SPH-based modeling of a direct-drive WEC in extreme waves and currents

IF 4.4 2区 工程技术 Q1 ENGINEERING, OCEAN
Salvatore Capasso , Zahra Shahroozi , Malin Göteman , Iván Martínez-Estévez , Giacomo Viccione , Bonaventura Tagliafierro
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引用次数: 0

Abstract

In this work, we present a fully Lagrangian framework specifically tailored to host point absorber WECs under violent wave–current excitations. Within the open-source DualSPHysics framework, based on the Weakly Compressible Smoothed Particle Hydrodynamics (WCSPH) method, a multipurpose wave tank is modeled to simulate extreme wave trains developing over uniform currents, by adopting the focusing strategy and high-order solutions. Moreover, a novel power take-off (PTO) model is implemented within the loop to unlock a swift characterization of different energetic proxy models. An Uppsala University WEC model is firstly validated under extreme sea states, and such framework is eventually tasked with the simulation of combined wave–current extreme events. The outcome we document suggests that complex buoy dynamics can develop in wave–current fields, with high sensitivity to the sea state representation: focused waves propagating over equally headed currents tend to maximize the line stretching and to develop extremely nonlinear kinematics. Floater displacement and anchoring tension patterns show no direct correlation with the wave–current layout and PTO configurations. Contrary to established knowledge, strong PTO damping does not always guarantee lower system stress. An all-around numerical strategy, leveraging high-fidelity modeling is presented, owning the necessary flexibility to anticipate both operational and ultimate limit state load combinations, accommodating increasing degrees of nonlinearity.
基于sph的直接驱动WEC在极端波浪和洋流中的建模
在这项工作中,我们提出了一个完全的拉格朗日框架,专门针对强波流激励下的宿主点吸收WECs。在开源的dualspphysics框架下,基于弱可压缩光滑粒子流体力学(WCSPH)方法,采用聚焦策略和高阶解,对一个多用途波槽进行建模,模拟均匀流上的极端波列。此外,在环路内实现了一种新的功率起飞(PTO)模型,以解锁不同能量代理模型的快速表征。首先验证了Uppsala大学WEC模型在极端海况下的有效性,并最终将该框架用于波流联合极端事件的模拟。我们记录的结果表明,复杂的浮标动力学可以在波浪流场中发展,对海况表示具有高度敏感性:聚焦波在等头流上传播,往往会最大化线的拉伸,并形成极端非线性的运动学。浮子位移和锚固张力模式与波流布局和PTO结构没有直接关系。与现有的知识相反,强PTO阻尼并不总是保证较低的系统应力。提出了一种全面的数值策略,利用高保真建模,拥有必要的灵活性来预测操作和最终极限状态负载组合,适应不断增加的非线性程度。
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来源期刊
Applied Ocean Research
Applied Ocean Research 地学-工程:大洋
CiteScore
8.70
自引率
7.00%
发文量
316
审稿时长
59 days
期刊介绍: The aim of Applied Ocean Research is to encourage the submission of papers that advance the state of knowledge in a range of topics relevant to ocean engineering.
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