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Numerical Modeling of a Hybrid Forming Process for Three-Dimensionally Curved Fiber-Metal Laminates

机译:三维弯曲纤维金属层压板混合形成工艺的数值模型

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Fiber-metal laminates (FML) are known for their excellent fatigue properties and for lightweighting. As a result, they are widely used in the aviation industry for the fuselage. The geometric complexity of these parts is limited to small one-dimensional and two-dimensional curvatures. To use FMLs for various industries, such as the automotive industry, new manufacturing techniques are needed to increase the formability of FMLs for more complex geometries. A new approach is the combination of deep drawing with thermoplastic resin transfer molding (T-RTM). This process makes it possible to produce three-dimensional FMLs in just one process step from the raw materials (metal sheet and dry fiber fabric) without preliminary stages, such as forming of textile or metal sheet. The process was developed based on a generic cup-shaped geometry. To use it for more complex geometries, numerical tools are needed for the prediction of forming behavior for part and tool design. The aim of this paper is to show a first approach to model this combined process for the tested generic geometry. With this approach, the interaction between the different deformation behaviors of the metal and the textile as well as their influence on the forming result of the hybrid fiber-metal laminate will be investigated.
机译:纤维 - 金属层压板(FML)是优异的疲劳性能和用于轻质的。结果,它们广泛用于机身的航空工业。这些部件的几何复杂度仅限于小的一维和二维曲率。为了利用各种行业的FML,如汽车行业,需要新的制造技术来提高FMLS的成形性,以实现更复杂的几何形状。一种新的方法是热塑性树脂转移模制(T-RTM)的深层拉伸的组合。该方法使得可以在没有初步阶段的原料(金属板和干纤维织物)中仅在一个工艺步骤中生产三维FML,例如形成纺织品或金属板。该过程是基于通用杯形几何形式开发的。为了使用它来实现更复杂的几何形状,需要数值工具来预测部分和工具设计的成型行为。本文的目的是展示一种为测试通用几何形状建模这种组合过程的第一种方法。利用这种方法,将研究金属和纺织品的不同变形行为之间的相互作用以及它们对杂化纤维 - 金属层压板的形成结果的影响。

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