首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Influence of process parameters on the cutting performance of SiAlON ceramic tools during high-speed dry face milling of hardened Inconel 718
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Influence of process parameters on the cutting performance of SiAlON ceramic tools during high-speed dry face milling of hardened Inconel 718

机译:工艺参数对高速干面铣削钢筋陶瓷工具的影响718

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Heat-resistant superalloys (HRSAs) exhibit excellent mechanical strength and structural stability at elevated temperatures. Hence, aerospace and power industries have consistently chosen nickel-based superalloys over the years for manufacturing hot-section components. However, poor machinability of these alloys has always been a challenge. This paper investigates the cutting performance of new-generation SiAlON ceramics under extreme conditions of dry high-speed face milling of hardened Inconel 718. Comprehensive characterization of the ceramic tool and its milling performance were conducted using instrumented micro/nano-mechanical indentations, tool life studies, optical 3D imaging, and SEM/EDS investigation of wear patterns. Also, experimental results were linked to the finite element analysis (FEA) of temperature and stress profiles. It is demonstrated that a few major factors govern the ceramic tool life under the outlined cutting conditions: (1) High temperature at the cutting edge exceeding 1250?°C. This temperature is close to the melting point of Inconel 718, and moreover, it is highly localized around the cutting edge-chip interface. (2) High resultant mechanical stress on the tool of around 5.8?GPa. (3) Thermal and mechanical fatigue loading due to the discontinuity of the milling process, combined with (4) intensive built-up edge formation caused by severe weldability of the softened workpiece to the tool. Combination of these phenomena results in a significant change in the machinability of the workpiece material after surpassing a certain limit of cutting speed. The cutting forces, tool wear, and chipping show a significant decline with increasing the speed high enough, which is attributed to the change in the material properties of the workpiece and dissolution of the hard particles within the Inconel microstructure.
机译:耐热超合金(HRSA)在升高的温度下表现出优异的机械强度和结构稳定性。因此,航空航天和动力行业多年来一直在努力选择基于镍的超合金,以制造热段组件。然而,这些合金的可加工性差始终是一项挑战。本文研究了硬化型号718的干高速面研磨极端条件下新一代Sialon陶瓷的切割性能。陶瓷工具的综合表征及其研磨性能进行了仪表,使用仪表微/纳米机械凹进,工具寿命进行研究,光学3D成像和SEM / EDS对磨损模式的研究。此外,实验结果与温度和应力分布的有限元分析(FEA)有关。据证明,一些主要因素在概述的切割条件下控制陶瓷刀具寿命:(1)切削刃超过1250°C的高温。该温度接近于818的熔点,而且,它在切削贴上芯片界面周围高度局部。 (2)高效的机械应力为约5.8μm≤GPA。 (3)热量和机械疲劳负载由于铣削过程的不连续性,结合(4)强化内置边缘形成,由软化工件的严重可焊性引起的工具。这些现象的组合导致工件材料在超过一定的切削速度限制后的可加工性的显着变化。切割力,刀具磨损和切削表现出显着下降,随着足够高的速度而显着下降,这归因于工件的材料特性的变化以及Inconel微观结构内的硬颗粒的溶解。

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