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A numerical methodology for optimizing the geometry of composite structural parts with regard to strength

机译:优化强度的复合结构零件的几何数值方法

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摘要

The increased use of composite materials in lightweight structures has generated the need for optimizing the geometry of composite structural parts with regard to strength, weight and cost. Most existing optimization methodologies focus on weight and cost mainly due to the difficulties in predicting strength of composite materials. In this paper, a numerical methodology for optimizing the geometry of composite structural parts with regard to strength by maintaining the initial weight is proposed. The methodology is a combination of the optimization module of the ANSYS FE code and a progressive damage modeling module. Both modules and the interface between them were programmed using the ANSYS programming language, thus enabling the implementation of the methodology in a single step. The parametric design language involves two verifications tests: one of the progressive damage model against experiments and one of the global optimization methodology performed by comparing the strength of the initial and the optimum geometry. There were made two applications of the numerical optimization methodology, both on H-shaped adhesively bonded joints subjected to quasi-static load. In the first application, the H-shaped joining profile was made from non-crimp fabric composite material while in the second from a novel fully interlaced 3D woven composite material. In the optimization of the joint's geometry, failure in the composite material as well as debonding between the assembled parts was considered. For both cases, the optimization led to a considerable increase in joint's strength.
机译:在轻型结构中复合材料使用的增加,产生了在强度,重量和成本方面优化复合结构部件的几何形状的需求。大多数现有的优化方法都将重点放在重量和成本上,这主要是由于难以预测复合材料的强度。在本文中,提出了一种通过保持初始重量来优化复合结构部件的几何形状强度的数值方法。该方法是ANSYS FE代码的优化模块和渐进式损伤建模模块的组合。这两个模块及其之间的接口均使用ANSYS编程语言进行了编程,因此只需一步即可实现该方法。参数化设计语言涉及两个验证测试:一个是针对实验的渐进式损伤模型,另一个是通过比较初始几何形状和最佳几何形状的强度而执行的全局优化方法。数值优化方法有两次应用,都在承受准静态载荷的H形粘合接头上。在第一个应用中,H形连接轮廓由非卷曲织物复合材料制成,而在第二个应用中,则由新颖的完全交错3D编织复合材料制成。在优化接头的几何形状时,考虑了复合材料的失效以及组装零件之间的脱胶。对于这两种情况,优化都极大地提高了接头的强度。

著录项

  • 来源
    《Composites》 |2015年第1期|176-184|共9页
  • 作者

    K.I. Tserpes; A.S. Koumpias;

  • 作者单位

    Laboratory of Technology & Strength of Materials, Department of Mechanical Engineering & Aeronautics, University of Patras, Patras 26500, Greece;

    Laboratory of Technology & Strength of Materials, Department of Mechanical Engineering & Aeronautics, University of Patras, Patras 26500, Greece;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    A. Fabrics/textiles; B. Debonding; B. Strength; Numerical analysis; E. Joints/joining;

    机译:A.织物/纺织品;B.脱胶;B.力量;数值分析;E.关节/接头;

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