夹层结构泡沫芯的承载特性与节点几何

J. Ringsberg
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引用次数: 0

摘要

复合材料夹层船有层压接头,这对船的重量有很大的贡献。它们的建造需要大量的工时。通过不同的接头设计,在减轻重量和缩短生产时间方面有很大的潜力。根据等级规则,不允许从核心的承载能力中获益,即不考虑核心的强度特性,也不考虑节点位置的几何形状。目前调查的目的是调查在考虑泡沫芯的承载能力的情况下建造接头的可能性,从而减少重量和生产时间。研究人员选择了一艘23米复合夹层双体船的一个特殊接头——侧壁湿式甲板t型接头。该关节被认为对当前血管的结构完整性至关重要。在ANSYS中对该双体船的整体有限元模型进行了设计和分析。根据DNV GL的HSLC规则,将荷载和边界条件应用到全局模型中。利用两个局部有限元模型(2D和3D)对结构响应进行参数化分析(应力集中和符合破坏和断裂准则)。最后,研究结果和结论表明,在不影响安全性的情况下,将泡沫芯材作为承载构件纳入节点设计的可能性和优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Load-Carrying Characteristics of Foam Core and Joint Geometry in Sandwich Structures
Composite sandwich ships have laminated joints that contribute to a significant part of the ship’s weight. Their construction requires an extensive number of man-hours. There is great potential for weight and production-time-reduction through alternative joint designs. According to class rules, one is not allowed to benefit from the load-carrying capability of the core, i.e. the strength characteristics of the core shall be disregarded and geometry at the joint location is disregarded as well. The objective of the current investigation was to investigate the possibility of constructing a joint where the load-carrying capability of the foam core is accounted for, leading to a reduction in weight and production time. One specific joint in a 23 m composite sandwich catamaran was selected for study — a side wall-wet deck T-joint. This joint is considered to be crucial for the structural integrity of the current vessel. A global finite element (FE) model of the catamaran was designed and analysed in ANSYS. The loads and boundary conditions were applied to the global model according to DNV GL’s HSLC rules. Two local FE models of the joints (2D and 3D) were utilized for a parametric analysis with respect to structure response (stress concentrations and compliance with failure and fracture criteria). Finally, the results and conclusions from the study show the possibilities and advantages of incorporating the foam core material as a load-carrying member in joint design without compromising safety.
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