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脉冲波激光粉末床熔融中气孔形成动力学的原位表征

In-Situ Characterization of Pore Formation Dynamics in Pulsed Wave Laser Powder Bed Fusion.

作者信息

Hojjatzadeh Seyed Mohammad H, Guo Qilin, Parab Niranjan D, Qu Minglei, Escano Luis I, Fezzaa Kamel, Everhart Wes, Sun Tao, Chen Lianyi

机构信息

Department of Mechanical Engineering, University of Wisconsin-Madison, Madison, WI 53706, USA.

Department of Materials Science and Engineering, University of Wisconsin-Madison, Madison, WI 53706, USA.

出版信息

Materials (Basel). 2021 May 29;14(11):2936. doi: 10.3390/ma14112936.

Abstract

Laser powder bed fusion (LPBF) is an additive manufacturing technology with the capability of printing complex metal parts directly from digital models. Between two available emission modes employed in LPBF printing systems, pulsed wave (PW) emission provides more control over the heat input compared to continuous wave (CW) emission, which is highly beneficial for printing parts with intricate features. However, parts printed with pulsed wave LPBF (PW-LPBF) commonly contain pores, which degrade their mechanical properties. In this study, we reveal pore formation mechanisms during PW-LPBF in real time by using an in-situ high-speed synchrotron x-ray imaging technique. We found that vapor depression collapse proceeds when the laser irradiation stops within one pulse, resulting in occasional pore formation during PW-LPBF. We also revealed that the melt ejection and rapid melt pool solidification during pulsed-wave laser melting resulted in cavity formation and subsequent formation of a pore pattern in the melted track. The pore formation dynamics revealed here may provide guidance on developing pore elimination approaches.

摘要

激光粉末床熔融(LPBF)是一种增材制造技术,能够直接从数字模型打印复杂的金属零件。在LPBF打印系统采用的两种可用发射模式中,与连续波(CW)发射相比,脉冲波(PW)发射对热输入的控制更强,这对于打印具有复杂特征的零件非常有利。然而,用脉冲波LPBF(PW-LPBF)打印的零件通常含有孔隙,这会降低其机械性能。在本研究中,我们通过使用原位高速同步加速器X射线成像技术实时揭示了PW-LPBF过程中的孔隙形成机制。我们发现,当激光照射在一个脉冲内停止时,蒸汽凹陷坍塌会发生,从而在PW-LPBF过程中偶尔形成孔隙。我们还揭示了脉冲波激光熔化过程中的熔体喷射和熔池快速凝固导致了空洞形成,并随后在熔化轨迹中形成了孔隙图案。这里揭示的孔隙形成动力学可能为开发孔隙消除方法提供指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b94a/8198083/a34824c86d33/materials-14-02936-g001.jpg

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