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Corrosion influence on lifetime prediction to determine the Wohler curves of outer layer strand of a steel wire rope

机译:终身预测对钢丝绳外层钢丝WOHLER曲线的腐蚀影响

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摘要

Wire ropes play important roles in industry development, maritime industrial services and civil engineering applications. They are composed of multi-wire strands twisted together to form a structure with enormous mechanical properties, combining high axial strength, rigidity and torsional flexibility. In most applications, wire ropes are exposed to different damage mechanisms. One of these mechanisms is corrosion, which can accelerate the damage to cable components and lead to brutal and unforeseen failure. In this regard, experimental tensile tests were carried out on several strand samples; one sample was virgin and the others were corroded by immersion of a well-defined number of strands in sulfuric acid solutions. The studied strands were extracted from a 19 * 7 non-rotating steel wire rope. The static damage enables to monitor the evolution of residual stresses of damaged samples with different corrosion levels. Based on the ultimate residual stress and the endurance limit of the virgin strand, the influence of corrosion on the strand's endurance limit was studied by plotting the S-N curves according to the unified theory. The obtained results enabled to assess the mechanical behavior of the strand in a corrosive environment under static stress and to predict the number of cycles at which the strand will break. This procedure makes it possible to anticipate the service life of this structure under corrosive conditions. It also helps to establish a solid maintenance system that ensures a safe and reliable working environment.
机译:钢丝绳在工业发展,海事工业服务和土木工程应用中起着重要作用。它们由多线股线组成,以形成具有巨大机械性能的结构,组合高轴向强度,刚性和扭转柔性。在大多数应用中,钢丝绳暴露于不同的损坏机制。这些机制之一是腐蚀,这可以加速对电缆部件的损坏并导致残酷和不可预见的故障。在这方面,在几个链样品上进行实验拉伸试验;一个样品是处女,并且通过浸入硫酸溶液中沉淀有明确数量的股线来腐蚀。从19×7非旋转钢丝绳提取研究的股线。静态损伤使能够监测具有不同腐蚀水平的损坏样品的残余应力的演变。基于终极剩余应力和处女股的耐久极限,通过根据统一理论绘制S-N曲线研究了腐蚀对股线的耐久极限的影响。所得结果使得能够评估静态应力下腐蚀性环境中的股线的力学行为,并预测股线将破裂的循环次数。该程序使得可以在腐蚀条件下预测这种结构的使用寿命。它还有助于建立一个固体维护系统,确保安全可靠的工作环境。

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