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Study on a procedure of structural safety assessment for an energy saving device subjected to hydrodynamic force : 유체력을 받는 에너지절감장치의 구조안전성 평가절차에 관한 연구

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dc.contributor.advisor장범선-
dc.contributor.author이동범-
dc.date.accessioned2017-07-14T02:39:14Z-
dc.date.available2017-07-14T02:39:14Z-
dc.date.issued2015-02-
dc.identifier.other000000026461-
dc.identifier.urihttps://hdl.handle.net/10371/122746-
dc.description학위논문 (석사)-- 서울대학교 대학원 : 조선해양공학과, 2015. 2. 장범선.-
dc.description.abstractDue to the soaring oil price and the demand of CO2 reduction related to environmental issues, the demand for the reduction of fuel oil consumption is greater than ever before. In this respect, various types of energy saving devices (ESD) have been developed. ESD is a kind of fin placed along streamline and installed around propeller or stern to improve the propulsive performance. The main direction of hydrodynamic force on the fin is nearly same as the streamline, and its magnitude may be negligible in calm sea. However, in harsh environment, the heave and pitch motion of a vessel becomes larger and the fin-shaped ESD would experience large out-of-plane load and there is a high risk of structural failure and fatigue damage. In a conventional design approach, Morisons equation may be adopted with constant coefficient for hydrodynamic force evaluation. Spectral approach has been also widely used based on the assumption of linear system. However, it is difficult for Morisons equation and spectral method to estimate hydrodynamic force exactly.
Therefore, this study proposes a new procedure of structural safety assessment for energy saving devices (ESD) subject to hydrodynamic force and applies the proposed procedure to the fin-type energy saving device.
The proposed safety assessment procedure consists of three main parts, seakeeping analysis, computational fluid dynamics (CFD) analysis and long-term analysis. As the sea-keeping analysis, potential based commercial code, WASIM, is used. Response amplitude operators (RAO) and response spectrums of vertical velocity at ESD are calculated. In CFD analysis, Hydrodynamic force are calculated for predefined regular waves using VOF (Volume of Fluid) and DFBI (Dynamic Fluid Body Interaction) techniques and a neural network is trained using the data. Irregular time histories of vertical velocities are generated from response spectrums obtained from sea-keeping analysis. In order to take into account the randomness of the irregularity, twenty different irregular time histories are generated. Then, each time history of vertical velocity is converted to time histories of hydrodynamic force. For each sea state, twenty maximum hydrodynamic force values for 3 hours duration are collected and Gumbel distribution is used to fit the data. This process is repeated for all sea states in wave scatter diagram and long-term value is calculated. An approximate long-term calculation is made using contribution coefficient based method. The method enables to carry out time domain analysis for a part of sea states that have dominant contributions to long-term exceedance probability. The contribution coefficients of all sea states can be calculated from frequency domain with less computational time. As a result, the total computation time for long-term analysis is reduced.
Additionally, a procedure of fatigue strength assessment is established. 3 hours time series of vertical velocity is generated from the response spectrum and the peak values of vertical velocity are transferred to lift force and moment using the trained neural network. The time series of lift force and moment are transferred to stress histogram using a stress response per unit force. Finally, fatigue damage is calculated using Miners rule.
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dc.description.tableofcontents1. Introduction 15
1.1. Research background and status 15
1.2. Research objective 18
2. Investigation of characteristic of hydrodynamic force using three different models 19
2.1. Model description 19
2.2. Relation between inlet flow velocity and lift and drag coefficient 26
2.3. Relation between vertical velocity and hydrodynamic force 28
2.4. Comparison between local and global model 31
3. Comparison of hydrodynamic analysis with CFD analysis 35
3.1. Hydrodynamic analysis of container ship 35
3.2. Determination of design wave 40
3.3. CFD computation with VOF and DFBI 41
3.4. Comparison of CFD calculation and WASIM results 43
4. Calculation of loads on ESD 49
4.1. Effect of different periods to hydrodynamic force 49
4.2. Estimation of hydrodynamic force using global model 53
4.2.1. Calculation of loads on ESD using CFD analysis 53
4.2.2. Prediction of the magnitude and period of vertical velocity at ESD 55
4.2.3. CFD analysis for sample data 56
4.2.4. Training of neural network for loads on ESD 59
4.2.5. Heading angle effect on hydrodynamic force 61
5. Long-term analysis on ESD 64
5.1. Classical long-term analysis 64
5.1.1. Calculation of peak velocities for each sea states using response spectrum and inverse FFT 64
5.1.2. Calculation of parameters of Gumbel distribution for all sea states 65
5.1.3. Summation of short-term probabilities of exceedance in combination with occurrence of sea states 67
5.2. Estimation of long-term extreme value using contribution coefficient 69
5.2.1. Selection of the most important sea state defined by the contribution coefficient 69
5.2.2. Iteration approach for nonlinear long-term value 72
6. Structural analysis 74
6.1. Description of structural model 74
6.2. Application of the hydrodynamic load to structural model 77
6.3. Resultant stress and acceptance criteria 78
7. Fatigue strength analysis 81
7.1. Fatigue strength assessment procedure 81
7.2. Stress response by unit force 82
8. Conclusion 83
Reference 86
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dc.formatapplication/pdf-
dc.format.extent3738558 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectESD(Energy Saveing Device)-
dc.subjectCFD(Computational Fluid Dynamics)-
dc.subjectNeural network-
dc.subjectLong-term analysis-
dc.subject.ddc623-
dc.titleStudy on a procedure of structural safety assessment for an energy saving device subjected to hydrodynamic force-
dc.title.alternative유체력을 받는 에너지절감장치의 구조안전성 평가절차에 관한 연구-
dc.typeThesis-
dc.description.degreeMaster-
dc.citation.pages91-
dc.contributor.affiliation공과대학 조선해양공학과-
dc.date.awarded2015-02-
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