首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Chip formation and its effects on cutting force, tool temperature, tool stress, and cutting edge wear in high- and ultra-high-speed milling
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Chip formation and its effects on cutting force, tool temperature, tool stress, and cutting edge wear in high- and ultra-high-speed milling

机译:高速和超高速铣削中切屑的形成及其对切削力,刀具温度,刀具应力和切削刃磨损的影响

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In the present study, experimental tests and finite element simulation were conducted in order to investigate chip formation and its effects on cutting force, tool temperature, tool stress, and cutting edge wear in high- and ultra-high-speed (v = 200-2000 m/min) milling. It was found that the serration of chip became more and more obvious as the cutting speed increased. Most of the saw-tooth chip was separated at the cutting speed of 2000 m/min. During the formation process of the separated saw-tooth, the high temperature in the shear band had substantial effect on the initiation of the crack in the chip. When the cutting speed increased, the formation frequency of the saw-tooth increased with decreasing growth rate and the tool-chip contact length exhibited a decreasing trend. At each cutting speed used in the present work, the fluctuation frequency of cutting force, tool temperature, and tool stress was consistent with that of the saw-tooth formation. The saw-tooth formation which led to periodically changing cutting thickness had great effects on the cyclical fluctuations of the cutting force, tool temperature, and tool stress. When the cutting speed increased from 650 to 2000 m/min, the amplitude of the cutting force and tool temperature grew 116 and 93 %, respectively. The higher degree of chip serration at higher cutting speed resulted in the substantial change of the cutting thickness, leading to greater mechanical and thermal impact. The tool temperature had greater effect on the tool stress than the cutting force did when the cutting speed was relatively high. Due to the small tool-chip contact length at cutting speeds of 1550 and 2000 m/min, no obvious wear appeared on the tool rake face. Because of the higher average value and the higher amplitude of tool stress at the cutting speed of 2000 m/min, chipping emerged on the tool cutting edge. This phenomenon was not found on the cutting edge when the cutting speed was 1550 m/min.
机译:在本研究中,进行了实验测试和有限元模拟,以研究切屑的形成及其对高速和超高速(v = 200-V)切削力,刀具温度,刀具应力和切削刃磨损的影响。 2000 m / min)研磨。发现随着切削速度的增加,切屑的锯齿变得越来越明显。大部分锯齿状切屑以2000 m / min的切割速度分离。在分离的锯齿的形成过程中,剪切带中的高温对切屑中裂纹的产生具有重大影响。当切削速度增加时,锯齿的形成频率随着增长率的降低而增加,并且刀具与芯片的接触长度呈现出减小的趋势。在当前工作中使用的每种切削速度下,切削力,刀具温度和刀具应力的波动频率与锯齿形的波动频率一致。导致切削厚度周期性变化的锯齿形状对切削力,刀具温度和刀具应力的周期性波动有很大影响。当切削速度从650增加到2000 m / min时,切削力的幅度和工具温度分别增加了116%和93%。在较高的切削速度下较高的切屑锯齿度会导致切削厚度发生实质性变化,从而导致更大的机械和热冲击。与切削速度相对较高时的切削力相比,刀具温度对刀具应力的影响更大。由于在1550和2000 m / min的切削速度下较小的刀具切屑接触长度,因此在刀具前刀面上没有出现明显的磨损。由于在2000 m / min的切削速度下具有较高的平均值和较高的刀具应力振幅,因此在刀具的切削刃上会出现切屑。当切削速度为1550 m / min时,在切削刃上未发现此现象。

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