首页> 外文期刊>International Journal of Fuzzy Systems >Application of Graphene Nanofluid/Ultrasonic Atomization MQL System in Micromilling and Development of Optimal Predictive Model for SKH-9 High-Speed Steel Using Fuzzy-Logic-Based Multi-objective Design
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Application of Graphene Nanofluid/Ultrasonic Atomization MQL System in Micromilling and Development of Optimal Predictive Model for SKH-9 High-Speed Steel Using Fuzzy-Logic-Based Multi-objective Design

机译:石墨烯纳米流体/超声雾化MQL系统在使用模糊逻辑的多目标设计中的SKH-9高速钢最优预测模型的微磨和开发

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This paper focuses on using nanofluid (gra-phene)/ultrasonic atomization minimum quantity lubrication (MQL) in micromilling for SKH-9 high-speed steel. Utilizing the special properties of graphene, which has excellent thermal conductivity, it is found that it successfully lowers the cutting temperature generated during processing, reduces tool wear, and improves the quality of micromilling products. Using a self-developed ultrasonic atomization system effectively improves the agglomeration of nanoparticles in nanofluids and increases the lubrication efficiency of nanoparticles. The experimental plot is robustly designed, and the L_(18)(2~1 × 37) orthogonal table is used to find the optimal combination of parameters. The control factors are the average thickness of the nano-graphene, density of nanofluid, spindle speed, distance of nozzle, feed rate, amount ultrasonic atomization, air pressure, nozzle angle, and using gray correlation analysis with fuzzy inference to find more heavy quality characteristics. Finally, the optimal parameter combination of multi-quality characteristics enhanced by nanofluid (graphene)/ultra-sonic atomization MQL is compared with the base fluid/ ultrasonic atomization MQL, nanofluid (MWCNTs)/ultra-sonic atomization MQL, whereas the differences in micromilling force, temperature, tool wear, and workpiece burr are discussed. The results indicate that the use of nanofluid (graphene)/ultrasonic atomization MQL has better results than other lubrication methods.
机译:本文侧重于使用纳米流体(GRA-PHENE)/超声雾化最小量润滑(MQL)进行微米,用于SKH-9高速钢。利用具有优异的导热率的石墨烯的特殊性能,发现它成功降低了加工过程中产生的切削温度,降低了工具磨损,并提高了微米产品的质量。使用自开发的超声雾化系统有效地改善了纳米流体中纳米颗粒的附聚并增加了纳米颗粒的润滑效率。实验绘图是强大的设计,L_(18)(2〜1×37)正交表用于找到参数的最佳组合。控制因子是纳米石墨烯的平均厚度,纳米流体密度,轴速,喷嘴距离,进给速度,超声雾化,空气压力,喷嘴角度,以及使用模糊推理的灰色相关分析,找到更浓重的质量特征。最后,将纳米流体(石墨烯)/超声雾化MQL增强的多质特性的最佳参数组合与基础流体/超声雾化MQL,纳米流体(MWCNT)/超声雾化MQL进行比较,而微米的差异讨论了力,温度,工具磨损和工件毛刺。结果表明,使用纳米流体(石墨烯)/超声雾化MQ1的效果比其他润滑方法更好。

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