了解激光粉末床熔合中的熔池特征:用于工艺优化的单轨道和多轨道熔池概述

Jincheng Wang , Rui Zhu , Yujing Liu , Laichang Zhang
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引用次数: 21

摘要

激光粉末床聚变(LPBF)在生产具有复杂形状和几何形状的固体和多孔金属零件方面取得了重大进展。然而,LPBF生产的零件通常存在缺陷(如气孔、残余应力和不完全熔化),阻碍了其大规模的工业商业化。LPBF工艺涉及复杂的传热和流体流动,熔池是该工艺的关键组成部分。熔池稳定性是决定LPBF生产的金属零件的微观结构、机械性能和耐腐蚀性的关键因素。此外,由于LPBF工艺的复杂性,优化新材料和设计结构的工艺参数具有挑战性。这需要多次试错循环,以最大限度地减少缺陷并提高性能。本文综述了LPBF过程中熔池的行为,包括其影响和形成机制。本文总结了熔池的实验结果和模拟,并确定了影响其行为的各种因素,这有助于更好地了解LPBF过程中熔池的行为。本综述旨在强调熔池轨迹和微观结构表征研究的关键方面,目的是从单熔池和多熔池轨迹的角度更好地理解LPBF中合金粉末工艺微观结构性能之间的关系。通过确定研究单熔池和多熔池轨迹的挑战和机遇,本综述可能有助于LPBF工艺的进步、最佳工艺窗口和质量优化,最终提高工艺参数的准确性和合金粉末鉴定的效率。
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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Understanding melt pool characteristics in laser powder bed fusion: An overview of single- and multi-track melt pools for process optimization

Laser powder bed fusion (LPBF) has made significant progress in producing solid and porous metal parts with complex shapes and geometries. However, LPBF produced parts often have defects (e.g., porosity, residual stress, and incomplete melting) that hinder its large-scale industrial commercialization. The LPBF process involves complex heat transfer and fluid flow, and the melt pool is a critical component of the process. The melt pool stability is a critical factor in determining the microstructure, mechanical properties, and corrosion resistance of LPBF produced metal parts. Furthermore, optimizing process parameters for new materials and designed structures is challenging due to the complexity of the LPBF process. This requires numerous trial-and-error cycles to minimize defects and enhance properties. This review examines the behavior of the melt pool during the LPBF process, including its effects and formation mechanisms. This article summarizes the experimental results and simulations of melt pool and identifies various factors that influence its behavior, which facilitates a better understanding of the melt pool's behavior during LPBF. This review aims to highlight key aspects of the investigation of melt pool tracks and microstructural characterization, with the goal of enhancing a better understanding of the relationship between alloy powder-process-microstructure-properties in LPBF from both single- and multi-melt pool track perspectives. By identifying the challenges and opportunities in investigating single- and multi-melt pool tracks, this review could contribute to the advancement of LPBF processes, optimal process window, and quality optimization, which ultimately improves accuracy in process parameters and efficiency in qualifying alloy powders.

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