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首页> 外文期刊>Journal of Advanced Mechanical Design, Systems, and Manufacturing >Prediction of drilling temperature during low-frequency vibration drilling of titanium alloy
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Prediction of drilling temperature during low-frequency vibration drilling of titanium alloy

机译:钛合金低频振动钻孔过程中钻孔温度的预测

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Low-frequency vibration drilling can suppress the drilling temperature and extend tool life. In low-frequency vibration drilling, there are drilling times and non-drilling times in each vibration cycle. A past study clarified that the temperature increases during drilling, and the peak temperature in one vibration cycle is nearly equal to a conventional drilling temperature, but the temperature of the drill corner decreases during non-drilling periods. However, the relationship between the amount of temperature increase/decrease during intermittent drilling and the vibration and drilling conditions and temperature change near the cutting edge has not yet been clarified. In this study, to determine the drilling temperature during the drilling and non-drilling periods of low-frequency vibration drilling, the temperature near the cutting edge was measured experimentally by an embedded K-type thermocouple. To identify the optimum conditions for low-frequency vibration drilling without repeating the experiment, the temperature transition of the cutting edge was simulated based on the heat input caused by the cutting energy, calculated from the principal cutting force and speed. To simulate the temperature change of the drill edge, the principal force acting on the cutting edge was calculated from two-dimensional cutting data. A comparison of the experimental and simulated temperatures showed that the simulated temperature transition agreed well qualitatively with the results measured during low-frequency vibration drilling.
机译:低频振动钻孔可以抑制钻孔温度并延长刀具寿命。在低频振动钻孔中,每个振动周期中都有钻孔时间和非钻孔时间。过去的一项研究表明,钻孔过程中温度会升高,并且一个振动周期内的峰值温度几乎等于常规钻孔温度,但是在非钻孔期间,钻头角的温度会降低。但是,断续钻削时的温度上升/下降量与切削刃附近的振动,钻削条件和温度变化之间的关系尚未明确。在这项研究中,为了确定低频振动钻孔的钻孔和非钻孔期间的钻孔温度,通过嵌入式K型热电偶实验测量了切削刃附近的温度。为了在不重复进行实验的情况下确定低频振动钻孔的最佳条件,根据切削能量引起的热量输入,根据主切削力和速度计算出切削刃的温度变化,以模拟切削刃的温度变化。为了模拟钻头的温度变化,根据二维切削数据计算作用在切削刃上的主力。实验温度和模拟温度的比较表明,模拟温度转变与低频振动钻孔过程中测得的结果在质量上非常吻合。

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