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Processes and patterns of flow, erosion, and deposition at shipwreck sites: a computational fluid dynamic simulation

机译:海难站点的流动,侵蚀和沉积的过程和模式:计算流体动态模拟

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Shipwreck sites are open systems, allowing the exchange of material and energy across system boundaries. Physical processes dominate site formation at fully submerged wreck sites, and in turn influence chemical and biological processes at many stages of site formation. Scouring presents a fundamental yet poorly understood threat to wreck sites, and the processes and patterns of erosion and deposition of sediments and artefacts at wreck sites are poorly understood. Laboratory and field-based experiments to study these phenomena are time-consuming and expensive. In this study, open-source computational fluid dynamic (CFD) simulations are used to model the processes and patterns of flow, erosion, and deposition at fully submerged wreck sites. Simulations successfully capture changes in the flow regime in the environment of the wreck as a function of incidence angle, including flow contraction, the generation of horseshoe vortices in front of the wreck, the formation of lee-wake vortices behind the structure, and increased turbulence and shear stress in the lee of the wreck site. CFD simulations demonstrate that horseshoe vortices control scour on the upstream face of structure but play a minimal role in scouring on the lee side. Lee-wake vortices dominate behind the structure, with low-pressure zones in the lee of the wreck capturing flow. The amplification and reduction of wall shear stress and turbulent kinetic energy in the lee of the vessel form distinctive patterns in relation to flow direction, with areas of amplified and reduced wall shear stress and turbulent kinetic energy demonstrating excellent spatial correlation with erosional and depositional patterns developed at real-world wreck sites.
机译:SackWreck站点是开放系统,允许在系统边界上交换材料和能量。物理过程在完全淹没的残骸网站上支配位点形成,反过来影响化学和生物过程,在现场形成的许多阶段。彻底介绍了对残骸网站的基本尚未理解的威胁,以及沉积物和沉积物沉积和沉积物的沉积和沉积地点的侵蚀和遗传般的侵蚀。研究这些现象的实验室和基于现场的实验是耗时和昂贵的。在本研究中,开源计算流体动态(CFD)模拟用于在完全浸没的残骸网站上模拟流动,侵蚀和沉积的过程和模式。模拟成功捕获破坏环境中的流动制度的变化作为入射角的函数,包括流量收缩,在残骸前的马蹄涡流的产生,形成结构后面的李尾涡流,湍流增加并在残骸网站的李中剪切压力。 CFD模拟表明马蹄涡流控制结构上游面上的冲刷,但在李方面发挥着最小的作用。 Lee-Wake漩涡在结构后面主导,带有低压区域的残骸捕获流程。血管壁剪切应力和湍流动能的放大和减少形成与流动方向相对于流动方向的独特图案,具有扩增和减少的壁剪切应力和湍流动能的区域,示出了与发育的侵蚀和沉积图案的优异的空间相关性在真实世界的残骸网站。

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