Advanced Search

Indexed by SCI、CA、РЖ、PA、CSA、ZR、etc .

Volume 25 Issue 6
Dec 2014
Turn off MathJax
Article Contents
Fengshan Ma, Aihua Wei, Qinghai Deng, Haijun Zhao. Hydrochemical Characteristics and the Suitability of Groundwater in the Coastal Region of Tangshan, China. Journal of Earth Science, 2014, 25(6): 1067-1075. doi: 10.1007/s12583-014-0492-9
Citation: Fengshan Ma, Aihua Wei, Qinghai Deng, Haijun Zhao. Hydrochemical Characteristics and the Suitability of Groundwater in the Coastal Region of Tangshan, China. Journal of Earth Science, 2014, 25(6): 1067-1075. doi: 10.1007/s12583-014-0492-9

Hydrochemical Characteristics and the Suitability of Groundwater in the Coastal Region of Tangshan, China

doi: 10.1007/s12583-014-0492-9
More Information
  • Corresponding author: Aihua Wei, aihuawei411@163.com
  • Received Date: 15 Dec 2013
  • Accepted Date: 18 Mar 2014
  • Publish Date: 01 Dec 2014
  • Through collecting groundwater samples from the coastal region of Tangshan, China, the hydrochemical processes that affect the chemical composition of groundwater and the quality of resources were analyzed. Chemical constituents, factor analysis, and a graphic method were employed in this research. The results show that human activities obviously affect fresh groundwater. The deep groundwater distributed in the southern part of the region is severely affected by salinization, and the shallow groundwater in the north is also beginning to show the same deterioration. The chemical concentrations of the deep groundwater depend largely upon the water-rock interaction, the mixing of saline water and the ion exchange processes. With the exception of sample C-33, all the groundwater samples in the study area are suitable for drinking. Tests show that roughly half of the deep groundwater samples have at least one water quality index indicating that it is chemically doubtful or unsuitable for irrigation. Therefore, it is concluded that deep groundwater is becoming an unacceptable resource to irrigate areas located near the coastline because the groundwater quality in the study area is exhibiting signs of degradation. This study's findings contribute to a better understanding of groundwater resources in order to support regional management and protection.

     

  • loading
  • Adams, S., Titus, R., Pietersenb, K., et al., 2001. Hydrochemical Characteristics of Aquifers near Sutherland in the Western Karoo, South Africa. Journal of Hydrology, 241: 91–103. doi: 10.1016/S0022-1694(00)00370-X
    Aghazadeh, N., Mogaddam, A. A., 2011. Investigation of Hydrochemical Characteristics of Groundwater in the Harzandat Aquifer, Northwest of Iran. Environmental Monitoring and Assessment, 176: 183–195. doi: 10.1007/s10661-010-1575-4
    Andrés, M., Aguilar, M., Hernández, J. R., et al., 2010. Origin of Salinity in Groundwater of Neighboring Villages of the Cerro Prieto Geothermal Field. Water Air and Soil Pollution, 213: 389–400. doi: 10.1007/s11270-010-0393-1
    Banjak, D., Nikolić, J., 2012. Hydrochemical Characteristics and Water Quality of the Mušnica River Catchment, Bosnia and Herzegovina. Hydrological Sciences Journal-Journal des Sciences Hydrologiques, 57(3): 562–575. doi: 10.1080/02626667.2012.666634
    Banoeng-Yakubo, B., Yidana, S. M., Nti, E., 2009. Hydrochemical Analysis of Groundwater Using Multivariate Statistical Methods—The Volta Region, Ghana. KSCE Journal of Civil Engineering, 13(1): 55–63. doi: 10.1007/s12205-009-0055-2
    Bar-Tal, A., Feigenbaum, S., Sparks, D. L., 1991. Potassiumsalinity Interactions in Irrigated Corn. Irrigation Science, 12(1): 27–35. doi: 10.1007/BF00190706
    Dawdy, D. R., Feth, J. H., 1967. Application of Factor Analysis in Study of Chemistry of Groundwater Quality, Mojaveriver Valley, California. Water Resources Research, 3(21): 505–510. doi: 10.1029/WR003i002p00505
    Güler, C., Thyne, G. D., McCray, J. E., et al., 2002. Evaluation of Graphical and Multivariate Statistical Methods for Classification of Water Chemistry Data. Hydrogeology Journal, 10(4): 455–474. doi: 10.1007/s10040-002-0196-6
    Helstrup, T., Jørgensen, N. O., Yakubo, B. B., 2007. Investigation of Hydrochemical Characteristics of Groundwater from the Cretaceous-Eocene Limestone Aquifer in Southern Ghana and Southern Togo Using Hierarchical Cluster Analysis. Hydrogeology Journal, 15(5): 977–989. doi: 10.1007/s10040-007-0165-1
    Jalali, M., 2007. Salinization of Groundwater in Arid and Semi-Arid Zones: An Example from Tajarak, Western Iran. Environmental Geology, 52(6): 1133–1149. doi: 10.1007/s00254-006-0551-3
    Kim, J. H., Yum, B. W., Kim, R. H., et al., 2003. Application of Cluster Analysis for the Hydrogeochemical Factors of Saline Groundwater in Kimje, Korea. Geosciences Journal, 7(4): 313–322. doi: 10.1007/BF02919561
    Liu, C. W., Jang, C. S., Chen, C. P., et al., 2008. Characterization of Groundwater Quality in Kinmen Island Using Multivariate Analysis and Geochemical Modelling. Hydrological Processes, 22(3): 376–383. doi: 10.1002/hyp.6606
    Liu, F. T., Fang, C., Qin, Y. F., et al., 2011. Study on the Groundwater Hydrochemical Formation Process in Caofeidian Area, Hebei Province. Geological Survey and Research, 34(3): 220–227. doi: 10.3969/j.issn.1672-4135.2011.03.010 (in Chinese with English Abstract)
    Love, D., Hallbauer, D., Amos, A., et al., 2004. Factor Analysis as a Tool in Groundwater Quality Management: Two Southern African Case Studies. Physics and Chemistry of the Earth, 29: 1135–1143. doi: 10.1016/j.pce.2004.09.027
    Ma, F. S., Wei, A. H., Han, Z. T., et al., 2011. The Characteristics and Causes of the Land Subsidence in Tanggu Based on the GPS Survey System and Numerical Simulation. Acta Geologica Sinica, 85(6): 1495–1507. doi: 10.1111/j.1755-6724.2011.00601.x
    Matiatos, I., Alexopoulos, A., 2011. Application of Stable Isotopes and Hydrochemical Analysis in Groundwater Aquifers of Argolis Peninsula (Greece). Isotopes in Environmental and Health Studies, 47(4): 512–529. doi: 10.1080/10256016.2011.617883
    Mondal, N. C., Singh, V. P., Singh, V. S., et al., 2010. Determining the Interaction between Groundwater and Saline Water through Groundwater Major Ions Chemistry. Journal of Hydrology, 388: 100–111. doi: 10.1016/j.jhydrol.2010.04.032
    Pang, Z. H., Yuan, L. J., Huang, T. M., et al., 2013. Impacts of Human Activities on the Occurrence of Groundwater Nitrate in an Alluvial Plain: A Multiple Isotopic Tracers Approach. Journal of Earth Science, 24(1): 111–124. doi: 10.1007/s12583-013-0310-9
    Ravikumar, P., Somashekar, R. K., 2001. Geochemistry of Groundwater, Markandeya River Basin, Belgaum District, Karnataka State, India. Chinese Journal of Chemistry, 30: 51–74. doi: 10.1007/s11631-011-0486-6
    Reghunath, R., Sreedhara Murthy, T. R., Raghavan, B. R., 2002. The Utility of Multivariate Statistical Techniques in Hydrogeochemical Studies: An Example from Karnataka, India. Water Research, 36(10): 2437–2442. doi: 10.1016/S0043-1354(01)00490-0
    Sanford, R. F., Pierson, C. T., Crovelli, R. A., 1993. An Objective Replacement Method for Censored Geochemical Data. Mathematical Geology, 25(1): 59–80. doi: 10.1007/BF00890676
    Sappa, G., Ergul, S., Ferranti, F., 2014. Water Quality Assessment of Carbonate Aquifers in Southern Latium Region, Central Italy: A Case Study for Irrigation and Drinking Purposes. Journal of Applied Water Science, 4: 115–128. doi: 10.1007/s13201-013-0135-9
    Shen, Z. L., Zhu, W. H., Zhong, Z. S., 1999. The Chemical Composition of Groundwater. In: Hydrogeochemistry Foundation. Geological Publishing House, Beijing. 16–26 (in Chinese)
    Shi, J. S., Ma, R., Liu, J. C., et al., 2013. Suitability Assessment of Deep Groundwater for Drinking, Irrigation and Industrial Purposes in Jiaozuo City, Henan Province, North China. Groundwater, 58: 3098–3110. doi: 10.1007/s11434-013-5952-6
    Subramani, T., Elango, L., Damodarasamy, S. R., 2005. Groundwater Quality and Its Suitability for Drinking and Agricultural Use in Chithar River Basin, Tamil Nadu, India. Environmental Geology, 47: 1099–1110. doi: 10.1007/s00254-005-1243-0
    Tian, X. Z., Shan, Q., Song, L. Z., 2011. Analysis of Water Chemistry Characteristics and Evolution Trends of Groundwater in Tangshan Costal Areas. South-to-North Water Diversion and Water Science & Technology, 9(1): 139–144. doi: 10.3724/SP.J.1201.2011.01139 (in Chinese with English Abstract)
    Wang, D., Li, C. C., Ai, L. Z., 2006. The Seawater Intrusion and the Prevention Measures in Tangshan Coastal Area. Resources & Industries, 8(3): 81–83 (in Chinese with English Abstract)
    Wang, H. L., Li, X. Y., Xie, Y., 2011. Hydrochemical Evaluation of Surface Water Quality and Pollution Source Apportionment in the Luan River Basin, China. Water Science & Technology, 64(10): 2119–2125. doi: 10.2166/wst.2011.794
    Yang, M., Fei, Y. H., Ju, Y. W., et al., 2012. Health Risk Assessment of Groundwater Pollution—A Case Study of Typical City in North China Plain. Journal of Earth Science, 23(3): 335–348. doi: 10.1007/s12583-012-0260-7
    Zhang, W. J., Sun, X. M., Liu, F. T., et al., 2010. Application of R-Mode Analysis on Chemical Characters and Influential Factors of Quaternary Groundwater in Caofeidian Area. Safety and Environmental Engineering, 17(1): 1–5 (in Chinese with English Abstract)
    Zuo, W. Z., Dong, J. Y., 2006. The Environmental Geological Problems of the Development of Coastal Area in Tangshan. Resources & Industries, 8(1): 82–85. doi: 10.3969/j.issn.1673-2464.2006.01.025 (in Chinese with English Abstract)
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(5)  / Tables(4)

    Article Metrics

    Article views(723) PDF downloads(268) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return