• Title/Summary/Keyword: 증발산량모형

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Estimation of irrigation water need with climate change in Jeju Island (기후변화에 따른 제주도 농업용수 수요량 변화 추정)

  • Kim, Chul-Gyum;Kim, Nam-Won;Cho, Jaepil
    • Proceedings of the Korea Water Resources Association Conference
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    • 2017.05a
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    • pp.459-459
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    • 2017
  • 본 연구에서는 순물소모량 개념의 농업용수 수요량 추정방법을 적용하여 기후변화에 따른 제주도의 미래 수요량 변화를 추정 분석하였다. 지하수를 주 수원으로 하고 관정에 의한 밭작물 위주의 작물재배와, 일정 규모 이상의 강우시에만 유출이 발생하며, 유출량의 대부분이 지하수로 침투되는 물순환 특성 등을 고려할 수 있는 제주도 지역에 적합한 순물소모량 산정방법을 적용하였다. 순물소모량 산정에 필요한 실제증발산량 및 잠재증발산량 등은 유역모형인 SWAT을 이용하여 산정하였다. SWAT 모형의 구동에 필요한 미래 기후자료는 10개의 대표적인 대순환모델(General Circulation Model, GCM) 결과로부터 상세화(Downscaling) 기법을 통해 적용하였으며, RCP 4.5와 RCP 8.5 시나리오를 중심으로 미래 기후변화에 따른 영향을 분석하였다. 미래(2010-2099)의 수문성분별 변화를 살펴본 결과, 연도별 증감과 GCM 모델별 차이는 있으나, 평균적으로 강수량, 잠재증발산량, 실제증발산량, 함양량 등이 점차 증가하는 것으로 나타났으며, RCP 4.5보다는 RCP 8.5 시나리오에서 증가현상이 좀 더 크게 나타났다. 순물소모량 또한 2010년에 비해 2099년을 기준으로 약 100~200mm 정도 증가하는 것으로 나타났으며, RCP 8.5 시나리오에서 증가폭이 크게 나타났다. 그러나 이는 자연적인 기후변화에 따른 단위면적당 순물소모량으로서, 인위적인 요인인 농업형태의 변화(관개면적의 증감, 작물품종의 변화, 인위적 용수절감 등)에 따라 실제 지역별 농업용수 수요량은 다른 경향을 나타낼 수도 있다. 특히 농업용수는 계절별, 지역별 편차가 크게 나타나므로, 자연적 조건에 의한 가용수자원량과 지역별 공급시설에 의한 용수공급량 및 수요예측량의 상호분석을 통해 안정적 물수급을 위한 대응책 마련이 필요할 것으로 판단된다.

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Development of the Model to Estimate Potential Evapotranspiration in Korea (우리나라의 잠재증발산량 변동양상 예측모형 개발)

  • Eom, Ki-Cheol;Jung, Pil-Kyun;Kim, Tae-Wan;Yoo, Sung-Yung;Park, So-Hyun
    • Korean Journal of Soil Science and Fertilizer
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    • v.44 no.5
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    • pp.674-678
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    • 2011
  • The model to estimate potential evapotranspiration (PET) was developed using periodic function. Average PET during 30 years for 67 areas was $2.36mm\;day^{-1}$, and those were distributed with the range of $1.42{\sim}3.45mm\;day^{-1}$. The period of PET change was 16~32 years according to area.

A drought assessment using the generalized complementary principle of evapotranspiration (증발산 상호보완이론을 이용한 가뭄해석)

  • Chun, Jong Ahn;Kim, Daeha
    • Journal of Korea Water Resources Association
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    • v.52 no.5
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    • pp.325-335
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    • 2019
  • To characterize historical droughts in the conterminous United States (CONUS), we estimated the actual evapotranspiration ($ET_a$) in the CONUS using the generalized complementary relationship (GCR) for 1895-2016. The $ET_a$ estimates were compared against simulations from the Noah land surface model (LSM). In this study, the evapotranspiration (ET) deficit defined as the difference between the wet-environment ET ($ET_w$) and $ET_a$ was then normalized to calculate the Standardized Evapotranspiration Deficit Index (SEDI) across the CONUS for the years 1895-2016. The SEDI was compared to the Standard Precipitation Index (SPI) at various time scales. The results showed that the GCR $ET_a$ was slightly higher than the Noah LSM-simualted $ET_a$. As time scales increased, the correlation between the SEDI and the SPI was higher. This study suggests that the GCR has promise as a tool in the estimation of $ET_a$ and SEDI can be useful for the drought characterization.

Research Status of Satellite-based Evapotranspiration and Soil Moisture Estimations in South Korea (위성기반 증발산량 및 토양수분량 산정 국내 연구동향)

  • Choi, Ga-young;Cho, Younghyun
    • Korean Journal of Remote Sensing
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    • v.38 no.6_1
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    • pp.1141-1180
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    • 2022
  • The application of satellite imageries has increased in the field of hydrology and water resources in recent years. However, challenges have been encountered on obtaining accurate evapotranspiration and soil moisture. Therefore, present researches have emphasized the necessity to obtain estimations of satellite-based evapotranspiration and soil moisture with related development researches. In this study, we presented the research status in Korea by investigating the current trends and methodologies for evapotranspiration and soil moisture. As a result of examining the detailed methodologies, we have ascertained that, in general, evapotranspiration is estimated using Energy balance models, such as Surface Energy Balance Algorithm for Land (SEBAL) and Mapping Evapotranspiration with Internalized Calibration (METRIC). In addition, Penman-Monteith and Priestley-Taylor equations are also used to estimate evapotranspiration. In the case of soil moisture, in general, active (AMSR-E, AMSR2, MIRAS, and SMAP) and passive (ASCAT and SAR)sensors are used for estimation. In terms of statistics, deep learning, as well as linear regression equations and artificial neural networks, are used for estimating these parameters. There were a number of research cases in which various indices were calculated using satellite-based data and applied to the characterization of drought. In some cases, hydrological cycle factors of evapotranspiration and soil moisture were calculated based on the Land Surface Model (LSM). Through this process, by comparing, reviewing, and presenting major detailed methodologies, we intend to use these references in related research, and lay the foundation for the advancement of researches on the calculation of satellite-based hydrological cycle data in the future.

Neural Networks-Genetic Algorithm Model for Modeling of Nonlinear Evaporation and Evapotranpiration Time Series. 2. Optimal Model Construction by Uncertainty Analysis (비선형 증발량 및 증발산량 시계열의 모형화를 위한 신경망-유전자 알고리즘 모형 2. 불확실성 분석에 의한 최적모형의 구축)

  • Kim, Sung-Won;Kim, Hung-Soo
    • Journal of Korea Water Resources Association
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    • v.40 no.1 s.174
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    • pp.89-99
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    • 2007
  • Uncertainty analysis is used to eliminate the climatic variables of input nodes and construct the model of an optimal type from COMBINE-GRNNM-GA(Type-1), which have been developed in this issue(2007). The input variable which has the lowest smoothing factor during the training performance, is eliminated from the original COMBINE-GRNNM-GA (Type-1). And, the modified COMBINE-GRNNM-GA(Type-1) is retrained to find the new and lowest smoothing factor of the each climatic variable. The input variable which has the lowest smoothing factor, implies the least useful climatic variable for the model output. Furthermore, The sensitive and insensitive climatic variables are chosen from the uncertainty analysis of the input nodes. The optimal COMBINE-GRNNM-GA(Type-1) is developed to estimate and calculate the PE which is missed or ungaged and the $ET_r$ which is not measured with the least cost and endeavor Finally, the PE and $ET_r$. maps can be constructed to give the reference data for drought and irrigation and drainage networks system analysis using the optimal COMBINE-GRNNM-GA(Type-1) in South Korea.

Altitudinal Pattern of Evapotranspiration and Water Need for Upland Crops in Jeju Island (제주도 지역의 고도에 따른 증발산량 및 용수량 특성 평가)

  • Kim, Chul Gyum;Kim, Nam Won
    • Journal of Korea Water Resources Association
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    • v.48 no.11
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    • pp.915-923
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    • 2015
  • A method of estimating irrigation water need based on water balance and net water consumption concept is proposed, and applied to four watersheds in order to assess the regional and altitudinal characteristics of evapotranspiration and water need for upland crops in Jeju Island. Potential and actual evapotranspiration, and net water need were calculated during the period 1992 to 2013 using SWAT-K watershed model. The annual potential evapotranspiration decreased linearly with increasing elevation, while actual evapotranspiration showed increase with elevation to 400 m around and gradual decrease at higher elevation due to vegetation species, water availability, and cold limitation. Altitudinal pattern of net water need showed linear decrease with increasing elevation for three watersheds (Han-cheon, Cheonmi-cheon, and Oedo-cheon), and annual values of net water need for upland areas (below 200 m in elevation) were 559~680mm/yr. The comparison between actual pumping rate from wells and net water need for irrigation area showed that the amount of pumping water significantly increased during summer season (June to August), while net water need for crop cultivation relatively decreased during this period. To ensure these results, more water use data from pumping wells and additional watersheds should be investigated in the next study.

Modeling of Estimating Soil Moisture, Evapotranspiration and Yield of Chinese Cabbages from Meteorological Data at Different Growth Stages (기상자료(氣象資料)에 의(依)한 배추 생육시기별(生育時期別) 토양수분(土壤水分), 증발산량(蒸發散量) 및 수량(收量)의 추정모형(推定模型))

  • Im, Jeong-Nam;Yoo, Soon-Ho
    • Korean Journal of Soil Science and Fertilizer
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    • v.21 no.4
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    • pp.386-408
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    • 1988
  • A study was conducted to develop a model for estimating evapotranspiration and yield of Chinese cabbages from meteorological factors from 1981 to 1986 in Suweon, Korea. Lysimeters with water table maintained at 50cm depth were used to measure the potential evapotranspiration and the maximum evapotranspiration in situ. The actual evapotranspiration and the yield were measured in the field plots irrigated with different soil moisture regimes of -0.2, -0.5, and -1.0 bars, respectively. The soil water content throughout the profile was monitored by a neutron moisture depth gauge and the soil water potentials were measured using gypsum block and tensiometer. The fresh weight of Chinese cabbages at harvest was measured as yield. The data collected in situ were analyzed to obtain parameters related to modeling. The results were summarized as followings: 1. The 5-year mean of potential evapotranspiration (PET) gradually increased from 2.38 mm/day in early April to 3.98 mm/day in mid-June, and thereafter, decreased to 1.06 mm/day in mid-November. The estimated PET by Penman, Radiation or Blanney-Criddle methods were overestimated in comparison with the measured PET, while those by Pan-evaporation method were underestimated. The correlation between the estimated and the measured PET, however, showed high significance except for July and August by Blanney-Criddle method, which implied that the coefficients should be adjusted to the Korean conditions. 2. The meteorological factors which showed hgih correlation with the measured PET were temperature, vapour pressure deficit, sunshine hours, solar radiation and pan-evaporation. Several multiple regression equations using meteorological factors were formulated to estimate PET. The equation with pan-evaporation (Eo) was the simplest but highly accurate. PET = 0.712 + 0.705Eo 3. The crop coefficient of Chinese cabbages (Kc), the ratio of the maximum evapotranspiration (ETm) to PET, ranged from 0.5 to 0.7 at early growth stage and from 0.9 to 1.2 at mid and late growth stages. The regression equation with respect to the growth progress degree (G), ranging from 0.0 at transplanting day to 1.0 at the harvesting day, were: $$Kc=0.598+0.959G-0.501G^2$$ for spring cabbages $$Kc=0.402+1.887G-1.432G^2$$ for autumn cabbages 4. The soil factor (Kf), the ratio of the actual evapotranspiration to the maximum evapotranspiration, showed 1.0 when the available soil water fraction (f) was higher than a threshold value (fp) and decreased linearly with decreasing f below fp. The relationships were: Kf=1.0 for $$f{\geq}fp$$ Kf=a+bf for f$$I{\leq}Esm$$ Es = Esm for I > Esm 6. The model for estimating actual evapotranspiration (ETa) was based on the water balance neglecting capillary rise as: ETa=PET. Kc. Kf+Es 7. The model for estimating relative yield (Y/Ym) was selected among the regression equations with the measured ETa as: Y/Ym=a+bln(ETa) The coefficients and b were 0.07 and 0.73 for spring Chinese cabbages and 0.37 and 0.66 for autumn Chinese cabbages, respectively. 8. The estimated ETa and Y/Ym were compared with the measured values to verify the model established above. The estimated ETa showed disparities within 0.29mm/day for spring Chinese cabbages and 0.19mm/day for autumn Chinese cabbages. The average deviation of the estimated relative yield were 0.14 and 0.09, respectively. 9. The deviations between the estimated values by the model and the actual values obtained from three cropping field experiments after the completion of the model calibration were within reasonable confidence range. Therefore, this model was validated to be used in practical purpose.

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Estimation of low flow by grid-based continuous hydrologic modelling (격자기반 분포형 수문모델링을 활용한 하천갈수량 산정)

  • Lee, Yonggwan;Jang, Wonjin;Lee, Jiwan;Han, Daeyoung;Kim, Seongjoon
    • Proceedings of the Korea Water Resources Association Conference
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    • 2021.06a
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    • pp.34-34
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    • 2021
  • 본 연구에서는 격자기반 분포형 수문모델링을 통해 하천갈수량을 추정하고자 한다. 분포형 수문모형은 단방향흐름 알고리즘에 의한 토양 물수지식을 기반으로 개발되었으며 운동파(kinematic wave) 이론을 적용하여 지표 및 지표하 유출을 모의한다. 또한, 격자별로 수문학적 물수지요소인 차단량, 증발산량, 침투 및 침루량, 지하수충전량 등을 계산하며, 댐·보 방류량을 해당 지점 격자의 물수지에 적용할 수 있도록 개발하였다. 본 모형은 2개의 다목적댐과 3개의 다기능보가 위치한 금강유역(9,645.5 km2)에 적용하였으며, 유역 면적과 하천 유속을 고려하여 1 km × 1 km 격자를 구성하고 10분 간격으로 2013년부터 2020년까지 수문모의를 진행하였다. 모형의 입력자료로 유역 인근의 12개 기상관측소로부터 시단위 기상자료를 구축하였으며, 모형의 검보정은 일단위 관측유량(Q), 플럭스 타워 증발산량, 실측 토양수분 및 지하수위 자료를 구축하여 활용하였다. 댐 및 보 지점에 대해 Q와 1/Q로 검보정을 수행한 결과, 평균 결정계수(R2)는 댐 지점에서 0.53~0.65, 보 지점에서 0.46~0.69의 값을 나타냈으며, Nash-Shtcliffe efficiency(NSE)는 댐 지점에서 0.46~0.55, 보 지점에서 0.31~0.65의 값을 나타냈다. 공간 보정을 위해 증발산량, 토양수분, 지하수위에 대한 검보정을 수행할 예정이며, 유황곡선을 활용하여 하천차수, 토양속성 및 토지이용에 따른 하천갈수량을 분석할 예정이다.

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Change analysis of future streamflow in South Korea using the HSPF model (HSPF 모형을 이용한 미래 남한 유출량 변화 분석)

  • Park, Jihoon;Cho, Jaepil;Jung, Imgook;Choi, Kyuhyun;Cho, Hyo seob
    • Proceedings of the Korea Water Resources Association Conference
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    • 2021.06a
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    • pp.396-396
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    • 2021
  • 본 연구의 목적은 HSPF(hydrological simulation program-FORTRAN) 모형을 이용하여 기후변화에 따른 남한의 유출량 변화를 분석하는 데 있다. 상세화 작업을 수행한 13개의 GCM(global climate model)을 이용하여 기후변화 시나리오를 구축하여 미래 유출량을 추정하는 데 사용하였다. 미래 유출량을 생산하기 위해 앞에서 선정한 13개 GCM을 사용하여 수문기상자료를 구축하였다. 모의기간은 S0: reference period (1976-2005), S1: near future period (2011-2040), S2: mid-century period (2041-2070), S3: distance future period (2071-2100) 총 4개로 구분하였다. 공간적으로는 109개 중권역을 대상으로 HSPF 모형을 모의한 다음 최종적으로 남한을 대상으로 분석하였다. HSPF 모형의 매개변수 보검정은 장기간의 일별유량자료가 구축된 총 6개 댐 상류유역을 선정하여 수행하였다. 유출량은 기본적으로 강수량과 증발산량에 굉장히 영향을 받으며, 미래 수문기상자료를 분석한 결과 남한의 강수량과 증발산량이 모두 증가하는 경향을 보인다. 다만 강수량의 상대적인 변화가 증발산량의 변화보다 크기 때문에 전반적으로 미래 유출량을 증가하는 것으로 분석되었다. 특히 미래 강수량은 미래 변동성이 굉장히 큰 특징을 가지고 있으며 이러한 이유로 미래 유출량의 변동성도 큰 것으로 분석되었다. 계절적으로 살펴보면 여름과 가을의 미래 유출량이 증가하고 겨울에는 감소하는 것으로 분석되었다. 가을과 겨울의 변동성이 매우 큰 특징을 보이며 미래 극한 홍수와 가뭄의 출현 빈도가 높아질 것으로 보인다. 본 연구 결과는 남한의 기후변화 적응 대책을 수립하는 데 있어 기초자료로 활용할 수 있을 것으로 사료된다.

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Simulation of the Effects of Climate Change on Yield of Maize in Zimbabwe (기후변화가 짐바브웨 옥수수 수확량에 미치는 영향 모의)

  • Temba, Nkomozepi;Chung, Sang-Ok
    • Journal of The Korean Society of Agricultural Engineers
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    • v.53 no.3
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    • pp.65-73
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    • 2011
  • 기후변화는 에너지 수지와 물 수지의 변화를 초래하여 육상 생물권에 영향을 미칠 것이다. 기온과 강수량의 변화와 대기중의 탄산가스 농도 변화는 작물의 생육환경을 크게 변화시킬 것이다. 본 연구에서는 FAO AquaCrop 모형을 이용하여 기온과 강수량의 변화와 대기중 탄산가스 농도의 변화가 짐바브웨의 옥수수 수확량에 미치는 영향을 분석하였다. 미래 기후 값은 HadCM3 모형 예측 값을 change factor 기법으로 상세화 하였다. 배출 시나리오는 A2와 B2를 선정하였으며 시간대는 2020s, 2050s 및 2080s의 30년 기간을 선정하였다. 기준작물 증발산량은 Penman-Monteith 식으로 산정하였다. 관개용수 공급이 충분한 것으로 가정하고 전통적인 보충관개를 실시하였을 때 기준년도 (1970s)에 비해 옥수수 증발산량은 최대 26 %, 옥수수 잠재 수확량은 최대 93 %까지 증가할 것으로 예측되었으며 물의 생산성은 최대 53 %까지 증가할 것으로 예측되었다.