Khademzadeh Saeed, Gennari Claudio, Zanovello Andrea, Franceschi Mattia, Campagnolo Alberto, Brunelli Katya
Industrial Engineering Department, University of Padova, 35121 Padova, Italy.
Materials (Basel). 2022 Jul 28;15(15):5231. doi: 10.3390/ma15155231.
The development of laser powder bed fusion (LPBF) additive manufacturing techniques for microfabrication raises the need for the employment of new process configurations and parameters. In this study, micro-LPBF of Ni-based superalloy Inconel 718 using a spot laser of 30 µm was examined. The response surface method with a central composite design was employed to determine the optimum process parameter. A wide range of heat treatment cycles was applied to additively manufacture Inconel samples. The mechanical behavior of heat-treated Inconel 718 parts fabricated via micro-LPBF was investigated and correlated to the microstructural characteristics. The result showed that using optimum input energy density led to a homogenous distribution of nanosized (<10 nm) circular γ′ and plate-like γ″ particles in the γ matrix. Uniaxial tensile tests on heat-treated samples showed that ageing temperature is the most determinant factor in the mechanical strength of additively manufactured Inconel 718.
用于微制造的激光粉末床熔融(LPBF)增材制造技术的发展,引发了对采用新工艺配置和参数的需求。在本研究中,对使用30 µm光斑激光的镍基高温合金Inconel 718的微LPBF进行了研究。采用具有中心复合设计的响应面法来确定最佳工艺参数。应用了广泛的热处理循环来增材制造Inconel样品。研究了通过微LPBF制造的热处理Inconel 718零件的力学行为,并将其与微观结构特征相关联。结果表明,使用最佳输入能量密度可导致纳米尺寸(<10 nm)的圆形γ′和板状γ″颗粒在γ基体中均匀分布。对热处理样品进行的单轴拉伸试验表明,时效温度是增材制造Inconel 718力学强度的最决定性因素。