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Linking Biological Integrity and Watershed Models to Assess the Impacts of Historical Land Use and Climate Changes on Stream Health

机译:将生物完整性和分水岭模型联系起来,以评估历史土地利用和气候变化对河流健康的影响

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摘要

Land use change and other human disturbances have significant impacts on physicochemical and biological conditions of stream systems. Meanwhile, linking these disturbances with hydrology and water quality conditions is challenged due to the lack of high-resolution datasets and the selection of modeling techniques that can adequately deal with the complex and nonlinear relationships of natural systems. This study addresses the above concerns by employing a watershed model to obtain stream flow and water quality data and fill a critical gap in data collection. The data were then used to estimate fish index of biological integrity (IBI) within the Saginaw Bay basin in Michigan. Three methods were used in connecting hydrology and water quality variables to fish measures including stepwise linear regression, partial least squares regression, and fuzzy logic. The IBI predictive model developed using fuzzy logic showed the best performance with the R2 — 0.48. The variables that identified as most correlated to IBI were average annual flow, average annual organic phosphorus, average seasonal nitrite, average seasonal nitrate, and stream gradient. Next, the predictions were extended to pre-settlement (mid-1800s) land use and climate conditions. Results showed overall significantly higher IBI scores under the pre-settlement land use scenario for the entire watershed. However, at the fish sampling locations, there was no significant difference in IBI. Results also showed that including historical climate data have strong influences on stream flow and water quality measures that interactively affect stream health; therefore, should be considered in developing baseline ecological conditions.
机译:土地用途的变化和其他人为干扰对河流系统的物理化学和生物状况具有重大影响。同时,由于缺乏高分辨率数据集以及无法充分处理自然系统复杂和非线性关系的建模技术的选择,将这些干扰与水文学和水质状况联系起来面临挑战。这项研究通过采用分水岭模型来获取河流流量和水质数据并填补数据收集中的关键空白,从而解决了上述问题。然后将数据用于估算密歇根州萨吉诺湾盆地内鱼类的生物完整性指数(IBI)。使用三种方法将水文学和水质变量与鱼类测度联系起来,包括逐步线性回归,偏最小二乘回归和模糊逻辑。使用模糊逻辑开发的IBI预测模型显示最佳性能,R2为0.48。与IBI最相关的变量是平均年流量,平均年有机磷,平均季节亚硝酸盐,平均季节硝酸盐和水流梯度。接下来,将预测范围扩展到结算前(1800年代中期)的土地利用和气候条件。结果表明,在整个流域的解决前土地利用情景下,IBI分数总体上显着较高。但是,在鱼的采样地点,IBI没有显着差异。结果还表明,包括历史气候数据对河流流量和水质措施产生重大影响,这些措施相互作用地影响河流健康;因此,在制定基准生态条件时应予以考虑。

著录项

  • 来源
    《Environmental Management》 |2013年第6期|1147-1163|共17页
  • 作者单位

    Department of Plant, Soil, and Microbial Sciences, Michigan State University, 1066 Bogue Street, Room A286, East Lansing, MI 48824, USA;

    Department of Plant, Soil, and Microbial Sciences, Michigan State University, 1066 Bogue Street, Room A286, East Lansing, MI 48824, USA,Department of Biosystems and Agricultural Engineering, Michigan State University, 524 S. Shaw Lane, Room 225, East Lansing, MI 48824, USA;

    Department of Natural Resources, Institute for Fisheries Research, University of Michigan, University, Ann Arbor, MI 48109, USA;

    The Nature Conservancy, Michigan Field Office, 101 E,Grand River Ave., Lansing, MI 48906, USA;

    Department of Biosystems and Agricultural Engineering, Michigan State University, 524 S. Shaw Lane, Room 225, East Lansing, MI 48824, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    index of biological integrity; swat; ecological health; pre-settlement; fuzzy logic; waterquality;

    机译:生物完整性指数;粪便;生态健康;沉降前;模糊逻辑;水质;
  • 入库时间 2022-08-17 13:27:45

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