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Changes in Physical Properties Especially, Three Phases, Bulk Density, Porosity and Correlations under No-tillage Clay Loam Soil with Ridge Cultivation of Rain Proof Plastic House

  • Yang, Seung-Koo (Jeollanamdo Agricultural Research and Extension Services) ;
  • Seo, Youn-Won (Jeollanamdo Agricultural Research and Extension Services) ;
  • Kim, Sun-Kook (Jeollanamdo Agricultural Research and Extension Services) ;
  • Kim, Byeong-Ho (Jeollanamdo Agricultural Research and Extension Services) ;
  • Kim, Hee-Kwon (Jeollanamdo Agricultural Research and Extension Services) ;
  • Kim, Hyun-Woo (Jeollanamdo Agricultural Research and Extension Services) ;
  • Choi, Kyung-Ju (Jeollanamdo Agricultural Research and Extension Services) ;
  • Han, Yeon Soo (Division of Plant Biotechnology, Institute of Environmentally-Friendly Agriculture (IEFA), College of Agricultural and Life Science, Chonnam National University) ;
  • Jung, Woo-Jin (Division of Applied Bioscience and Biotechnology, Institute of Environmentally-Friendly Agriculture (IEFA), College of Agricultural and Life Science, Chonnam National University)
  • Received : 2014.02.11
  • Accepted : 2014.06.26
  • Published : 2014.08.30

Abstract

This study was carried out to investigate the sustainable agriculture of no-tillage technique including recycling of the ridge and the furrow of a field for following crops in Korea. No-tillage systems affect soil physical properties such as three phase (solid, liquid, and air phase) and distribution of soil granular. Solid ratio of subsoil in 3-year of no-tillage (NT) treatment was remarkably lower than that in conventional (CT, 2-year of no-tillage + 1-year of tillage) treatment, while air ratio of subsoil in NT remarkably increased. Bulk density of subsoil in NT remarkably decreased. Porosity of subsoil in NT remarkably increased. Deviation of air phase, bulk density, and porosity of top soil and subsoil in NT remarkably decreased in NT compared with CT. Solid phase ratio and liquid phase ratio in NT and CT had positive (+) correlation. Solid phase ratio and air phase ratio in NT and CT had negative (-) correlation, also liquid phase ratio and air ratio had negative (-) correlation. Bulk density and liquid ratio in soil had positive (+) correlation at top soil and subsoil in NT. Bulk density and air ratio in soil had negative (-) correlation in NT and CT. Porosity and liquid phase ratio had negative (-) correlation, r =1), the significant value was lower in NT than in CT. Porosity and air phase ratio had positive (+) correlation (r =1).

Keywords

References

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