共查询到19条相似文献,搜索用时 234 毫秒
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合理预报船首局部结构砰击载荷是船舶设计和研究者重点关心的问题。文章针对无转角和有转角楔形体舱段入水砰击问题,采用OpenFOAM开源软件,开发了基于两相流求解器InterDyMFOAM数值模拟结构入水砰击的程序包,开展了预报研究工作。数值模拟了入水过程的压力和加速度时域响应历程,与入水砰击模型实验进行了对比分析,吻合很好。同时讨论了网格划分等对结果的影响和砰击的三维效应。结果表明,本文提出的入水砰击载荷预报方法计算效率高,具有推广应用到预报复杂三维船首结构砰击问题的潜力。 相似文献
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本文基于船波相对运动理论,对舷侧砰击压力和甲板上浪载荷的数值及试验预报方法分别进行了研究.利用三维势流理论计算船舶与波浪之间的相对运动,可以得到船波相对速度及甲板上浪高度.对于砰击压力通过数值模拟方法得到砰击压力系数后结合船波相对速度来预报;对于上浪载荷则采用考虑船舶航速的溃坝模型结合甲板上浪高度来预报.此外,开展了船舶运动和砰击压力模型试验,船波相对运动由沿着模型横剖面布置在舷侧的浪高仪测量,并且测得了相应位置处的砰击压力.最后分别对船波相对运动和砰击压力的数值结果与试验数据进行了比较分析,同时基于船波相对运动给出了一种砰击持续时间计算方法. 相似文献
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文章针对船舶结构设计时重点关注的艏部砰击载荷问题,综合考虑计算效率及精度,提出了基于势流理论和计算流体力学方法的混合两步法。第一步,采用三维势流理论预报波浪中有航速船舶的运动响应,分析船波相对运动;第二步,根据预报砰击载荷所在位置的船体横剖面,建立等截面的三维立体模型,采用基于有限体积法与动网格技术的计算流体力学方法,基于第一步得到的相对运动结果模拟落体入水过程,计算砰击压力。使用该两步法预报了某超大型油轮在压载工况顶浪航行时候的艏部砰击压力,并讨论了相对运动和砰击压力的时域历程规律。文中数值预报结果得到了水池模型实验的验证,表明该方法的可行性和预报结果的合理性。 相似文献
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[目的]旨在探究三体船连接桥落体砰击载荷分布规律。[方法]基于OpenFOAM开源软件以及连续性方程和N-S方程,建立三体船连接桥自由落体入水砰击数值模型,模拟三体船连接桥自由落体入水砰击过程中的速度、砰击压力以及自由液面动态变化,开展网格收敛性分析,验证数值计算方法的正确性,并将数值解与实验值进行对比。[结果]结果显示,所提模型能够有效预报三体船连接桥结构的落体砰击载荷,靠近外折角点的连接桥砰击压力系数最大,得到了连接桥下表面砰击压力峰值及砰击压力系数与速度的关系。[结论]研究给出的三体船连接桥入水砰击压力特性和范围可为三体船结构强度评估与结构设计提供数值基础。 相似文献
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基于气垫效应的二维楔形体入水砰击载荷预报方法研究 总被引:1,自引:1,他引:0
《舰船科学技术》2016,(3):7-12
本文对二维刚性楔形体入水砰击问题进行研究,将数值模拟与模型试验结果进行对比分析,验证利用数值模拟方法研究入水砰击问题的可行性。获得气垫效应、斜倾角、入水速度对楔形体入水砰击压力峰值的影响规律,并分析了气垫效应对压力峰值的影响机理。最后对砰击载荷预报方法进行研究,获得不同斜倾角、不同速度下楔形体入水砰击压力峰值的预报公式。 相似文献
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The paper presents an overview of studies of slamming on ship structures. This work focuses on the hull slamming, which is one of the most important types of slamming problems to be considered in the ship design process and the assessment of the ship safety. There are three main research aspects related to the hull slamming phenomenon, a) where and how often a slamming event occurs, b) slamming load prediction and c) structural response due to slamming loads. The approaches used in each aspect are reviewed and commented, together with the presentation of some typical results. The methodology, which combines the seakeeping analysis and slamming load prediction, is discussed for the global analysis of the hull slamming of a ship in waves. Some physical phenomena during the slamming event are discussed also. Recommendations for the future research and developments are made. 相似文献
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A hydroelastic analysis of a rectangular plate subjected to slamming loads is presented. An analytical model based on Wagner theory is used for calculations of transient slamming load on the ship plate. A thin isotropic plate theory is considered for determining the vibration of a rectangular plate excited by an external slamming force. The forced vibration of the plate is calculated by the modal expansion method. Analytical results of the transient response of a rectangular plate induced by slamming loads are compared with numerical calculations from finite element method. The theoretical slamming pressure based on Wagner model is applied on the finite element model of a plate. Good agreement is obtained between the analytical and numerical results for the structural deflection of a rectangular plate due to slamming pressure. The effects of plate dimension and wave profile on the structural vibration are discussed as well. The results show that a low impact velocity and a small wetted radial length of wave yield negligible effects of hydroelasticity. 相似文献
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规则波和不规则波中船舶艉砰击及其振动响应的试验研究 总被引:2,自引:0,他引:2
在拖曳水池中对某船舶进行了艉砰击及其振动响应的试验研究.在规则波以及不规则波中的零航速、艉随浪情况下观察到了严重的艉砰击现象.试验数据分析表明,合成弯矩可以分成由波浪载荷引起的低频成分以及由砰击载荷引起的高频成分.由于严重艉砰击载荷的作用,发现在某次规则波试验中合成弯矩比波浪弯矩要大出44%,在3.24m不规则波中合成弯矩增加了43%.不规则波中的试验数据统计表明合成弯矩分布范围服从Weibull分布.推导了服从Weibull分布随机变量的短期概率极值预报公式,针对试验数据进行了预报.还讨论了试验数据分析中的不确定性问题.试验研究表明,对于艉部平坦肥大的船舶,在设计和使用中需要引起对艉砰击及其振动响应问题的重视. 相似文献
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影响高速三体船连接桥砰击压力峰值因素研究 总被引:2,自引:0,他引:2
利用LS-DYNA仿真软件建立高速三体船连接桥结构二维有限元模型,计算其入水砰击问题。计算中考虑高速三体船的空气层、结构质量、连接桥宽度和主船体的舭升高角度因素对连接桥砰击压力峰值影响。通过分析,得出各个因素对高速三体船连接桥砰击压力峰值的影响规律。 相似文献
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提出一种实用的计算和分析方法来考虑砰击载荷对双体船湿甲板处结构疲劳强度的影响,保证疲劳寿命预报的精度。首先,根据线性理论计算船体与波浪之间的相对运动和相对速度,并计算船体结构在波浪载荷作用下的应力响应;然后,计算湿甲板在砰击载荷作用下的非线性响应,再将线性响应与非线性响应通过方向性进行叠加,得到波浪载荷与砰击载荷联合作用的应力响应时历;最后,通过雨流计数法计算双体船在危险工况下的湿甲板疲劳损伤。研究结果可为考虑砰击载荷的双体船湿甲板疲劳强度评估提供一些参考。 相似文献
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This is Part II in a series of papers. Part I [1] investigated the slamming responses of flexible flat stiffened steel and aluminum plates using the nonlinear explicit finite element code LS-Dyna with the Multi-Material Arbitrary Lagrangian-Eulerian (MMALE) solver. Subsequently, a simplified finite element FSI model of water hitting structures that is realistically close to the slamming phenomenon occurring on the bottom part of offshore structures was proposed. The proposed FSI methodology presented in Part I was verified by comparison with the relevant test data. It was evident that the use of the proposed numerical method presented in Part I was very effective for a benchmarking investigation of slamming load considering the hydroelastic effect. However, the method required much effort in terms of computation time and power analysis resources. The present study, Part II, aimed, as an alternative to the FSI analysis approach, to develop empirical formulae for prediction of slamming loads acting on deformable flat stiffened plates used in marine applications. This paper begins by describing the limitations of the existing approaches based on theoretical, experimental and even numerical studies conducted in the past for estimation of slamming loads. Next, it presents, based on the simulation methodology developed in Part I, rigorous parametric studies that had been performed on actual scantlings of marine-seagoing structures. The effects of structural geometry and water impact velocity on slamming pressure are then investigated in detail. Subsequently, the parametric results are analyzed and utilized to derive empirical formulations for the prediction of slamming loads acting on flat stiffened plates of marine structures. The accuracy and reliability of the proposed formulations are established by comparison with the results of the test and other existing formulations. The proposed formulations are expected to be used for the purposes of the design without any time-consuming FSI analysis of advanced and optimal structures that are robust to slamming. 相似文献