Machining effects and multi-objective optimization in Inconel 718 turning with unitary and hybrid nanofluids under MQL

S. Chinchanikar, Paresh Kulkarni
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Abstract

Designing tooling and cooling systems to prevent cutting tool damage is crucial while machining difficult-to-cut nickel alloys. This study investigates the machining effects during turning Inconel 718 using unitary aluminum oxide (Al2O3) and hybrid aluminum oxide+multi-walled carbon nanotube type (Al2O3+MWCNT) nanofluids under minimum quantity lubrication (NFMQL) through mathematical modeling and multi-objective optimization. The worn-out tools were analyzed for damage and wear mechanisms through images captured using optical and scanning electron microscopes. The study indicates that hybrid nanofluids outperform unitary nanofluids, which could be attributed to the better lubricating and cooling capabilities of MWCNT and the higher surface tension and thermal conductivity of Al2O3 nanoparticles. The cutting parameters were optimized by combining the Technique for Order of Preference by Similarity to the Ideal Solution (TOPSIS) and genetic algorithm. The study reveals an average error of less than 10% between experimental and predicted responses from the proposed optimization model. This study found lower cutting force up to 80 N, surface roughness of 0.6–0.7 µm, and tool life over 10 minutes with a cutting speed of 50–70 m/min and a lower feed and depth of cut of 0.1 mm/rev and 0.2 mm, respectively, using a hybrid Al2O3+MWCNT nanofluid under NFMQL conditions.
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在 MQL 条件下使用单一纳米流体和混合纳米流体车削 Inconel 718 时的加工效果和多目标优化
在加工难切削镍合金时,设计刀具和冷却系统以防止切削刀具损坏至关重要。本研究通过数学建模和多目标优化,研究了在最小量润滑(NFMQL)条件下使用单元氧化铝(Al2O3)和混合氧化铝+多壁碳纳米管型(Al2O3+MWCNT)纳米流体车削 Inconel 718 时的加工效果。通过使用光学显微镜和扫描电子显微镜捕获的图像,分析了磨损工具的损坏和磨损机制。研究表明,混合纳米流体的性能优于单一纳米流体,这可能是由于 MWCNT 具有更好的润滑和冷却能力,而 Al2O3 纳米粒子具有更高的表面张力和导热性。切削参数的优化结合了理想解相似度排序技术(TOPSIS)和遗传算法。研究结果表明,根据所提出的优化模型,实验结果与预测结果之间的平均误差小于 10%。该研究发现,在 NFMQL 条件下使用 Al2O3+MWCNT 混合纳米流体,切削速度为 50-70 m/min,进给量和切削深度分别为 0.1 mm/rev 和 0.2 mm 时,切削力可达 80 N,表面粗糙度为 0.6-0.7 µm,刀具寿命超过 10 分钟。
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