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通过X射线自由电子激光的透射X射线显微镜对激光粉末床熔融进行高分辨率原位表征。

High-resolution in situ characterization of laser powder bed fusion via transmission X-ray microscopy at X-ray free-electron lasers.

作者信息

Taylor Zane, Reddy Tharun, Fang Lichao, Oppermann Patrick, Kramer Patrick L, Decker Franz Josef, Seaberg Matthew, Chollet Matthieu, van Driel Tim, Halavanau Alex, Hart Philip, Dayton Matthew, Seiboth Frank, Wang Wenxin, Gee Carolyn, Wilson Abigail, Margraf-O'Neal Rachel, Chatterjee Gourab, Chen Ying, Molesky Ilana J P, Wang Yifan, Irvine Sara, Stanton Jade, Melendrez Cynthia, Banta Kelsey, Nelson Silke, Thampy Vivek, Katagiri Kento, Haubro Morten, Liu Sen, Pal Dayeeta, Moghimi Lauren, Tassone Christopher, Dresselhaus-Marais Leora

机构信息

SLAC National Accelerator Laboratory, Menlo Park, CA 94025, USA.

Department of Materials Science and Engineering, Stanford University, Stanford, CA 94305, USA.

出版信息

J Synchrotron Radiat. 2025 May 1;32(Pt 3):524-533. doi: 10.1107/S1600577525001675. Epub 2025 Apr 1.

Abstract

In this work, we describe the instrumentation used to perform the first operando transmission X-ray microscopy (TXM) and simultaneous X-ray diffraction of laser melting simulating laser powder bed fusion on the XCS instrument at the Linac Coherent Light Source (LCLS) X-ray free-electron laser (XFEL). Our TXM with 40× magnification in the X-ray regime at 11 keV gave spatial resolutions down to 940 nm per line pair, with effective pixel sizes down to 206 nm, image integration times of <100 fs, and frame rates tunable between 2.1 and 119 ns for two probe frames (0.48 GHz to 8.4 MHz). Images were recorded on Zyla and Icarus (UXI) detectors to trade off between spatial resolution and time dynamics. A 1 kW CW IR laser was coupled into the interaction point to conduct pump-probe studies of laser melting and solidification dynamics. Our temporal and spatial resolution with attenuation-based contrast exceeds that currently possible with synchrotron-based high-speed radiography. This system was sensitive to feature velocities of 10-12000 m s but we did not observe any motion in this range in the laser melting of Al6061 alloy. Shockwaves were not observed and hot cracking proceeded at velocities below the detection limits. Pore accumulation was observed between successive shots, indicating that bubble escape mechanisms were not active. With proper experimental design, the spatial resolution, contrast and field of view could be further improved or modified. The increased brightness and narrower bandwidth of the XFEL allowed for this imaging technique and it lays the groundwork for a wide range of operando techniques to study additive manufacturing.

摘要

在这项工作中,我们描述了用于在直线加速器相干光源(LCLS)的X射线自由电子激光(XFEL)的XCS仪器上进行首次激光熔化模拟激光粉末床熔融的操作数透射X射线显微镜(TXM)和同步X射线衍射的仪器。我们在11 keV的X射线区域中具有40倍放大率的TXM,线对空间分辨率低至940 nm,有效像素尺寸低至206 nm,图像积分时间小于100 fs,对于两个探测帧(0.48 GHz至8.4 MHz),帧率可在2.1至119 ns之间调节。图像记录在Zyla和Icarus(UXI)探测器上,以在空间分辨率和时间动态之间进行权衡。一台1 kW连续波红外激光耦合到相互作用点,以进行激光熔化和凝固动力学的泵浦 - 探测研究。我们基于衰减对比度的时间和空间分辨率超过了目前基于同步加速器的高速射线照相所能达到的水平。该系统对10 - 12000 m s的特征速度敏感,但在Al6061合金的激光熔化过程中,我们在该范围内未观察到任何运动。未观察到冲击波,热裂纹以低于检测极限的速度进行。在连续射击之间观察到孔隙积累,表明气泡逸出机制不活跃。通过适当的实验设计,空间分辨率、对比度和视野可以进一步提高或修改。XFEL亮度的增加和带宽的变窄使得这种成像技术成为可能,它为研究增材制造的广泛操作数技术奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb02/12067346/2bc6a459ea44/s-32-00524-fig1.jpg

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