• Title/Summary/Keyword: Han and Nakdong river

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A Hydraulic and Hydrologic Investigation of Vegetation Recruitment on Sandbars in Front of the Historical Village of Hahoe on the Nakdong River (낙동강 하회마을 사주상 식생활착에 관한 수리, 수문학적 조사분석)

  • Woo, Hyo-Seop;Kim, Ji-Sung;Park, Moon-Hyeong;Jeong, Sang-Jun;Kim, Han-Tae
    • Proceedings of the Korea Water Resources Association Conference
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    • 2010.05a
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    • pp.509-514
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    • 2010
  • 낙동강 상류에 있는 하회마을은 영남지방 600년 전통의 농경마을로서 귀중한 전통문화유산이다. 이 마을의 역사적, 문화적, 경관적 가치 중 하나는 마을 앞을 흐르는 낙동강과 강 양안에 형성된 백사장 사주이다. 그러나 1970년대 중반과 1990년대 초 상류에 두 댐의 건설로 하류 유황과 유사 이송 양상이 변화하여 과거 수백 년 동안 '완벽한' 백사장을 유지해온 두 사주에 식생이 점차 이입, 활착하여 하회마을의 역사적, 문화적 경관 가치에 부정적 영향을 주기 시작하였다. 낙동강 본류에 안동댐이 준공된 1976년 이후에는 댐 건설 전과 비교하여 큰 변화는 없었으나 반변천에 임하댐이 준공된 1992년 이후 점차적으로 두 사주에 식생이 이입, 활착하기 시작하여 현재 상당한 범위까지 식생이 번무하였다. 이 같은 사주 상 식생 이입과 활착의 원인과 과정을 기초적으로 조사, 분석하기 위해 우선 과거 자료가 있는 항공사진과 지상 사진을 수집하여 연도별 식생 활착 상황을 조사하였다. 다음 하회마을 상하류 약 11.5 km 구간을 대상으로 과거 홍수자료를 가지고 두댐 건설 전후 기간으로 나누어 2차원 흐름 모의를 하여 무차원 하상소류력 분포를 분석하였다. 분석 결과는 기존 항공, 지상 사진과 비교 검토하였다. 그 결과 임하댐 건설 이후 두 사주의 홍수시 무차원 하상소류력이 하상입자가 움직이기 시작하는 0.06 이하가 되는 부분이 확대되어 식생 이입, 활착에 유리한 조건을 형성하게 된 것으로 나타났다.

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Quantitative evaluation of climate change and human activities on watershed runoff: focused on the Nakdong River basin (기후변화와 인간 활동이 하천 유출량에 미치는 영향에 대한 정량적 평가: 낙동강 유역을 중심으로)

  • Mi Ju Oh;Dongwook Kim;Hyun-Han Kwon;Tae-Woong Kim
    • Proceedings of the Korea Water Resources Association Conference
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    • 2023.05a
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    • pp.241-241
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    • 2023
  • 최근 수십 년 동안 전 세계의 거의 모든 하천 유역은 기후변화와 인간 활동에 의해 직간접적으로 영향을 받았다. 특히, 유역 유출량은 기후변화와 인간 활동의 상호작용으로 수자원 분야에서 문제가 되고 있다. 기후와 인간 활동에 의해 변화하는 환경에서 수자원을 효율적으로 관리하기 위해서 유출량의 변화를 이해하는 것은 매우 중요하다. 따라서, 본 연구에서는 낙동강 유역의 22개 중권역을 대상으로 과거 관측자료 및 미래 기후변화 시나리오의 유출량, 강수량, 기온, 잠재 증발산량 및 실제 증발산량 자료를 이용하여 기후변화와 인간 활동이 유출량에 미치는 영향을 정량적으로 분석하였다. 과거 관측자료를 분석할 경우, 기초자료인 유출량의 경향성 및 유의성을 검증하기 위해 비모수적 방법인 Mann-Kendall 검증을 수행하였으며, Pettitt method를 이용하여 변화 지점을 결정하여 기준기간과 사후기간으로 구분하였다. 또한 Budyko 가설 기반 기후 탄력성 접근법을 이용하여 기후변화와 인간 활동이 하천 유출량에 미치는 영향을 정량적으로 분리하였다. 미래 RCP 시나리오 자료를 분석할 경우에도 기간을 나누고 기후 탄력성 접근법을 이용하여 유출량의 영향을 평가하였다. 분석 결과, 기후변화와 인간 활동의 상대적 기여도는 중권역 간에도 다양하다는 것을 확인할 수 있었다. 미래의 유출량을 분석한 결과, 대부분의 유역에서 기후변화의 기여도는 RCP 4.5일 때에 비해 RCP 8.5에서 더 크게 상승한 것으로 나타났다. 과거 기간(1966~2020)에 대하여 미래 기간 (2062~2099)에 대한 분석에서 중권역 중 금호강(#2012)은 RCP 4.5에서는 22.4%, RCP 8.5에서는 39.8%로 RCP 8.5가 큰 것으로 나타났다.

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Studies on the Variation Pattern of Water Resources and their Generation Models by Simulation Technique (Simulation Technique에 의한 수자원의 변동양상 및 그 모의발생모델에 관한 연구)

  • Lee, Sun-Tak;An, Gyeong-Su;Lee, Ui-Rak
    • Water for future
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    • v.9 no.2
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    • pp.87-100
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    • 1976
  • These studies are aimed at the analysis of systematic variation pattern of water resources in Korean river catchments and the development of their simulation models from the stochastic analysis of monthly and annual hydrologic data as main elements of water resources, i.e. rainfall and streamflow. In the analysis, monthly & annual rainfall records in Soul, Taegu, Pusan and Kwangju and streamflow records at the main gauging stations in Han, Nakdong and Geum river were used. Firstly, the systematic variation pattern of annual streamflow was found by the exponential function relationship between their standard deviations and mean values of log-annual runoff. Secondly, stochastic characteristics of annual rainfall & streamflow series were studied by the correlogram Monte Carlo method and a single season model of 1st-order Markov type were applied and compared in the simulation of annual hydrologic series. In the simulation, single season model of Markov type showed better results than LN-model and the simulated data were fit well with historical data. But it was noticed that LN-model gave quite better results in the simulation of annual rainfall. Thirdly, stochastic characteristics of monthly rainfall & streamflow series were also studied by the correlogram and spectrum analysis, and then the Model-C, which was developed and applied for the synthesis of monthly perennial streamflow by lst author and is a Markov type model with transformed skewed random number, was used in the simulation of monthly hydrologic series. In the simulation, it was proved that Model-C was fit well for extended area in Korea and also applicable for menthly rainfall as well as monthly streamflow.

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Flood Risk Mapping with FLUMEN model Application (FLUMEN 모형을 적용한 홍수위험지도의 작성)

  • Cho, Wan Hee;Han, Kun Yeun;Ahn, Ki Hong
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.30 no.2B
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    • pp.169-177
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    • 2010
  • Recently due to the typhoon and extreme rainfall induced by abnormal weather and climate change, the probability of severe damage to human life and property is rapidly increasing. Thus it is necessary to create adequate and reliable flood risk map in preparation for those natural disasters. The study area is Seo-gu in Daegu which is located near Geumho river, one of the tributaries of Nakdong river. Inundation depth and velocity at each time were calculated by applying FLUMEN model to the target area of interest, Seo-gu in Daegu. And the research of creating flood risk map was conducted according to the Downstream Hazard Classification Guidelines of USBR. The 2-dimensional inundation analysis for channels and protected lowland with FLUMEN model was carried out with the basic assumption that there's no levee failure against 100 year precipatation and inflow comes only through the overflowing to the protected lowland. The occurrence of overflowing was identified at the levee of Bisan-dong located in Geumho watershed. The level of risk was displayed for house/building residents, drivers and pedestrians using information about depth and velocity of each node computed from the inundation analysis. Once inundation depth map and flood risk map for each region is created with this research method, emergency action guidelines for residents can be systemized and it would be very useful in establishing specified emergency evacuation plans in case of levee failure and overflowing resulting from a flood.

Distribution Characteristics of DEHA, Carbaryl, and Amitrole in the Fishes and Amphibians from the Major River Systems of Korea (우리나라 주요 수계에 서식하는 어류 및 양서류 체내에 함유된 DEHA, Carbaryl, Amitrole의 분포특성)

  • Joo, Yeo Jeong;Kim, Hye Sook;Kim, Young Bok;Moon, Ji Yong;Jeong, Gi Ho
    • Analytical Science and Technology
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    • v.15 no.2
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    • pp.149-156
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    • 2002
  • In this study, the levels of DEHA, carbaryl, and amitrole contained in the fresh water fishes and amphibians were determined. The 31 sampling sites were selected including 29 sites along the several rivers and 2 sites from the well-known wet lands. The rivers consists of the Han, Nakdong, Kum, Youngsan, and other small scaled rivers. DEHA was detected from 10 sites, but carbaryl and amitrole were not detected at any sites. The highest average concentration of DEHA was determined from the Kum River by $52.7{\mu}g/kg$. In the detected 10 sites, the average concentration of DEHA from fishes was $40.0{\mu}g/kg$, and that from amphibians was $8.90{\mu}g/kg$ which indicates that 5 times more DEHA was observed from fishes than amphibians. The detection frequency from fishes was 10/62 while that from amphibians was 2/62, and the highest concentration from fishes was $95.5{\mu}g/kg$ (crucians from Kongjoo) and that from amphibians was $12.1{\mu}g/kg$ (bullfrog from Najoo). Among the 10 detected sites, 6 sites were agricultural area and the other 4 sites were semi-urban area.

Analysis of Korea Soil Loss and Hazard Zone (한국토양유실량 및 토양유실위험 지역 분석)

  • Kim, Joo-Hun;Kim, Kyung-Tak;Lee, Hyo-Jeong
    • Spatial Information Research
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    • v.17 no.3
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    • pp.261-268
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    • 2009
  • This study accomplished to draw a soil erosion map and a grade map of soil loss hazard in Korea. RUSLE and Rainfall-runoff (R) factor, which was estimated by using the rainfall data observed in 59 meteorological stations from 1977 to 2006 (for 30 years). FARD was used to analyze the frequency, and the whole country R factor was estimated according to the frequency. In the analysis of estimating the whole country R factor, Nakdong river has the smallest vaule, but Han river has the biggest value. According to the result of analyzing soil loss, soil loss occurred in a grass land, a bare land and a field in size order, and also approximately 17.2 ton/ha soil loss happened on the whole area. The average soil loss amount by the unit area takes place in a bare land and a grass land a lot. The total amount of soil loss in 5-year-frequency rainfall yields 15,000 ton and, what is more, a lot of soil loss happens in a paddy field, a forest and a crop field. The grade map of soil loss hazard is drawn up by classifying soil loss hazard grade by 5. As a result of analyzing soil loss, the moderate area which is the soil loss hazard grade 2 takes up the largest part, 72.8% of the total soil loss hazard area, on the contrary, the severe soil loss hazard area takes up only $1,038km^2$ (1.1%) of the whole area. The severe soil loss hazard area by land cover shows $93.5km^2$ in a bare land, $168.1km^2$ in a grass land and $327.4km^2$ in a crop field respectively.

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A Study on Hydrologic Clustering for Standard Watersheds of Korea Water Resources Unit Map Using Multivariate Statistical Analysis (다변량 통계분석기법을 이용한 전국 표준유역 대상 수문학적 군집화 연구)

  • Ahn, So-Ra;Kim, Sang-Ho;Kim, Seong-Joon
    • Journal of the Korean Association of Geographic Information Studies
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    • v.17 no.1
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    • pp.91-106
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    • 2014
  • This study tries to cluster the 795 standard watersheds of Korea Water Resources Unit Map using multivariate statistical analysis technique. The 30 factors of watershed characteristics related to topography, stream, meteorology, soil, land cover and hydrology were selected for comprehensive analysis. From the factor analysis, 16 representative factors were selected. The significant factors in order were the pedological feature, scale and geological location and meteorological and hydrological features of the watershed. As a next step, the 73 gauged watersheds were selected for cluster analysis. They are scattered properly to the whole country and the discharge data were within a confidential level. Based on the 73 watersheds, the other ungaged watersheds were clustered by applying the 16 factors and calculating Euclidian distances. The clustering results showed that the similarity between standard watersheds within the same river basin were 87%, 69%, 41%, 52%, and 27% for Han, Nakdong, Geum, Seomjin, and Yeongsan river basins respectively.

A Study on Verification of Delivery Ratio Methodology for Basic Plan at TPLMs(Total Pollutant Load Management System) (수질오염총량관리계획 수립을 위한 유달율 적용방안 검증 연구)

  • Lee, Sung Jun;Rhee, Han Pil;Park, Ji Hyung;Kim, Yong Seok;Hwang, Ha Sun
    • Journal of Korean Society of Environmental Engineers
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    • v.39 no.12
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    • pp.714-722
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    • 2017
  • The TPLMs is a system to manage the total amount of pollutants discharged from the watershed in order to achieve the target water quality of the river. In this process, the pollutant load can be classified into generation, discharge and delivery load. When using equation 2, the discharge coefficient should be 1. In case of using equation 3, it is considered that the discharge coefficient defined in the Technical Guideline should be applied. The delivery load is calculated as the product of the discharge load and the delivery ratio, and the delivery ratio is defined as the rate at which the pollutant discharged from the watershed reaches a specific point in the stream. In this study, the delivery ratio estimation method proposed by Hwang (2016) was applied to the Yonggang watershed in the Nakdong river. And the input data of QUALKO2 model was generated by using the estimated delivery ratio (equation 3) and the validation study was conducted by comparing with DRave (equation 2). As a result of the study, it is possible to use both the equation 2 and the equation 3, but it is necessary to change the methodology according to the application of the discharge coefficient.

Ichthyofauna and Community Structure from 21 Lakes in the Yeungnam Area including Gyeongsangbukdo and Gyeongsangnam-do Provinces, Korea (영남지역 21개 호소의 어류상과 군집구조)

  • Kim, Sang-Ki;Kang, Yeong-Hoon;Hong, Gi-Bung;Yoo, Dong-Uk;Suk, Ho-Yeong;Chae, Byung-Soo;Kim, Han-Sun;Hwang, Ui-Wook
    • Korean Journal of Ichthyology
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    • v.23 no.4
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    • pp.288-299
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    • 2011
  • Freshwater fish fauna and community structure were surveyed through 21 lakes in the Yeungnam area including Gyeongsangbukdo and Gyeongsangnamdo provinces, Korean Peninsula from April 2008 to October 2009. Among 21 lakes, 16 lakes belong to the Nakdong River and 5 are independent drainages. From the present study, 61 species (44 genera, 15 families) were collected including 32 cyprinid species (52.5%), 6 cobitid species (9.8%) and so on. The dominant and subdominant species in aspect of the number of individuals were Hypomesus nipponensis (26.6%) and Squalidus gracilis majimae (14.8%), respectively. On the other hand, in aspect of in biomass, dominant and subdominant species were Lepomis macrochirus (19.8%) and Cyprinus carpio (14.7%), respectively. Among 61 examined species, there were found 20 Korean endemic species and 2 Korean endangered species (Pseudobagrus brevicorpus and Pungitius kaibarae). P. brevicorpus was found in Yongyeonji and Yeongcheonho, and P. kaibarae in Yongyeonji. In addition, 5 exotic species were identified such as Cyprinus carpio nudus (leather carp), Carassius cuvieri, Hypophthalmichthys molitrix, Lepomis macrochirus and Micropterus salmoides. Interestingly, a bluegill L. machrochirus appeared dominant or subdominant species in 5 of 21 examined lakes. Five species introduced from the other rivers in Korean Peninsula were additionally described. In the present study, it was first reported that Micropercops swinhonis inhabits in the Nakdong river basin. The fish species diversity, evenness and dominant indices were examined, and a dendrogram based on similarity indices of inhabiting species among the 21 examined lakes was constructed and discussed.

Studies on the Derivation of the Instantaneous Unit Hydrograph for Small Watersheds of Main River Systems in Korea (한국주요빙계의 소유역에 대한 순간단위권 유도에 관한 연구 (I))

  • 이순혁
    • Magazine of the Korean Society of Agricultural Engineers
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    • v.19 no.1
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    • pp.4296-4311
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    • 1977
  • This study was conducted to derive an Instantaneous Unit Hydrograph for the accurate and reliable unitgraph which can be used to the estimation and control of flood for the development of agricultural water resources and rational design of hydraulic structures. Eight small watersheds were selected as studying basins from Han, Geum, Nakdong, Yeongsan and Inchon River systems which may be considered as a main river systems in Korea. The area of small watersheds are within the range of 85 to 470$\textrm{km}^2$. It is to derive an accurate Instantaneous Unit Hydrograph under the condition of having a short duration of heavy rain and uniform rainfall intensity with the basic and reliable data of rainfall records, pluviographs, records of river stages and of the main river systems mentioned above. Investigation was carried out for the relations between measurable unitgraph and watershed characteristics such as watershed area, A, river length L, and centroid distance of the watershed area, Lca. Especially, this study laid emphasis on the derivation and application of Instantaneous Unit Hydrograph (IUH) by applying Nash's conceptual model and by using an electronic computer. I U H by Nash's conceptual model and I U H by flood routing which can be applied to the ungaged small watersheds were derived and compared with each other to the observed unitgraph. 1 U H for each small watersheds can be solved by using an electronic computer. The results summarized for these studies are as follows; 1. Distribution of uniform rainfall intensity appears in the analysis for the temporal rainfall pattern of selected heavy rainfall event. 2. Mean value of recession constants, Kl, is 0.931 in all watersheds observed. 3. Time to peak discharge, Tp, occurs at the position of 0.02 Tb, base length of hlrdrograph with an indication of lower value than that in larger watersheds. 4. Peak discharge, Qp, in relation to the watershed area, A, and effective rainfall, R, is found to be {{{{ { Q}_{ p} = { 0.895} over { { A}^{0.145 } } }}}} AR having high significance of correlation coefficient, 0.927, between peak discharge, Qp, and effective rainfall, R. Design chart for the peak discharge (refer to Fig. 15) with watershed area and effective rainfall was established by the author. 5. The mean slopes of main streams within the range of 1.46 meters per kilometer to 13.6 meter per kilometer. These indicate higher slopes in the small watersheds than those in larger watersheds. Lengths of main streams are within the range of 9.4 kilometer to 41.75 kilometer, which can be regarded as a short distance. It is remarkable thing that the time of flood concentration was more rapid in the small watersheds than that in the other larger watersheds. 6. Length of main stream, L, in relation to the watershed area, A, is found to be L=2.044A0.48 having a high significance of correlation coefficient, 0.968. 7. Watershed lag, Lg, in hrs in relation to the watershed area, A, and length of main stream, L, was derived as Lg=3.228 A0.904 L-1.293 with a high significance. On the other hand, It was found that watershed lag, Lg, could also be expressed as {{{{Lg=0.247 { ( { LLca} over { SQRT { S} } )}^{ 0.604} }}}} in connection with the product of main stream length and the centroid length of the basin of the watershed area, LLca which could be expressed as a measure of the shape and the size of the watershed with the slopes except watershed area, A. But the latter showed a lower correlation than that of the former in the significance test. Therefore, it can be concluded that watershed lag, Lg, is more closely related with the such watersheds characteristics as watershed area and length of main stream in the small watersheds. Empirical formula for the peak discharge per unit area, qp, ㎥/sec/$\textrm{km}^2$, was derived as qp=10-0.389-0.0424Lg with a high significance, r=0.91. This indicates that the peak discharge per unit area of the unitgraph is in inverse proportion to the watershed lag time. 8. The base length of the unitgraph, Tb, in connection with the watershed lag, Lg, was extra.essed as {{{{ { T}_{ b} =1.14+0.564( { Lg} over {24 } )}}}} which has defined with a high significance. 9. For the derivation of IUH by applying linear conceptual model, the storage constant, K, with the length of main stream, L, and slopes, S, was adopted as {{{{K=0.1197( {L } over { SQRT {S } } )}}}} with a highly significant correlation coefficient, 0.90. Gamma function argument, N, derived with such watershed characteristics as watershed area, A, river length, L, centroid distance of the basin of the watershed area, Lca, and slopes, S, was found to be N=49.2 A1.481L-2.202 Lca-1.297 S-0.112 with a high significance having the F value, 4.83, through analysis of variance. 10. According to the linear conceptual model, Formular established in relation to the time distribution, Peak discharge and time to peak discharge for instantaneous Unit Hydrograph when unit effective rainfall of unitgraph and dimension of watershed area are applied as 10mm, and $\textrm{km}^2$ respectively are as follows; Time distribution of IUH {{{{u(0, t)= { 2.78A} over {K GAMMA (N) } { e}^{-t/k } { (t.K)}^{N-1 } }}}} (㎥/sec) Peak discharge of IUH {{{{ {u(0, t) }_{max } = { 2.78A} over {K GAMMA (N) } { e}^{-(N-1) } { (N-1)}^{N-1 } }}}} (㎥/sec) Time to peak discharge of IUH tp=(N-1)K (hrs) 11. Through mathematical analysis in the recession curve of Hydrograph, It was confirmed that empirical formula of Gamma function argument, N, had connection with recession constant, Kl, peak discharge, QP, and time to peak discharge, tp, as {{{{{ K'} over { { t}_{ p} } = { 1} over {N-1 } - { ln { t} over { { t}_{p } } } over {ln { Q} over { { Q}_{p } } } }}}} where {{{{K'= { 1} over { { lnK}_{1 } } }}}} 12. Linking the two, empirical formulars for storage constant, K, and Gamma function argument, N, into closer relations with each other, derivation of unit hydrograph for the ungaged small watersheds can be established by having formulars for the time distribution and peak discharge of IUH as follows. Time distribution of IUH u(0, t)=23.2 A L-1S1/2 F(N, K, t) (㎥/sec) where {{{{F(N, K, t)= { { e}^{-t/k } { (t/K)}^{N-1 } } over { GAMMA (N) } }}}} Peak discharge of IUH) u(0, t)max=23.2 A L-1S1/2 F(N) (㎥/sec) where {{{{F(N)= { { e}^{-(N-1) } { (N-1)}^{N-1 } } over { GAMMA (N) } }}}} 13. The base length of the Time-Area Diagram for the IUH was given by {{{{C=0.778 { ( { LLca} over { SQRT { S} } )}^{0.423 } }}}} with correlation coefficient, 0.85, which has an indication of the relations to the length of main stream, L, centroid distance of the basin of the watershed area, Lca, and slopes, S. 14. Relative errors in the peak discharge of the IUH by using linear conceptual model and IUH by routing showed to be 2.5 and 16.9 percent respectively to the peak of observed unitgraph. Therefore, it confirmed that the accuracy of IUH using linear conceptual model was approaching more closely to the observed unitgraph than that of the flood routing in the small watersheds.

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