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基于SPH的数值波浪-海流水池开发及其在波浪能转换装置中的应用
Development of an SPH-based numerical wave–current tank and application to wave energy converters
| 作者 | Salvatore Capasso · Bonaventura Tagliafierro · Iván Martínez-Estévez · Corrado Altomar · Moncho Moncho Gomez Gesteir · Malin Goteman · Giacomo Viccion |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 377 卷 |
| 技术分类 | 电动汽车驱动 |
| 技术标签 | SiC器件 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | An SPH-based wave flume based on open-boundary is proposed for wave and current. |
语言:
中文摘要
摘要 本研究提出了一种高保真度的数值水池,旨在分析波浪-海流场中产生的修正水动力特性,以生成波浪能转换装置(WEC)的功率矩阵。该数值水池基于开源的DualSPHysics拉格朗日框架,采用光滑粒子流体动力学(SPH)方法开发,通过物理实验数据进行了验证,并应用于点吸收式WEC的模拟。所提出的数值设施实现了开放边界条件,采用三阶一致波浪理论进行直接波浪生成,并通过多普勒相关函数约束流场。参考数据来自针对单色波的专门物理试验;波浪-海流数值水池在波浪变形和速度场方面表现出极高的精度。在本文的第二部分,针对张紧式系泊的乌普萨拉大学点吸收式WEC(UUWEC),计算了考虑海流影响的功率传递函数。利用参数化定义的规则波与均匀海流,映射出包含不同方向和强度海流的运行海况。就能量捕获能力而言,在海流存在下所观察到的修正动力学特性表明,WEC的功率矩阵不仅依赖于波浪参数,还受海流构型的影响。UUWEC的输出结果表明,无论海流方向如何,其年均输出功率始终下降,在引入预期海流场的情况下,记录到的功率降幅高达10%。
English Abstract
Abstract This research proposes a high-fidelity based numerical tank designed to analyze the modified hydrodynamics that develops in waves–current fields, aimed at generating power matrices for wave energy converters (WEC). This tank is developed within the open source DualSPHysics Lagrangian framework using the Smoothed Particle Hydrodynamics (SPH) method, validated with physical data, and applied to simulate a point-absorber WEC. Our proposed numerical facility implements open boundary conditions, employing third-order consistent wave theory for direct generation, with flow field constrained by a Doppler correlation function. Reference data is collected from dedicated physical tests for monochromatic waves; the wave–current numerical basin demonstrates very high accuracy in terms of wave transformation and velocity field. In the second segment of this paper, a current-aware power transfer function is computed for the taut-moored point-absorber Uppsala University WEC (UUWEC). Parametrically defined regular waves with uniform currents are utilized to map an operational sea state featuring currents of different directions and intensities. In terms of power capture capabilities, the modified dynamics observed in presence of currents translates in a dependence of the WEC’s power matrix not only on wave parameters, but also on current layouts. The UUWEC’s power output has revealed that regardless of current directionality, annual output consistently decreases, with a registered power drop as high as 10% when an expected current field is introduced.
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SunView 深度解读
该SPH数值波浪-海流耦合仿真技术对阳光电源海上新能源系统具有重要参考价值。研究揭示海流对波浪能转换器功率输出可造成10%衰减,这与海上光伏、储能系统面临的海洋动力环境高度相关。其高保真流固耦合建模方法可应用于海上漂浮式光伏支架设计优化、海上储能集装箱系统的动力响应分析。特别是文中功率传递函数矩阵计算方法,可借鉴用于ST系列海上储能PCS的多工况功率预测模型,结合iSolarCloud平台实现海洋环境下的预测性运维,提升海上新能源装备可靠性与发电效率评估精度。