CN212897040U - Steel flat beam-vertical cable curtain wall supporting device - Google Patents

Steel flat beam-vertical cable curtain wall supporting device Download PDF

Info

Publication number
CN212897040U
CN212897040U CN202021578359.4U CN202021578359U CN212897040U CN 212897040 U CN212897040 U CN 212897040U CN 202021578359 U CN202021578359 U CN 202021578359U CN 212897040 U CN212897040 U CN 212897040U
Authority
CN
China
Prior art keywords
cable
steel
flat
curtain wall
steel flat
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202021578359.4U
Other languages
Chinese (zh)
Inventor
冯若强
刘平
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nanjing Dongyinan Engineering Technology Co ltd
Southeast University
Original Assignee
Nanjing Dongyinan Engineering Technology Co ltd
Southeast University
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Nanjing Dongyinan Engineering Technology Co ltd, Southeast University filed Critical Nanjing Dongyinan Engineering Technology Co ltd
Priority to CN202021578359.4U priority Critical patent/CN212897040U/en
Application granted granted Critical
Publication of CN212897040U publication Critical patent/CN212897040U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Load-Bearing And Curtain Walls (AREA)

Abstract

The utility model discloses a steel flat beam-vertical cable curtain wall supporting device, belonging to the technical field of curtain wall supporting structure systems, comprising steel flat beam unit structures which are arranged at equal intervals, wherein each steel flat beam unit structure comprises a group of first steel flat beams and second steel flat beams which are arranged in parallel; after the steel flat beam unit structures are matched, a steel flat beam-vertical cable curtain wall supporting structure system with a first steel flat beam and a second steel flat beam which are alternately arranged in sequence is formed; a plurality of front guys penetrate through the flat steel beam unit structure, and a plurality of rear guys penetrate through the flat steel beam unit structure between each first flat steel beam. The utility model discloses when improving the glass curtain wall permeability, keep great structural rigidity, permeability and rigidity can be compromise to steel flat beam-perpendicular cable curtain wall support structure system, satisfy requirements such as permeability, large-span, high altitude, little deformation.

Description

Steel flat beam-vertical cable curtain wall supporting device
Technical Field
The utility model belongs to the technical field of curtain supporting structure system, concretely relates to steel flat beam-vertical cable curtain supporting arrangement.
Background
The building curtain wall in China starts from the end of the seventies of the last century, has undergone more than thirty years of rapid development, and has become the first major country in the world for production and use. The curtain wall is widely applied due to the advantages of light weight, strong building function adaptability, beautiful appearance, permeability and the like. The curtain wall supporting structure system is the key for determining the stress performance of the curtain wall.
The supporting structure of the existing curtain wall mainly comprises: the truss structure comprises a frame structure consisting of cross beams and upright columns, a ribbed plate supporting structure, a steel truss, a pull rod truss, a cable (rod) truss and a cable net structure.
However, the current curtain wall supporting structure system has the following technical problems:
1) the rib support structure is very permeable, but because the rib thickness is very small and there is no lateral support in the middle, the rib span length cannot be too large to avoid out-of-plane instability, and therefore the rib support structure is typically used for a story of hall glass curtain walls.
2) The rigidity of the frame structure, the steel truss, the pull rod truss and the cable (rod) truss is very high, so the deformation of the curtain wall structure is very small, the specification requires that the structural deformation is smaller than 1/250 of a span, but the permeability of the glass curtain wall is poor.
3) The cable net structure is composed of the cables, so that the glass curtain wall is attractive and transparent. However, the stiffness is low, the deformation of the structure is large, and the specification requires that the deformation of the structure is smaller than 1/50 of the span.
SUMMERY OF THE UTILITY MODEL
Utility model purpose: an object of the utility model is to provide a steel flat beam-vertical cable curtain supporting device can keep great structural rigidity when improving the glass curtain permeability.
The technical scheme is as follows: in order to realize the purpose of the utility model, the utility model adopts the following technical scheme:
a steel flat beam-vertical cable curtain wall supporting device comprises steel flat beam unit structures arranged at equal intervals, wherein each steel flat beam unit structure comprises a group of first steel flat beams and second steel flat beams which are arranged in parallel; the steel flat beam unit structures are matched to form a steel flat beam-vertical cable curtain wall supporting structure system with a first steel flat beam and a second steel flat beam which are alternately arranged in sequence; a plurality of front guys penetrate through the flat steel beam unit structure, and a plurality of rear guys penetrate through the first flat steel beams.
Further, the first flat steel beam and the second flat steel beam are both box-shaped sections.
Furthermore, the front stay cable is hinged with the first flat steel beam and the second flat steel beam through a cable clamp, and the rear stay cable is hinged with the first flat steel beam through a cable clamp.
Furthermore, the first steel flat beam and the second steel flat beam are hinged with the main body structure through steel pins, and the front stay cable and the rear stay cable are hinged with the main body structure through steel pins.
Furthermore, suspenders are arranged between the flat steel beam unit structures; one end of the suspender is hinged with the first steel flat beam of the steel flat beam unit structure, and the other end of the suspender is hinged with the second steel flat beam of the steel flat beam unit structure.
Further, the width of the first flat steel beam is longer than that of the second flat steel beam.
The rigidity of the first flat steel beam and the second flat steel beam is larger than that of the transverse guy cable of the cable net structure, and the front guy cable and the rear guy cable are used as elastic lateral supports of the first flat steel beam and the second flat steel beam, so that the in-plane strength and the out-of-plane stability of the first flat steel beam and the second flat steel beam are improved. The suspender mainly transfers the vertical load born by the second flat steel beam to the first flat steel beam.
Further, the moment of inertia of the said shaped cross section
Figure BDA0002614797600000021
Wherein i is 1, 2, the box section height H of the first flat steel girder1Width B1And a thickness t1Height H of the second flat steel girder box section2Width B2And a thickness t2
Further, a first glass panel is arranged between the adjacent flat steel beam unit structures, and a second glass panel is arranged in each flat steel beam unit structure; the moment of the front cable is taken as follows: l1F1=l2G+l3F3To realize the gravity self-balance of the curtain wall structure, then there are: l1F1=l2G,l1+l2=B1And/2, obtaining:
Figure BDA0002614797600000022
i.e. according to F1Determining the position l of the front cable1The gravity self-balance of the curtain wall structure is realized; wherein, F1Is the resultant force of the tension of the boom and the gravity of the first glass panel, F2Is the tension of the front cable, F3Is the tension of the rear cable, G is the gravity of the first flat steel beam, l1Is F1Horizontal distance to front cable,/2Is the horizontal distance from G to the front cable, l3Is F3Horizontal distance to front cable, B1Is the cross-sectional width of the first flat steel beam.
Further, the front cable and the rear cable form a parallel inclined angle theta, the relative positions of the cable clamps on the first flat steel beam and the second flat steel beam are unchanged, and then the basic equation of the cable structure node displacement method is as follows:
Figure BDA0002614797600000023
in the formula (I), the compound is shown in the specification,
Figure BDA0002614797600000024
Figure BDA0002614797600000031
Figure BDA0002614797600000032
Figure BDA0002614797600000033
Figure BDA0002614797600000034
wherein, TiIs the initial pre-tension of the ith cable element,/0iIs the initial cable length, u, of the ith cable unitpi、uqiRespectively, the y-direction node displacement of the p point and the q point at two ends of the ith cable unit under the action of load, and ypi、yqiIs the y-direction coordinate of the p point and the q point at the two ends of the ith cable unit in the initial state, E is the elastic modulus of the cable unit, AiIs the cross-sectional area of the ith cable element, PyqIs the y-direction load, R, of the intersection of two cable elementsyqIs the y-direction nonlinear force of the intersection of two cable elements, ai、bi、ci、diAre four dimensionless coefficients.
Furthermore, when the height h of the front cable and the rear cable is kept unchanged, the initial y-direction displacement of the middle point of the cable is u0The elastic modulus is E, the cross section area is A, and the initial pretension of the inhaul cable is T0The middle point of the stay cable acts on a y-direction force P0The y-direction displacement is delta u, the inclined cable and the vertical included angle is theta, and then for the vertical cable:
at initial state of structure, the cable length is
Figure BDA0002614797600000035
The balance equation of the simplified vertical guy cable with consideration of geometric nonlinear influence under the action of load is
Figure BDA0002614797600000036
Figure BDA0002614797600000037
In the formula (I), the compound is shown in the specification,
Figure BDA0002614797600000038
so that the vertical stay cable has a linear rigidity of
Figure BDA0002614797600000039
Wherein
Figure BDA00026147976000000310
Is the stiffness of the initial stress, and is,
Figure BDA00026147976000000311
is the elastic stiffness; non-linear force
Figure BDA00026147976000000312
Figure BDA00026147976000000313
An inclined inhaul cable:
at initial state of structure, the cable length is
Figure BDA00026147976000000314
The balance equation of the inclined inhaul cable under the load action and considering the geometric nonlinear influence is obtained by simplifying the formula (I)
Figure BDA0002614797600000041
In the formula (I), the compound is shown in the specification,
Figure BDA0002614797600000042
Figure BDA0002614797600000043
so that the tilt cable has a linear rigidity of
Figure BDA0002614797600000044
Non-linear force
Figure BDA0002614797600000045
Suppose the initial y-displacement u of the vertical and tilt cables0When the value is 0, then:
linear stiffness of vertical stay cable of
Figure BDA0002614797600000046
Linear stiffness of the tilt cable is
Figure BDA0002614797600000047
Figure BDA0002614797600000048
The linear stiffness of the tilt cable is greater than that of the vertical cable;
the vertical stay cable has a nonlinear force of
Figure BDA0002614797600000049
The nonlinear force of the inclined guy cable is
Figure BDA00026147976000000410
Figure BDA00026147976000000411
Therefore, when theta is larger than 47.61 DEG, the nonlinear force of the inclined pulling cable is larger than that of the vertical pulling cable, and when theta is smaller than 47.61 DEG, the nonlinear force of the inclined pulling cable is smaller than that of the vertical pulling cable.
Has the advantages that: compared with the prior art, the steel flat beam-vertical cable curtain wall supporting device of the utility model can improve the permeability of the glass curtain wall and keep larger structural rigidity; in the current main curtain wall supporting structure, the permeability of the structure with high rigidity is insufficient, the rigidity of the structure with good permeability is insufficient, and the steel flat beam-vertical cable curtain wall supporting structure system can give consideration to permeability and rigidity, thereby meeting the requirements of permeability, large span, large height, small deformation and the like.
Drawings
FIG. 1 is a schematic view of a three-dimensional model of a curtain wall supporting structure system according to the present invention;
FIG. 2 is a sectional dimension view of the first steel flat beam and the second steel flat beam of the present invention;
fig. 3 is a gravity self-balancing calculation diagram of the curtain wall supporting structure system of the present invention;
FIG. 4 is a schematic diagram of the inclination of the curtain wall supporting structure system of the present invention;
FIG. 5 is a graph of the vertical stay and the inclined stay for calculating the geometric non-linear stiffness according to the present invention;
fig. 6 is a schematic cross-sectional view of embodiment 1 of the present invention;
fig. 7 is a schematic front view of embodiment 1 of the present invention;
fig. 8 is a schematic load diagram of embodiment 1 of the present invention;
fig. 9 is a schematic cross-sectional view of embodiment 2 of the present invention;
reference numerals: 1-a first flat steel beam, 2-a second flat steel beam, 3-a front cable, 4-a rear cable and 5-a suspender.
Detailed Description
The invention will be further elucidated with reference to the drawings and the specific embodiments.
As shown in fig. 1, the steel flat beam-vertical cable curtain wall supporting device comprises steel flat beam unit structures which are arranged at equal intervals, wherein each steel flat beam unit structure comprises a group of first steel flat beams 1 and second steel flat beams 2 which are arranged in parallel; the steel flat beam unit structures are matched to form a steel flat beam-vertical cable curtain wall supporting structure system with a first steel flat beam 1 and a second steel flat beam 2 which are alternately arranged in sequence; a plurality of front guys 3 run through in the flat steel beam unit structure, run through between every first flat steel beam 1 and set up a plurality of back guys 4.
Run through between first steel flat beam 1 and second steel flat beam 2 and set up a plurality of front guy cables 3, run through between every first steel flat beam 1 and set up a plurality of back guy cables 4. Install first glass panels and this first glass panels falls on first flat steel beam 1 between adjacent flat steel beam unit structure, set up second glass panels and fall on second flat steel beam 2 in every flat steel beam unit structure.
The first flat steel beam 1 and the second flat steel beam 2 are both box-shaped sections. The height H of the box section of the first flat steel girder 11(m), width B1(m) and thickness t1(m) of the reaction mixture. The second flat steel girder 2 has a box-section height H2(m), width B2(m) and thickness t2(m) of the reaction mixture. The width of the first flat steel beam 1 is longer than the width of the second flat steel beam 2.
The front guy cable 3 is hinged with the first flat steel beam 1 and the second flat steel beam 2 through a cable clamp, and the rear guy cable 4 is hinged with the first flat steel beam 1 through a cable clamp.
First steel flat beam 1 and second steel flat beam 2 all are articulated through steel pin and major structure, and preceding cable 3 and back cable 4 are all articulated through steel pin and major structure.
A suspender 5 is arranged between the adjacent first flat steel beam 1 and the second flat steel beam 2; one end of the suspender 5 is hinged with the first steel flat beam 1, and the other end is hinged with the second steel flat beam 2.
The curtain wall structure mainly bears horizontal wind load, the first steel flat beam 1 and the second steel flat beam 2 are both selected from box-shaped sections, as shown in figure 2, and the inertia moment
Figure BDA0002614797600000061
The first flat steel beam 1 and the second flat steel beam 2 have a cross-sectional height H1、H2Can be very small, only requiring the cross-sectional width B1、B2Large enough to ensure the permeability of the curtain wall structure. The rigidity of the first flat steel beam 1 and the second flat steel beam 2 is larger than that of a transverse guy cable of a cable net structure, and the front guy cable 3 and the rear guy cable 4 are used as elastic lateral supports of the first flat steel beam 1 and the second flat steel beam 2, so that the in-plane strength and the out-of-plane stability of the first flat steel beam 1 and the second flat steel beam 2 are improved. The suspender 5 mainly transfers the vertical load born by the second flat steel beam 2 to the first flat steel beam 1.
The first flat steel beam 1 and the second flat steel beam 2 are both selected to have box-shaped sections, the first flat steel beamThe flat steel beam 1 and the second flat steel beam 2 can be selected with different section sizes according to different loads to improve the economy. As shown in FIG. 2, the moment of inertia of the box section
Figure BDA0002614797600000062
The first and second flat steel girders 1, 2 have a box-section height H, which allows for a good structural appearance and permeability1、H2Remain uniform and can therefore be obtained by varying the width B of the box section1、B2And a thickness t1、t2To improve economy, and the smaller the load, the box section width B1、B2And a thickness t1、t2The smaller may be.
As shown in FIG. 3, F1(N) is the resultant of the tension of the boom 5 and the weight of the first glass panel, F2(N) is the tension of the front cable 3, F3(N) is the tension of the rear stay 4, G (N) is the weight of the first flat steel beam 1, l1(m) is F1Horizontal distance to front cable 3, l2(m) is the horizontal distance from G to the front cable 3, l3(m) is F3Horizontal distance to front cable 3, B1(m) is the cross-sectional width of the first flat steel beam 1, which can be determined according to F1And the self-balance of the gravity of the curtain wall structure is realized by adjusting the position of the front stay cable 3. The moment of the front cable 3 is taken as follows: l1F1=l2G+l3F3If the gravity self-balance of the curtain wall structure is to be realized, then: l1F1=l2G, again because of l1+l2=B1And/2, so:
Figure BDA0002614797600000063
i.e. can be according to F1Determining the position l of the front cable 31The self-balancing of the curtain wall structure gravity is realized, and the stress performance of the steel flat beam-vertical cable curtain wall supporting structure system is optimized.
As shown in fig. 4, the front cable 3 and the rear cable 4 may be inclined at an angle θ in parallel, and the relative positions of the cable clamps on the first flat steel beam 1 and the second flat steel beam 2 are unchanged. The basic equation of the cable structure node displacement method is as follows:
Figure BDA0002614797600000064
in the formula (I), the compound is shown in the specification,
Figure BDA0002614797600000065
Figure BDA0002614797600000066
Figure BDA0002614797600000067
Figure BDA0002614797600000071
Figure BDA0002614797600000072
wherein, Ti(N) is the initial pretension of the ith cable element,/0i(m) is the initial cable length of the ith cable unit, upi(m)、uqi(m) respectively represents the y-direction node displacement of the p point and the q point at the two ends of the ith cable unit under the action of load, and ypi(m)、yqi(m) is the y-coordinate of the point p and the point q at both ends of the ith cable unit in the initial state, E (N/m)2) Is the modulus of elasticity of the cord unit, Ai(m2) Is the cross-sectional area of the ith cable element, Pyq(N) is the y-load at the intersection of the two cable elements, Ryq(N) is the y-direction nonlinear force at the intersection of two cable elements, ai、bi、ci、diAre four dimensionless coefficients.
As shown in FIG. 5, the heights h (m) of the two stay cables are kept unchanged, and the initial y-direction displacements of the middle points of the two stay cables are u0(m) the elastic moduli are all E (N/m)2) Cross sectional areaAre all A (m)2) The initial pre-tension of the stay is T0(N) applying a y-direction force P to the middle point of the cable0And (N), the generated y-direction displacement is delta u (m), and the included angle between the inclined inhaul cable and the vertical direction is theta (Rad).
Vertical cable:
at initial state of structure, the cable length is
Figure BDA0002614797600000073
The simplified equation 1 can obtain a balance equation of the vertical stay cable under the action of load, which takes the geometric nonlinear influence into consideration, as
Figure BDA0002614797600000074
In the formula (I), the compound is shown in the specification,
Figure BDA0002614797600000075
so that the vertical stay cable has a linear rigidity of
Figure BDA0002614797600000076
Wherein
Figure BDA0002614797600000077
Is the stiffness of the initial stress, and is,
Figure BDA0002614797600000078
is the elastic stiffness. Non-linear force
Figure BDA0002614797600000079
Figure BDA00026147976000000710
An inclined inhaul cable:
at initial state of structure, the cable length is
Figure BDA00026147976000000711
The simplified equation 1 can be obtained as the balance equation of the inclined guy cable under the action of load, which takes the geometric nonlinear influence into consideration
Figure BDA0002614797600000081
In the formula (I), the compound is shown in the specification,
Figure BDA0002614797600000082
Figure BDA0002614797600000083
so that the tilt cable has a linear rigidity of
Figure BDA0002614797600000084
Non-linear force
Figure BDA0002614797600000085
Suppose the initial y-displacement u of the vertical and tilt cables0When the value is 0, then:
linear stiffness of vertical stay cable of
Figure BDA0002614797600000086
Linear stiffness of the tilt cable is
Figure BDA0002614797600000087
Figure BDA0002614797600000088
The linear rigidity of the tilt cable is greater than that of the vertical cable.
The vertical stay cable has a nonlinear force of
Figure BDA0002614797600000089
The nonlinear force of the inclined guy cable is
Figure BDA00026147976000000810
Figure BDA00026147976000000811
Therefore, when theta is larger than 47.61 DEG, the nonlinear force of the inclined pulling cable is larger than that of the vertical pulling cable, and when theta is smaller than 47.61 DEG, the nonlinear force of the inclined pulling cable is smaller than that of the vertical pulling cable.
Example 1
As shown in fig. 6, a steel flat beam-vertical cable curtain wall supporting structure system includes: the steel flat beam comprises a first steel flat beam 1, a second steel flat beam 2, a front inhaul cable 3, a rear inhaul cable 4 and a suspender 5.
First steel flat beam 1 and second steel flat beam 2 are the main component of this curtain bearing structure system, and wherein first steel flat beam 1 and second steel flat beam 2 all are articulated through steel pin and major structure, and preceding cable 3 and back cable 4 are all articulated through steel pin and major structure, and just preceding cable 3 is articulated through cable anchor clamps and first steel flat beam 1 and second steel flat beam 2, and back cable 4 is articulated through cable anchor clamps and first steel flat beam 1, and 5 one end of jib is articulated with first steel flat beam 1, and the other end is articulated with second steel flat beam 2.
As shown in fig. 6 to 7, the front guy cable 3 and the rear guy cable 4 of the steel flat beam-upright guy curtain wall supporting structure system embodiment 1 are vertical, the span of the first steel flat beam 1 and the second steel flat beam 2 is 41.83m, the cross-sectional dimension of the first steel flat beam 1 is 1400 × 80 × 10 × 10mm, and the cross-sectional dimension of the second steel flat beam 2 is 600 × 80 × 10 × 10 mm.
As shown in fig. 8(a), for the utility model discloses embodiment 1 vertical load schematic diagram, the vertical load is mainly the gravity of first steel flat beam 1, second steel flat beam 2 and glass panels. The entire weight of the first glass pane acts on the first flat steel beam 1. The entire weight of the second glass panel acts on the second flat steel beam 2, and the panel weight acting on the second flat steel beam 2 is transmitted to the first flat steel beam 1 via the suspension rod 5. The first flat steel beam 1 transmits the dead weight and all panel gravity to the main structure through the front guy cable 3 and the rear guy cable 4, and the second flat steel beam 2 transmits the dead weight to the main structure through the front guy cable 3.
As shown in fig. 8(b), in order to illustrate the horizontal load of embodiment 1 of the present invention, the horizontal load is mainly wind load. The wind load directly acts on the glass panel, and then the glass panel transmits half of the wind load to the first flat steel beam 1 through the aluminum alloy frame, and transmits the other half of the wind load to the second flat steel beam 2. The first steel flat beam 1 and the second steel flat beam 2 transmit the wind load to the main structure through the front guy cable 3 and the rear guy cable 4.
Example 2
As shown in fig. 9, a steel flat beam-vertical cable curtain wall supporting structure system includes: the steel flat beam comprises a first steel flat beam 1, a second steel flat beam 2, a front inhaul cable 3, a rear inhaul cable 4 and a suspender 5.
The parallel inclined angle theta of the front stay cable 3 and the rear stay cable 4 of the flat steel beam-vertical cable curtain wall supporting structure system in the embodiment 2 is that the relative positions of cable clamps on the first flat steel beam 1 and the second flat steel beam 2 are unchanged. The first flat steel beam 1 and the second flat steel beam 2 both have a span of 41.83m, the first flat steel beam 1 has a cross-sectional dimension of 1400 × 80 × 16 × 16mm, and the second flat steel beam 2 has a cross-sectional dimension of 600 × 80 × 10 × 10 mm. The rest of the structural parameters and the force transmission path of embodiment 2 are the same as those of embodiment 1.

Claims (8)

1. The utility model provides a steel flat beam-vertical cable curtain wall supporting device which characterized in that: the steel flat beam unit structure comprises a group of first steel flat beams (1) and a group of second steel flat beams (2) which are arranged in parallel; the steel flat beam unit structures are matched to form a steel flat beam-vertical cable curtain wall supporting structure system with a first steel flat beam (1) and a second steel flat beam (2) which are sequentially and alternately arranged; a plurality of front guys (3) are arranged in the flat steel beam unit structure in a penetrating way, and a plurality of rear guys (4) are arranged between the first flat steel beams (1) in a penetrating way; suspenders (5) are arranged between the flat steel beam unit structures; the first flat steel beam (1) and the second flat steel beam (2) are both box-shaped sections.
2. The steel flat beam-vertical cable curtain wall supporting device as claimed in claim 1, wherein: the front inhaul cable (3) is hinged with the first flat steel beam (1) and the second flat steel beam (2) through a cable clamp, and the rear inhaul cable (4) is hinged with the first flat steel beam (1) through a cable clamp.
3. The steel flat beam-vertical cable curtain wall supporting device as claimed in claim 1, wherein: first steel flat beam (1) and second steel flat beam (2) all articulated through steel pin and major structure, preceding cable (3) and back cable (4) all articulated through steel pin and major structure.
4. The steel flat beam-vertical cable curtain wall supporting device as claimed in claim 1, wherein: one end of the suspender (5) is hinged with the first steel flat beam (1) of the steel flat beam unit structure, and the other end is hinged with the second steel flat beam (2) of the steel flat beam unit structure.
5. The steel flat beam-vertical cable curtain wall supporting device as claimed in claim 1, wherein: the width of the first flat steel beam (1) is longer than that of the second flat steel beam (2).
6. The steel flat beam-vertical cable curtain wall supporting device as claimed in claim 1, wherein: moment of inertia of the box section
Figure FDA0002614797590000011
Wherein i is 1, 2, the box section height H of the first flat steel beam (1)1Width B1And a thickness t1The height H of the box section of the second flat steel girder (2)2Width B2And a thickness t2
7. The steel flat beam-vertical cable curtain wall supporting device as claimed in claim 1, wherein: installing a first glass panel between the adjacent flat steel beam unit structures; the moment of the front cable (3) is obtained as follows: l1F1=l2G+l3F3To realize the gravity self-balance of the curtain wall structure, then there are: l1F1=l2G,l1+l2=B1And/2, obtaining:
Figure FDA0002614797590000012
i.e. according to F1Determining a front cable(3) Position l of1The gravity self-balance of the curtain wall structure is realized; wherein, F1Is the resultant force of the tension of the hanger rod (5) and the gravity of the first glass panel F2Is the tension of the front cable (3), F3Is the tension of the rear guy cable (4), G is the gravity of the first flat steel beam (1) |1Is F1Horizontal distance to front cable (3) |2Is the horizontal distance from G to the front cable (3) |3Is F3Horizontal distance to front cable (3), B1Is the section width of the first flat steel beam (1).
8. The steel flat beam-vertical cable curtain wall supporting device as claimed in claim 1, wherein: the front stay cable (3) and the rear stay cable (4) form a parallel inclined theta angle, the relative positions of cable clamps on the first flat steel beam (1) and the second flat steel beam (2) are unchanged, and the basic equation of a cable structure node displacement method is as follows:
Figure FDA0002614797590000021
in the formula (I), the compound is shown in the specification,
Figure FDA0002614797590000022
Figure FDA0002614797590000023
Figure FDA0002614797590000024
Figure FDA0002614797590000025
Figure FDA0002614797590000026
wherein, TiIs the initial pre-tension of the ith cable element,/0iIs the initial cable length of the ith cable unit, upi、uqiRespectively, the y-direction node displacement of the p point and the q point at two ends of the ith cable unit under the action of load, and ypi、yqiIs the y-direction coordinate of the p point and the q point at the two ends of the ith cable unit in the initial state, E is the elastic modulus of the cable unit, AiIs the cross-sectional area of the ith cable element, PyqIs the y-direction load, R, of the intersection of two cable elementsyqIs the y-direction nonlinear force of the intersection of two cable elements, ai、bi、ci、diAre four dimensionless coefficients.
CN202021578359.4U 2020-08-03 2020-08-03 Steel flat beam-vertical cable curtain wall supporting device Active CN212897040U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202021578359.4U CN212897040U (en) 2020-08-03 2020-08-03 Steel flat beam-vertical cable curtain wall supporting device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202021578359.4U CN212897040U (en) 2020-08-03 2020-08-03 Steel flat beam-vertical cable curtain wall supporting device

Publications (1)

Publication Number Publication Date
CN212897040U true CN212897040U (en) 2021-04-06

Family

ID=75231385

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202021578359.4U Active CN212897040U (en) 2020-08-03 2020-08-03 Steel flat beam-vertical cable curtain wall supporting device

Country Status (1)

Country Link
CN (1) CN212897040U (en)

Similar Documents

Publication Publication Date Title
Bayati et al. Optimized use of multi-outriggers system to stiffen tall buildings
CN107476581B (en) Hoisting and mounting method for steel structure double-layer overhanging structure
CN103243654A (en) Mounting method for steel anchor beam of cable-stayed bridge and assembly jig and cable bent tower mounting platform used in method
CN109235902A (en) Positive quadrangular pyramid bolt-ball net frame multi-point support high-altitude dissipates splicing method
CN109972494B (en) Design and construction method of large-segment hoisting self-anchored suspension bridge with hinges between segments
CN216765541U (en) Half-through arch bridge structure
CN106284838A (en) A kind of lattice Honeycomb Beam sections and large span lattice girder steel and fabrication and installation method thereof
CN111734023A (en) Steel flat beam-vertical cable curtain wall supporting structure system
CN107419806B (en) Large-span X-shaped grid three-dimensional string structure system and construction method thereof
CN212897040U (en) Steel flat beam-vertical cable curtain wall supporting device
CN106193284B (en) The installation method and mounting structure of large span space drop level continuous truss frame
CN111859521A (en) Stress-free length calculation method for central cable of main cable of spatial self-anchored suspension bridge
CN111809726A (en) Truss structure and building structure
CN103835369A (en) Extensible high-altitude conjoined steel structure
CN217580579U (en) Gymnasium steel roof hoist mechanism with basement structure
CN108518008B (en) Rigid roof structure on flexible inhaul cable structure and mounting method thereof
CN109930744A (en) A kind of assembled string branch structural system of roof and its construction method
CN105220609B (en) Combined beam self-anchored suspension bridge and construction process thereof
CN115680181A (en) Material-saving and wind-resistant cable-membrane structure building and construction method thereof
CN112464534B (en) Oil and gas pipe suspension cable crossing simulation analysis model and construction method thereof
CN114319070A (en) Cable-stayed bridge with single-column type leaning tower structure
CN208235714U (en) A kind of assembled light steel construction structure
CN111395625A (en) Horizontal force self-balancing suspension cable hanging roof structure
CN110359548A (en) A kind of steel truss suspension hybrid system and construction method
CN219528123U (en) Special-shaped grid suspended ceiling structure

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant