首页> 外文期刊>Hydrobiologia >Biodiversity dynamics of freshwater wetland ecosystems affected by secondary salinisation and seasonal hydrology variation: a model-based study.
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Biodiversity dynamics of freshwater wetland ecosystems affected by secondary salinisation and seasonal hydrology variation: a model-based study.

机译:受次生盐渍化和季节性水文学变化影响的淡水湿地生态系统的生物多样性动态:基于模型的研究。

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摘要

Freshwater wetlands worldwide are under threat from secondary salinisation and climate change. Given that many freshwater wetlands naturally have highly variable hydrology, it is important to understand the combined effects of salinity and water regime on wetland biodiversity. Here a mathematical model has been developed to explore the biodiversity dynamics of freshwater wetland ecosystems affected by secondary salinisation and seasonal hydrology variation. The model shows that seasonal hydrological change can drive the wetland ecosystem into a stable oscillatory state of biodiversity, with the same period as the wetting and drying cycle. The initial condition of a wetland mediates the ecological response of the wetland ecosystem to salinity and seasonal variability. There are two manifestations of stability that occur in relation to wetland biodiversity: monostability and bistability. In model simulations, some wetland ecosystems may respond to the effects of seasonal change quickly, while others may do so more slowly. In 'slow response' wetlands, seasonal variability has a weak impact on the ecosystem properties of stability, resilience, sensitivity and the species richness-mean salinity relationship. In contrast, 'fast response' wetlands are seasonally controlled heavily. Seasonal variability can play a critical role in determining ecosystem properties. Changes in the strength of seasonality can induce the transition between monostability and bistability. Seasonal variability may also reduce wetland resilience, exacerbating the risk of secondary salinisation. On the other hand, seasonal variability may provide opportunities for the restoration of salinised wetlands by increasing their sensitivity to management actions and facilitating recovery processes. Model simulations show that the response of the stable biodiversity oscillation to changing mean salinity is dependent on seasonality strength (primarily for fast response wetlands) and other wetland conditions. Generally, there are two types of wetland responses to changes in mean salinity: type 1 wetlands exhibit a graded response of species richness (a surrogate for biodiversity), whereas a hysteretic response occurs in type 2 wetlands. Species diversity displays critical behaviour: regime shifts in diversity occur at the thresholds of mean salinity, strength of seasonality or initial species diversity. The predictions are consistent with previously-published field observations in salinised freshwater wetlands.
机译:全世界的淡水湿地正遭受二次盐碱化和气候变化的威胁。鉴于许多淡水湿地自然具有高度可变的水文状况,因此重要的是要了解盐度和水分状况对湿地生物多样性的综合影响。在这里,已经开发了一个数学模型来探索受次生盐渍化和季节性水文学变化影响的淡水湿地生态系统的生物多样性动态。该模型表明,季节性的水文变化可以将湿地生态系统带入一个稳定的生物多样性振荡状态,与湿润和干燥的周期相同。湿地的初始条件介导了湿地生态系统对盐度和季节变化的生态响应。与湿地生物多样性有关的稳定性有两种表现形式:单稳态和双稳态。在模型模拟中,某些湿地生态系统可能会迅速响应季节变化的影响,而其他湿地生态系统可能会更缓慢地做出响应。在“反应迟缓”的湿地中,季节变化对生态系统的稳定性,复原力,敏感性和物种丰富度-平均盐度关系的影响很小。相反,“快速反应”湿地在季节性上受到严格控制。季节变化可在确定生态系统特性方面发挥关键作用。季节性强度的变化会导致单稳性和双稳性之间的转换。季节变化还可能降低湿地的适应能力,加剧次生盐渍化的风险。另一方面,季节性变化可能通过提高盐碱化湿地对管理行动的敏感性并促进恢复过程而为盐碱化湿地的恢复提供机会。模型模拟表明,稳定的生物多样性振荡对变化的平均盐度的响应取决于季节性强度(主要针对快速响应的湿地)和其他湿地条件。通常,对平均盐度变化有两种类型的湿地响应:1型湿地表现出物种丰富度的分级响应(生物多样性的替代物),而2型湿地则出现滞后响应。物种多样性表现出关键的行为:多样性的制度转变发生在平均盐度,季节性强度或初始物种多样性的阈值处。该预测与盐碱化淡水湿地中先前发表的实地观察结果一致。

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