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Laser powder bed fusion (L-PBF) additive manufacturing: On the correlation between design choices and process sustainability

机译:激光粉末床熔合(L-PBF)增材制造:关于设计选择与工艺可持续性之间的关系

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The specific energy consumption of Additive Manufacturing (AM) unit processes for the production of metal parts could be much higher than that of more traditional manufacturing routes, such as machining. However, AM, due to its intrinsic process peculiarities, including the flexible realization of (almost) any kind of complex shape, has a great potential for improving the material use efficiency, with positive environmental impact benefits from the material production to the product use and disposal at the end of first life. Aim of this paper is to assess the role of the design choices on the environmental AM process sustainability. An integrated design methodology (accounting for the product re-design via topological optimization, the design of support structures, and the design of allowances and features for post-AM finishing operations) for components produced by means of laser powder bed fusion processes is considered. One resource (the cumulated energy demand) and one emission (carbon dioxide) are assumed as metrics for the impact assessment across the product life cycle. The results demonstrate the importance of a proper design for AM to improve the overall energy and emission saving potential.
机译:用于制造金属零件的增材制造(AM)单元过程的单位能耗可能比机械​​加工等更传统的制造路线的单位能耗要高得多。但是,AM由于其固有的工艺特性(包括(几乎)任何一种复杂形状的灵活实现)具有提高材料使用效率的巨大潜力,并且从材料生产到产品使用以及弃置第一生命。本文的目的是评估设计选择对环境增材制造过程可持续性的作用。考虑了通过激光粉末床熔合工艺生产的组件的集成设计方法(通过拓扑优化考虑产品的重新设计,支撑结构的设计以及AM后加工操作的余量和特征的设计)。假设一种资源(累积的能源需求)和一种排放(二氧化碳)作为整个产品生命周期中影响评估的指标。结果表明,正确设计AM的重要性在于可以提高整体节能和减排潜力。

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