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具有柔性结构片材的振荡水柱波浪能转换装置以提高功率输出
Oscillating water column wave energy converter with flexible structured sheet material for enhanced power output
| 作者 | Yang Huang · Guillermo Idarrag · Farhad Abad · Xiao Qing · Liu Yang · Saishuai Dai · Saeid Lotfian · Feargal Brennan |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 333 卷 |
| 技术分类 | 电动汽车驱动 |
| 技术标签 | 可靠性分析 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | The effects of patterned structural sheets and membrane pre-stretching on FlexWEC performance are systematically examined. |
语言:
中文摘要
摘要 柔性波浪能转换器(FlexWECs)因其在极端海洋条件下提升效率、可靠性和生存能力的潜力而日益受到关注。本研究探讨了两种提升FlexWEC性能的策略:定制材料特性与优化结构构型。开发了一种具有特定图案的结构片材,以在较低外部载荷下提高装置的功率输出;同时研究了膜材预拉伸对系统固有频率的调节作用及其对动态响应的改善效果。通过单轴拉伸试验表征了该材料的力学行为,并采用超弹性YEOH模型描述其非线性响应。开展了高保真流固耦合数值模拟,对比分析采用新型结构片材与传统天然橡胶的柔性振荡水柱式波浪能转换器(WEC)的性能差异,重点关注流体动力学特性、膜材变形、应力分布及功率输出。结果表明,相较于天然橡胶,结构片材使膜材变形量增加了143%,在共振状态下最大应力降低了14%,功率输出提升了245%。此外,预拉伸显著提高了WEC系统的固有频率,促进了更均匀的应力分布,从而降低了疲劳风险,并使功率输出增加54%。这些发现凸显了上述策略在提升FlexWEC效率与可靠性方面的潜力,为适应复杂多变的海洋环境提供了有价值的理论依据和技术参考。
English Abstract
Abstract Flexible wave energy converters (FlexWECs) are increasingly recognized for their potential to improve efficiency, reliability, and survivability in extreme ocean conditions. This study explores two strategies to enhance FlexWEC performance: customizing material properties and optimizing structural configuration. A structural sheet material with a specific pattern was developed to increase device power output under lower external loading, while membrane pre-stretching was investigated to tune the system’s natural frequency and improve dynamic response. The material’s mechanical behaviour was characterized through uniaxial tests, and a hyper-elastic YEOH model was applied to describe its nonlinear response. High-fidelity fluid–structure interaction simulations were performed to compare the performance of a flexible oscillating water column wave energy converter (WEC) using the newly developed structural sheet material against conventional natural rubber, with a focus on fluid dynamics, membrane deformation, stress distribution, and power output. The results indicate that, compared to natural rubber, the structural sheet material increases membrane deformation by 143%, reduces maximum stress by 14% at resonance, and boosts power output by 245%. Additionally, pre-stretching significantly increases the WEC system’s natural frequency, promotes a more uniform stress distribution, which reduces fatigue risk, and increases power output by 54%. These findings highlight the potential of these strategies to enhance FlexWEC efficiency and reliability, offering valuable insights for adapting such systems to complex and variable marine environments.
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SunView 深度解读
该柔性结构材料与预拉伸优化技术对阳光电源海上风电储能系统及海洋能源开发具有重要借鉴价值。研究中的超弹性材料建模、流固耦合仿真方法可应用于PowerTitan储能系统的机械应力分析,优化电池模组在海洋环境下的抗疲劳设计。预拉伸调频策略启发ST系列PCS的谐振频率优化,通过预调控制参数提升动态响应性能。结构化材料降低应力集中14%的设计理念可用于SiC/GaN功率器件的散热结构优化,提升海上充电桩等极端工况下的可靠性。该研究的多物理场耦合分析方法可集成至iSolarCloud平台,增强海洋新能源装备的预测性维护能力。