To determine the effect of soil salinity and crop response according to drainage methods, a field experiment was conducted in reclaimed tidal flat land adjacent to Yeongsangang located at Sanyimyon Haenamgun Jeonnam province for three years from 2012 to 2014. Three drainage methods, subsurface drainage (SD), 30 cm open ditch drainage (OD30) and 60cm open ditch drainage (OD60) tested on silt loam soil. In SD and ND, soil salinity were lower than OD30 and OD60 but there was no significant soil EC to the depth of open ditch. SD had a little effect in lowering ground water table. Waterlogging intensity in SEW30 values during the growing season was the lowest in SD 297 compared with the OD30 855, ND 1,420 and OD60 1,553 cm-day. From the above results, subsurface drainage system control soil salinity and waterlogging. Also, the open ditch drainage had an effect on drainage improvement but there was no significant effect on desalinization. So drainage and soil reclamation were essentially needed to stable upland crop cultivation at the reclaimed tidal flat land.
Salted-affected soil is a major environmental constraint with severe negative impacts on agricultural productivity and sustainability in reclaimed tidelands. This review focuses on the phytoremediation of reclaimed tidelands. We address the process of phytoremediation of these soils, comparison of phytoremediation with other amelioration approaches, driving forces contributing to the process, selection of phytoremediation crops, and the role of cropping in securing environmental integrity under salt-affected soils.
본 연구에서는 새만금 지역에 조성된 신간척지 포장에서 담수와 하작물 재배처리가 제염 및 후작으로 재배한 청보리의 생육 및 수량에 미치는 영향을 조사 분석하여, 신간척지포장의 조기제염 기술을 개발하고자 하였다.1. 담수기간별 하작물 재배후 청보리 입모를 보면 무담수에서 m2당 216개로 입모율 25%, 1개월 담수 43%, 2개월과 3개월 담수 58%, 벼 재배구는 60% 이었다.2. 토양염농도는 청보리 파종 시에 무담수 처리에서 0.50%로 높았고, 그 외 담수처리에서는 0.2% 이내로 낮았으며, 생육 중기까지는 높아지다가 생육후기에는 파종시의 수준과 비슷하였다.3. 초장과 간장은 담수기간이 길수록 많았으며, 경수도에서 504%, 벼 재배에서는 536% 증수하였다.5. 사료가치는 담수 1개월은 단백질함량과 섬유소함량이낮게 나타났고, 담수 3개월은 벼 재배구와 사료가치면에서 비슷한 결과를 보였다.이상의 결과를 종합하여 볼 때, 새로 조성된 간척지(사양토)에서 제염을 목적으로 담수할 경우 3개월 이상 담수하거나 벼를 재배하여 제염을 하고 밭작물(청보리)을 재배하여야 어느 정도 수량을 얻을 수 있을 것으로 판단된다.많아지는 경향이었다.4. 수량은 무담수에서는 극히 적었으며, 담수기간이 길수록 수량은 급격히 증가하여, 무담수 대비 3개월 담수에서 504%, 벼 재배에서는 536% 증수하였다. 5. 사료가치는 담수 1개월은 단백질함량과 섬유소함량이낮게 나타났고, 담수 3개월은 벼 재배구와 사료가치면에서 비슷한 결과를 보였다.이상의 결과를 종합하여 볼 때, 새로 조성된 간척지(사양토)에서 제염을 목적으로 담수할 경우 3개월 이상 담수하거나 벼를 재배하여 제염을 하고 밭작물(청보리)을 재배하여야 어느 정도 수량을 얻을 수 있을 것으로 판단된다.
The PTDRT model as prediction techniques for desalinization in reclaimed tidelands was developed and verified whether it is applicable to reclaimed tidelands at the beginning stage. The changes of salt concentration during desalinization, the water requirements and period required for desalinization, were simulated according to soil properties and desalinization methods by repression analyses. The program was also designed to systematize input data and analysis data associated with desalinization, and to confirm the results by a graphic form. All input data and the results can be printed after the form of a typical report.
Over 2,000 ha of rice fields in the western and southern coastal region of Korea were flooded with sea water during the spring tide, on August 19-21, 1997, and the rice plant at heading stage was injured. The field surveys were undertaken at the sea water flooded paddy fields in Chonbuk Province, to identify the injury symptoms and rice yield damage subjected to different flooding condition and desalinization methods. Five days after sea water flooding at heading stage, the flag leaves of rice plants flooded with 30 ㎝ deep sea water withered from the tip, the withering progressed to the lower leaves in deeper flooding. The spikelets were spotted black and discolored from the tip at 50 ㎝ deep flooded rice, and some panicles changed to white at 80 ㎝ deep flooded rice. Most of the rice leaves submerged completely for an hour were withered and most of panicles changed to white. The milled rice yield, percentage of ripened grain, and 1000 grain weight of flooded rice decreased with deeper flooding water, higher water salinity and longer flooding time. Even under the same flooding conditions, the damage of rice yield varied with the growth stage: heading stage>dough stage>booting stage. Rice yield damage was less in the fields on the upper riverside than those of the fields on the estuary and seaside, because of lower water salinity. In a flooded field, the rice yield damages were reduced as the distance increased from the levees where the sea water inflowed and increased as the distance increased from the fresh water irrigation gate. The desalinization treatments consisting of frequent exchange of irrigation water and spraying with fresh water soon after flooding effectively reduced the rice yield damage.