• 제목/요약/키워드: Shipbuilding and offshore plant

검색결과 35건 처리시간 0.019초

A Study on the Improvement of Steering Command System through Accident Analysis of Azimuth thruster using STAMP Method

  • HyunDong Kim;SangHoon Lee;JeongMin Kim
    • 한국컴퓨터정보학회논문지
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    • 제28권9호
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    • pp.149-158
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    • 2023
  • 전 세계적으로 기후변화의 패러다임에 따라 조선업계에서도 친환경연료를 이용하는 추진시스템이 고려되면서, 다양한 추진기 역시 각광을 받고 있다. 일반적인 프로펠러와 타로 구성되었던 추진기들은 전방위추진기(아지무스 스러스터)라는 특수한 추진기의 발전으로부터 그 종류가 다양해지고 있다. 이러한 전방위추진기는 과거에는 예인선에 많이 설치되어 있으나, 현재는 동적위치제어시스템을 탑재한 해양플랜트운영선박에 많이 설치되어 사용되고 있는데, 이는 일반적인 추진기의 조타 방법과 상이하여 승선하는 선원들이 그 특성을 익히는데 많은 시간이 소요되고 있다. 아울러 이러한 특수한 추진기와 관련한 교육 역시 제한적으로 존재한다. 본 연구에서는 전방위추진기 탑재 선박의 조종 미숙으로 발생한 해양사고를 STAMP 기법을 통해 원인을 분석한 후 특수한 추진기를 설치한 선박의 안전 운항을 위해 표준조타명령에 대한 필요성을 시사하고자 한다.

해양플랜트 Topside 방화벽에 폭발압의 부압구간이 미치는 영향 (The Effect of Negative Pressure Phase in Blast Load Profile on Blast Wall of Offshore Plant Topside)

  • 강기엽;최광호;류용희;최재웅;이제명
    • 한국전산구조공학회논문집
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    • 제27권4호
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    • pp.281-288
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    • 2014
  • 가스폭발은 해양플랜트 산업에서 발생할 수 있는 치명적인 사고 중 하나이며, 탑사이드 플랫폼은 폭발압력에 따른 구조 건전성을 확보해야만 한다. 따라서, 해양플랜트 분야에서는 이러한 폭발사고에 대비한 방폭설계에 관한 많은 연구가 수행되었지만, 여전히 추가적으로 세밀한 분석이 더 필요한 실정이다. 폭발 설계하중 계산과정에서 도출된 충격량은 CFD 해석결과로 계측된 폭발 압력 응답에서의 곡선 아래 면적의 절대 값에 의해 결정되어 진다. 하지만 가스폭발에서의 부압구간은 TNT 폭발이나 가스폭발과는 달리 상당부분 존재한다. 본 연구의 목표는 이러한 부압구간이 구조물의 거동에 미치는 영향에 대해서 분석하는 것이다. 따라서 방폭설계가 필수적으로 요구되어지는 FPSO 탑사이드의 방화벽을 폭발하중에 따른 구조 응답을 분석하기 위한 대상물로 선정하였다. 폭발 하중-시간이력 데이터는 FLACS를 이용한 폭발 시뮬레이션 과정을 통해 획득하였으며, LS-DYNA는 비선형 과도 응답해석을 위해 사용되었다.

Estimation of ship operational efficiency from AIS data using big data technology

  • Kim, Seong-Hoon;Roh, Myung-Il;Oh, Min-Jae;Park, Sung-Woo;Kim, In-Il
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제12권1호
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    • pp.440-454
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    • 2020
  • To prevent pollution from ships, the Energy Efficiency Design Index (EEDI) is a mandatory guideline for all new ships. The Ship Energy Efficiency Management Plan (SEEMP) has also been applied by MARPOL to all existing ships. SEEMP provides the Energy Efficiency Operational Indicator (EEOI) for monitoring the operational efficiency of a ship. By monitoring the EEOI, the shipowner or operator can establish strategic plans, such as routing, hull cleaning, decommissioning, new building, etc. The key parameter in calculating EEOI is Fuel Oil Consumption (FOC). It can be measured on board while a ship is operating. This means that only the shipowner or operator can calculate the EEOI of their own ships. If the EEOI can be calculated without the actual FOC, however, then the other stakeholders, such as the shipbuilding company and Class, or others who don't have the measured FOC, can check how efficiently their ships are operating compared to other ships. In this study, we propose a method to estimate the EEOI without requiring the actual FOC. The Automatic Identification System (AIS) data, ship static data, and environment data that can be publicly obtained are used to calculate the EEOI. Since the public data are of large capacity, big data technologies, specifically Hadoop and Spark, are used. We verify the proposed method using actual data, and the result shows that the proposed method can estimate EEOI from public data without actual FOC.

압입시험기를 이용한 후판용접재의 잔류응력 분포에 관한 연구 (Study on Residual Stress Distribution in Thick Plate Welded Material Using Indentation Equipment)

  • 허선철;김귀남;이종석;박철홍;박준성;박원조
    • 한국해양공학회지
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    • 제25권6호
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    • pp.66-71
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    • 2011
  • Recently, the production of shipbuilding and offshore plant industries, with a trend toward large structures, has led to an increased use of high strength ultra-thick plates. The use of ultra-thick plates increases the welding tasks, and the welding process generates distortion and residual stress in the weldment because of the rapid heating and cooling. Welding distortion and residual stress in the welded structure resulte in many troubles such as deformation and life deterioration. In particular, the welding residual stress has an important effect on welding deformation, fatigue, buckling strength, brittleness, etc. The purpose of this study was to evaluate the residual stress at a multi-pass weldment using an experimental method for EH36 high-tension steel. In this experimental method, AIS3000 was used to measure the residual stress of a welded part, HAZ, and base metal; EPMA and XRD were used to study the material properties.

조선 및 해양플랜트 구조물의 불안전 파괴방지 설계기술 (Design for avoid unstable fracture in shipbuilding and offshore plant structure)

  • 안규백;배홍열;노병두;안영호;최종교;우완측;박정웅
    • Journal of Welding and Joining
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    • 제33권1호
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    • pp.35-40
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    • 2015
  • Recently, there have been the increase of ship size and the development of oil and gas in arctic region. These trends have led to the requirements such as high strength, good toughness at low temperature and good weldability for prevent of brittle fracture at service temperature. There has been the key issue of crack arrestability in large size structure such as container ship. In this report for the first time, crack arrest toughness of thick steel plate welds was evaluated by large scale ESSO test for estimate of brittle crack arrestability in thick steel plate. For large structures using thick steel plates, fracture toughness of welded joint is an important factor to obtain structural integrity. In general, there are two kinds of design concepts based on fracture toughness: crack initiation and crack arrest. So far, when steel structures such as buildings, bridges and ships were manufactured using thick steel plates (max. 80~100mm in thickness), they had to be designed in order to avoid crack initiation, especially in welded joint. However, crack arrest design has been considered as a second line of defense and applied to limited industries like pipelines and nuclear power plants. Although welded joint is the weakest part to brittle fracture, there are few results to investigate crack arrest toughness of welded joint. In this study, brittle crack arrest designs were developed for hatch side coaming of large container ships using arrest weld, hole, and insert technology.