研究目的
Investigating the processing of martensitic tool steel X65MoCrWV3-2 by laser powder bed fusion (L-PBF) and the resulting microstructure and local properties.
研究成果
The L-PBF-built X65MoCrWV3-2 tool steel exhibits a heterogeneous microstructure with varying microhardness, resulting from the process-specific conditions. The study concludes that the L-PBF process induces an in situ multistep heat treatment, leading to a thermal stabilization of the microstructure and achieving high hardness without additional heat treatment.
研究不足
The processing of martensitic tool steels with L-PBF is challenging due to the formation of high residual stresses, leading to distortion and cracking. The study focuses on X65MoCrWV3-2 tool steel, and the findings may not be directly applicable to other materials.
1:Experimental Design and Method Selection:
The study involves processing X65MoCrWV3-2 tool steel by L-PBF and analyzing the resulting microstructure and properties.
2:Sample Selection and Data Sources:
Gas atomized powder of X65MoCrWV3-2 tool steel was used for L-PBF processing.
3:List of Experimental Equipment and Materials:
Realizer SLM 100 device equipped with a ytterbium fiber laser, MasterSizer 2000 from Malvern Instruments Ltd., MIRA 3 SEM from Tescan, CSM NHT indenter.
4:Experimental Procedures and Operational Workflow:
The L-PBF densification was performed with specific laser parameters, and the microstructure was analyzed using SEM, microhardness measurements, and nanoindentation.
5:Data Analysis Methods:
The local chemical composition was measured by EDS, and mechanical properties were characterized by nanoindentation and microhardness tests.
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