首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Determination of minimum uncut chip thickness under various machining conditions during micro-milling of Ti-6Al-4V
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Determination of minimum uncut chip thickness under various machining conditions during micro-milling of Ti-6Al-4V

机译:在Ti-6Al-4V微铣削期间各种加工条件下的最小未加工条件下的最小未加工芯片厚度

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摘要

To optimize the machining process, finding the minimum uncut chip thickness is of paramount importance in micro-scale machining. However, strong dependency of the minimum uncut chip thickness to the tool geometry, workpiece material, tool-work friction, and process condition makes its evaluation complicated. The paper focuses on determination of the minimum uncut chip thickness experimentally during micro-end milling of titanium alloy Ti-6Al-4V with respect to influences of cutting parameters and lubricating systems. Experiments were carried out on a CNC machining center Kern Evo with two flute end mills of 0.8 and 2 mm diameters being used in the tests for micro- and macro-milling, respectively. It was found that the micro-milling caused more size effect than macro-milling due to higher surface micro-hardness and specific cutting forces. The specific cutting force depended strongly on feed rate (f (z)) and lubricating system, followed by depth of cut (a (p)) and cutting speed (v (c)), mainly in the micro-scale. All output parameters were inversely proportional to the specific cutting force. Finally, depending on different process parameters during micro-milling of Ti-6Al-4V, the minimum uncut chip thickness was found to vary between 0.15 and 0.49 of the tool edge radius.
机译:为了优化加工过程,找到最小未加工芯片厚度在微级加工方面至关重要。然而,对刀具几何形状,工件材料,工具摩擦和工艺条件的最小未切割芯片厚度的强大依赖性使其评估复杂化。本文侧重于在钛合金Ti-6AL-4V微端铣削期间实验确定最小未加工芯片厚度,相对于切割参数和润滑系统的影响。在CNC加工中心kern evo上进行实验,其中两个长笛端铣刀为0.8和2mm直径,分别用于微型和宏研磨的试验中。结果发现,由于表面微硬度和特定的切割力,微铣削引起比宏研磨更多的尺寸效果。具体的切割力依赖于进料速率(F(Z))和润滑系统,其次是切割深度(A(P))和切割速度(V(C)),主要是微尺寸。所有输出参数与特定的切割力成反比。最后,根据Ti-6AL-4V的微铣削期间的不同工艺参数,发现最小未加工芯片厚度在刀具边缘半径的0.15和0.49之间变化。

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