• Title/Summary/Keyword: 태풍 상륙

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Characteristics of Surface Topography and Sediments before and after the Typhoon Kompasu in the Gochang Open-Coast Intertidal Flat, Korea (태풍 곤파스 전과 후의 고창 개방형 조간대 표층 지형과 퇴적물 특성)

  • Kang, Sol-Ip;Ryang, Woo-Hun;Chun, Seung-Soo
    • Journal of the Korean earth science society
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    • v.40 no.2
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    • pp.149-162
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    • 2019
  • In the macro-tide open coast of the Korean western coast, typhoon effects were investigated in terms of variations on topography, surface sediment, and sedimentary environment, which appeared before and after the typhoon Kompasu of 2010. The Kompasu of small size and strong intensity landed on the southwestern coast of the Korean Peninsula and passed across the inland between September 1st and 2nd in 2010. Topography and surface sediments before and after the typhoon were measured and sampled along the survey line of 22 sites in the Gochang Donghori intertidal flat. The intertidal area was divided into high tidal zone, middle tidal zone, and lower tidal zone on the basis of mean high water level, mean sea level, and mean low water level. Topographic variation before and after the typhoon represented deposition of average 0.03 m in high tidal zone, erosion of average -0.15 m in middle tidal zone, and erosion of average -0.39 m in lower tidal zone, respectively. Surface sediments of the intertidal flat consisted mainly of fine to medium sands, and the ratio of fine sand was the largest both before and after the typhoon. Surface sediments after the typhoon became finer in mean grain size showing well sorting rather than those before the typhoon.

Vulnerability Analysis of Gangnam Station Considering Climate Change (기후변화를 고려한 강남역 일대의 취약성 평가)

  • Choi, Ji Hyeok;Hwang, Sung Hwan;Mok, Ji Yoon;Moon, Young Il
    • Proceedings of the Korea Water Resources Association Conference
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    • 2017.05a
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    • pp.457-457
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    • 2017
  • 최근 기후변화에 따른 수문환경의 변화로 인해 도시지역에 침수피해가 빈번히 발생하고 있으며, 이는 도시화로 인한 인구밀도 증가 및 불투수율이 높아짐으로써 땅속으로 스며들지 못한 빗물이 지표면으로 유출되어 침수피해로 나타나고 있다. 또한, 복잡한 하수관망의 정비와 관리가 어렵다는 점이 침수를 유발하는 원인이 되기도 한다. 강남역과 울산 태화강 침수 피해를 대표적인 예로 들 수 있다. 강남역 일대는 대한민국의 대표적인 상업의 중심지라고 할 수 있으며, 2010년부터 3년간 내수침수가 발생하여 사회적인 이슈가 되었으며, 2016년 울산 및 제주도에서는 제 18호 태풍 차바(CHABA)의 한반도 상륙으로 하천이 범람하고 내수침수가 발생하여 많은 재산 피해를 입혔다. 이처럼 기후변화로 인한 태풍 발생 빈도 증가 및 국지성 호우는 도시지역에 많은 침수피해를 발생시키기 때문에 정확한 침수분석과 취약성 평가를 실시해야 한다. 따라서 본 연구에서는 서울시 강남역 일대를 대상으로 강우-유출모형을 구축하였으며, 기상청에서 제공하는 HadGEM3-RA(12.5km격자자료)를 이용하여 미래 기후변화에 따른 불확실성을 고려한 취약성 평가하였다. 이는 상습침수지역에 대한 근본적인 침수원인을 파악하고 사전에 예방할 수 있는 객관적 평가자료로 활용가능할 것으로 기대된다.

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A Study for Analysis of Damaged Area of Soils Using RAMMS (RAMMS를 이용한 토석류 피해지역 해석을 위한 연구)

  • Kim, Gi Jung;Jun, Kye Won;Kim, Young Hawn;Jang, Chang Duck
    • Proceedings of the Korea Water Resources Association Conference
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    • 2020.06a
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    • pp.147-147
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    • 2020
  • 2019년 10월 2일 ~ 3일 한반도에 상륙한 태풍 미탁으로 인해 사망 12명, 실종 3명, 부상 11명의 인명피해가 발생하였으며, 피해의 주된 원인은 토석류를 동반한 산사태로 나타났다. 특히 10월 10일 1차 특별재난지역으로 선포된 삼척시 원덕읍 갈남리 일대에는 산사태 발생 추정시간(10.2일 23:00)의 최대 시우량 110.5mm, 피해발생 양일 누적강우량(10.2.~10.3.) 417mm를 기록하였고 태풍과 집중호우에 따른 토석류가 갈남리 일대 유역에서 동시다발적으로 발생하여 하류부에 위치한 인근 지역에 관내 639세대, 1,167명의 이재민과 1,896백만원의 피해액이 발생하였다. 본 연구에서는 피해가 발생한 삼척시 갈남리 일대를 중심으로 경계조건 및 지형자료를 구축하기 위해 현장조사를 통하여 토석류의 시작지점, 계류의 폭 등 피해 발생 지점에 대한 조사를 실시하였다. 그리고 RAMMS 모델링을 이용하여 토석류의 유동특성인 유동심 및 유속을 분석하여 비교적 높은 유동심·유속이 확인되는 위치에 토석류 저감시설을 구축하였다. 이를 바탕으로 저감시설의 설치 위치에 변화를 주어 토석류의 확산면적, 이동거리 등 저감 된 유출량을 평가함으로 저감시설의 최적 위치 선정을 제시한다.

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Inundation Numerical Simulation in Masan Coastal Area (마산 연안의 침수 수치모형 실험)

  • Kim, Cha-Kyum;Lee, Jong-Tae;Jang, Ho-Sik
    • Journal of Korea Water Resources Association
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    • v.43 no.11
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    • pp.985-994
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    • 2010
  • Typoon Maemi landed on the southern coast of Korean Peninsula at 21:00, September 12, 2003 with a central pressure of 950 hPa. A three dimensional (3D) inundation model was established to calculate the storm surge and flooded area due to Typoon Maemi. A field survey of storm surge traces in Masan City was carried out to evaluate the inundation water depth. Hydromet-Rankin Vortex model was used to calculate the atmospheric pressure and the surface wind fields. The inundation area, storm surge and typoon-induced current were calculated using the 3D model. The peak of computed storm surge in Masan Port using the 3D model was 238 cm, and the observed peak was 230 cm. The simulated storm surge and the inundation area showed good agreement with field survey data. The comparison of the 3D and the two dimensional (2D) models of storm surge was carried out, and the 3D model was more accurate. The computed typoon-induced currents in the surface layer of Masan Bay went into the inner bay with 30~60 cm/s, while the currents in the bottom layer flowed out with 20~40 cm/s.

Characteristics of Strong Wind Occurrence in the Southwestern Region of Korea (한반도 남서지역에서 발생한 강풍의 원인별 특성 분석)

  • Kim, Baek-Jo;Lee, Seong-Lo;Park, Gil-Un
    • Journal of the Korean Society of Hazard Mitigation
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    • v.9 no.4
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    • pp.37-44
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    • 2009
  • The characteristics of strong wind occurring over the southwestern part of the Korean peninsula are analyzed by using hourly mean wind data observed in Gusan, Mokpo, Yeosu and Wando from 1970 to 2008. The strong wind here is defined as wind speed of more than 13.9 m/s according to Korea Meteorological Administration (KMA)'s strong wind advisory. The causes of strong wind are classified into typhoon, monsoonal (wintertime continent polar air mass) and frontal (cyclone) winds. Typhoon wind is characterized by abrupt change of its speed and direction after and before landfall of typhoon and monsoonal wind by periodicity of wind speed. And frontal wind tend to be changed from southwesterly to northwesterly at observation site with location of frontal surface. Strong winds are mainly occurred in Yeosu by typhoon, Gusan and Mokpo by monsoonal wind, and Mokpo and Yeosu by frontal wind. In particular, in case of frontal wind, the frequency of strong wind in Mokpo decreases while in Yeosu it increases. Monthly frequency of strong wind is high in August in Mokpo and September in Yeosu by typhoon, January in Gusan and December in Mokpo by monsoonal wind, and in April in Mokpo and Yeosu by frontal wind. The duration less than 1 hour of strong wind is prominent in all stations.

Numerical Modelling of Typhoon-Induced Storm Surge on the Coast of Busan (부산 연안에서 태풍에 의한 폭풍해일의 수치모델링)

  • Cha-Kyum Kim;Tae-Soon Kang
    • Journal of the Korean Society of Marine Environment & Safety
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    • v.29 no.7
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    • pp.760-769
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    • 2023
  • A numerical simulations were performed to investigate the storm surge during the passage of Typhoon Maemi on the coast of Busan. The typhoon landed on the southern coasts of Korean Peninsula at 21:00, September 12, 2003 with a central pressure of 950 hPa, and the typhoon resulted on the worst coastal disaster on the coast of Busan in the last decades. Observed storm surges at Busan, Yeosu, Tongyoung, Masan, Jeju and Seogwipo harbors during the passage of the typhoon were compared with the computed data. The simulated storm surge time series were in good agreement with the observations. The simulated peak storm surges were estimated to be 230 cm at Masan harbor, 200 cm at Yeosu harbor and Tongyoung harbor, and 75 cm at Busan harbor. The computed storm surges along the east coast of Busan measure 52 to 55 cm, exhibiting a gradual reduction in surge height as one moves further from the coast of Busan. Therefore, coastal inundation due to the storm surge in the semi-enclosed bay can induce great disasters, and the simulated results can be used as the important data to reduce the impact of a typhoon-induced coastal disaster in the future.

Storm Surge Caused by the Typhoon “Maemi” in Kwangyang Bay in 2003 (광양만에서의 2003년 태풍 “매미”에 의한 폭풍해일)

  • 김현성;이석우
    • The Sea:JOURNAL OF THE KOREAN SOCIETY OF OCEANOGRAPHY
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    • v.9 no.3
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    • pp.119-129
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    • 2004
  • The surges caused by the typhoon “Maemi” which struck the southern coast of Korea are analysed in Kwangyang Bay on September 12, 2003. The deviations of the high water level were 93∼108 cm and the maximum deviations of the water level (maximum surges) were 176∼196 cm in Kwangyang Bay during the typhoon “Maemi”. The major parameters of the maximum deviations of the water level are as follows: Analysis shows that the pressure drop increased the sea level by 59 cm, the flood of the Sumjin River by 4-5 cm and the external surge propagation and wind setup by 113∼132 cm. During the typhoon “Maemi”, the highest high water recorded in Kwangyang Port (PT3) is 460 cm, which is higher by 5 cm than the highest high water (455 cm) with return period of 100 years estimated in planning the Kwangyang steelworks (POSCO) grounds and higher by 15 cm than the observed highest high water (445 cm) recorded during the typhoon “Thelma” on 1987. Thus, the highest high water caused by the typhoon “Maemi” is higher than the extreme highest high water for the last 20 years in Kwangyang Bay.

Development of Evacuation Algorithm from Coastal Inundation (해안침수 대피경로 알고리즘 개발)

  • Kim, Won Beom;Jung, Woo Chang;Son, Kwang Ik
    • Proceedings of the Korea Water Resources Association Conference
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    • 2020.06a
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    • pp.355-355
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    • 2020
  • 최근 쓰나미와 해일 등 이상기후에 의한 해수면 상승 등으로 인한 해안지역의 침수가 빈번해지고 있다. 태풍 매미의 경우, 피해규모는 인명피해 130명, 이재민 4089세대 10975명, 재산피해 4조 7810억원이며 침수피해는 규모는 주택 21,015동과 농경지 37,986ha으로 나타났다. 특히 이 태풍은 경남 사천시 부근 해안에 상륙할 때의 중심기압은 950hPa로 중심부근 최대풍속 40m/s 이었으며 풍속 15 m/s 이상으로로, 태풍의 강도는 [강], 크기는 [중형]이었음에도 그 피해는 과거에 비해 크게 나타났다. 내륙과는 달리 해일 등의 피해로 인한 해안지역의 침수피해 저감기법은 월파방지 파라펫 설치 또는 침수예상 지역의 지반고를 높이는 이외에는 확실한 대책이 없는 것이 특징이라 하겠다. 따라서 해안지역 침수예방은 월파방지 파라펫과 함께 인명피해 최소화를 위해서는 충분한 선행시간을 통한 대피안내와 가장 효율적인 대피경로를 제공하는 것이 최선이라 할 수 있다. 본 연구에서는 경남 창원지역의 해수면 상승으로 인한 해안지역 침수를 모의할 수 있는 2차원 부정류 프로그램을 개발하고 매미 당시 창원지역의 침수피해 결과와 비교하여 프로그램 모의 결과를 검증하였다. 해안을 따라 다양한 높이의 월파방지 파라펫을 모의하여 시간대별 대상지역의 침수규모를 시간대별로 예측하였다. 모의결과 월파방지 파라펫 규모 별 침수규모와 이에 따른 경제적 피해규모를 산정하였으며 경제성 원칙에 따른 최적의 파라펫 규모를 제시하였다. 또한 이때 시간대별 침수범위 예측 결과를 바탕으로 시간대별 등침수선을 제시하고 일정 시간대별 등침수선을 모의결과를 이용하여 산정하였다. 도로 경사와 대피자의 연령 등을 고려한 대피소요 시간을 산정하여 침수 소요 시간과 비교하여 대피가 가능한 대피경로를 제시하는 알고리즘을 제안하였다. 본 연구결과는 기존에 알려진 대피경로와는 달리 다양한 침수저감 기법규모에 따라 다양한 대피경로를 제안할 수 있었으며 이는 추후 다양한 대피 시나리오를 제시할 수 있는 기초자료를 제공할 수 있을 것으로 기대된다.

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Possible Relationship between NAO and Western North Pacific Typhoon Genesis Frequency (북대서양 진동과 북서태평양 태풍발생빈도와의 관계)

  • Choi, Ki-Seon;Park, Sangwook;Chang, Ki-Ho;Lee, Jong-Ho
    • Journal of the Korean earth science society
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    • v.34 no.3
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    • pp.224-234
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    • 2013
  • This study examined a strong positive correlation between the North Atlantic Oscillation (NAO) index during June and the total tropical cyclone (TC) genesis frequency in the western North Pacific during July and August. To investigate a possible cause for this relationship, the mean difference between the highest positive NAO years and the lowest negative NAO years was analyzed by dividing into when the El Ni$\tilde{n}$o and La Ni$\tilde{n}$a years were included and when the El Ni$\tilde{n}$o and La Ni$\tilde{n}$a years were not included. When the El Ni$\tilde{n}$o and La Ni$\tilde{n}$a years were included, for the positive NAO years, the TCs mostly occurred in the northwestern region of tropical and subtropical western Pacific, and showed a pattern that migrate from the sea northeast of the Philippines, pass the East China Sea, and move toward the mid-latitudes of East Asia. In contrast, for the negative NAO years, the TCs mostly occurred in the southeastern region of tropical and subtropical western Pacific, and showed a pattern that migrate westward from the sea southeast of the Philippines, pass the South China Sea, and move toward the southern coast of China and Indochinese peninsula. These two different TC migration patterns affect the recurving location of TC, and for the positive NAO years, the recurving of TC was averagely found to take place in the further northeast. In addition, the migration patterns also affect the TC intensity, and the TCs of positive NAO years had stronger intensity than the TCs of negative NAO years as sufficient energy can be absorbed from the ocean while moving north in the mid-latitudes of East Asia. The TCs of negative NAO years showed weak intensity as they get weaken or disappear shortly while landing on the southern coast of China and the Indochinese peninsula. On the other hand, the above result of analysis is also similarly observed when the El Ni$\tilde{n}$o and La Ni$\tilde{n}$a years were not included.

Hindcast of Storm Surge in the Southeastern Coast Using a Three-Dimensional Numerical Model (3차원 수치모형을 이용한 남동해안 폭풍해일 산정)

  • Kim, Cha-Kyum;Lee, Jong Tae
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.31 no.4B
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    • pp.369-376
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    • 2011
  • A three and two dimensional (3D and 2D) numerical models were established to study the storm surge induced by Typoon Maemi in Masan and Pusan Ports. The typhoon landed on the southern coast of Korean Peninsula at 21:00, September 12, 2003 with a central pressure of 950 hPa. The observed maximum storm surge in Masan Port was 230 cm, and the computed peak storm surge using the 3D and the 2D models were 238 cm and 208 cm, respectively. The observed maximum storm surge in Pusan Port was 89 cm, and the peak storm surge of the 3D and the 2D models were 91 cm and 79 cm, respectively. The hindcasted storm surge using 3D model was in good agreement with the observed data, and the 3D model at peak time was more accurate than the 2D. The storm-induced currents were computed using the 3D model. The currents in the surface layer of Masan Bay went into the inner bay with 30~60 cm/sec, while the currents in the bottom layer flowed out with 20~40 cm/sec.