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INVESTIGATION OF TROCHOIDAL MILLING IN NICKEL-BASED SUPERALLOY INCONEL 738 AND COMPARISON WITH END MILLING

机译:镍基超级合金Inonell 738摆线铣削的研究及与端铣削的比较

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Nickel-based superalloys are designed for use in extreme environments and are getting progressively better for these environments, therefore much harder to machine. They play a crucial role in elevated temperature applications where high strength, high resistance to corrosion and creep resistance are required. Machinability suffers as a result of these properties and harsh machining conditions occur, resulting in high cutting forces and tool wear. To combat the difficulties in the machining of nickel-based superalloys, such as poor thermal diffusivity and high levels of abrasive wear, trochoidal milling was introduced as an alternative method of milling. This method of milling combines linear motion with uniform circular motion, reducing chip load in exchange for increased machining time. Industry is averse to its widespread adoption due to increasing cycle times when compared to conventional milling methods, however it has been shown that overall productivity can be improved due to less tool wear with a more predictable behavior. This work characterizes the effects of trochoidal milling and provides a comparison of trochoidal milling with a traditional milling technique, end milling, for the machining of Inconel 738. In order to compare the trochoidal and conventional machining approaches directly, metrics of productivity normalized to tool wear are introduced. The normalized metrics introduced in this study aim to provide a more representative comparison of productivity and efficiency characteristics: volumetric material removal per unit tool wear (MR/VB) and the material removal rate per unit tool wear (MRR/VB). It was found that significantly higher volumetric material removal is possible using trochoidal milling, and fewer tools are needed; material removal rates that competitive with end milling can be achieved. When the amount of time spent on tool change for the same volume of material removal is considered, material removal rate of trochoidal milling can even be higher than end milling, indicating that better productivity and efficiency of the process is possible at reduced tooling costs.
机译:镍基超级合金是为在极端环境中使用而设计的,并且在这些环境中逐渐变得更好,因此很难加工。它们在需要高强度,高耐腐蚀性和抗蠕变性的高温应用中起着至关重要的作用。这些特性会影响可加工性,并且会出现苛刻的加工条件,从而导致较高的切削力和刀具磨损。为了解决镍基高温合金加工中的困难,例如差的热扩散率和高水平的磨料磨损,引入了摆线铣削作为铣削的替代方法。这种铣削方法将直线运动与匀速圆周运动结合在一起,从而减少切屑负载,以换取增加的加工时间。与常规铣削方法相比,由于增加了循环时间,因此工业界不赞成采用这种方法,但是已经证明,由于刀具磨损少,行为可预测,因此可以提高整体生产率。这项工作表征了摆线铣削的效果,并比较了摆线铣削与传统铣削技术(端铣削)对Inconel 738的加工。为了直接比较摆线铣削和传统加工方法,将生产率指标归一化为工具磨损介绍。本研究中引入的标准化度量旨在提供更具代表性的生产率和效率特征比较:单位磨损量的材料去除量(MR / VB)和单位磨损量的材料去除率(MRR / VB)。已经发现,使用摆线铣削可以显着提高体积材料的去除率,并且需要的工具更少。可以达到与立铣刀竞争的材料去除率。如果考虑到在相同体积的材料去除过程中花费在换刀上的时间,摆线铣削的材料去除率甚至可能比立铣刀更高,这表明可以在降低刀具成本的情况下实现更高的生产率和效率。

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