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运用多元统计分析解读韩国荣山江水库的季节性水质变化

Interpretation of seasonal water quality variation in the Yeongsan Reservoir, Korea using multivariate statistical analyses.

作者信息

Cho Kyung Hwa, Park Yongeun, Kang Joo-Hyon, Ki Seo Jin, Cha Sungmin, Lee Seung Won, Kim Joon Ha

机构信息

Department of Environmental Science and Engineering, Gwangju Institute of Science and Technology (GIST), Buk-gu, Gwangju 500-712, South Korea.

出版信息

Water Sci Technol. 2009;59(11):2219-26. doi: 10.2166/wst.2009.248.

Abstract

The Yeongsan (YS) Reservoir is an estuarine reservoir which provides surrounding areas with public goods, such as water supply for agricultural and industrial areas and flood control. Beneficial uses of the YS Reservoir, however, are recently threatened by enriched non-point and point source inputs. A series of multivariate statistical approaches including principal component analysis (PCA) were applied to extract significant characteristics contained in a large suite of water quality data (18 variables monthly recorded for 5 years); thereby to provide the important phenomenal information for establishing effective water resource management plans for the YS Reservoir. The PCA results identified the most important five principal components (PCs), explaining 71% of total variance of the original data set. The five PCs were interpreted as hydro-meteorological effect, nitrogen loading, phosphorus loading, primary production of phytoplankton, and fecal indicator bacteria (FIB) loading. Furthermore, hydro-meteorological effect and nitrogen loading could be characterized by a yearly periodicity whereas FIB loading showed an increasing trend with respect to time. The study results presented here might be useful to establish preliminary strategies for abating water quality degradation in the YS Reservoir.

摘要

荣山(YS)水库是一座河口水库,为周边地区提供公共产品,如为农业和工业区供水以及防洪。然而,YS水库的有益用途最近受到非点源和点源输入增加的威胁。应用了一系列多元统计方法,包括主成分分析(PCA),以提取大量水质数据(5年每月记录18个变量)中包含的显著特征;从而为制定YS水库有效的水资源管理计划提供重要的现象信息。PCA结果确定了最重要的五个主成分(PC),解释了原始数据集总方差的71%。这五个PC被解释为水文气象效应、氮负荷、磷负荷、浮游植物的初级生产和粪便指示菌(FIB)负荷。此外,水文气象效应和氮负荷具有年度周期性特征,而FIB负荷随时间呈上升趋势。这里呈现的研究结果可能有助于制定缓解YS水库水质退化的初步策略。

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