Experiment for Various Soils on Economic Duty of Water in Paddy Fields

각종토성별 경제적용수량 결정시험연구

  • Published : 1969.06.01

Abstract

In Korea, the duty of water in paddy fields was measured at the Agricultural Experimental Station in Suwon about 60 years ago. After that time some testing has been made in several places, but the key points in its experiment were the water depth of evapo-transpiration. Improved breeds, progress in cultivation and management techniques as well as development of measuring apparatus in recent years have necessitated the review of the duty of water in paddy fields. The necessity of reviewing the conventional methods has become even more important, as no source of information has been made available through survey of water utilization on a soil use basis which requires data on peculiar features of the water depth of evapo-transpiration. For example, the duty of water in paddy field is largely affected by the water depth of evapo-transpiration in connection with the wetted paddy field, whereas in connection with the normal paddy fields without this characteristic the vertical percolation become the predominant factor in measuring the decreasing depth of water. Therefore, it becomes important. that not only the water depth of evapotranspiration but also the vertical percolation process should also be observed in order to arrive at a realistic conclusion. As the vertical percolation has aclose relationship to the height of the underground water, the change of the latter can be measured. As the conclusion of this experiment, the following subjects are indicated. 1. In order to determine the economic duty of water in paddy fields on a basis of varying soil features, the varying soil features in the benifited area should be investigated thoroughly. The water depths of evapo-transpiration(ET) ratio to evaporation in the evaporator(V) on a basis of the varying soil features are as follows: clay loam ET/V = 1.11, loam ET/V = 1.64, sandy loam ET.V = 1.63 2. The decreasing depth of water consists of the water depth of evapotranspiration, the vertical per colation and the percolation of foot path. Among these three, the percolation of foot path can be utilized again. 3. As the result of this experiment, it shows the decreasing depth of water as follows. clay loam 9.3 mm/day, loam 13.5mm/daty, sandy loam 15.3mm/day 4. On a basis of the varying soil features and the height of the underground water, the vertical percolation varies. 5. The change of the vertical percolation on a basis of the varying soil features shows as follows: clay loam $1{\sim}2$ mm/day, loam $2{\sim}3$mm/day, sandy loam $3{\sim}4$mm/day 6. The level of the underground water changes sensibly by priority of clay loam, loam, sandy loam. When it rains, the level of the underground water rises fast and falls down slowly. 7. The level of the underground water changes within the scope of 25cm 8. The transpiration ratio is given in table 8 and their value are as follows: clay loam 168.8, loam 255.6, sandy loam 272.5

우리나라에서 답용수량(畓用水量)을 측정(測定)한 것은 이미 60년전(年前)이 였으며 그동안 몇군데서 시험(試驗)한 것이 있으나 모두 엽수면증발량(葉水面蒸發量)이 중심(中心)이었다. 그런데 품종개량(品種改良), 재배관리(栽培管理)의 향상(向上), 계기(計器)의 발달(發達)과 학술(學術)의 진전(進展)으로 과거(過去)에 측정(測定)한 값을 지금까지 준용(準用)하기는 어느정도 반성(反省)이 필요(必要)하며 더욱이 품종별(品種別) Data는 있으나 토성별(土性別) 시험치(試驗値)가 없어서 토성별(土性別) 용수량(用水量)은 전연(全然) 모르고 있었으며 강하침투량(降下浸透量)이 적은 습답(濕畓)에서는 엽수면증발량(葉水面蒸發量)이 답용수량(畓用水量)을 좌우(左右)하므로 엽수면증발량(葉水面蒸發量)의 측정(測定)만으로 좋으나 그렇지 못한 보통답(普通畓)은 엽수면증발량(葉水面蒸發量)보다 오히려 강하침투량(降下浸透量)이 지배적(支配的)인 역할(役割)을 하고 있다. 따라서 앞으로 엽수면증발량(葉水面蒸發量) 중요(重要)하지만 강하침투량(降下浸透量)도 직접측정(直接測定)하여 현실적(現實的)이고 경제적(經濟的)인 용수량(用水量)을 측정(測定)하여야 할것으로 생각한다. 이 강하침투량(降下浸透量)은 다시 지하수위(地下水位)의 고저(高低)와 관계(關係)가 깊으므로 아울러서 지하수(地下水)의 변동(變動)도 측정(測定)할 것이다. 이와같은 취지(趣旨)에서 본연구(本硏究)를 추진(推進)한 즉 다음과 같은 사항(事項)을 지적(指摘)하게 되었다. (1) 토성별(土性別) 경제적(經濟的) 용수량(用水量)을 결정(決定)하자면 몽이구역내(蒙利區域內)의 토성조사(土性調査)를 명백(明白)히 할것이며 토성(土性)에 따른 엽수면증발량(葉水面蒸發量)과 증발계증발량(蒸發計蒸發量)의 비(比)는 식양토(埴壤土) ET/V=1.11, 양토(壤土) ET/V=1.64 사양토(砂壤土) ET/V=1.63이었다. (2) 감수심(減水深)은 엽수면증발량(葉水面蒸發量), 강하침투량(降下浸,透量) 논두렁 침투량(浸透量)으로 구성(構成)되는데 이중 논두렁침투(浸透)는 재차(再次) 이용(利用)이 가능(可能)하나 엽수면증발량(葉水面蒸發量)과 강하침투량(降下浸透量)도 측정(測定)할 것이다. (3) 토성별감수심(土性別減水深)은 식양토(埴壤土) 9.3mm/day, 양토(壤土) 13.5mm/day, 사양토(砂壤土) 13.5mm/day이었다. (4) 강하침투량(降下浸透量)은 토성(土性)과 지하수(地下水)이 고저(高低)에 따라 다르다. (5) 토성별(土性別) 강하침투량(降下浸透量)의 변화(變化) 식양토(埴壤土) $1{\sim}2mm/day$ 양토(壤土) $2{\sim}3mm/day$, 식양토(埴壤土) $3{\sim}4mm/day$이다. (6) 지하수위(地下水位)의 변동(變動)은 식양토(埴壤土)보다 양토(壤土), 사양토(砂壤土) 순(順)으로 민감(敏感)하여 강수(降水)가 있으면 급(急)히 지하수위(地下水位)가 상승(上昇)하였다가 서서히 하강(下降)한다. (7) 지하(地下) 수위(水位)의 변동범위(變動範圍)는 25cm정도이었다. (8) 증발비(蒸發比)는 식양토구(埴壤土區) 168.8, 양토구(壤土區) 255.6 사양토구(砂壤土區) 272.5이었다.

Keywords