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Numerical Optimization of the Structure of Fiber-reinforced Composites

机译:纤维增强复合材料结构的数值优化

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摘要

Most composite components are constructed in a very safe way, with thick walls and many laminate layers. The potential of lightweight construction will not be fully tapped. In a typical computation of the behavior of a component, the wall thickness and fiber directions have to be entered into the simulation system. The result is the load-dependent deformation of the component. That approach takes a lot of time to get an optimized construction. A better way for optimizing fiber-reinforced composites is the use of simulation algorithms to get an optimal material distribution. In this case, the simulation output shows the optimal layer thickness and fiber directions for every node depending on the selected maximum deformations and the load of the structure. This method was used to reduce the weight of the special, extremely energy-saving vehicle called "Sax 3" of the student project "fortis saxonia" for the Shell Eco-marathon 2008. Thus it has become possible to keep the weight of the chassis of the vehicle under 10 kg. This shows the high potential of the implementation of this optimization approach for fiber-reinforced composites.
机译:大多数复合材料组件的建造都是非常安全的,它具有厚壁和许多层压板层。轻型建筑的潜力将无法充分挖掘。在典型的部件性能计算中,必须将壁厚和纤维方向输入模拟系统。结果是部件的载荷相关变形。该方法需要大量时间才能获得优化的结构。优化纤维增强复合材料的更好方法是使用模拟算法来获得最佳的材料分布。在这种情况下,模拟输出根据所选的最大变形和结构载荷显示每个节点的最佳层厚度和纤维方向。这种方法被用于减轻壳牌环保马拉松2008学生项目“ fortis saxonia”中名为“ Sax 3”的特殊节能汽车的重量。因此,保持底盘的重量成为可能10公斤以下车辆的重量。这显示了针对纤维增强复合材料实施此优化方法的巨大潜力。

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