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Characterization of Metal Powders Used for Additive Manufacturing

表征(材料科学) 直接金属激光烧结 材料科学 扫描电子显微镜 金属粉末 元素分析 X射线光电子能谱 选择性激光熔化 选择性激光烧结 金属 冶金 烧结 纳米技术 化学工程 复合材料 微观结构 化学 有机化学 工程类
作者
John A. Slotwinski,Edward J. Garboczi,Paul E. Stutzman,Chiara F. Ferraris,Stephanie S. Watson,Max A. Peltz
出处
期刊:Journal of Research of the National Institute of Standards and Technology [The National Institute of Standards and Technology]
卷期号:119: 460-460 被引量:464
标识
DOI:10.6028/jres.119.018
摘要

Additive manufacturing (AM) techniques can produce complex, high-value metal parts, with potential applications as critical parts, such as those found in aerospace components. The production of AM parts with consistent and predictable properties requires input materials (e.g., metal powders) with known and repeatable characteristics, which in turn requires standardized measurement methods for powder properties. First, based on our previous work, we assess the applicability of current standardized methods for powder characterization for metal AM powders. Then we present the results of systematic studies carried out on two different powder materials used for additive manufacturing: stainless steel and cobalt-chrome. The characterization of these powders is important in NIST efforts to develop appropriate measurements and standards for additive materials and to document the property of powders used in a NIST-led additive manufacturing material round robin. An extensive array of characterization techniques was applied to these two powders, in both virgin and recycled states. The physical techniques included laser diffraction particle size analysis, X-ray computed tomography for size and shape analysis, and optical and scanning electron microscopy. Techniques sensitive to structure and chemistry, including X-ray diffraction, energy dispersive analytical X-ray analysis using the X-rays generated during scanning electron microscopy, and X-Ray photoelectron spectroscopy were also employed. The results of these analyses show how virgin powder changes after being exposed to and recycled from one or more Direct Metal Laser Sintering (DMLS) additive manufacturing build cycles. In addition, these findings can give insight into the actual additive manufacturing process.
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