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GLOBAL PERFORMANCE OF SYNTHETIC ROPE MOORING SYSTEMS-FREQUENCY DOMAIN ANALYSIS

机译:合成绳系泊系统的全球性能 - 频率域分析

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For deep and ultra-deepwater applications, synthetic fibre ropes are considered an enabling technology due to their higher strength-to-weight ratio as compared to steel wire ropes and chains and due to their superior station-keeping performance. The advantages of synthetic fibre rope mooring systems include: 1) A higher floater payload and reduction in structural costs due to lower vertical load from mooring lines. 2) A reduction in vessel offsets and associated riser loads due to taut mooring system. 3) A potential reduction in installation costs due to lighter installation and handling equipment. 4) Superior endurance under cyclic loading compared to steel moorings. Synthetic fibre ropes have visco-elastic stiffness and stretch characteristics. The change-in-length response of a fibre rope is non-linear, load-path dependent (different unload-reload stiffness), and the length varies with the rate and duration of loading (due to elongation and contraction). The commonly accepted analysis approach is a simplification where a lower-bound and an upper-bound stiffness is used. This practice is primarily based on two factors: 1. The industry at large does not at present have a common, well-defined understanding of fibre-rope change-in-length performance. 2. There is a lack of commercially available mooring analysis programs with the capability to simulate the non-linear change-in-length response of the synthetic fibre rope. Individual designers may however have more advanced analysis procedures, but these are not commonly accepted yet. This paper presents results from the Syrope pilot study, Ref. /5/ and /6/, which has used rope testing to determine the characteristics of the elements in the spring-dashpot model. On this basis a strategy for software implementation in the frequency-domain has been proposed. A case study was performed for a semi-submersible production unit in deep water and harsh environment. The paper focuses on the differences between a commonly accepted, hereafter called traditional analysis approach and the proposed new frequency domain approach. The results show that there are large differences in extreme tensions and offsets as well as fatigue results. Hence, the new approach is considered to represent a significant improvement.
机译:对于深度和超深水应用,与钢丝绳和链相比,合成纤维绳索被认为是一种促进技术,并且由于钢丝绳和链接,并且由于其优越的站保持性能而导致的强度重量比。合成纤维绳系泊系统的优点包括:1)由于系泊线的垂直载荷较低的垂直载荷,较高的浮动有效载荷和结构成本的降低。 2)由于绷置系泊系统,血管偏移和相关提升载物的减少。 3)由于较轻的安装和处理设备,安装成本的潜在降低。 4)与钢系泊相比,循环负载下的优越耐力。合成纤维绳具有粘弹性刚度和拉伸特性。光纤绳索的变化长度响应是非线性的,负载路径相关(不同卸载重载刚度),并且长度随装载的速率和持续时间(由于伸长率和收缩)。常见的分析方法是使用较窄和上束刚度的简化。这种做法主要基于两个因素:1。大型行业目前没有常见的,明确地了解光纤绳索变化的长度性能。 2.缺乏商业上可用的系泊分析程序,具有模拟合成纤维绳的非线性变化响应的能力。但是,个别设计师可能有更高级的分析程序,但这些都不是常见的。本文介绍了裁秀飞行员研究的结果,参考。 / 5 /和/ 6 /,它使用了绳索测试来确定弹簧 - DASHPOT模型中元素的特性。在此基础上,已经提出了频域中的软件实现策略。在深水和恶劣环境中对半潜式生产单元进行案例研究。本文重点介绍了普遍接受的差异,以后称为传统分析方法以及所提出的新频域方法。结果表明,极端紧张局势和偏移存在较大差异以及疲劳结果。因此,新方法被认为代表着显着的改善。

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