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Plastic Deformation and Residual Stress in High Speed Turning of AD730 Nickel-based Superalloy with PCBN and WC Tools

机译:用PCBN和WC工具高速转向高速转动高速转动的塑性变形及残余应力

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A higher gas turbine efficiency can be achieved by increasing the operating temperature in hot sections. AD730 is a recently-developed wrought/cast nickel-based superalloy which can maintain excellent mechanical properties above 700 °C. However, machining of AD730 could be a difficult task like other nickel-based superalloys. Therefore, studies are needed with respect to the machinability of this new alloy. In this paper, high-speed turning was performed on AD730 using polycrystalline cubic boron nitride (PCBN) tools and coated tungsten carbide (WC) tools at varied cutting speeds. The surface integrity was assessed in two important aspects, i.e., surface and sub-surface plastic deformation and residual stresses. The PCBN tools generally showed better performance compared with the WC tools since it led to reduced machining time without largely compromising the surface integrity achieved. The optimal cutting speed was identified in the range of 200-250 m/min when using the PCBN tools, which gives rise to a good combination of machining efficiency and surface integrity. The further increase of the cutting speed to 300 m/min resulted in severe and deep plastic deformation. Meanwhile, a continuous white layer was formed at the machined surface. When turning with the WC tools, the increased cutting speed from 80 m/min to 100 m/min showed very little effect with respect to the plastic deformation on the machined surface. It was found that tensile residual stresses were developed on all machined surfaces no matter when the PCBN or WC tools were used, and the surface tension was generally increased with increasing cutting speed. The tensile layer might need to be modified by e.g., post-machining surface treatments such as shot peening, if taking good fatigue performance into consideration.
机译:通过增加热部分的操作温度,可以实现更高的燃气涡轮效率。 AD730是最近开发的锻造/铸造镍基超合金,可以保持700℃以上的优异机械性能。然而,AD730的加工可能是其他基于镍的超合金等困难的任务。因此,需要研究这种新合金的可加工性。本文在AD730上使用多晶立方氮化硼(PCBN)工具并以各种切割速度涂覆碳化钨(WC)工具进行高速转动。在两个重要方面,即表面和亚表面塑性变形和残余应力中评估了表面完整性。与WC工具相比,PCBN工具通常表现出更好的性能,因为它导致了在没有大幅损害所实现的表面完整性的情况下降低加工时间。使用PCBN工具时,最佳切削速度在200-250米/分钟的范围内识别,这引起了加工效率和表面完整性的良好组合。进一步增加切削速度至300米/分钟,导致严重和深塑性变形。同时,在加工表面形成连续的白色层。随着WC工具转动时,从80米/分钟到100米/分钟的增加的切削速度对加工表面上的塑性变形表示很小。结果发现,无论使用PCBN或WC工具时,在所有加工表面上都会在所有加工表面上开发拉伸残余应力,并且随着切削速度的增加,表面张力通常增加。如果考虑出良好的疲劳性能,则可能需要通过例如射击后表面处理,例如脱落的后加工表面处理。

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