首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Temperature assessment when milling AISI D2 cold work die steel using tool-chip thermocouple, implanted thermocouple and finite element simulation
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Temperature assessment when milling AISI D2 cold work die steel using tool-chip thermocouple, implanted thermocouple and finite element simulation

机译:使用工具芯片热电偶铣削AISI D2冷加工模具钢的温度评估,植入热电偶和有限元模拟

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Due to the cyclic mechanical and thermal loads imposed to the cutting tool during milling, the study of the process temperature is of utmost importance for the better understanding of various associated phenomena, such as tool life and wear mechanisms, cutting forces behavior and workpiece subsurface metallurgical alterations. Nevertheless, temperature measurement during milling operations imposes a number of restraints to experimental methods, mostly related to the cutter rotational speed, variable chip thickness and intermittent action of the cutting edges. The principal goal of this work is to perform a comparative study of the cutting temperature during in end milling using implanted and tool-chip thermocouple methods under distinct operating parameters. Additionally, finite element simulation is employed to correlate the results provided by the experimental techniques. Tool-chip thermocouple and implanted thermocouple experimental methods were used in addition to three dimensional finite element simulation. The findings indicated that the developed system is capable to cope with the drawbacks associated with intermittent machining operations and to provide reliable temperature values for both experimental methods. Milling temperature increased with cutting speed, feed per tooth and both axial and radial depths of cut, however, the relevance of each factor varied in accordance with the measurement method. The average cutting temperature was not statistically affected by cutting direction and the experimental determination of the friction coefficient between tool and workpiece was critical to the accurate temperature determination using three dimensional numerical simulation.
机译:由于在研磨过程中对切削工具施加的循环机械和热负荷,对过程温度的研究至关重要,以更好地了解各种相关现象,例如工具寿命和磨损机构,切割力行为和工件地下冶金改变。然而,研磨操作期间的温度测量对实验方法施加了许多限制,主要与切割旋转速度,可变芯片厚度和切削刃的间歇作用相关。本作作品的主要目标是在不同的操作参数下使用植入和工具芯片热电偶方法进行最终研磨过程中的切削温度的比较研究。另外,采用有限元模拟来关联由实验技术提供的结果。除三维有限元模拟之外,还使用了工具片热电偶和植入的热电偶实验方法。结果表明,开发系统能够应对与间歇加工操作相关的缺点,并为两种实验方法提供可靠的温度值。铣削温度随着切割速度而增加,每颗牙齿的饲料和轴向和径向深度的切割,然而,每个因子的相关性根据测量方法而变化。通过切割方向的平均切割温度没有统计学影响,并且工具和工件之间的摩擦系数的实验测定对于使用三维数值模拟的精确温度测定至关重要。

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