Analysis Methods for the Determination of Anthropogenic Additions of P to Agricultural Soils — Oak Academic Publishing
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Analysis Methods for the Determination of Anthropogenic Additions of P to Agricultural Soils
United States Department of Agriculture-Agriculture Research Service, Grassland, Soil and Water Research Laboratory, Temple, TX, USA
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United States Department of Agriculture-Agriculture Research Service, Agroecosystem Management Research Laboratory, University of Nebraska, East Campus, Lincoln, NE, USA
,
United States Department of Agriculture-Natural Resource Conservation Service, Temple, TX, USA
,
Texas A&M University, Texas AgriLife Research & Extension Center, Temple, TX, USA
,
United States Department of Agriculture-Agriculture Research Service, Grassland, Soil and Water Research Laboratory, Temple, TX, USA
,
United States Department of Agriculture-Agriculture Research Service, Grassland, Soil and Water Research Laboratory, Temple, TX, USA
,
United States Department of Agriculture-Agriculture Research Service, Grassland, Soil and Water Research Laboratory, Temple, TX, USA
1 United States Department of Agriculture-Agriculture Research Service, Grassland, Soil and Water Research Laboratory, Temple, TX, USA
2 United States Department of Agriculture-Agriculture Research Service, Agroecosystem Management Research Laboratory, University of Nebraska, East Campus, Lincoln, NE, USA
3 United States Department of Agriculture-Natural Resource Conservation Service, Temple, TX, USA
4 Texas A&M University, Texas AgriLife Research & Extension Center, Temple, TX, USA
5 United States Department of Agriculture-Agriculture Research Service, Grassland, Soil and Water Research Laboratory, Temple, TX, USA
6 United States Department of Agriculture-Agriculture Research Service, Grassland, Soil and Water Research Laboratory, Temple, TX, USA
7 United States Department of Agriculture-Agriculture Research Service, Grassland, Soil and Water Research Laboratory, Temple, TX, USA
Phosphorus loading and measurement is of concern on lands where biosolids have been applied. Traditional soil testing for plant-available P may be inadequate for the accurate assessment of P loadings in a regulatory environment as the reported levels may not correlate well with environmental risk. In order to accurately assess potential P runoff and leaching, as well as plant uptake, we must be able to measure organic P mineralized by the biotic community in the soil. Soils with varying rates of biosolid application were evaluated for mineralized organic P during a 112-day incubation using the difference between P measured using a rapid-flow analyzer (RFA) and an axial flow Varian ICP-OES. An increase in the P mineralized from the treated soils was observed from analysis with the Varian ICP-OES, but not with the RFA. These results confirm that even though organic P concentrations have increased due to increasing biosolid application, traditional soil testing using an RFA for detection, would not accurately portray P concentration and potential P loading from treated soils.
KeywordsPhosphorusAnthropogenic AdditionsBiosolidsRapid-Flow Analyzer (RFA)Inductively Coupled Plasma (ICP)Texas Commission of Environmental Quality (TCEQ)Soil Organic C (SOC)Total N (TN)Water-Soluble Organic C (WSOC)Water Soluble Organic N (WSON)
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