首页> 外文期刊>Arabian Journal for Science and Engineering. Section A, Sciences >Dry, MQL, and Nanofluid MQL Machining of Ti–6Al–4V Using Uncoated WC–Co Insert: Application of Jatropha Oil as Base Cutting Fluid and Graphene Nanoplatelets as Additives
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Dry, MQL, and Nanofluid MQL Machining of Ti–6Al–4V Using Uncoated WC–Co Insert: Application of Jatropha Oil as Base Cutting Fluid and Graphene Nanoplatelets as Additives

机译:使用未涂覆的WC-CO插入的Ti-6Al-4V的干燥,MQL和纳米流体MQL加工:Jatropha油作为基础切削液和石墨烯纳米片作为添加剂

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摘要

Nanocutting fluids are very popular due to their excellent thermo-physical and tribological properties which provide adequate cooling and lubrication during metal cutting. Conventional dry machining of difficult-to-cut superalloy Ti–6Al–4V faces several challenges. To overcome this, application of cutting fluid is indeed a necessity. However, performance of conventional minimum quantity lubrication (MQL) system, in which air–oil mist is sprayed into cutting zone, is somewhat limited due to inadequate penetration into tool–work and tool–chip interfacial regions, especially at high cutting speeds. MQL performance can further be enhanced by applying nanocutting fluid in which nano-sized additives are dispersed into the base cutting fluid; this is known as nanofluid MQL (NFMQL). In order to take care of several alarming issues related to environmental protection and occupational health hazards, the present study explores application feasibility of biodegradable Jatropha oil added with graphene nanoplatelets as nanocutting fluid. Machinability of Ti–6Al–4V is assessed under NFMQL; results are compared to that of dry and conventional MQL machining. Cutting force magnitude, tool-tip temperature, morphology of worn-out insert, chip’s macro/micro-morphology and surface roughness of the machined work part, etc., are studied in detail. For MQL and NFMQL, tool wear morphology detects existence of ‘unaffected zones’ which indicates sustenance of strong hydrodynamic tribo-film of cutting fluid, thus protecting the insert against wear. Up to 82 m/min cutting speed, NFMQL causes lower tool flank wear than dry and conventional MQL. On the other hand, superior machined surface finish is obtained under NFMQL up to 106 m/min cutting speed.
机译:由于其优异的热物理和摩擦学特性,纳米处理流体非常受欢迎,这在金属切割过程中提供了充分的冷却和润滑。难以切割的超合金Ti-6Al-4V的常规干燥加工面临着几种挑战。为了克服这一点,切削液的应用确实是必要的。然而,由于渗透到工具 - 工作和工具芯片界面区域的渗透性不足,特别是在高切削速度下,传统最小量润滑(MQL)系统的性能,其中空气油雾喷洒到切割区中,其中空气油雾喷射到切割区中,是有些限制的。通过施加纳米型液体将纳米尺寸添加剂分散到基础切削液中,可以进一步增强MQL性能;这称为纳米流体MQL(NFMQL)。为了照顾与环境保护和职业健康危害有关的几个令人担忧的问题,本研究探讨了添加的石墨烯纳米纳薄物作为纳米序列的可生物降解的麻醉药油的应用可行性。在NFMQL下评估Ti-6AL-4V的可加工性;结果与干燥和常规MQL加工的结果进行了比较。切割力幅度,工具尖端温度,磨损插入的形态,芯片的宏/微观形态和机加工工作部件的表面粗糙度等。对于MQL和NFMQL,刀具磨损形态检测存在“未受影响的区域”的存在,这表明了切削液的强流体动力学摩擦膜的寄托,从而保护插入件耐磨。高达82米/最小的切割速度,NFMQL导致较低的刀具侧面磨损而不是干燥和传统的MQL。另一方面,在NFMQL下获得高达106米/分钟的切削速度的卓越加工表面光洁度。

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