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Published online 31 May 2006
Published in J Environ Qual 35:1118-1126 (2006)
DOI: 10.2134/jeq2005.0134
© 2006 American Society of Agronomy, Crop Science Society of America, and Soil Science Society of America
677 S. Segoe Rd., Madison, WI 53711 USA
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Nutrient and Trace Element Leaching following Mine Reclamation with Biosolids

Richard Stehouwer*, Rick L. Day and Kirsten E. Macneal

Crop and Soil Science Department, The Pennsylvania State University, University Park, PA 16802-3504


Figure 1
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Fig. 1. Map of study area showing biosolids application area, control area, and locations of wells, lysimeters, and wiers.

 

Figure 2
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Fig. 2. Acidity of percolate water collected in zero-tension lysimeters (L1, L2, and L3 in the biosolids application area and LC in the control area) before and after reclamation with biosolids.

 

Figure 3
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Fig. 3. pH of percolate water collected in zero-tension lysimeters (L1, L2, and L3 in the biosolids application area and LC in the control area) before and after reclamation with biosolids.

 

Figure 4
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Fig. 4. Nitrate concentrations in percolate water collected in zero-tension lysimeters (L1, L2, and L3 in the biosolids application area and LC in the control area) before and after reclamation with biosolids.

 

Figure 5
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Fig. 5. Total P concentrations in percolate water collected in zero-tension lysimeters (L1, L2, and L3 in the biosolids application area and LC in the control area) before and after reclamation with biosolids.

 

Figure 6
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Fig. 6. Aluminum concentrations in percolate water collected in zero-tension lysimeters (L1, L2, and L3 in the biosolids application area and LC in the control area) before and after reclamation with biosolids.

 

Figure 7
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Fig. 7. Zinc concentrations in percolate water collected in zero-tension lysimeters (L1, L2, and L3 in the biosolids application area and LC in the control area) before and after reclamation with biosolids.

 





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