Using Self-Organizing Map and Multivariate Statistical Methods for Groundwater Quality Assessment in the Urban Area of Linyi City, China

Author:

Liu Shiqiang1,Li Haibo2ORCID,Yang Jing3,Ma Mingqiang1,Shang Jiale2,Tang Zhonghua2,Liu Geng4

Affiliation:

1. Shandong Zhengyuan Construction Engineering Co., Ltd., Linyi 276006, China

2. School of Environmental Studies, China University of Geosciences, Wuhan 430078, China

3. College of Water Resources and Architectural Engineering, Northwest A&F University, Yangling, Xianyang 712100, China

4. Beijing Delhi Technology Group Co., Ltd., Beijing 110026, China

Abstract

Groundwater holds an important role in the water supply in Linyi city, China. Investigating the hydrochemical characteristics of groundwater, and revealing the factors governing groundwater geochemistry, is a primary step for ensuring the safe and rational exploitation of groundwater resources. This study used a self-organizing map (SOM) and multivariate statistical methods to assess groundwater quality in the urban area of Linyi city. Based on the hydrochemical dataset consisting of nine parameters (i.e., pH, Ca2+, Mg2+, Na+, K+, HCO3−, Cl−, SO42−, and NO3−) from 89 groundwater samples, the SOM was first applied to obtain the weight vectors of the output nodes. Hierarchical cluster analysis (HCA) was used for organizing the nodes into four clusters. The node cluster indices were then remapped to the groundwater samples according to the winner node for each sample. The hydrochemical characteristics and factors controlling the groundwater geochemistry of the four clusters were analyzed using principal component analysis (PCA) and graphical methods including Piper and Gibbs diagrams, as well as binary plots of the major ions in groundwater. Results indicated that groundwater geochemistry in this area is primarily governed by water–rock interactions, such as the dissolution of halite, calcite, and gypsum, along with the influence of municipal sewage and the degradation of organic matter. This study demonstrates that the integration of an SOM and multivariate statistical methods improves the understanding of groundwater geochemistry and hydrochemical evolution in complex groundwater flow systems impacted by utilization.

Funder

Urban Geological Survey of Linyi City in Shandong Province

Northwest A&F University

Key Laboratory of Urban Geology and Underground Space Resources, Ministry of Natural Resources

Publisher

MDPI AG

Subject

Water Science and Technology,Aquatic Science,Geography, Planning and Development,Biochemistry

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