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湿地植被的时空生物力学特性:盐分、淹没和季节性的影响。

Biomechanical properties of marsh vegetation in space and time: effects of salinity, inundation and seasonality.

机构信息

Institute of Environmental and Ecological Engineering, Guangdong University of Technology, Guangzhou, China.

Department of Estuarine and Delta Systems, Royal Netherlands Institute for Sea Research and Utrecht University, Yerseke, The Netherlands.

出版信息

Ann Bot. 2020 Feb 3;125(2):277-290. doi: 10.1093/aob/mcz063.

Abstract

BACKGROUND AND AIMS

Over the last decade, the importance of plant biomechanical properties in shaping wave dissipation efficiency of marsh vegetation has gained growing attention. Here we provide the first analyses of how biomechanical stem properties vary with seasons and along environmental gradients in coastal and estuarine marshes, which is essential to enable accurate assessments of flood defence value of marsh vegetation.

METHODS

We quantified both spatial and seasonal variation in stem flexibility and breakability for a variety of common marsh vegetation (Spartina anglica, Scirpus maritimus, Phragmites australis, Elymus athericus, Suaeda maritima, Aster tripolium, Saliconia procumbens) distributed along both salinity and inundation gradients.

KEY RESULTS

Increasing salinity tends to induce a shift from species with tall shoots, high flexural stiffness (stem resistance to bending; N mm2) towards species with shorter and more flexible stems. The same trend was found with increasing inundation stress (i.e. decreasing elevation) from the higher part of the low marsh towards the pioneer zone. Stem breakability (the force required to break or fold a stem, N) followed the same pattern of stem stiffness due to the positive relationship between flexural strength (material resistance to flexure, N mm-2) and Young's bending modulus (material resistance to bending; N mm-2). Shifts in stem stiffness and breakability at the community level were found to relate positively to the variation in canopy height between species, highlighting the concurrence of changes in morphological and biomechanical traits under environmental changes. Compared to the differences between species, within-species variability between sampling locations and between seasons is generally minor.

CONCLUSIONS

Our findings imply that environmental changes may significantly modify wave attenuation capacity of coastal vegetation by inducing species shifts. This emphasizes the need to understand the response of community composition to climate change and human disturbances, when using nature-based flood protection by coastal vegetation as an adaptive response to global change.

摘要

背景与目的

在过去的十年中,植物生物力学特性在塑造沼泽植被波消散效率方面的重要性引起了越来越多的关注。在这里,我们首次分析了沿海和河口沼泽中生物力学茎特性如何随季节和环境梯度变化,这对于准确评估沼泽植被的防洪价值至关重要。

方法

我们量化了各种常见沼泽植被(盐角草、海三棱藨草、芦苇、赖草、滨藜、蒲公英、獐茅)的茎柔韧性和易断性的空间和季节性变化,这些植被分布在盐度和淹没梯度上。

主要结果

盐度的增加往往会导致从具有高 Shoot、高弯曲刚度(茎对弯曲的抵抗力;N mm2)的物种向具有较短和更灵活茎的物种转变。随着从低沼泽高处向先锋区的淹没压力(即海拔降低)的增加,也发现了同样的趋势。由于弯曲强度(材料对弯曲的抵抗力,N mm-2)和杨氏弯曲模量(材料对弯曲的抵抗力;N mm-2)之间的正相关关系,茎易断性(折断或折叠茎所需的力,N)遵循与茎刚度相同的模式。在群落水平上,茎刚度和易断性的变化与物种之间冠层高度的变化呈正相关,这突出了在环境变化下形态和生物力学特征变化的一致性。与物种之间的差异相比,采样地点之间和季节之间的种内变异性通常较小。

结论

我们的研究结果表明,环境变化可能通过诱导物种变化而显著改变沿海植被的波衰减能力。这强调了在利用沿海植被作为对全球变化的自适应反应的自然防洪时,需要了解群落组成对气候变化和人为干扰的响应。

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