共查询到17条相似文献,搜索用时 125 毫秒
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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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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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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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A conceptual design framework for collision and grounding analysis is proposed to evaluate the crashworthiness of double-hull structures. This work attempts to simplify the input parameters needed for the analysis, which can be considered as a step towards a design-oriented procedure against collision and grounding. Four typical collision and grounding scenarios are considered: (1) side structure struck by a bulbous bow, (2) side structure struck by a straight bow, (3) bottom raking, (4) bottom stranding. The analyses of these scenarios are based on statistical data of striking ship dimensions, velocities, collision angles and locations, as well as seabed shapes and sizes, grounding depth and location. The evaluation of the damage extent considers the 50- and 90-percentile values from the statistics of collision and grounding accidents. The external dynamics and internal mechanics are combined to analyse systematically the ship structural damage and energy absorption under accidental loadings. 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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船舶碰撞过程中,被撞船的刚体运动较之碰撞区的局部损伤变形而言,存在一定程度的滞后效应。本文从理论分析和数值仿真两个方面对该滞后现象进行了研究。研究结果表明:被撞船的运动滞后与撞击速度有重要关系;在高速撞击时,船舶碰撞的内、外部机理计算可相对独立地进行,而不会引起明显的分析误差。 相似文献
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船-桥碰撞力学问题研究现状及非线性有限元仿真 总被引:4,自引:0,他引:4
归纳研究了船舶与桥梁碰撞力学的几种典型计算方法,并对各自的特点进行了分析。文中借助DYTRAN非线性有限元程序,以一艘4万吨级的油船与长江上某一斜拉索桥发生正向碰撞为例,演示了有限元法仿真计算船-桥碰撞问题的一般过程。反映了船-桥碰撞过程中船艏、桥梁承合、桥面和拉索的力与变形的时间历程,得到了具有指导意义的结论。 相似文献
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As an increasing number of ships continue to sail in heavy traffic lanes, the possibility of collision between ships has become progressively higher. Therefore, it is of great importance to rapidly and accurately analyse the response and consequences of a ship's side structure subjected to large impact loads, such as collisions from supply vessels or merchant vessels. As the raked bow is a common design that has a high possibility of impacting a ship side structure, this study proposes an analytical method based on plastic mechanism equations for the rapid prediction of the response of a ship's side structure subjected to raked bow collisions. The new method includes deformation mechanisms of the side shell plating and the stiffeners attached. The deformation mechanisms of deck plating, longitudinal girders and transverse frames are also analysed. The resistance and energy dissipation of the side structure are obtained from individual components and then integrated to assess the complete crashworthiness of the side structure of the struck ship. The analytical prediction method is verified by numerical simulation. Three typical collision scenarios are defined in the numerical simulation using the code LS_DYNA, and the results obtained by the proposed analytical method and those of the numerical simulation are compared. The results correspond well, suggesting that the proposed analytical method can improve ship crashworthiness during the design phase. 相似文献