• 제목/요약/키워드: Bow wave

검색결과 138건 처리시간 0.024초

LPG 선박의 선수 Bulb 형상 비교 Study (A Comparison Study of the Bulbous Bow Shape for LPG Carrier)

  • 이종기;박재상;김성표
    • 대한조선학회 특별논문집
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    • 대한조선학회 2005년도 특별논문집
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    • pp.31-37
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    • 2005
  • An attempt to improve the speed performance through the minimizing in wave resistance has been done by an application of gooseneck and no bulb type to bulbous bow for the DSME 78,500 Class LPG Carrier on the basis of the CFD calculation and comparatives model tests. The hydrodynamic characteristics according to the variation of the shape of Cp-curve, design load water line, frame line and bulbous bow that have an important effect on the wave resistance has been evaluated/calculated by ship-flow code. A wide variety in hull variation have been tried to have a good hull form with three types of fore-body hull forms mainly classified by the shape of bulbous bow. The speed performances for the three final hull forms with different bulbous bows have been evaluated through the model tests.

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파랑관통형 고속 활주선 실선 성능 분석에 관한 연구 (Study on Sea Trial Analysis of Wave Piercing High Speed Planing Boat)

  • 정우철;이창우;한상천
    • 한국해양공학회지
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    • 제31권5호
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    • pp.335-339
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    • 2017
  • This study investigated the sea trial performance of a wave piercing high speed planing hull (WPH). The bow shape of the boat is sharp, and it has no chine or spray strip like a normal planing boat. The skeg is attached to the bottom of the boat in the longitudinal direction from the bow to the stern. The speed performance was analyzed as the speed dropped in a wave, and the seakeeping performance was compared with that of a planing boat with a similar velocity coefficient by measuring the vertical acceleration of the bow in the wave. The turning circle was compared with Lewandowski's estimation for a planing boat. As a result of this study, it was confirmed that the velocity drop of the developed WPH was not large in a wave, and the vertical acceleration was greatly reduced compared with that of a normal planing boat. The turning circle was somewhat larger than the estimated results for a planing boat, but the overall tendency was the same.

선수부 설계시 구조거동과 충돌격벽에 미치는 영향 (Collision Response of Bow Structure and Its Affected Collision Bulkhead in Bow Design)

  • 신영식;박명규
    • 한국항만학회지
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    • 제14권2호
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    • pp.219-231
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    • 2000
  • In this paper a complicated structural behavior in collision and its effects of energy translation to the collision bulkhead was examined through a methodology of the numerical simulation to obtain a ideal bow construction and a location of collision bulkhead against head on collision. In the present the bow structure is normally designed in consideration of its specific structural arrangements and internal and external loads in these area such as hydrostatic and dynamic pressure, wave impact and bottom slamming in accordance with the Classification rules, and the specific location of collision bulkhead by SOLAS requirement. By these studies the behavior of the bow collapse due to collision was synthetically evaluated for the different size of tankers and its operational speed limits, and by the results of these simulation it provides the optimal design concept for the bow construction to prevent the subsequent plastic deformation onto or near to the collision bulkhead boundary and to determine the rational location of collision bulkhead.

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CSR적용 극비대선의 저항성능 개선에 관한 연구 (Study on the Resistance Improvement for an Extremely Full Ship Under CSR)

  • 박현석;김태훈;오세형;김병남;김우전;유재훈;조성훈
    • 대한조선학회논문집
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    • 제48권2호
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    • pp.99-106
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    • 2011
  • The appearance of CSR changes the concept of the hull form design as well as structural design, since the application of CSR inevitably brings the lightweight increase of a ship. Keeping the original design constraints such as principal particulars, deadweight, and speed performance, designers have to increase the volume of the hull form. As a result, the entrance angle at bow end should become larger, which results in blunter waterline shape. For a slow and full ship having high $C_B$ more than 0.85, a new concept of bow shape has been required to alleviate the increase of wave-making resistance, since it is very difficult to improve waterline and frameline shape for such a full ship. In this paper a new bow shape of Capesize Bulk Carrier was developed to improve its wave-making characteristics without incompliance with the design constraints. For loading manual calculation, NAPA software was used. FLUENT6.3.26 and WAVIS1.4 were used to evaluate resistance performance of the subject hull forms. The newly designed hull form was tested at SSPA model basin for the final confirmation of resistance and propulsion performance of the ship. It was found that the new bow shape of a Capesize Bulk Carrier improved the resistance characteristics greatly compared to a conventional bulbous bow. The other benefits of new bow shape on the manufacturability were also investigated.

선수 충돌시 구조 붕괴 거동에 대한 수치해석(제1보) (Numerical Simulation of Structural Response in Bow Collision (1st Report))

  • 박명규
    • 한국해양공학회지
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    • 제14권2호
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    • pp.28-35
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    • 2000
  • In this paper a complicated structural behavior in collision and its effect of energy transmission to the collision bulkhead was examined through a methodology of the numerical simulation to obtain a ideal bow construction and a location of collision bulkhead against heat on collision. At present the bow structure is normally designed in consideration of its specific structural arrangement and internal and external loads in these areas such as hydrostatic and dynamic pressure wave impact and bottom slamming in accordance with the Classification rules and the specific location of collision bulkhead by SOLAS requirement. By these studies the behavior of the bow collapse due to collision was synthetically evaluated for the different size of tankers and its operational speed limits and by the results of these simulation it provides the optimal design concept for the bow construction to prevent the subsequent plastic deformation onto or near to the collision bulkhead boundary and to determine the rational location of collision bulkhead.

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반전형 선수부 형상을 가진 쌍동선 저항성능에 관한 연구 (A Study on the Resistance Performance of Catamarans with Modified-Reverse Bow)

  • 김도정;오우준;김정은;나현호;최홍식
    • 해양환경안전학회지
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    • 제24권7호
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    • pp.923-929
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    • 2018
  • 본 연구에서는 쌍동선체의 선수형상에 대해 일반적으로 적용되고 있는 재래식과 선수 돌출의 반전형 선수 형상에 대한 저항성능 및 항주자세를 수치해석을 통해 분석하고, 반전형 선수형상에 대해서는 모형시험을 통하여 수치해석과 비교분석하였다. 반전형 선수형상은 재래식 선수형상보다 선수 발산파 파정의 생성위치를 선미방향으로 이동시켜 개선된 조파현상을 보였으며, 저항 및 안정된 항주자세 결정에 효과적이며 선체 저항이 약 2.95 % 개선되었다. 반전형 선수형상에 대한 수치해석 및 모형시험 비교분석 자료는 향후 선형설계 활용에 유용할 것으로 판단된다.

Green Water 충격에 대비한 선수갑판 설계압력의 산출 (Computation of the Bow Deck Design Pressure against the Green Water Impact)

  • 김용직;신기석;이승철;하영록;홍사영
    • 대한조선학회논문집
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    • 제56권4호
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    • pp.343-351
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    • 2019
  • Green water impact may sometimes cause some structure damages on ship's bow deck. Prediction of proper design pressure against the green water impact is an essential task to prevent the possible damages on bow deck. This paper presents a computational method of the bow deck's design pressure against the green water impact. Large heave and pitch motions of ship are calculated by the time domain nonlinear strip method. Green water flow and pressure on bow deck are simulated by the predictor-corrector second kind upstream finite difference method. This green water simulation method is based on the shallow water wave equations expanded for moving bottom conditions. For various kind of ships such as container ship, VLCC, oil tanker and bulk carrier, the green water design pressures on bow deck are computed and discussed. Also, the obtained results of design pressure on bow deck are compared with those of the classification society rules and discussed.

전산유체역학을 이용한 컨테이너 선수갑판 쇄파판에 작용하는 충격하중 계산 (Numerical Computations of Impact Forces Acting on Breakwater Plate of Bow Deck of Container Carrier)

  • 이서현;류재문
    • 대한조선학회논문집
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    • 제52권3호
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    • pp.198-205
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    • 2015
  • In this study, numerical studies using a Computational Fluid Dynamics(CFD) method were carried out to estimate the green water load acting on the breakwater plate of bow deck of container carrier, KCS. For the green load water load analysis, a full load condition was considered. The relative motions at bow deck were calculated from the seakeepig analysis. Statistical analysis were carried out to estimate the long term response of the relative motions with the North Atlantic wave scatter diagram. The equivalent design wave was determined from the RAO of the relative motions at bow and the long term responses. CFD geometry modeling with three different locations and simulations for the green water loads were carried out in the equivalent design waves. A commercial CFD program, STAR-CCM+ Ver. 8.04, was used and the green water pressures on the breakwater plate were calculated successfully. The CFD analysis for green water loads can be used as a useful design tool for the evaluation of the breakwater plate of the container vessel.

유선추적법(流線追跡法)에 의(依)한 구상선수선형(球狀船首船型)의 계획(計劃) 및 조파효과(造波效果) (Desigh and Wavemaking Effect of Bulvous Bow Ship by Stream Line Tracing Method)

  • 홍성완
    • 대한조선학회지
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    • 제10권2호
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    • pp.19-28
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    • 1973
  • This paper deals with a problem for determining the bulbous bow ship from which pertains to the study of the theoretical ship form planing method. In this paper has been determined the bulbous bow ship form which is a similar in geometric particulars with the conventional liner ship G.T.10, 000 by adopting the variable method for finding the optimum ship form by A.Y.C. Lee and the streamline tracing method by T. Inui and P.C. Pien. Each resistance performance is examined by the towing test and is compared with one another. The followings are the outcome of this study: Among the 5 type models, the bulbous bow ship form M.S. B 1120 is the most excellent for the resistance performance. The effect for the wave resistance is very sharp according to the difference of the bottom flattening of theoretical ship form. The optimum value of the bulbous bow for wave resistance can be obtained by the variable method mentioned above, and for the series of(Main hull+Bulb)opt., ${\alpha}=75/25$, the value is $f{\approx}0.11$.

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Dynamic Response of Container Ship Subjected to Bow flare Slamming Loads

  • Choi, Tae-Soon;Islam, MD Shafiqul;Seo, Dae-Won;Kim, Joon-Gyu;Song, Kang-hyun
    • Journal of Advanced Research in Ocean Engineering
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    • 제4권4호
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    • pp.195-203
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    • 2018
  • The wave impact on ships could cause local damage to the ship's hull, which has been a concerning issue during the ship design process. In recent years, local structural damages of ships caused by slamming loads have been reported by accident; therefore, it is necessary to study the local slamming pressure loads and structural response assessment. In the present study, slamming loads around the ship's bow region in the presence of regular wave have been simulated by RANS equations discretized with a cell-centered finite volume method (FVM) in conjunction with the $k-{\Box}$ turbulence model. The dynamic structural response has been calculated using an explicit FE method. By adding the slamming pressure load of each time step to the finite element model, establishing the reasonable boundary conditions, and considering the material strain-rate effects, the dynamic response prediction of the bow flare structure has been achieved. The results and insights of this study will be helpful to design a container ship that is resistant enough to withstand bow flare slamming loads.