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Hydrogen Embrittlement And Corrosion Fatigue Of Corroded Bridge Wires

机译:腐蚀的桥丝的氢脆和腐蚀疲劳

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Cables of old suspension bridges and stays of cable-stayed bridges often suffer from steel corrosion. Corroded galvanized steel wires on different corrosion levels were produced at laboratories, and their mechanical properties and remaining strength were investigated. Actual tensile strength of corroded wires did not decrease with corrosion levels, whereas elongation decreased sharply after the zinc layer was partly depleted and the steel started to corrode. As the accumulated amounts of diffusive hydrogen of corrosion level-2 wires-with and without added tension-were almost the same and less than 0.2 ppm, the applied tension of steel wires did not affect the amount of diffusive hydrogen which was well below the critical concentration of 0.7 ppm to cause brittleness. This indicates that hydrogen embrittlement is unlikely to occur. Fatigue tests showed that fatigue strength did not change when only the galvanized layer was corroded, but it significantly decreased after corrosion of the steel below the galvanized layer progressed. Fatigue strength further lowered when the steel wire was cyclically stressed under wet environments when compared with the fatigue strength under dry environments. The broken wires of an old suspension bridge were also investigated. The fracture surface was similar to that caused by corrosion fatigue rather than hydrogen embrittlement. It was estimated that the wires were fractured by the mixed effects of corrosion, cyclic stresses and hydrogen.
机译:旧悬索桥的电缆和斜拉桥的支柱经常遭受钢腐蚀。在实验室生产了不同腐蚀水平的镀锌钢丝,并对其力学性能和剩余强度进行了研究。腐蚀丝的实际抗拉强度并没有随腐蚀水平降低,而在锌层部分耗尽并且钢开始腐蚀后,伸长率急剧下降。由于加和不加张力的腐蚀等级为2的钢丝的扩散氢累积量几乎相同且小于0.2 ppm,因此钢丝施加的张力不会影响到远低于临界值的扩散氢量浓度为0.7 ppm会引起脆性。这表明氢脆不太可能发生。疲劳试验表明,仅镀锌层被腐蚀时,疲劳强度没有变化,但在镀锌层以下的钢腐蚀发生后,疲劳强度却显着降低。与在干燥环境下的疲劳强度相比,当在潮湿环境下对钢丝施加周期性应力时,疲劳强度进一步降低。还研究了旧吊桥的断线。断裂表面类似于腐蚀疲劳而不是氢脆引起的表面。据估计,电线由于腐蚀,循环应力和氢的混合作用而断裂。

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