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An analytical model for micro-cutting considering the cutting tool edge radius effect and material separation

机译:考虑切割工具边缘半径效应和材料分离的微切分析模型

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摘要

Severe plastic deformation occurs in micro metal cutting process; meanwhile, new surfaces are generated due to the material separation caused by ductile fracture. The energy required for the formation of the new surfaces is of kJ/m(2), which should not be neglected in the analysis of micro-cutting. In this work, an analytical model is developed focusing on the analyses of the micro metal cutting process with no stable built-up edge, in which the effects of both edge radius and material separation are taken into account. The cutting tool edge geometry is simplified with the effective rake angle. On the basis of slip-line field theory, the equation of the cutting power is derived. Applying the minimum energy principle, two nonlinear equations are obtained, through which the shear angle and the minimum chip thickness can be estimated simultaneously. The model is examined through the experiments; the investigations show that the calculation results of cutting force and shear angle agreed with the experimental measurements very well. The effects of fracture toughness, shear yield stress, and friction angle to the micro-cutting process are investigated. The numerical results show that the friction angle affects the cutting force and the shear angle greatly.
机译:微细金属切削过程中会产生严重的塑性变形;同时,由于韧性断裂引起的材料分离,产生了新的表面。新表面形成所需的能量为kJ/m(2),在微切削分析中不应忽略。在这项工作中,建立了一个分析模型,重点分析了没有稳定堆积刃口的微细金属切削过程,其中考虑了刃口半径和材料分离的影响。利用有效前角简化了刀具刃口几何形状。根据滑移线场理论,推导了切削功率的计算公式。应用最小能量原理,得到了两个非线性方程,通过这两个方程可以同时估计剪切角和最小切屑厚度。通过实验对模型进行了验证;研究表明,切削力和剪切角的计算结果与实验测量结果吻合良好。研究了断裂韧性、剪切屈服应力和摩擦角对微切削过程的影响。数值结果表明,摩擦角对切削力和剪切角的影响很大。

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