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Cutting performance and coated tool wear mechanisms in laser-assisted milling K24 nickel-based superalloy

机译:激光辅助铣削K24镍基高温合金的切削性能和涂层刀具磨损机制

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摘要

Laser-assisted machining (LAM) offers the ability to machine superalloys more efficiently and economically by providing the local heating of the workpiece prior to material removed by traditional cutting tool. The effectiveness of LAM was studied by measuring the cutting forces, surface roughness, and tool wear under various material removal temperatures (Tmr). It is demonstrated by an appropriate 30-70 % decrease in cutting force, an obvious reduction in the surface roughness, and an appropriate 46% increase in coated tool life over conventional machining (CM). Machining experiments are then carried out to evaluate the wear behavior of different commercially available coated tools (TiCN, TiAlN, Ti(CN)/Al2O3/TiN). These coatings were selected since they have the capability to withstand the temperatures experienced in LAM. The results of laser-assisted milling experiments indicate that abrasive and adhesive wear were the dominant wear mechanisms, controlling the deterioration of the carbide tools. The TiAlN-coated tools exhibited the highest wear resistance at normal cutting speeds of 30 m/min. The triple layer CVD coated tool failure mode was non-uniform flank wear due to the adhesion and depth-of-cut notching. TiCN performed poorly due to their inferior adhesion characteristics with the base material. The main failure mode for TiCN was non-uniform flank wear and chipping, and also, a significant notch was observed. Sub-surface quality has been evaluated by observing the microstructure of cross sections and measuring the micro-hardness.
机译:激光辅助加工(LAM)通过在通过传统切削工具去除材料之前对工件进行局部加热,从而能够更高效,更经济地加工超级合金。通过在各种材料去除温度(Tmr)下测量切削力,表面粗糙度和工具磨损,研究了LAM的有效性。与常规加工(CM)相比,切削力适当降低了30-70%,表面粗糙度明显降低,涂层刀具寿命适当增加了46%,这证明了这一点。然后进行机加工实验以评估不同市售涂层工具(TiCN,TiAlN,Ti(CN)/ Al2O3 / TiN)的磨损行为。选择这些涂层是因为它们具有承受LAM的温度的能力。激光辅助铣削实验的结果表明,磨料和粘合剂的磨损是主要的磨损机制,控制了硬质合金刀具的劣化。 TiAlN涂层刀具在30 m / min的正常切削速度下表现出最高的耐磨性。三层CVD涂层的刀具失效模式是由于附着力和切削深度造成的侧面磨损不均匀。由于TiCN与基材的粘合性能较差,因此其性能较差。 TiCN的主要失效模式是侧面磨损和崩裂不均匀,并且观察到明显的缺口。通过观察横截面的微观结构并测量显微硬度来评估亚表面质量。

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