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Additive manufacturing technologies for next-generation powertrains

机译:下一代动力牵引的添加剂制造技术

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The paper addresses the prototypical development and implementation of an innovative and functionally integrated gear stage for next-generation electric vehicles, produced by using Laser Beam Melting (LBM) and Fused Deposition Modeling (FDM). Two new design targets are addressed by our approach: Oil-free operation is achieved by innovative coating of gear teeth which enables almost maintenance-free operation. Furthermore, a higher damping of sound transmission from tooth mesh to bearings is implemented by an optimal wheel body geometry that is realized by a combination of printable carbon-containing polymers (flange) and steel (gear rim). The innovative approach is to extend components by areas that cannot be produced by milling and casting, e.g. complex structures, contour-following fluid-carrying cooling elements by means of LBM, thus creating a significant benefit compared to state-of-the-art gearboxes. Function integration made possible by additive manufacturing results in a very high component complexity. It is combined with gear grinding and final ta-C coatings ensuring maximum efficiency in dry operation, to achieve economically viable production processes. The increase in tooth mesh efficiency is achieved by optimization approaches in the design to minimize heat losses while at the same time maintaining highest possible strength and lowest noise emission.
机译:本文通过使用激光束熔化(LBM)和融合沉积建模(FDM)生产的,解决了下一代电动车辆的创新和功能整合齿轮阶段的原型开发和实施。我们的方法解决了两个新的设计目标:通过齿轮齿的创新涂层实现无油操作,这实现了几乎无需免维护操作。此外,从齿状啮合到轴承的较高阻尼通过最佳的车轮体几何形状来实现,该几何形状由可印刷的碳聚合物(法兰)和钢(齿轮边缘)的组合来实现。创新方法是通过铣削和铸造不能生产的区域扩展组件,例如,通过LBM携带流体承载冷却元件的复合结构,从而与最先进的齿轮箱相比产生显着的益处。通过添加制造使功能集成成为可能的成分复杂性非常高。它与齿轮磨削和最终的TA-C涂料相结合,确保了干燥操作的最大效率,以实现经济上可行的生产过程。通过设计中的优化方法来实现牙网格效率的增加,以最小化热损失,同时保持最高的可能强度和最低噪声发射。

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