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Clean steel box type profile steel buckling restrained brace

A buckling restraint, box-shaped technology, applied in building components, earthquake resistance, etc., can solve the problems of local buckling that cannot be used, prone to local buckling, and lack of core elements, and achieves flexible design, low cost, and reduced steel consumption. Effect

Active Publication Date: 2014-03-26
SHANGHAI BAOYE GRP CORP
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

However, the design of the existing pure steel buckling-restrained braces ignores an important problem, that is, the ability of the core element itself to resist local buckling is not utilized.
The reason for this phenomenon is that the section of the core unit, such as the "one"-shaped plate and "ten"-shaped combined section and the flange of the H-shaped steel, is a cantilevered part, which is prone to local buckling under the action of axial force, so The existing pure-steel buckling-restrained supports cannot utilize the ability of the core unit itself to resist local buckling, resulting in a decline in the overall economy

Method used

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  • Clean steel box type profile steel buckling restrained brace
  • Clean steel box type profile steel buckling restrained brace
  • Clean steel box type profile steel buckling restrained brace

Examples

Experimental program
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Embodiment Construction

[0022] like Figure 1-Figure 7 Shown: a pure steel box-shaped steel buckling restraint support, which includes a box-shaped steel 1 and a sleeve 5 sleeved on the outside of the box-shaped steel; the box-shaped steel is a rectangular tube, in the middle of the four sides of its two ends Symmetrically open grooves respectively, and cross-shaped stiffeners 2 are welded in the grooves; such as Figure 8 Shown: The cross-shaped stiffening rib is formed by welding two flat plates 7 with grooves perpendicular to each other. Channel steels 3 are symmetrically arranged on the four surfaces of the inner wall of the sleeve 5, and each pair of channel steels is arranged in the back, and the backs of the channel steels are respectively pressed against each surface of the box-shaped steel.

[0023] like Figure 9 Shown: the pure steel box-shaped steel buckling restraint support is provided between the column 8 and the top beam 9 diagonally.

[0024] The four surfaces that make up the box...

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Abstract

The invention relates to a clean steel box type profile steel buckling restrained brace which comprises box type profile steel and a sleeve sleeved outside the box type profile steel. The box type profile steel is a rectangular pipe. Grooves are symmetrically and respectively formed in the middles of the four edges at two ends of the rectangular pipe. A cross stiffening rib is welded into the each groove. Channel steel is symmetrically disposed on the four sides of the inner wall of the sleeve. Each pair of channel steel is opposite. The back of each channel steel is tightly abutted against the corresponding side of the box type profile steel. Each cross stiffening rib is welded by two grooved flat plates which intersect vertically. The clean steel box type profile steel buckling restrained brace is flexible in design, low in manufacturing cost, excellent in performance and high in adaptability.

Description

technical field [0001] The invention relates to a buckling restraint support, in particular to a pure steel box-shaped steel buckling restraint support. Background technique [0002] Earthquake is a highly destructive and random natural disaster, which will bring great threat to human life and property safety. The traditional seismic design relies on the structure itself to resist the earthquake, not only the efficiency is low, but also the main structure will inevitably be damaged or destroyed in the earthquake, which will affect the normal use function of the structure and lead to the occurrence of secondary disasters. From the point of view of energy conservation, the main reason for the collapse of the structure under rare earthquake is that its own energy dissipation capacity is not enough to consume the energy input to the structure by the earthquake, which leads to fatigue fracture failure of key components such as nodes, beams, and columns of the structure. The inst...

Claims

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Application Information

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IPC IPC(8): E04B1/98
Inventor 郭小康陈桥生许立新朱卫军
Owner SHANGHAI BAOYE GRP CORP
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