首页> 外文会议>ASME/ISCIE international symposium on flexible automation 2012 >INTEGRATION OF ON-MACHINE MEASUREMENTS IN THE FORCE MODELING FOR MACHINING OF ADVANCED NICKEL-BASED SUPERALLOYS
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INTEGRATION OF ON-MACHINE MEASUREMENTS IN THE FORCE MODELING FOR MACHINING OF ADVANCED NICKEL-BASED SUPERALLOYS

机译:先进的镍基超级合金加工力模型中的机上测量集成

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摘要

Nickel-based superalloys are specially designed for applications where high strength, creep resistance, and oxidation resistance are critical at high temperatures. Many of their applications are the hot gas sections of turbo-machinery (e.g. jet engines and gas turbines). With greater demands on the performance and efficiency of these types of machines, the firing temperatures are reaching higher levels and nickel-based superalloys are being utilized more because of their excellent mechanical qualities at extreme temperatures. However, the properties that make them attractive for these applications present difficult challenges for the manufacture, particularly machining, of the components that are made from these materials. Considering the extreme environment that these components operate in, part quality, in particular surface quality, is paramount. The damage and stresses introduced to the surfaces of these components during manufacture needs to be well understood and controlled in order to ensure that premature component and machine failures do not occur. With improved process models and on-machine measurement capabilities, the in-process cutting forces and temperatures can be better understood and therefore subsurface damage can be better controlled. Since cutting forces and temperatures are direct contributors to subsurface damage, better control of these aspects would then lead to better control of subsurface damage. This paper discusses the use of on-machine touch probes to measure wear on milling tools and using those measurements to update a mechanistic force model for more accurate prediction of the cutting forces incurred during the milling of nickel-based superalloys.
机译:镍基高温合金是专门为在高温下要求高强度,抗蠕变性和抗氧化性至关重要的应用而设计的。它们的许多应用是涡轮机械的热气部分(例如喷气发动机和燃气轮机)。对这些类型的机器的性能和效率提出了更高的要求,烧成温度达到了更高的水平,并且镍基超级合金由于在极端温度下具有出色的机械性能而被越来越多地利用。然而,使它们对于这些应用具有吸引力的性质对于由这些材料制成的部件的制造,特别是机加工提出了困难的挑战。考虑到这些组件所处的极端环境,零件质量(尤其是表面质量)至关重要。为了确保不会发生过早的组件和机器故障,在制造过程中引入这些组件表面的损坏和应力需要得到很好的理解和控制。通过改进的过程模型和在机上的测量功能,可以更好地了解过程中的切削力和温度,从而可以更好地控制地下损坏。由于切削力和温度是造成地下破坏的直接原因,因此,更好地控制这些方面将导致对地下破坏的更好控制。本文讨论了使用机上测头来测量铣削刀具的磨损,并使用这些测量值来更新机械力模型,以便更准确地预测镍基高温合金在铣削过程中产生的切削力。

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