Staircase-Like Crack Progression Due to Hydrogen Embrittlement of Cold-Worked Steel Strand

J. Fernandez
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Abstract

Stressed carbon steel strand in an ungrouted duct susceptibility to pitting corrosion is low due to surface corrosion, but susceptibility of steel strand to Hydrogen Embrittlement (HE) can increase under those conditions.The HE will facilitate crack growth within the strand. Various crack propagation mechanisms, such as longitudinal splitting and shear-cracking, have been shown as possible strand failure mechanisms by themselves in strand, but this may not be true in stressed strand in piles that has been embrittled by Hydrogen and without pre-cracking (Cracks initiating from stress concentrations naturally rather than with notching). Concentration measurements were performed to determine the level of Hydrogen involved in the embrittlement.Results indicate that the fracture mechanism differs from shear cracking or longitudinal splitting alone as previously shown, but is a multi-step process of crack propagation starting perpendicular to stress, followed by variations of inter-lamellae longitudinal splitting at brittle region of lamellae and shear cracking at breaks in the lamellae. This process results in the crack following a “staircase” progression, and finally leading to ductile overload once cross-section has been significantly reduced. This fracture mechanism was also shown to be valid whether the strand was stressed by bending or mult-axially by stressing through a duct.
冷轧钢绞线氢脆引起的阶梯状裂纹进展
在未灌浆管道中,由于表面腐蚀,应力碳钢对点蚀的敏感性较低,但在这种条件下,钢对氢脆的敏感性会增加。HE将促进链内裂纹的扩展。各种裂纹扩展机制,如纵向劈裂和剪切开裂,已经被证明是可能的链链破坏机制,但这可能不是真的,在被氢脆的桩中的应力链中,没有预裂(裂缝由应力集中自然产生,而不是缺口)。进行了浓度测量,以确定参与脆化的氢的水平。结果表明,断裂机制不同于之前所述的剪切开裂或纵向分裂,而是一个多步骤的裂纹扩展过程,从垂直于应力开始,然后在片层脆性区域发生片层间纵向分裂,在片层断裂处发生剪切开裂。这一过程导致裂纹呈阶梯状发展,一旦截面显著减小,最终导致延性过载。这种断裂机制也被证明是有效的,无论股是由弯曲或多轴应力通过管道。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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