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用于高通量微观结构和压痕表征的激光粉末床熔融组合样品的展示。

Demonstration of a laser powder bed fusion combinatorial sample for high-throughput microstructure and indentation characterization.

作者信息

Weaver Jordan S, Pintar Adam L, Beauchamp Carlos, Joress Howie, Moon Kil-Won, Phan Thien Q

机构信息

Engineering Laboratory, National Institute of Standards and Technology, 100 Bureau Drive, Gaithersburg, MD 20899.

Information Technology Laboratory, National Institute of Standards and Technology, 100 Bureau Drive, Gaithersburg, MD 20899.

出版信息

Mater Des. 2021 Nov;209. doi: 10.1016/j.matdes.2021.109969.

Abstract

High-throughput experiments that use combinatorial samples with rapid measurements can be used to provide process-structure-property information at reduced time, cost, and effort. Developing these tools and methods is essential in additive manufacturing where new process-structure-property information is required on a frequent basis as advances are made in feedstock materials, additive machines, and post-processing. Here we demonstrate the design and use of combinatorial samples produced on a commercial laser powder bed fusion system to study 60 distinct process conditions of nickel superalloy 625: five laser powers and four laser scan speeds in three different conditions. Combinatorial samples were characterized using optical and electron microscopy, x-ray diffraction, and indentation to estimate the porosity, grain size, crystallographic texture, secondary phase precipitation, and hardness. Indentation and porosity results were compared against a regular sample. The smaller-sized regions (3 mm × 4 mm) in the combinatorial sample have a lower hardness compared to a larger regular sample (20 mm × 20 mm) with similar porosity (< 0.03 %). Despite this difference, meaningful trends were identified with the combinatorial sample for grain size, crystallographic texture, and porosity versus laser power and scan speed as well as trends with hardness versus stress-relief condition.

摘要

使用组合样本并进行快速测量的高通量实验可用于在减少时间、成本和工作量的情况下提供过程-结构-性能信息。在增材制造中,随着原料材料、增材制造机器和后处理技术的进步,经常需要新的过程-结构-性能信息,因此开发这些工具和方法至关重要。在此,我们展示了在商用激光粉末床熔融系统上生产的组合样本的设计与使用,以研究镍基高温合金625的60种不同工艺条件:在三种不同条件下的五种激光功率和四种激光扫描速度。使用光学显微镜、电子显微镜、X射线衍射和压痕对组合样本进行表征,以估计孔隙率、晶粒尺寸、晶体织构、第二相析出和硬度。将压痕和孔隙率结果与常规样本进行比较。组合样本中尺寸较小的区域(3毫米×4毫米)与孔隙率相似(<0.03%)的较大常规样本(20毫米×20毫米)相比,硬度较低。尽管存在这种差异,但通过组合样本确定了晶粒尺寸、晶体织构以及孔隙率与激光功率和扫描速度之间有意义的趋势,以及硬度与应力消除条件之间的趋势。

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Simulation of TTT Curves for Additively Manufactured Inconel 625.增材制造的因科镍合金625的TTT曲线模拟
Metall Mater Trans A Phys Metall Mater Sci. 2019;50(1). doi: 10.1007/s11661-018-4959-7.
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Practical High-Throughput Experimentation for Chemists.面向化学家的实用高通量实验方法
ACS Med Chem Lett. 2017 May 17;8(6):601-607. doi: 10.1021/acsmedchemlett.7b00165. eCollection 2017 Jun 8.
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Combinatorial development of bulk metallic glasses.大块非晶合金的组合开发。
Nat Mater. 2014 May;13(5):494-500. doi: 10.1038/nmat3939. Epub 2014 Apr 13.

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