Wang Xuezhi, Mei Zixiang, Wang Xingchao, Hou Ning, Wang Minghai
School of Mechatronics Engineering, Shenyang Aerospace University, Shenyang, 110136, China.
AECC Shenyang Liming Aero-Engine Co., LTD, Shenyang, 110043, China.
Sci Rep. 2025 May 14;15(1):16820. doi: 10.1038/s41598-025-98315-2.
GH4169 superalloy is extensively utilized in aerospace applications due to their exceptional high-temperature strength and oxidation resistance properties. However, its high hardness presents significant machining challenges, including rapid tool wear and poor surface quality. This study introduces ultrasonic synergistic nanofluid minimal quantity lubrication milling (USNMQLM) technology to address these machining difficulties and enhance surface integrity. The research examines USNMQLM principles, investigating tool-workpiece separation characteristics and lubrication behavior under separated cutting conditions. By building an experimental platform, the influence of processing parameters, ultrasonic variables, and cooling methods on the surface quality of milling GH4169 superalloy was studied. The results indicate that the ultrasound assisted nanofluid micro lubrication milling method has a significant effect on improving the milling surface quality. By examining the quality of milling surfaces under different processing parameters, it was found that the optimal milling surface quality was achieved when the spindle speed was 600 rpm, the feed rate was 60 mm/min, and the milling depth was 0.1 mm. In addition, by comparing conventional milling, ultrasonic vibration-assisted milling (UVAM), and nanofluid minimal quantity lubrication (NMQL)-assisted milling, it was found that under the same milling parameters, the surface roughness of ultrasonic synergistic nanofluid minimal quantity lubrication milling was reduced by 49.8%, 42.8%, and 15.2%, respectively, and the depth of plastic deformation layer was reduced by 64.6%, 61.2%, and 38.7%, respectively. In addition, this processing method has a certain effect on improving the hardness of the processed material, with a 20.8% increase compared to the substrate hardness.
GH4169高温合金因其优异的高温强度和抗氧化性能而广泛应用于航空航天领域。然而,其高硬度给加工带来了重大挑战,包括刀具快速磨损和表面质量差。本研究引入超声协同纳米流体微量润滑铣削(USNMQLM)技术来解决这些加工难题并提高表面完整性。该研究考察了USNMQLM原理,研究了刀具-工件分离特性以及分离切削条件下的润滑行为。通过搭建实验平台,研究了加工参数、超声变量和冷却方式对GH4169高温合金铣削表面质量的影响。结果表明,超声辅助纳米流体微润滑铣削方法对提高铣削表面质量有显著效果。通过考察不同加工参数下的铣削表面质量,发现主轴转速为600转/分钟、进给速度为60毫米/分钟、铣削深度为0.1毫米时可获得最佳铣削表面质量。此外,通过比较传统铣削、超声振动辅助铣削(UVAM)和纳米流体微量润滑(NMQL)辅助铣削发现,在相同铣削参数下,超声协同纳米流体微量润滑铣削的表面粗糙度分别降低了49.8%、42.8%和15.2%,塑性变形层深度分别降低了64.6%、61.2%和38.7%。此外,这种加工方法对提高加工材料的硬度有一定效果,与基体硬度相比提高了20.8%。