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EFFICIENT MANUFACTURING METHODS FOR HYBRID METAL-POLYMER COMPONENTS

机译:杂化金属 - 聚合物组分的高效制造方法

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Lightweight design for automotive applications gains more and more importance for future products, independent from the powertrain concept. One of the key issues in lightweight design is to utilize the right material for the right application using the right value at the right place. This results irrevocably in a multi-material design. In order to increase the efficiency in manufacturing car components, the number of single parts in a component is decreased by increasing the complexity. Examples for the state of the art are tailored welded blanks in cold forming, tailored tempering in press hardening or metallic inlays in injection molding of polymers. The challenge for future production scenarios of multi-material components is to combine existing technologies for metal- and polymer-based applications in efficient hybrid process chains. This paper shows initial approaches of hybrid process chains for efficient manufacturing of hybrid metal-polymer components. These concepts are feasible for flat as well as for tubular applications. Beside the creation of the final geometric properties of the component by a forming process, integrated joining operations are increasingly required for the efficiency of the production process and the performance characteristics of the final component. Main target of this production philosophy is to create 100% ready-to-install components. This is shown in three examples for hybrid process combinations. The first example deals with the combination of metal forming and injection molding of polymers. Example number two is the application of hybrid metal-polymer blanks. Finally, example number three shows the advantages of process integrated forming and joining of single basic components.
机译:汽车应用的轻量级设计对于未来的产品,独立于动力总成概念的产品越来越重要。轻量级设计中的一个关键问题是使用正确的位置在正确的位置利用正确的应用程序。这导致多材料设计不可撤销。为了提高制造汽车组分的效率,通过增加复杂性来降低组件中的单个部件的数量。本领域技术的示例在冷成型中定制焊接坯料,在注射成型中压制硬化或金属镶嵌在聚合物的压制或金属镶嵌。多材料组件的未来生产场景的挑战是将现有技术与高效的混合过程链中的金属和聚合物的应用相结合。本文显示了杂化工艺链的初始方法,用于有效制造杂化金属 - 聚合物组分。这些概念对于平板以及管状应用是可行的。除了通过成形过程创建组件的最终几何特性旁边,越来越需要集成的加入操作来实现生产过程的效率和最终组分的性能特征。该生产哲学的主要目标是创建100%即用的安装组件。这在混合过程组合的三个例子中示出。第一个例子涉及聚合物的金属成型和注射成型的组合。实施例第二是混合金属 - 聚合物坯料的应用。最后,示例第三示例显示了单一基本组件的过程集成形成和连接的优点。

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