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        검색결과 8

        1.
        2024.06 KCI 등재 구독 인증기관 무료, 개인회원 유료
        태풍은 지구 시스템 내의 해양-대기-육상 상호작용을 일으키는 매우 중요한 현상으로 특히 태풍의 특성 인자 중 하나인 풍속은 중심 기압, 이동 경로, 해수면 온도 등의 매개변수에 의해 복잡하게 변화하여 실제 관측 자료를 기반으 로 이해하는 것이 중요하다. 2015 개정 교육과정 기반 중등학교 교과서에서 태풍 풍속은 본문 내용 및 삽화의 형태로 제시되고 있어 풍속에 대한 심층적 이해가 가능한 탐구활동이 무엇보다 필요한 실정이다. 본 연구에서는 교수-학습 과 정에서 간단한 조작만으로도 태풍의 풍속을 이해할 수 있도록 그래픽 사용자 인터페이스(GUI)를 기반으로 한 데이터 시각화 프로그램을 개발하였다. 2023년 발생한 태풍 마와르, 구촐, 볼라벤의 천리안 위성 2 A호 RGB (Red-Green-Blue) 영상 자료를 입력 자료로 활용하였다. 태풍 주변의 구름 이동 좌표를 입력하여 태풍의 풍속을 산출하고 태풍 중심 기 압, 폭풍 반경, 최대 풍속 등의 매개 변수를 입력하여 태풍 풍속 분포를 시각화 할 수 있도록 설계하였다. 본 연구에서 개발된 GUI 기반 프로그램은 천리안 위성 2 A호로 관측 가능한 태풍에 대해 오류 없이 적용 가능하며 교과서의 시공 간적 한계를 벗어난 실제 관측 자료 기반의 과학탐구활동이 가능하다. 학생과 교사는 별도의 유료 프로그램 및 전문적 인 코딩 지식이 없어도 실제 관측 자료를 수집, 처리, 분석, 시각화하는 과정을 경험할 수 있으며, 이를 통해 미래 정보 화 사회에서의 필수 역량인 디지털 소양을 함양시킬 수 있을 것으로 기대된다.
        5,400원
        2.
        2021.06 KCI 등재 구독 인증기관 무료, 개인회원 유료
        우리나라는 지리적 위치와 편서풍의 영향을 받아 필리핀이나 대만 근처에서 전향한 태풍이 매년 평균 2~3개 통과한다. 진해만은 우리나라의 대표적인 태풍 피항지로 알려져 있으며, 태풍 내습 시 피항 선박들로 가득차고 나중에는 주변 항로까지 묘박한 선박들로 포화상태에 이르게 된다. 이로 인하여 묘박중인 선박이 강풍으로 주묘가 발생될 경우에는 선박 간 이격거리가 짧아 충돌사고가 발생될 수 있으므로 진해만의 체계적인 묘박 안전관리가 필요한 실정이다. 따라서 본 연구에서는 진해만 묘박지 수심에 따른 선박 톤수별 주묘 한계 풍속을 제시하였다. 수심 20 m에서는 묘쇄를 7~9 Shackles 신출하였을 때 주묘 발생 한계 풍속은 48~63 knots, 수심 35 m에서는 46~61 knots, 수심 50 m에서는 39~54 knots로 평가되었다. 수심이 증가하면서 외력에 의해 파주부가 5 m 미만이 되는 상황이 발생하면서 주묘가 발생하는 한계 풍속은 4~8 knots로 큰 차이를 보였다. 또한 고파주력 앵커(AC-14형)가 설치된 선박이 재래형 앵커(ASS형)가 설치된 선박보다 주묘 한계 풍속이 더 크게 평가되었지만, 수심이 50 m로 깊은 곳에서는 고파주력 앵커를 사용하더라도 주묘가 쉽게 발생될 수 있는 것으로 확인되었다.
        4,000원
        4.
        2019.04 KCI 등재 서비스 종료(열람 제한)
        The present study analyzes the characteristics of 43 typhoons that affected the Korean Peninsula between 2002 and 2015. The analysis was based on 3-second gust measurements, which is the maximum wind speed relevant for typhoon disaster prevention, using a typhoon disaster prevention model. And the distribution and characteristics of the 3-second gusts of four typhoons, RUSA, MAEMI, KOMPASU, and BOLAVEN that caused great damage, were also analyzed. The analysis show that between May and October during which typhoons affected the Korean Peninsula, the month with the highest frequency was August(13 times), followed by July and September with 12 occurrences each. Furthermore, the 3-second gust was strongest at 21.2 m/s in September, followed by 19.6 m/s in August. These results show that the Korean Peninsula was most frequently affected by typhoons in August and September, and the 3-second gusts were also the strongest during these two months. Typhoons MAEMI and KOMPASU showed distribution of strong 3-second gusts in the right area of the typhoon path, whereas typhoons RUSA and BOLAVEN showed strong 3-second gusts over the entire Korean Peninsula. Moreover, 3-second gusts amount of the ratio of 0.7 % in case of RUSA, 0.8 % at MAEMI, 3.3 % at KOMPASU, and 21.8 % at BOLAVEN showed as "very strong", based on the typhoon intensity classification criteria of the Korea Meteorological Administration. Based on the results of this study, a database was built with the frequencies of the monthly typhoons and 3-second gust data for all typhoons that affected the Korean Peninsula, which could be used as the basic data for developing a typhoon disaster prevention system.
        5.
        2018.03 KCI 등재 서비스 종료(열람 제한)
        For this study, WRF numerical modeling was performed, using RDAPS information for input data on typhoons affecting the Korean peninsula to produce wind data of 700hPa. RAM numerical modeling was also used to calculate 3-second gusts as the extreme wind speed. After comparing wind speeds at an altitude of 10 m to evaluate the feasibility of WRF numerical modeling, modeled values were found to be similar with measured ones, reflecting change tendencies well. Therefore, the WRF numerical modeling results were verified. As a result of comparing and analyzing these wind speeds, as calculated through RAM numerical modeling, to evaluate applicability for disaster preparedness, change tendencies were observed to be similar between modeled and measured values. In particular, modeled values were slightly higher than measured ones, indicating applicability for the prevention of possible damage due to gales. Our analysis of 3-second gusts during the study period showed a high distribution of 3-second gusts in the southeast region of the Korean peninsula from 2002-2006. The frequency of 3-second gusts increased in the central north region of Korea as time progressed. Our analysis on the characteristics of 3-second gusts during years characterized by El Niño or La Nina showed greater strength during hurricanes that affected the Korean peninsula in El Niño years.
        6.
        2015.09 KCI 등재 서비스 종료(열람 제한)
        There were 35 typhoons affecting Korean Peninsula from 1999 to 2009(The average annual number of typhoon is 3.18). Among these typhoons, the number of typhoon passing through the Yellow sea, the Southern sea and the East sea were 14, 6 and 15 respectively. Wind speed on the height of 10 m can be finally estimated using the surface roughness after we calculate wind speed on the height of 300 m from the data on the surface of 700 hPa. From the wind speeds on the height of 10 m, we can understand the regional distributions of strong wind speed are very different according to the typhoon tracks. Wind speed range showing the highest frequency is 10~20 m/s(45.69%), below 10 m/s(30.72%) and 20~30 m/s(17.31%) in high order. From the analysis of the wind speed on the hight of 80 m, we can know the number of occurrence of wind speed between 50 and 60 m/s that can affect wind power generation are 104(0.57%) and those of between 60 and 70 m/s that can be considered as extreme wind speed are even 8(0.04%).
        7.
        2012.04 KCI 등재 서비스 종료(열람 제한)
        This study calculated wind speed at the height of 10 m using a disaster prediction model(Florida Public Hurricane Loss Model, FPHLM) that was developed and used in the United States. Using its distributions, a usable information of surface wind was produced for the purpose of disaster prevention when the typhoon attack. The advanced research version of the WRF (Weather Research and Forecasting) was used in this study, and two domains focusing on South Korea were determined through two-way nesting. A horizontal time series and vertical profile analysis were carried out to examine whether the model provided a resonable simulation, and the meteorological factors, including potential temperature, generally showed the similar distribution with observational data. We determined through comparison of observations that data taken at 700 hPa and used as input data to calculate wind speed at the height of 10 m for the actual terrain was suitable for the simulation. Using these results, the wind speed at the height of 10 m for the actual terrain was calculated and its distributions were shown. Thus, a stronger wind occurred in coastal areas compared to inland areas showing that coastal areas are more vulnerable to strong winds.
        8.
        2008.02 KCI 등재 서비스 종료(열람 제한)
        Damage from typhoon disaster can be mitigated by grasping and dealing with the damage promptly for the regions in typhoon track. What is this work, a technique to analyzed dangerousness of typhoon should be presupposed. This study estimated 10 m level wind speed using 700 hPa wind by typhoon, referring to GPS dropwindsonde study of Franklin(2003). For 700 hPa wind, 30 km resolution data of Regional Data Assimilation Prediction System(RDAPS) were used. For roughness length in estimating wind of 10 m level, landuse data of USGS are employed. For 10 m level wind speed of Typhoon Rusa in 2002, we sampled AWS site of 7.4~30 km distant from typhoon center and compare them with observational data. The results show that the 10 m level wind speed is the estimation of maximum wind speed which can appear in surface by typhoon and it cannot be compared with general hourly observational data. Wind load on domestic buildings relies on probability distributions of extreme wind speed. Hence, calculated 10 m level wind speed is useful for estimating the damage structure from typhoon.