Building structure and construction method for same
10837166 ยท 2020-11-17
Assignee
Inventors
Cpc classification
E04B5/10
FIXED CONSTRUCTIONS
E04B2001/2472
FIXED CONSTRUCTIONS
International classification
E04B1/00
FIXED CONSTRUCTIONS
E04B5/10
FIXED CONSTRUCTIONS
E04B1/20
FIXED CONSTRUCTIONS
Abstract
The invention relates to a building structure comprising pillar units, beam units including main beam units and floor slab units, the floor slab unit comprises a floor slab template layer and a floor slab framework unit; the beam unit comprises a beam template layer of concrete and the beam framework unit; the pillar unit comprises a pillar framework unit, the pillar framework unit comprises a pillar keel unit and support legs; the pillar framework unit comprises a pillar keel unit and support legs; the longitudinal section steel major keels supported on the main beam major keels and the steel bars protruding out of the floor slab template layer in the side direction are placed above the main beam units; the cells are formed between the adjacent beam units; more than one floor slab units are installed in each cell. The advantages of the invention are no support frames, no removing the template.
Claims
1. A building structure, comprising pillar units, beam units including main beam units and floor slab units, characterized in that: each floor slab unit comprises a meshed floor slab framework unit and floor slab templates wherein the meshed floor slab framework unit comprises longitudinal section steel major keels for load-bearing and arrayed transverse section steel keels fixed with the longitudinal section steel major keels, and the floor slab templates are fixed with the meshed floor slab framework unit with a gap between a top surface of the floor slab templates and a bottom surface of the longitudinal section steel major keels; each beam unit comprises a beam framework unit and beam templates fixed on the beam framework unit, wherein the beam framework unit comprises section steel beam keels for load-bearing, and a space is set between top surfaces of the beam templates and bottom surfaces of the longitudinal section steel major keels; each pillar unit comprises a pillar framework unit, wherein the pillar framework unit comprises a pillar keel unit and support legs fixed on the pillar keel unit and the pillar frame work unit is used for supporting the beam framework unit of the beam units; suspension parts are arranged at end faces of both ends of the longitudinal section steel major keels, wherein the suspension parts are of inverted L shape or reversed inverted L shape, the pillar units, the beam units and the floor slab units are pre-assembled modular structures, both ends of the beam units are placed on two corresponding support legs of two adjacent pillar units and fixed with the support legs; and a cell is formed between any two adjacent beam units, wherein plural floor slab units are installed in each cell, wherein the floor slab units are supported on the beam framework unit, wherein two opposite sides of two suspension parts fixed on the same longitudinal section steel major keel are stopped by the beam framework unit; wherein the pillar units, the beam unit templates and the floor slab templates are spliced together to form a concave cavity with an upward opening, and concrete is poured into the concave cavity; and wherein the beam framework unit and the meshed floor slab framework unit are embedded into the concave cavity with concrete to form integral floor slabs and beams.
2. The building structure according to claim 1, characterized in that: the building structure is a slab-pillar structure; each beam unit comprises side beam units; a beam framework unit of each side beam unit comprises more than two arrayed beam keels and also comprises arrayed section steel beam minor keels with small cross sectional area placed below the beam keels and perpendicular side and fixed with the beam keels; each side beam unit also comprises end plates, and the end plates are fixed at both ends of the beam keel; the beam templates of each side beam unit comprises a bottom plate parallel to a horizontal plane and an outer side plate perpendicular to the bottom plate, the bottom plate and the outer side plate form an L shape, a top face of the bottom plate is attached to the bottom faces of the beam minor keels, a top face of the outer side plate is higher than a top face of the beam framework unit, and the bottom plate is flush with and attached to the floor slab templates.
3. The building structure according to claim 1, characterized in that: each beam unit also comprises a middle beam unit; a beam framework unit of the middle beam unit comprises more than two arrayed beam keels and also comprises arrayed section steel beam minor keels with small cross sectional area placed below the beam keels and perpendicular and fixed with the beam keels; and the middle beam unit also comprises end plates, and the end plates are fixed at both ends of the beam keel, wherein top faces of the beam templates of the middle beam units are attached to bottom faces of the beam minor keels and are flush with and attached to the floor slab templates.
4. The building structure according to claim 1, characterized in that: the building structure is a slab-pillar-beam structure; beam unit comprises side beam units; a beam framework unit of the side beam unit comprises more than two arrayed beam keels and also comprises arrayed section steel beam minor keels with small cross sectional area placed below the beam keels and perpendicular and fixed with the beam keels; the beam unit also comprises end plates, and the end plates are fixed at both ends of the beam keel; and a beam template of the side beam unit comprises a bottom plate parallel to the horizontal plane, an outer side plate, and an inner side plate perpendicular to the bottom plate, a top face of the bottom plate is attached to bottom faces of beam minor keels, a top face of the outer side plate is higher than the top face of the beam framework unit, a top face of the inner side plate is flush with the top face of the floor slab template, and the inner side plate is attached to the floor slab template.
5. The building structure according to claim 4, characterized in that: the beam framework unit of the middle beam unit comprises more than two arrayed beam keels and also comprises arrayed section steel beam minor keels with small cross sectional area placed below the beam keels and perpendicular and fixed with the beam keels; each beam unit also comprises end plates, and the end plates are fixed at both ends of the beam keel; and a beam template of the middle beam unit comprises a bottom plate parallel to the horizontal plane and two side plates perpendicular to the bottom plate, the top face of the bottom plate is attached to the bottom faces of the beam minor keels, top faces of the side plates are flush with the top face of the floor slab template, and the side plates are attached to the floor slab template.
6. The building structure according to claim 1, characterized in that: each floor slab unit also comprises a floor slab decorative panel, and a floor slab template is a metal template to be removed; the floor slab decorative panel is placed between the meshed floor slab framework unit and the floor slab template; spaces for avoiding emptiness matched with support legs are arranged on the floor slab decorative panel and the floor slab template, with the beam framework unit being supported on the support legs; the floor slab decorative panel and the floor slab template are fixed on the corresponding meshed floor slab framework unit from below via fasteners; and reverse hooks are arranged on a upward face of the floor slab decorative panel and are embedded into concrete.
7. The building structure according to claim 1, characterized in that: the transverse section steel keels comprise upper transverse section steel keels fixed on top faces of the longitudinal section steel major keels and lower transverse section steel keels fixed on the bottom faces of the longitudinal section steel major keels; the suspension part comprises angle brackets fixed at both ends of the longitudinal section steel major keel; the upper transverse section steel keels and the lower transverse section steel keels are staggered, wherein end faces of the lower transverse section steel keels are flush with the corresponding side faces of the floor slab templates, and outer side faces of two outermost lower transverse section steel keels are flush with the corresponding side faces of the floor slab templates; the meshed floor slab framework unit is supported on the beam framework unit via horizontal parts of the angle brackets; and the bottom faces of the lower transverse section steel keels are attached to the top faces of the floor slab templates.
8. The building structure according to claim 7, characterized in that: the suspension part also comprises transverse section steel connecting strips connected on the bottom faces of the horizontal parts of the angle brackets; both ends of the upper transverse section steel keel protrude out of the floor slab templates, and longitudinal section steel connecting strips are connected on bottom faces of all the upper transverse section steel keels; and bottom faces of the longitudinal section steel connecting strips and the transverse section steel connecting strips are flush with each other; the bottom faces of the longitudinal section steel connecting strips and the transverse connecting strips are supported on the corresponding beam framework unit.
9. The building structure according to claim 7, characterized in that: the floor slab templates are removable templates and fixed on the meshed floor slab framework unit from below via fasteners; and the floor slab template unit comprises one of the floor slab templates and stiffeners fixed at a bottom face of the floor slab template.
10. The building structure according to claim 1, characterized in that: the building structure also comprises secondary beam units; the beam framework unit of the secondary beam units comprises more than two arrayed beam keels and also comprises arrayed section steel secondary beam minor keels placed below the beam keels and perpendicular and fixed with the beam keels, wherein the secondary beam unit also comprises end plates, and the end plates are fixed at both ends of the secondary beam keel; supporting parts are arranged on the beam framework units or suspension parts are arranged on secondary beam framework units, the secondary beam framework units are supported on the supporting parts of the beam framework units or supported on the beam framework units; and secondary beam templates are spliced together with the corresponding floor slab templates, and top planes of the secondary beam templates are flush with top planes of the floor slab templates.
11. The building structure according to claim 1, characterized in that: accommodating through holes for accommodating concrete are arranged in the longitudinal section steel major keels.
12. The building structure according to claim 1, characterized in that: the pillar unit also comprises pillar templates, with more than two templates being arranged at same height the pillar keel unit comprises more than two vertical arrayed load-bearing pillar major keels; the pillar keel unit also comprises short connecting tubes with vertical axes and short spacing tubes with the vertical axes, the short connecting tubes are installed between the pillar major keels and are used for spacing the pillar major keels and fixing the pillar major keels for the same pillar unit at the same height together, and the short spacing tubes are fixed on two relative outer side faces of different pillar major keels; support legs are fixed on the pillar major keels; the pillar templates are attached to and fixed with the short spacing tubes, a closed tubular cavity is formed by the pillar templates of the same height, and a space is set between the pillar templates and relative outer side faces of the pillar major keels; and spaces for avoiding emptiness are arranged in positions where the pillar templates are matched with the beam units, and the tubular cavity formed by the pillar templates are intercommunicated with the concave cavity.
13. The building structure according to claim 1, characterized in that: the meshed floor slab framework unit also comprises steel bars fixed with the transverse section steel keels, and the steel bars comprise longitudinal steel bars alone, or, longitudinal steel bars and transverse steel bars together.
14. A construction method of the building structure, the building structure comprises pillar units, beam units including main beam units and floor slab units, the construction method includes following steps: 1) pillar framework units, the beam units including main beam units and floor slab units are assembled according to design requirements or in a standardized way in a factory; assemble the floor slab units: each floor slab unit comprises a net-shaped floor slab framework unit and a floor slab template, suspension units are fixed at both ends of longitudinal section steel major keel, the longitudinal section steel major keels are fixed with transverse section steel major keels, and the floor slab templates are fixed with the net-shaped floor slab framework unit, thus floor units are assembled into a module structure in the factory; assemble the beam units: assemble beam framework units, and fix beam templates on the beam framework units, thus the beam units are assembled into a module structure in the factory; and assemble the pillar framework units: fix support legs on pillar keel units, the faces of support legs supporting the beam keels are kept perpendicular to the pillar keel units, thus the pillar framework units are assembled into a module structure in the factory; 2) position and install the pillar framework units, the pillar keel units are kept perpendicular to a horizontal plane; 3) the beam units are hoisted, placed and fixed on the support legs of the pillar framework units, a cell is formed between two adjacent beam units; 4) the floor slab units are hoisted and placed into the cells, with suspension parts of the floor slab units being supported on the beam framework units, and two opposite sides of two suspension parts fixed on same longitudinal section steel keel are stopped by the beam framework units; pillar framework units, the beam templates and the floor slab templates are spliced together to form a concave cavity with an upward opening; and 5) the concrete is poured into the concave cavity, with the beam framework units and the net-shaped floor slab framework unit embedded into the concrete; after the concrete setting, integral floor slabs and beams are formed by the said beam framework units, the net-shaped floor slab framework unit and the concrete.
15. A construction method of the building structure, the building structure comprises pillar units, beam units including main beam units and floor slab units, the construction method includes the following steps: 1) pillar framework units, beam units including main beam units and floor slab units are assembled according to design requirements or in a standardized way in a factory; assemble floor slab units: each floor slab unit comprises a net-shaped floor slab framework unit and a floor slab template, suspension units are fixed at both ends of longitudinal section steel major keel, the longitudinal section steel major keels are fixed with transverse section steel major keels, and the floor slab templates are fixed with the net-shaped floor slab framework unit, thus the floor units are assembled into a module structure in the factory; assemble the beam units: assemble beam framework units, and fix beam templates on the beam framework units, thus the beam units are assembled into a module structure in the factory; and assemble pillar framework units: fix support legs on pillar keel units, the faces of support legs supporting the beam keels are kept perpendicular to the pillar keel units, thus pillar framework units are assembled into a module structure in the factory; 2) position and install pillar framework units, the pillar keel units are kept perpendicular to a horizontal plane; 3) installation of pillar templates: the pillar templates are fixed with corresponding pillar framework units; a tubular cavity is formed by the pillar templates of the same height; concrete is poured into tubular cavity; pillar framework units above the faces of support legs supporting the beam keels are not embedded into the concrete in the concave cavity; 4) the beam units are hoisted, placed and fixed on the support legs of the pillar framework units; the cell is formed between two adjacent beam units after the installation of the beam units are completed; 5) the floor slab units are hoisted and placed into the cells, with suspension parts of the floor slab units being supported on the said beam framework units; combined pillar framework units, the beam templates and the floor slab templates are spliced together to form a concave cavity with an upward opening are spliced together to form a concave cavity with an upward opening; and 6) the concrete is poured into the concave cavity; the beam framework units and floor framework units are embedded into the concrete in the concave cavity; all the pillar keel units are embedded into the concrete in the tubular cavity, and an integral structure is formed by the concrete in the concave cavity and the concrete in the tubular cavity; after concrete setting, integral floor slabs, beams and pillars are formed by all the said beam framework units, the net-shaped floor slab framework unit and concrete and all the pillar framework units and concrete.
16. A building structure, which comprises pillar units, beam units including main beam units and floor slab units, characterized in that: each floor slab unit comprises a semi-precast floor slab template layer and a floor slab framework unit partially embedded into the semi-precast floor slab template layer; floor framework unit comprises arrayed longitudinal load-bearing section steel major keels with large cross sectional area and transverse section steel keels installed below the longitudinal section steel major keels, as well as steel bars installed with the transverse section steel keels together, wherein the steel bars comprise either first longitudinal steel bars alone, or, first transverse steel bars plus first longitudinal steel bars together; the steel bars and the transverse section steel keels are embedded into the semi-precast floor slab template layer, the steel bars protrude out of the semi-precast floor slab template layer in side direction, the transverse section steel keels protrude out of the semi-precast floor slab template layer in the side direction or are completely embedded into the semi-precast floor slab template layer, wherein the longitudinal load-bearing section steel major keels protrude out of the semi-precast floor slab template layer only in the side and upward side direction; each beam unit comprises a semi-precast beam template layer of concrete and a beam framework unit partially embedded into the semi-precast beam template layer; the beam framework unit comprises section steel major keels for load-bearing; end parts of the beam keels protrude out of end faces of the semi-precast beam template layer; the pillar units comprise a pillar framework unit, and the pillar framework unit comprises a pillar keel unit and support legs fixed on the pillar keel unit and used for supporting the beam framework unit; the floor slab units, the beam units, the pillar framework units are pre-assembled modular structures, both ends of each beam unit are supported on two corresponding support legs of two adjacent pillar units and fixed with the two support legs; a cell is formed between two adjacent beam units, wherein more than one floor slab units are installed in each of the cells formed by the pillar units and the beam units; the longitudinal section steel major keels are supported on the beam keels, wherein the longitudinal section steel major keels and the steel bars protruding out of the semi-precast floor slab template layer in the side direction are placed above the beam units; more than one floor slab units are installed in each of the cells formed by the pillar units and the beam units; and wherein the pillar units, the semi-precast floor slab template layer and the semi-precast beam template layer are spliced together to form a concave cavity with an upward opening, concrete is poured into the concave cavity, with the floor slab framework unit and the beam framework unit being completely embedded into the concrete, and integral floor slabs and beams are formed by the beam units, the floor slab units and the concrete.
17. The building structure according to claim 14, characterized in that: the suspension parts are fixed at outermost longitudinal section steel major keels, and the longitudinal section steel keels are supported on the beam keels.
18. The building structure according to claim 14, characterized in that: the transverse section steel keels protrude out of the semi-precast floor slab template layer; the transverse section steel keels protrude out of the semi-precast floor slab template layer in the side direction, and the first transverse steel bars are placed above the beam units.
19. The building structure according to claim 14, characterized in that: the longitudinal section steel major keels are round tube type section steel, and the transverse section steel keels are square tube type section steel with small cross sectional area; the building structure also comprises U-shaped connectors matched with the longitudinal section steel major keels, with U-shaped grooves matched with the transverse section steel keels being arranged on the U-shaped connectors; the first transverse steel bars and the first longitudinal steel bars are fixed together to form a steel bar mesh, the first longitudinal steel bars are supported on the transverse section steel keels, the first transverse steel bars are placed between two adjacent transverse section steel keels, and the first longitudinal steel bars are placed between two connected longitudinal section steel major keels; and the U-shaped connectors are suspended to the longitudinal section steel major keels, and the transverse section steel keels are installed in the U-shaped grooves of the U-shaped connectors and are fixed with the longitudinal section steel major keels and the U-shaped connectors together through welding.
20. The building structure according to claim 14, characterized in that: the beam framework unit also comprises reinforces and square tube type sleeves; and the beam keels of each beam unit are two pieces of relatively arranged open C-shaped section steel; the reinforces are vertically installed in the C-shaped section steel, the two pieces of C-shaped section steel penetrate through the square tube type sleeves, and the square tube type sleeves connect the two pieces of C-shaped section steel together.
21. The building structure according to claim 14, characterized in that: the beam framework unit also comprises reinforces and square tube type sleeves; and the beam keels of each beam unit are four pieces of relatively arranged L-shaped section steel; the reinforces are installed among the four pieces of L-shaped section steel, the four pieces of L-shaped section steel penetrate through the square tube type sleeves, and the square tube type sleeves connect the four pieces of L-shaped section steel together.
22. The building structure according to claim 14, characterized in that: second transverse steel bars and second longitudinal steel bars are installed on the longitudinal section steel major keels.
23. A building structure, which comprises pillar units, beam units including main beam units and floor slab units, characterized in that: each floor slab unit comprises a semi-precast floor slab template layer and a floor slab framework unit partially embedded into the semi-precast floor slab template layer; floor framework unit comprises arrayed longitudinal load-bearing section steel major keels with large cross sectional area and transverse section steel keels installed below the longitudinal section steel major keels, as well as steel bars installed with the transverse section steel keels together, and the steel bars comprise either first longitudinal steel bars alone, or, first transverse steel bars plus first longitudinal steel bars together; the steel bars and the transverse section steel keels are embedded into the semi-precast floor slab template layer, the steel bars protrude out of the semi-precast floor slab template layer in the side direction, the transverse section steel keels protrude out of the semi-precast floor slab template layer in the side direction or are completely embedded into the semi-precast floor slab template layer; the longitudinal load-bearing section steel major keels protrude out of the semi-precast floor slab template layer only in the side and upward side direction; each beam unit comprises a beam framework unit and a beam template fixed on the beam framework unit; the beam framework unit comprises section steel major keels for load-bearing with large cross sectional area; end parts of the beam keels protrude out of end faces of the beam template; the pillar unit comprises a pillar framework unit, and the pillar framework unit comprises a pillar keel unit and support legs fixed on the pillar keel unit and used for supporting the beam framework unit; both ends of the beam keel are supported on two corresponding support legs of two adjacent pillar units and fixed with the two support legs; the longitudinal section steel major keels are supported on the beam keels; the longitudinal section steel major keels and the steel bars protruding out of the semi-precast floor slab template layer in the side direction are placed above the beam units; more than one floor slab units are installed in a cell formed by the pillar units and the beam units; and wherein the pillar units, semi-precast floor slab template layer and semi-precast beam template layer are spliced together to form a concave cavity with an upward opening, concrete is poured into the concave cavity, with the floor slab framework unit and the beam framework unit being completely embedded into the concrete, and integral floor slabs and beams are formed by the beam units, the floor slab units and the concrete.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(46) The invention will be further described below in details with reference to the figures and embodiments.
Embodiment 1
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(56) The bottom faces of the lower transverse section steel keels 46 are attached to the top faces of the floor slab templates. Both ends of Upper Transverse Section Steel Keel 45 protrude out of the floor slab templates, and longitudinal section steel connecting strips 49 are connected on the bottom faces of Upper Transverse Section Steel Keel 45 through welding; The end faces of Upper Transverse Section Steel Keel 45 are flush with the corresponding side faces of the longitudinal connecting strips 49, and the bottom faces of the longitudinal connecting strips 49 and the transverse connecting strips 48 are flush with each other. The bottom faces of the transverse connecting strips 48 connecting the Angle Bracket 47 at both ends of the longitudinal section steel major keel 44 are respectively supported on the beam keels of beam Unit 16 and beam Unit 18, and two opposite sides of connecting Angle Bracket 47 fixed on the same longitudinal section steel keel 44 are stopped by the beam framework units. The bottom faces of Longitudinal Connecting Strip 49 at both ends of Transverse Section Steel Major Keel 45 are respectively supported on the beam keels of beam Unit 17 and beam Unit 19. The floor slab templates 43 are fixed with the lower transverse section steel keels 46 through welding.
(57) As shown in
(58) A construction method of the building structure, the building structure comprises pillar units, beam units including main beam units and floor slab units, the construction method includes the following steps:
(59) 1) All the pillar framework units, the beam units and the floor slab units are assembled according to design requirements or in a standardized way in a factory;
(60) Assemble Floor Slab Units:
(61) The Angle Bracket 47 are fixed at both ends of Longitudinal Section Steel Major Keel 44 through welding in the factory, the transverse square tube type section steel connecting strips 48 are connected on the bottom faces of the horizontal parts of the Angle Bracket 47 through welding to form the suspension parts of Floor Slab Unit 24; Upper Transverse Section Steel Keel 45 are welded on the top faces of the longitudinal section steel major keels 44, and Longitudinal Connecting Strip 49 is connected on the bottom faces of Upper Transverse Section Steel Keel 45 through welding; Lower Transverse Section Steel Keel 46 is welded on the bottom faces of Longitudinal Section Steel Major Keel 44; Floor Slab Template 50 is fixed with Lower Transverse Section Steel Keel 46 through welding; so all components of Floor Slab Unit 24 form an integral structure fixed together in the factory; all the other floor slab units are also fixed together in the factory in the same way; thus all the floor units are assembled into a module structure in the factory.
(62) Assemble Beam Units:
(63) All the beam minor keels 34 are evenly welded on the bottom faces of the beam keels 33 in the factory, two-end plates 35 are respectively welded at both ends of beam keel 33, and Bottom Plate 36 and Outer Side Plate 37 of the beam template are fixed with the beam minor keels 34 through welding; so all components of beam Unit 18 form an integral structure fixed together in the factory; all the other beam units are also fixed together in the factory in the same way; thus beam Units are assembled into a module structure in the factory.
(64) Assemble Pillar Framework Units:
(65) Bearing Plate 30 is welded on Fixed Plate 29 in the factory, with Bearing Plate 30 forming a 90 angle with Fixed Plate 29; Two-rib Plate 31 is placed below Bearing Plate 30 and welded with Fixed Plate 29 and Bearing Plate 30, and Fixed Plate 29 is welded on the side face of Pillar Keel 26; Fixed Plate 29, Bearing Plate 30 and Two-rib Plate 31 form Support Leg 27; Support Leg 28 is fixed on Pillar Keel 26 in the same way; so all components of the pillar framework unit of Pillar Unit 3 form an integral structure fixed together in the factory; all the pillar framework units of other pillar units are also fixed together in the factory in the same way; thus all beam Units are assembled into a module structure in the factory.
(66) 2) Position and install pillar framework units, the pillar keel Units are kept perpendicular to the horizontal plane.
(67) 3) The beam units are hoisted and placed on the support legs of the pillar framework units; The beam units and the pillar framework units are spliced together to form cells after the installation of the beam units is completed; the cells are formed between the two two adjacent beam units;
(68) 4) The floor slab units are hoisted and placed into the cells, with the transverse connecting strips welded on the bottom faces of the angle brackets of the floor slab units being supported on the beam keels of the corresponding beam units; combined pillar units, beam templates of the beam units and floor slab templates of the floor slab units are spliced together to form a concave cavity with an upward opening;
(69) 5) Concrete 52 is poured into the concave cavity, with the all the beam keels, partial the beam minor keels, all the longitudinal section steel major keels, all the upper transverse section steel keels and partial lower transverse section steel keels being embedded into the Concrete 52; after the Concrete 52 is set, integral floor slabs and beams are formed by the beam framework units, the floor slab framework units and the Concrete 52.
(70) The construction of the upper storey of floor slabs is completed in this way. The connection between pillars is the same to the existing way and will not be discussed in the invention.
(71) In the embodiment, after concrete is set, the floor slab templates and the beam templates become one part of the building structure without removal, so no support frame or scaffold is needed during construction, and the construction efficiency is maximized Because beams in this structure do not protrude out of floor slabs, the hidden beam type slab-pillar building structure is formed.
Embodiment 2
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Embodiment 3
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Embodiment 4
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Embodiment 5
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(85) The floor slab unit 134 is supported on the beam keels of Main the beam framework unit 122 via transverse connecting strips 144 connecting angle brackets 143 and is supported on the beam keels of Main the beam framework unit 102 via transverse connecting strips 146 connecting angle brackets 145; one end of the transverse section steel keel 147 is supported on the beam keels of the secondary beam unit 101, and the other end is supported on the beam keels of the secondary beam unit 148.
(86) Floor Slab Framework Unit 135 is supported on the beam keels of Main the beam framework unit 122 via transverse connecting strips 150 connecting angle brackets 149 and is supported on the beam keels of Main the beam framework unit 102 via transverse connecting strips 152 connecting angle brackets 151; one end of the transverse section steel keel 153 is supported on the beam keels of the secondary beam unit 148, and the other end is supported on the beam keels of the secondary beam unit 133.
(87) The construction method has the difference the embodiment in that after beam units in the same cell are installed, secondary beam units are installed on corresponding beam units, and then template units are installed.
(88) beam 154 in this building structure protrudes out of Floor Slab 155 to form the exposed beam type slab-pillar-beam building structure.
Embodiment 6
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(90) The pillar framework unit comprise a pillar keel unit and support legs fixed on the pillar keel units and used for supporting main the beam framework units. The pillar keel unit comprise four vertical load-bearing pillar major keels 182, 183, 184 and 185 distributed at four corners of a rectangle.
(91) The pillar framework unit also comprises multiple vertically arrayed short connecting tubes 186 with vertical axes, multiple vertically arrayed short spacing tubes 187 and 188 with vertical axes and short spacing tubes 189 and 190, the short connecting tubes 186 are installed between the pillar major keel 182 and the pillar major keel 183 and between the pillar major keel 185 and the pillar major keel 184 and used for spacing the pillar major keel 182 and the pillar major keel 183 as well as the pillar major keel 185 and the pillar major keel 184 and fixing the pillar major keels 182, 183, 184 and 185 of the same pillar at the same height together, the short spacing tubes 187 and 188 are respectively welded on the outer side faces of the pillar major keels 182 and 183 opposite to the pillar major keels 185 and 184, and the short spacing tubes 189 and 190 are respectively welded on the outer side faces of the pillar major keels 184 and 185 opposite to the pillar major keels 183 and 182 and are symmetrical to the short spacing tubes 188 and 187 about the vertical plane in the central position; The support legs are short spacing tubes 191 and 192 fixed on the pillar major keels 184 and 185; The pillar template 180 penetrates through the short spacing tube 189 to be fixed with the pillar major keel 184 and penetrates through the short spacing tube 190 to be fixed with the pillar major keel 185 via fasteners (not shown); The pillar template 181 penetrates through the short spacing tube 187 to be fixed with the pillar major keel 182 and penetrates through the short spacing tube 188 to be fixed with the pillar major keel 183 via fasteners (not shown). A closed square tubular cavity 193 is formed by the pillar templates 180 and 181 at the same height, spaces are arranged between the pillar template 180 and the relative side faces of the pillar major keels 184 and 185, and spaces are arranged the pillar template 181 and the relative side faces of the pillar major keels 182 and 183. Pillar templates 194 and 195 with completely the same cross section structure with the pillar templates 180 and 181 are also arranged right below the templates 180 and 181. The pillar template 194 penetrates through the short spacing tube 189 to be fixed with the pillar major keel 184 and penetrates through the short spacing tube 190 to be fixed with the pillar major keel 185 via fasteners (not shown); The pillar template 195 penetrates through the short spacing tube 187 to be fixed with the pillar major keel 182 and penetrates through the short spacing tube 188 to be fixed with the pillar major keel 183 via fasteners (not shown). Empty avoiding spaces are arranged in the positions where the combined pillar templates 180, 181, 194 and 195 are matched with the beam units 196 and 197. The axes of all the short connecting tubes are vertical, and concrete will fill in the cavities of the short connecting tubes and the short spacing tubes; so the rigidity of the longitudinal short connecting tubes and the short spacing tubes and the binding force of concrete are enhanced, and the building structure is better, firmer and safer.
(92) All combined pillar units, beam templates of the beam units and floor slab templates of the floor slab units are spliced together to form a concave cavity 198 with an upward opening, and the square tubular cavity 193 formed by the pillar templates of all pillars is intercommunicated with the concave cavity of corresponding storey. Concrete 199 is poured into the concave cavity 198, with all beam keels, partial beam minor keels, all longitudinal section steel major keels, all upper transverse section steel keels and partial lower transverse section steel keels of this storey being embedded into the concrete 199, concrete 200 is poured into the square tubular cavity 193, with all pillar major keels, short connecting tubes, short spacing tubes and major connecting tubes being embedded into the concrete 200, and the concrete 199 and the concrete 200 form an integral structure. Integral floor slabs, beams and pillars are formed by all main the beam framework units, floor slab framework units and concrete, as well as all pillar units and concrete.
(93) The construction method of the building structure has the difference Embodiment 1 in this Embodiment pillar templates are installed after the installation of floor slab units: the pillar templates are fixed with the corresponding pillar framework units; The square tubular cavity 193 formed by the pillar templates is intercommunicated with Concave Cavity 198 of the corresponding storey; Concrete 199 is poured into Concave Cavity 198, and Concrete 200 is poured into the square tubular cavity 193; all beam keels, some or all of beam minor keels, all longitudinal section steel major keels and some or all of transverse section steel keels are embedded into the concrete 199 in the concave cavity 198; all pillar keel units are embedded into Concrete 200 in the square tubular cavity 193; after setting of Concrete 199 and the concrete 200, integral floor slabs, beams and pillars are formed by all main the beam framework units, floor slab framework units and concrete, as well as all pillar framework units and concrete.
Embodiment 7
(94) As shown in
(95) The pillar keel unit comprise four vertical load-bearing channel steel pillar major keels 220, 221, 222 and 223 with relative openings and the same structure distributed at four corners of a rectangle and four C-shaped pillar major keels 225, 226, 227 and 228 with the same cross section structure located right below the pillar major keels 220, 221, 222 and 223, and the pillar major keels 220, 221, 222 and 223 are attached, connected and fixed with the pillar major keels 225, 226, 227 and 228 through four side faces of a large connecting tube 224.
(96) A support leg comprises a fixed plate 229, a bearing plate 230 and two rib plates 231, the bearing plate 230 is welded on Fixed Plate 229, with the bearing plate 230 forming a 90 angle with Fixed Plate 29, and the rib plates 231 are placed below the bearing plate 230 and welded with Fixed Plate 229 and the baring plate 230 together so as to increase the strength of the support leg. Fixed Plate 229 is welded on the side faces of the pillar major keels 227 and 228, and the bearing plate 230 is used for bearing a beam unit 232.
(97) The construction method of the building structure has the difference Embodiment 6 in this Embodiment is that:
(98) After position and install pillar framework units, install Pillar templates: The pillar templates are fixed with corresponding pillar framework units; A tubular cavity is formed by the pillar templates of the same height; The concrete is poured into tubular cavity; The pillar framework units above the faces of support legs supporting the beam keels are not embedded into the concrete in the concave cavity;
(99) The beam units are hoisted;
(100) The floor slab units are hoisted and placed into the cells; Combined pillar framework units, beam templates and floor slab templates are spliced together to form a concave cavity with an upward opening;
(101) The concrete is poured into the concave cavity and tubular cavity which haven't been not poured into the concrete; The beam framework units and floor framework units are embedded into the concrete in the concave cavity; All the pillar keel units are embedded into the concrete in the tubular cavity, and an integral structure is formed by the concrete in the concave cavity and the concrete in the tubular cavity; After the concrete sets, the integral floor slabs, beams and pillars are formed by all the beam framework units, the floor slab framework units and the concrete and all the pillar framework units and the concrete.
Embodiment 8
(102) As shown in
(103) Pillar major keels of all pillar units are load-bearing L-shaped section steel. Four pillar major keels 256, 257, 258 and 259 of the same pillar unit are arranged in opposite directions to form a rectangle, and short connecting tubes 260 are attached and fixed with the pillar major keels 256, 257, 258 and 259.
Embodiment 9
(104) As shown in
Embodiment 10
(105) As shown in
Embodiment 11
(106) As shown in
(107) A pillar unit comprises a pillar framework unit and a pillar template 365. The pillar framework unit comprise one H type section steel pillar major keel 366, multiple vertically arrayed square tube type short spacing tubes 367 and 368 with vertical axes respectively welded on the outer side faces of opposite flanges of the pillar major keel 366, and a square tube type support leg 369 with horizontal axis welded on the pillar major keel 366 and used for supporting the beam framework unit. Multiple accommodating through holes 370 with horizontal axes are arranged on all webs of the pillar major keel 366. The pillar template 365 fixed with the short cushion tubes 368 and the pillar major keel 366 via fasteners (not shown).
(108) A beam unit comprises a main the beam framework unit and a beam template 371 fixed on the beam framework unit. The beam framework unit comprises one horizontal load-bearing H type section steel beam keel 372 with large cross sectional area and also comprises multiple parallel square tube type short cushion tubes 373 with horizontal axes fixed on the bottom face of the beam keel 372 through welding and perpendicular to the beam keel 372. The bottom faces of the short cushion tubes 373 are attached to the top face of the beam template 371. The beam template 371 is fixed with the short cushion tubes 373 and the beam keel 372 via fasteners (not shown). Multiple accommodating through holes 374 with horizontal axes are arranged on all webs of the beam keel 372. An empty avoiding space 375 matched with Support Leg 369 of a pillar unit is arranged on a bottom plate of the beam template 371.
(109) A secondary beam unit comprise a secondary beam framework unit and a secondary beam template 376; The secondary beam framework unit comprise one H type section steel secondary beam keel 377, multiple parallel square tube type short cushion tubes 378 with horizontal axes fixed on the bottom face of the secondary beam keel 377 through welding and perpendicular to the secondary beam keel 377; The secondary beam framework unit also comprises small square steel plates 379 respectively fixed on the top faces of the secondary beam keel 377 through welding, and the small square steel plates 379 form suspension parts. The bottom faces of the short cushion tubes 378 are attached to the top face of the secondary beam template 376. The secondary beam template 376 is fixed with the short cushion tubes 378 and the secondary beam keel 377 via fasteners (not shown). Multiple accommodating through holes 380 with horizontal axes are arranged on all webs of the secondary beam keel 377.
(110) The axes of the short cushion tubes 362, 373 and 378 are horizontal. During concrete pouring, concrete will fill in the short cushion tubes; accommodating through holes are arranged on webs of the longitudinal section steel major keels 360, the pillar major keel 366, the beam keel 372 and the beam keels 377, and concrete will fill in the accommodating through holes during concrete pouring; so the binding force between the longitudinal section steel major keels 360, the pillar major keel 366, the beam keel 372 and the beam keels 377 and the concrete is enhanced, and the building structure is better, firmer and safer.
Embodiment 12
(111) As shown in
(112) The structure diagram of only one storey is shown in the invention. Other unstated parts, such as connections and fixings between pillars of different stories, fixings between pillars and the foundation, etc., are the same to the prior art.
Embodiment 13
(113) As shown in
(114) As shown in
(115) U-shaped grooves 421 matched with the transverse section steel keels 415 are arranged on the U-shaped connectors 418. The first transverse steel bars 416 and the first longitudinal steel bars 417 are fixed together to form a steel bar mesh, the first longitudinal steel bars 417 are supported on the transverse section steel keels 415, the first transverse steel bars 416 are placed between two adjacent transverse section steel keels 415, and the first longitudinal steel bars 417 are placed between two connected longitudinal section steel major keels. The U-shaped connectors 418 are suspended to the middle longitudinal section steel major keels 413, and the transverse section steel keels 415 are placed below the longitudinal section steel major keels 412, installed in the U-shaped grooves 421 of the U-shaped connectors 418 and fixed with the longitudinal section steel major keels 413 and the U-shaped connectors 418 together through welding.
(116) As shown in
(117) As shown in
(118) Round holes 431 with horizontal axes are arranged on the beam keel 425, round holes 432 with horizontal axes are arranged on the beam keel 426, so that the binding force between the beam keels 425 and 426 and concrete is enhanced, and the building structure is better, firmer and safer.
(119) As shown in
(120) As shown in
(121) The pillar template 434 penetrates through the short spacing tubes 441 to be fixed with the pillar major keel 435 and penetrates through the short spacing tubes 442 to be fixed with the pillar major keel 436 via fasteners (not shown). Round holes 443 with horizontal axes are arranged on the pillar major keel 435, round holes 444 with horizontal axes are arranged on the pillar major keel 436, the axes of all the short connecting tubes 441 and 442 are vertical, and concrete will fill in the cavities of the short connecting tubes 441 and 442, the round holes 443 of the pillar major keel 435 and the round holes 444 of the pillar major keel 436; so the rigidity of the short spacing tubes 441 and 442 and the binding force of concrete are enhanced, the binding force between the pillar major keels 435 and 436 and concrete is enhanced, and the building structure is better, firmer and safer.
(122) As shown in
(123) The structure of the beam unit 408 and the structure of the beam unit 406 are symmetrical about the vertical plane in the central position. One end of each of beam keels 445 and 446 of the beam unit 408 is supported on a support leg (not shown) of Pillar Unit 401 through square tube type sleeves 447 and is fixed with the support leg, and the other end is supported on a support leg (not shown) of Pillar Unit 401 through square tube type sleeves 447 and is fixed with the support leg.
(124) The structure of the beam unit 405 has the difference from the structure of the main bean unit 406 in that only the lengths of two beam keels 448 and a semi-precast beam template layer 449 are different, the quantities of reinforces (not shown) and square tube type sleeves (not shown) are different, and the installation relations are different. One end of each of the two beam keels 448 of the beam unit 405 is supported on a support leg (not shown) of Pillar Unit 401 through a square tube type sleeve and is fixed with the support leg, and the other end is supported on a support leg (not shown) of Pillar Unit 402 through square tube type sleeves and is fixed with the support leg.
(125) The structure of the beam unit 407 and the structure of the beam unit 405 are symmetrical about the vertical plane in the central position. One end of each of beam keels 479 and 480 of the beam unit 407 is supported on a support leg (not shown) of Pillar Unit 403 through square tube type sleeves 481 and is fixed with the support leg, and the other end is supported on a support leg (not shown) of Pillar Unit 404 through square tube type sleeves 481 and is fixed with the support leg.
(126) One end of each of the longitudinal section steel major keels 412, 413 and 414 is supported on the beam keels 445 and 446 of the beam unit 408, and the other end is supported on the beam keels 425 and 426 of the beam unit 406. One end of each of the first longitudinal steel bars 417 protruding out of the semi-precast floor slab template layer 410 is located above the beam framework unit 408, and the other end is located above the beam framework unit 406.
(127) The suspension parts 419 of the longitudinal section steel major keels 412 are supported on the two beam keels of the beam unit 405, the suspension parts 420 of the longitudinal section steel major keels 414 are supported on the two beam keels 479 and 480 of the beam unit 407, one end of each of the first transverse steel bars 416 protruding out of the semi-precast floor slab template layer 410 is located above the beam framework unit 405, and the other end is located above the beam framework unit 407.
(128) Floor Slab Unit 409 is installed in a cell formed by Pillar Units 401, 402, 403 and 404 and the beam units 405, 406, 407 and 408.
(129) Combined pillar units 401, 402, 403 and 404, semi-precast floor slab template layer 410 and semi-precast beam template layers of four beam units are spliced together to form a concave cavity with an upward opening, concrete is poured into the concave cavity, the floor slab framework units and the beam framework units are completely embedded into the concave cavity, and integral floor slabs and beams are formed by the beam units, the floor slab units and the concrete.
(130) A construction method of the building structure, the building structure comprises pillar units, beam units including main beam units and floor slab units, the construction method includes the following steps:
(131) 1) All pillar units, all main the beam framework units and all floor slab framework units are assembled according to design requirements or in a standardized way in a factory, and all pillar units, all the beam framework units and all the floor slab framework units are completely assembled and fixed together in the factory;
(132) 2) Precasting of a semi-precast floor slab template layer and precasting of a semi-precast beam template layer;
(133) Precasting of a semi-precast floor slab template layer comprises the following process steps:
(134) Installation of a floor slab mold:
(135) The floor slab mold comprises flat plate type floor slab bottom die 450 and floor slab side dies 451, 452, 453 and 454;
(136) Arc-shaped empty avoiding grooves 455 with upward openings matched with the longitudinal section steel major keels 412, five arc-shaped empty avoiding grooves 456 with upward openings respectively matched with the five longitudinal section steel major keels 413, arc-shaped empty avoiding grooves 457 with upward openings respectively matched with the longitudinal section steel major keels 414 and multiple U-shaped empty avoiding grooves 458 with upward openings matched with the first longitudinal steel bars 417 are arranged on the floor slab side die 451; The floor slab side die 453 is symmetrical to the floor slab side die 451, and its length is equal to the width of the floor slab bottom side 450;
(137) Multiple U-shaped empty avoiding grooves 459 with upward openings respectively matched with the suspension parts 419 and multiple U-shaped empty avoiding grooves 460 with upward openings respectively matched with the first transverse steel bars 416 are arranged on the floor slab side die 452; The floor slab side die 454 is symmetrical to the floor slab side die 452, and its length is equal to the length of the floor slab bottom side 450 plus the thickness of the floor slab side dies 451 and 453;
(138) Firstly, the floor slab side die 453 is fixed at the left side of the floor slab bottom side 450 via fasteners, and the floor slab side die 451 is fixed at the right side of the floor slab bottom side 450 via fasteners, with the front and rear two side faces of each of the floor slab side dies 451 and 452 being flush with the front and rear two side faces of the floor slab bottom side 450; secondly, the floor slab side die 452 is fixed at the front side of the floor slab bottom side 450 via fasteners, and the floor slab side die 454 is fixed at the rear side of the floor slab bottom side 450 via fasteners, with the left side faces of the floor slab side dies 452 and 454 being flush with the left side face of the floor slab side die 453 and the right side faces of the floor slab side dies 452 and 454 being flush with the right side face of the floor slab side die 451;
(139) The floor slab bottom die 450 and the floor slab side dies 451, 452, 453 and 454 installed together form the floor slab mold, and the floor slab mold forms a concave cavity with an upward opening;
(140) Floor Slab Framework Unit 411 is installed in the concave cavity of the floor slab mold; The longitudinal section steel major keels 412, 413 and 414 of Floor Slab Framework Unit 411 respectively penetrate through the corresponding empty avoiding grooves in the side direction and are supported on the floor slab side dies 451 and 453, with the left sides protruding out of the floor slab side die 453 and the right sides protruding out of the floor slab side die 451; The first longitudinal steel bars 417 penetrate through the corresponding empty avoiding grooves, with the left sides protruding out of the floor slab side die 453 and the right sides protruding out of the floor slab side die 451; The suspension parts 419 fixed with the longitudinal section steel major keels 412 penetrate through the empty avoiding grooves 459 in the side direction and are supported on the floor slab side die 452, with the front sides protruding out of the floor slab side die 452; The suspension parts 420 fixed with the longitudinal section steel major keels 414 penetrate through the empty avoiding grooves in the side direction and are supported on the floor slab side die 454, with the rear sides protruding out of the floor slab side die 454; The first transverse steel bars 416 penetrate through the corresponding empty avoiding grooves, with the front sides protruding out of the floor slab side die 452 and the rear sides protruding out of the floor slab side die 454;
(141) Concrete is poured into the concave cavity of the floor slab mold to form the semi-precast floor slab template layer 410, with Floor Slab Framework Unit 411 being partially embedded into the semi-precast floor slab template layer 410;
(142) After the semi-precast floor slab template layer 410 is dried, the floor slab side dies 451, 452, 453 and 454 are first separated from the floor slab bottom die 450, and then the semi-precast floor slab template layer 410 is separated from the floor slab bottom die 450;
(143) The precasting method of semi-precast floor slab template layers of other floor slab units is the same to the precasting method of the semi-precast floor slab template layer 410;
(144) Precasting of the semi-precast beam template layer 424 comprises the following process steps:
(145) Installation of a Beam Mold:
(146) The beam mold comprises an L-shaped main die 461, a reverse L-shaped front side die 462, a flat plate type top die 463, a left side die 464 and a movable right side die 465; The lengths of the main die 461, the front side die 462 and the top die 463 are the same; The left side die 464 comprises a bottom wall 466 as well as a front side wall 467 and a rear side wall 468 protruding out of the bottom wall 466; The height of the rear side wall 468 is greater than the height of the front side wall 467; The movable right side die 465 comprises a bottom wall 469 as well as a front side wall 470 and a rear side wall 471 protruding out of the bottom wall; The height of the rear side wall 471 is greater than the height of the front side wall 470; The front side die 462 comprises a front side wall 476 and a rear side wall 477; The L-shaped opening of the main die 461 faces forwards and upwards, the wall of the main die 461 parallel to the horizontal plane is the bottom wall 472, and the wall perpendicular to the bottom wall 472 is the side wall 473;
(147) The left side wall 464 is fixed on the left side face of the main die 461, with the bottom face being flush with the bottom face of the main die, the front side face protruding out of the front side face of the bottom wall 472 of the main die 461, the rear side face being flush with the rear side face of the side wall 473 of the main die 461, and the top face of the bottom wall 466 protruding out of the top face of the bottom wall 472 of the main die 461;
(148) The movable right side die 465 is fixed in the L-shaped opening of the main die 461, with the front side face of the front side wall 470 of the movable right side die 465 being flush with the front side face of the bottom wall 472 of the main die 461, and the position of the movable right side die 465 is adjustable in the main die 461, so different lengths of semi-precast beam template layer can be precasted;
(149) The beam framework unit 430 is installed in the L-shaped opening of the main die 461, one end of each of the beam keels 425 and 426 is supported on the bottom wall 466 of the left side die 464 through the square tube type sleeves 429 installed at end parts of the beam keels 425 and 426, and the other end is supported the bottom wall 469 of the right side die 465 through other square tube type sleeves 429 installed at the end parts of the beam keels 425 and 426;
(150) The front side die 462 is fixed at the front side of the bottom wall 472 of the main die 461, with both ends of the front side die 462 and the bottom face of the front side wall 476 being flush with both ends and the bottom face of the bottom wall 472 of the main die 461, the top face protruding of the top face of the bottom wall 472 of the main die 461, and the front side face of the front side wall 476 being flush with the front side face of the front side wall 467 of the left side die 464;
(151) The top die 463 is fixed on the top face of the side wall 473 of the main die 461, with both ends and the rear side face of the top die 463 being respectively flush with both ends and the rear side face of the main die 461, and the front side face being flush with the front side face of the side wall 473 of the main die 461;
(152) An upward concave cavity 474 with an upward opening is formed by the main die 461, the left side die 464, the front side die 462 and the movable right side die 465 installed together;
(153) Concrete is first poured into the upward concave cavity 474 with an upward opening of the beam mold to form the bottom wall 478 of the semi-precast beam template layer 424; a sideward concave cavity 475 with a forward opening intercommunicated with the upward concave cavity 474 is formed by the main die 461, the top die 463, the left side die 464 and the movable right side die 465 installed together, the beam mold is rotated to make the opening of the sideward concave cavity 475 face upwards, and concrete is poured into the sideward concave cavity of the beam mold to form the side wall 422 of the semi-precast beam template layer 424; a sideward concave cavity (not shown) with a backward opening intercommunicated with the upward concave cavity 474 is formed by the main die 461, the left side die 464, the front side die 462 and the movable right side die 465 installed together, the beam mold is rotated to make the opening of the sideward concave cavity face upwards, and concrete is poured into the sideward concave cavity of the beam mold to form the side wall 423 of the semi-precast beam template layer 424;
(154) The beam framework unit 430 is partially embedded into the semi-precast beam template layer 424;
(155) After the semi-precast beam template layer 424 is dried, the front side die 462, the top die 463, the left side die 464 and the movable right side die 465 are separated from the main die 461, and then semi-precast beam template layer 424 is separated from the main die 461 to complete the precasting of the semi-precast beam template layer 424;
(156) All components of the beam framework unit 430 protrude out of the beam framework layer 424 in the upward side, both ends of each of the beam keels 425 and 426 of the beam framework unit 430 protrude out of the beam framework layer 424, and the two outermost square tube type sleeves 429 protrude out of the beam framework layer 424 in the side direction;
(157) The precasting method of semi-precast beam template layers of other beam units is the same to the precasting method of the semi-precast beam template layer 424;
(158) 3) Positioning and installation of pillar framework units of Pillar Units 401, 402, 403 and 404;
(159) 4) Hoisting of the beam unit 406: The end parts of the beam keels 425 and 426 of the beam unit 406 are respectively supported on the corresponding support legs of Pillar Units 402 and 403 through the square tube type sleeves 429 installed at the end parts of the beam keels 425 and 426 and are fixed with the two support legs; The beam units 405, 407 and 408 are hoisted in the same way;
(160) After the installation of the beam units is completed, the beam units and pillar units form a cell;
(161) 5) Floor Slab Unit 409 is hoisted and placed in the cell, the left ends of the longitudinal section steel major keels 412, 413 and 414 of Floor Slab Unit 409 are supported on the beam keels of the beam unit 406, and the right ends are supported on the beam keels of the beam unit 408; suspension parts fixed on the longitudinal section steel major keels 412 are supported on the beam keels of the beam unit 405; suspension parts fixed on the longitudinal section steel major keels 414 are supported on the beam keels of the beam unit 407;
(162) Combined four pillar units, semi-precast beam template layers of four beam units and semi-precast floor slab template layer 410 of Floor Slab Unit 409 are spliced together to form a concave cavity with an upward opening;
(163) 6) Concrete is poured into the concave cavity, with the floor slab framework units and the beam framework units being completely embedded into the concrete; after concrete setting, integral floor slabs and beams are formed by the main bean units, the floor slab units and the concrete.
(164) When the semi-precast floor slab template layers and the semi-precast beam template layers are precasted, the mold keeps vibrating, so that the semi-precast floor slab template layers and the semi-precast beam template layers have uniform thickness and smooth surfaces.
(165) The construction of the upper storey of floor slabs is completed in this way. The connection between pillars is the same to the existing way and will not be discussed in the invention.
Embodiment 14
(166) As shown in
Embodiment 15
(167) As shown in
(168) The construction method of the building structure has the difference from Embodiment 13 in that a front side die 508 of a beam mold is of a flat plate type.
Embodiment 16
(169) As shown in
(170) A transverse section steel keel 513 protrudes out of a semi-precast floor slab template layer 514 in the side direction, one end reaches to be above a beam unit 515, and the other end reaches to be above a beam unit 516. Empty avoiding grooves formerly matched with suspension parts on a floor slab mold are changed into empty avoiding grooves matched with the transverse section steel keel 513.
Embodiment 17
(171) As shown in
(172) The beam template 522 is an integral structure and comprises a bottom die 523 and side dies 524 and 525 protruding out of the bottom die 523, and the top face of the side die 525 is higher than that of the side die 524. The beam framework unit 521 and the beam template 522 are fixed together in a factory.
(173) The construction method of the building structure has the difference from Embodiment 13 in that the beam template 522 is fixed on the beam framework unit 521 in the factory, no semi-precast beam template layer is arranged, and thus, there is no procedure for precasting the semi-precast beam template layer.
Embodiment 18
(174) As shown in
(175) A floor slab unit comprises a floor slab framework unit 626 and multiple floor slab templates 627 fixed below the floor slab framework unit 626.
(176) The construction method of the building structure has the difference from Embodiment 13 in that the beam template 622 is fixed on the beam framework unit 621 in the factory, no semi-precast beam template layer is arranged, and thus, there is no procedure for precasting the semi-precast beam template layer. The floor slab templates 627 are fixed on the floor slab framework unit 626 in the factory, no semi-precast floor slab template layer is arranged, and thus, there is no procedure for precasting the semi-precast floor slab template layer.
(177) Singular and plural expression about the English translation of this patent is not accurate. Unless otherwise stated, in general, nouns and pronouns in the patent can be singular, plural also available. If ambiguity occurs, the interpretation of the description, claims and drawings in Chinese shall prevail.