Accelerated reliability testing of articulated cable bend restrictor for offshore wind applications

Philipp R. Thies , Lars Johanning , Imran Bashir , Ton Tuk , Marloes Tuk , Marco Marta , Sven Müller-Schütze
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引用次数: 12

Abstract

Power cable failures for offshore marine energy applications are a growing concern since experience from offshore wind has shown repeated failures of inter-array and export cables. These failures may be mitigated by dedicated cable protection systems, such as bend restrictors. This paper presents the rationale and the results for accelerated reliability tests of an articulated bend restrictor. The tests are a collaborative effort between the University of Exeter, CPNL Engineering and NSW, supported by the EU MARINET programme.

The tests have been carried out at full-scale and exposed the static submarine power cable, fitted with an articulated pipe bend restrictor, to mechanical load regimes exceeding the allowable design loads in order to provoke accelerated wear and component failures. The tested load cases combined cyclic bending motions with oscillating tensile forces. A range of acceleration factors have been applied in respect to the 1:50 years load case, subjecting each of the three restrictor samples to 25,000 bending cycles (50,000 tensile cycles). The static power cable was also loaded beyond its intended use, testing the worst case scenario of repeated dynamic loading, purposely inflicting failure modes for investigation. Throughout the test the static submarine power cable sustained over 77,000 bending cycles.

The test demonstrated the integrity of the cable protection system with quantified wear rates obtained through 3D scanning of the individual shells. The static power cable also maintained its integrity throughout the accelerated test regime. None of the failure modes, mainly fatigue cracks and fretting of individual wires, identified by cable dissection would have caused a direct loss of service. The observed failure modes could also be predicted through numerical load analysis, giving confidence in the utilised mechanical modelling and cross-sectional analysis for dynamic applications.

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海上风电用铰接式电缆弯曲限流器的加速可靠性试验
由于海上风电的经验表明,阵列间和出口电缆的反复故障,海上海洋能源应用中的电力电缆故障日益受到关注。这些故障可以通过专用电缆保护系统来减轻,例如弯曲限制器。本文介绍了铰接式弯限流器加速可靠性试验的基本原理和结果。这些测试是埃克塞特大学、CPNL工程和新南威尔士州之间的合作成果,得到了欧盟MARINET计划的支持。这些测试是在全尺寸上进行的,并将装有铰接管弯限流器的静态海底电力电缆暴露在超过允许设计载荷的机械载荷下,以引起加速磨损和组件失效。测试的载荷案例结合了循环弯曲运动和振荡拉力。在1:50年的载荷情况下,应用了一系列加速因素,使三个限流器样品中的每一个经受25,000次弯曲循环(50,000次拉伸循环)。静态电力电缆的负载也超出了其预期用途,测试了重复动态加载的最坏情况,故意造成故障模式以供研究。在整个测试过程中,静态海底电力电缆承受了超过77,000次弯曲循环。该测试通过对单个套管的3D扫描获得了量化磨损率,从而证明了电缆保护系统的完整性。在整个加速测试过程中,静电电缆也保持了其完整性。通过电缆解剖确定的失效模式,主要是疲劳裂纹和单个电线的微动,都不会导致直接的服务损失。观察到的破坏模式也可以通过数值载荷分析来预测,这为动态应用的力学建模和横截面分析提供了信心。
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