激光光斑尺寸对选择性激光熔化高温component - m5 -3合金组织和性能的影响

Y. Kaplanskii, M. I. Ageev, M. Bychkova, A. Fadeev, E. Levashov
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引用次数: 0

摘要

采用选择性激光熔化法制备了粒度为20 ~ 45 μm的球化粉末,制备了以单铝化镍为基体的componal - m5 -3高温合金。该粉体采用自传播高温合成(SHS)、型煤研磨、筛分、空气分级、热等离子体流对粉体颗粒进行球化、纳米分馏中球化颗粒的超声纯化等综合技术制备。通过参数研究,在SLM 280H和TruPrint 1000机器上对SLM模式进行了测试。在1023 ~ 1273 K温度范围内,采用应变率ε/dt = 10-4 s-1的单轴压缩方案对试样进行力学试验。采用扫描电镜和透射电镜方法研究了激光光斑尺寸对slm固结材料微观结构和热力学性能演变的影响,并与热等静压(HIP)方法进行了比较。建立了HIP + 真空时效后处理对材料组织和力学性能的影响。在激光光斑直径为38 μm的增材加工机上制备的合金在1073 K处的屈服强度为500 MPa,比激光光斑直径为 + HIP + HT的合金屈服强度高出220 MPa。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of laser spot size on structure and properties of high-temperature CompoNIAL-M5-3 alloy produced by selective laser melting
The CompoNiAl-M5-3 high-temperature alloy based on nickel monoaluminide was obtained by selective laser melting (SLM) of a spheroidized powder with particle size in the range of 20 – 45 μm. The powder was manufactured using an integral technology including self-propagating high-temperature synthesis (SHS), briquette grinding, sieve and air classification followed with spheroidization of powder particles in a thermal plasma flow and ultrasonic purification of spheroidized particles from nanofraction. Using parametric studies, the SLM modes were tested on SLM 280H and TruPrint 1000 machines. Mechanical tests of the samples were carried out using the uniaxial compression scheme with the strain rate dε/dt = 10–4 s–1 in the temperature range 1023 – 1273 K. Scanning and transmission electron microscopy methods were used to study the influence of laser spot size on the evolution of microstructure and thermomechanical properties of the SLM-consolidated material in comparison with that obtained by hot isostatic pressing (HIP). The authors established the effect of HIP + HT (aging in vacuum) post-treatment on the structure and mechanical properties of the material. The yield strength at 1073 K of the alloy built on the additive machine with a laser spot diameter of 38 μm after SLM + HIP + HT was 500 MPa, which exceeded the yield strength of the HIP-samples by 220 MPa.
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