The Effect of Deep Layer Split Application of Nitrogen Fertilizer on the Growth of Rice Plant

질소비료(窒素肥料)의 심층추비시용(深層追肥施用)이 수도생육(水稻生育)에 미치는 영향(影響)

  • Published : 1977.03.31

Abstract

In this experiment, we expected yield increase depending on the control of ineffective tiller, heightening of effective tillering ratio and continuous supply of nitrogen until later growth stage of rice plant by deep layer split application. Treats were applied at Tongil and Jinheung variety, clayey loam and sandy loam soil, and drained and non-drained condition. Nitrogenous fertilizer application wab adopted as liquefied(50%) and lumped (50% and 80%) fertilizer at 12cm depth of soil before 35 days of rice heading time against the standard soil surface application. The results are summarized as follaw. 1. a. Jinheung showed great variant width of tiller numbers per rice plant growth stage, and low effective tillering ratio at soil surface dressing. But in the case of deep layer split application, the number of tiller increased normally, and effective tillering ratio was high. b. At Tonsil, the width of increase and decrease range of effective tiller number between soil surface dressing and deep layer split application was not so high as Jinheung. Deep layer split application of 80% lumped fertilizer showed maximum effective tillering ratio ($83%{\sim}93%$). C. In the case of Jinheung, it was supposed that deep layer split application of 80% lumped fertilizer was excessive nitrogen quantity. d. Effective tillering ratio was higher than Tonsil at Jinheung. 2. The number of grains per hill was increased by the deep layer split application, but the ripening ratio was decreased inversely with the increase of total grain number. 3. Length of top leaves was elongated at Jinheung by deep layer split application. It showed significant correlation between top leaves length and grain yield. 4. Deep layer split application inclosed N content of harvested straw. Yield and N content of straw showed possitive correlation. 5. The ratio of unhulled grain yield per straw weight was increased by deep layer splication. This ratio was higher at Jinheung than Tonsil. 6. Grain yield was appeared in order of 80% lumped fertilizer>50% lumped fertilizer>50% liquefied fertilizer>surface dressing by the deep layer split application. The yield increasing factors were the increasing of effective tillering ratio, number of panicles per hill and number of ripening grains per hill. 7. Grain yield was increased at Tongil in sandy loam soil and at Jinheung in clayey loam soil by deep layer split application. 8. The grain yield was increased at drained conditions of clayey loam soil and non-drained conditions of sandy loam soil. But in the case of 80% lumped fertilizer of deep layer split application at the sandy loam soil, the yield was not increased at non-drained conditions. 9. The effect of yield increase by deep layer split application comparing with the surface dressing was higher at Tonsil than ginheung, in spite of low ripening ratio of Tonsil caused by low temperature at heading and harvesting time.

본도(本稻)에 심층추비(深層追肥)를 하여 초기무효분벽(初期無效分蘗)을 억제(抑制)하고 유효경비율(有效莖比率)을 높여 생육후기(生育後期)까지 지속적(持續的)인 질소공급(窒素供給)으로 수량증수(收量增收)를 위하여 품종(品種)은 동일(統一)과 진흥(振興), 토양(土壤)은 식양토(埴壤土)와 사양토(砂壤土), 배수조건(排水條件)은 무배수(無排水) 배수(排水)로 구분(區分)하여 질소질비료(窒素質肥料)를 표준시비(표층추비)標準施肥(表層追肥)와 대비(對比)하여 추비비율(追肥比率)을 50%액비(液肥), 50%단자비(團子肥) 80%단자비(團子肥)로 하여 출수(出穗) 35일전(日前) 12cm의 토양(土壤)깊이로 심층추비(深層追肥)하여 얻은 결과(結果)를 요약(要約)하면 다음과 같다. 1. 가) 생육시기별(生育時期別) 경수변화(莖數變化)를 보면 진흥(振興)은 표층추비(表層追肥)에서 경수(莖數)가 급격(急激)히 증가(增加)하다가 감소경향(減少傾向)도 심(甚)하여 유효경비율(有效經比率)이 낮으며 심층추비(深層追肥)에서는 경수(莖數)의 증감(增減)이 완만(緩慢)하여 유효경비율(有效經比率)이 현저(顯著)하게 높았다 나) 통일(統一)에서는 진흥(振興)처럼 표층추비(表層追肥)와 심층추비간(深層追肥間)의 경수증감(莖數增減)의 폭(幅)이 크지않으나 80%단자심층추비(團子深層追肥)는 유효경비율(有效經比率)이 $83{\sim}93%$로 가장 높았다. 다) 진흥(振興)에서 80%단자심층추비(團子深層追肥)는 시비량(施肥量)이 많은 것 같다. 라) 유효경비율(有效經比率)은 통일(統一)보다 진흥(振興)이 높은 경향(傾向)이다. 2. 주당총립수(株當總粒數)는 심층추비(深層追肥)로 증가(增加)하였으며 입수(粒數)가 증가(增加)할수록 등숙비율(登熟比率)은 감소(減少)하는 경향(傾向)이다. 3. 진흥(振興)에서 심층추비(深層追肥)로 지엽(止葉)의 길이가 길며 수량(收量)과는 유의(有意)한 정(正)의 상관(相關)을 보였다. 4. 심층추비(深層追認)는 수확기(收穫期) 고(藁)중의 질소함량(窒素含量)을 증가(增加) 시켰으며 수량(收量)과도 정(正)의 상관(相關)이 있었다. 5. 조고비율(粗藁比率)이 심층추비(深層追肥)로 증가(增加)하였으며 통일(統一)보다 진흥(振興)이 높았다. 6.정조(精粗收量)은 80%단자심추(團子深追)>50%단자심추(團子深追)>50%액심추(液深秋)>표층추비(表層追肥)의 순(順)으로 심층추비(深層追肥)의 효과(效果)가 있었으며 증수요인(增收要因)으로는 표층추비(表層追肥)에 비(比)하여 유효경비율(有效經比率)의 증가(增加) 및 수수증가(穗數增加)와 진당총립수(振當總粒數)의 증가(增加)로 본다. 7. 토양별(土壤別) 심층추비효과(深層追肥效果)는 통일(統一)은 사양토(砂壤土)에서 진흥(振興)은 식양토(埴壤土)에서 증수(增收)하였다. 8. 통일(統一), 진흥(振與) 다같이 식양토(壇壞土)에서는 80%단자심층추비(鬪子深層追肥)를 제외(除外)하고는 무배수(無排水)에서 증수(增收)하였다. 9. 본(本) 실험실시중(試驗實施中) 출수기(出穗期) 등숙기(登熟期)에 저온(低溫)이 계속(繼續)되어 통일(統一)에서 등숙비율(等熟比率)이 낮았으나 표층추비(表層追肥)에 대(對)한 증수효과(增收效果)는 진흥(振興)보다 통일(統一)이 높았다.

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