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ON THE DISTRIBUTION OF WAVE IMPACT LOADS ON OFFSHORE STRUCTURES

机译:海上结构上波浪冲击载荷的分布

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For offshore structures in harsh environments, horizontal wave impact loads should be taken into account in design. Shafts on GBS structures, and columns on semisubmersibles and TLPs are exposed to impact loads. Furthermore, if the crest height exceeds the available freeboard, the deck may also be exposed to wave impact loads. Horizontal loads due to waves impacting on the structure are difficult to quantify. The loads are highly intermittent, difficult to reproduce in model tests, have a very short duration and can be very large. It is difficult to calculate these loads accurately and the statistical challenges associated with estimating a value with a prescribed annual probability of occurrence are formidable. Although the accurate calculation of crest elevation in front of the structure is a significant challenge, industry has considerable experience in handling this problem and the analysis results are usually in good agreement with model test results. The present paper presents a statistical model for the distribution of horizontal slamming pressures conditional on the incident crest height upwave of the structure. The impact load distribution is found empirically from a large database of model test results where the wave impact load was measured simultaneously at a large number of panels together with the incident crest elevation. The model test was carried out on a circular surface piercing column using long simulations of longcrested, irregular waves with a variety of seastate parameters. By analyzing the physics of the process and using the measured crest elevation and the seastate parameters, the impact load distribution model is made seastate independent. The impact model separates the wave impact problem in three parts: Given an incident crest in a specified seastate, calculate the probability of the crest giving a wave impact load above a threshold. Given a wave impact event above a threshold, calculate the distribution of the resulting peak load. Given a peak load, calculate the distribution of slamming pressures at one spatial location. The development of the statistical model is described and it is shown that the model is appropriate for fixed and floating structures and for wave impact with both columns and the deck box.
机译:对于恶劣环境中的海上结构,在设计中应考虑水平波浪冲击载荷。 GBS结构上的轴以及半潜水器和TLP上的柱子承受冲击载荷。此外,如果波峰高度超过可用的干舷,则甲板也可能承受波浪冲击载荷。由于波浪冲击结构而引起的水平载荷很难量化。负载是高度间歇性的,很难在模型测试中重现,持续时间很短,并且可能很大。很难准确地计算这些负荷,并且与估计具有规定的年度出现概率的值相关的统计挑战非常艰巨。尽管准确计算结构前面的波峰高度是一个巨大的挑战,但行业在处理此问题方面拥有丰富的经验,分析结果通常与模型测试结果非常吻合。本文提出了一种统计模型,该模型用于根据结构的入射波峰高度上行波来确定水平砰击压力的分布。可以从大型模型测试结果数据库中凭经验找到冲击载荷分布,在该数据库中,在大量面板上同时测量了波冲击载荷以及入射波峰高度。模型测试是在圆形表面穿孔柱上进行的,其中使用了带有各种海参的长波状不规则波浪的长时间模拟。通过分析过程的物理过程,并使用测得的波峰高程和海况参数,使冲击载荷分布模型独立于海况。冲击模型将波浪冲击问题分为三个部分:给定特定海域中的入射波峰,计算波峰给波浪冲击载荷超过阈值的概率。给定超过阈值的波浪冲击事件,请计算所得峰值载荷的分布。给定峰值负载,计算一个空间位置的砰击压力分布。描述了统计模型的发展,结果表明该模型适用于固定和浮动结构以及既有立柱又有甲板箱的波浪冲击。

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