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Dry vs. Cryogenic Orthogonal Hard Machining: an Experimental Investigation

机译:干燥与低温正交硬加工:实验研究

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Friction, and consequently heat generation in the cutting zone, significantly affects the tool life, surface integrity and dimensional accuracy, apart from other machining results. Application of a coolant in a cutting process can increase tool life and dimensional accuracy, decrease heat generation, and consequently cutting temperatures, reduce surface roughness and the amount of energy consumed in cutting process, and thus improve the productivity. Furthermore, coolant application also affects the surface microstructural alterations (i.e., white and dark layers) due to a machining operation, which have a significant influence on product performance and life. This paper presents the results of an experimental investigation to determine the effects of cryogenic coolant application on tool wear, cutting forces and machined surface alterations during orthogonal machining of hardened AISI 52100 bearing steel (54+-1 HRC). Experiments were performed for dry and cryogenic cutting conditions using chamfered PCBN tool inserts at varying cutting conditions (cutting speed and feed rate). For cryogenic cutting conditions the fluid was applied in the form of a liquid nitrogen jet directed on the three shear cutting zones. Cutting forces, tool wear, cutting temperatures, surface hardness modifications and microstructure alterations were studied in order to evaluate the effects of extreme in-process cooling. The results indicate that cryogenic cooling has the potential to be used for surface integrity enhancement for improved product life and more sustainable functional performance.
机译:除其他加工结果之外,切割区中的摩擦和热量产生显着影响刀具寿命,表面完整性和尺寸精度。在切割过程中施加冷却剂可以提高刀具寿命和尺寸精度,降低发热,从而降低温度,降低切割过程中消耗的表面粗糙度和能量的量,从而提高生产率。此外,由于加工操作,冷却剂应用还影响表面微观结构改变(即白色和黑暗层),这对产品性能和寿命产生了显着影响。本文介绍了实验研究的结果,以确定低温冷却剂应用对刀具磨损,切割力和加工表面改变的效果,在硬化AISI 52100轴承钢(54 + -1HRC)的正交加工过程中。在不同的切割条件下使用倒角PCBN工具插入物(切割速度和进料速率)来对干燥和低温切割条件进行实验。对于低温切割条件,流体以液氮喷射的形式施加,指向三个剪切切割区域。切割力,工具磨损,切割温度,表面硬度修饰和微观结构改变,以评估极端的过程冷却的影响。结果表明,低温冷却具有用于表面完整性增强的潜力,以改善产品寿命和更可持续的功能性能。

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