Lopez Jack, Cerne Rok, Ho David, Madigan Devin, Shen Qing, Yang Bo, Corpus Joseph, Jarosinski William, Wang Haiyan, Zhang Xinghang
School of Materials Engineering, Purdue University, West Lafayette, IN 47907, USA.
Praxair Surface Technologies, Inc., Indianapolis, IN 46222, USA.
Materials (Basel). 2023 May 13;16(10):3707. doi: 10.3390/ma16103707.
Oxide-dispersion-strengthened (ODS) alloys have long been considered for high temperature turbine, spacecraft, and nuclear reactor components due to their high temperature strength and radiation resistance. Conventional synthesis approaches of ODS alloys involve ball milling of powders and consolidation. In this work, a process-synergistic approach is used to introduce oxide particles during laser powder bed fusion (LPBF). Chromium (III) oxide (CrO) powders are blended with a cobalt-based alloy, Mar-M 509, and exposed to laser irradiation, resulting in reduction-oxidation reactions involving metal (Ta, Ti, Zr) ions from the metal matrix to form mixed oxides of increased thermodynamic stability. A microstructure analysis indicates the formation of nanoscale spherical mixed oxide particles as well as large agglomerates with internal cracks. Chemical analyses confirm the presence of Ta, Ti, and Zr in agglomerated oxides, but primarily Zr in the nanoscale oxides. Mechanical testing reveals that agglomerate particle cracking is detrimental to tensile ductility compared to the base alloy, suggesting the need for improved processing methods to break up oxide particle clusters and promote their uniform dispersion during laser exposure.
由于其高温强度和抗辐射性,氧化物弥散强化(ODS)合金长期以来一直被考虑用于高温涡轮机、航天器和核反应堆部件。ODS合金的传统合成方法包括粉末球磨和固结。在这项工作中,采用了一种工艺协同方法,在激光粉末床熔融(LPBF)过程中引入氧化物颗粒。将三氧化二铬(CrO)粉末与钴基合金Mar-M 509混合,并进行激光照射,导致涉及金属基体中的金属(Ta、Ti、Zr)离子的还原-氧化反应,形成热力学稳定性增强的混合氧化物。微观结构分析表明形成了纳米级球形混合氧化物颗粒以及带有内部裂纹的大团聚体。化学分析证实团聚氧化物中存在Ta、Ti和Zr,但纳米级氧化物中主要是Zr。力学测试表明,与基体合金相比,团聚颗粒开裂对拉伸延展性不利,这表明需要改进加工方法,以在激光照射期间分解氧化物颗粒簇并促进其均匀分散。