• 제목/요약/키워드: pressure relation

검색결과 1,012건 처리시간 0.022초

논벼 장.단간품종의 증발산제계수와 건물량과의 관계에 대한 연구(I) (Studies on Relations between Various Coeffcients of Evapo-Transpiration and Quantities of Dry Matters for Tall-and Short Statured Varieties of Paddy Rice)

  • 류한열;김철기
    • 한국농공학회지
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    • 제16권2호
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    • pp.3361-3394
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    • 1974
  • The purpose of this thesis is to disclose some characteristics of water consumption in relation to the quantities of dry matters through the growing period for two statured varieties of paddy rice which are a tall statured variety and a short one, including the water consumption during seedling period, and to find out the various coefficients of evapotranspiration that are applicable for the water use of an expected yield of the two varieties. PAL-TAL, a tall statured variety, and TONG-lL, a short statured variety were chosen for this investigation. Experiments were performed in two consecutive periods, a seedling period and a paddy field period, In the investigation of seedling period, rectangular galvanized iron evapotranspirometers (91cm${\times}$85cm${\times}$65cm) were set up in a way of two levels (PAL-TAL and TONG-lL varieties) with two replications. A standard fertilization method was applied to all plots. In the experiment of paddy field period, evapotanspiration and evaporation were measured separately. For PAL-TAL variety, the evapotranspiration measurements of 43 plots of rectangular galvanized iron evapotranspirometer (91cm${\times}$85cm${\times}$65cm) and the evaporation measurements of 25 plots of rectangular galvanized iron evaporimeter (91cm${\times}$85cm${\times}$15cm) have been taken for seven years (1966 through 1972), and for TONG-IL variety, the evapotranspiration measurements of 19 plots and the evaporation measurements of 12 plots have been collected for two years (1971 through 1972) with five different fertilization levels. The results obtained from this investigation are summarized as follows: 1. Seedling period 1) The pan evaporation and evapotranspiration during seedling period were proved to have a highly significant correlation to solar radiation, sun shine hours and relative humidity. But they had no significant correlation to average temperature, wind velocity and atmospheric pressure, and were appeared to be negatively correlative to average temperature and wind velocity, and positively correlative to the atmospheric pressure, in a certain period. There was the highest significant correlation between the evapotranspiration and the pan evaporation, beyond all other meteorological factors considered. 2) The evapotranpiration and its coefficient for PAL-TAL variety were 194.5mm and 0.94∼1.21(1.05 in average) respectively, while those for TONG-lL variety were 182.8mm and 0.90∼1.10(0.99 in average) respectively. This indicates that the evapotranspiration for TONG-IL variety was 6.2% less than that for PAL-TAL variety during a seedling period. 3) The evapotranspiration ratio (the ratio of the evapotranspiration to the weight of dry matters) during the seedling period was 599 in average for PAL-TAL variety and 643 for TONG-IL variety. Therefore the ratio for TONG-IL was larger by 44 than that for PAL-TAL variety. 4) The K-values of Blaney and Criddle formula for PAL-TAL variety were 0.78∼1.06 (0.92 in average) and for TONG-lL variety 0.75∼0.97 (0.86 in average). 5) The evapotranspiration coefficient and the K-value of B1aney and Criddle formular for both PAL-TAL and TONG-lL varieties showed a tendency to be increasing, but the evapotranspiration ratio decreasing, with the increase in the weight of dry matters. 2. Paddy field period 1) Correlation between the pan evaporation and the meteorological factors and that between the evapotranspiration and the meteorological factors during paddy field period were almost same as that in case of the seedling period (Ref. to table IV-4 and table IV-5). 2) The plant height, in the same level of the weight of dry matters, for PAL-TAL variety was much larger than that for TONG-IL variety, and also the number of tillers per hill for PAL-TAL variety showed a trend to be larger than that for TONG-IL variety from about 40 days after transplanting. 3) Although there was a tendency that peak of leaf-area-index for TONG-IL variety was a little retarded than that for PAL-TAL variety, it appeared about 60∼80 days after transplanting. The peaks of the evapotranspiration coefficient and the weight of dry matters at each growth stage were overlapped at about the same time and especially in the later stage of growth, the leaf-area-index, the evapotranspiration coefficient and the weight of dry matters for TONG-IL variety showed a tendency to be larger then those for PAL-TAL variety. 4) The evaporation coefficient at each growth stage for TONG-IL and PAL-TALvarieties was decreased and increased with the increase and decrease in the leaf-area-index, and the evaporation coefficient of TONG-IL variety had a little larger value than that of PAL-TAL variety. 5) Meteorological factors (especially pan evaporation) had a considerable influence to the evapotranspiration, the evaporation and the transpiration. Under the same meteorological conditions, the evapotranspiration (ET) showed a increasing logarithmic function of the weight of dry matters (x), while the evaporation (EV) a decreasing logarithmic function of the weight of dry matters; 800kg/10a x 2000kg/10a, ET=al+bl logl0x (bl>0) EV=a2+b2 log10x (a2>0 b2<0) At the base of the weight of total dry matters, the evapotranspiration and the evaporation for TONG-IL variety were larger as much as 0.3∼2.5% and 7.5∼8.3% respectively than those of PAL-TAL variety, while the transpiration for PAL-TAL variety was larger as much as 1.9∼2.4% than that for TONG-IL variety on the contrary. At the base of the weight of rough rices the evapotranspiration and the transpiration for TONG-IL variety were less as much as 3.5% and 8.l∼16.9% respectively than those for PAL-TAL variety and the evaporation for TONG-IL was much larger by 11.6∼14.8% than that for PAL-TAL variety. 6) The evapotranspiration coefficient, the evaporation coefficient and the transpiration coefficient and the transpiration coefficient were affected by the weight of dry matters much more than by the meteorological conditions. The evapotranspiratioa coefficient (ETC) and the evaporation coefficient (EVC) can be related to the weight of dry matters (x) by the following equations: 800kg/10a x 2000kg/10a, ETC=a3+b3 logl0x (b3>0) EVC=a4+b4 log10x (a4>0, b4>0) At the base of the weights of dry matters, 800kg/10a∼2000kg/10a, the evapotranspiration coefficients for TONG-IL variety were 0.968∼1.474 and those for PAL-TAL variety, 0.939∼1.470, the evaporation coefficients for TONG-IL variety were 0.504∼0.331 and those for PAL-TAL variety, 0.469∼0.308, and the transpiration coefficients for TONG-IL variety were 0.464∼1.143 and those for PAL-TAL variety, 0.470∼1.162. 7) The evapotranspiration ratio, the evaporation ratio (the ratio of the evaporation to the weight of dry matters) and the transpiration ratio were highly affected by the meteorological conditions. And under the same meteorological condition, both the evapotranspiration ratio (ETR) and the evaporation ratio (EVR) showed to be a decreasing logarithmic function of the weight of dry matters (x) as follows: 800kg/10a x 2000kg/10a, ETR=a5+b5 logl0x (a5>0, b5<0) EVR=a6+b6 log10x (a6>0 b6<0) In comparison between TONG-IL and PAL-TAL varieties, at the base of the pan evaporation of 343mm and the weight of dry matters of 800∼2000kg/10a, the evapotranspiration ratios for TONG-IL variety were 413∼247, while those for PAL-TAL variety, 404∼250, the evaporation ratios for TONG-IL variety were 197∼38 while those for PAL-TAL variety, 182∼34, and the transpiration ratios for TONG-IL variety were 216∼209 while those for PAL-TAL variety, 222∼216 (Ref. to table IV-23, table IV-25 and table IV-26) 8) The accumulative values of evapotranspiration intensity and transpiration intensity for both PAL-TAL and TONG-IL varieties were almost constant in every climatic year without the affection of the weight of dry matters. Furthermore the evapotranspiration intensity appeared to have more stable at each growth stage. The peaks of the evapotranspiration intensity and transpiration intensity, for both TONG-IL and PAL-TAL varieties, appeared about 60∼70 days after transplanting, and the peak value of the former was 128.8${\pm}$0.7, for TONG-IL variety while that for PAL-TAL variety, 122.8${\pm}$0.3, and the peak value of the latter was 152.2${\pm}$1.0 for TONG-IL variety while that for PAL-TAL variety, 152.7${\pm}$1.9 (Ref.to table IV-27 and table IV-28) 9) The K-value in Blaney & Criddle formula was changed considerably by the meteorological condition (pan evaporation) and related to be a increasing logarithmic function of the weight of dry matters (x) for both PAL-TAL and TONG-L varieties as follows; 800kg/10a x 2000kg/10a, K=a7+b7 logl0x (b7>0) The K-value for TONG-IL variety was a little larger than that for PAL-TAL variety. 10) The peak values of the evapotranspiration coefficient and k-value at each growth stage for both TONG-IL and PAL-TAL varieties showed up about 60∼70 days after transplanting. The peak values of the former at the base of the weights of total dry matters, 800∼2000kg/10a, were 1.14∼1.82 for TONG-IL variety and 1.12∼1.80, for PAL-TAL variety, and at the base of the weights of rough rices, 400∼1000 kg/10a, were 1.11∼1.79 for TONG-IL variety and 1.17∼1.85 for PAL-TAL variety. The peak values of the latter, at the base of the weights of total dry matters, 800∼2000kg/10a, were 0.83∼1.39 for TONG-IL variety and 0.86∼1.36 for PAL-TAL variety and at the base of the weights of rough rices, 400∼1000kg/10a, 0.85∼1.38 for TONG-IL variety and 0.87∼1.40 for PAL-TAL variety (Ref. to table IV-18 and table IV-32) 11) The reasonable and practicable methods that are applicable for calculating the evapotranspiration of paddy rice in our country are to be followed the following priority a) Using the evapotranspiration coefficients based on an expected yield (Ref. to table IV-13 and table IV-18 or Fig. IV-13). b) Making use of the combination method of seasonal evapotranspiration coefficient and evapotranspiration intensity (Ref. to table IV-13 and table IV-27) c) Adopting the combination method of evapotranspiration ratio and evapotranspiration intensity, under the conditions of paddy field having a higher level of expected yield (Ref. to table IV-23 and table IV-27). d) Applying the k-values calculated by Blaney-Criddle formula. only within the limits of the drought year having the pan evaporation of about 450mm during paddy field period as the design year (Ref. to table IV-32 or Fig. IV-22).

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밭 작물(作物)의 가리(加里) 생리(生理) (Potassium Physiology of Upland Crops)

  • 박훈
    • 한국토양비료학회지
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    • 제10권3호
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    • pp.103-134
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    • 1977
  • 밭 작물에 대(對)한 칼리의 생리(生理) 및 생화학적(生化學的) 역할(役割)을 최근(最近) 연구결과(硏究結果)를 중심(中心)으로 검토(檢討)하였으며 우리나라 밭 작물(作物)의 가리영양(加里營養) 현황(現況)을 살펴봤다. 칼리이온의 물리화학적(物理化學的) 특성(特性)은 Na에 의(依)하여 완전(完全) 대체(代替) 불가능(不可能)함을 보이며 대부분(大部分)의 작물(作物)에서 Na의 K대체(代替)는 불가피(不可避)한 대체기능(代替機能)에 대(對)한 부분적(部分的) 대체(代替)에 불과(不過)한 것 같다. 칼리의 특이성(特異性)은 엽록체(葉綠體) thylacoid막(膜)과 같은 미세구조(微細構造)를 효율적(效率的) 구조(構造)로 유지(維持)하며 주(主)로 탄수화물(炭水化物)과 단백질(蛋白質) 대사(代謝)에 관계(關係)하는 제효소(諸酵素)들의 allosteric effector로, 효율적(效率的) conformation의 유지자(維持者)로 작용(作用)하는 것으로 보였다. 광인산화(光燐酸化) 반응(反應)과 산화적(酸化的) 인산반응(燐酸反應) 등(等) energy 대사(代謝)에 필수적(必須的) 존재(存在)로서 유기물(有機物)의 합성(合成)과 전류등(轉流等) 광범(廣範)한 energy 의존(依存) 생리작용(生理作用)에 관여(關與)하고 있다. 칼리는 삼투압(渗透壓) 및 교질(膠質)의 가수도(加水度)를 유지(維持)하여 수분흡수(水分吸收) 및 전류(轉流)의 동인(動因)으로 작용(作用)하여 생리작용(生理作用)의 최적환경(最適環境)을 만들며 수분효율(水分效率)을 높인다. 칼리는 무기양분(無機養分)의 흡수(吸收)와 체내분포(體內分布)에 영향(影響)을 주고 생산물의 품질향상(品質向上)에도 영향을 주며 생산품의 K함량자체(含量自體)가 인체(人體)에서의 K의 중요성(重要性)으로 품질평가(品質評價)의 기준(基準)이 될 것 같다. 칼리의 흡수(吸收)는 저온(低溫)에 의(依)해 크게 저해(沮害)받으며 내부(內部) 칼리 함량에 의(依)한 부(否)의 feedback기작(機作)이 있어서 칼리의 사치흡수는 재평가(再評價)되어야 할 것으로 보였다. 우리나라 토양(土壤)의 전가리(全加里)는 약(約) 3%이나 치환성(置換性)은 0.3me/100g으로 동해(凍害), 한해(寒害)와 불균일(不均一)한 강우(降雨)로 인(因)한 습해(濕害), 한해(旱害) 등(等)으로 모든 밭 작물(作物)에서 요구도(要求度)가 컸다. 대맥(大麥)은 결빙직전(結氷直前) 및 해빙(解氷) 직후(直後)의 K영양(營養)이 수량(收量)과 유의성(有意性) 상관(相關)을 보이며 곡실(穀實)로 많이 전류(轉流)되는 것이 좋았다. 대맥(大麥)의 가리이용률(加里利用率)은 27%, 대두(大豆)는 숙전(熟田)에서 58% 개간지(開墾地)에서 46%였다. 대두(大豆)는 야산(野山) 개발지(開發地)에서 특(特)히 가리(加里) 결핍증상(缺乏症狀)을 많이 보였으며 화아분화기(花芽分花期)에 엽(葉) 중(中) $K_2O$ 2% 이상(以上) K/(Ca+Mg) (함량비(含量比))비(比)는 1.0 이상(以上)이어야 할 것 같다. 고구마는 가리흡수력(加里吸收力)이 커서 후작(後作)의 K영양(營養)에 크게 영향(影響)을 주었다. 감자와 옥수수는 Ca와 Mg에 비(比)해 K가 특히 높았다. 가리결핍(加里缺乏) 고구마는 뿌리에서 K농도 차이가 가장 컸다. 당근, 가지, 배추, 고추, 무우, 도마도가 가리(加里) 함량(含量)이 많았으며 배추 수량(收量)은 가리(加里)와 정상관(正相關)이었다. 사료작물(飼料作物)의 가리(加里) 함량(含量)은 비교적(比較的) 높은 편이었으며 식물체(植物體) 중(中) N, P, Ca와 유의정상관(有意正相關)을 보였다. 과수원(果樹園)의 16~25%가 가리(加里) 부족(不足)으로 나타났으며 우량(優良) 사과밭과 배밭의 토양(土壤)과 엽(葉)은 가리(加里) 함량(含量)이 높았다. 뽕나무의 동해(凍害)에 의(依)한 가지 끝 고사방지(枯死防止)를 위(爲)한 엽(葉) 중(中) $K_2O/(CaO+MgO)$ 임계치(臨界値)는 0.95이었다. 밭 작물재배(作物栽培) 뒤의 토양(土壤) 중(中) 가리(加里)는 전작(前作)에 따라 증가(增加)되는 경우와 감소(減少)되는 경우가 있으며 가리(加里) 흡수(吸收)는 토양수분(土壤水分)에 존재(依存)하는 것 같다. 따라서 토양(土壤) 중(中)의 전가리(全加里)를 포함한 형태별(形態別) 가리(加里) 함량(含量)의 토질(土質), 기상(氣象), 작부체계(作付體系) 등(等) 제요인(諸要因)과 관련(關聯) 장기적(長期的)이고 정량적(定量的)인 조사(調査)가 필요(必要)하다. 가리(加里)의 추비(追肥), 심층시비(深層施肥) 또는 완용성(緩溶性) 비료(肥料)와 입상비료(粒狀肥料) 등(等)이 강우양상(降雨樣相)과 관련(關聯) 검토(檢討)됨으로써 K흡수(吸收) 및 효율(效率)을 증진(增進)시킬 수 있을 것 같다. 가리영양(加里營養)을 포함하여 밭 작물(作物)의 영양해석(營養解析)에는 다요인분석(多要因分析)에 의(依)한 합리적(合理的)이고 실용적(實用的)인 영양지표(營養指標)를 찾는데 경주(傾注)해야 할 것 같다.

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