Skip to main content
Log in

Inorganic Parameters as Water Quality Indicators in Acidic Groundwater in a Tropical Region – Brasilia-DF (Brazil)

  • Published:
Water, Air, & Soil Pollution Aims and scope Submit manuscript

Abstract

In Brazilian Tropical Cerrado Region, reactions related to parental-material breakdown and oxisols genesis strongly affect the groundwater chemical characteristics. These reactions are responsible for the low water pH values, the soil charge balance, and the re-equilibrium of dissolved inorganic carbon species. Brasilia, the capital of Brazil, lies in the Distrito Federal, in the central part of the Brazilian Cerrado Region and has been experiencing an intense urban development during the last 15 years. Many town-house complexes have been built without proper water supply or wastewater disposal conditions. In this work, we discuss the adequacy of traditional ground waters geochemical classification models applied to the most exploited aquifers in DF. Forty groundwater samples were collected and pH, conductivity and total dissolved solids were determined in the field. Na, K, Ca, Mg, Fe, Al, Cu, Cd, Cr Mn e Zn were determined by Inductively Coupled Plasma Atomic Emission Spectrometry and Atomic Absorption Spectrophotometry. We identify inorganic indicators of human interference on the quality of these waters and also suggest a new mean of interpretation of dissolved inorganic elements based on statistic treatment of multivariate data. It is revealed a particular geochemical feature concerning to the alkali and the earth alkali metals concentrations, and a typical trace-element behaviour, closely related to the human activities and to the geological-bearing material characteristics. For all of the samples supposed to be altered by any kind of human activity, the physico-chemical parameters were lower than the standards established by the water quality legal system.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • American Public Health Association: 1981, ‘Standard methods, for examination of water and waste-water’. 18a Ed, N.Y.

  • Appleyard, S.: 1995, ‘The impact of urban development of recharge and groundwater quality in a coastal aquifer near Perth, Western Australia’, Hydrology Journal 3(2), 65.

    Google Scholar 

  • Barber, C., Davis, G. B., Thirrin, J., Bates, L., Patterson, M. B., Pribac, F., Gibbs, R., Power, T., Briegel, D., Lambert, M. and Hosking, J.: 1991, ‘Final report for project on assessment of the impact of pollutants on groundwater beneath urban areas’, July 1989 to June 1991, CSIRO DWR Report No 91/22.

  • Barros, J. G. C.: 1987, ‘Inventário hidrogeológico do Distrito Federal’, Brasília: CAESB, v. 4.

  • Boudot, J. P., Maitat, O., Merlet, D. and Rouiller, J.: 1996, ‘Occurrence of non-monomeric species of aluminium in undersaturated soil and surface waters: consequences for the determination of mineral saturation indices’, J. Hydrology 177, 47–63.

    Article  CAS  Google Scholar 

  • Brinkmann, R.: 1970, ‘Ferrolysis, a hydromorphic soil forming process’, Geoderma 3, 199–206.

    Article  Google Scholar 

  • Campos, J. E. G. and Freitas-Silva, F. H.: 1998., ‘Inventário Hidrogeológico e dos Recursos Hídricos Superficiais do Distrito Federal – Caracterização Hidrogeológica’. Relatório Técnico Parcial n. 3. Universidade de Brasília – UnB, Instituto de Ecologia e Meio Ambiente do Distrito Federal – IEMA/DF.

  • Campos, J. E. G. and Tröger, U.: 2000, ‘Groundwater occurrence in hard rocks in Federal District of Brasília – A sustainable supply?’ in: Sililo et al. (eds), Groundwater: Past Achievements and Future Challenges. Rotterdam.Balkema, pp. 109–113.

  • Canter, L. W., Knox, R. C. and Fairchild, D. M.: 1987, ‘Groundwater Quality Protection’, Lewis Publishers, Chelsea, EUA.

    Google Scholar 

  • Carvalho, A. R., Schlittler, F. H. M. and Tornisielo, V. L.: 2000, ‘Influence of cattle ranching and agricultural activities on physical chemical parameters of water’, Química Nova 23(5), 618–622.

    Article  CAS  Google Scholar 

  • Ceron, J. C., Jimenez-Espinosa, R. and Pulido-Bosch, A.: 2000, ‘Numerical analysis of hydrogeochemical data: A case study (Alto Guadalentin, southeast Spain)’, Applied Geochemistry 15, 1053–1067.

    Article  CAS  Google Scholar 

  • Chadha, D. K.: 1999, ‘A proposed new diagram for geochemical classification of natural waters and interpretation of chemical data’, Hydrogeology Journal 7(5), 431–439.

    Article  Google Scholar 

  • Christian, B.: 2000, ‘A regional perspective on groundwater’, State of the Environment – Water pp. 86–88.

  • Conselho Nacional Do Meio Ambiente, CONAMA: 1986, ‘Resolução CONAMA 020’, D.O.U., 30/07/86.

  • Chaussidon J. and Pedro, G.: 1979, ‘Role de l'état hydrique du systèm poreux sur l'évolution du milieu’. Réalité de l'altération dans lês systèmes à faible teneur en eau. Science du sol 2(3), 223–235.

    Google Scholar 

  • Curi, N. and Franzmeir: 1987, ‘Effect of parent rocks on chemical and mineralogical properties of some oxisols in Brazil’, Soil. Sci. Soc. Am. J. 51, 153–158.

    Article  CAS  Google Scholar 

  • Davis, J. C.: 1986, ‘Statistics and Data Analysis in Geology’, New York: John Willey & Sons, Inc.

    Google Scholar 

  • Dillon, P. J.: 1997, ‘Groundwater pollution by sanitation on tropical islands’, International Hydrological Programme. IHP V, Technical Documents in Hydrology, No 6, UNESCO Project 6.1, SC-97/WS/8, Paris, 34pp.

  • Eisen, C. and Anderson, M. P.: 1979, ‘The effects of urbanization on ground-water quality – a case study’, Ground Water 17, 456–462.

    Article  CAS  Google Scholar 

  • Espiau, P. and Pedro, G.: 1983, ‘Etude du phénomène d'échange et mise en évidence du role catalytique des minéraux argileux’, Science du Sol 3(4), 173–185.

    Google Scholar 

  • Ferreira, M. M., Fernandes, B. and Curi, N.: 1999, ‘Influência da mineralogia da fração argila nas propriedades físicas de latossolos da Região Sudeste do Brasil’, Ver. R. Brás. Ci, Solo 23, 515–524.

    CAS  Google Scholar 

  • Fonseca, E. C., Silva, E. F., Barradas, J. M., Reis, A.P., Patinha, C. and Moreno, F.: 1996, ‘Impacto ambiental e actividade antrópica: exemplos temáticos’, Geociências, Rev. Univ. Aveiro 10(2), 129–141.

    Google Scholar 

  • Holmgren, G. G. S., Meyer, M. W., Chaney, R. L. and Daniels, R. B.: 1993, ‘Cadimium, lead, zinc, cooper and nickel in agricultural soil of the USA’, J. Env. Qual. 22, 335–348.

    Article  CAS  Google Scholar 

  • Hong-Il, A. and Hyo-Taek, C.: 1999, ‘Assessment of groundwater contamination using geographic information systems’, Environmental Geochemistry and Health 21, 273–298.

    Article  Google Scholar 

  • Kelly, W. R.: 2001, ‘Temporal changes in shallow groundwater quality in northeastern Illinois: Preliminary results’, Illinois Groundwater Conservation – Proceedings, pp. 1–18.

  • Laaksoharju, M., Skårman, C. and Skårman, E.: 1999, ‘Multivariate mixing and mass balance (M3) calculations, a new tool for decoding hydrogeochemical information’, Applied Geochemistry 14, 861–871.

    Article  CAS  Google Scholar 

  • Lerner, D. N. and Tellam, J. H.: 1992, ‘The protection of urban groundwater from pollution’, Journal of the Institute of Water and Environmental Management 6, 28–33.

    Article  CAS  Google Scholar 

  • Lerner, D. N., Yang, Y., Barrett, M. H. and Tellam, J. H.: 1999, ‘Loadings of Non-agricultural Nitrogen in Urban Groundwater’, IAHS Publica tion (Int. Assoc. of Hydrol. Sci. 259, pp. 117.

    CAS  Google Scholar 

  • Macedo, J. and Bryant, R. B.: 1987, ‘Morphology, mineralogy, and gênesis of a hydrosequence of oxisols in Brazil’, Soil Science Society of America Journal 51(3), 690–698.

    Article  CAS  Google Scholar 

  • Madeira-Neto, J. S., Macedo, J. and Azevedo, L. G.: 1982, ‘Brazilian problem soils: distribution, characteristics and utilization’, Tropical agriculture research Series. No. 15. Tropical Agriculture Research Centre, Ministry of Agriculture, Forestry and Fisheries. Japan, pp. 305.

  • Marcano-Martinez, E. and McBride, M. B.: 1989, ‘Calcium and sulphate retention by two oxisols of Brazilian cerrado’, Soil Science Society American Journal 53, 1040–1045.

    Article  Google Scholar 

  • Market, B.: 1998, Environmental Sampling for Trace Analysis, VCH.

  • Monteiro, M. P.: 1997, ‘Estudos de Percolação e dispersão de efluentes de fossas sépticas no solo’. Dissertação de mestrado em Tecnologia Ambiental e Recursos Hídricos, Departamento de Engenharia Civil, Faculdade de Tecnologia, Universidade de Brasília.

  • Pacheco, F. A. L.: 1998, ‘Finding the number of natural clusters in groundwater data sets using the concept of equivalence class’, Computers & Geosciences 24(1), 7–15.

    Article  CAS  Google Scholar 

  • Pacheco, F. A. L. and van der Weijden, C. H.: 1996, ‘Contributions of water-rock interactions to the composition of groundwater in areas with sizeable anthropogenic input. A case study of the waters of the Fundão area, central Portugal’, Water Resources Research 32(12), 3553–3570.

    Article  CAS  Google Scholar 

  • Otto, W. R.: 1978, Environmental indices: theory and practice, Ann Arbour Science Publ. Michigan.

    Google Scholar 

  • Rahman, B., Rahman, L. and Eusufzai, M. M. K.: 2001, ‘Ground water quality monitoring network design: an overview’, Conference paper, in: Antonio Alves Soares and Helvecio Mattana Saturnino (eds.), Competitive use and conservation strategies for water and natural resources. pp. 39–43.

  • van Raij, B.: 1971, Electrochemical Properties of Some Brazilian Soils, Tese PhD Universidade de Cornel.

  • Stumm, W. and Morgan, J. J.: 1981, ‘Aquatic Chemistry’. 1a Ed. John Wiley & Sons. EUA. pp. 1022

  • Tan, K. H.: 1994, Principles of Soil Chemistry, Ed. Marcel Dekker, Inc.

  • United States Environmental Protaction Agency (USEPA): 1993, ‘Drinking-water standards and health goals’ – Jan. 93.

  • Whelan, B. R. and Titamnis, Z. V.: 1982, ‘Daily chemical variability of domestic septic tank effluent’, Water Air and Soil Pollution 17, 131–139.

    Article  CAS  Google Scholar 

  • Wilcke, W. and Kaupenjohan, M.: 1997, ‘Differences in concentrations and fractions of aluminium and heavy metals between aggregate interior and exterior’, Soil Science 162, 1635–1665.

    Article  Google Scholar 

  • Zorzo, M.: 1993, ‘Efeito da aplicação de calcário e gesso nas propriedades eletroquímicas em solos do Distrito Federal’. Dissertação de mestrado em Química. Departamento de Química – Instituto de Ciências Exatas – Universidade de Brasília.

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Geraldo Resende Boaventura.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Boaventura, G.R., De Freitas, A.L.S. Inorganic Parameters as Water Quality Indicators in Acidic Groundwater in a Tropical Region – Brasilia-DF (Brazil). Water Air Soil Pollut 171, 135–151 (2006). https://doi.org/10.1007/s11270-005-9023-8

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s11270-005-9023-8

Keywords

Navigation