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Refined beam finite elements for static and dynamic analysis of hull structures

机译:用于船体结构静态和动态分析的精制梁有限元

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The accuracy and reliability of structural analyses are significantly compromised owing to the utilization of simple beam elements to model the global mechanical behaviour of ship hulls. These 1D models entail various assumptions and do not provide accurate and reliable results for hulls with complex structural details, such as cut-outs or reinforcements. The 3D FEM solutions, on the other hand, are computationally expensive. In the present study, refined 1D FE models for the analysis of simplified naval engineering structures have been developed by using the well-known Carrera Unified Formulation (CUF). According to CUF, refined kinematics beam models that go beyond classical theories (Euler, Timoshenko) can be easily developed by expressing the displacement field as an expansion in terms of generic functions, whose form and order are arbitrary. Hence, the stiffness and mass matrices are written in terms of fundamental nuclei, which are independent of the adopted class of beam theory and the FE approximation along the beam axis. As a particular class of CUF models, Lagrange polynomials have been used to formulate beam models at the component scale. According to this approach, each structural component (e.g. hull, longerons, bulkheads, and floors) can be modelled by means of the same 1D formulation. The results clearly demonstrate the enhanced capabilities of the proposed formulation, which is able to replicate solid/shell ANSYS solutions with very low computational efforts. (C) 2016 Elsevier Ltd. All rights reserved.
机译:由于使用简单的梁单元来模拟船体的整体力学行为,因此结构分析的准确性和可靠性受到了极大的损害。这些一维模型需要各种假设,并且不能为具有复杂结构细节(例如切边或钢筋)的船体提供准确可靠的结果。另一方面,3D FEM解决方案的计算量很大。在本研究中,已通过使用著名的Carrera统一公式(CUF)开发了用于分析简化海军工程结构的精确一维有限元模型。根据CUF的说法,可以通过将位移场表示为泛函形式的扩展来轻松开发超出经典理论(Euler,Timoshenko)的精巧运动学射束模型,泛函的形式和顺序是任意的。因此,刚度和质量矩阵是根据基本核来写的,基本核与所采用的束理论和沿束轴的FE近似无关。作为一类特殊的CUF模型,拉格朗日多项式已被用来在组件规模上制定梁模型。根据这种方法,可以通过相同的一维公式对每个结构部件(例如船体,纵梁,舱壁和地板)进行建模。结果清楚地表明了所提出配方的增强功能,该配方能够以非常低的计算量复制固体/壳ANSYS解决方案。 (C)2016 Elsevier Ltd.保留所有权利。

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