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Tribological Effect of Lubricated Liquid Carbon Dioxide on TiAl6V4 and AISI1045 under Extreme Contact Conditions

机译:润滑液二氧化碳在极端接触条件下TiAl6V4和AISI1045的摩擦学作用

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One of the trends in machining is to reduce the consumption of conventional cutting fluids via the use of alternative cooling-lubrication techniques such as Minimum Quantity Lubrication (MQL) or even move to dry cutting. High friction during machining leads to heat generation, which adversely affects the tool life, workpiece surface quality and energy consumption. Reducing the cooling potential with such options can thus have detrimental effects, especially when difficult-to-machine materials are considered, pushing the end-users to limit the cutting conditions. Cryogenic machining based on the injection of liquid nitrogen (LN) or liquid carbon dioxide (LCO2) emerged over the last decade as a promising sustainable assistance in machining. If the cooling capability is definitely enhanced with both, the lubrication capability has not really been proved and is expected to be highly limited. A recent approach to improve both cooling and lubrication is the use of LCO2 in combination with oil, delivered via minimum quantity lubrication (MQL). However, the actual potential of this technique has not really been investigated from a tribological point of view. The proposed work thus aims at assessing the tribological performance of lubricated liquid carbon dioxide when machining TiAl6V4 and AISI1045 with carbide tools. A specially designed open tribometer has been used to characterize the friction coefficient under different sliding velocities. A novel single-channel MQL-delivery system using lubricated LCO2 has especially been applied to perform experiments under LCO2+MQL conditions but also cryogenic LCO2 and dry conditions for a comparison purpose. Whereas a strong influence could be observed on the AISI1045 with a reduction in terms of friction coefficient when applying LCO2+MQL, neither LCO2 nor LCO2+MQL were able to decrease the friction coefficient on TiAl6V4 compared to dry over all the considered sliding velocities, opening the possibility of further research to understand this specific behaviour.
机译:加工趋势之一是通过使用诸如最小量润滑(MQL)的替代冷却润滑技术来减少传统切割流体的消耗,甚至移动到干切割。加工过程中的高摩擦导致发热,这对刀具寿命产生不利影响,工件表面质量和能量消耗产生不利影响。因此,通过这种选择减少冷却电位可以具有不利影响,特别是当考虑难以机材料时,推动最终用户限制切割条件。基于注射液氮(LN)或液态二氧化碳(LCO2)的低温加工在过去十年中出现了在加工方面有希望的可持续援助。如果用两者肯定会增强冷却能力,则润滑能力并未被证明并预计将受到高度限制。最近改善冷却和润滑的方法是使用LCO2与油组合使用,通过最小量润滑(MQL)递送。然而,这种技术的实际潜力并没有从摩擦学的角度来研究。因此,拟议的工作旨在评估用碳化物工具加工TiAl6V4和AISI1045时评估润滑液二氧化碳的摩擦学性能。专门设计的开放式摩擦计用于在不同滑动速度下表征摩擦系数。使用润滑LCO2的新型单通道MQL输送系统特别应用于在LCO2 + MQL条件下进行实验,而是对比较目的进行低温LCO2和干燥条件。虽然在AISI1045上可以在施加LCO2 + MQL时可以在AISI1045上观察到强烈的影响,但是LCO2和LCO2 + MQL都不能够将TiAl6V4的摩擦系数降低,而在所有被认为的滑动速度上,开口进一步研究以了解这种特定行为的可能性。

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