• Title/Summary/Keyword: 강우-유출 침식성 인자

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Variation of Erosion and Deposition with Catchment Characteristic Factors (유역특성인자에 따른 침식 및 퇴적의 변화)

  • Yu, Wan-Sik;Lee, Gi-Ha;Lee, Kun-Hyuk;Lee, Bok-Hwan;Jung, Kwan-Sue
    • Proceedings of the Korea Water Resources Association Conference
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    • 2011.05a
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    • pp.295-299
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    • 2011
  • 자연계에서 토양의 침식 및 퇴적 반복적 과정은 매우 복잡한 형태로 발생하며, 호우로 인한 토사유출은 유역의 지형 및 지질학적 특성과 수문기상학적 특성 등에 의해 매우 민감하게 반응한다. 즉, 토양 침식 및 퇴적은 유역의 형상, 토양종류, 토지 이용 및 피복상태, 강우사상 등에 따라 시 공간적 분포가 다양하게 변화한다. 따라서 유역내 침식 및 퇴적의 시·공간적 변동성을 분석하기 위해서는 지형학적 특성인자와 수문기상학적 특성인자에 따른 유역내 수문학적 응답을 이해해야 한다. 본 연구에서는 분포형 강우-유사-유출 모형을 이용하여 용담댐 상류 천천유역을 대상으로 Strahler 하천차수구분법에 의해 유역을 차수별 소유역으로 구분하고, 지형학적 특성인자(유역면적, 지표흐름 이동거리, 국부경사)와 수문학적 특성인자(총 강우량)에 따른 침식 및 퇴적의 공간분포 변화에 대하여 분석하였다.

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Computation of Mean Soil Loss in the Catchment of the Mankyung River by USLE (범용토양침식공식(USLE)을 이용한 만경강유역의 평균토양침식량 산정)

  • Lee, Yeon-Kil;Go, Ju-Yeon;Jung, Sung-Won;Park, Sung-Sik
    • Proceedings of the Korea Water Resources Association Conference
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    • 2010.05a
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    • pp.1721-1728
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    • 2010
  • 본 연구의 목적은 USLE 모형의 적용 범위 확장에 따른 모형의 적정성을 평가하는 데에 있다. 본 연구는 300 $km^2$ 정도의 유역면적을 갖는 만경강 봉동 수위관측소 유역에서 유사유출량을 모의한 후 이를 실측치와 비교 분석하는 과정으로 수행되었다. USLE 모형의 주요 인자 등은 객체지향프로그램인 ArcView를 이용하여 산정하였으며, 이를 강우침식인자, 토양침식인자, 지형인자, 식생피복인자, 침식조절인자 등과 같은 주제도에 격자기반($30m{\times}30m$)으로 구현하였다. 본 연구의 대상유역에서 모의된 2009년 평균토양침식량은 206.7 $ton/km^2/year$이며, 토양침식량에 Vanoni(1975)와 Boyce(1975), USDA(1972)의 유사전달비(sediment delivery ratio)를 고려한 유사유출량은 각각 47.128 $ton/km^2/year$, 19.223 $ton/km^2/year$, 61.596 $ton/km^2/year$로 산정되었다. Vanoni(1975)의 유사전달비가 고려된 유사유출량은 47.128 $ton/km^2/year$로 봉동 수위관측소에서 실측된 2009년 유사유출량 42.330 $ton/km^2/year$와 비교적 유사하였다.

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Sensitivity of Runoff and Soil Erosion in the Burnt Mountains (산불지역의 유출 및 토양침식 민감도)

  • Park, Sang-Deog;Shin, Seung-Sook;Lee, Kyu-Song
    • Journal of Korea Water Resources Association
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    • v.38 no.1
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    • pp.59-71
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    • 2005
  • Mountain watersheds are a lot of problems about soil erosion because of frequent wildfire occurrence. Runoff and soil erosion caused by the rain on a hillslope after wildfire are dependent on cover factor. And these has been a decrease by the cover factor recovery following time passage. The present paper defines the dynamic sensitivity of runoff and soil erosion that is the rate of runoff volume and soil erosion weight to rainfall energy and analyzes characteristics of the sensitivity for variation of cover factor, In according to the correlation analysis between other parameters and sensitivities, the sensitivity is the most dependent on the cover factor and the relation is exponential. The sensitivities after wildfire have suitable relation with treatment method for the mitigation of burnt forest and wildfire intensity. It was confirmed that the variation of soil erosion sensitivities come upon the range of stability in 5 years after wildfire.

Analysis of Soil Erosion Hazard Zone by R Factor Frequency (빈도별 R인자에 의한 토양침식 위험지역 분석)

  • Kim, Joo-Hun;Oh, Deuk-Keun
    • Journal of the Korean Association of Geographic Information Studies
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    • v.7 no.2
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    • pp.47-56
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    • 2004
  • The purpose of this study is to estimate soil loss amount according to the rainfall-runoff erosivity factor frequency and to analyze the hazard zone that has high possibilities of soil erosion in the watershed. RUSLE was used to analyze soil loss quantity. The study area is Gwanchon that is part of Seomjin river basin. To obtain the frequency rainfall-runoff erosivity factor, the daily maximum rainfall data for 39 years was used. The probability rainfall was calculated by using the Normal distribution, Log-normal distribution, Pearson type III distribution, Log-Pearson type III distribution and Extreme-I distribution. Log-Pearson type III was considered to be the most accurate of all, and used to estimate 24 hours probabilistic rainfall, and the rainfall-runoff erosivity factor by frequency was estimated by adapting the Huff distribution ratio. As a result of estimating soil erosion quantity, the average soil quantity shows 12.8 and $68.0ton/ha{\cdot}yr$, respectively from 2 years to 200 years frequency. The distribution of soil loss quantity within a watershed was classified into 4 classes, and the hazard zone that has high possibilities of soil erosion was analyzed on the basis of these 4 classes. The hazard zone represents class IV. The land use area of class IV shows $0.01-5.28km^2$, it ranges 0.02-9.06% of total farming area. Especially, in the case of a frequency of 200 years, the field area occupies 77.1% of total fanning area. Accordingly, it is considered that soil loss can be influenced by land cover and cultivation practices.

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Effects of Vegetation Recovery for Surface Runoff and Soil Erosion in Burned Mountains, Yangyang (양양 산불지역 지표유출 및 토양침식에 대한 식생회복의 영향)

  • Shin, Seung Sook;Park, Sang Deog;Cho, Jae Woong;Lee, Kyu Song
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.28 no.4B
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    • pp.393-403
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    • 2008
  • While characteristics of topography, soil, and vegetation coverage were surveyed, also surface runoff and soil erosion for each rainfall event were measured to analyze effect of change of land cover conditions in mountain areas, Yangyang, directly after wildfire. Fifteen rainfall events were taken in total during the survey period. The result of this survey appeared that the amount of surface runoff and soil erosion are a great difference between plots with rapidly recovered vegetation and bare plots after wildfire. The burned plots where vegetation recovered rapidly generated two times or more of surface runoff and soil erosion than control plots, as burned plots with bare soil showed about ten times of surface runoff and sediment than control plots. The result of correlation analysis between main parameters of the surface runoff and soil erosion presented that rainfall factors and vegetation factors had significant effects on runoff and soil erosion. The sensitivity of runoff and soil erosion showed specially high correlation with vegetation indices. If the land surface disturbed by wildfire are recovered by natural vegetation as time passes, runoff and soil erosion may be decreased gradually. Because runoff and soil erosion in the areas with rare vegetation or bare soil are generated continuously, the discriminated mediation strategies would be established as condition of each region.

Estimation of WEPP's Parameters in Burnt Mountains (산불지역의 WEPP 매개변수 추정)

  • Park, Sang-Deog
    • Journal of Korea Water Resources Association
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    • v.41 no.6
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    • pp.565-574
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    • 2008
  • Fire-enhanced soil hydrophobicity often increases runoff and erosion in the mountain hillslope following severe wildfires. Estimation techniques for WEPP's parameters were studied in burnt mountain slopes. In burnt mountain slopes, the model over-predicted runoff in the small runoff and under-predicted runoff in the great runoff, and in the lower sediment runoff it had a tendency to over-predict soil loss. The effective hydraulic conductivity was most sensitive in the WEPP's runoff and its sediment runoff was mainly effected by the effective hydraulic conductivity, initial saturation, rill erodibility, and interrill erodibility. To improve the applicability of the WEPP, the adjustment coefficient of effective hydraulic conductivity was defined for runoff and the adjustment coefficient of rill erodibility and interrill erodibility was presented for sediment runoff. The adjustment coefficient of effective hydraulic conductivity in wildfire mountain slopes increased with maximum rainfall intensity of single storm and the vegetation height index. The adjustment coefficients of rill erodibility depended on soil components of size distribution curve and total rainfall depths in single storm. The adjustment coefficients of interrill erodibility decreased with increases of maximum rainfall intensity and vegetation height index. These results may be used in the application of WEPP model for wildfire mountain slopes.

Influences of Environmental Factors on Water Runoff and Hillslope Erosion in Timber Harvested Area (성숙임목벌채지(成熟林木伐採地)에서 강우수((降雨水))의 표면유출량(表面流出量)과 산지침식(山地浸蝕)에 미치는 환경요인(環境要因)의 영향(影響))

  • Woo, Bo-Myeong;Park, Jae-Hyeon;Jeon, Gi-Seong;Jeong, Do-Hyun
    • Journal of Korean Society of Forest Science
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    • v.84 no.2
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    • pp.226-238
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    • 1995
  • This research was conducted to investigate the influential factors of the runoff of water and hillslope erosion caused by the large-scale harvesting operation. It was carried out on harvested sites (13ha) and non-harvested sites(13ha) in Seoul National University Research Forest [(Mt.) Paekunsan], from 1993 to 1994. 1. The amount of runoff of water was increased as the unit of rainfall increases, and the amount of runoff on harvested sites was larger than that of non-harvested sites by 28% in the first year and 24.5% in the second year after harvesting. According to the multiple regression equation for surface runoff, unit and number of rainfall, amount of hillslope erosion and soil bulk density showed statistically significance($R^2$=0.91). 2. The amount of hillslope erosion on harvested sites was larger than that of non-harvested sites by 7 times during the first year of harvesting and 2 times during the second year. 3. The multiple regression equations for hillslope erosion showed that soil bulk density, surface runoff of water and unit of rainfall(these factors were not controllable) had statistically significance($R^2$=0.74). 4. Soil runoff in harvested and non harvested sites were maximum 6.7% and 1% of the amount of hillslope erosion, respectively during the first year of harvesting. And the second year of harvesting soil runoff in harvested and non harvested cites were maximum 5.7% and 1.9%of the amount of hillslope erosion. From the above results, when in planning for timber harvesting, the buffer strip-woods zone must be remained to diminish soil and water runoff and to preserve water quality.

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Effects of Grain Size on Relationship between Microtopographic Roughness and Soil Erosion Rate (토양 입경이 미세지형의 거칠기와 토양침식률 간의 관계에 미치는 영향)

  • Soyoung Kim;Dae-Hong Kim;Tae-young Sohn
    • Proceedings of the Korea Water Resources Association Conference
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    • 2023.05a
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    • pp.216-216
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    • 2023
  • 가속적인 토양침식은 토지의 환경 및 생태계의 지속성에 부정적 영향을 미치므로, 그 양을 예측하여 토양침식을 방지하는 것은 중요하다. 이에 따라 식생, 지형, 토양의 입도분포 등과 같은 토양침식에 영향을 미치는 인자에 관한 연구가 꾸준히 이뤄지고 있다. 특히 자연 지형에서 보편적으로 나타나는 'cm' 규모의 미세지형이 토양침식에 미치는 영향을 분석한 기존 연구 결과를 살펴보면, 유역 출구 지점에서 관측된 총 유사유출량에만 근거하고 있을 뿐 아니라 토양침식에 미치는 미세지형의 영향에 관한 상반된 결과가 혼재하고 있다. 이는 유역의 토양침식과정에 대한 이해도와 토양침식량에 대한 예측 정확도를 저하시킬 우려가 있으므로 미세지형이 토양침식에 미치는 영향을 유역 전반에 걸쳐 살펴본 후, 명확하게 하는 것이 필요하다. 본 연구에서는 동역학파 모형에 기반한 침식 모형을 이용하여 미세지형에서의 강우-유출 및 토사 입자별 침식 및 유출 현상을 수치적으로 모의하였다. 모의 결과에 따르면, 동일한 강우-유출 조건에서도 미세지형의 거칠기에 따라 유역의 토양침식량 및 침식 특성이 달라질 수 있으며, 토양 입경이 미세지형의 거칠기에 따른 유사유출량의 증감 현상을 결정하는 데에 있어 중요한 요소로 작용함을 제시하였다. 미세지형이 거칠어짐에 따라 비교적 굵은 입자인 모래 함량이 높은 지반에서는 토양침식률이 감소하였으나 이와 대조적으로 미세토사 함량이 높은 지반에서는 토양침식률이 증가하였다. 이는 미세지형이 유역 전반에 걸쳐 입경에 따른 토사의 부상, 이류 및 퇴적 특성에 영향을 미쳐, 유역의 유사 분급 및 장갑화 현상에 깊게 관여하였기 때문이다. 본 연구를 통해 토양유실에 미치는 미세지형의 영향에 관한 상반된 연구 결과를 미세지형과 토양 입경분포의 상호작용으로 설명할 수 있다. 따라서, 본 연구는 유역 내 미세지형적 거칠기 입경분포에 대한 정확한 정보에 기반하여 토양의 유실량 및 침식량을 산정해야 함을 강조한다.

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The Extraction of Soil Erosion Model Factors Using GSIS Spatial Analysis (GSIS 공간분석을 활용한 토양침식모형의 입력인자 추출에 관한 연구)

  • 이환주;김환기
    • Journal of the Korean Society of Surveying, Geodesy, Photogrammetry and Cartography
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    • v.19 no.1
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    • pp.27-37
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    • 2001
  • Soil erosion by outflow of water or rainfall has caused many environmental problems as declining agricultural productivity, damaging pasture and preventing flow of water. As the interest in environment is increasing lately, soil erosion is considered as a serious problem, whereas the systematic regulation and analysis for that have not established yet. This research shows the method of extracting factor entered model which expects soil erosion by GSIS. There are several erosion model such as ANSWER, WEPP, RUSLE. The research used RUSLE erosion model which could expect general soil erosion connected easily with GSIS data. RUSLE's input factors are composed of rainfall runoff factor(R). soil erodibility factor(K), slope length factor(L), slope steepness factor(S), cover management factor(C) and support practice factor(P). The general equation used to extract L, S factor on the RUSLE to be oriented for agricultural area has some limitation to apply whole watershed. So, on this study we used a revised empirical equation applicable to the watershed by grid on the GSIS. Also, we analyzed RUSLE factors by watershed being analyzed with watershed extraction algorithm. Then we could calculate the minimum, maximum. mean and standard deviation of RUSLE factors by watershed.

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A Study on the Estimation of Soil Erosion Quantity Using USLE in the Upper Region of ManKyoung River Basin (USLE를 활용한 만경강 상류지역에서의 토양침식량 산정에 관한 연구)

  • Lee, Jae Hyug;Shim, Eun Jeung;Lee, Yeon Kil;Kim, Tae Woong
    • Journal of Wetlands Research
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    • v.14 no.3
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    • pp.317-328
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    • 2012
  • The objects of this study are to perform appropriateness analysis of USLE(universal soil loss equation) model and to accumulate the data measured in field. The basin area of Bongdong station is $342.27km^2$. This study simulated sediment outflows in the basin and performed a comparative analysis of simulated outputs with actual measurement values. Also annual rainfall was used to calculate rainfall-runoff erosivity factor which can influence soil erosion. The calculation of annual average soil erosion was made by soil erosion maps. The maps with a resolution of ($30m{\times}30m$) were created by multiplication of factors(R, LS, K, C, P) from ArcView Map Calculator. In this paper, it was shown that soil erosion was not occur in the most of basin.