RESILIENT PRESTRESS-FREE STEEL STRUCTURE FORMED BY COMBINING PIN-ENDED COLUMNS WITH ELASTIC CENTERING BEAM
20220154445 ยท 2022-05-19
Assignee
- South China University Of Technology (Guangzhou, CN)
- BEIJING BRACE DAMPING ENGINEERING TECHNOLOGY CO., LTD (Beijing, CN)
Inventors
- Junxian ZHAO (Guangzhou, CN)
- Guiqiang HAO (Beijing, CN)
- Yun ZHOU (Beijing, CN)
- Xilong CHEN (Guangzhou, CN)
- Wei Han (Beijing, CN)
- Xiaona SHI (Beijing, CN)
- Xuejing CHI (Beijing, CN)
Cpc classification
E04B1/2403
FIXED CONSTRUCTIONS
E04B1/98
FIXED CONSTRUCTIONS
E04B2001/2439
FIXED CONSTRUCTIONS
International classification
E04B1/98
FIXED CONSTRUCTIONS
Abstract
A resilient prestress-free steel structure includes the elastic centering beam and two pin-ended box column bases. The elastic centering beam includes two cantilever segment I-shaped steel beams, a middle segment I-shaped steel beam and buckling restrained high strength steel bars. The cantilever segment I-shaped steel beams are fixed to the two pin-ended box column bases, the middle segment I-shaped steel beam is connected between the two cantilever segment I-shaped steel beams, the buckling restrained high strength steel bars are symmetrically arranged. One end of each of the buckling restrained high strength steel bars is firmly connected with the web of each of the cantilever segment I-shaped steel beams, and the other end of each of the buckling restrained high strength steel bars is firmly connected with the web of the middle segment I-shaped steel beam. The resilient prestress-free steel structure is arranged in left and right symmetrical manner.
Claims
1. A resilient prestress-free steel structure, comprising an elastic centering beam and two pin-ended box column bases, wherein the elastic centering beam comprises two cantilever segment I-shaped steel beams, a middle segment I-shaped steel beam and buckling restrained high strength steel bars, the cantilever segment I-shaped steel beams are fixed to the two pin-ended box column bases, the middle segment I-shaped steel beam is connected between the two cantilever segment I-shaped steel beams, the buckling restrained high strength steel bars are symmetrically arranged on two sides of a web of the elastic centering beam along a beam central axis, and one end of each of the buckling restrained high strength steel bars is firmly connected with a web of each of the cantilever segment I-shaped steel beams, and the other end of each of the buckling restrained high strength steel bars is firmly connected with a web of the middle segment I-shaped steel beam; and the resilient prestress-free steel structure is arranged left and right symmetrically.
2. The resilient prestress-free steel structure according to claim 1, wherein each of the buckling restrained high strength steel bars comprises a high strength screw, a fixed cylindrical nut, two restraining steel tubes and a middle segment restraining short steel tube; the fixed cylindrical nut is fixed to a midpoint position of the high strength screw through a thread, the restraining steel tubes are symmetrically arranged on two sides of the fixed cylindrical nut and are firmly connected with the fixed cylindrical nut via butt welds, and inner diameters of the two restraining steel tubes are greater than a diameter of the high strength screw, such that a gap is reserved between the high strength screw and each of the two restraining steel tubes; the middle segment restraining short steel tube penetrates through the fixed cylindrical nut, two ends of the middle segment restraining short steel tube are firmly connected with the two restraining steel tubes via fillet welds respectively, and a midpoint position of the middle segment restraining short steel tube is aligned with the midpoint position of the high strength screw.
3. The resilient prestress-free steel structure according to claim 1, wherein two ends of each of the buckling restrained high strength steel bars are firmly connected with a connecting steel plate through high strength nuts on two sides, the connecting steel plate is firmly connected with two force transfer steel plates via butt welds, upper and lower edges of the connecting steel plate are aligned with an upper edge of one force transfer steel plate and a lower edge of the other force transfer steel plate one by one, the force transfer steel plate on a side of each of the cantilever segment I-shaped steel beams is firmly connected with the web of each of the cantilever segment I-shaped steel beams, and the force transfer steel plate on a side of the middle segment I-shaped steel beam is firmly connected with the web of the middle segment I-shaped steel beam via fillet welds on two sides.
4. The resilient prestress-free steel structure according to claim 1, characterized by further comprising a buckling restrained energy dissipation plate, wherein one end of the buckling restrained energy dissipation plate is fixed to a lower portion of a lower flange of each of the cantilever segment I-shaped steel beams and the other end of the buckling restrained energy dissipation plate is fixed to a lower portion of the lower flange of the middle segment I-shaped steel beam; the buckling restrained energy dissipation plate includes a linear-shaped core plate, a first restraining steel plate, a second restraining steel plate and two limiting steel plates; the linear-shaped core plate is dog bone-shaped, grooves matched with the limiting steel plates in shape are processed in two side surfaces in a length direction of the linear-shaped core plate respectively, slotted holes are formed in connecting segments at two ends of the length direction of the linear-shaped core plate, the limiting steel plates are positioned between the first restraining steel plate and the second restraining steel plate, the limiting steel plates are positioned on two sides of the linear-shaped core plate, the limiting steel plates are matched with the linear-shaped core plate in structure, the limiting steel plates are provided with several bolt holes, and positions of the first restraining steel plate and the second restraining steel plate corresponding to the limiting steel plates are provided with bolt holes; the linear-shaped core plate is fixed via a bolt, the first restraining steel plate is firmly connected with the two limiting steel plates via fillet welds, wherein unbounded materials are bonded to a left side surface, a right side surface, an upper side surface and a lower side surface of the linear-shaped core plate, the linear-shaped core plate and the two limiting steel plates are different in thickness, such that gaps are reserved between an upper surface and a lower surface of the linear-shaped core plate and the first restraining steel plate and the second restraining steel plate respectively; gaps are reserved between the limiting steel plates and a yield segment of the linear-shaped core plate, such that gaps are reserved between the left side surface and the right side surface of the linear-shaped core plate and the limiting steel plates.
5. The resilient prestress-free steel structure according to claim 4, wherein the buckling restrained energy dissipation plate further comprises two lower friction base plates, wherein the lower friction base plates are firmly connected with two ends of the linear-shaped core plate via fillet welds and butt welds, upper surfaces of the lower friction base plates are subjected to sand blasting treatment, a friction coefficient of the lower friction base plates is not lower than 0.45, and slotted screw holes in the two lower friction base plates correspond to slotted screw holes in two ends of the linear-shaped core plate one by one; the lower portions of the lower flanges of each of the buckling restrained high strength steel bars and the middle segment I-shaped steel beam are connected and fixed to an upper friction base plate via weld joints, round screw holes of the lower flanges of each of the buckling restrained high strength steel bars and the middle segment I-shaped steel beam correspond to round screw holes of the upper friction base plate one by one, the lower surface of the upper friction base plate is subjected to sand blasting treatment, and a friction coefficient of the upper friction base plate is not lower than 0.45; the upper friction base plate and the lower friction base plates are made in contact, and the linear-shaped core plate, the lower friction base plates, the upper friction base plate and the lower flange of each of the buckling restrained high strength steel bars or the middle segment I-shaped steel beam are arranged in sequence from bottom to top and are connected via bolts.
6. The resilient prestress-free steel structure beam according to claim 1, further comprising a suspended connector, wherein one end of the suspended connector is fixed to an upper flange of each of the cantilever segment I-shaped steel beams and the other end of the suspended connector is fixed to an upper flange of the middle segment I-shaped steel beam; the suspended connector comprises two vertical anti-shearing plates, first splicing angle iron, second splicing angle iron, a first splicing steel plate and a second splicing steel plate; the first splicing angle iron, the second splicing angle iron, the first splicing steel plate and the second splicing steel plate are equal in length, and the length is equal to two times of a length of the vertical anti-shearing plates with an addition of a gap between the middle segment I-shaped steel beam and each of the cantilever segment I-shaped steel beams along an axis direction; one of the vertical anti-shearing plates is firmly connected with the upper surface of the upper flange of each of the cantilever segment I-shaped steel beams via the butt weld, and the other vertical anti-shearing plates is firmly connected with the upper surface of the upper flange of the middle segment I-shaped steel beam via the butt weld, a shorter side plate of the first splicing angle iron and a shorter side plate of the second splicing angle iron are firmly connected with the vertical anti-shearing plate via high strength bolts, and the shorter side plate of the first splicing angle iron and the shorter side plate of the second splicing steel plate are symmetrically arranged on two sides of the vertical anti-shearing plate; the first splicing steel plates are firmly connected with the upper flange of each of the cantilever segment I-shaped steel beams and the upper flange of the middle segment I-shaped steel beam as well as a longer side plate of the first splicing angle iron via high strength bolts respectively, and the upper flange of the I-shaped steel beam is located between the first splicing steel plate and the longer side plate of the first splicing angle iron; the second splicing angle iron is firmly connected with the upper flange of each of the cantilever segment I-shaped steel beams and the upper flange of the middle segment I-shaped steel beam as well as a longer side plate of the second splicing angle iron respectively, and the upper flange of the I-shaped steel beam is located between the second splicing steel plate and the longer side plate of the second splicing steel plate.
7. The resilient prestress-free steel structure according to claim 1, wherein each of the two pin-ended box column bases comprises a box type column, a base plate, an anchor bolt and a bottom plate, wherein the box type column is firmly connected with the bottom plate via a fillet weld, and the anchor bolt penetrates through the base plate to firmly connect a periphery of the bottom plate with foundation soil; and the box type column is connected with each of the cantilever segment I-shaped steel beams via a weld joint.
8. The resilient prestress-free steel structure according to claim 2, wherein the high strength bolt is manufactured by a 14.9-level high strength bolt.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044] Wherein: 1-prestress tendon; 2-energy dissipating apparatus; 3-floorslab; 31-floorslab crack; 4-elastic centering beam; 41-cantilever segment I-shaped steel beam; 42-middle segment
[0045] I-shaped steel beam; 43-suspended connector; 431-vertical anti-shearing plate; 4321-first splicing angle iron; 4322-second splicing angle iron; 4331-first splicing steel plate; 4332-second splicing steel plate; 44-upper friction base plate; 45-buckling restrained energy dissipating plate; 451-linear-shaped core plate; 4521-first restraining steel plate; 4522-second restraining steel plate; 453-limiting steel plate; 454-lower friction base plate; 46-buckling restrained high strength steel bar; 461-high strength screw; 462-fixed cylindrical nut; 463-restraining steel plate; 464-middle segment restraining short steel tube; 471-connecting steel plate; 472-force transfer steel plate; 5-pin-ended box column base; 51-box type column; 52-base plate; 53-anchor bolt; 54-bottom plate.
DESCRIPTION OF THE EMBODIMENTS
[0046] Further description of specific embodiments of the present invention in detail will be made below in combination with specific embodiments and drawings, but implementation of the present invention are not limited thereto.
EXAMPLE 1
[0047] Description is made in combination with
[0048] The four upper friction base plates 44 are connected and fixed to lower portions of lower flanges of two ends of the two cantilever segment I-shaped steel beams 41 and the middle segment I-shaped steel beam 42 via weld joints respectively. The round screw holes correspond one by one, the lower surfaces of the upper friction base plates 44 are subjected to sand blasting treatment, and a friction coefficient of the upper friction base plates is not lower than 0.45. The two buckling restrained energy dissipating plates 45 are arranged on the lower portions of the I-shaped steel beams, and two ends of one of the two buckling restrained energy dissipating plates 45 are firmly connected with the two upper friction base plates 44 via several high strength bolts. Two ends of one suspended connector 43 are fixed to the cantilever segment I-shaped steel beams 41 and the middle segment I-shaped steel beam 42 respectively. The cantilever segment I-shaped steel beams 41 on two sides of the structure are rigidly connected with the two pin-ended box column bases 5 via weld joints. According to the resilient prestress-free steel structure formed by combining pin-ended columns with an elastic centering beam, the central axes of the cantilever segment I-shaped steel beams 41 are aligned with the central axis of the middle segment I-shaped steel beam 42.
[0049] Description is made in combination with the
[0050] Description is made in combination with the
[0051] The lower portions of the lower flanges of each of the cantilever segment I-shaped steel beams 41 and the middle segment I-shaped steel beam 42 are connected and fixed to the upper friction base plate 44 via weld joints, round screw holes of the lower flanges of each of the cantilever segment I-shaped steel beams 41 and the middle segment I-shaped steel beam 42 correspond to round screw holes of the upper friction base plate 44 one by one, the lower surface of the upper friction base plate 44 is subjected to sand blasting treatment, and a friction coefficient of the upper friction base plate is not lower than 0.45. The upper friction base plate 44 and the lower friction base plates 454 are made in contact, and the linear-shaped core plate 451, the lower friction base plates 454, the upper friction base plate 44 and the lower flange of each of the cantilever segment I-shaped steel beams 41 or the middle segment I-shaped steel beam 42 are arranged in sequence from bottom to top and are connected via bolts.
[0052] Description is made in combination with the
[0053] I-shaped steel beams 41 and the middle segment I-shaped steel beam 42 via the butt welds respectively, a shorter side plate of the first splicing angle iron 4321 and a shorter side plate of the second splicing angle iron 4322 are firmly connected with the two vertical anti-shearing plate 431 via high strength bolts. The round screw holes in the shorter side plates of the first splicing angle iron 4321 and the second splicing angle iron 4322 correspond to the round screw holes in the two vertical anti-shearing plates 431 one by one and are fixed via the high strength bolts, and the shorter side plate of the first splicing angle iron 4321 and the shorter side plate of the second splicing angle iron 4322 are symmetrically arranged on two sides of the vertical anti-shearing plates 431.
[0054] The first splicing steel plate 4331 is firmly connected with the upper flange of each of the cantilever segment I-shaped steel beam 41, the upper flange of the middle segment I-shaped steel beam 42 and the longer side plate of the first splicing angle iron 4321 via the high strength bolts respectively. The upper flange of the I-shaped steel beam is located between the first splicing steel plate 4331 and the longer side plate of the first splicing angle iron 4321. The second splicing steel plate 4332 is firmly connected with the upper flange of each of the cantilever segment I-shaped steel beam 41, the upper flange of the middle segment I-shaped steel beam 42 and the longer side plate of the second splicing angle iron 4322 the high strength bolts respectively. The upper flange of the I-shaped steel beam is located between the second splicing steel plate 4332 and the longer side plate of the second splicing steel plate 4332.The two suspended connectors 43 of an integral structure are arranged in such a way. Arranged in such the way, the structure is simple and easy to mount and the using function of a building is not limited. Other embodiments are as same as above.
[0055] Description is made in combination with the
[0056] As shown in the
[0057] The above is merely preferred embodiments of the present invention and is not limitation to the present invention in any form. Any equivalent changes, modifications or deviations made to the embodiments by those skilled in the art according to the technical scheme shall fall within the scope of the technical scheme of the present invention.