揭示复合水翼的部分和同时双锁紧现象:弯曲-扭转耦合的影响

IF 3.5 3区 工程技术
Yun-qing Liu, Biao Huang, Qin Wu, Guo-yu Wang
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引用次数: 0

摘要

自适应复合材料广泛应用于各种液压和船舶应用,如推进器、涡轮机和可再生能源收集装置。研究了不同铺层角碳纤维增强塑料(CFRP)水翼的涡激振动(VIV),重点研究了锁紧现象。开发了一种多场同步测量系统,可同时捕获涡动力学和结构振动。不同铺层角CFRP水翼在不同流速下的振动谱显示出不同的锁紧行为。45°铺层角的水翼表现出“部分锁定”行为,在次频锁定期间出现双锁定峰。相反,- 45°夹角的水翼呈现出“双锁”现象,标志着两个锁事件同时发生。为了阐明其机理,采用动态模态分解(DMD)方法识别了“部分锁定”过程中尾迹中的优势涡结构及其频率特征。这项工作为下一代高性能复合液压设备的振动抑制设计提供了方法论见解和工程范例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Revealing partial and simultaneous double lock-in phenomena in composite hydrofoils: Effects of bending-twist coupling

Adaptive composites are widely employed in various hydraulic and marine applications, such as propulsors, turbines, and renewable energy-harvesting devices. This study investigates vortex-induced vibrations (VIV) in carbon fiber-reinforced plastic (CFRP) hydrofoils with different ply angles, focusing on the lock-in phenomenon. A multi-field synchronous measurement system was developed to simultaneously capture vortex dynamics and structural vibrations. The vibration spectrum under various flow velocities revealed distinct lock-in behaviors for the CFRP hydrofoils with different ply angles. The hydrofoil with 45° ply angle exhibited a “partial lock-in” behavior, characterized by dual lock-in peaks during secondary frequency lock-in. In contrast, the hydrofoil with −45° ply angle displayed a “double lock-in” phenomenon, marked by the simultaneous occurrence of two lock-in events. To elucidate the underlying mechanism, dynamic mode decomposition (DMD) was applied to identify the dominant vortex structures and their frequency characteristics in the wake during “partial lock-in”. This work provides methodological insights and engineering paradigms for the vibration suppression design of next-generation high-performance composite hydraulic equipment.

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来源期刊
自引率
12.00%
发文量
2374
审稿时长
4.6 months
期刊介绍: Journal of Hydrodynamics is devoted to the publication of original theoretical, computational and experimental contributions to the all aspects of hydrodynamics. It covers advances in the naval architecture and ocean engineering, marine and ocean engineering, environmental engineering, water conservancy and hydropower engineering, energy exploration, chemical engineering, biological and biomedical engineering etc.
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