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Fatigue characteristics of distributed sensing cables under low cycle elongation

机译:低周伸长率下分布式传感电缆的疲劳特性

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When strain sensing cables are under long-term stress and cyclic loading, creep may occur in the jacket material and each layer of the cable structure may slide relative to other layers, causing fatigue in the cables. This study proposes a device for testing the fatigue characteristics of three types of cables operating under different conditions to establish a decay model for observing the patterns of strain decay. The fatigue characteristics of cables encased in polyurethane (PU), GFRP-reinforced, and wire rope-reinforced jackets were compared. The findings are outlined as follows. The cable strain decayed exponentially, and the decay process involved quick decay, slow decay, and stabilization stages. Moreover, the strain decay increased with the initial strain and tensile frequency. The shorter the unstrained period was, the more similar the initial strain levels of the strain decay curves were to the stabilized strain levels of the first cyclic elongation. As the unstrained period increased, the initial strain levels of the strain decay curves approached those of the first cyclic elongation. The tested sensing cables differed in the amount and rate of strain decay. The wire rope-reinforced cable exhibited the smallest amount and rate of decay, whereas the GFRP-reinforced cable demonstrated the largest.
机译:当应变传感电缆承受长期应力和周期性载荷时,护套材料中可能会发生蠕变,并且电缆结构的每一层都可能相对于其他层滑动,从而导致电缆疲劳。这项研究提出了一种用于测试三种类型的电缆在不同条件下工作的疲劳特性的设备,以建立用于观察应变衰减模式的衰减模型。比较了聚氨酯(PU),GFRP增强和钢丝绳增强的护套所包裹的电缆的疲劳特性。研究结果概述如下。电缆应变呈指数衰减,衰减过程包括快速衰减,缓慢衰减和稳定阶段。而且,应变衰减随初始应变和拉伸频率而增加。未应变时间越短,应变衰减曲线的初始应变水平与第一循环伸长的稳定应变水平越相似。随着非应变周期的增加,应变衰减曲线的初始应变水平接近于第一循环伸长率。经过测试的传感电缆的应变衰减量和衰减率有所不同。钢丝绳增强电缆的衰减量和衰减率最小,而GFRP增强电缆的衰减量最大。

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