• Title/Summary/Keyword: 우량계

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The Correction of Mean-Field Bias of Rain Radar Rainfall and Estimation of Sampling Error (강우레이더 자료의 편의 보정과 관측오차 산정)

  • Yoo, Chul-Sang;Yoon, Jeong-Soo;Kim, Kyoung-Junn;Choi, Jeong-Ho
    • Proceedings of the Korea Water Resources Association Conference
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    • 2009.05a
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    • pp.32-36
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    • 2009
  • 레이더 강우의 편의 추정은 근본적으로 레이더 강우의 평균과 참값으로 가정되는 우량계 강우의 평균과의 차이를 결정하는 문제이다. 두 관측치의 차이를 정확히 결정하기 위해서는 두 관측치의 차이에 대한 분산이 매우 작아야 하며, 따라서 비교되는 관측치의 수가 충분히 확보되어야 한다. 본 연구에는 임진강 유역에서와 같이 일부 지역에만 우량계의 설치가 가능한 경우를 대상으로 하고자 한다. 임진강 유역에서와 같이 지역적으로 편중된 지상 강우자료를 활용하여 강우레이더 자료의 편의 보정을 통한 품질 향상 방안을 제시하였다. 또한 차폐 등을 이유로 레이더 강우가 대상 유역 또는 소유역을 완전하게 포괄하지 못하는 경우에 대해 가용한 레이더 강우를 이용하여 면적평균강우를 산정하는 경우에 포함될 수 있는 오차의 규모를 추정하였다. 강화 강우레이더의 반경은 한강 유역의 일부를 제외하고 대부분을 덮는다. 이러한 강화 강우 레이더의 한강유역에 대한 수문 적용성을 판단하기 위해 차폐로 인한 관측오차 산정 시 한강유역에도 적용해보았다.

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Average rainfall estimation method of electromagnetic wave rain gauge (전파강수계 평균 강우 추정 기법)

  • Lim, Sanghun;Kim, Won;Lee, Chanjoo;Choi, Jeongho
    • Proceedings of the Korea Water Resources Association Conference
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    • 2021.06a
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    • pp.376-376
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    • 2021
  • 홍수와 같은 수문 재해를 예측하고 예방하기 위해서는 강우량을 정확하게 예측하는 것이 중요하다. 신뢰할 수 있는 수문재해 예보 시스템은 기존의 포인트 기반 우량계를 사용하여 달성 할 수 있는 것보다 강우량의 공간 분포를 관측할 수 있는 보다 효과적인 방법이 필요하다. 본 연구에서는 전파강수계 시스템과 다중 고도 관측 데이터를 이용하여 평균 강우를 추정하는 방법을 제시한다. 전파강수계는 K 밴드 이중 편파 기술을 사용하여 초단거리 관측을 수행하는 소형전파강수관측시스템이다. 평균 강우량을 추정하는 방법은 매우 짧은 관측 범위와 이중 편파 정보의 다중고도 평균 관측 개념을 기반으로 하며 관측 지역의 반사도와 비차등위상차의 고도별 평균값을 이용하여 추정한다. 제안 된 방법은 전파강수계의 관측 범위와 스캔 시간이 매우 짧기 때문에 강우 분포의 시공간적 변화가 낮다는 가정하에 개발되었다. 제안된 방법의 평가를 위해 핏게이지, 우량계 및 Parsivel disdrometer를 포함한 지상 장비와 비교하였다. 시험적용 결과 제안된 강우 추정 기법이 다양한 강우사상에 대해 강우강도를 잘 추정하는 것으로 확인되었다

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Analysis of the 'Chukwookee' data using time series model (시계열 모형을 이용한 측우기 자료의 분석)

  • 조신섭;이정형;김병수
    • The Korean Journal of Applied Statistics
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    • v.9 no.2
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    • pp.25-43
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    • 1996
  • One of the main issues related to the precipitation amounts measured by the Korean raingage, Chukwookee, invented by King Sejong is the discontinuity in the time series around 1907 when the modern raingage was first used in Korea. To solve this discontinuity problem Wada(1971) reproduced the Chukwookee data but many authors questioned the validity of Wada's method. In this paper we analyze the precipitation amounts in Seoul from 1771 to 1994 using the intervention model and show that Wada's method results in the overestimation of the precipitation amounts. We also propose a reproduction method by considering monthly constant and including the rainfall of less then 2 mm and the snowfall which were ignored previously.

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Bayesian analysis of adjustment function for wind-induced loss of precipitation (바람의 영향에 의한 관측 강우 손실에 대한 베이지안 모형 분석)

  • Park, Yeongwoo;Kim, Young Min;Kim, Yongku
    • Journal of the Korean Data and Information Science Society
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    • v.28 no.3
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    • pp.483-492
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    • 2017
  • Precipitation is one of key components in hydrological modeling and water balance studies. A comprehensive, optimized and sustainable water balance monitoring requires the availability of accurate precipitation data. The amount of precipitation measured in a gauge is less than the actual precipitation reaching the ground. The objective of this study is to determine the wind-induced under-catch of solid precipitation and develop a continuous adjustment function for measurements of all types of winter precipitation (from rain to dry snow), which can be used for operational measurements based on data available at standard automatic weather stations. This study provides Bayesian analysis for the systematic structure of catch ratio in precipitation measurement.

Effect of Combined Rainfall Observation with Radar and Rain Gauge (강우 레이더와 지상 우량계의 통합관측효과)

  • Yoo, Chul-Sang;Kim, Kyoung-Jun
    • Journal of Korea Water Resources Association
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    • v.40 no.11
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    • pp.841-849
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    • 2007
  • This study evaluated the effect of combined rainfall observation of using rain gauge and rain radar. The effect of combined observations is to be evaluated by considering the decrease of measurement error due to combined use of design orthogonal observation methods. As an example, this study evaluated the rain gauge network of the Keum river basin, and showed how the density of rain gauges could be decreased by combining the radar observation. This study applied the researches on sampling error by North and Nakamoto(1989), Yoo et al. (1996) and Yoo (1997), also the simple NFD model for representing the rainfall field. The model parameters were decided using the rainfall characteristics (correlation time and length) estimated using the data collected in the Keum River Basin by 28 rain gauges and the operation rule of radar was assumed arbitrarily. This study considered the rain gauge density criteria provided by WMO(1994) and the rain gauge density installed in the Keum river basin to decrease the rain gauge density under the condition of introducing the radar.

Adjustment of Radar Precipitation Estimation Based on the Local Gauge Correction Method (국지 우량계 보정 방법을 이용한 레이더 강우 조정)

  • Kim, Kwang-Ho;Lee, Gyuwon;Kang, Dong-Hwan;Kwon, Byung-Hyuk;Han, Kun-Yeun
    • Journal of the Korean earth science society
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    • v.35 no.2
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    • pp.115-130
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    • 2014
  • The growing possibility of the disaster due to severe weather calls for disaster prevention and water management measures in South Korea. In order to prevent a localized heavy rain from occurring, the rainfall must be observed and predicted quantitatively. In this study, we developed an adjustment algorithm to estimate the radar precipitation applying to the local gauge correction (LGC) method which uses geostatistical effective radius of errors of the radar precipitation. The effective radius was determined from the errors of radar rainfall using geostatistical method, and we adjusted radar precipitation for four heavy rainfall events based on the LGC method. Errors were decreased by about 40% and 60% in adjusted hourly rainfall accumulation and adjusted total rainfall accumulation for four heavy rainfall events, respectively. To estimate radar precipitation for localized heavy rain events in summer, therefore, we believe that it was appropriate for this study to use an adjustment algorithm, developed herein.

The Adjustment of Radar Precipitation Estimation Based on the Kriging Method (크리깅 방법을 기반으로 한 레이더 강우강도 오차 조정)

  • Kim, Kwang-Ho;Kim, Min-seong;Lee, Gyu-Won;Kang, Dong-Hwan;Kwon, Byung-Hyuk
    • Journal of the Korean earth science society
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    • v.34 no.1
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    • pp.13-27
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    • 2013
  • Quantitative precipitation estimation (QPE) is one of the most important elements in meteorological and hydrological applications. In this study, we adjusted the QPE from an S-band weather radar based on co-kriging method using the geostatistical structure function of error distribution of radar rainrate. In order to estimate the accurate quantitative precipitation, the error of radar rainrate which is a primary variable of co-kriging was determined by the difference of rain rates from rain gauge and radar. Also, the gauge rainfield, a secondary variable of co-kriging is derived from the ordinary kriging based on raingauge network. The error distribution of radar rain rate was produced by co-kriging with the derived theoretical variogram determined by experimental variogram. The error of radar rain rate was then applied to the radar estimated precipitation field. Locally heavy rainfall case during 6-7 July 2009 is chosen to verify this study. Correlation between adjusted one-hour radar rainfall accumulation and rain gauge rainfall accumulation improved from 0.55 to 0.84 when compared to prior adjustment of radar error with the adjustment of root mean square error from 7.45 to 3.93 mm.

A Study on the Underestimation of the Rainfall Data due to Wind (바람에 의한 우량자료의 변동성 연구)

  • Park, Moo-Jong;Kim, Eung-Seok;Kim, Joon-Hoon
    • Journal of Korea Water Resources Association
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    • v.36 no.2
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    • pp.237-249
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    • 2003
  • Wind effects on a rain gauge can cause a significant underestimation of rainfall depths and contribute to the inconsistency in rainfall data. To revise the rainfall data requires the study about calculation of deficiency percentages of rain catch. There are few studies which reflect the variation of wind speed. in this study, the raindrop terminal velocity is quantified according to the particle size of rainfall. The model for calculating deficiency percentages of rain catch according to the particle size of rainfall is examined by experimentation. Experimentation shows that deficiency percentages of rain catch have no relationship with rainfall intensity and affected by raindrop diameter. In conclusion, the estimated deficiency percentages of rain catch coincided with the experimental results and can be used as recommended adjustment factors.