• 제목/요약/키워드: Wave Drift Forces

검색결과 55건 처리시간 0.025초

수직운동(垂直運動)이 최소(最小)인 부표(浮標)의 불규칙파(不規則波)중 계류상태(繫留狀態)에 대한 동력학적(動力學的) 해석(解析) (Theoretical Study on the Dynamic Response of a Moored Buoy with Minimum Vertical Wave-exciting Force in Irregular Waves)

  • 최항순;김효철;성우제
    • 대한조선학회지
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    • 제21권3호
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    • pp.43-50
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    • 1984
  • A body form, which experiences minimum vertical wave-exciting forces in the vicinity of a prescribed wave frequency in water of finite depth, is obtained by an approximate method. Its configuration has the symmetry with respect to the vertical axis, expressed in terms of exponential functions. By distributing three-dimensional pulsating sources and dipoles on the immersed surface of the body, a velocity potential is determined and subsequently hydrodynamic forces including the 2nd-order time-mean drift forces are calculated. The dynamic behavior of the body moored in irregular waves is investigated numerically by using central difference method. Hereby irregular wave trains are simulated with examining its repeatability by comparing the resulting spectrum with original one. Numerical results indicated that the body form obtained from the present analysis possesses in general a favorable hydrodynamic characteristics in comparison with a spherical buoy and that the maximum excursion of the body can be significantly reduced by setting pre-tension of an appropriate amount in the mooring cable.

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안벽에 계류된 선박의 비선형 운동응답 (Nonlinear Motion Responses of a Moored Ship beside Quay)

  • 이호영;임춘규;유재문;전인식
    • 한국해양공학회지
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    • 제17권4호
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    • pp.8-15
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    • 2003
  • When a typoon sets into harbour, a moored ship shows erratic motions and even mooring line failure may occur. such troubles may be caused by harbour resonance phenomena, resulting in large motion amplitudes at low frequency, which is close ti the natural frequency of th moored ship. The nonlinear motions of a ship moored to quay are simulated under external forces due to wave, current including mooring forces in time domain. The forces due to waves are obtained from source and dipole distribution method in the frequency domain. The current forces are calculated by using slow motion maneuvering equation in the horizontal plane. The wind forces are calculated from the empirical formula of ABS and the mooring forces of ropes and fenders are modeled as linear spring.

2점 계류된 선박에 대한 운동 해석 (Motion Analysis of Two Point Moored Oil Tanker)

  • 이호영;임춘규
    • 한국해양공학회:학술대회논문집
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    • 한국해양공학회 2003년도 추계학술대회 논문집
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    • pp.232-236
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    • 2003
  • The anchor is laid on seabed and the main engine is worked to against incident environmental loads in typoon. As the main engine is broken down in the storm, the anchor chain is cutted and the vessel is drifted. Although a ship is moored by two point mooring lines to keep the her position, a ship is crashed into a rock because of typoon and the accident of oil spilling may be occured. In this paper, we studied the position-keeping of a ship which is analyized based on the slow motion maneuvering equations considering wave, current and wind. The direct integration method is employed to estimate wave loads. The current forces are calculated by using mathematical of MMG. The two point mooring forces are quasisatatically evaluated by using the catenary equation. The coefficeints of wind forces are modeled from Isherwood’s emperical data and the variation of wind speed is estimated by wind spectrum. The nonlinear motions of a two point moored ship are simulated considering wave, current, wind load in time domain.

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파랑중에서 전진하는 선박의 부가저항 해석 (Analysis of added resistance of a ship advancing in waves)

  • 이호영;곽영기
    • 한국해양공학회지
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    • 제11권2호
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    • pp.91-99
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    • 1997
  • This paper presents theoretical formulations and numerical computations for predicting first-and second-order hydrodynamic force on a ship advvancing in waves. The theoretical formulation leads to linearized radiation and diffration problems solving the three-dimensional Green function integral equations over the mean wetted body surface. Green function representing a translating and pulsating source potantial for infinite water depth is used. In order to solve integral equations for three dimentional flows using Green function efficiently, the Hoff's method is adopted for numerical calculation of the Green function. Based on the first-order solution, the mean seconder-order forces and moments are obtained by directly integrating second-order pressure over the mean wetted body surface. The calculated items are carried out for analyzing the seakeeping characteristics of Series 60. The calculated items are hydrodynamic coefficients, wave exciting forces, frequency response functions and addd resistance in waves.

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Prediction of the turning and zig-zag maneuvering performance of a surface combatant with URANS

  • Duman, Suleyman;Bal, Sakir
    • Ocean Systems Engineering
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    • 제7권4호
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    • pp.435-460
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    • 2017
  • The main objective of this study is to investigate the turning and zig-zag maneuvering performance of the well-known naval surface combatant DTMB (David Taylor Model Basin) 5415 hull with URANS (Unsteady Reynolds-averaged Navier-Stokes) method. Numerical simulations of static drift tests have been performed by a commercial RANS solver based on a finite volume method (FVM) in an unsteady manner. The fluid flow is considered as 3-D, incompressible and fully turbulent. Hydrodynamic analyses have been carried out for a fixed Froude number 0.28. During the analyses, the free surface effects have been taken into account using VOF (Volume of Fluid) method and the hull is considered as fixed. First, the code has been validated with the available experimental data in literature. After validation, static drift, static rudder and drift and rudder tests have been simulated. The forces and moments acting on the hull have been computed with URANS approach. Numerical results have been applied to determine the hydrodynamic maneuvering coefficients, such as, velocity terms and rudder terms. The acceleration, angular velocity and cross-coupled terms have been taken from the available experimental data. A computer program has been developed to apply a fast maneuvering simulation technique. Abkowitz's non-linear mathematical model has been used to calculate the forces and moment acting on the hull during the maneuvering motion. Euler method on the other hand has been applied to solve the simultaneous differential equations. Turning and zig-zag maneuvering simulations have been carried out and the maneuvering characteristics have been determined and the numerical simulation results have been compared with the available data in literature. In addition, viscous effects have been investigated using Eulerian approach for several static drift cases.

불규칙파 중에 Turret 계류된 부유체의 천이운동해석 (Transient Surge Motion of A Turret Moored Body in Random Waves)

  • 김동준
    • 한국해안해양공학회지
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    • 제3권2호
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    • pp.92-99
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    • 1991
  • 해상에 계류된 부유체는 입사하는 파도에 의해 선형항인 파랑하중과 함께 2차항인 표류력을 받는다. 2차항의 표류력은 자유표면조건의 비선형성에 의해 서로 유사한 주파수를 갖는 2개의 선형 성분파간의 상호작용으로 발생하는 장주기 성분을 포함하고 있다. 대개의 계류계의 수평 인장력은 관성력항에 비해 아주 작은 양이고, 따라서 계류계의 설치로 나타나는 부유체의 수평운동 고유주기는 장주기이므로 때로는 공진이 일어나게 된다. 이렇게 야기된 대진폭운동은 작업조건을 악화시키는 것은 물론 계류계에 심각한 손상을 줄 수 있다. 부유체의 계류계로 최근 관심을 모으고 있는 Turret 계류계의 설계에도 이러한 장주기 표류력에 대한 고려와 함께 풍향성이 있는(weathervaning) 천이운동시 Roller Bearing에 걸리는 수평하중에 대한 해석이 필수적이다. 본 논문에서는 불규칙파중에 계류된 부유체에 작용하는 장주기 표류력을 2차 전달함수를 사용하여 계산한 뒤 장주기 표류력에 의한 전후동요를 시간기억 효과를 고려하여 시뮬레이션하였다. 계류계로는 분산된(spread) Turret형 계류계를 대상으로 하였으며 계류계의 수평인장계수를 매시간 단계마다 계산하는 방법으로 비선형성을 고려하였다.

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해상관측시설을 위한 파랑하중과 계류계 해석 -모래중에 뭍힌 원형파일의 수평력 추정방법을 중심으로- (Analysis of Wave Load and Mooring System for Ocean Monitoring Facilities - About an estimation method for horizontal force of circular pile in sand -)

  • 윤길수;김용직;김동준;강신영
    • 한국해양환경ㆍ에너지학회지
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    • 제1권1호
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    • pp.102-111
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    • 1998
  • 해양관측시설은 고정식과 부유식으로 나뉘는데 본 고에서는 부유식 해상관측시설과 관련된 파랑하중 및 계류계에 대해 다루었다. 부유식 해상관측시설의 일 예에 대해 운동계산과 표류력 계산을 수행하고 고찰하였다. 또한 계류앵커의 일종인 원형 파일앵커가 수평력을 받는 경우의 모형실험과 파주력 계산을 위한 프로그램을 작성하여 그 계산결과와 비교 고찰하였다. SCUBA 활동으로 설치가능한 파일앵커의 파주력 추정에 기여할 것으로 기대된다.

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주상체(柱狀體)의 운동(運動) 및 표류력(漂流力)에 미치는 해류(海流)의 영향(影響) (Current Effect on the Motion and Drift Force of Cylinders Floating in Waves)

  • 이세창
    • 대한조선학회지
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    • 제23권4호
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    • pp.25-34
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    • 1986
  • A two-dimensional linear method has been developed for the motion and the second-order steady force arising from the hydrodynamic coupling between waves and currents in the presence of a body of arbitrary shape. Interaction between the incident wave and current in the absence of the body lies in the realm beyond our interest. A Fredholm integral equation of the second kind is employed in association with the Haskind's potential for a steadily moving source of pulsating strength located in or below the free surface. The numerical calculations at the preliminary stage showed a significant fluctuation of the hydrodynamic forces on the surface-piercing body. The problem is approximately solved by using the asymptotic Green function for $U^2{\rightarrow}0$. The original Green function, however, is applied for the fully submerged body. Numerical calculations are made for a submerged and for a half-immersed circular cylinder and extensively for the mid-ship section of a Lewis-form. Some of the results are compared with other analytical results without any available experimental data. The current has strong influence on roll motion near resonance. When the current opposes the waves, the roll response are generally negligible in the low frequency region. The current has strong influence on roll motion near resonance. When the current opposes the wave, the roll response decreases. When the current and wave come from the same direction, the roll response increases significantly, as the current speed increases. The mean drift forces and moment on the submerged body are more affected by current than those on the semi-immersed circular cylinder or on the ship-like section in the encounter frequency domain.

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정수중 및 파랑중 저수심에서의 초대형 컨테이너선에 작용하는 유체력 특성에 관한 연구 (Study on Hydrodynamic Forces Acting on a Very Large Container Vessel at Lower Depths in Both Still Water and Waves)

  • 이상민
    • 해양환경안전학회지
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    • 제23권6호
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    • pp.613-619
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    • 2017
  • 최근의 초대형 컨테이너선들은 점차 거대화되고 있으며, 흘수의 증가로 인한 연안해역 및 항만 등과 같은 저수심 수역에서의 안전항해에 많은 주의가 필요하다. 이러한 저수심 해역을 항행하는 초대형 컨테이너선은 정수중 뿐만 아니라 파랑중에서의 선박 운동 특성을 파악하여야 할 필요가 있다. 저수심 해역에서는 특히 선박의 상하운동에 의한 스쿼트 현상이 안전 항해의 중요한 평가 요소가 될 수 있으며, 수평방향으로 작용하는 파표류력은 선박의 조종성능에 미치는 영향이 매우 크다고 할 수 있다. 본 연구에서는 저수심 해역을 항행하는 초대형 컨테이너선을 대상으로 선박에 수직방향으로 작용하는 파랑강제력과 수평방향으로 작용하는 파표류력에 대하여 전산유체역학에 의한 수치시뮬레이션을 실시하였다. 그 결과 천수역에서 정수중 전저항 값이 큰 폭으로 증가하고 있는 것을 알 수 있었다. 파랑중 단파장 영역보다는 장파장 영역이 될수록 수심과 관계없이 파표류력은 작아지고 있는 모습을 보여주고 있다. 또한 파랑강제력은 천수역에서 다른 수심의 유체력 값에 비해 상당히 크게 작용하고 있는 것을 확인할 수 있었다. 그리고 선체중앙 부분의 파고는 낮아지고 선미쪽 파고는 더욱 높아지는 현상을 파악할 수 있었다.

직교 격자계 기반 유동해석기법을 이용한 파랑 중 해양구조물의 운동 해석 (Numerical Study on Wave-induced Motion of Offshore Structures Using Cartesian-grid based Flow Simulation Method)

  • 남보우;김용환;양경규;홍사영;성홍근
    • 한국해양공학회지
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    • 제26권6호
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    • pp.7-13
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    • 2012
  • This paper presents a numerical study of the wave loads acting on offshore structures using a Cartesian-grid-based flow simulation method. Finite volume discretization with a volume-of-fluid (VOF) method is adopted to solve two-phase Navier-Stokes equations. Among the many variations of the VOF method, the CICSAM scheme is applied. The body boundary conditions are satisfied using a porosity function, and wave generation is carried out by using transient (wave or damping) zone approaches. In order to validate the present numerical method, three different basic offshore structures, including a sphere, Pinkster barge, and Wigley model, are numerically investigated. First, diffraction and radiation problems are solved using the present numerical method. The wave exciting and drift forces from the diffraction problems are compared with potential-based solutions. The added mass and wave damping forces from the radiation problems are also compared with the potential results. Next, the wave-induced motion responses of the structures are calculated and compared with the existing experimental data. The comparison results are fairly good, showing the validity of the present numerical method.