Fu Daojian, Li Xiaoqiang, Zhang Minai, Wang Min, Zhang Zhen, Qu Shengguan
Guangdong Key Laboratory for Advanced Metallic Materials Fabrication and Forming, National Engineering Research Center of Near-Net-Shape Forming for Metallic Materials, South China University of Technology, Guangzhou 510640, China.
Dongguan hyperpowder Co. Ltd., Dongguan 523808, China.
Materials (Basel). 2020 Feb 21;13(4):962. doi: 10.3390/ma13040962.
The laser energy density (E) is often utilized in many additive manufacturing (AM) processes studies to help researchers to further investigate the process-structure-property correlations of Ti6Al4V alloys. However, the reliability of the E is still questionable. In this work, a specific empirical calculation equation of the effective laser energy (E), which is a dimensionless parameter in laser melting deposition (LMD) processing, was proposed based on the molten pool temperature. The linear regression results and the coefficient of determination prove the feasibility of the E equation, which indicates that E can more accurately reflect the energy-temperature correlations than the commonly used laser energy density (E) equation. Additionally, Ti6Al4V components were fabricated by the LMD process with different E to investigate the influence of E on their structure and mechanical properties. Experimental results show that the detrimental columnar prior β meso-structure can be circumvented and the uniform α + β laths micro-structure can be obtained in LMD Ti6Al4V by a judicious combination of the process parameter (P = 2000 W, V = 12 mm/s, and F = 10.5 g/min) and E (7.98 × 10) with excellent tensile strength (1006 ± 25 MPa) and elongation (14.9 ± 0.6%). Overall, the present work provides an empirical calculation equation to obtain a clearer understanding of the influence of different process parameters and indicates the possibility to fabricate the Ti6Al4V alloy with excellent mechanical properties by parameter optimization in the LMD process.
激光能量密度(E)在许多增材制造(AM)工艺研究中经常被使用,以帮助研究人员进一步探究Ti6Al4V合金的工艺-结构-性能关系。然而,E的可靠性仍然值得怀疑。在这项工作中,基于熔池温度,提出了有效激光能量(E)的特定经验计算方程,E是激光熔覆沉积(LMD)工艺中的一个无量纲参数。线性回归结果和决定系数证明了E方程的可行性,这表明E比常用的激光能量密度(E)方程能更准确地反映能量-温度关系。此外,通过LMD工艺以不同的E制备了Ti6Al4V部件,以研究E对其组织和力学性能的影响。实验结果表明,通过合理组合工艺参数(P = 2000 W,V = 12 mm/s,F = 10.5 g/min)和E(7.98×10),可以避免LMD Ti6Al4V中有害的柱状初生β中组织,并获得均匀的α + β板条组织,其具有优异的抗拉强度(1006±25 MPa)和伸长率(14.9±0.6%)。总体而言,本工作提供了一个经验计算方程,以更清楚地了解不同工艺参数的影响,并表明通过LMD工艺中的参数优化制备具有优异力学性能的Ti6Al4V合金的可能性。