首页> 外文会议>8th Biennial Conference on Engineering Systems Design and Analysis 2006 vol.3 >THE DESIGN OF ADVANCED COMPOSITE STRUCTURES USING EVOLUTIONARY DESIGN METHODS
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THE DESIGN OF ADVANCED COMPOSITE STRUCTURES USING EVOLUTIONARY DESIGN METHODS

机译:基于进化设计方法的高级复合结构设计

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The development of an evolutionary optimisation method and its application to the design of an advanced composite structure is discussed. Composite materials are increasingly being used in various fields, and so optimisation of such structures would be advantageous. From among the various methods available, one particular method, known as Evolutionary Structural Optimisation (ESO), is shown here. ESO is an empirical method, based on the concept of removing and adding material from a structure, in order to create an optimum shape. Much work has been done on ESO by various researchers. V. Young, G.P Steven, Y.M. Xie and O.M. Querin extended the basic ESO algorithm to the addition of elements and multiple load cases. S. Savas, M. Ulker, and M.P. Saka utilised ESO to create structures with a uniform stress distribution. Both ESO algorithms were applied to isotropic structures.rnThe basic principle of ESO is to remove material from the model, based on certain criteria, stress being typical. The method can also add material back, where it may become necessary to reinforce the structure, which may happen when excessive material is removed. The model undergoes an iterative process of analysis and modification, the cycle continuing until certain conditions are met, ranging from weight reduction to stress limits.rnThe objective of the current research is to create an ESO method, utilising MSC.Patran/Nastran, to optimise composite structures. The final algorithm created is simple, in order to improve efficiency and reduce total analysis runtimes. Thernalgorithm modifies the properties of the element, rather than removing it from the structure completely. This ensures that the connectivity of the elements remains intact. Elements are selected for removal or addition based on a driving criterion. The composite structures are modelled as a core and shell. The core consists of 3D elements with orthotropic properties, and the skin is represented by non-removable 2D shell elements. These shell elements bear the loads and boundary conditions. They also keep the external shape of the model, which is important for aerodynamic structures. The models were run through the ESO algorithm until the final optimised structure remained.rnA tailfin of an aircraft was used as an application example. The aim was to reduce weight and create an optimised design for manufacture. The criterion for the analyses undertaken was stress based. The results of this research are presented in the paper.
机译:讨论了进化优化方法的发展及其在高级复合结构设计中的应用。复合材料正越来越多地用于各个领域,因此优化这种结构将是有利的。在各种可用方法中,此处显示了一种称为进化结构优化(ESO)的特定方法。 ESO是一种经验方法,基于从结构中移除和添加材料以创建最佳形状的概念。各种研究人员已经在ESO方面做了大量工作。 V.Young,G.P Steven,Y.M.谢和OM Querin将基本的ESO算法扩展到元素的添加和多种工况。 S.Savas,M.Ulker和M.P. Saka利用ESO来创建应力分布均匀的结构。两种ESO算法均应用于各向同性结构。rnESO的基本原理是,根据某些标准(通常为应力)从模型中去除材料。该方法还可以将材料重新添加回去,从而有可能需要加强结构,而这种情况可能会在去除过多材料时发生。该模型经历了反复的分析和修改过程,该循环一直持续到满足特定条件(从减轻重量到应力极限)为止。rn本研究的目的是利用MSC.Patran / Nastran创建一种ESO方法,以进行优化复合结构。创建的最终算法很简单,以提高效率并减少总的分析运行时间。算法会修改元素的属性,而不是将其从结构中完全删除。这确保了元素的连通性保持不变。根据驱动标准选择要删除或添加的元素。复合结构被建模为核和壳。核心由具有正交各向异性特性的3D元素组成,皮肤由不可移动的2D外壳元素表示。这些壳单元承受载荷和边界条件。它们还保留了模型的外部形状,这对于空气动力学结构很重要。通过ESO算法对模型进行运行,直到最终的优化结构得以保留。rn飞机的尾翼用作应用示例。目的是减轻重量并创建优化的制造设计。进行分析的标准是基于压力。本文介绍了这项研究的结果。

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