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Thermocouple and Infrared Sensor-Based Measurement of Temperature Distribution in Metal Cutting

机译:基于热电偶和红外传感器的金属切削温度分布测量

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摘要

In metal cutting, the magnitude of the temperature at the tool-chip interface is a function of the cutting parameters. This temperature directly affects production; therefore, increased research on the role of cutting temperatures can lead to improved machining operations. In this study, tool temperature was estimated by simultaneous temperature measurement employing both a K-type thermocouple and an infrared radiation (IR) pyrometer to measure the tool-chip interface temperature. Due to the complexity of the machining processes, the integration of different measuring techniques was necessary in order to obtain consistent temperature data. The thermal analysis results were compared via the ANSYS finite element method. Experiments were carried out in dry machining using workpiece material of AISI 4140 alloy steel that was heat treated by an induction process to a hardness of 50 HRC. A PVD TiAlN-TiN-coated WNVG 080404-IC907 carbide insert was used during the turning process. The results showed that with increasing cutting speed, feed rate and depth of cut, the tool temperature increased; the cutting speed was found to be the most effective parameter in assessing the temperature rise. The heat distribution of the cutting tool, tool-chip interface and workpiece provided effective and useful data for the optimization of selected cutting parameters during orthogonal machining.
机译:在金属切削中,工具-芯片界面处的温度大小取决于切削参数。该温度直接影响生产。因此,对切削温度的作用的更多研究可以改善加工操作。在这项研究中,通过同时使用K型热电偶和红外辐射(IR)高温计测量工具-芯片界面温度的温度来估计工具温度。由于加工过程的复杂性,必须集成不同的测量技术才能获得一致的温度数据。通过ANSYS有限元方法比较了热分析结果。实验是使用AISI 4140合金钢的工件材料在干式加工中进行的,该工件材料经感应加工热处理,硬度为50 HRC。在车削过程中使用了涂有PVD TiAlN-TiN的WNVG 080404-IC907硬质合金刀片。结果表明,随着切削速度,进给速度和切削深度的增加,刀具温度升高;发现切削速度是评估温度升高的最有效参数。切削刀具,刀具-芯片接口和工件的热分布为正交加工期间优化切削参数提供了有效和有用的数据。

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