• Title/Summary/Keyword: rainfall index

검색결과 397건 처리시간 0.025초

분포형 강우유출모형 KIMSTORM을 이용한 침수실적자료와의 비교를 통한 레이더강우의 효용성 연구 (A Study on the Effectiveness of Radar Rainfall by Comparing with Flood Inundation Record Map Using KIMSTORM (Grid-based KIneMatic Wave STOrm Runoff Model))

  • 안소라;정충길;김성준
    • 한국수자원학회논문집
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    • 제48권11호
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    • pp.925-936
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    • 2015
  • 본 연구의 목적은 이중편파 레이더 강우자료와 격자기반 분포형 강우-유출 모형인 KIMSTORM(KIneMatic wave STOrm Runoff Model)을 이용하여 유출해석을 수행하고, 침수실적자료와의 비교를 통해 레이더 강우자료의 효용성을 검토하는데 있다. 남강댐유역($2,293km^2$)을 대상으로, 2012년 4개의 강우 이벤트(집중호우, 카눈, 볼라벤, 산바)에 대하여 비슬산 레이더 강우자료를 사용하였다. 분포형 모형은 28개 지점 강우와 레이더 강우를 이용하여 보정되었으며, $R^2$(coefficient of determination), ME(model efficiency), VCI(volume conservation index)를 이용하여 적용성을 평가하였다. 모형의 보정결과, $R^2$, ME, VCI의 평균이 지점강우를 이용한 경우 각각 0.85, 0.78, 1.09, 레이더 강우를 이용한 경우 각각 0.85, 0.78, 0.96의 결과를 보였다. 태풍 산바에 의한 하천범람 침수실적자료의 두 침수지역(신연지구와 문대/신기지구)과 레이더와 지상강우에 의한 유출분석 결과를 비교하였다. 신연지구와 문대/신기지구 두 침수지역에서 레이더강우가 지상강우보다 더 많은 지역강우를 발생시켜 지표유출량을 더 크게 모의하는 것을 확인할 수 있었다. 특히 수위관측소가 존재하는 문대/신기지구의 경우, 지점강우보다 레이더 강우가 침수지역내 수위관측소의 실제 첨두유량에 가깝게 모의하였으며, 하천수위도 0.72m 높게 모의하였다.

국지홍수 심도예측을 위한 새로운 홍수지수의 개발 (Development of a New Flood Index for Local Flood Severity Predictions)

  • 조덕준;손인욱;최현일
    • 한국수자원학회논문집
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    • 제46권1호
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    • pp.47-58
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    • 2013
  • 최근 들어 전 세계적인 기후변화 양상에 따라 짧은 시간에 큰 유출양상을 보이는 국지적 돌발성 홍수의 발생이 증가하는 추세이며 이로 인한 인명 및 재산의 피해가 국내뿐만 아니라 전 세계적으로 발생하고 있다. 이와 같이 소규모 지역의 집중된 강우로 발생하는 국지적 돌발성 홍수는 빠른 수문반응으로 인하여 홍수피해를 예방하기 위한 예 경보 시간이 부족한 것이 특징이다. 국지 홍수로 인한 피해를 막기 위해서는 한계유량을 초과하여 제내지의 피해발생 가능성이 있는 홍수사상에 대한 심도예측이 중요하다. 본 논문의 목적은 소규모 유역에서 발생하는 홍수사상의 심각성 정도를 정량화할 수 있는 새로운 홍수지수(New Flood Index)를 개발하고 새로운 홍수지수와 강우특성과의 회귀분석을 통하여 국지 돌발홍수예측에 적용하고자 하였다. 2개의 시범유역들에 대한 홍수유출수문곡선은 장기간 관측된 연최대치계열 실측 강우자료를 이용하여 강우-유출 모형을 통하여 산정하였다. 새로운 홍수지수 NFI는 2년 빈도 홍수량으로 가정된 한계유량을 초과하는 홍수사상에 대하여, 첨두홍수량비, 상승부경사, 초과홍수지속시간 등 홍수 유출수문곡선의 특성을 이용한 3가지 상대심도계수의 기하학적 평균값으로산정하였다. 분석결과 3시간최대강우가 새로운 홍수지수NFI와 가장높은 상관관계가 있음을 확인하였다. 새로운 홍수지수와 강우특성과의 회귀분석을 통해 얻어진 최적 관계식은 소규모 미계측 유역에서의 국지적 홍수 심도예측을 위한 예비정보의 기초자료로 활용될 수 있을 것으로 기대된다.

SWAT 모델을 이용한 강우특성 변화에 의한 퇴적물-유출량 간의 관계 평가 (Assessment of Relationship between Sediment-Discharge Based on Rainfall Characteristic using SWAT Model)

  • 김지수;김민석;조용찬
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제26권6호
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    • pp.118-129
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    • 2021
  • The sediment transportation caused by soil erosion due to rainfall-discharge in the large watershed scale plays critical role in human society. The relationship between rainfall-discharge-sediment transportation is depending on the start time of rainfall and end of rainfall but, the studies related with rainfall characteristics are insufficient. In this study, The Soil and Water Assession Tool (SWAT) model was used to study the relationship between rainfall-discharge-sediment transportation at the Sook river watershed which is monitored by the Ministry of Environment. To do this, first of all, the sensitivity analysis about model attributes was performed using monitored data. The accuracy analysis of SWAT model was conducted using the model's efficiency index (Nash and Sutcliffe model efficiency; NSE) and the coefficient of determination (R2). After that, it was studied what results could be obtained according to changes in rainfall timing and end points. In the result of discharge simulation, the modified rainfall values (sum of total rainfall starting time and end time) showed more high accuracy values (R2:0.90, NSE: 0.8) than original rainfall values (R2:0.76, NSE: 0.72). In the result of sediment transportation simulation, during calibration had more resonable results(R2:0.87, NSE: 0.86) than compared with original rainfall values (R2:0.44, NSE: 0.41). However, validation results of sediment transportation simulation showed low accuracy values compared with calibration results. This results maybe cause monitoring periods of sediment flow compared with discharge monitoring periods. Nevertheless, since rainfall characteristic plays critical rule in model results, continuous research on rainfall characteristic is needed.

Evaluation of Erosivity Index (EI) in Calculation of R Factor for the RUSLE

  • Kim, Hye-Jin;Song, Jin-A;Lim, You-Jin;Chung, Doug-Young
    • 한국토양비료학회지
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    • 제45권1호
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    • pp.112-117
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    • 2012
  • The Revised Universal Soil Loss Equation (RUSLE) is a revision of the Universal Soil Loss Equation (USLE). However, changes for each factor of the USLE have been made in RUSLE which can be used to compute soil loss on areas only where significant overland flow occurs. RUSLE which requires standardized methods to satisfy new data requirements estimates soil movement at a particular site by utilizing the same factorial approach employed by the USLE. The rainfall erosivity in the RUSLE expressed through the R-factor to quantify the effect of raindrop impact and to reflect the amount and rate of runoff likely is associated with the rain. Calculating the R-factor value in the RUSLE equation to predict the related soil loss may be possible to analyse the variability of rainfall erosivity with long time-series of concerned rainfall data. However, daily time step models cannot return proper estimates when run on other specific rainfall patters such as storm and daily cumulative precipitation. Therefore, it is desirable that cross-checking is carried out amongst different time-aggregations typical rainfall event may cause error in estimating the potential soil loss in definite conditions.

산악 산림 소유역에서 선행강우지수를 이용한 하천유량 추정: 계룡산 용수천 상류 (Estimation of Stream Discharge using Antecedent Precipitation Index Models in a Small Mountainous Forested Catchment: Upper Reach of Yongsucheon Stream, Gyeryongsan Mountain)

  • 정윤영;고동찬;한혜성;권홍일;임은경
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제21권6호
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    • pp.36-45
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    • 2016
  • Variability in precipitation due to climate change causes difficulties in securing stable surface water resource, which requires understanding of relation between precipitation and stream discharge. This study simulated stream discharge in a small mountainous forested catchment using antecedent precipitation index (API) models which represent variability of saturation conditions of soil layers depending on rainfall events. During 13 months from May 2015 to May 2016, stream discharge and rainfall were measured at the outlet and in the central part of the watershed, respectively. Several API models with average recession coefficients were applied to predict stream discharge using measured rainfall, which resulted in the best reflection time for API model was 1 day in terms of predictability of stream discharge. This indicates that soil water in riparian zones has fast response to rainfall events and its storage is relatively small. The model can be improved by employing seasonal recession coefficients which can consider seasonal fluctuation of hydrological parameters. These results showed API models can be useful to evaluate variability of streamflow in ungauged small forested watersheds in that stream discharge can be simulated using only rainfall data.

전지구 강수관측위성 기반 격자형 강우자료를 활용한 2022년 국내 가뭄 분석 (Quantifying the 2022 Extreme Drought Using Global Grid-Based Satellite Rainfall Products)

  • 문영식;남원호;전민기;이광야;도종원
    • 한국농공학회논문집
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    • 제66권4호
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    • pp.41-50
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    • 2024
  • Precipitation is an important component of the hydrological cycle and a key input parameter for many applications in hydrology, climatology, meteorology, and weather forecasting research. Grid-based satellite rainfall products with wide spatial coverage and easy accessibility are well recognized as a supplement to ground-based observations for various hydrological applications. The error properties of satellite rainfall products vary as a function of rainfall intensity, climate region, altitude, and land surface conditions. Therefore, this study aims to evaluate the commonly used new global grid-based satellite rainfall product, Climate Hazards Group InfraRed Precipitation with Station data (CHIRPS), using data collected at different spatial and temporal scales. Additionally, in this study, grid-based CHIRPS satellite precipitation data were used to evaluate the 2022 extreme drought. CHIRPS provides high-resolution precipitation data at 5 km and offers reliable global data through the correction of ground-based observations. A frequency analysis was performed to determine the precipitation deficit in 2022. As a result of comparing droughts in 2015, 2017, and 2022, it was found that May 2022 had a drought frequency of more than 500 years. The 1-month SPI in May 2022 indicated a severe drought with an average value of -1.8, while the 3-month SPI showed a moderate drought with an average value of 0.6. The extreme drought experienced in South Korea in 2022 was evident in the 1-month SPI. Both CHIRPS precipitation data and observations from weather stations depicted similar trends. Based on these results, it is concluded that CHIRPS can be used as fundamental data for drought evaluation and monitoring in unmeasured areas of precipitation.

Unveiling the mysteries of flood risk: A machine learning approach to understanding flood-influencing factors for accurate mapping

  • Roya Narimani;Shabbir Ahmed Osmani;Seunghyun Hwang;Changhyun Jun
    • 한국수자원학회:학술대회논문집
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    • 한국수자원학회 2023년도 학술발표회
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    • pp.164-164
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    • 2023
  • This study investigates the importance of flood-influencing factors on the accuracy of flood risk mapping using the integration of remote sensing-based and machine learning techniques. Here, the Extreme Gradient Boosting (XGBoost) and Random Forest (RF) algorithms integrated with GIS-based techniques were considered to develop and generate flood risk maps. For the study area of NAPA County in the United States, rainfall data from the 12 stations, Sentinel-1 SAR, and Sentinel-2 optical images were applied to extract 13 flood-influencing factors including altitude, aspect, slope, topographic wetness index, normalized difference vegetation index, stream power index, sediment transport index, land use/land cover, terrain roughness index, distance from the river, soil, rainfall, and geology. These 13 raster maps were used as input data for the XGBoost and RF algorithms for modeling flood-prone areas using ArcGIS, Python, and R. As results, it indicates that XGBoost showed better performance than RF in modeling flood-prone areas with an ROC of 97.45%, Kappa of 93.65%, and accuracy score of 96.83% compared to RF's 82.21%, 70.54%, and 88%, respectively. In conclusion, XGBoost is more efficient than RF for flood risk mapping and can be potentially utilized for flood mitigation strategies. It should be noted that all flood influencing factors had a positive effect, but altitude, slope, and rainfall were the most influential features in modeling flood risk maps using XGBoost.

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The history of high intensity rainfall estimation methods in New Zealand and the latest High Intensity Rainfall Design System (HIRDS.V3)

  • Horrell, Graeme;Pearson, Charles
    • 한국수자원학회:학술대회논문집
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    • 한국수자원학회 2011년도 학술발표회
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    • pp.16-16
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    • 2011
  • Statistics of extreme rainfall play a vital role in engineering practice from the perspective of mitigation and protection of infrastructure and human life from flooding. While flood frequency assessments, based on river flood flow data are preferred, the analysis of rainfall data is often more convenient due to the finer spatial nature of rainfall recording networks, often with longer records, and potentially more easily transferable from site to site. The rainfall frequency analysis as a design tool has developed over the years in New Zealand from Seelye's daily rainfall frequency maps in 1947 to Thompson's web based tool in 2010. This paper will present a history of the development of New Zealand rainfall frequency analysis methods, and the details of the latest method, so that comparisons may in future be made with the development of Korean methods. One of the main findings in the development of methods was new knowledge on the distribution of New Zealand rainfall extremes. The High Intensity Rainfall Design System (HIRDS.V3) method (Thompson, 2011) is based upon a regional rainfall frequency analysis with the following assumptions: $\bullet$ An "index flood" rainfall regional frequency method, using the median annual maximum rainfall as the indexing variable. $\bullet$ A regional dimensionless growth curve based on the Generalised Extreme Value (GEV), and using goodness of fit test for the GEV, Gumbel (EV1), and Generalised Logistic (GLO) distributions. $\bullet$ Mapping of median annual maximum rainfall and parameters of the regional growth curves, using thin-plate smoothing splines, a $2km\times2km$ grid, L moments statistics, 10 durations from 10 minutes to 72 hours, and a maximum Average Recurrence Interval of 100 years.

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강우변화에 따른 토층 내 침투깊이를 고려한 산사태위험지수 개발 (Landslide Susceptibility Assessment Considering the Saturation Depth Ratio by Rainfall Change)

  • 곽재환;김만일;이승재
    • 지질공학
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    • 제28권4호
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    • pp.687-699
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    • 2018
  • 강우변화에 따라 토층 내로 침투되는 강우양상을 파악하는 것은 산사태 위험도 평가에 있어 매우 중요한 요소라 할 수 있다. 본 연구에서는 재현기간 별 강우변화에 따른 안전율 기반의 산사태 위험도를 평가하고 이를 바탕으로 연구지역 내 산사태 위험지수를 제안하고자 하였다. 산사태 위험지수는 토층으로 침투되는 강우양상을 침투깊이비로 추정하고 이를 기반으로 산사태 위험도를 사전에 파악할 수 있도록 지수로 표현한 것이다. 연구지역에 대한 산사태 위험도 분석결과, 빈도 별 강우강도가 증가하면서 연구지역 전체 안전율은 감소하는 경향을 보였으나 50년 빈도 이상의 강우조건에서는 점차 수렴하는 경향을 보였다. 이러한 현상은 침투깊이비와 토층깊이에서도 유사하게 나타났으며 경사가 완만할수록 침투깊이가 깊은 것으로 분석되었다. 분석결과를 바탕으로 연구지역 내 복수의 산사태가 발생된 인후리 지역에 대하여 산사태위험지수를 제안하였다. 제안된 산사태위험지수는 과거 산사태 발생 시 강우조건과 비교, 분석한 결과 대부분의 산사태 발생 강우강도 조건에서는 산사태위험지수 2등급, 0.7이상에서 발생된 것으로 분석되었다.

돌발홍수지수를 이용한 돌발홍수심도 산정 (Estimation of the Flash Flood Severity using Flash Flood Index)

  • 김응석;최현일;이동의;강동진
    • 한국방재학회 논문집
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    • 제9권6호
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    • pp.125-131
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    • 2009
  • 본 연구의 목적은 Bhaskar 등(2000)의 연구를 우리나라 유역에 적용하여, 홍수사상에 따른 유출수문곡선의 특성을 이용한 돌발홍수지수를 산정함으로써 돌발홍수의 심각성 정도를 정량화하고자 하였다. 또한, Bhaskar 등(2000)의 연구내용을 보다 확장하여 돌발홍수지수와 강우강도, 강우지속시간 및 총유출량과의 상관관계를 정량적으로 분석하였다. 본 연구에서는 미계측유역인 매곡천 유역의 과거 31개의 호우사상에 대한 돌발홍수의 상대심도를 파악하기 위해, 강우-유출모의를 통한 홍수수문곡선을 모의하고 이에 따른 돌발홍수지수를 산정하여 돌발홍수심도를 정량화하였다.