| Literature DB >> 25003139 |
Marta García-Albacete1, Ana M Tarquis2, M Carmen Cartagena1.
Abstract
New European directives have proposed the direct application of compost and digestate produced from municipal solid wastes as organic matter sources in agricultural soils. Therefore information about phosphorus leaching from these residues when they are applied to the soil is increasingly impn>ortant. Leaching expn>eriments were conducted to determine the P mobility in compost and digestate mixtures, supplying equivalent amounts to 100 kg P ha(-1) to three different types of soils. The tests were performed in accordance with CEN/TS 14405:2004 analyzing the maximum dissolved reactive P and the kinetic rate in the leachate. P biowaste fractionation indicated that digestate has a higher level of available P than compost has. In contrast, P losses in leaching experiments with soil-compost mixtures were higher than in soil-digestate mixtures. For both wastes, there was no correlation between dissolved reactive P lost and the water soluble P. The interaction between soil and biowaste, the long experimentation time, and the volume of leachate obtained caused the waste's wettability to become an influential parameter in P leaching behavior. The overall conclusion is that kinetic data analysis provides valuable information concerning the sorption mechanism that can be used for predicting the large-scale behavior of soil systems.Entities:
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Year: 2014 PMID: 25003139 PMCID: PMC4065741 DOI: 10.1155/2014/565174
Source DB: PubMed Journal: ScientificWorldJournal ISSN: 1537-744X
Chemical characteristics of the soils used in this study.
| Parameters | Soil A | Soil B | Soil C |
|---|---|---|---|
| USDA classification | Calcic Haploxerepts | Petrocalcic Palexeralfs | Typic Haploxeralfs |
| Texture | Clay loam | Sandy clay loam | Sandy loam |
| Sand, % | 55.0 | 70.4 | 71.0 |
| Silt, % | 17.0 | 8.0 | 11.0 |
| Clay, % | 28.0 | 21.6 | 18.0 |
| pH, w extract 1 : 5 | 7.5 | 7.9 | 5.9 |
| OM, % | 1.41 | 2.22 | 1.03 |
| Ca, % | 0.7 | 5.0 | 0.06 |
| Fe, % | 1.1 | 1.4 | 0.6 |
| Olsen-P, mg kg−1 | 18.8 | 17.9 | 10.1 |
| PSI, mg kg−1 | 29.9 | 112.2 | 26.5 |
Biowaste chemical characterization: compost and digestate.
| Parameters* | Digestate | Compost |
|---|---|---|
| Particle size, mm | 10–25 | <5 |
| Total solids, % | 28.2 | 81.9 |
| OM, % | 45.3 | 62.0 |
| Hydrosoluble OM, % | 1.1 | 1.9 |
| EC, dS m−1 | 6.8 | 4.7 |
| PH | 8.5 | 7.5 |
| Kjeldahl-N, % | 3.2 | 2.8 |
| TP, g kg−1 | 7.49 | 3.09 |
| WSP 1 : 250, g kg−1 | 3.64 | 0.69 |
| IP, g kg−1 | 7.04 | 2.80 |
| OP, g kg−1 | 0.39 | 0.25 |
| Olsen-P, g kg−1 | 4.11 | 0.61 |
| Ca, % | 0.8 | 4.5 |
| Fe, % | 1.4 | 0.5 |
*Dry weight basis.
Figure 1Fractionation of P in compost and digestate.
Figure 2Time evolution of wettability of compost and digestate.
Figure 3DRP losses by leaching in soil-compost mixtures. Error bars indicate the standard error of the mean (n = 3).
Figure 4DRP losses by leaching in soil-digestate mixtures. Error bars indicate the standard error of the mean (n = 3).
First-order kinetic constant (kl) and P maximum leached estimated (Pmax) for each biowaste and amended soil type.
| BIOWASTE | Soil | kl 10−3 (h−1) | *Pmax (mg kg−1) |
|---|---|---|---|
| Compost | A | 1.7 | 108.0Aa |
| B | 1.8 | 72.3Ab | |
| C | 1.7 | 99.5Aa | |
|
| |||
| Digestate | A | 4.4 | 54.6Ba |
| B | 6.2 | 47.8Ba | |
| C | 2.3 | 61.9Ba | |
*Same capital letters within a soil type indicate that there were no significant differences between the biowaste type at α = 0.05. Same lowercase letters within the same biowaste type indicate that there were no significant differences between soil types.