Application of multivariate statistical methods and inverse geochemical modeling for characterization of groundwater - A case study: Ain Azel plain (Algeria)

被引:169
作者
Belkhiri, Lazhar [1 ]
Boudoukha, Abderrahmane [2 ]
Mouni, Lotfi [3 ]
Baouz, Toufik [4 ]
机构
[1] Univ Hadj Lakhdar Batna, Dept Hydraul, Batna 05000, Algeria
[2] Univ Hadj Lakhdar Batna, Lab Rech Hydraul Appl, Batna 05000, Algeria
[3] Univ Bejaia, Lab Technol Mat & Genie Procedes, Targa Ouzemour 06000, Algeria
[4] Univ Bejaia, Mat Organ Lab, Targa Ouzemour 06000, Algeria
关键词
Hierarchical cluster analysis; Inverse geochemical modeling; PHREEQC; Ain Azel; Algeria; PRINCIPAL-COMPONENTS-ANALYSIS; CHEMICAL EVOLUTION; WATER-QUALITY; AQUIFER; CHEMISTRY; SURFACE; RIVER; IDENTIFICATION; VALLEY;
D O I
10.1016/j.geoderma.2010.08.016
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Multivariate statistical methods and inverse geochemical modeling were jointly used to define the variation and the genetic origin of chemical parameters of groundwater in the Ain Azel plain, Algeria. Interpretation of analytical data shows that the abundance of the major ions is as follows: Ca >= Mg>Na>K and HCO3 >= Cl>SO4. Q-mode hierarchical cluster analysis (HCA) was employed for partitioning the water samples into hydrochemical facies, also known as water groups or water types. Three major water groups resulted from the HCA analysis. The samples from the area were classified as recharge area waters (Group 1: Ca-Mg-HCO3 water), transition zone waters (Group 2: Ca-Mg-Cl-HCO3 water), and discharge area waters (Group 3: Mg-Ca-HCO3-Cl water). Inverse geochemical models of the statistical groups were developed using PHREEQC to elucidate the chemical reactions controlling water chemistry. The inverse geochemical modeling demonstrated that relatively few phases are required to derive water chemistry in the area. In a broad sense, the reactions responsible for the hydrochemical evolution in the area fall into three categories: (1) dissolution of evaporite minerals: (2) precipitation of carbonate minerals; and (3) weathering reactions of silicate minerals. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:390 / 398
页数:9
相关论文
共 53 条
[21]  
Fisher R S., 1997, Hydrogeol J, V10, P455
[22]   Global silicate weathering and CO2 consumption rates deduced from the chemistry of large rivers [J].
Gaillardet, J ;
Dupré, B ;
Louvat, P ;
Allègre, CJ .
CHEMICAL GEOLOGY, 1999, 159 (1-4) :3-30
[23]  
Galcon J, 1967, THESIS GEOLOGICAL SU, P751
[24]  
Garrels R.M., 1967, Researches in Geochemistry, P405
[25]  
Garrels R.M., 1971, Evolution of sedimentary rocks
[26]   Application of cluster analysis to the geochemistry zonation of the estuary waters in the Tinto and Odiel Rivers (Huelva, Spain) [J].
Grande, JA ;
Borrego, J ;
De La Torre, ML ;
Sáinz, A .
ENVIRONMENTAL GEOCHEMISTRY AND HEALTH, 2003, 25 (02) :233-246
[27]  
Guiraud R, 1973, Evolution post-triasique de l'avant-pays de la chaine alpine en Algerie, d'apres l'etude du bassin du Hodna et des regions voisines, P270
[28]   Hydrologic and geologic factors controlling surface and groundwater chemistry in Indian Wells-Owens Valley area, southeastern California, USA [J].
Güler, C ;
Thyne, GD .
JOURNAL OF HYDROLOGY, 2004, 285 (1-4) :177-198
[29]   Evaluation of graphical and multivariate statistical methods for classification of water chemistry data [J].
Güler, C ;
Thyne, GD ;
McCray, JE ;
Turner, AK .
HYDROGEOLOGY JOURNAL, 2002, 10 (04) :455-474
[30]   Temporal evolution of groundwater composition in an alluvial aquifer (Pisuerga River, Spain) by principal component analysis [J].
Helena, B ;
Pardo, R ;
Vega, M ;
Barrado, E ;
Fernandez, JM ;
Fernandez, L .
WATER RESEARCH, 2000, 34 (03) :807-816