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Evaluation of the convective heat transfer coefficient for minimum quantity lubrication (MQL)

机译:最小润滑量(MQL)的对流传热系数评估

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Purpose - The purpose of this paper is to evaluate the cooling ability of minimum quantity lubrication (MQL) cutting fluid. Design/methodology/approach - An experimental system is devised to find the heat transfer coefficient of MQL under simulated reaming conditions. Cooling rate of the specimen is measured with an infrared camera. The effect of air pressure and oil volume on cooling rate is tested. Metal cutting tests are performed to evaluate the effect of heat transfer coefficient on workpiece temperature. Findings - Convective heat transfer coefficient for MQL increases with increasing air pressure. Oil volume has an indeterminate effect on the heat transfer coefficient; however, it is a dominant factor for controlling temperature during reaming. Practical implications - The results of the study can provide guidance to optimize the temperature controlling ability of MQL for production. Originality/value - There is limited information available in literature regarding the heat transfer coefficient of metal working fluids, particularly for MQL. In particular, experiments designed to investigate the effect of air pressure and oil volume on the heat transfer coefficient of the mist have not been previously documented. This information may be used to improve the overall cooling ability of MQL mist, thus increasing its effectiveness at controlling tool wear and maintaining part quality. The other major contribution of this work is to separate the role of the cooling and lubrication for controlling temperature while reaming aluminum. Prior to this study, there has been relatively little research performed for the reaming metal cutting operation, and still less for reaming with MQL. The nature of how metal working fluids control temperature is not fully understood, and this work provides insight as to whether cooling or lubrication plays the dominant role for reaming.
机译:目的-本文的目的是评估最小量润滑(MQL)切削液的冷却能力。设计/方法/方法-设计了一个实验系统来查找模拟铰孔条件下MQL的传热系数。用红外摄像机测量样品的冷却速率。测试了气压和油量对冷却速率的影响。进行金属切削测试以评估传热系数对工件温度的影响。研究结果-MQL的对流传热系数随气压的增加而增加。油量对传热系数有不确定的影响;但是,它是扩孔过程中控制温度的主要因素。实际意义-研究结果可为优化生产中MQL的温度控制能力提供指导。原创性/价值-在文献中,关于金属加工液的传热系数的信息有限,尤其是对于MQL。特别地,旨在调查气压和油量对雾的传热系数的影响的实验以前没有文献记载。该信息可用于改善MQL雾的整体冷却能力,从而提高其在控制工具磨损和保持零件质量方面的有效性。这项工作的另一个主要贡献是,在扩孔铝的同时,将冷却和润滑的作用分开,以控制温度。在进行这项研究之前,对铰孔金属切削操作进行的研究相对较少,而对使用MQL进行铰孔的研究则较少。金属加工液如何控制温度的性质尚未完全了解,这项工作提供了有关冷却或润滑在铰孔中起主要作用的见解。

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