• 제목/요약/키워드: Jensen-Haise

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Tank 모형의 증발산량 산정에 관한 연구 (A Study on Evaporation Estimation of Tank Model)

  • 정일원;구보영;배덕효
    • 한국수자원학회:학술대회논문집
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    • 한국수자원학회 2006년도 학술발표회 논문집
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    • pp.1746-1750
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    • 2006
  • 다양한 목적의 장기유출분석에 많이 적용되고 있는 4단 Tank 모형의 증발산관련 입력자료는 증발접시자료를 이용하거나 또는 장기간의 유량과 강수량의 차이로 정의되는 월별 손실량을 계산한 결과를 사용하고 있다. 증발접시자료는 자료 구득문제와 신뢰성 문제 등으로 인해 적용사례가 적고 통상 인근 관측지점의 손실량을 계산하고 이를 전이하여 적용하고 있다. 그러나 이러한 일증발산량 산정방법은 장기적인 유량 자료를 보유한 인근 관측지점이 있어야 적용할 수 있다는 점과 관측지점의 자료 신뢰성에 따라 유출결과에 큰 영향을 미칠수 있는 한계가 있다. 따라서 본 연구에서는 이러한 문제점을 개선하기 위하여 Hamon 방법과 Jensen-Haise 방법 및 FAO Penman-Monteith 방법을 검토하여 Tank 모형 계산에 필요한 실제증발산량을 산정할 수 있는 방안에 대해 모색하였다. 분석결과 유역별 실제손실량은 지형적인 영향을 받는 것으로 분석되었으며, 이를 통해 잠재증발산량을 실제증발산량으로 보정하는 월별보정계수를 지형인자로부터 추정하는 방법을 제안하였다.

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기준증발산량 산정방법들의 시공간적 보정에 대한 개선효과 평가 (Evaluation of improvement effect on the spatial-temporal correction of several reference evapotranspiration methods)

  • 김철겸;이정우;이정은;김현준
    • 한국수자원학회논문집
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    • 제53권9호
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    • pp.701-715
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    • 2020
  • 본 연구에서는 FAO-56 Penman-Monteith (FAO PM)를 비롯하여 Hamon, Hansen, Hargreaves-Samani, Jensen-Haise, Makkink, Priestley-Taylor, Thornthwaite 등 총 8가지 기준증발산량 산정방법을 이용하여 전국 기상청 ASOS 지점을 대상으로 각 방법에 따른 기준증발산량을 산정하여 비교하였다. 또한 가장 신뢰성이 높은 것으로 알려진 FAO PM값을 기준으로 나머지 7가지 방법에 의한 월별 편차를 분석하여 지점별 월별 보정계수를 도출하고, 보정에 따른 개선효과를 평가하였다. 먼저 각 방법의 기본계수를 적용하여 기준증발산량을 산정한 결과, 방법에 따라 큰 편차를 나타내었으며 Hansen 방법이 상대적으로 FAO PM과 유사한 것으로 나타났다. 반면, Hamon과 Jensen-Haise 방법은 여름철을 중심으로 타 방법대비 매우 큰 값을 보였으며, FAO PM과의 편차도 크게 나타났다. 지역별로는 동해안 일부지역을 제외하고 대부분의 지역에서 FAO PM과 비교하여 기준증발산량을 과다하게 산정하는 것으로 분석되었다. FAO PM 결과와의 편차를 기반으로 지점별 월별 최적화된 보정계수를 도출하고 기준증발산량을 다시 비교한 결과, 지점에 따라 보정 전에 -46 mm~+88 mm의 범위를 보였던 월 평균값은 보정 후 -11 mm~+1 mm로 나타났으며, 연 평균값도 -393 mm~+354 mm (보정 전)에서 -33 mm~+9 mm (보정 후)로 보정을 통하여 편차가 크게 감소되었다. 또한, 기온자료만을 이용하는 Hamon, Hargreave-Samani, Thornthwaite 방법들도 보정을 통하여 FAO PM과 큰 차이없는 결과를 도출하였다. 특히 기온기반의 방법들은 기후변화 시나리오 중 상대적으로 불확실성이 낮은 기온자료만을 이용하여 미래의 장기간의 기준증발산량을 전망하거나, 월 또는 계절예측 기온정보를 이용하여 수개월간의 기준증발산량을 예측하는 경우에 유용하게 활용될 수 있을 것이다.

Hargreaves식에 의한 필요수량산정에 관한 소고 (Method for Estimating Irrigation Requirements by G.H. Hargreaves.)

  • 엄태영;홍종진
    • 한국농공학회지
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    • 제18권3호
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    • pp.4195-4205
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    • 1976
  • The purpose of this study is to evaluate the existing methods for calculating or estimating the consumptive use (Evaportranspiration) of any agricutural development project area. In determing the consumptive use water in the project area, there will require the best way for estimating irrigation requirement. Many methods for computing the evaportranspiration have been used, each of them with its merits and demerits at home and abroad. Some of these methods are listed as follows: 1.The Penman's formula 2.The B1aney-Criddle method 3.The Munson P.E. Index method 4.The Atmometer method 5.The Texas Water Rights Commission (TWRC) method 6.The Jensen-Haise method 7.The Christiasen method Therefore, the authors will introduce the more widely used method for calculating Consumptive Use by G.H. Hargreaves. The formula is expressed in the form Ep= K·d·T (1.0-0.01·Hn) Hn=1.0+0.4H+0.005H2. This method was adopted for the first time to determine the Irrigation requirements of Ogseo Comprehensive Agricultual Development project (Benefited area:100,500ha) in Korea. This method is presented in somewhat greater detail than the others. Formula is given for the computation of evaportranspiration (with various levels of data availability) Sampel computation of irrigation requirements for Ogseo irrigation project is included. The results and applied materials are summarized as follows. 1. In calculating the Hargreaves formula, the mean temperature relative, humidity, length of day, and percentage of sunshine from three stations of Iri, Jeonju, and Gunsan were used. 2. Monthly evaporation values were calculated by using the formula. 3. Meteological data from the three stations records for the ten years (1963∼1972) were used. 4. The annual irrigation requirements is 1,186mm per hectare, but the case to consider effective rainfall amount takes the annual irrigation demand being 700mm per hectare.

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수도의 증발산량 추정방법에 관한 연구 (A Study on the Method for Estimating Evapotranspiration from Paddy Fields)

  • 허재석;정하우
    • 한국농공학회지
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    • 제25권2호
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    • pp.86-95
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    • 1983
  • Evapotranspiration is a major factor determining the water consumption in the rice fields. Therefore, realistic evapotranspiration estimates are important to the agricultural water resources planning. In Korea, however, the Blaney-Criddle formula, which was developed under the meteorological condition of western arid United States and the upland cultivation, has been widely used to estimate evapotranspiration from paddy fields. Hence, it has considered that the Blaney-Criddle formula would not be the proper method for the Korean paddy condition. The purpose of this study is to select the most appropriate and realistic method for estimating evapotranspiraion from paddy field in Korea and to derive crop coefficients using the chosen method. The results are summerized as follows. 1. Total seasonal-average evapotranspiration by the field observation was 660mm for Tongil and 621. Ornm for the Japonica variety of rice. The amount of evapotranspiration for Tongil variety was 6% larger than that of the Japonica variety. 2. There was no significant differences in the amount of evapotranspiration among early, middle and late mature varieties, that is, early 638mm, middle 627mm and late 630mm for the whole growing season. 3. The rate of peak evapotranspiration appeared at the beginning of August and was in the range of 7.7-8. Omm/day according to the different mature varieties. 4. The correlation between pan evaporation data and the calculated evapotranspiration using related meteorological data from various methods suggested such as Radiation (FAO), Hargreaves, Christiansen, Hargreaves-Christiansen, Jensen-Haise, showed high statistic significance. Therefore, it seemed to use those formulars in estimating evapotranspiration inste4 of using pan evaporation data. 5. It was concluded from the analysis of field data that the evapotranspiration estimate for Blaney-Criddle method might not be appropriate in Korea. On the other hand, Penman equation showed more accurate estimation at the flourishing stage of rice than the pan evaporation method. 6. The crop coefficients for the Penman and pan-evaporation method were obtained by graphical representation.

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수원지방(水原地方)의 증발산량(蒸發散量) 분석(分析) (Poential evapotranspiration analysis of suweon area)

  • 신용화;황계선
    • 한국토양비료학회지
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    • 제9권1호
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    • pp.47-55
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    • 1976
  • 수원지방(水原地方)의 잠재적(潛在的) 증발산량(蒸發散量)을 파악(把握)하고 또 그의 합리적(合理的)인 산출방법(算出方法)을 기존공식(旣存公式)에서 찾기 위(爲)하여 1964년(年)부터 1973년(年)까지 10개년간(個年間)에 걸쳐 조사(調査)된 기상자료(氣象資料)를 토태(土台)로 Blanney-Criddle을 비롯한 Thornthwaite, Penman, Jensen-Haise, Truc 공식(公式)을 적용(適用)하여 잠재적(潛在的) 증발산량(蒸發散量)을 산출(算出)함과 동시(同時) 이들을 상호(相互) 비교(比較)하였는바 그 결과(結果)를 요약(要約)하면 다음과 같다. 1. 수원지방(水原地方)의 잠재적 증발산량(蒸發散量)은 성하기(盛夏期) 7, 8월(月)을 정점(頂點), 동기(冬期) 1월(月)과 12월(月)을 기점(基點)으로 한 uni-modal distribution을 하고있으며 Blanney-Criddle 공식(公式)에 의(依)한 연증발산량(年蒸發散量)은 1,377mm 그리고 다른 네 공식(公式)에서 산출(算出)된 연증발산량(年蒸發散量)은 714mm에서 896mm 범위(範圍)에 있다. 2. Blanney-Criddle 공식(公式)에서 산출(算出)된 증발산량(蒸發散量)은 다른 네 공식(公式)에서 산출(算出)된 것 보다 많은 한편 다른 네 공식(公式)에서 산출(算出)된 증발산량(蒸發散量) 간(間)에는 대동소리(大同小異)하다. 그러나 이들 네 공식(公式)에서 산출(算出)된 증발산량(蒸發散量)의 평균치(平均値)와 Blanney-Criddle 공식(公式)의 증발산량(蒸發散量) 간(間)에는 고도(高度)의 상관(相關)이 있다. 3. 공식(公式)에서 산출(算出)된 증발산량(蒸發散量)과 기존(旣存)에 표발(表發)된 수도(水稻)에 대(對)한 실제적(實際的) 증발산량(蒸發散量) 간(間)의 관계(關係)에 있어서 Blanney-Criddle 공식(公式)을 기준(基準)으로 할 경우(境遇) 일반품종(一般品種)에는 보정계수(補正係數) 0.8 그리고 통일품종(統一品種)에는 1.0을 대입(代入)하므로서 양자간(兩者間)에는 근사(近似)한 치(値)를 갖게되며 다른 네 공식(公式)의 평균치(平均値)를 기준(基準)으로 할 경우(境遇) 일반품종(一般品種)에는 1.2 그리고 통일품종(統一品種)에는 1.5를 대입(代入)하므로서 상호근사(相互近似)한 치(値)를 갖게된다. 따라서 수원지방(水原地方)의 잠재적(潛在的) 증발산량(蒸發散量)은 Blanney-Criddle과 다른 네 공식(公式)에서 산출(算出)된 증발산량(蒸發散量)의 중간치(中間値)라고 생각된다. 4. 증발산량(蒸發散量) 산출(算出)에 있어서는 공식(公式) 상호간(相互間)에 연관성(連關性)이 있으므로 어느 공식(公式)이든 적용(適用)할 수 있으나 Blanney-Criddle에 의(依)한 증발산량(蒸發散量) 산출(算出)은 다른 네 공식(公式)에 비(比)하여 간단(簡單)하고 용이(容易)하므로 Blanney-Criddle 공식(公式)에 보정계수(補正係數)를 조정(調整)하여 활용(活用)하는 것이 보다 효과적이라고 생각한다.

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토양수분함량 예측 및 계획관개 모의 모형 개발에 관한 연구(I) (A Study on the Development of a Simulation Model for Predicting Soil Moisture Content and Scheduling Irrigation)

  • 김철회;고재군
    • 한국농공학회지
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    • 제19권1호
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    • pp.4279-4295
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    • 1977
  • Two types of model were established in order to product the soil moisture content by which information on irrigation could be obtained. Model-I was to represent the soil moisture depletion and was established based on the concept of water balance in a given soil profile. Model-II was a mathematical model derived from the analysis of soil moisture variation curves which were drawn from the observed data. In establishing the Model-I, the method and procedure to estimate parameters for the determination of the variables such as evapotranspirations, effective rainfalls, and drainage amounts were discussed. Empirical equations representing soil moisture variation curves were derived from the observed data as the Model-II. The procedure for forecasting timing and amounts of irrigation under the given soil moisture content was discussed. The established models were checked by comparing the observed data with those predicted by the model. Obtained results are summarized as follows: 1. As a water balance model of a given soil profile, the soil moisture depletion D, could be represented as the equation(2). 2. Among the various empirical formulae for potential evapotranspiration (Etp), Penman's formula was best fit to the data observed with the evaporation pans and tanks in Suweon area. High degree of positive correlation between Penman's predicted data and observed data with a large evaporation pan was confirmed. and the regression enquation was Y=0.7436X+17.2918, where Y represents evaporation rate from large evaporation pan, in mm/10days, and X represents potential evapotranspiration rate estimated by use of Penman's formula. 3. Evapotranspiration, Et, could be estimated from the potential evapotranspiration, Etp, by introducing the consumptive use coefficient, Kc, which was repre sensed by the following relationship: Kc=Kco$.$Ka+Ks‥‥‥(Eq. 6) where Kco : crop coefficient Ka : coefficient depending on the soil moisture content Ks : correction coefficient a. Crop coefficient. Kco. Crop coefficients of barley, bean, and wheat for each growth stage were found to be dependent on the crop. b. Coefficient depending on the soil moisture content, Ka. The values of Ka for clay loam, sandy loam, and loamy sand revealed a similar tendency to those of Pierce type. c. Correction coefficent, Ks. Following relationships were established to estimate Ks values: Ks=Kc-Kco$.$Ka, where Ks=0 if Kc,=Kco$.$K0$\geq$1.0, otherwise Ks=1-Kco$.$Ka 4. Effective rainfall, Re, was estimated by using following relationships : Re=D, if R-D$\geq$0, otherwise, Re=R 5. The difference between rainfall, R, and the soil moisture depletion D, was taken as drainage amount, Wd. {{{{D= SUM from { {i }=1} to n (Et-Re-I+Wd)}}}} if Wd=0, otherwise, {{{{D= SUM from { {i }=tf} to n (Et-Re-I+Wd)}}}} where tf=2∼3 days. 6. The curves and their corresponding empirical equations for the variation of soil moisture depending on the soil types, soil depths are shown on Fig. 8 (a,b.c,d). The general mathematical model on soil moisture variation depending on seasons, weather, and soil types were as follow: {{{{SMC= SUM ( { C}_{i }Exp( { - lambda }_{i } { t}_{i } )+ { Re}_{i } - { Excess}_{i } )}}}} where SMC : soil moisture content C : constant depending on an initial soil moisture content $\lambda$ : constant depending on season t : time Re : effective rainfall Excess : drainage and excess soil moisture other than drainage. The values of $\lambda$ are shown on Table 1. 7. The timing and amount of irrigation could be predicted by the equation (9-a) and (9-b,c), respectively. 8. Under the given conditions, the model for scheduling irrigation was completed. Fig. 9 show computer flow charts of the model. a. To estimate a potential evapotranspiration, Penman's equation was used if a complete observed meteorological data were available, and Jensen-Haise's equation was used if a forecasted meteorological data were available, However none of the observed or forecasted data were available, the equation (15) was used. b. As an input time data, a crop carlender was used, which was made based on the time when the growth stage of the crop shows it's maximum effective leaf coverage. 9. For the purpose of validation of the models, observed data of soil moiture content under various conditions from May, 1975 to July, 1975 were compared to the data predicted by Model-I and Model-II. Model-I shows the relative error of 4.6 to 14.3 percent which is an acceptable range of error in view of engineering purpose. Model-II shows 3 to 16.7 percent of relative error which is a little larger than the one from the Model-I. 10. Comparing two models, the followings are concluded: Model-I established on the theoretical background can predict with a satisfiable reliability far practical use provided that forecasted meteorological data are available. On the other hand, Model-II was superior to Model-I in it's simplicity, but it needs long period and wide scope of observed data to predict acceptable soil moisture content. Further studies are needed on the Model-II to make it acceptable in practical use.

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