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储能系统技术 ★ 5.0

基于SPH方法的新型摆翼式波浪能转换装置功率性能与动态响应的建模与实验验证

SPH modeling and experimental validation on power performance and dynamic response of a novel swing-wing wave energy converter

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中文摘要

摘要 针对传统电池驱动的海洋无人航行器续航能力有限、工作半径小的问题,提出了一种摆翼式波浪能转换装置(SW-WEC)的概念,以高效地将波浪能转化为机械能,并进一步转化为电能。准确分析SW-WEC的动态响应对于预测其发电性能至关重要,但采用传统数值方法实现这一目标具有较大挑战性。本文通过结合光滑粒子流体动力学(SPH)方法与Chrono-Engine,建立了全尺寸SW-WEC的流固耦合动力学模型。研究重点在于评估SPH方法在预测SW-WEC动态响应和功率性能方面的准确性,为此开展了实验与数值模拟两方面的研究,以探究SW-WEC与波浪之间的相互作用。SPH数值模型能够精确模拟SW-WEC在波浪作用下的运动响应,且与实验结果具有良好一致性。该结果表明,尽管计算成本较高,SPH方法在模拟此类三体波浪能装置的大尺度运动方面具有显著潜力。此外,本文还研究了波高、波浪周期以及能量俘获系统(PTO)阻尼对发电性能的影响。结果表明,随着波高的增加,发电性能提高;而随着波浪周期的增加,发电性能下降。SW-WEC的最大发电功率超过12 W,最大俘获宽度比(CWR)超过0.08。存在一个最优的PTO阻尼值以实现最佳发电性能,且该最优值随不同波况而变化。本研究为SW-WEC提供了一种新颖且有效的建模与分析方法,并为其结构优化设计提供了指导。

English Abstract

Abstract Considering the problems of limited endurance and small working radius brought by traditional battery-powered marine unmanned vehicles. A concept of swing-wing wave energy converter (SW-WEC) is proposed to efficiently convert wave energy into mechanical energy and subsequently into electricity. Accurately analyzing the dynamic response of SW-WEC is crucial for predicting power performance but is challenging with traditional numerical methods. This paper establishes a fluid–structure coupling dynamic model of a full-size SW-WEC by combining the smoothed particle hydrodynamics (SPH) method and Chrono-Engine. The study focuses on evaluating the accuracy of SPH method in predicting dynamic response and power performance of the SW-WEC, both experimental and numerical studies are conducted to investigate SW-WEC’s interaction with waves. The SPH numerical model can accurately simulate the motion response of SW-WEC under wave action and shows good agreement with experimental results. This result shows the potential of SPH method in simulating large motion of such three-body wave energy devices, although it is computationally heavy. Furthermore, we investigate the influence of wave height, period, and Power Take-Off (PTO) damping on power performance. The results indicate that power performance improves as wave height increases but diminishes as wave period increases. The maximum generating power of SW-WEC exceeding 12 W, and the maximum capture width ratio (CWR) surpassing 0.08. There is an optimal PTO damping for achieving the best power performance, which varies under different wave conditions. This work provides a novel and effective modeling and analysis method for the SW-WEC and offers guidance for its structural optimization.
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SunView 深度解读

该摆翼式波浪能转换器技术对阳光电源海洋能源与储能系统融合具有启发意义。其PTO阻尼优化与功率控制策略可借鉴至ST系列PCS的能量管理算法,特别是波动性可再生能源的最大功率点跟踪。SPH流固耦合建模方法可应用于海上漂浮式光伏电站的动态响应分析。该技术为无人海洋设备供电场景提供了新思路,可与阳光电源储能系统及智能运维平台iSolarCloud结合,拓展海洋可再生能源+储能一体化解决方案,提升离网场景能源自给能力。