微观结构
材料科学
多孔性
融合
极限抗拉强度
压痕硬度
粒度
复合材料
纹理(宇宙学)
选择性激光熔化
热的
表征(材料科学)
冶金
纳米技术
人工智能
热力学
图像(数学)
计算机科学
哲学
物理
语言学
作者
Kaustubh Deshmukh,Alex Riensche,Ben Bevans,Ryan J. Lane,Kyle Snyder,Harold Halliday,Christopher B. Williams,Reza Mirzaeifar,Prahalada Rao
标识
DOI:10.1016/j.matdes.2024.113136
摘要
In this paper, we explain and quantify the causal effect of processing parameters and part-scale thermal history on the evolution of microstructure and mechanical properties in the laser powder bed fusion additive manufacturing of Stainless Steel 316L components. While previous works have correlated the processing parameters to flaw formation, microstructures evolved, and properties, a missing link is the understanding of the effect of thermal history. Accordingly, tensile test coupons were manufactured under varying processing conditions, and their microstructure-related attributes, e.g., grain morphology, size and texture; porosity; and microhardness were characterized. Additionally, the yield and tensile strengths of the samples were measured using digital image correlation. An experimentally validated computational model was used to predict the thermal history of each sample. The temperature gradients and sub-surface cooling rates ascertained from the model predictions were correlated with the experimentally characterized microstructure and mechanical properties. By elucidating the fundamental process-thermal-structure–property relationship, this work establishes the foundation for future physics-based prediction of microstructure and functional properties in laser powder bed fusion.
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