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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Investigations on tool temperature with heat conduction and heat convection in high-speed slot milling of Ti6Al4V
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Investigations on tool temperature with heat conduction and heat convection in high-speed slot milling of Ti6Al4V

机译:Ti6Al4V高速槽铣削热传导和热对流刀具温度的研究

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摘要

Tool temperature has significant effects on tool wear and tool life in high-speed machining. Salomon hypothesized that increasing cutting speeds would make tool temperature rise to a maximum point and decrease after a certain cutting speed. However, the maximum tool temperature at a certain cutting speed in Salomon's hypothesis has not been fully validated and widely accepted by academic researchers and industrial engineers. In this paper, a series of experiments for slot milling of Ti6Al4V alloy at different cutting speeds are carried out and tool insert temperatures are measured. The experimental results indicate that the slot milling tool temperature increases first and then decreases as the cutting speed grows. The critical cutting speed is 1500 m/min for slot milling of Ti6Al4V. To analyze the experimental results and find reasons for the decreased milling tool temperature at high cutting speed, we propose a tool temperature prediction model for slot milling insert. The effects of heat convection and heat conduction time on slot milling tool temperature are analyzed. The finite element method is applied to simulate the heat flux and tool-chip contact length under different uncut chip thicknesses. The simulated heat flux is included in the proposed tool temperature prediction model. The variation of tool temperature in the milling process is affected by heat generation, heat conduction time, and convection coefficient. This research demonstrates that the maximum tool temperature at a certain cutting speed in Salomon's hypothesis can be accepted for interrupted machining processes.
机译:工具温度对高速加工工具磨损和工具寿命具有显着影响。 Salomon假设,提高切削速度会使工具温度升高到最大点并在一定的切割速度之后降低。然而,Salomon假设的某种切割速度下的最大刀具温度尚未完全验证,并且由学术研究人员和工业工程师广泛接受。本文采用了在不同切削速度下进行Ti6Al4V合金的一系列实验,并测量工具插入温度。实验结果表明,随着切割速度的增长,槽铣刀刀具温度升高,然后减小。用于Ti6Al4V的槽铣削术临界切削速度为1500米/分钟。为了分析实验结果,并在高切削速度下找出铣削工具温度下降的原因,提出了一种用于槽铣刀的刀具温度预测模型。分析了热对流和导热时间对槽铣床温度的影响。应用有限元方法以在不同未切换芯片厚度下模拟热通量和工具芯片接触长度。模拟热通量包括在所提出的刀具温度预测模型中。铣削过程中工具温度的变化受发热,导热时间和对流系数的影响。该研究表明,可以接受Salomon假设中某种切割速度的最大刀具温度用于中断的加工过程。

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