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Parameter Optimization and Anisotropy Mechanism in Different Build Directions of the Microstructures and Mechanical Properties for Laser Directed Energy Deposited Ti6Al4V Alloy

Materials Science and Engineering: A(2024)

Jiangsu Univ

Cited 2|Views3
Abstract
The effects of laser power, scanning speed, and build directions (BDs) on the microstructural evolution and mechanical properties of laser directed energy deposited (LDEDed) Ti6Al4V alloy were systematically investigated in this study. All the finished LDED specimens were not heat treated and the tensile properties were not influenced by surface roughness. Particularly, the differences in grain size, grain boundary distribution, geometrically necessary dislocation (GND) density, grain orientation spread (GOS), and Schmid factor (SF) of the specimens in different BDs were investigated by scanning electron microscopy, electron backscattering diffraction, transmission electron microscopy, and tensile test. The results showed that the aspect ratio, dilution rate, and deposition angle all tended to increase with increasing laser power and scanning speed. The yield strength and the ultimate tensile strength decreased with the increase of laser power, while the elongation was the opposite. The parent grain reconstruction results indicated that the high-temperature transition phase ((3 phase) of the 0 degrees LDEDed specimen was equiaxial, whereas that of the 90 degrees LDEDed specimen was columnar. The differences in the (3 phase of the specimens in different BDs were directly inherited to the corresponding lowtemperature sub-phase (alpha phase), resulting in finer grain sizes, greater GND density, larger GOS, and smaller SF in the 0 degrees LDEDed specimen, thereby contributing to higher strength and hardness. In contrast, these values were reversed for the 90 degrees LDEDed specimen, resulting in better plasticity and toughness. Finally, the anisotropy mechanism of the microstructures and mechanical properties of the LDEDed Ti6Al4V alloy in different BDs were revealed. This work could provide more systematic and comprehensive guidance in parameter optimization and offer valuable insights into the anisotropy mechanism of the microstructures and mechanical properties of LDEDed Ti6Al4V alloy.
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Laser directed energy deposition,Ti6Al4V alloy,Laser power,Scanning speed,Parent grain reconstruction,Anisotropy
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要点】:本文研究了激光定向能量沉积Ti6Al4V合金在不同构建方向上的微结构演化和力学性能,揭示了参数优化和各向异性机制。

方法】:采用扫描电镜、电子背散射衍射、透射电镜和拉伸测试,系统分析了激光功率、扫描速度和构建方向对Ti6Al4V合金微结构和力学性能的影响。

实验】:实验中未对LDED样品进行热处理,研究了不同构建方向(0度和90度)的样品在微结构和力学性能上的差异,结果表明0度构建方向的样品具有更高的强度和硬度,而90度构建方向的样品则具有更好的塑性和韧性。使用的数据集包括LDED沉积参数和力学测试结果。