining a plurality of prefabricated walls;
2) Installing a lower-layer prefabricated wall body and temporarily fixing the lower-layer prefabricated wall body;
3) Installing a locking nut on the wall top embedded part, then installing an elevation adjusting part, enabling the length from the upper end of the adjusting part to the locking nut to be larger than the length of the internal thread of the elevation adjusting part, adjusting the prefabricated wall to a designed elevation through the elevation adjusting part, and then locking the locking nut;
4) Laying a sitting pulp layer;
5) Installing a layer of prefabricated wall;
6) The prefabricated wall body is initially positioned through the guiding action of the horn mouth of the connecting box, and automatically adjusted to a design coordinate through the actions of the wall bottom embedded part, the wall top embedded part and the height adjusting part along with the descending of the prefabricated wall body;
7) Temporarily fixing the installed wall;
8) And after the grout layer meets the strength requirement, injecting high-strength grouting material into the connecting box to finish the installation.
Further, the prefabrication process of the prefabricated wall body comprises the following steps of:
processing to obtain a connecting box, a wall top embedded part and a wall bottom embedded part;
designing and processing a prefabricated wall mold and a corresponding reinforcement cage;
assembling the reinforcement cage into a prefabricated wall mold;
fixing a wall top embedded part at a wall top design position of the prefabricated wall mold, and fixing a wall bottom connecting box and a wall bottom embedded part at a wall bottom design position;
and pouring high-strength concrete to form a prefabricated wall body, and maintaining to a set strength.
Further, between the step 2) and the step 3), a laminated slab is installed, post-cast layer steel bars are bound, and a post-cast layer is poured.
Compared with the prior art, the invention has the following beneficial effects:
(1) The prefabricated wall connecting joint is formed by adopting high-strength materials, a sleeve connecting mode is omitted, the anchoring length of the steel bars is greatly reduced, an equal cast-in-place connecting system is realized, and the economic cost is effectively reduced.
(2) In the construction process, the visual inspection and the inspection of the connection quality avoid the hidden danger of the incompact grouting of the sleeve connection and the slurry leakage and the defects caused by the irregular operation in the grouting, for example, the steel bar is cut off and cut short when the steel bar is forced to be in place due to the poor component accuracy or installation accuracy, thereby improving the connection quality.
(3) The horizontal coordinate and the vertical coordinate of the wall body can be automatically adjusted in the installation process, the installation automatic in-place process is realized, the field installation process is simplified, and the construction efficiency is greatly improved.
(4) The invention is made of materials which can be commonly used in the market, has simple structure and is convenient to manufacture.
(5) The connecting piece can be designed according to the design requirement, standardized product design and standardized industrial production are carried out, and the economic benefit and the social benefit are greatly improved.
Drawings
FIG. 1 is a schematic structural view of the present invention;
FIG. 2 is a top view of the prefabricated wall of the present invention;
FIG. 3 is a front view of the prefabricated wall of the present invention;
FIG. 4 is a bottom view of the prefabricated wall of the present invention;
FIG. 5 is a schematic view of the construction of the junction box of the present invention;
FIG. 6 is a schematic view of the connector of the present invention;
FIG. 7 is a schematic view of the construction of the wall top insert of the present invention;
FIG. 8 is a schematic structural view of the height adjustment member of the present invention;
FIG. 9 is a schematic view of the construction of the wall bottom insert of the present invention;
FIG. 10 is a bottom view of the wall bottom insert of the present invention;
in the figure, 1-prefabricated wall, 2-connecting box, 3-connecting piece, 4-high-strength grouting material, 5-wall top embedded piece, 6-height-adjusting piece, 7-wall bottom embedded piece, 8-reinforcing hidden beam, 9-metal box, 10-cover plate, 11-threaded pipe, 12-guide pipe, 13-guide pipe protective cover, 14-laminated slab, 15-post-cast layer, 16-grout layer, 17-shear groove, 18-horn mouth, 19-reinforcing steel bar, 20-anchoring plate, 21-steel plate, 22-anchor bar, 23-steel cylinder, 24-convex spherical surface, 25-internal threaded hole, 26-locking nut, 27-steel plate, 28-anchor bar and 29-concave spherical surface.
Detailed Description
In order to make the objects, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the drawings in the embodiments of the present invention, and it is obvious that the described embodiments are some, but not all, embodiments of the present invention. The components of embodiments of the present invention generally described and illustrated in the figures herein may be arranged and designed in a wide variety of different configurations.
Thus, the following detailed description of the embodiments of the present invention, presented in the figures, is not intended to limit the scope of the invention, as claimed, but is merely representative of selected embodiments of the invention. All other embodiments, which can be derived by a person skilled in the art from the embodiments given herein without making any creative effort, shall fall within the protection scope of the present invention.
It should be noted that: like reference numbers and letters refer to like items in the following figures, and thus, once an item is defined in one figure, it need not be further defined and explained in subsequent figures.
In the description of the present invention, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. indicate orientations or positional relationships based on the orientations or positional relationships shown in the drawings or the orientations or positional relationships that the products of the present invention are conventionally placed in use, and are only used for convenience in describing the present invention and simplifying the description, but do not indicate or imply that the devices or elements referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus, should not be construed as limiting the present invention.
Furthermore, the terms "horizontal", "vertical" and the like do not imply that the components are absolutely horizontal or hanging, but may be slightly inclined. For example, "horizontal" merely means that the direction is more horizontal than "vertical" and does not mean that the structure must be perfectly horizontal, but may be slightly inclined.
The embodiment provides a prefabricated wall high-strength concrete connected node, including two at least prefabricated wall bodies 1, as shown in fig. 1-4, prefabricated wall body 1 includes the high-strength concrete wall body, the top of this high-strength concrete wall body is pre-buried has wall crown embedded part 5, the bottom is pre-buried has connecting box 2 and wall end embedded part 7, be provided with on the wall crown embedded part 5 with the height-adjusting part 6 of wall end embedded part 7 looks adaptation, adjacent prefabricated wall body 1 passes through connecting piece 3 to be connected, fill in the connecting box 2 and be used for making adjacent prefabricated wall body 1 connect as holistic grout material 4 that excels in. In this embodiment, the connection boxes 2, the wall bottom embedded parts 7, the wall top embedded parts 5, the height adjusting parts 6 and the connection parts 3 are all provided with a plurality of parts, wherein the number of the connection boxes 2 corresponds to the number of the connection parts 3, and the number of the wall bottom embedded parts 7 and the number of the wall top embedded parts 5 correspond to the number of the height adjusting parts 6.
The wall top embedded part 5, the height adjusting part 6, the wall bottom embedded part 7 and the matched locking nut 26 are used as positioning parts of the high-strength concrete wall body to realize the position adjustment of the prefabricated wall body 1, and the adjacent prefabricated wall bodies 1 are connected into a whole wall body through the post-pouring layer 15, the mortar layer 16, the connecting part 3 and the high-strength grouting material 4.
Four sides of prefabricated wall body 1 all are provided with shear groove 17, and every side all sets up a plurality of shear grooves 17.
The prefabricated wall body 1 is provided with reinforced hidden beams 8 at the top and bottom of the wall.
The junction box 2 is a metal piece. As shown in fig. 5, the connection box 2 includes a metal box 9, a threaded pipe 11, a conduit 12, a cover plate 10 and a conduit protection cover 13, wherein the threaded pipe 11 is connected to the bottom of the metal box 9, the end of the threaded pipe 11 is a bell-mouth 18, the conduit 12 is connected to the top of the metal box 9, the conduit protection cover 13 is arranged at the end of the conduit 12, and the cover plate 10 is covered on the metal box 9. Preferably, screwed pipe 11 is the hard metal pipe, and its internal diameter is greater than the external diameter of connecting piece 3, and screwed pipe 11 central line and the 3 central lines of connecting piece are located same vertical line to guarantee the matching of connecting piece 3 and connecting box 2, apron 10 is transparent cover plate, conveniently observes the condition of pouring, and the apron is detachable or non-detachable.
The connecting member 3 is a high-strength metal connecting member, and the material includes, but is not limited to, high-strength steel bars, steel materials, prestressed steel wires, and the like. As shown in fig. 6, the connector 3 includes a reinforcing bar 19 and an anchor plate 20 at one end of the reinforcing bar 19 to reduce the anchoring length.
The wall top embedded part 5, the height adjusting part 6 and the wall bottom embedded part 7 are all made of metal parts. As shown in fig. 7-10, the wall top embedded part 5 comprises a steel plate 21, an anchor bar 22 and a steel cylinder 23, the top of the steel cylinder 23 is tapped, the bottom of the height-adjusting part 6 is provided with an internal threaded hole 25 matched with the top of the steel cylinder 23, and the height-adjusting part 6 is rotated on the wall top embedded part 5 to adjust the position of the prefabricated wall body 1 and is locked by a locking nut 26. The locking nut 26 is a metal piece with a centrally located threaded hole that matches the hole and thread of the wall top insert 5. The wall bottom embedded part 7 comprises a steel plate 27 and anchor bars 28, the bottom of the steel plate 27 is provided with an inner concave spherical surface 29, the top of the height-adjusting part 6 is an outer convex spherical surface 24, and the spherical radius of the outer convex spherical surface 24 is smaller than that of the inner concave spherical surface 29, so that the spherical centers are automatically overlapped and positioned conveniently, and the process of automatically positioning the wall body in installation is realized.
The construction method of the high-strength concrete connection node of the prefabricated wall specifically comprises the following steps:
1) The metal box 9, the cover plate 10, the threaded pipe 11, the guide pipe 12 and the guide pipe protection cover 13 are processed in batches in a factory;
2) Assembling a metal box 9, a transparent cover plate 10, a threaded pipe 11, a conduit 12 and a conduit protection cover 13 into a connecting box 2 in a factory;
3) The connecting piece 3, the wall top embedded piece 5, the height adjusting piece 6 and the wall bottom embedded piece 7 are processed in batches in a factory;
4) Designing and processing a prefabricated wall body mould, and assembling to complete the mould;
5) Designing a reinforcement cage required by processing a prefabricated wall;
6) Assembling the reinforcement cage into a prefabricated wall mold;
7) Fixing a wall top embedded part 5 at the design position of the wall top;
8) Fixing a wall bottom connecting box 2 and a wall bottom embedded part 7 at the design position of the wall bottom;
9) Pouring high-strength concrete, and maintaining the prefabricated wall;
10 When the strength requirement is met, demolding is carried out, and the product is transported to an installation site;
11 Mounting a lower prefabricated wall body and temporarily fixing;
12 Mounting a laminated slab, binding a post-pouring layer steel bar, and pouring a post-pouring layer, wherein if no laminated slab exists, the step is skipped;
13 Firstly, a locking nut 26 matched with the height adjusting member 6 is arranged on the wall top embedded member 5, so that the length from the upper end of the height adjusting member 6 to the locking nut is greater than the length of the internal thread of the height adjusting member 6, then, the height adjusting member 6 is arranged to measure the height and is adjusted to the designed height, and then, the height adjusting member 6 is matched with the locking nut to be locked;
14 Mounting auxiliary measures required by laying the sitting slurry and laying a sitting slurry layer;
15 Installing a layer of prefabricated wall, preliminarily positioning the wall through the guiding action of the bell mouth of the connecting box 2, and automatically adjusting the wall to a design coordinate through a positioning piece along with the descending of the prefabricated wall;
16 Temporarily fixing the installed wall;
17 After the sitting layer meets the strength requirement, the conduit protection cover 13 of the conduit at the upper end of the connecting box 2 is opened, and high-strength grouting material is injected;
18 All installations have been completed by this time.
The foregoing detailed description of the preferred embodiments of the invention has been presented. It should be understood that numerous modifications and variations could be devised by those skilled in the art in light of the present teachings without departing from the inventive concepts. Therefore, the technical solutions that can be obtained by a person skilled in the art through logical analysis, reasoning or limited experiments based on the prior art according to the concepts of the present invention should be within the scope of protection determined by the claims.

Claims (8)

1. A prefabricated wall high-strength concrete connection node is characterized by comprising at least two prefabricated walls (1), wherein each prefabricated wall (1) comprises a high-strength concrete wall, a wall top embedded part (5) is embedded at the top of each high-strength concrete wall, a connection box (2) and a wall bottom embedded part (7) are embedded at the bottom of each high-strength concrete wall, a scale adjusting high part (6) matched with the wall bottom embedded part (7) is arranged on each wall top embedded part (5), adjacent prefabricated walls (1) are connected through a connecting piece (3), and high-strength grouting materials (4) for connecting the adjacent prefabricated walls (1) into a whole are poured into the connection boxes (2);
the connecting box (2) comprises a metal box (9), a threaded pipe (11), a conduit (12), a cover plate (10) and a conduit protective cover (13), the threaded pipe (11) is connected to the bottom of the metal box (9), the tail end of the threaded pipe (11) is in a bell mouth shape (18), the conduit (12) is connected to the top of the metal box (9), the conduit protective cover (13) is arranged at the tail end of the conduit (12), and the cover plate (10) is covered on the metal box (9);
the top of the wall top embedded part (5) is tapped, an internal thread hole (25) matched with the top of the wall top embedded part (5) is formed in the bottom of the height adjusting part (6), and the height adjusting part (6) rotates on the wall top embedded part (5) to adjust the position of the prefabricated wall body (1) and is locked through a locking nut (26);
the embedded part (7) bottom of wall bottom is provided with indent sphere (29), height adjusting part (6) top is evagination sphere (24), the spherical radius of evagination sphere (24) is less than the spherical radius of indent sphere (29).
2. The precast wall high strength concrete connection node according to claim 1, wherein four sides of the precast wall body (1) are each provided with a shear groove (17).
3. The precast wall high-strength concrete connecting node according to claim 1, characterized in that the precast wall body (1) is provided with reinforcing hidden beams (8) at the top and bottom of the wall.
4. The precast wall high strength concrete connection node according to claim 1, wherein the center line of the threaded pipe (11) and the center line of the connection member (3) are located on the same vertical line.
5. Prefabricated wall high strength concrete connection node according to claim 1, characterized in that said connecting piece (3) is provided with an anchoring plate (20) at one end.
6. A construction method of the precast wall high-strength concrete connection node according to claim 1, comprising the steps of:
1) Obtaining a plurality of prefabricated walls (1);
2) Installing a lower-layer prefabricated wall body (1) and temporarily fixing;
3) Installing a locking nut (26) on the wall top embedded part (5), then installing an elevation adjusting part (6) to ensure that the length from the upper end of the wall top embedded part (5) to the locking nut is greater than the length of an internal thread of the elevation adjusting part (6), adjusting the prefabricated wall body (1) to a designed elevation through the elevation adjusting part (6), and then locking the locking nut (26);
4) Laying a base layer (16);
5) Installing a layer of prefabricated wall body (1);
6) The prefabricated wall body is initially positioned through the guiding action of a horn mouth (18) of the connecting box (2), and automatically adjusted to a design coordinate through the actions of a wall bottom embedded part (7), a wall top embedded part (5) and a height adjusting part (6) along with the descending of the prefabricated wall body;
7) Temporarily fixing the installed wall;
8) And after the grout layer meets the strength requirement, injecting high-strength grouting material into the connecting box (2) to finish the installation.
7. The construction method of the precast wall high-strength concrete connection node according to claim 6, wherein the prefabrication process of the precast wall body (1) comprises the steps of:
processing to obtain a connecting box (2), a wall top embedded part (5) and a wall bottom embedded part (7);
designing and processing a prefabricated wall mould and a corresponding reinforcement cage;
assembling the reinforcement cage into a prefabricated wall mold;
fixing a wall top embedded part (5) at the wall top design position of the prefabricated wall mould, and fixing a wall bottom connecting box (2) and a wall bottom embedded part (7) at the wall bottom design position;
and pouring high-strength concrete to form the prefabricated wall body (1), and maintaining to a set strength.
8. The construction method of the precast wall high-strength concrete connection node according to claim 6, wherein between the step 2) and the step 3), laminated slabs (14) are installed, post-cast layer steel bars are bound, and a post-cast layer (15) is cast.
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