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Effect of geometrical irregularities on fatigue of lead sheathing for submarine high voltage power cable applications

机译:几何不规则对潜艇高压电力电缆应用铅护套疲劳的影响

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摘要

High voltage subsea power cables are typically composed of several layers, including: a conductive core, a dielectric layer, a ductile metallic watertight barrier and a series of radial and axial armours and polymer layers. The watertight barrier serves the purpose of preventing water permeating to the dielectric due to the outer layers' polymer hygroscopicity. Water impregnation may cause dielectric breakdown, with fatal consequences on the integrity of the power cable. The watertight barrier is made of extruded lead alloy and is subjected, during the installation and operational life of the component, to axial and radial displacement-controlled fatigue which might lead to cracking, thus to a loss of its isolating properties. Lead, due to the low melting temperature, is characterized by creep deformation and damage even at room temperature. A steel tape is winded around the polyethylene sheathing surrounding the lead barrier, which is deformed, and a helical ridge is generated. This irregularity causes a local concentration of strain which might potentially lead to early failure of the lead sheathing. In this work the results of displacement-controlled fatigue testing at different strain rates of sheathing material including the irregularity is presented and compared to the results in equivalent conditions, but in the absence of the irregularity. The strain concentration caused by the defect is analysed with the implementation of a creep material model calibrated on the cyclic properties of the alloy and the notch sensitivity of the material for the class of defects, temperature and frequency in exam is obtained. The results are applied to the modelling of the stress-strain field in the component with and without irregularity and conclusions are drawn on the danger that such irregularities pose on the structural integrity on the power cable.
机译:高压外来电力电缆通常由几层组成,包括:导电芯,介电层,延性金属水密屏障和一系列径向和轴向臂和聚合物层。防水屏障是为了防止由于外层的聚合物吸湿性而渗透到电介质的目的。水浸可能导致介电击穿,对电力电缆的完整性进行致命后果。水密屏障由挤出的铅合金制成,并且在部件的安装和操作期间进行,以轴向和径向位移控制的疲劳,这可能导致裂化,从而丧失其隔离性能。由于低熔点温度,铅的特点是蠕变变形和损坏即使在室温下也是如此。钢带围绕围绕铅屏障的聚乙烯护套缠绕,铅屏障变形,产生螺旋脊。这种不规则性导致局部菌株浓度可能导致铅护套的早期失效。在这项工作中,呈现出包括不规则性的不同应变速率的位移控制疲劳试验结果,并与等效条件的结果相比,但在没有不规则的情况下。通过在合金的循环性质上校准的蠕变材料模型的实施方式分析由缺陷引起的应变浓度,并获得了考试中的缺陷的材料的缺点敏感性。结果应用于具有并且没有不规则性的应力 - 应变场的建模,并且对这种不规则性造成电力电缆结构完整性的危险绘制了结论。

著录项

  • 来源
    《International Journal of Fatigue》 |2021年第10期|106399.1-106399.12|共12页
  • 作者单位

    Dipartimento di Ingegneria Meccanica e Aerospaziale Politecnico di Torino Italy;

    Sintef industry Richard Birkelands vei 2B 7031 Trondheim Norway Department of Mechanical and Industrial Engineering Norwegian University of Science and Technology (NTNV) Richard Birkelands vei 2B 2034 Trondheim Norway;

    Nexans Norway Innspurten 9 0663 Oslo Norway;

    Department of Mechanical and Industrial Engineering Norwegian University of Science and Technology (NTNV) Richard Birkelands vei 2B 2034 Trondheim Norway;

    Sintef industry Richard Birkelands vei 2B 7031 Trondheim Norway Department of Mechanical and Industrial Engineering Norwegian University of Science and Technology (NTNV) Richard Birkelands vei 2B 2034 Trondheim Norway;

    Dipartimento di Ingegneria Meccanica e Aerospaziale Politecnico di Torino Italy;

    Department of Mechanical and Industrial Engineering Norwegian University of Science and Technology (NTNV) Richard Birkelands vei 2B 2034 Trondheim Norway;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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