Connecting core for column-beam joint and connection method using the same
11098476 ยท 2021-08-24
Assignee
Inventors
- Joo Ho JIN (Paju-si, KR)
- Koo Yun PARK (Seoul, KR)
- Hyun Sook Kim (Goyang-si, KR)
- Dong Joon KIM (Goyang-si, KR)
- Doo Hwan Kim (Goyang-si, KR)
Cpc classification
E04B1/2403
FIXED CONSTRUCTIONS
E04B2001/2454
FIXED CONSTRUCTIONS
International classification
Abstract
The present disclosure relates to a connecting core for column-beam joint, the connecting core being able to secure excellent rigidity through a simple process without welding. To this end, a connecting core for column-beam joint includes: a closed-section intermediate column; a diaphragm; and internal reinforcing members, in which slit for inserting the internal reinforcing members are formed at the diaphragm, and the internal reinforcing members inserted in the diaphragm are combined with the intermediate column. According to the present disclosure, high rigidity is secured, as compared with the related art, when a closed-section column and a beam are connected. Further, a closed-section column and a beam can be connected without welding, so the process can be shortened, connecting become easy, and quality is also uniform.
Claims
1. A connecting core for column-beam joint, the connecting core comprising: a closed-section intermediate column configured to be connected to a column and a beam; a diaphragm positioned within a hollow interior of the intermediate column, the diaphragm having slits extending therethough that are disposed on a peripheral region of the diaphragm; and internal reinforcing members positioned in the slits disposed on the peripheral region of the diaphragm, and the internal reinforcing members positioned in the diaphragm are combined with the intermediate column.
2. The connecting core of claim 1, further comprising external reinforcing members that are coupled to an outer side of the intermediate column.
3. The connecting core of claim 1, wherein a stopper for stopping movement of the diaphragm is formed at each of the internal reinforcing members.
4. The connecting core of claim 1, wherein the internal reinforcing members and the external reinforcing members are bolted to the intermediate column.
5. The connecting core of claim 1, wherein stiffeners are formed at an end, which faces external reinforcing members, of the beam.
6. The connecting core of claim 1, wherein the slits are formed along sides of the diaphragm.
7. The connecting core of claim 6, wherein the internal reinforcing members are fitted in the slits of the diaphragm.
8. The connecting core of claim 1, wherein the slits are each formed in an L-shape at corners of the diaphragm.
9. The connecting core of claim 8, wherein the internal reinforcing members are each formed in an L-shape and are fitted in the slits of the diaphragm.
10. The connecting core of claim 1, wherein two slits are formed along each side of the diaphragm.
11. The connecting core of claim 10, wherein the internal reinforcing members each have two protrusions at each of an upper portion and a lower portion such that two protrusions are fitted in two slits.
12. A method of connecting a column and a beam using the connecting core of claim 1, the method comprising: forming the connecting core by assembling the internal reinforcing members, the diaphragm, the intermediate column, and external reinforcing members; coupling a closed-section lower column to the connecting core; carrying an assembly of the connecting core and the lower column and then combining a first beam with the assembly; coupling an upper column to the connecting core; and coupling a second beam to the connecting core, wherein the columns and the beams are capable of being connected without welding.
13. The method of claim 12, wherein floors are constructed one by one by connecting the lower column, the upper column, and the beams at one point using the connecting core.
14. The method of claim 12, further comprising pouring concrete into the upper column, the lower column, and the intermediate column after the coupling of the beams to the connecting core.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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MODE FOR CARRYING OUT THE DISCLOSURE
(20) Hereafter, the present disclosure is described in detail with reference to the accompanying drawings.
(21)
(22) In
(23) The internal reinforcing members 20 are steel materials and are formed in a plate shape. In the first embodiment, the internal reinforcing members 20 are four pieces and are respectively coupled to the inner sides of the intermediate column 40 having a rectangular steel tube shape to be described below. Several holes for bolting are formed at the internal reinforcing members 20. Protrusions for bolting may also be formed at the internal reinforcing members 20.
(24) The diaphragm 30, as shown in
(25) Further, slits 34 for inserting the internal reinforcing members 20 are formed at the diaphragm 30. The slits 34 are formed along four edges of the diaphragm 30 so that all of the four internal reinforcing members 20 can be inserted.
(26) In the first embodiment, two diaphragms 30 are provided to be coupled to the upper portion and the lower portion of the intermediate column 40.
(27) The intermediate column 40 is formed by cutting a rectangular steel tube. The internal reinforcing members 20 are coupled to the inner sides of the intermediate column 40. For this coupling, several bolt holes are formed at each of four sides of the intermediate column 40. The size of the bolt holes for bolts 90 is 24 mm.
(28) The diaphragms 30 are coupled to the upper portion and the lower portion of the intermediate column 40.
(29) In the drawings, external reinforcing members 50 are plates and are coupled to the outer side of the intermediate column 40. The original purpose of the connecting core 10 can be achieved even without the external reinforcing members 50, but rigidity can be further increased by coupling the external reinforcing members 50.
(30) Several through-holes for inserting the bolts 90 are also formed at the external reinforcing members 50.
(31) In
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(33) Bolts are not shown in
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(35) As shown in the figure, the connecting core 10 is connected to an upper column 60 and a lower column 70 and is also combined with a beam 80, so an assembly of columns and a beam is achieved. The beam 80 connected to the connecting core 10 is an H-beam, but is not limited thereto. Further, stiffeners 82 are formed on the beam 80, thereby further increasing rigidity.
(36) On the other hand,
(37) As shown in
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(40) As shown in the figures, when stoppers 22 are formed at the upper portion and the lower portion of the internal reinforcing member 20, diaphragms 30 are fitted on the internal reinforcing member 20 from above and under and are locked to the stoppers 22, respectively, so they cannot be moved any further. Accordingly, the positions of the diaphragms 30 can be accurately set.
(41) The order of assembling the connecting core 10 is changed when stoppers 22 are formed at the upper portion and the lower portion of an internal reinforcing member 20, as described above. That is, as shown in
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(43) Beams 80 that are combined with an intermediate column 40 are two pieces in
(44) The structure of a diaphragm and a connecting core can be variously changed in the present disclosure.
(45)
(46) As shown in
(47) In this case, an internal reinforcing member 20a is formed in an L-shape.
(48) The diaphragms 30 are coupled to the upper portion and the lower portion of an intermediate column 40.
(49) According to the second embodiment, diaphragms 30 and internal reinforcing members 20a are combined in L-shapes, as shown in
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(51) As shown in
(52) In this embodiment, an internal reinforcing member 20b has two protrusions at each of the upper portion and the lower portion. Two protrusions 21 are fitted in two slits 34b formed along each side of the diaphragm 30.
(53) According to the third embodiment, the diaphragm 30 and the internal reinforcing member 20b are coupled at two positions on each side, so the fastening force can be further increased.
(54) The process of assembling a connecting core of the present disclosure described above is described for the first embodiment with reference to
(55) First, components of the connecting core 10, that is, the internal reinforcing members 20, the diaphragms 30, the intermediate column 40, and the external reinforcing members 50 are manufactured in a factory.
(56) In detail, the connecting core 10 can be manufactured through a simple assembly process, unlike welding used in the related art. That is, the connecting core 10 can be assembled like assembly toy blocks such as Lego.
(57) First, four internal reinforcing members 20 are inserted through the slits 34 of the lower diaphragm 30. The position where the lower diaphragm 30 is fixed can be accurately determined by the stoppers 22 of the internal reinforcing members 20.
(58) Next, the intermediate column 40 is combined with the lower diaphragm 30 combined with the internal reinforcing members 20.
(59) Next, the upper diaphragm 30 is fitted on the four internal reinforcing members 20.
(60) The connecting core 10 formed in this way is temporarily assembled with a lower column 70 that is a rectangular steel tube and combined with the external reinforcing members 50 in a factory and is then sent to a site.
(61) Alternatively, a connecting core may be assembled in the way shown in
(62) That is, it may be possible to send only the connecting core 10 to a site and the temporarily combined the connecting core 10 with the lower column 70.
(63) After the connecting core 10 and a column are combined, as described above, a beam 80 is combined.
(64) The parts are fastened to each other by bolting. Bolts 90 may fasten all of the internal reinforcing members 20, the intermediate column 40, and the external reinforcing members 50 or some bolts may fasten only the internal reinforcing members 20 and the lower column 70.
(65) As the bolts, common bolts are shown in
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(67) When concrete 100 is poured in a closed-section steel tube, better structural performance can be achieved by adhesive force between the concrete 100 and the bolts 90. Further, there is no need for a process that uses a mold to pour concrete into a closed-section steel tube, so the construction period can be shortened.
(68) Although the present disclosure has been described above in conjunction with particular embodiments, it will be apparent to those skilled in the art that the present disclosure is not limited to the above embodiments and various modifications and changes may be made without departing from the spirit and scope of the present disclosure. Therefore, these modifications and changes are intended to fall within the scope of protection of the present disclosure.