• 제목/요약/키워드: representative IUH

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지형학적 인자를 고려한 대표순간단위도 추정 (The Estimation of Representative IUH Considering Geomorphological Factors)

  • 김주철;정관수;김재한
    • 한국수자원학회논문집
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    • 제36권1호
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    • pp.23-32
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    • 2003
  • 본 연구는 지형학적 인자를 이용하여 유역 대표순간단위도의 유도를 목적으로 한다. 이를 위하여, Nash 모형을 지형학적 순간단위도 모형과 결합하여 대표순간단위도의 매개변수를 추정하고자 하였다. 금강수계의 지류인 보청천 유역의 산계지점을 대상유역으로 선정하여 총 18개 호우사상에 대한 분석을 수행하였다. 그 결과 n은 3.17, k는 7.01로 나타났으며, 모멘트법에 의해 유도된 순간단위도는 호우사상별로 상당한 차이를 보이고 있었다. 본 연구로부터 얻어진 대표순간단위도는 각 호우사상별로 얻어진 단위도들을 대표할 수 있는 중앙치로 나타났으며, 기왕의 방법들과 비교했을 때, 지형학적 요소를 고려한 본 연구방법의 우월성 및 물리적 의미가 크다고 판단된다.

Nash 모형과 Diskin 모형을 이용한 순간단위도의 유도 및 비교 연구 (Derivation and Comparison of Nash and Diskin Models for IUH)

  • 박진욱;유철상;김중훈
    • 한국수자원학회논문집
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    • 제33권1호
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    • pp.123-132
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    • 2000
  • 본 연구에서는 선형인 Nash 모형(1957)과 비선형인 Diskin 모형(1964)을 이용하여 소양강댐 유역에 대해 대표단위를 유도하고 비교, 분석하였다. 본 연구에서는 소양강댐 유역의 14개 호우사상을 이용하였고, 각각에 대해 유출수문곡선의 종거를 가중치로 하는 매개변수의 최적화 방법을 이용 Nash 모형과 Diskin 모형의 매개변수를 추정하였다. 유역의 대표단위도는 이러한 방법으로 추정된 단위도들의 평균적인 형태가 되도록 결정하였다. 각 단위도의 비교에서는 선형인 Nash 모형에 비해 비선형인 Diskin 모형의 경우가 유출을 모의하는데 더욱 적합함을 발견할 수 있었고, 특히 첨두유량의 재현에 Diskin 모형이 우수함을 파악할 수 있었다. 아울러, Diskin 모형의 경우에는 다른 특성을 나타내는 두 저수지의 수를 서로 같게 하는 경우와 다르게 하는 경우 유도된 단위도의 형태에는 큰 차이가 없는 것으로 밝혀졌다.

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규모문제를 고려한 수문응답의 해석: 2. 적용 및 분석 (Hydrologic Response Analysis Considering the Scale Problem: Part 2. Application and Analysis)

  • 성기원;선우중호
    • 물과 미래
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    • 제28권5호
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    • pp.117-127
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    • 1995
  • 해상도를 고려하는 GIUH 모형에 대한 적용과 분석을 평창강 유역의 소유역인 이목정유역에 대하여 수행하였다. 모형의 적용과 Fractal 분석을 위해 1:25,000, 1:50,000 그리고 1:100,000 축척의 지도를 이용하였다. 따라서 축척간의 비율이 일정한 값을 갖는다. 링크의 길이는 해상도 1mm의 구장기를 이용하였고 Fractal 차원은 Richardson 방법을 사용하였다. 지도의 축척에 따라 매개변수들의 현저한 변화를 발견하였으며 이러한 경향은 매개변수의 물리적 의미를 상실하게 한다. 그런데 Fractal 변환과 의 Melton지형법칙은 이러한 규모문제를 효과적으로 조정해주는 역할을 할 수 있다. 그리고 이 방법은 하도망과 유역간의 연관성을 모형에 반영할 수 있는 장점이 있다. 이 연구에서 제안한 GIUH의 적용성을 검증하기 위해 지수형 GIUH 모형과 비교하였다. 그 결과 제안된 2모수 gamma GIUH 모형이 좋은 재현성을 보였다. 따라서 Fractal 이론을 도입한 2모수 gamma GIUH 모형은 축척을 고려하는 IUH를 유도하는데 있어서 적절하다고 할 수 있다.

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The Impact of International Integration on the Inequality of Income between Rural and Urban Areas in Vietnam

  • NGUYEN, Thi Thanh Huyen;NGUYEN, Thi Thu Hien;NGUYEN, Thi Le Hang;NGUYEN, Van Cong
    • The Journal of Asian Finance, Economics and Business
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    • 제7권3호
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    • pp.277-287
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    • 2020
  • The study examines the impact of international integration on Vietnam's rural and urban income inequalities using the regression model. The data used for this study is based on the results of the Vietnam Household Living Standards survey from 2008 to 2016 of the General Statistics Office. These surveys conducted nationwide with a sample size of 46,995 households in 3,133 communes/wards which were representative at national, regional, urban, rural and provincial levels. The level of international economic integration used in the study is the proportion of import and export turnover of GDP, the proportion of FDI and GDP by province. Due to the heterogeneity and unobservableness of the single observant in the data set, we selected the models of random and fixed effects. The research results show that during the economic integration process, the Export/GDP factor is negatively related to income inequality. The remaining factors (GDP per capita, FDI/GDP, Educational level of households, Percentage of internet users, Aggregation of foreign cash inflow and GDP of the province) are all positively related to income inequality. The findings help assess the impact of international integration on rural-urban income inequality, but also provides a concrete basis to help policymakers address income inequality in the integration process.

유역특성에 의한 합성단위도의 유도에 관한 연구 (Derivation of the Synthetic Unit Hydrograph Based on the Watershed Characteristics)

  • 서승덕
    • 한국농공학회지
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    • 제17권1호
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    • pp.3642-3654
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    • 1975
  • The purpose of this thesis is to derive a unit hydrograph which may be applied to the ungaged watershed area from the relations between directly measurable unitgraph properties such as peak discharge(qp), time to peak discharge (Tp), and lag time (Lg) and watershed characteristics such as river length(L) from the given station to the upstream limits of the watershed area in km, river length from station to centroid of gravity of the watershed area in km (Lca), and main stream slope in meter per km (S). Other procedure based on routing a time-area diagram through catchment storage named Instantaneous Unit Hydrograph(IUH). Dimensionless unitgraph also analysed in brief. The basic data (1969 to 1973) used in these studies are 9 recording level gages and rating curves, 41 rain gages and pluviographs, and 40 observed unitgraphs through the 9 sub watersheds in Nak Oong River basin. The results summarized in these studies are as follows; 1. Time in hour from start of rise to peak rate (Tp) generally occured at the position of 0.3Tb (time base of hydrograph) with some indication of higher values for larger watershed. The base flow is comparelatively higher than the other small watershed area. 2. Te losses from rainfall were divided into initial loss and continuing loss. Initial loss may be defined as that portion of storm rainfall which is intercepted by vegetation, held in deppression storage or infiltrated at a high rate early in the storm and continuing loss is defined as the loss which continues at a constant rate throughout the duration of the storm after the initial loss has been satisfied. Tis continuing loss approximates the nearly constant rate of infiltration (${\Phi}$-index method). The loss rate from this analysis was estimated 50 Per cent to the rainfall excess approximately during the surface runoff occured. 3. Stream slope seems approximate, as is usual, to consider the mainstreamonly, not giving any specific consideration to tributary. It is desirable to develop a single measure of slope that is representative of the who1e stream. The mean slope of channel increment in 1 meter per 200 meters and 1 meter per 1400 meters were defined at Gazang and Jindong respectively. It is considered that the slopes are low slightly in the light of other river studies. Flood concentration rate might slightly be low in the Nak Dong river basin. 4. It found that the watershed lag (Lg, hrs) could be expressed by Lg=0.253 (L.Lca)0.4171 The product L.Lca is a measure of the size and shape of the watershed. For the logarithms, the correlation coefficient for Lg was 0.97 which defined that Lg is closely related with the watershed characteristics, L and Lca. 5. Expression for basin might be expected to take form containing theslope as {{{{ { L}_{g }=0.545 {( { L. { L}_{ca } } over { SQRT {s} } ) }^{0.346 } }}}} For the logarithms, the correlation coefficient for Lg was 0.97 which defined that Lg is closely related with the basin characteristics too. It should be needed to take care of analysis which relating to the mean slopes 6. Peak discharge per unit area of unitgraph for standard duration tr, ㎥/sec/$\textrm{km}^2$, was given by qp=10-0.52-0.0184Lg with a indication of lower values for watershed contrary to the higher lag time. For the logarithms, the correlation coefficient qp was 0.998 which defined high sign ificance. The peak discharge of the unitgraph for an area could therefore be expected to take the from Qp=qp. A(㎥/sec). 7. Using the unitgraph parameter Lg, the base length of the unitgraph, in days, was adopted as {{{{ {T}_{b } =0.73+2.073( { { L}_{g } } over {24 } )}}}} with high significant correlation coefficient, 0.92. The constant of the above equation are fixed by the procedure used to separate base flow from direct runoff. 8. The width W75 of the unitgraph at discharge equal to 75 per cent of the peak discharge, in hours and the width W50 at discharge equal to 50 Per cent of the peak discharge in hours, can be estimated from {{{{ { W}_{75 }= { 1.61} over { { q}_{b } ^{1.05 } } }}}} and {{{{ { W}_{50 }= { 2.5} over { { q}_{b } ^{1.05 } } }}}} respectively. This provides supplementary guide for sketching the unitgraph. 9. Above equations define the three factors necessary to construct the unitgraph for duration tr. For the duration tR, the lag is LgR=Lg+0.2(tR-tr) and this modified lag, LgRis used in qp and Tb It the tr happens to be equal to or close to tR, further assume qpR=qp. 10. Triangular hydrograph is a dimensionless unitgraph prepared from the 40 unitgraphs. The equation is shown as {{{{ { q}_{p } = { K.A.Q} over { { T}_{p } } }}}} or {{{{ { q}_{p } = { 0.21A.Q} over { { T}_{p } } }}}} The constant 0.21 is defined to Nak Dong River basin. 11. The base length of the time-area diagram for the IUH routing is {{{{C=0.9 {( { L. { L}_{ca } } over { SQRT { s} } ) }^{1/3 } }}}}. Correlation coefficient for C was 0.983 which defined a high significance. The base length of the T-AD was set to equal the time from the midpoint of rain fall excess to the point of contraflexure. The constant K, derived in this studies is K=8.32+0.0213 {{{{ { L} over { SQRT { s} } }}}} with correlation coefficient, 0.964. 12. In the light of the results analysed in these studies, average errors in the peak discharge of the Synthetic unitgraph, Triangular unitgraph, and IUH were estimated as 2.2, 7.7 and 6.4 per cent respectively to the peak of observed average unitgraph. Each ordinate of the Synthetic unitgraph was approached closely to the observed one.

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