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Article

Modeling and Monitoring of the Tool Temperature During Continuous and Interrupted Turning with Cutting Fluid

1
Manufacturing Technology Institute (MTI), RWTH Aachen University, Campus-Boulevard 30, 52074 Aachen, Germany
2
Fraunhofer Institute for Production Technology IPT, Steinbachstr. 17, 52074 Aachen, Germany
*
Author to whom correspondence should be addressed.
Metals 2024, 14(11), 1292; https://doi.org/10.3390/met14111292
Submission received: 9 October 2024 / Revised: 7 November 2024 / Accepted: 10 November 2024 / Published: 15 November 2024

Abstract

In metal cutting, a large amount of mechanical energy converts into heat, leading to a rapid temperature rise. Excessive heat accelerates tool wear, shortens tool life, and hinders chip breakage. Most existing thermal studies have focused on dry machining, with limited research on the effects of cutting fluids. This study addresses that gap by investigating the thermal behavior of cutting tools during continuous and interrupted turning with cutting fluid. Tool temperatures were first measured experimentally by embedding a thermocouple in a defined position within the tool. These experimental results were then combined with simulations to evaluate temperature changes, heat partition, and cooling efficiency under various cutting conditions. This work presents novel analytical and numerical models. Both models accurately predicted the temperature distribution, with the analytical model offering a computationally more efficient solution for industrial use. Experimental results showed that tool temperature increased with cutting speed, feed, and cutting depth, but the heat partition into the tool decreased. In continuous cutting, cooling efficiency was mainly influenced by feed rate and cutting depth, while cutting speed had minimal impact. Interrupted cutting improved cooling efficiency, as the absence of chips and workpieces during non-cutting phases allowed the cutting fluid to flow over the tool surface at higher speeds. The convective cooling coefficient was determined through inverse calibration. A comparative analysis of the analytical and numerical simulations revealed that the analytical model can underestimate the temperature distribution for complex tool structures, particularly non-orthogonal hexahedral geometries. However, the relative error remained consistent across different cutting conditions, with less error observed in interrupted cutting compared to continuous cutting. These findings highlight the potential of analytical models for optimizing thermal management in metal turning processes.
Keywords: tool temperature; turning; cooling; cutting fluid; temperature simulation; analytical model; numerical model tool temperature; turning; cooling; cutting fluid; temperature simulation; analytical model; numerical model

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MDPI and ACS Style

Liu, H.; Meurer, M.; Bergs, T. Modeling and Monitoring of the Tool Temperature During Continuous and Interrupted Turning with Cutting Fluid. Metals 2024, 14, 1292. https://doi.org/10.3390/met14111292

AMA Style

Liu H, Meurer M, Bergs T. Modeling and Monitoring of the Tool Temperature During Continuous and Interrupted Turning with Cutting Fluid. Metals. 2024; 14(11):1292. https://doi.org/10.3390/met14111292

Chicago/Turabian Style

Liu, Hui, Markus Meurer, and Thomas Bergs. 2024. "Modeling and Monitoring of the Tool Temperature During Continuous and Interrupted Turning with Cutting Fluid" Metals 14, no. 11: 1292. https://doi.org/10.3390/met14111292

APA Style

Liu, H., Meurer, M., & Bergs, T. (2024). Modeling and Monitoring of the Tool Temperature During Continuous and Interrupted Turning with Cutting Fluid. Metals, 14(11), 1292. https://doi.org/10.3390/met14111292

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