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首页> 外文期刊>Journal of Manufacturing Processes >Analysis of the surface roughness and cutting tool wear using a vapor compression assisted cooling system to cool the cutting fluid in turning operation
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Analysis of the surface roughness and cutting tool wear using a vapor compression assisted cooling system to cool the cutting fluid in turning operation

机译:使用蒸汽压缩辅助冷却系统在车削过程中冷却切削液来分析表面粗糙度和切削刀具的磨损

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摘要

One of the major challenges in machining is controlling the temperature in the cutting region. Cutting fluids can be used to prolong tool life because of their cooling and lubricating abilities. The properties of the cutting fluid and the manner in which it is applied will vary to prevent problems caused by thermal distortions within the parts. Temperature control during machining makes it possible to meet the tolerances for shape, size, and finish required in the parts' specifications. Among the various cooling methods used in machining, the most notable are nanofluids, cryogenic systems, and refrigerated compressed air. This study presents a vapor compression refrigeration system to cool the cutting fluid in the liquid state. This method is advantageous due to its reduced cost and ease-of-application when compared to cryogenic systems. In addition, the liquid has a higher convective coefficient than compressed air, making the thermal exchange more efficient. In this study, the vapor compression refrigeration system is used to stabilize the temperature of the cutting fluid during machining of SAE 1045 steel with a CNC lathe. Ten test bodies were machined during the study, five using the fluid temperature control system and five without. The machining parameters used in the experiment were: cutting speed =180 m/min, feed rate = 0.2 mm/rotation and depth = 1 mm. The results were evaluated by analyzing temperature evolution, surface finish through medium roughness R-a, and tool wear by means of scanning electron microscopy. Among the principal conclusions reached, it was verified that refrigerated cutting fluid presented better performance with regard to surface finish and tool wear, showing that the proposed method is an excellent alternative to cryogenic systems and those that use refrigerated compressed air.
机译:机加工的主要挑战之一是控制切削区域的温度。由于切削液具有冷却和润滑能力,因此可用于延长刀具寿命。切削液的特性及其施加方式将有所变化,以防止零件内部的热变形引起的问题。加工过程中的温度控制可以满足零件规格中要求的形状,尺寸和精加工公差。在加工中使用的各种冷却方法中,最引人注目的是纳米流体,低温系统和冷冻压缩空气。这项研究提出了一种蒸气压缩制冷系统,用于冷却液态切削液。与低温系统相比,该方法具有成本低廉,易于使用的优点。此外,液体的对流系数高于压缩空气,从而使热交换更有效。在这项研究中,蒸汽压缩制冷系统用于在CNC车床加工SAE 1045钢时稳定切削液的温度。在研究过程中,对十个测试体进行了机械加工,其中五个使用了流体温度控制系统,另外五个则没有。实验中使用的加工参数为:切削速度= 180 m / min,进给速度= 0.2 mm /旋转,深度= 1 mm。通过分析温度变化,通过中等粗糙度R-a进行的表面光洁度以及通过扫描电子显微镜进行的工具磨损来评估结果。在得出的主要结论中,证实了冷冻切削液在表面光洁度和工具磨损方面表现出更好的性能,表明所提出的方法是低温系统和那些使用冷冻压缩空气的系统的极佳替代品。

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