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Method for detecting bearing capacity of medium and small span prestressed concrete beam bridge after fire

A technology for concrete beams and bearing capacity, applied in the field of bridge detection and reinforced concrete damage detection, can solve problems such as non-uniform material properties and mechanical properties, secondary collapse, and inconvenience for rescuers to rescue disasters, and achieve results with high reliability and feasibility. High-performance, easy-to-implement effects

Pending Publication Date: 2019-08-30
SHANDONG HI SPEED GRP CO LTD +1
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  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

[0005] Existing methods mainly use the finite element method with a huge amount of calculation to obtain relatively accurate results. Due to the different geometrical section types and fire exposure methods of prestressed concrete members, and the material properties and mechanical properties in the section are non-uniform, this makes After each bridge has passed through the fire, it needs to be inspected on site and then remodeled. The damage degree and remaining bearing capacity of the bridge cannot be quickly obtained, and there is a danger of secondary collapse, which will bring inconvenience to rescuers.
Moreover, the existing detection methods lack quantitative evaluation of the ultimate bearing capacity of prestressed concrete structures after fire, and the ultimate bearing capacity is an important indicator to re-evaluate whether the bridge needs to be repaired and strengthened to be put into use again, or an important basis for demolition and reconstruction.

Method used

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  • Method for detecting bearing capacity of medium and small span prestressed concrete beam bridge after fire
  • Method for detecting bearing capacity of medium and small span prestressed concrete beam bridge after fire
  • Method for detecting bearing capacity of medium and small span prestressed concrete beam bridge after fire

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Embodiment 1

[0050] Embodiment 1 relates to the detection and identification method of a certain expressway bridge after fire. The general situation of the bridge is a 9×20m simply supported pre-tensioned prestressed concrete prefabricated slab structure, two-way six-lane, framed design, the overall width of the bridge is 34.5m, and the single bridge is set with 16 A hollow slab girder, the bridge intersection angle is 52.74 degrees, and the concrete grade is C50. The substructure adopts four-column piers, rib platform, and bored pile foundation. The bridge deck is paved with 10cm asphalt concrete. The bridge was completed and opened to traffic in 2007, and it crosses a certain provincial road. Because the tank truck went under the bridge, an accident occurred and it turned over and burned. Then the tank broke and burned in a large area. The fire took nearly 2 hours. The schematic diagram of the upper structure is attached figure 1 .

[0051] 1. Instructions for dividing areas and numb...

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Abstract

The invention belongs to the technical field of bridge detection, and particularly relates to a method for detecting the bearing capacity of a medium and small span prestressed concrete beam bridge after fire, which comprises the following specific steps of: dividing and numbering detection areas; actual measurement values of five types of evaluation indexes including concrete colors, rebound values, hammering reactions, fire cracks, concrete falling areas and depths in all the measurement areas are obtained; calculating damage scales of the five types of evaluation indexes according to a testarea damage level identification rating table, and taking a highest value as a comprehensive scale Di of the test area; calculating the weight i of each measurement area; taking a weighted average value of the comprehensive scales of all the measuring areas of each beam as a fire comprehensive damage scale Z of the beam; and determining the reduction rate of the bearing capacity after fire according to the interval of Z. The complex finite element calculation method avoiding excessive fire is used for quickly and quantitatively obtaining the limit bearing capacity reduction rate of the structure, is easy to implement, high in feasibility and high in result reliability, and provides reference for obtaining the residual bearing capacity, re-assessing whether the structure needs to be repaired, reinforced and re-put into use or disassembling and rebuilding.

Description

technical field [0001] The invention belongs to the technical field of bridge detection, in particular to the technical field of reinforced concrete damage detection, and specifically relates to a method for detecting the carrying capacity of prestressed concrete girder bridges with small and medium spans after fire. Background technique [0002] Expressways are the lifeblood of regional economic development, and bridges, as an important connection line for expressways across rivers and canyons, play a huge role in shortening transportation distances. Due to the surge in highway traffic and oil and gas resources transportation, the frequency of fires caused by traffic accidents is increasing, which brings great harm to the safety of bridge structures. As the most widely used building structure material today—reinforced concrete will undergo a series of physical and chemical changes when subjected to fire. With the prolongation of the fire time of the bridge, the yield stres...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G06Q10/06G06Q50/08
CPCG06Q10/06393G06Q50/08
Inventor 刘鹏刘康郝朝伟崔永义孟涛王来永姜海龙张文武王珊珊赵庆云吴军鹏卜令涛张运清刘文
Owner SHANDONG HI SPEED GRP CO LTD
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