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Characteristics of Phosphorus Accumulation in Rotation System of Plastic Film House and Paddy Soils  

Lee, Yong-Bok (Dept. Agricultural Chemistry, College of Agriculture, Gyeongsang National University)
Lee, In-Bog (Dept. Hort. Environ., National Hort. Research Institute, RDA)
Hwang, Jun-Young (Korea Science and Engineering Foundation)
Lee, Kyung-Dong (Dept. Agricultural Chemistry, College of Agriculture, Gyeongsang National University)
Kim, Pil-Joo (Dept. Agricultural Chemistry, College of Agriculture, Gyeongsang National University)
Publication Information
Korean Journal of Soil Science and Fertilizer / v.35, no.1, 2002 , pp. 47-58 More about this Journal
Abstract
Much of the plastic film house soils in the southern part of the Korean peninsula are managed using a upland-paddy rotation culture system (hereafter, RS) to prevent salt accumulation in soil. However, information on the effects of RS on soil properties and environmental conservation is limited. In order to determine the effects of RS on soil properties, 22 fields under RS and 20 fields under a non-rotation system (hereafter, NRS) in plastic film houses were selected in Chinju, in southern Korea, and the P distribution characteristics were investigated, including the chemical properties. The RS contributed to the removal of water-soluble salts in the surface layer and to the redistribution of organic matter evenly in the soil profile. In the AP horizon, available phosphorus levels were $1,611mg\;kg^{-1}$ in RS and $1,789mg\;kg^{-1}$ in NRS, which markedly exceeds the optimum range for plant cultivation. Total P was lower in RS (average $4,593mg\;kg^{-1}$) than in NRS (average $5,440mg\;kg^{-1}$) and this decrease was taken to be an effect of RS. Inorganic P was the predominant form of P in both systems, followed by organic P and residual P. A soil profile showed that total and inorganic P concentrations decreased with depth in both systems. However, organic P increased withdepth in RS, which was in contrast to that noted in NRS. The increase in organic P with depth in RS implied that organically rather than inorganically derived phosphate moved through the soil. The concentrations of water-soluble P, Ca-P and Al-P were higher in NRS than in RS soil profiles, but the Fe-P concentration was higher in RS than in NRS, which might be affected by the anaerobic conditions found in paddy soils. In both systems, the Al-P form of extractable P predominated in the surface layer, followed by Ca-P, Fe-P and water-soluble P. With increasing depth, the composition rate of Ca-P to extractable P decreased to less than 10% in the 60-70cm depth, as Fe-P dominated at this level. The content of water-soluble P, potentially the main source of eutrophication, was higher in NRS than in RS. These results indicated that the RS used in plastic film houses contributed to the removal of water-soluble salts but only slightly decreased the phosphate concentration.
Keywords
Plastic film house; Salt accumulation; Rotation system; Phosphorus fractionation;
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