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Performance Evaluation of Graphene Nanofluid to Mitigate the Wear of a Diamond Tool in Micro-Machining of Ti6Al4V Alloy

机译:石墨烯纳米流体在Ti6Al4V合金微加工中减轻金刚石刀具磨损的性能评价

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摘要

Diamond tools are extensively used in ultra-precision machining due to their exceptional performance. However, when machining challenging materials like Ti6Al4V, diamond tools experience significant wear due to poor machining properties and catalytic effects. Tool wear not only impacts machining quality but also escalates machining costs and energy consumption. Cutting fluids are commonly employed to mitigate interfacial reactions and suppress tool wear. However, traditional cutting fluids are difficult to penetrate the cutting area and have limited lubrication and cooling capabilities. Therefore, in this paper, a technique combining graphene nanofluid and minimum-quantity lubrication (MQL) is used to suppress diamond tool wear. Firstly, micro-milling experiments for Ti6Al4V alloy are conducted using diamond tools in the graphene nanofluid MQL and under a dry environment. The experimental results show that tool wear is effectively suppressed by graphene nanofluids. Subsequently, the cutting process in both environments (graphene nanofluid MQL, dry) is simulated. The suppression mechanism of graphene nanofluid MQL for diamond tool wear is evaluated from phase transition, atomic transfer process, and amorphous behavior of diamond structure. The simulation results show that the contact characteristics, cutting force, and cutting temperature are improved by graphene nanofluids. Tool wear is effectively reduced. In addition, the removal efficiency of workpiece materials has also been improved. This work provides a technical basis for exploring the application of graphene nanofluids in diamond tool damage suppression and micro-milling.
机译:金刚石刀具因其卓越的性能而被广泛用于超精密加工。然而,在加工 Ti6Al4V 等具有挑战性的材料时,金刚石刀具由于加工性能差和催化作用而会受到严重磨损。刀具磨损不仅会影响加工质量,还会增加加工成本和能耗。切削液通常用于减轻界面反应和抑制刀具磨损。然而,传统的切削液难以渗透到切削区域,润滑和冷却能力有限。因此,本文采用一种结合石墨烯纳米流体和最小量润滑(MQL)的技术来抑制金刚石刀具磨损。首先,在石墨烯纳米流体MQL和干燥环境下使用金刚石工具对Ti6Al4V合金进行了微铣削实验。实验结果表明,石墨烯纳米流体有效抑制了刀具磨损。随后,模拟了两种环境(石墨烯纳米流体MQL,干)下的切割过程。从相变、原子转移过程和金刚石结构的非晶行为等方面评估了石墨烯纳米流体MQL对金刚石刀具磨损的抑制机理。仿真结果表明,石墨烯纳米流体改善了接触特性、切削力和切削温度。有效减少刀具磨损。此外,工件材料的去除效率也得到了提高。本工作为探索石墨烯纳米流体在金刚石刀具损伤抑制和微铣削中的应用提供了技术依据。

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