共查询到19条相似文献,搜索用时 500 毫秒
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《江苏科技大学学报(社会科学版)》2010,(5)
为了研究撞击船艏形状及刚度对碰撞历程损伤变形产生的影响,利用数值仿真软件MSC/Dytran,对不同形式及刚度的球艏型船艏撞击下被撞船舷侧结构的碰撞性能进行了定量的分析研究.结果表明:船艏形式及刚度对船舶碰撞安全性会产生影响,撞击船艏部与被撞船舷侧的接触面积越大,舷侧结构吸能越多,其碰撞安全性也就越好.考虑实际船艏结构刚度的影响可以提高极限撞深,从而增加舷侧各构件的吸能效果,对舷侧结构的碰撞安全性有利. 相似文献
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为研究船舶舷侧结构的碰撞损伤过程,采用非线性动态响应分析方法,使用ANASYS/LS-DYNA显式动力分析软件,对船艏和船舷垂直碰撞过程进行数值仿真,获得了碰撞力、能量吸收和结构损伤变形的时序结果。为了分析船舶舷侧结构耐撞性能,本文对比了常见油船、新型Y型和X型舷侧结构的仿真过程,结果表明新型舷侧结构在整体的耐撞性能上优于传统的舷侧结构,承载构件的不同也会对结构的耐撞性产生很大的差异。 相似文献
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船舶碰撞事故往往会引起被撞船的船体结构严重损坏,并且威胁船上人员的生命安全.在船一船碰撞中被撞船的损伤程度取决于两个方面:一是舷侧结构的碰撞性能;二是撞击船艏结构的相对刚度.船舶的艏部结构刚度一般远远高于舷侧结构的刚度,在船舶碰撞研究时,通常将撞头理想化为刚体,不考虑其损伤变形和能量吸收,这样做实际上过于保守.本文针对舰船,主要研究舰艏结构的碰撞损伤特性,将撞击舰艏作为可变形结构进行数值仿真研究,得到了一些艏部变形的规律. 相似文献
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船舶碰撞是一种复杂非线性瞬态响应过程,在碰撞区内的构件一般迅速进入塑性流动状态,出现撕裂、屈曲等形式的破坏和失效,因此对小型快艇结构碰撞特性进行分析非常必要。分析了艇艏撞击作用下快艇舷侧加筋结构的渐进破坏过程,给出了撞深曲线。为表征小型快艇船体结构的耐撞性能,建立了基于综合考虑塑性应变衡准和撞深衡准的小型艇结构耐撞性评价模型。最后,运用有限元法进行数值分析,开展快艇改进舷侧的结构耐撞性优化研究。数值分析表明,对于中小型快艇,碰撞损伤主要是艇体的总体弯曲变形,损伤变形区域占全船的比例较大,采用塑性应变衡准和撞深衡准能有效地刻画中小型快艇结构耐撞性。 相似文献
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撞击参数对双层舷侧结构碰撞响应的影响 总被引:8,自引:1,他引:7
深入了解船体结构碰撞损伤特性和能量吸收机制是开展船舶耐撞性优化设计的前提。文章利用显式非线性有限元数值仿真技术对不同撞击条件下的双层舷侧结构碰撞响应进行了系列研究。研究结果表明:撞击位置、撞击角度和撞击速度的改变可能导致不同的碰撞损伤过程或结构损伤变形。 相似文献
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船舶碰撞缓冲型球鼻艏概念探讨--球鼻曲率对碰撞的影响 总被引:1,自引:0,他引:1
船舶碰撞事故中,被撞油船船侧的破裂会引起严重的海洋污染,故油船双层船壳设计成为防止被撞油船破损的有效措施。但随着海上运输船舶的数目及尺度的日益增大,双层船壳已不能满足防止船侧破损的要求。本文提出了缓冲型球算般的构思。在船舶相撞的过程中,球鼻艏曲率的尖锐程度影响被撞船船侧的损伤程度,故提出并讨论了表征球鼻艏碰撞特性的标志性参数。通过对不同曲率的球鼻艏一系列的碴撞数值仿真计算,详细描述了外形曲率对球鼻艏的变形形态、碰撞力、碰撞力密度及能量吸收的影响,指出船舶采用钝形的球鼻艏能有效减小碰撞时的穿透损伤。 相似文献
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油轮艏部结构碰撞特性研究 总被引:1,自引:0,他引:1
在船舶碰撞中,船艏是主要作用方.船艏结构的碰撞特性是影响船-船碰撞过程中被撞船舷侧结构损伤程度的决定因素.为减少碰撞事故损失,应从碰撞的观点对船艏结构的特性进行研究,提出一种研究船艏的碰撞特性的方法及表征船艏碰撞特性的特征量,据以改进船艏设计.根据船艏结构本身的碰撞破损过程,对船艏结构碰撞力与破损深度的关系、艏部构件在碰撞过程中的损伤形态和能量耗散进行了研究,指出碰撞力曲线是船艏结构的一种固有特性.提出了碰撞力面积密度曲线的概念,它可以用于定量表达船艏结构对其它结构的破坏能力.利用有限元数值模拟方法计算了一艘4万吨船艏的碰撞损坏实例,显示了上述碰撞特征并讨论了提高碰撞数值模拟计算精度的方法. 相似文献
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During ship collisions part of the kinetic energy of the involved vessels immediately prior to contact is absorbed as energy dissipated by crushing of the hull structures, by friction and by elastic energy. The purpose of this report is to present an estimate of the elastic energy that can be stored in elastic hull vibrations during a ship collision.When a ship side is strengthened in order to improve the crashworthiness it has been argued in the scientific literature that a non-trivial part of the energy released for structural deformation during the collision can be absorbed as elastic energy in global ship hull vibrations, such that with strong ship sides less energy has to be spent in crushing of the striking ship bow and/or the struck ship side.In normal ship–ship collision analyses both the striking and struck ship are usually considered as rigid bodies where structural crushing is confined to the impact location and where local and global bending vibration modes are neglected. That is, the structural deformation problem is considered quasi-static. In this paper a simple uniform free–free beam model is presented for estimating the energy transported into the global bending vibrations of the struck ship hull during ship–ship collisions. The striking ship is still considered as a rigid body. The local interaction between the two ships is modeled by a linear load–deflection relation.The analysis results for a simplified model of a struck coaster and of a large tanker show that the elastic energy absorbed by the struck ship normally is small and varies from 1 to 6% of the energy released for crushing. The energy stored as elastic global hull girder vibrations depends on the ship mass, the local stiffness of the side structure, and of the position of contact. The results also show that in case of highly strengthened ship sides the maximum global bending strains during collisions can lead to hull failure. 相似文献
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Dynamics of ships running aground 总被引:3,自引:0,他引:3
Preben Terndrup Pedersen Bo Cerup Simonsen 《Journal of Marine Science and Technology》1995,1(1):37-45
A comprehensive dynamic model is presented for analysis of the transient loads and responses of the hull girder of ships running aground on relatively plane sand, gravel, or rock sea bottoms. Depending on the seabed soil characteristics and the geometry of the ship bow, the bow will plow into the seabed to some extent. The soil forces are determined by a mathematical model based on a theory for frictional soils in rupture and dynamic equilibrium of the fluid phase in the saturated soil. The hydrodynamic pressure forces acting on the decelerated ship hull are determined by taking into account the effect of shallow water. Hydrodynamic memory effects on the transient hull motions are modeled by application of an impulse response technique. The ship hull is modeled as an elastic beam to determine the structural response in the form of flexural and longitudinal stress waves caused by the transient ground reaction and hydrodynamic forces. A number of numerical analysis results are presented for a VLCC running aground. The results include bow trajectory in the seabed, time variation of the grounding force, and the maximum values of the sectional shear forces and bending moments in the hull girder. 相似文献
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基于我国第七次北极科学考察获得的夏季北极海冰空间分布情况,模拟真实碎冰分布,采用LS-DYNA软件中的流固耦合方法,研究在船舶航速、碎冰尺度、碎冰厚度及碎冰密集度等因素影响下船舶-碎冰碰撞的船体结构响应。结合试验数据得到船体结构的应力、吸能和碰撞力。结果表明:船舶-碎冰的主要碰撞区域为艏部及舷侧的水线附近;在船舶航行于碎冰域时,船体结构的应力、吸能和碰撞力的峰值随碎冰域的船舶航速、碎冰尺度、碎冰厚度及碎冰密集度的增加而增加,但分布情况不同。研究结果为船舶在极地冰区航行提供一定的安全性参考。 相似文献
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Seiichiro Yagi Hideki Kumamoto Osamu Muragishi Yukichi Takaoka Taichiro Shimoda 《Marine Structures》2009,22(1):12-23
SEA-Arrow (sharp entrance angle bow like an arrow) has no protrusion of the bulbous bow to reduce bow waves and has a transverse stiffening system in the narrow bow space to apply the buffer bow concept. This system has lower longitudinal stiffness than a conventional longitudinal stiffening system and therefore has buffer characteristic in ship-to-ship collision. A comparative collision study of SEA-Arrow and the conventional bulbous bow was conducted using elasto-plastic finite element analysis. A collision scenario where the striking ship hits the side shell of tanker midship perpendicularly was selected. The results showed that the buffer bow characteristic of SEA-Arrow is superior to that of the conventional bulbous bow, since much more energy is dissipated by the plastic deformation of striking and struck ships until the inner shell of struck ship ruptures. 相似文献
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