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Industrial Impact on Marsh Soils at the Bahia Blanca Ria, Argentina

Maria Luisa Andrade*,a, Maria Luisa Reyzabalb, Purificacion Marceta and Maria Jose Monteroa

a Dep. of Vegetable Biology and Soil Sciences, Ap. 874, 36200 Vigo, Spain
b Dep. of Agronomy, Universidad Nacional del Sur, Bahía Blanca, Argentina



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Fig. 1. The study area. Sz, sampling zone; Dp, Discharge point.

 


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Fig. 2. Variation of hydrophobicity with hydrocarbon content, including regression and correlation coefficient.

 


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Fig. 3. Variation of the resistance to penetration with hydrocarbon content, including regression and correlation coefficient.

 


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Fig. 4. Variation of the total Pb content with hydrocarbon content, including regression and correlation coefficient.

 


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Fig. 5. Variation of the S-pyrite content with redox potential, including regression and correlation coefficient.

 


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Fig. 6. Variation of the total Pb content with redox potential, including regression and correlation coefficient.

 


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Fig. 7. Variation of the total Zn content with redox potential, including regression and correlation coefficient.

 


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Fig. 8. Variation of the total Cu content with redox potential, including regression and correlation coefficient.

 





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The SCI Journals Agronomy Journal Crop Science
Journal of Natural Resources
and Life Sciences Education
Vadose Zone Journal
Soil Science Society of America Journal Journal of Plant Registrations The Plant Genome
Copyright © 2002 by the American Society of Agronomy, Crop Science Society of America, and Soil Science Society of America.