基于反褶积的系留平台极限弹跳响应统计

IF 2.3 3区 工程技术 Q2 ENGINEERING, MARINE
Oleg Gaidai , Yu Cao , Yihan Xing , Rajiv Balakrishna
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引用次数: 18

摘要

该研究考察了深水张力腿平台(TLP)的运动响应和水动力波浪载荷,强调了波浪和频率对升沉、横摇和俯仰约束模式的影响。采用TLP转角垂直位移的Volterra级数表示精确计算了随机海态下的随机TLP结构反应,并将其作为响应过程。采用二阶衍射程序WAMIT对波浪载荷进行了计算,并将其应用于表示动力系统的线性阻尼质量-弹簧模型。然后,利用一种新的反褶积方法确定了设计低概率水平下的平台位移响应。由于Volterra级数代表解析解,本研究比较了精确的Volterra和近似的预测。后者提供了一种准确的方法来验证所提出的新反褶积方法的有效性和精度。与现有的工程技术相比,所提出的反卷积方法最吸引人的优点是它不依赖于任何预先假设的渐近概率分布类。后者对于实际工程设计可能是一个有吸引力的点。因此,这项工作的主要目的是验证一种新的反卷积方法使用精确的准解析解。这项工作还强调了基于平均上交叉率的外推方法在窄带效应情况下的局限性,包括聚类,这通常包括在弹跳类型的响应中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extreme springing response statistics of a tethered platform by deconvolution

The research examines the motion response and hydrodynamic wave loads of a deep-water Tension Leg Platform (TLP), emphasising the impacts of the wave sum frequency on the restrained modes of heave, roll, and pitch. The stochastic TLP structural reaction in a random sea state was precisely computed using a Volterra series representation of the TLP corner vertical displacement, which was selected as a response process. The wave loading was evaluated using the second-order diffraction code WAMIT and applied to a linear damped mass-spring model representing the dynamic system. Then, platform displacement response at the design low probability level has been determined using a novel deconvolution approach. Since the Volterra series represented the analytical solution, the exact Volterra and the approximated predictions have been compared in this study. The latter provided an accurate way to validate the effectiveness and precision of the proposed novel deconvolution method. Compared to existing engineering techniques, the most attractive advantage of the proposed deconvolution method is that it does not rely on any pre-assumed asymptotic probability distribution class. The latter may be an attractive point for practical engineering design. Thus the primary objective of this work was to validate a novel deconvolution approach using exact quasi-analytical solutions. This work also highlights the limitations of mean up-crossing rate-based extrapolation methodologies for the situation of narrowband effects, including clustering, which are often included in the springing type of response.

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来源期刊
CiteScore
4.90
自引率
4.50%
发文量
62
审稿时长
12 months
期刊介绍: International Journal of Naval Architecture and Ocean Engineering provides a forum for engineers and scientists from a wide range of disciplines to present and discuss various phenomena in the utilization and preservation of ocean environment. Without being limited by the traditional categorization, it is encouraged to present advanced technology development and scientific research, as long as they are aimed for more and better human engagement with ocean environment. Topics include, but not limited to: marine hydrodynamics; structural mechanics; marine propulsion system; design methodology & practice; production technology; system dynamics & control; marine equipment technology; materials science; underwater acoustics; ocean remote sensing; and information technology related to ship and marine systems; ocean energy systems; marine environmental engineering; maritime safety engineering; polar & arctic engineering; coastal & port engineering; subsea engineering; and specialized watercraft engineering.
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