신설 하우스 시설재배지의 파이프 암거배수 효과

Effects of Tile Drain on Physicochemical Properties and Crop Productivity of Soils under Newly Constructed Plastic Film House

  • Kim, Lee-Yul (Division of Agricultural Environment, National Institute of Agricultural Science and Technology) ;
  • Cho, Hyun-Jun (Division of Agricultural Environment, National Institute of Agricultural Science and Technology) ;
  • Han, Kyung-Hwa (Division of Agricultural Environment, National Institute of Agricultural Science and Technology)
  • 투고 : 2002.07.18
  • 심사 : 2003.06.12
  • 발행 : 2003.06.30

초록

시설재배지에서의 암거 배수 효과를 보기 위하여 2W 연동하우스 강서 미사질 양토를 대상으로 3년간 실시하였다. 암거 무설치구와 암거 설치구를 두고 암거설치구는 간격 1 m, 2 m 및 3 m로 하여 3개의 구를 두고 암거설치는 유공 PVC관(${\Phi}100mm$)을 비닐 망사로 감아 깊이 50-60 cm에 묻고 관 주위 10 cm 정도를 왕겨로 충진한 후 토양으로 덮었다. 작부체계는 1 년차에는 호박-호박, 2년차에 오이-시금치-쑥갓-시금치-열무, 3년차에 풋고추-토마토-시금치였으며 시비는 관행시비, 관개는 지하수 양수에 의한 점적관개나 고랑관개를 이용했다. 암거 설치구는 무처리구에 비해 용적밀도, 토양경도가 낮았고 최종직물인 시금치의 근권이 2 cm 이상 더 컸다. 암거 설치에 의해 토양수분함량의 감소가 조사되었고 암거간격이 좁아질수록 현저하게 낮아지는 경향을 보였으며 암거 직상부가 대체로 가장 낮은 토양수분함량을 나타내었다. 따라서 암거 설치는 통기성, 투수성 등의 토양 물리성 개선시켰으며 암거직상부에서 그 효과가 가장 크다고 파악된다. 암거 설치에 의해 토양표면 (0-10 cm)의 $NO_{3^-}-N$함량의 감소폭이 가장 컸고 염농도 및 유효인산, 교환성양이온함량 또한 감소했다. 특히 계절별로 집적량이 높은 봄에 염농도 및 $NO_{3^-}-N$ 함량 감소율 또한 높았고 여름, 가을은 상대적으로 낮았다. 암거 설치에 의해 토양표면의 EC(1:5)는 $1.22dS\;m^{-1}$에서 $0.82dS\;m^{-1}$로 감소했고 $NO_{3^-}-N$ 함량은 $200mg\;kg^{-1}$에서 $39mg\;kg^{-1}$로 감소했다. 암거 설치 3년간의 작물수량은 작목에 따라 다르게 나타났는데, 무처리구에 비해 2 m 간격이 18.2% 증수, 3 m 간격이 14.2% 증수 및 1 m 간격은 0.2% 감수되었다.

This study was conducted to investigate the effects of tile drain on Physicochemical properties and crop productivity of soils under plastic film house for three years (1999 - 2001). Tiles (${\Phi}100mm$ PVC pipe) were established at 50-60 cm depth with 1 m, 2 m, and 3 m intervals in Gangseo silt loam soil under 2W-type plastic film house. Cropping system was a pumpkin-pumpkin in the first year, a cucumber-spinach-crown daisy-spinach-young radish in the second year, and a green red pepper-tomato-spinach in last year, with conventional fertilization and drip or furrow irrigation by groundwater pumping. Bulk density and soil hardness of plot with tile drain were lower than those of control (plot without tile drain). Soil water content was also lower in tile drain plot than in control regardless of soil depth, and decreased at narrower interval and longer distance from tile in the same plot, thus suggesting that water flow and density of tile drain plot was higher than those of control. Rhizosphere of spinach, a final crop of third year, was expanded more than 2 cm due probably to improvement of soil physical properties caused by tiles establishment. Electrical conductivity (EC) of topsoil decreased from $1.22dS\;m^{-1}$ to $0.82dS\;m^{-1}$ by tile drain system, and the extent of EC decrease was different with season: higher in spring and lower in summer and autumn. The $NO_{3^-}-N$ concentration in topsoil decreased, from $200mg\;kg^{-1}$ to $39mg\;kg^{-1}$. The effect of tile drain on crop yield varied with crops. Average crop productivity obtained in tile drain plot than that of control crop: 18.2% in 2 m interval, 14.2% in 3 m interval, but lower 0.2% in 1 m interval.

키워드

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