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1.
该文利用梁柱理论推导出复合材料梁柱的极限承载能力公式,讨论了加筋板的初始几何缺陷,载荷偏心,蒙皮屈曲后的有效蒙皮宽度对复合材料长帽形加筋板的极限承载能力的影响。利用复合材料梁柱理论计算船体甲板或船底板结构视加筋板单元构件的极限承载能力,最后由Smith法来计算复合材料船体的极限承载能力。  相似文献   

2.
本文应用结构可靠性分析方法,分别以船体梁和船体纵向加筋板极限承载能力为失效模式,对船体结构进行了安全评估和可靠性设计。应用所开发的新的改进可靠性计算方法,计算了基本物理量的不确定性对船体结构极限强度函数统计特征的影响,同时结合所开发的用于直接估算船体梁和加筋板极限强度的荛用计算方法,确定出不同船体结构的失效概率和设计目标安全指数,推导了局部安全因子,可以进行船体结构的可靠性设计与再评估。  相似文献   

3.
船体梁的总纵强度是反映船舶结构安全可靠的最基本的强度指标。船体结构极限强度评估对于船舶结构初步设计、使用、维护和维修都非常重要,因此船体梁极限强度研究成为近几十年来船舶工程界的热点研究课题之一。到目前为止有两种典型的加筋板和船体梁的极限强度分析方法,它们是直接计算法和逐步破坏分析法。本文基于加筋板单元的平均应力应变曲线和逐步破坏分拆方法,提出了加筋板和船体梁极限强度的简化分析方法,考虑了初始挠度和残余应力对加筋板单元极限强度的影响。数值结果表明,采用本文简化方法得到的结果与有限元计算结果或其它逐步破坏分析结果比较符合。  相似文献   

4.
内河船舶极限强度计算的逐步破坏法程序设计   总被引:1,自引:0,他引:1  
在船舶设计与强度评估中,为更加真实地了解船体结构的安全极限,要求计算船体梁的极限强度。逐步破坏法由于其计算效率高,结果比较可靠,被广泛运用于大型海船设计,但在内河船舶设计规范中,至今尚无有关极限强度的条款。通过非线性有限元程序计算得到加筋板单元平均应力应变关系,并与Rahman法、CSR法以及ISUM方法计算得到的应力应变关系曲线进行对比,以验证其可靠性。然后,按照一定的规律建立符合内河船舶构造的加筋板单元应力应变关系数据库,并编写逐步破坏法计算程序,在计算过程中,其能根据加筋板单元尺寸自动选取对应的关系曲线;对参数超出数据库的情况,则通过插值实现。  相似文献   

5.
针对老龄化船舶结构上的点状腐蚀,利用非线性有限元方法进行计算,分析304个船体加筋板的极限强度,探讨带板柔度、加强筋柔度、腐蚀面积比和腐蚀深度比对纵向压力下含点蚀损伤船体加筋板极限强度的影响,拟合出点状腐蚀下船体加筋板极限强度折减公式并对其适用性进行验证,研究结果具有一定的工程参考意义和价值。  相似文献   

6.
船体是一个由加筋板格组成的箱形结构,加筋板格的强度计算对于船体结构的强度分析极为重要。最近几年计多作者提出了采用简化方法来计算加筋板格的极限强度。但是,绝大部分采用这种方法进行研究的文章均只讨论了纵向受压一种情况。对于实际的船体加筋板格来说,最一般的载荷工况是纵向应力、横向应力、剪应力和垂向压力的组合载荷,但纵向应力占主导地位,本文将简化方法推广到解决组合载荷的情况。通过本文的计算表明,本简化方法  相似文献   

7.
船体结构极限强度研究进展   总被引:1,自引:0,他引:1  
谭开忍  李小平 《船舶》2006,(5):19-25
综述了船体结构极限强度的研究现状,分析了加筋板、船体板架和船体梁极限强度的计算方法以及船体结构极限强度的试验研究。  相似文献   

8.
为了评估舰船结构损伤后的剩余强度,对船体加筋板出现初始几何变形后,参与总纵强度的有效宽度和加筋板剩余极限强度进行研究。将加筋板受到垂直于平面压力后的变形,作为其初始几何变形,改变变形的方向和大小,利用有限元软件Ansys对加筋板结构进行线性和非线性分析。定义了板有效宽度计算方法,对不同变形方向和变形幅值时板的有效宽度和加筋板的极限强度进行对比分析,并拟合得到了计算板有效宽度和加筋板极限强度的经验公式。结果表明,初始几何变形会削弱加筋板结构的强度。在对损伤后船体结构强度进行分析和校核时,提出的经验公式可以直接用来计算板的有效宽度和加筋板的极限强度。  相似文献   

9.
船体结构极限强度研究综述   总被引:3,自引:3,他引:0  
综述船舶极限强度研究现状,包括平板及加筋板及船体梁极限强度的计算分析方法,以及平板和加筋板、船体梁和实船极限强度试验研究。  相似文献   

10.
船体结构极限强度的影响参数与敏感度探讨   总被引:8,自引:2,他引:6  
白勇  徐向东 《船舶力学》1998,2(5):35-43
本文采用非线性有限元方法计算了船体结构在两种失效模式下的极限强度:一是加筋板格的非一性失稳极限强度;二是船体在中拱及中垂弯曲下的总纵屈服极限强度。较全面 探讨了计算中各种因素对第一种极限强度的影响,并对这两种极限强度中的主要影响参数,包括屈服应力、杨氏模量、初始缺陷、焊接残余应力、板厚等变化的敏感度作了计算,为船体结构的可靠性分析与设计提供了科学依据。  相似文献   

11.
The effects of stochastic characteristics of materials on the reliability of ship hulls made of composite materials under longitudinal moment were extensively studied using reliability and sensitivity calculations of a composite ship hull which was sagging.The reliability indices and failure probabilities of the ship in three kinds of failure modes (buckling,material failure,and ultimate collapse) were calculated by the surface response method and JC method.The importance factors of random variables in stochastic models,such as the model errors in predicting the ultimate longitudinal strength of ship and the longitudinal bending moment that the ship withstands,as well as the stochastic characteristics of materials in the models used,were calculated.Then,the effects of these random variables,including the stochastic characteristics of materials on the reliability index and the failure probability of ships which were sagging,were discussed with their importance factors.The results show that the effects of stochastic characteristics of materials on the reliability of ship hulls made of composite materials should be considered during the reliability assessment of composite ships.Finally,some conclusions and recommendations were given for high-speed ship design and safety assessment.  相似文献   

12.
破损船体非对称弯曲极限强度分析及可靠性评估   总被引:10,自引:0,他引:10  
在船体发生破损后,其剩余有效剖面是非对称的,船体还可能倾斜。本文首先对破损船体非对称弯曲进行了弹性和塑性分析,在此基础上假设了破损船体发生整体破坏时的剖面应力分布,给出了破损船体非对称弯曲极限强度分析方法,并采用了比较精细的方法计算加筋板格的屈曲极限强度。以箱型梁模型和超大型油船为例,将本文的计算结果与试验、ISUM法及解析公式的结果进行了比较。基于破损船体极限强度,结合重要性样本法,对65,00  相似文献   

13.
The present study aims at applying structural reliability methods to assess the implicit safety levels of the buckling strength requirements for longitudinal stiffened panels implemented in the IACS Common Structural Rules (CSR) for double hull oil tankers. The buckling strength requirements considered are used in the initial stage of the hull girder scantlings’ design to control the buckling capacity of longitudinal stiffened panels subjected to the compressive loads induced by the hull girder vertical bending. The following buckling collapse failure modes are explicitly considered in the design formulation: uniaxial buckling of the plating between stiffeners, column buckling of stiffeners with attached plating and lateral-torsional buckling or tripping of stiffeners.The paper presents the procedure used to assess the implicit safety levels of the strength requirements for the three buckling collapse failure modes above mentioned, which includes the optimization of the scantlings of the plate panels and longitudinal stiffeners in order to reflect the minimum strength required by the formulation. A first order reliability formulation is adopted, and stochastic models proposed in the literature are used to quantify the uncertainty in the relevant design variables. A sample of five oil tankers representative of the range of application of the IACS-CSR design rules is considered. The effect of corrosion in the implicit safety levels is quantified based on the three corrosion levels of the Net Thickness Approach (NTA) adopted in the design rules. Sensitivity analyses are also performed to quantify the relative contribution or importance of each design random variable to the implicit safety levels.  相似文献   

14.
在船舶纵弯曲强度的可靠性分析中,需要计算船体梁的抗弯能力,本文提供一种实用计算方法。在此方法中取材料厚度(或剖面积)和屈服限、弹性模量等均为随机变量,利用随机函数的线性化原理,求得船体断面几何要素以及抗弯能力的统计特征值。文中还介绍了国产船用钢材的厚度和屈服极限的变异系数,并利用组合梁模型试验资料对采用梁模型带来的计算误差及其修正办法作了讨论。该计算方法采用了造船人员熟悉的常规强度计算中的格式,便于在船舶设计中应用。  相似文献   

15.
A geometrically similar scaling was made from small-scale specimen to full-scale stiffened panels and then their collapse behaviour is investigated. It is considered that the stiffened panel compressive ultimate strength test was designed according to geometrical scaling laws so that the output of the test could be used as representative of the stiffened panels of the compressive zone of a tanker hull subjected to vertical bending moment. The ultimate strength of a tanker hull is analysed by a FE analysis using the experimentally developed master stress-strain curves which are obtained by the beam tension test and the compressive test of the stiffened panel, and are then compared with the result achieved by the progressive collapse method.  相似文献   

16.
This paper is the first of two companion papers concerning the ultimate hull girder strength of container ships subjected to combined hogging moment and bottom local loads. In the midship part of container ships, upward bottom local loads are usually larger than the downward ones. This leads to the increase of biaxial compression in the outer bottom plating and the reduction of the ultimate hull girder strength in the hogging condition. In this Part 1, the collapse behavior and ultimate strength of container ships under combined hogging moment and bottom local loads are analyzed using nonlinear finite element method. Buckling collapse behavior of bottom stiffened panels during the progressive collapse of a hull girder is closely investigated. It has been found that major factors of the reduction of ultimate hogging strength due to bottom local loads are (1) the increase of the longitudinal compression in the outer bottom and (2) the reduction of the effectiveness of the inner bottom, which is on the tension side of local bending of the double bottom. The obtained results will be utilized in the Part 2 paper to develop a simplified method of progressive collapse analysis of container ships under combined hogging moment and bottom local loads.  相似文献   

17.
A geometrically similar scaling was made from small-scale specimen to full-scale stiffened panels and then their collapse behaviour is investigated. It is considered that the stiffened panel compressive ultimate strength test was designed according to geometrical scaling laws so that the output of the test could be used as representative of the stiffened panels of the compressive zone of a tanker hull subjected to vertical bending moment. The ultimate strength of a tanker hull is analysed by a FE analysis using the experimentally developed master stress-strain curves which are obtained by the beam tension test and the compressive test of the stiffened panel, and are then compared with the result achieved by the progressive collapse method.  相似文献   

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