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一种用于斯坦福同步辐射光源实时同步辐射 X 射线成像和相关诊断实验的激光粉末床熔合系统。

A laser powder bed fusion system for operando synchrotron x-ray imaging and correlative diagnostic experiments at the Stanford Synchrotron Radiation Lightsource.

机构信息

Lawrence Livermore National Laboratory, Livermore, California 94550, USA.

Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory, Menlo Park, California 94025, USA.

出版信息

Rev Sci Instrum. 2022 Apr 1;93(4):043702. doi: 10.1063/5.0080724.

Abstract

Laser powder bed fusion (LPBF) is a highly dynamic multi-physics process used for the additive manufacturing (AM) of metal components. Improving process understanding and validating predictive computational models require high-fidelity diagnostics capable of capturing data in challenging environments. Synchrotron x-ray techniques play a vital role in the validation process as they are the only in situ diagnostic capable of imaging sub-surface melt pool dynamics and microstructure evolution during LPBF-AM. In this article, a laboratory scale system designed to mimic LPBF process conditions while operating at a synchrotron facility is described. The system is implemented with process accurate atmospheric conditions, including an air knife for active vapor plume removal. Significantly, the chamber also incorporates a diagnostic sensor suite that monitors emitted optical, acoustic, and electronic signals during laser processing with coincident x-ray imaging. The addition of the sensor suite enables validation of these industrially compatible single point sensors by detecting pore formation and spatter events and directly correlating the events with changes in the detected signal. Experiments in the Ti-6Al-4V alloy performed at the Stanford Synchrotron Radiation Lightsource using the system are detailed with sufficient sampling rates to probe melt pool dynamics. X-ray imaging captures melt pool dynamics at frame rates of 20 kHz with a 2 µm pixel resolution, and the coincident diagnostic sensor data are recorded at 470 kHz. This work shows that the current system enables the in situ detection of defects during the LPBF process and permits direct correlation of diagnostic signatures at the exact time of defect formation.

摘要

激光粉末床熔合(LPBF)是一种用于金属部件增材制造(AM)的高度动态多物理过程。为了提高工艺理解并验证预测计算模型,需要能够在具有挑战性的环境中捕获数据的高保真度诊断。同步加速器 X 射线技术在验证过程中起着至关重要的作用,因为它们是唯一能够在 LPBF-AM 过程中对亚表面熔池动力学和微观结构演化进行成像的原位诊断方法。本文描述了一种在同步加速器设施中运行时旨在模拟 LPBF 工艺条件的实验室规模系统。该系统采用工艺精确的大气条件实现,包括用于主动去除蒸气羽流的气刀。重要的是,该腔室还包含一个诊断传感器套件,该套件可在激光加工过程中监测发射的光学、声学和电子信号,并与 X 射线成像同时进行。通过检测孔隙形成和飞溅事件,并直接将事件与检测到的信号变化相关联,该传感器套件的添加可验证这些与工业兼容的单点传感器。使用该系统在斯坦福同步辐射光源(Stanford Synchrotron Radiation Lightsource)上进行的 Ti-6Al-4V 合金实验进行了详细介绍,采样率足以探测熔池动力学。X 射线成像以 20 kHz 的帧率捕获熔池动力学,具有 2 µm 的像素分辨率,并且同时记录的诊断传感器数据的记录速率为 470 kHz。这项工作表明,当前系统能够在 LPBF 工艺过程中进行原位缺陷检测,并允许在缺陷形成的确切时间对诊断特征进行直接相关。

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Ultrafast X-ray imaging of laser-metal additive manufacturing processes.激光金属增材制造过程的超快X射线成像
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