黎巴嫩利塔尼河理化参数变化的多变量时空分析

A. Hayek, S. A. Andaloussi, Nabil Tabaja, J. Toufaily, Evelyne Garnie-Zarli, T. Hamieh
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引用次数: 1

摘要

由于人口快速增长和工农业活动,利塔尼河水质恶化。水质时空变化的多变量分析有助于改进河流水质管理和治理工程。在这项工作中,分析了不同季节不同地点的样品。测定了水体理化参数的时空变化规律。在2018年的12个月中,在位于河流不同区域的3个站点共监测了11个水质参数。采用多元统计方法研究了各参数的时空演化特征及各因素之间的相关性。采用主成分分析(PCA)对干湿期水质变化的责任因子进行了分析。多变量方差分析(MANOVA)也适用于相同的因素,并给出了空间和时间分析的最佳结果。发现杰布-詹宁省存在农业、工业和污水污染的黑点,所有参数均受气候因素影响较大,尤其是温度和降水。受径流影响,TDS、盐度、电导率和所有污染物浓度在雨季增加。其他因素也会影响河流的水质,例如该地区的地理特征和季节性的人类活动,如旅游业。采用PCA统计方法评价各参数之间的相关性。这种相关性不是稳定的,而是在干湿季节之间演变的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multivariate Spatial and Temporal Analysis to Study the Variation of Physico-Chemical Parameters in Litani River, Lebanon
Water quality of Litani River was deteriorated due to rapid population growth and industrial and agricultural activity. Multivariate analysis of spatio-temporal variation of water quality is useful to improve the projects of water quality management and treatment of the river. In this work, analysis of samples from different locations at different seasons was investigated. The spatio-temporal variation of physico-chemical parameters of the water was determined. A total of 11 water quality parameters were monitored over 12 months during 2018 at 3 sites located in different areas of the river. Multivariate statistical techniques were used to study the spatio-temporal evolution of the studied parameters and the correlation between the different factors. Principal Component Analysis (PCA) was applied to the responsible factors for water quality variations during wet and dry periods. The multivariate analysis of variance (MANOVA) was also applied to the same factors and gives the best results for both spatial and temporal analysis. A black point of agricultural, industrial and sewage water pollution was identified in Jeb-Jennine All parameters are highly affected by climate factors, especially temperature and precipitation. TDS, salinity, electrical conductivity and the concentrations of all pollutants increase during wet season affected by the runoff. Other factors can affect the water quality of the river for example geographical features of the region and seasonal human activity like tourism. The correlation between different parameters was evaluated using PCA statistical method. This correlation is not stable, and evolves between wet and dry season.
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