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Blockage and relative velocity Morison forces on a dynamically-responding jacket in large waves and current

机译:大波浪和电流动态响应夹套上的堵塞和相对速度莫朗斯力量

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This paper documents large laboratory -scale measurements of hydrodynamic force time histories on a realistic 1:80 scale space-frame jacket structure, which is allowed to respond dynamically when exposed to combined waves and in-line current. This is a follow-on paper to Santo, Taylor, Day, Nixon and Choo (2018a) which used the same jacket structure but very stiffly supported. The aim is to investigate the validity of the Morison equation with a relative velocity formulation when applied to a complete space-frame structure, and to examine the fluid flow (and the associated hydrodynamic force) reduction relative to ambient flow due to the presence of the jacket structure as an obstacle array as well as the dynamic structural motion, interpreted as wave-current-structure blockage. Springs with different stiffness are used to allow the jacket to respond freely in the incident wavefield, with the emphasis on high frequency modes of structural vibration relative to the dominant wave frequency. Transient focussed wave groups, and embedded wave groups in a smaller regular wave background are generated in a towing tank. The jacket is towed under different speeds opposite to the wave direction to simulate.wave loading with different in-line uniform currents, The measurements are compared with numerical predictions using Computational Fluid Dynamics (CFD), with the actual jacket represented in a three-dimensional numerical wave tank as a porous tower and modelled as a uniformly distributed Morison stress field derived from the relative velocity form. A time-domain ordinary differential equation solver is coupled internally with the CFD solver to account for feedback from the structural motion into the Morison distributed stress field. An approximate expanded form of the Morison relative-velocity is also tested and is recommended for practical industrial applications. Reasonably good agreement is achieved in terms of incident surface elevation, dynamic model displacement as well as total hydrodynamic force time histories, all using a single set of Morison drag (Cd) and inertia (Cm) coefficients, although the numerical results tend to slightly overpredict the total forces. The good agreement between measurements and numerical predictions and the generality of the results shows that the Morison relative-velocity formulation is appropriate for a wide range of space-frame structures. In these tests, this gives rise to additional damping of the dynamic system which is equivalent to 8% of critical damping. This is significantly larger than both the structural and hydrodynamic damping combined (which is about 1%) as quantified through free vibration (push test) in otherwise stationary water. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文在现实的1:80刻度空间框架夹套结构上文献了较大的实验室 - 施工时间历史记录,允许在暴露于组合波和在线电流时动态地响应。这是一个用于Santo,Taylor,Day,Nixon和Choo(2018A)的后续纸,它使用了相同的夹克结构但非常僵硬地支持。目的是在施加到完整的空间框架结构时研究MORISON方程的有效性,并且在施加完整的空间框架结构时检查流体流动(以及相关的流体动力)由于存在而导致的环境流量夹克结构作为障碍阵列以及动态结构运动,解释为波浪电流结构堵塞。具有不同刚度的弹簧用于允许夹套在入射波场中自由反应,重点是相对于主波频的结构振动的高频模式。在牵引箱中产生较小常规波背景中的瞬态聚焦波组和嵌入波组。夹套在与波方向相反的不同速度下拖曳以模拟。用不同的直线均匀电流加载,使用计算流体动力学(CFD)与数值预测进行测量,实际夹套在三维中表示。数值波槽作为多孔塔,并以衍生自相对速度形式的均匀分布的莫朗斯应力场建模。时域常规等式求解器与CFD求解器在内部耦合,以考虑从结构运动到莫里齐分布应力场的反馈。还测试了近似扩展形式的莫朗肯相对速度,并建议用于实际工业应用。在入射表面高度,动态模型位移以及总流体动力学力时间历史方面实现了合理良好的一致性,虽然数值结果趋于略微覆盖总力量。测量和数值预测之间的良好一致性以及结果的一般性表明,莫里逊相对 - 速度配方适用于各种空间框架结构。在这些测试中,这导致动态系统的额外阻尼,这相当于临界阻尼的8%。这显着大于结构和流体动力阻尼组合(约1%)通过在其他固定水中通过自由振动(推动测试)量化。 (c)2018年elestvier有限公司保留所有权利。

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