Data-driven modeling of process-structure-property relationships in metal additive manufacturing

Zhaoyang Hu, Wentao Yan
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Abstract

Metal additive manufacturing (AM) faces challenges in rapid selection and optimization of manufacturing parameters for desired part quality. As a more efficient alternative to experiments and high-fidelity physics-based models, data-driven modeling is effective in understanding process–structure–property relationships. This brief review explores data-driven modeling in metal AM, focusing on “process”, “structure”, and “property”, further identifying limitations in current applications and accordingly presenting future outlook on the possible advancements in this domain.

Abstract Image

数据驱动的金属快速成型制造工艺-结构-性能关系建模
金属增材制造(AM)面临着快速选择和优化制造参数以获得理想零件质量的挑战。作为实验和高保真物理模型的一种更有效的替代方法,数据驱动建模在理解工艺-结构-性能关系方面非常有效。这篇简短的综述探讨了金属 AM 中的数据驱动建模,重点关注 "工艺"、"结构 "和 "属性",进一步确定了当前应用中的局限性,并相应地展望了该领域未来可能取得的进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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