盐沼植被波浪非线性时空变化及产生机制

IF 3.7 1区 地球科学 Q1 LIMNOLOGY
Ying Zhao, Zhong Peng, Qinghua Ye, Yuan Xu, Haisheng Yu, Liangzhi Chen, Zhengbing Wang, Qing He
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引用次数: 0

摘要

波浪非线性在海岸带植被的能量耗散和输沙调节中起关键作用,影响岸线稳定性和基于生态系统的防御。本文分析了长江口45 d的波浪观测数据,包括台风“哈农”期间的波浪观测数据,探讨了长江口泥滩植被样带波浪非线性的空间变异性和潜在机制。波浪偏度和不对称性随潮汐周期的变化而变化,退潮时增加,涨潮时减少。在台风条件下,非线性显著增强,偏度增加高达346%,不对称转向更前倾的波形,两者都与乌塞尔数的增加密切相关。跨样带5个站点的双谱分析揭示了不同的能量传递机制:和相互作用在泥滩中占主导地位,而在植被带中则占主导地位,表明植被引起的非线性波动力学的改变。进一步分析表明,浅滩和植被对波浪非线性的影响相反,分别放大和抑制波浪非线性。Zhao等人(Coastal Engineering 2024; 192:104543)根据实验室数据提出的经验公式与现场数据进行了评估,在极端条件下表现出合理的性能。这些发现提高了对波浪-植被相互作用的机制理解,并支持了基于自然的海岸恢复力和沉积物管理策略的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Spatiotemporal variation and generation mechanism of wave nonlinearity across salt marsh vegetation

Spatiotemporal variation and generation mechanism of wave nonlinearity across salt marsh vegetation

Spatiotemporal variation and generation mechanism of wave nonlinearity across salt marsh vegetation

Wave nonlinearity plays a critical role in modulating energy dissipation and sediment transport in vegetated coastal zones, influencing shoreline stability and ecosystem-based defenses. This study analyzes 45 d of wave observations from the Yangtze Estuary, including data collected during Typhoon Khanun, to investigate its spatial variability and underlying mechanisms of wave nonlinearity across a mudflat–vegetation transect. Wave skewness and asymmetry varied within tidal cycles, increasing at low tide and decreasing at high tide. During typhoon conditions, nonlinearity intensified significantly, with skewness increasing by up to 346% and asymmetry shifting toward more forward-leaning waveforms, both closely linked to elevated Ursell numbers. Bispectral analysis at five stations across the transect revealed distinct energy transfer mechanisms: sum interactions dominated over mudflats, whereas difference interactions prevailed within vegetated zones, indicating vegetation-induced modification of nonlinear wave dynamics. Further analysis shows that shoaling and vegetation exerted opposing influences, amplifying and damping wave nonlinearity, respectively. Empirical formulas proposed by Zhao et al. (Coastal Engineering 2024; 192:104543) from laboratory data were evaluated against the field data, demonstrating reasonable performance under extreme conditions. These findings improve mechanistic understanding of wave–vegetation interactions and support the development of nature-based strategies for coastal resilience and sediment management.

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来源期刊
Limnology and Oceanography
Limnology and Oceanography 地学-海洋学
CiteScore
8.80
自引率
6.70%
发文量
254
审稿时长
3 months
期刊介绍: Limnology and Oceanography (L&O; print ISSN 0024-3590, online ISSN 1939-5590) publishes original articles, including scholarly reviews, about all aspects of limnology and oceanography. The journal''s unifying theme is the understanding of aquatic systems. Submissions are judged on the originality of their data, interpretations, and ideas, and on the degree to which they can be generalized beyond the particular aquatic system examined. Laboratory and modeling studies must demonstrate relevance to field environments; typically this means that they are bolstered by substantial "real-world" data. Few purely theoretical or purely empirical papers are accepted for review.
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