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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Numerical and experimental research on the grinding temperature of minimum quantity lubrication cooling of different workpiece materials using vegetable oil-based nanofluids
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Numerical and experimental research on the grinding temperature of minimum quantity lubrication cooling of different workpiece materials using vegetable oil-based nanofluids

机译:用植物油纳米流体对不同工件材料的最小数量润滑冷却磨削温度的数值和实验研究

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摘要

This study investigated the grinding temperature of minimum quantity lubricant cooling (MQLC) for heat transfer. Three typical workpiece materials, namely, 45 steel, Ni-based alloy, and nodular cast iron, were surface grinded. These materials are the most frequently used for mechanical processing. Palm oil with good lubrication and heat transfer performance was chosen as the base oil for the nanofluids. Carbon nanotube (CNT) nanofluids with volume fractions of 2 and 2.5%, as well as excellent heat transfer performance, were prepared for the MQLC fluid. Results showed that the 45 steel grinding had the highest temperature (363.9 A degrees C), and the grinding temperature of the 2% nanofluid (363.9 A degrees C) was slightly higher than that of the 2.5% nanofluid (352.9 A degrees C). A numerical simulation heat transfer model conducting the finite difference method was established for the numerical analysis of the MQLC grinding temperature. Results indicated that the model predictions and experimental results are in good agreement, with 4.8% average model error. The heat transfer mechanism of the nanofluids was also analyzed. This study confirmed that nucleate boiling heat transfer was achieved when grinding the Ni-based alloy.
机译:本研究研究了用于热传递的最小量润滑剂冷却(MQLC)的研磨温度。三种典型的工件材料,即45钢,Ni基合金和结节性铸铁,是表面研磨。这些材料是机械加工最常使用的。选择具有良好润滑和传热性能的棕榈油作为纳米流体的基础油。为MQLC流体制备碳纳米管(CNT)具有2和2.5%的体积级分的纳米流体,以及优异的传热性能。结果表明,45钢研磨具有最高温度(363.9℃),2%纳米流体(363.9℃)的研磨温度略高于2.5%纳米流体(352.9℃)。建立了对MQLC研磨温度的数值分析建立了有限差分法的数值模拟传热模型。结果表明,模型预测和实验结果非常一致,平均模型误差为4.8%。还分析了纳米流体的传热机理。该研究证实,当磨削Ni基合金时,实现了核心沸腾的热传递。

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